AU627447B2 - Method and apparatus for coating internal cavities - Google Patents

Method and apparatus for coating internal cavities Download PDF

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Publication number
AU627447B2
AU627447B2 AU30444/89A AU3044489A AU627447B2 AU 627447 B2 AU627447 B2 AU 627447B2 AU 30444/89 A AU30444/89 A AU 30444/89A AU 3044489 A AU3044489 A AU 3044489A AU 627447 B2 AU627447 B2 AU 627447B2
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AU
Australia
Prior art keywords
probe
fluid
coating
opening
pumping
Prior art date
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Ceased
Application number
AU30444/89A
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AU3044489A (en
Inventor
Scott Bellinger
Timothy Gaipa
Scott A. Hale
Gary Mulder
Steve Nisbett
Michael W. Prittinen
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MULTECH Inc
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MULTECH Inc
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Publication date
Application filed by MULTECH Inc filed Critical MULTECH Inc
Priority claimed from PCT/US1989/000168 external-priority patent/WO1989006757A1/en
Publication of AU3044489A publication Critical patent/AU3044489A/en
Application granted granted Critical
Publication of AU627447B2 publication Critical patent/AU627447B2/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05DPROCESSES FOR APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05D7/00Processes, other than flocking, specially adapted for applying liquids or other fluent materials to particular surfaces or for applying particular liquids or other fluent materials
    • B05D7/22Processes, other than flocking, specially adapted for applying liquids or other fluent materials to particular surfaces or for applying particular liquids or other fluent materials to internal surfaces, e.g. of tubes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B13/00Machines or plants for applying liquids or other fluent materials to surfaces of objects or other work by spraying, not covered by groups B05B1/00 - B05B11/00
    • B05B13/06Machines or plants for applying liquids or other fluent materials to surfaces of objects or other work by spraying, not covered by groups B05B1/00 - B05B11/00 specially designed for treating the inside of hollow bodies
    • B05B13/0627Arrangements of nozzles or spray heads specially adapted for treating the inside of hollow bodies
    • B05B13/0636Arrangements of nozzles or spray heads specially adapted for treating the inside of hollow bodies by means of rotatable spray heads or nozzles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B15/00Details of spraying plant or spraying apparatus not otherwise provided for; Accessories
    • B05B15/50Arrangements for cleaning; Arrangements for preventing deposits, drying-out or blockage; Arrangements for detecting improper discharge caused by the presence of foreign matter
    • B05B15/58Arrangements for cleaning; Arrangements for preventing deposits, drying-out or blockage; Arrangements for detecting improper discharge caused by the presence of foreign matter preventing deposits, drying-out or blockage by recirculating the fluid to be sprayed from upstream of the discharge opening back to the supplying means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16BDEVICES FOR FASTENING OR SECURING CONSTRUCTIONAL ELEMENTS OR MACHINE PARTS TOGETHER, e.g. NAILS, BOLTS, CIRCLIPS, CLAMPS, CLIPS OR WEDGES; JOINTS OR JOINTING
    • F16B33/00Features common to bolt and nut
    • F16B33/06Surface treatment of parts furnished with screw-thread, e.g. for preventing seizure or fretting

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  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Wood Science & Technology (AREA)
  • Coating Apparatus (AREA)

Description

4cr WOR OPI DATE 11/08/89 APPLN- ID 30444 89 INTERNATIONAL APPLICATION' J P D ATE 07/09/89 PCT NUMBER PCT/US89/00168 (51) International Patent Classification4 (11) International Publication Number: WO 89/ 06757 F16B 37/00, B05B 3/02,9/03 12/04, 13/04, 13/06 Al 15/02, B05D 1/02, 5/08 (43) International Publication Date: 27 July 1989 (27.07,89) 7/22, 724 (21) International Application Number: PCT/US89/00168 (74) Agent: SWEENEY, Charles, Barnes Thornburg, 600 1st Source Bank Center, 100 North Michigan (22) International Filing Date: 13 January 1989 (13.01.89) Street, South Bend, IN 46601 (US).
(31) Priority Application Number: 143,804 (81) Designated States: AT (European patent), AU, BE (European patent), BR, CH (European patent), DE (Eu- (32) Priority Date: 14 January 1988 (14.01.88) ropean patent), FR (European patent), GB (European patent), IT (European patent), JP, KR, LU (Eu- (33) Priority Country: US ropean patent), NL (European patent), SE (European patent).
(71) Applicant: MULTECH, INC. (US/US]; 2108 Shawnee Road, Baroda, MI 49101-0286 Published With international search report, (72) Inventors: PRITTINEN, Michael, W, 2 Woodland Shores, Bridgeman, MI 49108 HALE, Scott, A. 939 Dearborn Circle, Carol Stream, IL 60188 (US).
