US20180142435A1 - Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking - Google Patents

Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking Download PDF

Info

Publication number
US20180142435A1
US20180142435A1 US15/645,421 US201715645421A US2018142435A1 US 20180142435 A1 US20180142435 A1 US 20180142435A1 US 201715645421 A US201715645421 A US 201715645421A US 2018142435 A1 US2018142435 A1 US 2018142435A1
Authority
US
United States
Prior art keywords
thermoplastic
adhesive
surface portion
aggregate
marking
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US15/645,421
Inventor
Robert W Greer
Simon Yakopson
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Ennis Flint Inc
Original Assignee
Flint Trading Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US10/816,635 external-priority patent/US7645503B1/en
Application filed by Flint Trading Inc filed Critical Flint Trading Inc
Priority to US15/645,421 priority Critical patent/US20180142435A1/en
Publication of US20180142435A1 publication Critical patent/US20180142435A1/en
Assigned to FLINT TRADING, INC. reassignment FLINT TRADING, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: GREER, ROBERT W., YAKOPSON, SIMON
Assigned to FLINT ACQUISITION CORP. reassignment FLINT ACQUISITION CORP. MERGER AND CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: FLINT ACQUISITION CORP., FLINT TRADING, INC.
Assigned to ENNIS-FLINT, INC. reassignment ENNIS-FLINT, INC. MERGER AND CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: ENNIS-FLINT, INC., FLINT ACQUISITION CORP.
Abandoned legal-status Critical Current

Links

Images

Classifications

    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01FADDITIONAL WORK, SUCH AS EQUIPPING ROADS OR THE CONSTRUCTION OF PLATFORMS, HELICOPTER LANDING STAGES, SIGNS, SNOW FENCES, OR THE LIKE
    • E01F9/00Arrangement of road signs or traffic signals; Arrangements for enforcing caution
    • E01F9/50Road surface markings; Kerbs or road edgings, specially adapted for alerting road users
    • E01F9/506Road surface markings; Kerbs or road edgings, specially adapted for alerting road users characterised by the road surface marking material, e.g. comprising additives for improving friction or reflectivity; Methods of forming, installing or applying markings in, on or to road surfaces
    • E01F9/512Preformed road surface markings, e.g. of sheet material; Methods of applying preformed markings
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/24Structurally defined web or sheet [e.g., overall dimension, etc.]
    • Y10T428/24355Continuous and nonuniform or irregular surface on layer or component [e.g., roofing, etc.]
    • Y10T428/24372Particulate matter