BELLINGER, Scott 210 East Madison, Wheaton, IL 60187 NISBETr, Steve 914 North President, Wheaton, IL 60187 MULDER, Gary 231 East Maple Street, Villa Park, IL 60181 GAIPA, I Timothy 4037 Meadow Lane, St. Joseph, MI 49085. A
(US).
(54)'itle: METHOD AND APPARATUS FOR COATING INTERNAL CAVITIES (57) Abstract An apparatus for coating a hollow object at precise bands within the internal cavity of the object, and the resulting pro-4 17 duct, Selected portions of the internal cavity (19) of a hollow object, such as a threaded fastener are coated using a rotating probe (170) having at least one opening (176) through which fluid coating material is dispensed by centrifugal force, The i' probe (170) moves vertically up and then down through the fas- 1 e tener while fluid, moved through the probe (170) by a meter- I ing pump is dispensed over a predetermined portion of the path, A computer controls fluid pumping rate, and a vertical movement and rotational speed of the probe (170) to precisely 1 coat a band on the internal cavity (19) of the fastener One o product that can be made by the inventive process is a fastener s nut having threads coated with 'Teflon'. 7 7 JR U j, PUMP i :i j 1:I j j 1Z r iii i'i I ii i I ii i i
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4 _i i i WO 89/06757 PCT/US89/00168 "METHOD AND APPARATUS FOR COATING INTERNAL CAVITIES" BACKGROUND AND SUMMARY Thi La-pplicat, -s a Ci n i a I copending U. S. Patent Application--Seria T No. 07/143,804, filed uary-14, 1988.
This invention relates generally to improvements in fluid dispersing apparatus and methods of applying fluids to precise locations of hollow objects utilizing centrifugal force. One application of the invention is the application of liquid to the internal threads of a fastener nut.
Various coatings of fluid materials are applied to the internal surfaces of hollow objects such as nut type fasteners by a variety of coating systems. For example, "Teflon" (trademark of E. I. DuPont de Nemours Co.) sealant is applied to the threads of nuts in order to provide an improved seal.
The presence of the Teflon compound interferes with subsequent plating or surface coating if the Teflon is leaked onto the exterior surfaces.
For examplev Teflon coated fasteners are used extensively in the automotive industry where steel parts are coinmonly immersed and coated with an electrodeposited rust inhibitor. A Teflon coating prevents the rust inhibitor SUBSTITUTE SHEET A. 0 (r ^y :F WO 89/06757 PcrT/US8900168,i i solution from adhering to selected surfaces where the rust i inhibitor layer may interfere with subsequent assembly requirements. For example, it is often desirable to maintain internal threads of fasteners free of the rust inhibitor to provide more reliable fit-up and assembly. Fasteners which have a Teflon coating on their internal threads can be immersed into a rust inhibitor bath along with an entire automotive assembly while maintaining selected surfaces where the rust inhibitor will not adhere. This is accomplished without the use of previous labor intensive, and often ineffective rubber plugs. In subsequent assembly, the Teflon coating readily yields to the insertion of a mating external thread.
The process of the present invention teaches coating on a repetitive part basis to pre-selected surfaces, such as the threaded cavities of nuts, and avoids contamination of adjacent and exterior surfaces. The apparatus for practicing i the described process uses substantially all of the material to coat the nut, thereby eliminating waste. i U.S. Patent 4,652,4 d to Gould, et al. discloses ai process for high pressure impact coating of portions of work .,pieces such as threaded openings and fasteners and avoidance of contaminating portions of the work piece with the coating material. The process requires masking of the surfaces of the nut in order to restrict material from contaminating the outer surfaces of the nut. Additionally, the machine requires a 3UBSTITUTE
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a eeiieprtbsst r-slce ufcesc s WO 89065 PCT/US89/00168.-L1_ Iiiii.
~i ir'- 'WO 89/06757 PCT/US89/00168 i i -3choked area for sucking the waste material from the fastener. Illustrated preferred embodiments of the present invention provide a precise amount of material to selected surfaces of the nut and eliminates the need to suck waste material from the nut.
U.S. Patent 4,528,938 to Nevel discloses a rotary work piece treating apparatus for depositing coating or adhesive materials within threaded fastener nuts. The device includes a continuouisly rotating turntable assembly having a plurality of work station cylinders attached thereto. A probe attached to the plunger is caused to enter within the internal bore of the nuts and release flowable v4terial within the nut. The flow of such material is controlled by a valve stem protruding from the probe which is depressed against the stop surface when the probe is inserted within the nuts. Certain preferred embodiments of the present invention utilize straight line feeding and eliminates the' valve stem control for the material.
Other prior att such as U.S. Patents 4,0(0,868 to Axvig and 3,896,760 to R, J. Duffy disclose systems and methods for coating the interior surfaces of pipes using a low pressure application of dry resin material to the interior of heated pipe sections. These disclosures do not address the problem of controlling the flow of liquid material to a selected surface with precise isolation frotn portions not to be coated with the liquid material.
SUBSTITUTE SHEET 4 According to one aspect of the present invention there is provided a process for coating surfaces of a hollow object i with fluid in a preselected pattern comprising the steps of: placing the object to be coated at a pre-determined location; moving a hollow probe with at least one opening from below the object into a position for initiating coating of the object; $-c simultaneously pumping material from a holding chamber into the probe, rotating the probe at a pre-determined speed and advancing the probe vertically through the object a pre-determined length to deposit the preselected pattern in the object using centrifugal force from the rotary motion of the probe to disptse the fluid through said at least one opening in the probe; m pope pumpingka predetermined amount of the fluidlout of the probe thereby stopping the coating process; withdrawing the probe from the object; and removing the object from the predetermined location.
According to another aspect of the invention there is provided apparatus for applying fluid material within an internal cavity of an object comprising: a support track; a rotary bowl feeder for loading the object onto the support track; a locating means for positioning the object in a pre-determined position on the support track prior to coating the object with the fluid material; a hollow probe including at least one opening for dispensing the fluid material within the internal cavity of said object; rotation drive means for rotating said probe; a supply container for said fluid material; a reversible pump for pumping the fluid material from said supply container into said probe; plunger means for moving said probe into said interne cavity of said object; control means for co-ordinating said rotational L. -/i r I 4a4 drive means, pumping means, and plunger means thereby coating said object in a pre-determined manner, utilizing centrifugal force to disperse si:id fluid.
material from said at least one opening in said probe; and said reversible pump draws said fluid 1,'aterial from said probe upon reaching a pre-determnined location to stop dispersion of said fluid material from said probe.
According to another aspect of the invention there is provided a process for selectively coating objects having internal cavities with fluid in a pattern comprising: moving a succession of objects into a position for application of fluid; moving a hollow probe applicator with '4t least one opening into a position for coating from a position below the object to utilize gravitational forces; spinning said applicator continually; pumping fluid from at least oni holding chamber when said applicator reaches said coating position,; continuing moving said applicator upward through said object a pre-determined distance; simultaneously stopping the upwa,,c movement of said applicator while reversing said pumping to pull .fluid away from the opening of the applicator; and removing said applicator from said object.
According to another aspect of the invention there is provided apparatus for coating selected internal cavities of an object with fluid, comprising: positioning apparatus means for positioning an internal cavity of said. object to be coated at a pre-determined locoation;' probe means having a hollow cavity and at least one opening; said probe means being substantially vertical and said opening in said probe being positioned in a tip section of said, probe means which has a smaller 4j 0outside diameter than a shaft portion of said probe means; 4b rotation drive means for rotating said probe means; supply container for said fluid; pumping means for pumping said fluid from said supply container into said hollow cavity of said probe means; movemerc means for moving said probe means from a first position to a second position within said internal cavity of said object; and control means for co-ordinating said rotation drive means, said pumping means, and said movement means thereby coating said object in a pre-determined manner, utilizing centrifugal force to disperse said fluid through said opening in said probe means; said control means including means for controlling the coating operation to selectively coat only a portion of the length of said internal cavity of said object.
According to another aspect of the invention there is provided apparatus for applying fluid to an internal cavity of a fastener or similar article, comprising, positioning device for locating said fastener at a pre-determined location; I i! probe having a hollow cavity and at least one opening from said cavity; said probe having a substantially cylindrical cross-section and including a shaft portion which transitions into a tip porton and said opening isi positioned in said tip portion which has a smaller outside diameter than the outside diameter of the shaft portion of the probe; drive motor for continuously rotating said probe; fluid supply chamber; metering pump for pumping said fluid from said fluid supply chamber to said hollow cavity in said probe to a level in said hollow cavity of said probe adjoining said opening in said probe for dispersion therethrough; stepping motor for moving said probe from an 40 initial position below the bottom surface of said i Li 4c fastener vertically upward through said internal cavity of said fastener; and digital computer control for co-ordinating said drive motor, said metering pump and said stepping motor to coat said internal cavity by centrifugal dispersion of said fluid through said opening in said probe; said digital computer including means for controlling the operation to selectively coat only a portion of the length of said internal cavity of said fastener; said centrifugal dispersion of said fluid being terminated by said metering pump discontinuing its pumping of said fluid into said hollow cavity of said probe.