Definitions

  • the invention herein pertains to thermoplastic pavement marking materials comprising large grit size aggregate to improve long-term skid resistance and reduce tire tracking, and particularly pertains to such markers as lines, legends, arrows, indicia, and decorative marking including pavement marking patterns utilizing thermoplastic sheeting which utilize an adhesive (sprayable or otherwise) to maintain the integrity of the pattern prior to its application to a substrate.
  • Traffic markings convey information to drivers and pedestrians by providing exposed visible, reflective, colored and/or tactile surfaces that serve as indicia. In the past, such a function was typically accomplished by painting a traffic surface. Modern marking materials offer significant advantages over paint such as dramatically increased visibility and/or reflectance, improved durability, and temporary removable marking options. Examples of modern pavement marking materials are thermoplastic, pavement marking sheet materials, tapes and raised pavement markers.
  • thermoplastic materials used as pavement markings or for other indicia possess many advantages compared to paints and other less durable markings. These materials can be used for years.
  • Known materials using high friction aggregates on the surface to improve friction has been known.
  • the surface applied aggregates provide good initial values, however as the surface is worn due to traffic, the skid resistance decreases. After surface layers containing anti-skid materials become worn out these aggregate materials loose their effectiveness and become slippery because they do not contain high friction particles (of sufficient size to provide good skid properties).
  • thermoplastics include small particulate aggregate to improve the skid-resistant properties of the markers. However, over time, it has been shown that when such particulates are too small, they become worn too quickly and thus do not provide sufficient skid-resistance for high traffic areas.
  • Today's thermoplastic materials do not include properties of long-term skid resistance and reduced tire tracking.
  • today's preformed thermoplastic decorative patterned materials do not include both the properties of facilitated assembly via an adhesive spray and long-term skid resistance and reduced tire tracking.
  • thermoplastic products that both reduces tire tracking and improves long term skid resistance once the marking product has been installed on the road surface and also ensures that the integrity of the product (and pattern if so desired) is maintained during handling and installation.
  • U.S. Pat. No. 3,958,891 to Eigenmann, Ludwig, and not assigned describes an aggregate for securing in a layer of material which is used to form a traffic-regulating indicium, so as to improve the nighttime visibility characteristics and anti-skid characteristics of the traffic-regulating indicium.
  • the aggregate comprises a core body surrounded at least partially by a mass of shock-absorbent binder substance and a plurality of elements that improve either nighttime visibility or anti-skid properties, or both.
  • the elements are arranged in and bound by the binder substance such that the latter substantially fills the interspaces between at least the majority of adjacent pairs of the aforementioned elements, some of which being arranged adjacent to an external surface of the mass so as to impart a roughened texture to the external surface, thereby permitting the aggregate to be firmly secured in the traffic-regulating indicium.
  • the remainder of the elements are distributed among different levels interiorly of the mass so that progressive wear of the aggregate and concomitant detachment of elements from the aggregate causes exposure of others of the elements, thereby conveying long-term durability to the traffic-regulating indicium.
  • U.S. Pat. No. 4,020,211 to Eigermann, Luwig and not assigned describes a new material adapted to be laid down and adhesively secured on a road surface to provide a traffic regulating sign with the material which has an upper surface exposed to traffic and provided with a plurality of sharp tips projecting above the surface for imparting good non-skid properties thereto, the new material comprising an upper layer adjacent to the upper surface, at least partially embedding hard particles to form sharp tips and consists of a polymeric resin having a high molecular cohesion such as a polyamide resin, a polyurethane resin or a polyterephthalic resin, thereby adding improved wear resistance properties to non-skid and high visibility properties.
  • a polymeric resin having a high molecular cohesion such as a polyamide resin, a polyurethane resin or a polyterephthalic resin
  • the nonskid element is a web that includes a plain bottom wall, and the bottom wall includes a covering with band-like holding pins.
  • U.S. Pat. No. 5,077,117 to Harper, et. al. describes a pavement marking material comprising a flexible base sheet that is conformable to an irregular pavement surface.
  • a durable, wear-resistant, polymeric top layer is adhered to one surface of the base sheet.
  • the top layer is capable of undergoing brittle fracture at a temperature from 0 degrees Centigrade to 45 degrees Centigrade such that when the base sheet conforms to an irregular surface the top layer readily forms ruptures to relieve stress build-up in the top layer as the regions of the top layer defined by the ruptures remain adhered to and follow the conformance of the base sheet.
  • a plurality of particles are embedded in and protrude from the top layer.
  • the particles comprise retroreflective beads and skid-resistant granules.
  • the top layer is characterized by a Young's modulus of from about 50,000 psi to about 300,000 psi, and a percent elongation at break of from about 4% to about 35%.
  • the molten or softened binder is then applied to the surface with a particulate topcoat or particulate filler selected from the group consisting of reflective elements; skid-resistant particles, magnetizable particles and mixtures thereof, and finally the applied materials are allowed to cool to form a marker in which the binder adheres directly to the surface.
  • a particulate topcoat or particulate filler selected from the group consisting of reflective elements; skid-resistant particles, magnetizable particles and mixtures thereof
  • U.S. Pat. No. 3,935,365 to Eigenmann, Ludwig, and not assigned describes a tape material for securement to primer layers provided on roadway pavements so as to form traffic-regulating indicia on the latter.
  • the tape material comprises a first layer that contains a polymeric binder having high molecular cohesion and one surface adapted to face towards a roadway pavement and another surface adapted to be exposed to traffic, a plurality of hard particles having a minimum of about 6 on the Mohs' Hardness Scale, some of which should have a sharp tip, distributed among various levels of the aforementioned first layer, and a second layer adapted to be secured to a primer layer on the roadway pavement bonded to one surface of the first layer.
  • the second layer is compatible with the first layer so that a firm bond is formed between them. It is also compatible with the primer layer so that a bond forms between them when the tape material is placed on the primer layer.
  • This tape material imparts good anti-ski properties to a traffic-regulating indicium formed therewith due to the presence of the tips of the hard particles, which provide gripping areas when exposed. It is also an effective skid-resister during wear of the traffic-regulating indicium due to the distribution of the hard particles among various levels of the first layer, which enables fresh hard particles to become exposed as hard particles next to the latter are removed by wear.
  • U.S. Pat. No. 5,053,253 to Haenggi, Robert, et. al., and assigned to Minnesota Mining and Manufacturing Company describes a method of producing skid-resistant substrate marking sheet in which a base sheet is provided and an upward face of the base sheet is coated with a liquid bonding material.
  • a plurality of ceramic skid-resistant spheroids is embedded in the liquid bonding material, wherein the ceramic spheroids are characterized by having rounded surfaces and no substantial points and characterized by Krumbein roundness of at least 0.8.
  • the liquid bonding material is then cured to a solid adherent polymeric matrix coating with the ceramic skid-resistant spheroids partially embedded, wherein the spheroids comprise a fired ceramic made from various raw materials.
  • U.S. Pat. No. 6,679,650 to Britt, Jerry, et. al., and assigned to Ennis Paint Incorporated describes a marked pavement system comprising a pavement surface, a first marking stripe adhered to the top of the pavement surface with a thickness of at least about 40 mils to about 110 mils and comprised of a solidified thermoplastic resin composition with a black pigment, and a second marking stripe adhered to the surface of the first marking stripe with a thickness of at least 40 mils to 750 mils.
  • the second marking stripe should be narrower than the first marking stripe and comprised of a solidified thermoplastic resin composition with a pigment that visibly contrasts with the first marking stripe, wherein the marked pavement system is highly visible during the daylight hours and during periods of rain.
  • U.S. Pat. No. 5,536,569 to Lasch, James E., et. al., and assigned to Minnesota Mining and Manufacturing Company describes a conformable pavement marking with a top surface useful as a marking indicium and a bottom surface, the marking sheet comprising a conformance layer with a thickness of 75 to 1250 micrometers of a composite material.
  • the composite material should include 50 to 85 volume percent of a ductile thermoplastic polymer selected from the group consisting of polyethylene, polypropylene, polybutylene, ethylene copolymers, polyvinylidene fluoride, polytetrafluoroethylene, polyvinyl polymers, polyamides, and polyurethanes, and 15 to 50 volume percent mineral particulate with a mean particle size of at least 1 micrometer.
  • the conformance layer requires, when tested at 25 degrees Celsius using a standard tensile strength apparatus, not more than 35 Newtons force per centimeter of width to deform a sample to 115% of the original sample length when tested at a strain rate of 0.05 sec-1.
  • the top layer is distinct from the conformance layer, 80-250 micrometers thick, and is made of a thermoplastic polyolefin.
  • U.S. Pat. No. 6,790,880 to Purgett, Mark, et. al., and assigned to 3 M describes a pavement marking comprising a binder having polyurea groups, wherein the binder is prepared from a coating composition comprising one or more aliphatic secondary amines, one or more polylsocynanates, and at least about 15 weight percent non-soluble material based on the weight of the final dried coating, and reflective elements.
  • the patent also discloses the pavement marking wherein the binder is a sprayable, two-part coating composition.
  • U.S. Pat. No. 6,116,814 to Dietrichson, Stein, and assigned to Rieber & Son, Division Nor-Skilt describes a method for applying markings or signs on a surface in which a primer layer comprising an uncured plastic material with two or more components is applied to the surface, a heated mass comprised of a thermoplastic material is laid down on the primer layer, and the curing of the primer layer is initiated by the heat of the aforementioned heated mass.
  • U.S. Pat. No. 3,664,242 to Harrington, Thomas, et. al., and assigned to Minnesota Mining and Manufacturing Company describes a method for forming a marking on a roadway that is ready to bear wheeled road traffic within seconds after application. First, the surface of the roadway is momentarily heated to a temperature between 150 and 500 degrees Fahrenheit.
  • the thus-heated roadway is projected toward a marking material that comprises a continuous stream of solid particles that are capable of passing a screen of about 20 mesh with at least about 80 weight percent being retained on a screen of about 200 mesh, are non-tacky, non-blocking, free-flowing, and solid at temperatures up to about 120 degrees Fahrenheit, and include a coloring agent in an amount sufficient to color a marking formed from the marking material and an organic thermoplastic phase that accounts on the average for at least about 25 volume percent of the marking material and principally comprises a polyamide condensation product of polycarboxylic acid and polyamine.
  • the individual particles are heated as the proceed toward the roadway to a temperature above 150 degrees Fahrenheit sufficient to at least soften a major portion of the organic thermoplastic phase of the particles before they reach the pavement, the heated condition of the roadway and the particles being such that the particles wet and bond rapidly to the surface of the pavement and coalesce into a film, which subsequently becomes solid, non-tacky, and capable of bearing wheeled road traffic without tracking.
  • WIPO Patent Application No. WO03064771A1 to Hong, Le Hoa, et. al., and assigned to Avery Dennison Corporation describes a method for securing a preformed pavement marking construction with a top surface and at least one perimeter edge to pavement with a relatively flat roadway surface.
  • the method includes adhering the preformed pavement marking construction the roadway surface, providing a curable structural adhesive, and applying the curable structural adhesive to the at least one perimeter edge such that the curable structural adhesive overlaps a portion of the top surface of the preformed pavement marking construction at its at least one perimeter edge and a portion of the roadway surface.
  • the curable structural adhesive is cured to form a traffic-bearing top surface extending between the roadway surface and the preformed pavement marking construction.
  • thermoplastic pavement marking method using an adhesive (sprayable or otherwise) that maintains the integrity of the pattern and a thermoplastic pavement marking composition that includes large grit size aggregate to improve long term skid resistance and reduce tire-tracking.
  • FIG. 1 illustrates a typical partial decorative pavement marking pattern ( 10 ) for application to concrete, asphalt or other suitable substrates.
  • Marking pattern ( 10 ) is a brick and mortar pattern used herein for illustration purposes but as would be understood various other thermosetting and thermoplastic patterns are commercially available such as ( 90 ) herringbone, cobblestone, pavement slabs, horizontal signage, logos and other designs. Also, while many colors are available for the pavement marking patterns, typically different sections of each pattern are of different colors, such as a “light” grid or mortar color and a “darker” brick or insert color.
  • the marking patterns typically consist of two or more sections.
  • Preferred marking pattern ( 10 ) shown for demonstration purposes consists of two separate thermoplastic sections, first section ( 11 ) represents a grid or mortar joint and second section ( 12 ) represents a brick or insert ( 14 ) with borders ( 18 ) as represented. Sections ( 11 ) and ( 12 ) are generally formed independent of each other due to the differences in color. Pavement marking pattern ( 10 ) is planar and is conventionally formed from a standard thermoplastic. The top portion ( 11 ) of the marking pattern is bordered. Large aggregates ( 20 ) are shown throughout the marker patterns.
  • the present disclosure describes a preformed thermoplastic pavement marking or hot melt applied material with improved long term skid resistance and reduced tire tracking once the pavement marking has been adhered to road surfaces or other solid substrates.
  • the preformed thermoplastic material of the present invention is comprised of about 20% binder and 80% “intermix”, where the intermix includes non-organics such as silica, calcium, and other inorganic pigments as well as large high friction aggregate capable of passing through sieves sizes of about 4 to about 12 together with somewhat smaller aggregate that is applied to the surface either prior to, or during installation.
  • the surface applied anti-skid materials provide high initial friction properties, while large size aggregate in the intermix provides long term skid resistance and improves initial friction properties by creating an appropriately textured surface.
  • slip resistance which relates to traffic traveling over the pavement markers at a slow speed and to pedestrian traffic traveling over the same pavement marker surfaces and related to the static COF (coefficient of friction).
  • Skid resistance relates, however to traffic traveling over the pavement markers at high speed, and depends on surface texture. Skid resistance is more applicable to the type of vehicular traffic.
  • the “Locked Wheel Test” which produces “FN” or Friction number and described by ASTM E274 is used by many states within the United States and provides a methodology for measuring friction values at high speeds, simulates real traffic conditions, and requires actual road installation. There are also other test methods for measuring friction at high speeds. Results from different test methods can be normalized or combined using the IFI (International Friction Index, ASTM E1960) which provides for combining friction and texture indices (F60 and S p ).
  • IFI International Friction Index
  • the required materials for the present invention to achieve both the necessary slip and skid resistance are those that contain high friction large aggregates in the intermix with a weight percent content of from 5 percent to 65 percent.
  • the optimal size of the large aggregates is from about 4 to about 16 grit depending on the specific thickness of the thermoplastic sheets that contain the marker patterns—confirm sizes
  • the present invention also includes cases where the thermoplastic road marker patterns contain surface applied large aggregate in a range from about 14 to about 20 grit Product using small particle aggregate sizes (approximately 24 grit or mesh) covered the surface area of the thermoplastic marking sheets more effectively, however, these aggregates did not provide the required skid or tire track resistance.
  • the aggregates used primarily exhibit a Mohs hardness of greater than 6, including corundum, quartz, granite, calcined clay, nickel slag, silicon dioxide and others (trade names of such materials include Mulcoa grades 47, 60 and 70, AlphaStar®, Ultrablast®, and Alodur® which provide hardness ratings in the range of 6.5 to 9).
  • a portion of the intermix used with the thermoplastic road marking includes 16 grit size aggregate also with a hardness in the Mohs scale reading of greater than 6, which has never been tried before in preformed or hot melt applied thermoplastic surface applications, and has resulted in improved friction.
  • An additional desired result is improved overall skid resistance of the preformed thermoplastic markers without any associated discoloration.
  • the aforestated special aggregates also improve the coefficient of sliding friction (COF) as determined per the ASTM E274 test. As the COF decreases below a certain level on the surrounding asphalt, a small wheel grabs onto the asphalt and if the COF is reduced on the pavement marking too much, undesirable skidding will occur. It is desirable that the COF of the preformed or hot melt thermoplastic match or be greater than the road pavement surface.
  • the COF in this case, as measured per ASTM E274 requires using a small cart pulled behind a car with a wheel attached to the bottom of the cart that rides at the speed of the car, thus touching the pavement surface, which eventually results in locking the wheel, thereby allowing for measurement of the force of the cart on the surface.
  • thermoplastic marking surfaces stay cleaner and possess less tire tracking than marking surfaces without the special large aggregate particles described above.
  • the use of uniform particulate material or blends of particulate materials for the aggregate with differing hardness values can be introduced into the intermix during formulation.
  • the introduction of these blends usually occurs prior to extrusion and completion of the thermoplastic pavement marking.
  • the aggregates and other particles such as glass beads, including type 1 and type 3 glass beads, and the inorganic choices stated above can also, however, be dropped on the hot material during installation and completely embedded into body of the thermoplastic marking material in that fashion.
  • the preformed thermoplastic surface marking product can be applied using pressure sensitive adhesives as well as by flame torching.
  • thermoplastic marking surfaces were measured using International Friction Index (IFI) consisting of two parameters:
  • Materials without large high friction aggregate have an F60 of about 0.07 to about 0.10 and an MPD of 0.15 mm to about 0.3 mm.
  • the F60 increases to between about 0.17 to about 0.4 and the MPD to between about 0.50 mm to about 0.75 mm.
  • hot mix asphalt has an F60 value of about 0.25 after being exposed to traffic extended lengths of time.
  • thermoplastic pavement markings with various patterns and designs to guide, decorate, and protect high traffic areas such as highways, pedestrian crosswalks, parking lots and business entrances.
  • Such patterns may include a first section or grid, for example to represent the mortar joints in a “brick” design and a plurality of second sections or “bricks” which are coplanar therewith, usually in a color different from the mortar color.
  • the second section or bricks which are separately manufactured are inserted into the first section or grid before application of the pattern to the pavement.
  • Various two section marking patterns are commonly available such as: herringbone, standard brick, cobblestone, paving slabs and many other designs. Marking patterns with more than two sections are also commonly available such as horizontal highway and street signage, logos and many others.
  • these marking patterns consist of two or more independent sections which must be carefully assembled and handled before applying to pavements such as asphalt, concrete or other suitable substrates. These marking patterns are placed at desired locations such as road crosswalks, intersections, parking lots or other sites. In some cases heat is then applied to soften the pavement marking pattern causing it to firmly adhere to the substrate. Various adhesives can also be used to adhere the marking pattern to the substrate.
  • spot adhesives have been used which remain somewhat “tacky” after being applied to the bottom of the patterns at the grid intersections to maintain pattern integrity.
  • spot adhesives are generally a different type of polymer than the marking pattern and can prevent proper attachment and easy movement of the marking pattern on the substrate at the spot adhesive locations before and during the heat application of the marking.
  • certain spot adhesives are not compatible with the plastic materials from which the patterns are formed and can cause the pavement marking sections to separate from the substrate after the heat application, as only a weak bond is formed with the substrate.
  • the major object of the present invention is to provide for long term skid resistance and reduced tire tracking through the addition of large grit size aggregate.
  • the above stated objectives are realized by providing a conventional pavement marking pattern formed of a thermosetting or thermoplastic which may have two or more sections, manually joined by bridging the bottom surface thereof with an adhesive having substantially the same temperature softening point as the sections of the marking pattern.
  • the adhesive can be sprayed primarily along the intersections of the pattern to cover a percentage (approximately from 5% to 90%) of the patterned bottom surface area while bridging the intersections. The more intricate the pattern (with more joints or intersections) the greater the percentage of adhesive coverage required.
  • the spray adhesive can be a typical polyamide, EVA based hot melt adhesive or other, such as styrene-isoprene-styrene copolymers, styrene-butadiene-styrene copolymers, ethylene ethyl acrylate copolymers, and polyurethane reactive, and preferably consists of a hot melt polyamide resin based adhesive which is sprayed in a circular or spiral string like configuration at a temperature at or above its softening point. The sprayed hot adhesive strikes the marking pattern and adheres, bridging and bonding the pattern sections to maintain pattern integrity during subsequent handling.
  • Uni-Rez 2633 as sold by Arizona Chemical Company of P.O. Box 550850, Jacksonville, Fla. 32225 is the main ingredient in the preferred hot melt adhesive.
  • the preferred hot melt adhesive is formulated with Uni-Rez 2633, ester modified rosins, fillers, extenders, levelers and other conventional components.
  • a pavement marking pattern e.g. a brick and mortar pattern or any other desired pattern
  • various sections of a pavement marking pattern are factory assembled and while in assembled form, the bottom of the pattern is sprayed with the hot melt adhesive described above using preferably spray gun model: Hysol-175-spray as manufactured by Loctite Corporation of 1001 Tout Brook Crossing, Rocky hill, Connecticut 06067, having various pressures and nozzle settings to select from, depending on the viscosity of the particular adhesive employed.
  • a circular or spiral string-like adhesive configuration is preferred for the spray.
  • the grid and inserts are suitably bridged and joined and the pavement marking pattern is packaged for shipment.
  • the packages are opened and after the intended substrate, usually asphalt or concrete is properly cleaned and swept, the marking pattern is then placed on the substrate without concern of disassembly during handling, movement and adjustment.
  • a heat application is delivered from a conventional source which softens the marking pattern and the underlying sprayed adhesive, both of which have the approximate same temperature softening point to thereby affix the pavement marking pattern to the substrate. Time and labor are thereby saved as the marking pattern sections have been adhered to form a unified pattern by the hot melt adhesive.
  • the present invention includes larger grit size aggregate than is normally used in similar preformed thermoplastic pavement marking products.
  • the aggregate should be between 8 and 12 mesh (grit) in size and may be comprised of quartz, corundum, crushed gravel, crushed granite, or any combination thereof.
  • the aggregate used may also measure 6 or greater on the Mohs Hardness Scale. This larger grit size improves the skid resistance properties of the pavement marker and also significantly reduces tire tracking in comparison to other similar products, because it ensures that the product wears down more slowly, conveying greater durability and also longer term skid resistance—often through the end-of-life of the applied preformed thermoplastic.
  • Additional objectives of the invention include providing a relatively inexpensive pavement marking pattern having two or more sections in which the sections are joined by use of an applied adhesive and to provide a method for forming a pavement marking pattern which allows cost efficient factory assembly of the pattern and which prevents dislodging and separation of the pattern sections during handling, transportation and application.
  • Another objects of the invention are to provide an adhesive which can be conveniently sprayed onto the back of pavement marking patterns which will sufficiently adhere thereto and prevent separation of the sections during handling, and not deteriorate the bond between the pavement marking pattern and the substrate and to provide a method for easy application of the adhesively sprayed marking pattern to the substrate.
  • the surface texture of the preformed thermoplastic is measured using a laser-based Circular Track Meter (CTM) with a vertical resolution of 3 microns ( ⁇ m). The texture is reported in terms of the Mean Profile Depth (MPD) in millimeters.
  • CTM Circular Track Meter
  • MPD Mean Profile Depth
  • DFT Dynamic Friction Tester
  • a disk with three rubber sliders attached to the disk rotates at tangential velocities up to 90 km/h then drops onto the surface.
  • the torque generated, as the disk slows once it engages the surface provides an indication of the friction at various speeds.
  • the output from the DFT is reported as unitless DFT numbers at various speeds (typically 20, 40, 60 and 80 km/h).
  • the DFT and CTM instruments are manufactured by NIPPO Sangyo Co. (Japan). Together, the results from the CTM and DFT are used to calculate a value known as the International Friction Index (IFI, F60).
  • IFI International Friction Index
  • the IFI can also be estimated by other types of equipment including the widely used ASTM E274 towed friction trailer test method as well as the British pendulum test method and results of different test methods have been found to correlate.
  • hydrocarbon resin composition for the preformed thermoplastic of the present invention is provided as follows:
  • the material composition has a softening temperature (Ring and Ball) of 118° C. measured according to ASTM D36-06 entitled “Standard Test Method for Softening Point of Bitumen (Ring-and-Ball Apparatus)”.
  • thermoplastic material composition was extruded using a casting die to create 125 mil thick preformed thermoplastic sheets. As the sheets were extruded glass beads were dropped onto the melted thermoplastic material. Subsequently at a location further from the die exit on the manufacturing line, corundum grit 16 was added to the thermoplastic and indented visual heating indicators were applied to the surface.
  • the material composition was applied on two square cement boards (20 inches by 20 inches). One of the panels was tested after application, another was abraded (sand blasted) to expose the intermix aggregate.
  • thermoplastic material based on an alkyd resin composition is provided as:
  • the material composition softening temperature (R&B) is 124° C.
  • the material composition softening temperature (R&B) is 121° C.
  • a decorative brick pattern was made using colored and patterned thermoplastic sheeting manufactured according to the Example 1 including a dark red color for bricks and a white color for the grout.
  • the sections of the patterned thermoplastic sheeting were joined together using EVA based hot melt adhesive. Sheeting was applied to the crosswalk and exhibited properties similar to the “as applied” properties presented in Example 1.
  • Material was processed according to Example 1, with a 90 mil thickness and corundum grit (or mesh size) 24 was applied during extrusion.
  • Comparative Example 1 uses smaller aggregate in the intermix.
  • the preformed thermoplastic was identical to that of Working Example 2, except that the Corundum grit 30 was used in the intermix and as a drop on instead of corundum grit 16.
  • Example 1 DFT20 F60 MPD, mm As Applied 0.42 0.192 0.28 After Abrasion 0.36 0.172 0.26