According to another aspect of the invention there is provided a process for selectively coating an internal surface of an object with fluid, comprising the sequential steps of; placing the object to be coated at a pre-determined location using a presentation pin; securing said object at said pre-determined location by holding said object between a positioning spring and a side support; moving a probe with a hollow cavity and at least 1"25 one opening vertically upward at a first i' pre-determined speed from a position below said object >i into a first preselected position in a '-ft Ui Efe- f said object where the coating operation is to commence; rotating said probe at a pre-determined rotational speed about a longitudinal axis of said probe; momentarily stopping vertical movement of said probe at said first preselected position; continuing vertical movement of said rotating probe upwardly at a second pre-determined coating travel speed from the first preselected position where the coating operation is to commence to a second preselected position where the coating operation is to end, while simultaneously pumping said fluid from a
B'
KimI 4d fluid holding chamber into said hollow cavity of said probe thereby substantially filling said hollow cavity of said probe below said opening in said probe and thus positioning said fluid adjacent said opening in said probe for centrifugal dispersion of said fluid through said opening in said probe onto said internal cavity of said object; discontinuing pumping said fluid; withdrawing said probe from said second preselected position to said position below said object; and removing said object from said pre-determined location.
According to another aspect of the invention there is provided a process for coating surfaces of a hollow object with fluid in a preselected pattern comprising the steps of: placing said object to be coated at a pre-determined location; moving a hollow probe with at least one opening from below said object into a position for initiating coating of said object; simultaneously pumping material from a holding chamber into said probe, rotating said probe at a pre-determined speed and advancing said probe vertically through said object using centrifugal force from said rotary motion of said probe to disperse said fluid through said at least one opening in said probe while travelling in a first direction through said object; foe 009
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130 -Iil simultaneously pumping material from a holding chamber into said probe, rotating said probe at a pre-determined speed and withdrawing said probe vertically through said object using centrifugal force from said rotary motion of said probe to disperse said fluid through said at least one opening in said probe while travelling in a second direction opposite to said first direction; withdrawing said probe from said object; and removing said object from said pre-determined location.
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-J .M WO 89/06757 PCT/US89/00168 It is another object of the invention Lo povide an apparatus and system which applies a uniform coating to/ precise portion of the object to be coated. It is another object of the invention to ovide a system which recirculates the coating material thereby restricting settlement problems in the material It is another object of the inv tion to provide a machine which reduces noise, spillage and other problems in the work place.
It is another object /f the invention to eliminate high pressure delivery lines/for coating objects.
Additional benefits and advantages of the present invention will become apparent to those skilled in the art to which this inve tion relates from the subsequent description of the preferre embodiments in the appended claims, taken in conjunct* n with the accompanying drawings.
The above objects are accomplished with the apparatus a rocess for coating hollow objocs-with-f-luid-mate-r-i-a-l-s aee6drng=t- thi-s a The apparatus and process described herein utilizes centrifugal force to disperse fluid from a probe. The apparatus meters a precise amount of fluid thereby eliminating waste of excess material and the need to mask the article. Preferred embodiments of the present invention incorporate a conveying device for moving a succession of workpieces, for example, internally threaded c SUBSTITUTE SHEET "l, r-i articles, into position for application of fluid. In certain preferred embodiments, a rotating hollow probe is then moved from under the object into a coating position. Preferably, the probe is simultaneously moved upward through the workpiece coating the object as the material is pumped from a holding chamber through the metering pump, thereby metering the volume of fluid, and dispersed by the centrifugal force from the rotary motion of the probe. In certain preferred embodiments, when the selected area has been coated, the pump is reversed to pull the material away from the opening in the probe and the probe is then withdrawn from the object. In preferred embodiments, the probe dispenses a second coating during the removal from the object. The object is then preferably moved into a drying chamber where the excess vapors are drawn off from the object. The process minimizes any waste material thus improving the environmental aspects of the work place, BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 is a fragmentary sectional view of the apparatus used in the process of coating the objects with fluid.
Figure 2 is a diagrammatic view of the coating apparatus.
SUBSTITUTE SHEET i .i 1 1 1 I
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SWO 89/06757 PCT/US89/00168 -7- Figure 3 is a fragmentary sectional view of another preferred embodiment of the apparatus used in the process of coating the objects with fluid.
Figure 4 is a top view of the embodiment shown in Figure 3.
Figure 5 is a cross-sectional view of the rotary probe in the embodiment shown in Figure 3.
DETAILED DESCRIPTION OF THE INVENTION In figure 1, fastener nuts 2 are being coated with a material such as Teflon fluid material. The nut is delivered to the coating position by a straight line feeding means. One embodiment uses a support track moving the nuts to the coating position, The nuts are loaded onto the feeding means by a rotary bowl feeder. Any conventional object feeding means is appropriate.
Spring detent 12 ho:Xds a nut 2 in position for coating Arrow 60 designates any conventional plunger means to move the rotary probe 70 into the internal cavity or the nut, In a preferred embodiment a lead screw drive means (not shown, but designated by arrow 60) moves the probe 70, motor 82, and the supporting brackets uniformly upward so that the probe is inside the cavity of the object to be coated. Since probe unit 79 is driven by belt 73 the entire unit 80 must be moved so SUBSTITUTE
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WO 89/06757 PCr/US89/00168 -8- .:i that the probe 70 is within the cavity of the object to be coated. Lead screw drive means is one example used as a plunger means 60. Any type of vertical drive means 60 could be used or alternatively only probe 70 could be moved into the cavity of the nut if a different apparatus is used to rotate probe A portion of table 15 is shown with opening 16 in a bottom section. Table 15 includes side support 17 which works in conjunction with spring detent 12 to hold nut 2 in position. Table 15 can also support the feeding means, drying means, plunger means 60, and computer Referring to Figure 3, in another preferred embodiment of the present present invention, conver.tional microlab metering pump 75 is utilized to provide precise control over the volume of fluid introduced into rotary probe 170. A relatively narrow hollow stainless steel tube 30, on the order of 0.083 inches in outside diameter and 0.062 inches in inside diameter, is connected to the fluid supply through pump Top end 32 of tube 30 is preferably positioned in,hollou cavity 180 of probe 170 up to a. distance approximately 0.032 inches below opening 176 in rotary probe 170. The small diameter of tube 30 provides better control of fluid presentation to rotary probe 170 and minimizes the volume of fluid necessary to prefill the system.
SUBSTITUTE SHEET SO 89/06757 PCT/US89/00168 In the embodiment shown in Figure 3, clatjp 100 fixedly secures probe 170 to housing assembly 102. A pair of conventional bearings 95, driven by belt 73, provides rotation of probe 170 and housing assembly 102. Tube 30 is connected to pump 75 and therefore does not rotate. Second housing 35 is 14 fixedly attached to tube 30 and includes cavity 36 for capturing fluid and solvent which runs downwardly into the space caused by clearance between tube 30 and internal cavity 180 cf probe 170.
Referring to Figure 4, a slidably mounted presentation pin 20 is positioned over internal cavity 19 of fastener 8 and moves vertically downwardly into internal cavity 19 of the next fastener 8 to be coated. Once inserted, the presentation pin moves fastener 8 horizontally along direction 6 and positions the fastener 8 into the position of fastener 4 centered over rotary probe 170. Positioning spring 22 engages fastener 4 securely against side support 17 to position internal cavity 19 of fastener 4 in the proper position for the coating process. The width between side support 17 and positioning spring 22 is transversely adjustable to accormuodate fasteners 4 with different outside diameters while maintaining alignment between internal cavity 19 of fastener 4 and probe 170.
Referring to Fig4 5, rotary probe 170 is shown. Probe 170 preferably has 5 i ft section 172 which transitions into tip SUBSTITUTE SHEET WO 89/06757 PCT/US89/00168 section 174 of smaller diameter than shaft section 172.
Preferably, at least one opening 176 is provided in the vertical portion of tip section 174 to allow for centrifical dispersion of the fluid therethrough. Although it is not necessary for the non-pressurized fluid coating system of the present invention, cap 178 preferably encloses the top of probe 170. Tube 30 enters into hollow eavity 180 of probe 170 and transfers fluid into a position for centrifical dispersion through opening 176. In a preferred embodiment, two 0.20 inch diameter openings 176 are utilized in probe 170. Shaft section 172 with an outside diameter of approximately 0.125 inch and tip section 174 with an outside diameter ranging from 0.070 inch through 0.125 inch has proven to be effective in coating internal cavity 19 of fasteners 4 with inside diameters ranging from approximately .125 inch to ,500 inch.
In the preferred embodiment shown in Figure 3, tube i. prefilled with fluid pumped from metering pump 75, Once the capacity of tube 30 is exceeded, the excess fluid runs out opening 176 and proceeds into purging chamber 128. This initial overflow of fluid permits air and other impurities which may be present in the fluid remaining in tube 30 to be replaced with clean fluid drawn from Teflon tank During the solvent cleaning cycle, selector valve 118 is reset to draw solvent from solvent tank 125 into tube )gain, once the drawn solvent exceeds the capacity of tube SUBSTITUTE SHEET C i i i~ i -iU WO 89/06757 PCr/US8900168 -11the excess solvent runs out opening 176 and proceeds" into purging chamber 128. The fluid and solvent in purging chamber 128 is transferred through line 119 into waste container 127.