Landscapes

  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Road Repair (AREA)
  • Road Signs Or Road Markings (AREA)
  • Shaping Of Tube Ends By Bending Or Straightening (AREA)
  • Road Paving Structures (AREA)

Abstract

The present disclosure describes a preformed or in some cases a hot applied thermoplastic marking composition comprising a planar top surface portion and a planar bottom surface portion that are coplanar to each other, wherein said bottom surface portion is directly applied to a substrate via application of heat or pressure or both heat and pressure and wherein said top surface portion comprises an intermix that exits throughout said thermoplastic composition and includes large grit size aggregate in the range of about 8 to about 20 mesh or grit size, thereby reducing or eliminating tire tracking while also improving long-term skid resistance.

Description

    PRIORITY
  • The present application is a divisional of and claims priority under 35 U.S.C. § 120 from U.S. patent application Ser. No. 12/592,458 entitled, “Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Long Term Skid Resistance and Reduced Tire Tracking”, filed 25 Nov. 2009, which is a Continuation-in-Part of and claims priority under 35 U.S.C. § 120 from U.S. patent application Ser. No. 10/816,635 filed Apr. 2, 2004 and entitled, “Pavement Marking Pattern and Method”, granted on Jan. 12, 2010 as U.S. Pat. No. 7,645,503.
  • FIELD OF THE INVENTION
  • The invention herein pertains to thermoplastic pavement marking materials comprising large grit size aggregate to improve long-term skid resistance and reduce tire tracking, and particularly pertains to such markers as lines, legends, arrows, indicia, and decorative marking including pavement marking patterns utilizing thermoplastic sheeting which utilize an adhesive (sprayable or otherwise) to maintain the integrity of the pattern prior to its application to a substrate.
  • BACKGROUND OF THE INVENTION
  • Traffic markings convey information to drivers and pedestrians by providing exposed visible, reflective, colored and/or tactile surfaces that serve as indicia. In the past, such a function was typically accomplished by painting a traffic surface. Modern marking materials offer significant advantages over paint such as dramatically increased visibility and/or reflectance, improved durability, and temporary removable marking options. Examples of modern pavement marking materials are thermoplastic, pavement marking sheet materials, tapes and raised pavement markers.
  • Preformed and hot applied thermoplastic materials used as pavement markings or for other indicia possess many advantages compared to paints and other less durable markings. These materials can be used for years. Known materials using high friction aggregates on the surface to improve friction has been known. The surface applied aggregates provide good initial values, however as the surface is worn due to traffic, the skid resistance decreases. After surface layers containing anti-skid materials become worn out these aggregate materials loose their effectiveness and become slippery because they do not contain high friction particles (of sufficient size to provide good skid properties).
  • Current thermoplastics include small particulate aggregate to improve the skid-resistant properties of the markers. However, over time, it has been shown that when such particulates are too small, they become worn too quickly and thus do not provide sufficient skid-resistance for high traffic areas. Today's thermoplastic materials do not include properties of long-term skid resistance and reduced tire tracking. In addition today's preformed thermoplastic decorative patterned materials do not include both the properties of facilitated assembly via an adhesive spray and long-term skid resistance and reduced tire tracking.
  • A review of these issues demonstrates the need for thermoplastic products that both reduces tire tracking and improves long term skid resistance once the marking product has been installed on the road surface and also ensures that the integrity of the product (and pattern if so desired) is maintained during handling and installation.
  • DESCRIPTION OF RELEVANT ART
  • U.S. Pat. No. 3,958,891 to Eigenmann, Ludwig, and not assigned, describes an aggregate for securing in a layer of material which is used to form a traffic-regulating indicium, so as to improve the nighttime visibility characteristics and anti-skid characteristics of the traffic-regulating indicium. The aggregate comprises a core body surrounded at least partially by a mass of shock-absorbent binder substance and a plurality of elements that improve either nighttime visibility or anti-skid properties, or both. The elements are arranged in and bound by the binder substance such that the latter substantially fills the interspaces between at least the majority of adjacent pairs of the aforementioned elements, some of which being arranged adjacent to an external surface of the mass so as to impart a roughened texture to the external surface, thereby permitting the aggregate to be firmly secured in the traffic-regulating indicium. The remainder of the elements are distributed among different levels interiorly of the mass so that progressive wear of the aggregate and concomitant detachment of elements from the aggregate causes exposure of others of the elements, thereby conveying long-term durability to the traffic-regulating indicium.
  • U.S. Pat. No. 4,020,211 to Eigermann, Luwig and not assigned describes a new material adapted to be laid down and adhesively secured on a road surface to provide a traffic regulating sign with the material which has an upper surface exposed to traffic and provided with a plurality of sharp tips projecting above the surface for imparting good non-skid properties thereto, the new material comprising an upper layer adjacent to the upper surface, at least partially embedding hard particles to form sharp tips and consists of a polymeric resin having a high molecular cohesion such as a polyamide resin, a polyurethane resin or a polyterephthalic resin, thereby adding improved wear resistance properties to non-skid and high visibility properties.
  • U.S. Pat. No. 4,937,124 to Pafilis, Michail and not assigned, describes a nonskid element as an antislipping means on a carpet-like floor covering. The nonskid element is a web that includes a plain bottom wall, and the bottom wall includes a covering with band-like holding pins.
  • U.S. Pat. No. 5,077,117 to Harper, et. al., describes a pavement marking material comprising a flexible base sheet that is conformable to an irregular pavement surface. A durable, wear-resistant, polymeric top layer is adhered to one surface of the base sheet. The top layer is capable of undergoing brittle fracture at a temperature from 0 degrees Centigrade to 45 degrees Centigrade such that when the base sheet conforms to an irregular surface the top layer readily forms ruptures to relieve stress build-up in the top layer as the regions of the top layer defined by the ruptures remain adhered to and follow the conformance of the base sheet. A plurality of particles are embedded in and protrude from the top layer. The particles comprise retroreflective beads and skid-resistant granules. In a preferred embodiment, the top layer is characterized by a Young's modulus of from about 50,000 psi to about 300,000 psi, and a percent elongation at break of from about 4% to about 35%.
  • U.S. Pat. No. 6,217,252 to Tolliver, Howard R, et. al., and assigned to 3M, describes a method for marking a transportation surface in which the surface is heated to a temperature above the ambient temperature and a finely-divided, free flowing, flame-sprayable, powder binder material selected from the group consisting of acrylic polymers and copolymers, olefin polymers and copolymers having a number average molecular weight greater than 10,000, urethane polymers and copolymers, curable epoxy resins, ester polymers and copolymers, and blends thereof is melted or substantially softened. The molten or softened binder is then applied to the surface with a particulate topcoat or particulate filler selected from the group consisting of reflective elements; skid-resistant particles, magnetizable particles and mixtures thereof, and finally the applied materials are allowed to cool to form a marker in which the binder adheres directly to the surface.
  • U.S. Pat. No. 3,935,365 to Eigenmann, Ludwig, and not assigned, describes a tape material for securement to primer layers provided on roadway pavements so as to form traffic-regulating indicia on the latter. The tape material comprises a first layer that contains a polymeric binder having high molecular cohesion and one surface adapted to face towards a roadway pavement and another surface adapted to be exposed to traffic, a plurality of hard particles having a minimum of about 6 on the Mohs' Hardness Scale, some of which should have a sharp tip, distributed among various levels of the aforementioned first layer, and a second layer adapted to be secured to a primer layer on the roadway pavement bonded to one surface of the first layer. The second layer is compatible with the first layer so that a firm bond is formed between them. It is also compatible with the primer layer so that a bond forms between them when the tape material is placed on the primer layer. This tape material imparts good anti-ski properties to a traffic-regulating indicium formed therewith due to the presence of the tips of the hard particles, which provide gripping areas when exposed. It is also an effective skid-resister during wear of the traffic-regulating indicium due to the distribution of the hard particles among various levels of the first layer, which enables fresh hard particles to become exposed as hard particles next to the latter are removed by wear.
  • U.S. Pat. No. 5,053,253 to Haenggi, Robert, et. al., and assigned to Minnesota Mining and Manufacturing Company, describes a method of producing skid-resistant substrate marking sheet in which a base sheet is provided and an upward face of the base sheet is coated with a liquid bonding material. A plurality of ceramic skid-resistant spheroids is embedded in the liquid bonding material, wherein the ceramic spheroids are characterized by having rounded surfaces and no substantial points and characterized by Krumbein roundness of at least 0.8. The liquid bonding material is then cured to a solid adherent polymeric matrix coating with the ceramic skid-resistant spheroids partially embedded, wherein the spheroids comprise a fired ceramic made from various raw materials.
  • U.S. Pat. No. 5,094,902 to Haenggi, Robert, et. al., and assigned to Minnesota Mining and Manufacturing Company, describes a skid-resistant, surface marking material, comprising a polymer matrix phase having a top surface and a plurality of opaque, skid-resistant ceramic spheroids partially embedded in and protruding from the top surface of the polymer matrix phase, wherein said ceramic spheroids have rounded surfaces and no substantial points, and wherein said ceramic spheroids have a Krumbein roundness of at least 0.8.
  • U.S. Pat. No. 6,679,650 to Britt, Jerry, et. al., and assigned to Ennis Paint Incorporated, describes a marked pavement system comprising a pavement surface, a first marking stripe adhered to the top of the pavement surface with a thickness of at least about 40 mils to about 110 mils and comprised of a solidified thermoplastic resin composition with a black pigment, and a second marking stripe adhered to the surface of the first marking stripe with a thickness of at least 40 mils to 750 mils. The second marking stripe should be narrower than the first marking stripe and comprised of a solidified thermoplastic resin composition with a pigment that visibly contrasts with the first marking stripe, wherein the marked pavement system is highly visible during the daylight hours and during periods of rain.
  • U.S. Pat. No. 5,536,569 to Lasch, James E., et. al., and assigned to Minnesota Mining and Manufacturing Company, describes a conformable pavement marking with a top surface useful as a marking indicium and a bottom surface, the marking sheet comprising a conformance layer with a thickness of 75 to 1250 micrometers of a composite material. The composite material should include 50 to 85 volume percent of a ductile thermoplastic polymer selected from the group consisting of polyethylene, polypropylene, polybutylene, ethylene copolymers, polyvinylidene fluoride, polytetrafluoroethylene, polyvinyl polymers, polyamides, and polyurethanes, and 15 to 50 volume percent mineral particulate with a mean particle size of at least 1 micrometer. The conformance layer requires, when tested at 25 degrees Celsius using a standard tensile strength apparatus, not more than 35 Newtons force per centimeter of width to deform a sample to 115% of the original sample length when tested at a strain rate of 0.05 sec-1. The top layer is distinct from the conformance layer, 80-250 micrometers thick, and is made of a thermoplastic polyolefin.
  • U.S. Pat. No. 6,790,880 to Purgett, Mark, et. al., and assigned to 3M, describes a pavement marking comprising a binder having polyurea groups, wherein the binder is prepared from a coating composition comprising one or more aliphatic secondary amines, one or more polylsocynanates, and at least about 15 weight percent non-soluble material based on the weight of the final dried coating, and reflective elements. The patent also discloses the pavement marking wherein the binder is a sprayable, two-part coating composition.
  • U.S. Pat. No. 6,116,814 to Dietrichson, Stein, and assigned to Rieber & Son, Division Nor-Skilt, describes a method for applying markings or signs on a surface in which a primer layer comprising an uncured plastic material with two or more components is applied to the surface, a heated mass comprised of a thermoplastic material is laid down on the primer layer, and the curing of the primer layer is initiated by the heat of the aforementioned heated mass.
  • U.S. Pat. No. 3,664,242 to Harrington, Thomas, et. al., and assigned to Minnesota Mining and Manufacturing Company, describes a method for forming a marking on a roadway that is ready to bear wheeled road traffic within seconds after application. First, the surface of the roadway is momentarily heated to a temperature between 150 and 500 degrees Fahrenheit. Next, the thus-heated roadway is projected toward a marking material that comprises a continuous stream of solid particles that are capable of passing a screen of about 20 mesh with at least about 80 weight percent being retained on a screen of about 200 mesh, are non-tacky, non-blocking, free-flowing, and solid at temperatures up to about 120 degrees Fahrenheit, and include a coloring agent in an amount sufficient to color a marking formed from the marking material and an organic thermoplastic phase that accounts on the average for at least about 25 volume percent of the marking material and principally comprises a polyamide condensation product of polycarboxylic acid and polyamine. Finally, the individual particles are heated as the proceed toward the roadway to a temperature above 150 degrees Fahrenheit sufficient to at least soften a major portion of the organic thermoplastic phase of the particles before they reach the pavement, the heated condition of the roadway and the particles being such that the particles wet and bond rapidly to the surface of the pavement and coalesce into a film, which subsequently becomes solid, non-tacky, and capable of bearing wheeled road traffic without tracking.