Once the solvent purge cycle is completed, selector valve 118 is again reset to draw from Teflon tank 85 and Teflon fluid is again prefilled into tube 30 as described above. Once this Teflon fluid prefill cycle is complete, the system is again ready to apply Teflon fluid coating to internal cavity 19 of fastener 4.
In certain preferred embodiments, stepping motor 82 is programmable through digital computer 50 to control the rate and extent of vertical travel of rotary probe 170. Preferably, once fastener 4 is in the proper position to n:itiate the coating process, stepping motor 82 moves rotary probe 170 fairly rapidly to a position immediately below the top surface 14 of table 15. At this point, the vertical travel is momentarily stopped. During the momentary stoppage, metering pump 75, controlled by digital computer 50, begins to pump fluid through tube 30. Rotary probe 170 then continues vertically upwardly at a pre-selected coating travel speed through internal cavity 19. Once the coating operation has been completed, rotary probe4 170 can be withdrawn from internal cavity 19 fairly rapidly to a position below the top surface 14 of table 15 to allow the next fastener 8 to be positioned for coating.
SUBSTITTIE SHEE'r ii _i
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WO 89/06757 PCT/US89/00168 -12- In most applications, rotation of probe 170 at a rate of approximately 10,000 revolutions per minute has proven effective in providing sufficient centrifical force to disperse Teflon fluid from probe 170 onto the selected portions of internal cavity 19. The optimum revolution rate varies somewhat with the viscosity of the fluid being dispersed. For example, a slight increase in rotation can often be effective when dispersing fluids with higher viscosities.
In certain preferred embodiments, metering pump 75 may be initiated when opening 176 in rotary probe 170 is positioned at any pre-selected vertical position below or above top 14 of table 15 in interior cavity 19 of fastener 4. Therefore, the position of initiating fluid flow can be input via digital computer 50 to begin below top 14 of table 15 prior to opening 176 entering internal cavity 19, to ensure complete thread coverage. Alternatively, the coating can begin at any pre-selected level above top 14 of table 15 in internal cavity 19 of fastener 4 for coating of only selected portions of the length of internal cavity 19.
In certain preferred embodiments, rotary probe 170 spins continuously, and the dispersion of fluid is controlled by metering pump 75 pumping fluid above the level of opening 176 in rotary probe 170. The total volume of fluid dispersed can be pre-'elected by entering the number of steps ol metering pump 75 via digital computer 50. To discontinue coating, SSUBSTITUTE SHEET 1 1 1
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y K M0 i I ;rqY-i. l i :ii~W-~Y iii i 89/06757 PCT/US89/01468 i -13metering pump 75 is stopped and no further fluid is present at opening 176. Therefore, no further fluid dispersement occurs.
In most applications, the volume of fluid dispersed is selected to provide a Teflon coating of approximately ,001 inch on those surfaces to be coated. By control of metering pump 75 and vertical coating travel speed by digital computer 50, a uniform coating of Teflon is achieved, even on uneven surfaces such as threads. By programming digital computer 50 and control of metering pump 75, internal cavity 19 of fasteners 4 can be completely coated or alternatively only preselected portions of the length of internal cavity 19 may be coated.
Simultaneously a digital computer 50 controls the movement of the nut positioning means (not shown), the vertical plunger means 60, (illustrated by the arrows), and the pump providing fluid.
When the apparatus is activated, unit 80 is programmed to automatically move into a position until probe 70 contacts a photo electric sensor 78 located near table 15. The computer is then programmed to define the position where probe 70 begins coating a nut 2.
In preferred embodiments, photosensitive electric eye 24 verifies that fastener 4 is in the proper 'position for coating before allowing probe 170 to enter internal cavity 19 of fastener 4. If fastener 4 is not positioned in a suitable position for coating, digital computer 50 will prevent rotary
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WO 89/06757 PCT/US89/00168 S-14probe 170 from dispersing fluid. This prevents inadvertent dispersion of fluid when internal cavity 19 of fastener 4 is not in the proper position for coating. A counter mechanism (not shown) may also be included to track the number of fasteners 4 coated.