  • Great Britain Patent Application No. GB 2429978A to Aubree, Barry Mark, and assigned to Barry Mark Aubree, describes a method of producing a thermoplastic road-marking composition that comprises mixing an opaque pigment, a translucent particulate thermoplastic material and reflective glass beads such that when the thermoplastic material is subsequently melted to bind the composition and the composition is laid as a marking, the glass beads on the visible surface of the markings are not substantially obscured by the opaque pigment. The application also presents a thermoplastic road-marking composition comprising a mixture of a particulate filler material, a pigment, a translucent thermoplastic material and reflective glass beads wherein the pigment clings to the filler material and the reflective glass beads are generally clear of the pigment. Accordingly, the thermoplastic road-marking immediately has retroreflectivity without the requirement for an additional operation of adding glass beads to the surface of the marking and without the need to let the road-marking wear before it becomes retroreflective.
  • WIPO Patent Application No. WO03064771A1 to Hong, Le Hoa, et. al., and assigned to Avery Dennison Corporation, describes a method for securing a preformed pavement marking construction with a top surface and at least one perimeter edge to pavement with a relatively flat roadway surface. The method includes adhering the preformed pavement marking construction the roadway surface, providing a curable structural adhesive, and applying the curable structural adhesive to the at least one perimeter edge such that the curable structural adhesive overlaps a portion of the top surface of the preformed pavement marking construction at its at least one perimeter edge and a portion of the roadway surface. Finally, the curable structural adhesive is cured to form a traffic-bearing top surface extending between the roadway surface and the preformed pavement marking construction.
  • The disclosed review of the relevant art shows the need for a thermoplastic pavement marking method using an adhesive (sprayable or otherwise) that maintains the integrity of the pattern and a thermoplastic pavement marking composition that includes large grit size aggregate to improve long term skid resistance and reduce tire-tracking.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a diagram of a type of preformed thermoplastic pavement marker, which is more fully described below.
  • DETAILED DESCRIPTION OF THE DRAWINGS
  • FIG. 1 illustrates a typical partial decorative pavement marking pattern (10) for application to concrete, asphalt or other suitable substrates. Marking pattern (10) is a brick and mortar pattern used herein for illustration purposes but as would be understood various other thermosetting and thermoplastic patterns are commercially available such as (90) herringbone, cobblestone, pavement slabs, horizontal signage, logos and other designs. Also, while many colors are available for the pavement marking patterns, typically different sections of each pattern are of different colors, such as a “light” grid or mortar color and a “darker” brick or insert color. The marking patterns typically consist of two or more sections.
  • Preferred marking pattern (10) shown for demonstration purposes consists of two separate thermoplastic sections, first section (11) represents a grid or mortar joint and second section (12) represents a brick or insert (14) with borders (18) as represented. Sections (11) and (12) are generally formed independent of each other due to the differences in color. Pavement marking pattern (10) is planar and is conventionally formed from a standard thermoplastic. The top portion (11) of the marking pattern is bordered. Large aggregates (20) are shown throughout the marker patterns.
  • SUMMARY OF THE INVENTION
  • The present disclosure describes a preformed thermoplastic pavement marking or hot melt applied material with improved long term skid resistance and reduced tire tracking once the pavement marking has been adhered to road surfaces or other solid substrates. The need exists to produce preformed thermoplastic pavement marking materials with improved skid resistance, especially for use in wet conditions and over long term use to reduced tire tracking—a real detriment to the usefulness of thermoplastic pavement markings in locations where they are desirable. The preformed thermoplastic material of the present invention is comprised of about 20% binder and 80% “intermix”, where the intermix includes non-organics such as silica, calcium, and other inorganic pigments as well as large high friction aggregate capable of passing through sieves sizes of about 4 to about 12 together with somewhat smaller aggregate that is applied to the surface either prior to, or during installation. The surface applied anti-skid materials provide high initial friction properties, while large size aggregate in the intermix provides long term skid resistance and improves initial friction properties by creating an appropriately textured surface.
  • To achieve the desired traction and friction properties it should be recognized that there is a difference between slip resistance, which relates to traffic traveling over the pavement markers at a slow speed and to pedestrian traffic traveling over the same pavement marker surfaces and related to the static COF (coefficient of friction). Skid resistance relates, however to traffic traveling over the pavement markers at high speed, and depends on surface texture. Skid resistance is more applicable to the type of vehicular traffic.
  • Common test methods for measuring the effectiveness of these pavement markers for slip and skid resistance include BPN (ASTM E303), which is the most commonly used test methodology but does not reflect performance at high speeds and does not provide for measuring static COF values.
  • Instead, the “Locked Wheel Test” which produces “FN” or Friction number and described by ASTM E274 is used by many states within the United States and provides a methodology for measuring friction values at high speeds, simulates real traffic conditions, and requires actual road installation. There are also other test methods for measuring friction at high speeds. Results from different test methods can be normalized or combined using the IFI (International Friction Index, ASTM E1960) which provides for combining friction and texture indices (F60 and Sp).
  • The required materials for the present invention to achieve both the necessary slip and skid resistance are those that contain high friction large aggregates in the intermix with a weight percent content of from 5 percent to 65 percent. The optimal size of the large aggregates is from about 4 to about 16 grit depending on the specific thickness of the thermoplastic sheets that contain the marker patterns—confirm sizes The present invention also includes cases where the thermoplastic road marker patterns contain surface applied large aggregate in a range from about 14 to about 20 grit Product using small particle aggregate sizes (approximately 24 grit or mesh) covered the surface area of the thermoplastic marking sheets more effectively, however, these aggregates did not provide the required skid or tire track resistance.
  • It has been shown that it is possible to use single grit size aggregate in the intermix. The use of an intermix of different grit sized aggregates in different proportions based on the need for the future use of different materials (larger sizes for thicker and larger thermoplastic sheets and smaller aggregates for narrow strips) is also part of the present disclosure.
  • The aggregates used primarily exhibit a Mohs hardness of greater than 6, including corundum, quartz, granite, calcined clay, nickel slag, silicon dioxide and others (trade names of such materials include Mulcoa grades 47, 60 and 70, AlphaStar®, Ultrablast®, and Alodur® which provide hardness ratings in the range of 6.5 to 9). A portion of the intermix used with the thermoplastic road marking includes 16 grit size aggregate also with a hardness in the Mohs scale reading of greater than 6, which has never been tried before in preformed or hot melt applied thermoplastic surface applications, and has resulted in improved friction.
  • An additional desired result is improved overall skid resistance of the preformed thermoplastic markers without any associated discoloration. The aforestated special aggregates also improve the coefficient of sliding friction (COF) as determined per the ASTM E274 test. As the COF decreases below a certain level on the surrounding asphalt, a small wheel grabs onto the asphalt and if the COF is reduced on the pavement marking too much, undesirable skidding will occur. It is desirable that the COF of the preformed or hot melt thermoplastic match or be greater than the road pavement surface. The COF, in this case, as measured per ASTM E274 requires using a small cart pulled behind a car with a wheel attached to the bottom of the cart that rides at the speed of the car, thus touching the pavement surface, which eventually results in locking the wheel, thereby allowing for measurement of the force of the cart on the surface.
  • In this case, the result of using large particle aggregates is anti-intuitive, in that as there is more “gripping” to the thermoplastic marker surface adhered to the underneath pavement surface, the traffic that travels over this maker pavement surface with the special aggregate results in providing less tire tracking and skid marks. Tire tracking is measured by the size and number of undesirable resultant markings caused by traffic as well as discoloration of the thermoplastic marking surface. The reduction in COF does, however, correlate with increasing skid and when the COF increases, this will correlate with decreasing skid.
  • Therefore, a surprising result found during the course of experimentation and resulting in an important embodiment of the present application is that these thermoplastic marking surfaces stay cleaner and possess less tire tracking than marking surfaces without the special large aggregate particles described above.
  • There is a strong need in the industry to provide a layer of preformed thermoplastic so that these marking surfaces are skid resistant and are used for any crosswalk material. There is also a requirement that the skid resistance (which is quantified by friction number) also provides tire tracking reduction.
  • An additional embodiment and surprising result is that in the past, without the use of these large aggregate materials, the wheel path or track is almost always darker in the section of the surface where the vehicle travels over the marking, so that normal free rolling traffic which passes over the thermoplastic pavement markers will cause darkening. In the case of the present invention, this is not true and this undesirable result has been eliminated. The turning traffic, which causes more tire shear, also does not cause darker tire tracking.
  • In the present invention, the use of uniform particulate material or blends of particulate materials for the aggregate with differing hardness values, providing more economical solutions, can be introduced into the intermix during formulation. The introduction of these blends usually occurs prior to extrusion and completion of the thermoplastic pavement marking. The aggregates and other particles such as glass beads, including type 1 and type 3 glass beads, and the inorganic choices stated above can also, however, be dropped on the hot material during installation and completely embedded into body of the thermoplastic marking material in that fashion. The preformed thermoplastic surface marking product can be applied using pressure sensitive adhesives as well as by flame torching.
  • The resultant properties of the (once applied) thermoplastic marking surfaces were measured using International Friction Index (IFI) consisting of two parameters:
      • F60—calibrated friction at 60 km/h calculated from DFT20—friction measured at 20 km/h
      • Sp—speed constant that depends on surface texture presented as MPD (mean profile depth, mm).
  • Materials without large high friction aggregate have an F60 of about 0.07 to about 0.10 and an MPD of 0.15 mm to about 0.3 mm. Depending on the aggregate size used in the present invention, when the intermix becomes exposed, the F60 increases to between about 0.17 to about 0.4 and the MPD to between about 0.50 mm to about 0.75 mm. For comparison hot mix asphalt has an F60 value of about 0.25 after being exposed to traffic extended lengths of time.
  • In addition, in recent years increasing numbers of municipalities, office complexes, shopping centers and other commercial developments have utilized thermoplastic pavement markings with various patterns and designs to guide, decorate, and protect high traffic areas such as highways, pedestrian crosswalks, parking lots and business entrances. Such patterns may include a first section or grid, for example to represent the mortar joints in a “brick” design and a plurality of second sections or “bricks” which are coplanar therewith, usually in a color different from the mortar color. The second section or bricks which are separately manufactured are inserted into the first section or grid before application of the pattern to the pavement. Various two section marking patterns are commonly available such as: herringbone, standard brick, cobblestone, paving slabs and many other designs. Marking patterns with more than two sections are also commonly available such as horizontal highway and street signage, logos and many others.
  • As hereinbefore mentioned, these marking patterns consist of two or more independent sections which must be carefully assembled and handled before applying to pavements such as asphalt, concrete or other suitable substrates. These marking patterns are placed at desired locations such as road crosswalks, intersections, parking lots or other sites. In some cases heat is then applied to soften the pavement marking pattern causing it to firmly adhere to the substrate. Various adhesives can also be used to adhere the marking pattern to the substrate.