Unit 80 includes replaceable unit 79 made up of yrobe and pulley section 79. This portion of the machine is easily disconnectable in order to provide a different tip for different types of fluids to coat different objects. The pulley diameter is constructed for the specific type of fluid to be dispersed. This provides an easy control for the operator to change from one fluid to another, The pulley 72 is connected via a belt 73 to a pulley 74 connected to a motor 82. The speed of the motor 82 can be controlled by the computer 50. In a preferred embodiment, the probe is continually rotating while the apparatus is operating. A recirculating pump 112 pumps vell stirred fluid from Teflon tank 85 continuously through supply line 114 in order' to keep the coating fluid from possible segregation.
When pump 7r is connected to supply line 114, fluid moves through selctor 118, into mixing valve 86, then through positive displacement metering pump, 75. A metered amount of fluid is delivered through delivery tube 71 in rotary union to rotating probe 70. Rotary union 90 allows probe 70 to turn SUBSTITUTE SHEET WO 89/06757 PCT/US89/00168 during the delivery of fluid. Conventional bearings 95 are shown at a suggested location in rotary union As seen in figure 2, a separate additional fluid in fluid #2 tank 105 can be introduced into mixing valve 86 through line 110 by conventional valving means when a two component fluid mixture is desired. Computer 50 controls valve 86 for such a mixture. Computer 50 controls the metering pump rate, the distance and speed of the plunger means 60, and the operation of the selector valve 118.
The pump 75 moves fluid into the probe 70. The pump does not disperse the fluid out of opening 76. The fluid is dispersed by the centrifugal force of the probe rotating. In other words pump 75 simply positions fluid to a level from which the rotation of the probe forces the fluid out the openings. In preferred embodiments rotating the probe at speeds between 10,000 and 15,000 revolutions per minute have been particularly effective to utilize centrifugal force to disperse the fluid.
Computer 50 can be programmed to coat the material while traveling upward through the nut and then recoat the nut during removal from the nut. The use of the probe and location of the opening provides the nut to be coated in precise bands within the internal cavity 19. For example, the coating can start at 2 centimeters from the bottom of the nut and end 4 SUBSTITUTE
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WO 89/06757 PCT/US89/00168 -16centimeters form the top of the nut by programming the computer for this band of coating.
When the coating operation is one coat in only one direction, preferred embodiments use a reversible pump to pump material back to supply chamber 85. When pump 75 is reversed it pulls material back into the supply chamber and allows the probe to continue spinning without dispersing fluid. The probe would stop dispersing fluid without reversing the pump.
However, the reversing of the pump pulls material away from the discharge opening to ensure material will not be inadvertently dispensed.
Diagramatic view 2 illustrates the use of Teflon material in a system utilizing two coating machines controlled by one computer. Recirculating pump 112 is connected to a supply of fluid 85t for example, Teflon. This recirculation of fluid mixes the material and restricts settlement of components from the mixture. Selector valve 118, controlled by computer is open to either supply line 114 allowing Teflon from tank V or line 115 allowing solvent from tank 125 into the mixing valve 86. Teflon is selected for coating the nut. Solvent is selected for purging of the system prior to a process shutdown for a variety of reasons including but not limited to maintenance or changing to a different nut size. To ensure consistent, high quality coating, the solvent purge cycle SUBSTITUTE SHET i I L a .L
SI
I
-WO 89/06757 PCT/US89/00168 -17- 'hould preferably be utilized at least once during each four hour period in which the equipment is operated.
Computer 50 is a programmable computer allowing the operator to provide pumping speed rates of material to be pumped and the location of the probe within the article to be coated. It may be appreciated that the operator can easily program the computer while observing the coating operation.
The speed of vertical travel of plunger means 60 can be controlled to provide for different viscosities of fluids and the desired thickness of the coating. Stepping or servo motors can be connected to the motor 82 in order to provide precise control of the operation.
Figure 1 shows the fluid chamber 71 leading to the probe 70. In this preferred embodiment, the opening 76 for the dispersion of material is on or near the top of the probe It can be appreciated that as the probe rotates, the coating material will be discharged from the top of the probe. The material in the probe forms a parabolic configuration. If the material is not near the upper portion of the probe, the material will not be discharged from the opening 76.
A conventional vapor discharge means (not shown) is provided after the nut has received the coating fluid and moved through a drying chamber (not shown). The drying chamber can use heated air forced through a closed chamber by a fan.
i i i i i iI o i :i ii ii 4 ?i :i ii
I'
g {t 11 SUBSTITUTE
SHEET
WO 89/06757 PCT/US89/00168 -18- In another preferred embodiment, a drying track (not shown) is utilized to ensure that the Teflon coating is dry before fasteners 4 are dropped into a storage or shipping container (not shown). Pr eferably, a drying track contahining forced air heated to approximately 120*F is used with a track length sufficiently long to ensure complete drying of the Teflon coating before the fasteners reach the end of the line.