  • While the purchase of such pavement marking patterns is relatively inexpensive, much time and labor is devoted to the assembly and application of the pattern to the substrate. Most patterns consist of two or more sections which are independently formed for manual assembly at the job site and time and effort is needed to assemble and maintain the integrity of a pattern before the heat treatment. Usually the pattern placed on the substrate must be moved manually for adjustment purposes. During such movement, the independent sections in the pattern inadvertently become unaligned, requiring reinsertion or realignment. If the realignment is not precisely accomplished, the marking pattern will have lost its integrity and the entire pattern must be removed manually from the substrate, the substrate cleaned and a second attempt at the application made with the reinserted or new marking pattern. This re-application results in extra time, labor, and materials. In the past, to maintain the integrity of the marking pattern before the heat treatment and during the handling and placement, “spot adhesives” have been used which remain somewhat “tacky” after being applied to the bottom of the patterns at the grid intersections to maintain pattern integrity. However, these small adhesive circles or “spots” are generally a different type of polymer than the marking pattern and can prevent proper attachment and easy movement of the marking pattern on the substrate at the spot adhesive locations before and during the heat application of the marking. Also, certain spot adhesives are not compatible with the plastic materials from which the patterns are formed and can cause the pavement marking sections to separate from the substrate after the heat application, as only a weak bond is formed with the substrate.
  • The major object of the present invention is to provide for long term skid resistance and reduced tire tracking through the addition of large grit size aggregate. The above stated objectives are realized by providing a conventional pavement marking pattern formed of a thermosetting or thermoplastic which may have two or more sections, manually joined by bridging the bottom surface thereof with an adhesive having substantially the same temperature softening point as the sections of the marking pattern. The adhesive can be sprayed primarily along the intersections of the pattern to cover a percentage (approximately from 5% to 90%) of the patterned bottom surface area while bridging the intersections. The more intricate the pattern (with more joints or intersections) the greater the percentage of adhesive coverage required. The spray adhesive can be a typical polyamide, EVA based hot melt adhesive or other, such as styrene-isoprene-styrene copolymers, styrene-butadiene-styrene copolymers, ethylene ethyl acrylate copolymers, and polyurethane reactive, and preferably consists of a hot melt polyamide resin based adhesive which is sprayed in a circular or spiral string like configuration at a temperature at or above its softening point. The sprayed hot adhesive strikes the marking pattern and adheres, bridging and bonding the pattern sections to maintain pattern integrity during subsequent handling. Uni-Rez 2633 as sold by Arizona Chemical Company of P.O. Box 550850, Jacksonville, Fla. 32225 is the main ingredient in the preferred hot melt adhesive. The preferred hot melt adhesive is formulated with Uni-Rez 2633, ester modified rosins, fillers, extenders, levelers and other conventional components.
  • In a typical manufacturing process, various sections of a pavement marking pattern (e.g. a brick and mortar pattern or any other desired pattern) are factory assembled and while in assembled form, the bottom of the pattern is sprayed with the hot melt adhesive described above using preferably spray gun model: Hysol-175-spray as manufactured by Loctite Corporation of 1001 Tout Brook Crossing, Rocky hill, Connecticut 06067, having various pressures and nozzle settings to select from, depending on the viscosity of the particular adhesive employed. A circular or spiral string-like adhesive configuration is preferred for the spray.
  • Once the sprayed hot melt adhesive has cooled, the grid and inserts are suitably bridged and joined and the pavement marking pattern is packaged for shipment. Upon receipt at the job site, the packages are opened and after the intended substrate, usually asphalt or concrete is properly cleaned and swept, the marking pattern is then placed on the substrate without concern of disassembly during handling, movement and adjustment. Once suitably placed, a heat application is delivered from a conventional source which softens the marking pattern and the underlying sprayed adhesive, both of which have the approximate same temperature softening point to thereby affix the pavement marking pattern to the substrate. Time and labor are thereby saved as the marking pattern sections have been adhered to form a unified pattern by the hot melt adhesive.
  • As stated above, the present invention includes larger grit size aggregate than is normally used in similar preformed thermoplastic pavement marking products. Specifically, the aggregate should be between 8 and 12 mesh (grit) in size and may be comprised of quartz, corundum, crushed gravel, crushed granite, or any combination thereof. The aggregate used may also measure 6 or greater on the Mohs Hardness Scale. This larger grit size improves the skid resistance properties of the pavement marker and also significantly reduces tire tracking in comparison to other similar products, because it ensures that the product wears down more slowly, conveying greater durability and also longer term skid resistance—often through the end-of-life of the applied preformed thermoplastic.
  • Other advantages achieved using these working examples include the fact that when the surface applied aggregate provides high initial skid resistance using aggregate in the intermix, the surface maintains high skid properties during the entire period of use of the pavement markings and al so provides increasing skid resistance.
  • Another unexpected effect of the use of large aggregate intermix within the preformed thermoplastic or hot melt applied markers, is the decrease or essentially complete elimination of tire skid marks on the thermoplastic marking surfaces. Bigger aggregates leading to reduction or elimination of tire tracking was also an unexpected result.
  • Among additional objectives of the invention include providing a relatively inexpensive pavement marking pattern having two or more sections in which the sections are joined by use of an applied adhesive and to provide a method for forming a pavement marking pattern which allows cost efficient factory assembly of the pattern and which prevents dislodging and separation of the pattern sections during handling, transportation and application.
  • Other objects of the invention are to provide an adhesive which can be conveniently sprayed onto the back of pavement marking patterns which will sufficiently adhere thereto and prevent separation of the sections during handling, and not deteriorate the bond between the pavement marking pattern and the substrate and to provide a method for easy application of the adhesively sprayed marking pattern to the substrate.
  • It should be understood that although examples are given it should not be construed that these are examples provide the only examples of the invention and that variations of the present invention are possible, while adhering to the inventive concept herein disclosed.
  • Incorporation of large grit aggregate into the pavement marking pattern allows for manufacturing with decorative markings on the surface of the preformed thermoplastic sheets that provides excellent anti-skid properties.
  • WORKING AND COMPARATIVE EXAMPLES Test Methodology
  • The surface texture of the preformed thermoplastic is measured using a laser-based Circular Track Meter (CTM) with a vertical resolution of 3 microns (μm). The texture is reported in terms of the Mean Profile Depth (MPD) in millimeters. Then the friction of the surface is measured using a Dynamic Friction Tester (DFT). In the DFT, a disk with three rubber sliders attached to the disk rotates at tangential velocities up to 90 km/h then drops onto the surface. The torque generated, as the disk slows once it engages the surface, provides an indication of the friction at various speeds. The output from the DFT is reported as unitless DFT numbers at various speeds (typically 20, 40, 60 and 80 km/h). The DFT and CTM instruments are manufactured by NIPPO Sangyo Co. (Japan). Together, the results from the CTM and DFT are used to calculate a value known as the International Friction Index (IFI, F60). The IFI can also be estimated by other types of equipment including the widely used ASTM E274 towed friction trailer test method as well as the British pendulum test method and results of different test methods have been found to correlate.
  • Working Example 1
  • An example of the hydrocarbon resin composition for the preformed thermoplastic of the present invention is provided as follows:
  • Material composition
    Escorez 1315-   10%
    C5 hydrocarbon resin-    5%
    Refined mineral oil-    2%
    Escorene EVA MV 02514    3%
    Fumed silica-  0.5%
    Titanium dioxide (Rutile)-   10%
    Glass beads Type 1-   30%
    Corundum Grit
    12   20%
    CaCO3- 19.5%
  • The material composition has a softening temperature (Ring and Ball) of 118° C. measured according to ASTM D36-06 entitled “Standard Test Method for Softening Point of Bitumen (Ring-and-Ball Apparatus)”.
  • The thermoplastic material composition was extruded using a casting die to create 125 mil thick preformed thermoplastic sheets. As the sheets were extruded glass beads were dropped onto the melted thermoplastic material. Subsequently at a location further from the die exit on the manufacturing line, corundum grit 16 was added to the thermoplastic and indented visual heating indicators were applied to the surface.
  • Using a Flint-2000 propane torch, the material composition was applied on two square cement boards (20 inches by 20 inches). One of the panels was tested after application, another was abraded (sand blasted) to expose the intermix aggregate.
  • The properties of material tested with DFT and CTM as described above are provided in Table 1 below;
  • TABLE 1
    DFT, F60, and MPD Values for Working Example 1
    Example 1 DFT20 F60 MPD, mm
    As Applied 0.733 0.425 0.61
    After Abrasion 0.853 0.455 0.71
  • Working Example 2
  • An example of preformed thermoplastic material based on an alkyd resin composition is provided as:
  • Material Composition for Working Example 2
    Polyamide resin Uni-Rez 2633  7.2%
    Modified rosin resin Sylvacote 4981-  6.8%
    Phthalate plasticizer-  2.8%
    PE based wax-  2.0%
    Fumed silica-  0.5%
    Corundum grit 16   30%
    TiO2-   10%
    CaCO3- 40.7%
  • The material composition softening temperature (R&B) is 124° C.
  • The material composition was extruded, applied on cement boards, and tested similarly to the Example 1 except that corundum grit 24 was dropped on the surface during extrusion. The results are provided in Table 2 below:
  • TABLE 2
    DFT, F60, and MPD Values for Working Example 2
    Example 2 DFT20 F60 MPD, mm
    As Applied 0.517 0.266 0.463
    After Abrasion 0.794 0.379 0.51
  • Working Example 3
  • Alkyd type base layer for hot applied formulation
    Modified rosin resin Sylvacote 4981-   8%
    Modified rosin resin Sylvacote 7021-   9%
    Castor oil based plasticizer-   3%
    PE based wax- 2.0%
    Quartz mix with grit 12 to 20 gradation  30%
    TiO2-  10%
    CaCO3-  38%
  • The material composition softening temperature (R&B) is 121° C.
  • The formulation, after mixing, provided 4-inch wide draw-down plaques. No anti-skid aggregate was applied to the surface of the plaques. While still warm and sufficiently flexible the draw-down plaques were applied to the cement boards covering the entire 20×20 inch area and creating sufficient space for testing, using CMT and DFT testers. One of the boards was tested after application and another after abrasion by sand blasting to expose intermix aggregate.
  • TABLE 3
    DFT, F60, and MPD Values for Working Example 3
    Example 3 DFT20 F60 MPD, mm
    As Applied 0.15 0.13 0.34
    After Abrasion 0.70 0.33 0.46
  • Working Example 4
  • An application of preformed thermoplastic insignia using adhesive backed preformed thermoplastic sheeting was also tested. Pressure sensitive adhesive (PSA) was applied to the sheets of material made according to the Example 2 and pre-cut in the shape of AASHTO approved letters. The letters were applied at the intersection to create a warning “STOP” sign using a READYMARK® tamper. The friction properties of these preformed thermoplastic sheets yielded results similar to the “as applied” properties presented in Example 2.
  • Working Example 5
  • A decorative brick pattern was made using colored and patterned thermoplastic sheeting manufactured according to the Example 1 including a dark red color for bricks and a white color for the grout. The sections of the patterned thermoplastic sheeting were joined together using EVA based hot melt adhesive. Sheeting was applied to the crosswalk and exhibited properties similar to the “as applied” properties presented in Example 1.
  • Working Example 6
  • Alkyd based material with blended large aggregate intermix
  • Material Composition for Working Example 6
    Polyamide resin Uni-Rez 2633-  7.5%
    Modified rosin resin Sylvacote 4981-  6.5%
    Phthalate plasticizer-  3.2%
    PE based wax-  1.6%
    Fumed silica-  0.5%
    Corundum grit
    12    5%
    Mulcoa 47, gradation 8-20 grit   25%
    TiO2-   10%
    CaCO3- 40.7%
  • Material was processed according to Example 1, with a 90 mil thickness and corundum grit (or mesh size) 24 was applied during extrusion.
  • TABLE 4
    DFT, F60, and MPD Values for Working Example 4
    Example 6 DFT20 F60 MPD, mm
    As Applied 0.47 0.248 0.46
    After Abrasion 0.754 0.392 0.51
  • Comparative Example 1
  • As an illustration, Comparative Example 1 uses smaller aggregate in the intermix. The preformed thermoplastic was identical to that of Working Example 2, except that the Corundum grit 30 was used in the intermix and as a drop on instead of corundum grit 16.
  • Material Composition for Comparative Example 1
    Polyamide resin Uni-Rez 2633-  7.2%
    Modified rosin resin Sylvacote 4981-  6.8%
    Phthalate plasticizer-  2.8%
    PE based wax-  2.0%
    Fumed silica-  0.5%
    Corundum grit 30   30%
    TiO2-   10%
    CaCO3- 40.7%
  • TABLE 5
    DFT, F60, and MPD Values for Comparative Example 1
    Comp. Example 1 DFT20 F60 MPD, mm
    As Applied 0.42 0.192 0.28
    After Abrasion 0.36 0.172 0.26
  • The data shown above, in Table 5 when compared with the previous Tables (1-4) clearly indicates the (heretofore unexpected) improvement over the small size corundum after abrasion (wear) for DFT20 (0.70 vs. 0.36) and calibration friction number F60 (0.35-0.45 vs. 0.17).

Claims (15)

1. A method of making a preformed or hot applied thermoplastic marking composition comprising a planar top surface portion and a planar bottom surface portion that are coplanar to each other, wherein said bottom surface portion is directly applied to a substrate via application of heat or pressure or both heat and pressure and wherein said top surface portion comprises an intermix that exits throughout said thermoplastic composition and includes large grit size aggregate in the range of about 8 to about 20 mesh or grit size, thereby reducing or eliminating tire tracking while also improving long-term skid resistance.
2. The method of making the thermoplastic composition of claim 1, wherein said aggregate comprises quartz, granite, corundum, calcined clay, metal slag or any combination of said quartz, granite, corundum, calcined clay, or metal slag.
3. The method of making the thermoplastic composition of claim 1, wherein said thermoplastic marking composition is a sheathing, said sheathing comprising anti-skid resistance materials including said large grit size aggregate with and without retroreflective glass beads, wherein said aggregate and glass beads are either in said intermix or dropped onto said top surface portion before, during, or after application to a substrate.
4. The method of making the thermoplastic composition of claim 1, wherein said thermoplastic sheathing with said large grit size aggregate and with and without retroreflective glass beads are either in said intermix or dropped onto said top surface portion before, during, or after application to a substrate and wherein additional particles are dropped onto said top surface portion, wherein said particles are aggregates, glass beads, including type 1 and type 3 glass beads, as well as large grit size aggregate in the range of 8 to 20 mesh or grit size said aggregate comprising corundum, crushed granite, crushed gravel, or quartz, or any combination of said corundum, crushed granite, crushed gravel, and/or quartz.
5. The method of making the thermoplastic composition of claim 1, wherein said large grit size aggregate measures greater than 6 on the Mohs Hardness Scale
6. The method of making the thermoplastic composition of claim 1, wherein said aggregate provides a surface roughness measured using a calibrated friction number F60, across a yielding values of about 0.17 to about 0.40
7. The method of making the thermoplastic composition of claim 1, wherein said aggregate embedded within the surface of said top surface portion provides a surface roughness which is measured as a mean profile depth and wherein said mean profile depth is between about 0.35 to about 0.75 millimeters.
8. The method of making the thermoplastic composition of claim 1, wherein said bottom surface portion comprises an adhesive for bonding said bottom surface portion to any paved surface.
9. The method of making the thermoplastic composition of claim 1, wherein said top surface portion includes patterned markings, wherein said patterned markings are lines, legends, arrows, indicia, including colored surfaces and sections of said surfaces other than or together with a white color.
10. The adhesive of claim 9, wherein said adhesive is sprayable allowing for bridging said intersection on said planar bottom surfaces of said grid section and said insert section forming said unified pavement marking pattern and wherein said adhesive includes ethylene vinyl acetate (EVA) based hot melt or other equivalent hot melt polyamide resins.
11. The adhesive of claim 10, wherein said adhesive has a softening point in a range of 90 degrees centigrade to about 210 degrees centigrade and more preferably in a range of 90 degrees centigrade to about 120 degrees centigrade
12. The adhesive of claim 9, wherein said adhesive comprises a thermosetting adhesive.
13. The adhesive of claim 9, wherein said adhesive comprises a thermoplastic adhesive.
14. The method of making thermoplastic composition wherein said thermoplastic comprises an independent thermoplastic grid section, and an independent thermoplastic insert section, and wherein said insert section resides within said grid section and each said insert section is coplanar, and wherein said grid section and said insert section both comprise a planar top surface portion and a planar bottom surface portion that are coplanar to each other, such that said grid section is in direct contact with and adjacent to said insert section thereby forming an intersection between said grid section and said insert section, and further comprising an adhesive backing layer on said planar bottom surface, said adhesive backing layer bridging and bonding said planar bottom surface to form a unified pavement marking pattern thereby preventing dislodging or separation of said pavement marking pattern during handling, movement, transportation before application of said pre-bonded pavement marking to the top of a pavement surface by application of heat or pressure or both heat and pressure, and further comprising large grit size aggregate in the range of about 8 to about 20 mesh or grit size that reduces tire tracking and improves long-term skid resistance.
15. The method of making the thermoplastic composition of claim 14, comprising said grid and a plurality of inserts, each of said inserts separated by said grid.
US15/645,421 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking Abandoned US20180142435A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US15/645,421 US20180142435A1 (en) 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US10/816,635 US7645503B1 (en) 2004-04-02 2004-04-02 Pavement marking pattern and method
US12/592,458 US9732481B2 (en) 2004-04-02 2009-11-25 Preformed thermoplastic pavement marking and method utilizing large aggregate for improved long term skid resistance and reduced tire tracking
US15/645,421 US20180142435A1 (en) 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US12/592,458 Division US9732481B2 (en) 2004-04-02 2009-11-25 Preformed thermoplastic pavement marking and method utilizing large aggregate for improved long term skid resistance and reduced tire tracking

Publications (1)

Publication Number Publication Date
US20180142435A1 true US20180142435A1 (en) 2018-05-24

Family

ID=44062292

Family Applications (3)

Application Number Title Priority Date Filing Date
US12/592,458 Active 2032-05-01 US9732481B2 (en) 2004-04-02 2009-11-25 Preformed thermoplastic pavement marking and method utilizing large aggregate for improved long term skid resistance and reduced tire tracking
US15/645,421 Abandoned US20180142435A1 (en) 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking
US15/645,785 Pending US20170306576A1 (en) 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Long Term Skid Resistance and Reduced Tire Tracking

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US12/592,458 Active 2032-05-01 US9732481B2 (en) 2004-04-02 2009-11-25 Preformed thermoplastic pavement marking and method utilizing large aggregate for improved long term skid resistance and reduced tire tracking

Family Applications After (1)

Application Number Title Priority Date Filing Date
US15/645,785 Pending US20170306576A1 (en) 2004-04-02 2017-07-10 Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Long Term Skid Resistance and Reduced Tire Tracking

Country Status (11)

Country Link
US (3) US9732481B2 (en)
EP (1) EP2504492B1 (en)
CN (1) CN102325943B (en)
CA (1) CA2781855C (en)
DK (1) DK2504492T3 (en)
ES (1) ES2665960T3 (en)
MX (1) MX353704B (en)
NO (1) NO2504492T3 (en)
PL (1) PL2504492T3 (en)
PT (1) PT2504492T (en)
WO (1) WO2011066355A2 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2020068944A1 (en) 2018-09-25 2020-04-02 Potters Industries, Llc Thermoplastic pavement marking composition

Families Citing this family (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9368367B2 (en) * 2009-04-13 2016-06-14 Sinmat, Inc. Chemical mechanical polishing of silicon carbide comprising surfaces
WO2013043178A1 (en) * 2011-09-22 2013-03-28 Flint Trading, Inc. Anti-skid high retroreflectivity preformed thermoplastic composites for runway applications
US20160362856A1 (en) * 2015-06-09 2016-12-15 Flint Trading, Inc. Alkali Resistant Preformed Thermoplastic Pavement Marking Composition
FR3002083B1 (en) * 2013-02-12 2015-03-13 Commissariat Energie Atomique PHOTOVOLTAIC STRUCTURE FOR PAVEMENT.
US10308816B2 (en) 2014-05-05 2019-06-04 Potters Industries, Llc Coatings for pelletized thermoplastic pavement marking compositions
US9771492B2 (en) * 2014-05-05 2017-09-26 Daniel John Puffer Thermoplastic pavement marking composition and method
FR3024285B1 (en) * 2014-07-28 2016-09-02 Commissariat Energie Atomique ASSEMBLY COMPRISING A PHOTOVOLTAIC MODULE APPLIED ON A CIRCULAR AREA
CA2963559A1 (en) * 2014-10-03 2016-05-26 Flint Trading, Inc. Preformed thermoplastic pavement marking and method for high skid resistance with maintained high retroreflectivity
EP3310966B1 (en) * 2015-06-18 2021-01-27 3M Innovative Properties Company Thermoplastic pavement marking tapes
AU2018290752B2 (en) 2017-06-26 2023-12-21 Ennis-Flint, Inc. Thermoplastic composition for sealing roadway joints
US11242660B1 (en) 2019-02-08 2022-02-08 Preform LLC Preformed reflective line marking for roadways and associated methods thereof
CN115595028B (en) * 2022-10-09 2023-06-09 天途路业集团有限公司 Punctiform coating suitable for road scribing vehicle

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5861206A (en) * 1996-02-19 1999-01-19 Cleanosol International Ab Premanufactured covering consisting mainly of thermoplastic materials for roads, parking areas, etc
US6051297A (en) * 1997-07-16 2000-04-18 3M Innovative Properties Company Self-contrasting retroreflective pavement marking tapes
US20030012599A1 (en) * 2001-06-29 2003-01-16 Magnus Wallgren Markings on roads with a fixed road surface, such as asphalt, concrete or the like for motor vehicles
US20030070579A1 (en) * 2001-10-01 2003-04-17 Hong Le Hoa Preformed thermoplastic pavement marking construction
US20030091794A1 (en) * 2001-09-24 2003-05-15 3M Innovative Properties Company Optical elements comprising a fluoropolymer surface treatment
US6576074B1 (en) * 2001-01-09 2003-06-10 Avery Dennison Corporation Pavement marking system
WO2007143988A1 (en) * 2006-06-15 2007-12-21 Lkf Vejmarkering A/S A pavement marking pattern and a method for its applying

Family Cites Families (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3664242A (en) * 1970-06-15 1972-05-23 Minnesota Mining & Mfg Method for marking roadways
US4020211A (en) * 1971-06-15 1977-04-26 Ludwig Eigenmann Anti-skid and wear resistant road surface marking material
IT1045806B (en) * 1973-01-22 1980-06-10 Eigenmann Ludwig IMPROVEMENT OF HORIZONTAL STREET SIGNALING MATERIALS AND METHODS FOR THEIR PRODUCTION AND RELATED HIGH PERFORMANCE PERFECTED MATERIALS RESISTANCE TO WEAR POSSIBILITY
GB1459273A (en) * 1973-03-12 1976-12-22 Eigenmann Ludwig Anti-skid and retroreflective components for road surface markings
GB2030586A (en) * 1978-07-11 1980-04-10 Pacey B Road marking preformed from a thermoplastic composition
US5053253A (en) * 1988-09-07 1991-10-01 Minnesota Mining And Manufacturing Company Skid-resistant pavement markings
US5094902A (en) * 1988-09-07 1992-03-10 Minnesota Mining And Manufacturing Company Skid-resistant surface marking material
DE8812501U1 (en) * 1988-10-05 1988-11-24 Pafilis, Michail, 5880 Luedenscheid, De
US5077117A (en) * 1990-04-05 1991-12-31 Minnesota Mining And Manufacturing Company Pavement marking material with rupturing top layer
ZA919417B (en) * 1990-12-24 1992-12-30 Minnesota Mining & Mfg Thermoplastic marking sheet
WO1993017188A1 (en) * 1992-02-19 1993-09-02 Minnesota Mining And Manufacturing Company Pavement marking tape
JPH0913487A (en) * 1995-06-26 1997-01-14 Daikichi Suematsu Grating with design
US5672379A (en) * 1995-09-22 1997-09-30 Rohm And Haas Company Method of producing wear resistant traffic markings
NO955174L (en) * 1995-12-20 1997-06-23 Rieber & Soen Method of applying markings or marking to a substrate
AUPO430296A0 (en) * 1996-12-20 1997-01-23 Rogers, Barry Heith Marking composition
BR9714692A (en) * 1997-05-08 2000-10-03 Minnesota Mining & Mfg Pavement marking visually imperceptibly, and process for producing it.
ATE320458T1 (en) * 1997-06-13 2006-04-15 Minnesota Mining & Mfg LIQUID ROAD MARKING COMPOSITIONS
US5941655A (en) * 1997-07-16 1999-08-24 3M Innovative Properties Company Direction-indicating pavement marking having raised protuberances and method of making
EP0950763A1 (en) * 1998-04-16 1999-10-20 Rohm And Haas Company Wear-resistant traffic marking and aqueous traffic paint
US6217252B1 (en) * 1998-08-11 2001-04-17 3M Innovative Properties Company Wear-resistant transportation surface marking method and materials
WO2002038870A1 (en) * 2000-10-30 2002-05-16 Roadway Imaging & Marketing Ltd Flexible display panel for application to vehicular or pedestrian surface
US20030123931A1 (en) * 2001-12-31 2003-07-03 Khieu Sithya S. Matrix element pavement marker and method of making same
US20030147695A1 (en) 2002-02-01 2003-08-07 Hong Le Hoa Method for securing preformed pavement marking constructions
US6679650B2 (en) * 2002-02-12 2004-01-20 Ennis Paint, Inc. Pavement marking system
JP2005344441A (en) * 2004-06-04 2005-12-15 Yorozu Sangyo Kk Display body
GB2429978B (en) 2005-09-09 2009-10-28 Mark Aubrey Barry Thermoplastic compositions for marking roads etc
US7744306B2 (en) * 2007-04-02 2010-06-29 Greer Robert F Preformed thermoplastic indicia for airport runways and taxiways
JP2009013487A (en) * 2007-07-09 2009-01-22 Komatsu Ltd Sliding component and sliding mechanism
US8573882B2 (en) * 2009-11-25 2013-11-05 Robert W. Greer Composition and system for preformed thermoplastic road marking with sequential features

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5861206A (en) * 1996-02-19 1999-01-19 Cleanosol International Ab Premanufactured covering consisting mainly of thermoplastic materials for roads, parking areas, etc
US6051297A (en) * 1997-07-16 2000-04-18 3M Innovative Properties Company Self-contrasting retroreflective pavement marking tapes
US6576074B1 (en) * 2001-01-09 2003-06-10 Avery Dennison Corporation Pavement marking system
US20030012599A1 (en) * 2001-06-29 2003-01-16 Magnus Wallgren Markings on roads with a fixed road surface, such as asphalt, concrete or the like for motor vehicles
US20030091794A1 (en) * 2001-09-24 2003-05-15 3M Innovative Properties Company Optical elements comprising a fluoropolymer surface treatment
US20030070579A1 (en) * 2001-10-01 2003-04-17 Hong Le Hoa Preformed thermoplastic pavement marking construction
WO2007143988A1 (en) * 2006-06-15 2007-12-21 Lkf Vejmarkering A/S A pavement marking pattern and a method for its applying

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2020068944A1 (en) 2018-09-25 2020-04-02 Potters Industries, Llc Thermoplastic pavement marking composition
US11702804B2 (en) 2018-09-25 2023-07-18 Ennis-Flint, Inc. Thermoplastic pavement marking composition

Also Published As

Publication number Publication date
PT2504492T (en) 2018-05-02
CA2781855C (en) 2019-07-02
WO2011066355A3 (en) 2011-10-06
NO2504492T3 (en) 2018-06-23
PL2504492T3 (en) 2018-07-31
CN102325943A (en) 2012-01-18
EP2504492B1 (en) 2018-01-24
WO2011066355A2 (en) 2011-06-03
MX2012006027A (en) 2012-08-01
US9732481B2 (en) 2017-08-15
MX353704B (en) 2018-01-24
CA2781855A1 (en) 2011-06-03
US20170306576A1 (en) 2017-10-26
ES2665960T3 (en) 2018-04-30
US20110123770A1 (en) 2011-05-26
CN102325943B (en) 2015-09-30
EP2504492A4 (en) 2014-07-09
EP2504492A2 (en) 2012-10-03
DK2504492T3 (en) 2018-05-07

Similar Documents

Publication Publication Date Title
US20180142435A1 (en) Preformed Thermoplastic Pavement Marking and Method Utilizing Large Aggregate for Improved Skid Resistance and Reduced Tire Tracking
US20150140294A1 (en) Preformed Thermoplastic Pavement Marking and Method for High Skid Resistance with Maintained High Retroreflectivity
CA2781854C (en) Composition and system for preformed thermoplastic road marking with sequential features
US9080296B2 (en) Alkali resistant preformed thermoplastic pavement marking composition
US3782843A (en) Road surface marking material and marked road
KR20010072396A (en) Wear-resistant transportation surface marking method and materials
US10889947B2 (en) Thermoplastic pavement marking tapes
US9951486B2 (en) Durable debris and alkaline resistant preformed thermoplastic runway pavement marking compositions
US20110059295A1 (en) Retroreflective pavement marking with improve performance in wet night conditions
US20100055374A1 (en) Retroflective pavement markers for wet weather
EP1270820A2 (en) Surface marking for roadways
KR100316083B1 (en) Construction method of anti-slip road
US4080228A (en) Aggregate product and method of applying to surfaces
CA2963559A1 (en) Preformed thermoplastic pavement marking and method for high skid resistance with maintained high retroreflectivity
US20220170218A1 (en) Thermoplastic pavement marking tapes
EP3307823B1 (en) Durable debris and alkaline resistant preformed thermoplastic runway pavement marking compositions
US3106878A (en) Highway markers
US20220098123A1 (en) Marking trafficked pavement substrates using a dry polymer modified cement
EP1177261B1 (en) Road marking material
JPH06104964B2 (en) Light reflective non-slip pavement
Lynch Pavement marking types and application

Legal Events

Date Code Title Description
STPP Information on status: patent application and granting procedure in general

Free format text: DOCKETED NEW CASE - READY FOR EXAMINATION

AS Assignment

Owner name: FLINT TRADING, INC., NORTH CAROLINA

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:GREER, ROBERT W.;YAKOPSON, SIMON;REEL/FRAME:048291/0216

Effective date: 20101021

STPP Information on status: patent application and granting procedure in general

Free format text: NON FINAL ACTION MAILED

STPP Information on status: patent application and granting procedure in general

Free format text: RESPONSE TO NON-FINAL OFFICE ACTION ENTERED AND FORWARDED TO EXAMINER

STPP Information on status: patent application and granting procedure in general

Free format text: FINAL REJECTION MAILED

STPP Information on status: patent application and granting procedure in general

Free format text: ADVISORY ACTION MAILED

STPP Information on status: patent application and granting procedure in general

Free format text: NON FINAL ACTION MAILED

AS Assignment

Owner name: FLINT ACQUISITION CORP., NORTH CAROLINA

Free format text: MERGER AND CHANGE OF NAME;ASSIGNORS:FLINT TRADING, INC.;FLINT ACQUISITION CORP.;REEL/FRAME:054510/0783

Effective date: 20171230

Owner name: ENNIS-FLINT, INC., NORTH CAROLINA

Free format text: MERGER AND CHANGE OF NAME;ASSIGNORS:FLINT ACQUISITION CORP.;ENNIS-FLINT, INC.;REEL/FRAME:054510/0801

Effective date: 20171218

STPP Information on status: patent application and granting procedure in general

Free format text: RESPONSE TO NON-FINAL OFFICE ACTION ENTERED AND FORWARDED TO EXAMINER

STPP Information on status: patent application and granting procedure in general

Free format text: FINAL REJECTION MAILED

STCV Information on status: appeal procedure

Free format text: NOTICE OF APPEAL FILED

STPP Information on status: patent application and granting procedure in general

Free format text: DOCKETED NEW CASE - READY FOR EXAMINATION

STPP Information on status: patent application and granting procedure in general

Free format text: NON FINAL ACTION MAILED

STPP Information on status: patent application and granting procedure in general

Free format text: RESPONSE TO NON-FINAL OFFICE ACTION ENTERED AND FORWARDED TO EXAMINER

STPP Information on status: patent application and granting procedure in general

Free format text: FINAL REJECTION MAILED

STPP Information on status: patent application and granting procedure in general

Free format text: RESPONSE AFTER FINAL ACTION FORWARDED TO EXAMINER

STCB Information on status: application discontinuation

Free format text: ABANDONMENT FOR FAILURE TO CORRECT DRAWINGS/OATH/NONPUB REQUEST