It should be recognized that the temperature and length of the drying track may be readily adjusted to accommodate fluids with different drying characteristics.
Preferred embodiments of the present invention reduce i the waste material. A preferred embodiment provides a purging chamber 128 whereby the material in the system can be shut off at valve 118 and the material left can be discharged into a waste container 127. The solvent remains in fluid chamber 71 until a pre-filling operation forces the solvent into purging chamber 128 and fills fluid chamber 71 with Teflon, The waste material flows from purging chamber 128 through line 119 into waste container 127.
Certain preferred embodiments of the present invention utilize one computer 50 to control two production lines. The computer is programmable to provide one Coating application on one head aid a distinct coating application on the other head.
Several "lines" could be controlled by one computer. The uso SUBSTITUTE SHEET WO 89/06757 PCT/US89/00168 -19of the colnputer allows precise bands of fluid to be dispersed within the hollow object.
Preferred embodiments of the present invention may be used to coat objects With any flowable material. For example, an extremely fine flowable Teflon material is contemplated for use with this invention. Also, a material such as microencapulated epoxy such as that sold under the trademark Scotchgrip by Minnesota Mining Manufacturing Co. or microencapulated anarobic epoxy such as that marketed by Loctite Corporation may be readily applied to the internal cavities of fasteners using this invention. Also, fluid weld spatter repellant may be applied to selected internal cavities using this invention. Preferred embodiments of the present invention are also capable of coating non-circular internal cavities in fasteners without any change in the equipment set-up.
While the above description constitutes the preferred embodiments of the present invention, it will be appreciated that the invention is susceptible to modification, variation and change without departing from the proper scope and fair meaning of the accompanying claims.
SUBSTITUTE SHEET 1 i i i;'

Claims (24)

1. A process for coating surfaces of a hollow object with fluid in a preselected pattern comprising the steps of: placing the object to b~i coated at a pre-determined location; moving a hollow probe with at least one opening from below the object into a position for initiating, coating of the object; A simultaneously pumping%, material from a holding chamber into the probe, rotating the probe at a pre-determined speed and advancing the probe vertically through the object a pre-determined length to deposit the preselected pattern in the object using centrifugal force from the rotary motion of the probe to disperse the fluid through said at least one opening in the probe; re ~pumpingpa predetermined amount of the fluid out of the probe thereby stopping the coating process; withdrawing the probe. from the object; and removing the object from the predetermined location.
2.g Apocs according to claim Ifurther including moving said coated objects through a drying chamber. *A process acrigto claim I or 2 wherein si rb i s continually rotating during said oapting process,. *b 4. A process according to ony one of claims I to. 3 Wherein a computer simultaneously controls a pump for providing the fluid to said probe and the rolzational speed of said probe to allow for a variety of coating ,Iaterials. 51 A Process according to any one of claims I to 4 wherein said probe rotates between 1000 and 15,000 revolutions per minv'.e, S6. A nut havi~ig threads coated with f luid in accorance O\with the, process of any one of, claims 1 to ut' -21
7. A nut having threads coated with Teflon in accordance with the process of any one of claims 1 to
8. Apparatus for applying fluid material within an internal cavity of an object comprising: a support track; a rotary bowl feeder for loading the object onto the support track; a locating means for positioning the object in a pre-determined position on the support track prior to coating the object with the fluid material; a hollow probe including at least one opening for dispensing the fluid material within the internal cavity of said object; rotation drive means for rotating said probe; a supply container for said fluid material; a reversible pump for pumping the fluid material from said supply container into said probe; plunger means for moving said probe into said internal cavity of said object; control means for co-ordinating said rotational drive means, pumping means, and plunger means thereby coating said object in a pre-determined manner, utilizing centrifugal force to disperse said fluid material from said at least one opening in said probe; *f it and said reversible pump draws said fluid material from said probe upon reaching a pre-determined location to stop dispersion of said fluid material 3 from said probe. 9 9 see
9. Apparatus according to claim 8 wherein a drying means drys said coated object after said prob is removed from the object. Apparatus according to claim 9 wherein said drying means includes heated forced air introduced into a closed chamber at one locationl and a vacuum means pulls the air out at a second location. V -22- 1. Apparat, is acco-ding to any one of claims 8 to. wherein a locating means positions: said obj ect in a predetermined position on said support1 prior to coating said object with fluid.
12. Apparatus according tck claim 11 wherein said objects are fed owards, said locating weans on a support track and said objects are loaded onto said support track from a rotary bowl feeder. 1:J. A ,aratus according to any one of claims 8 to 12 wherein a purge means for cleaning said fluid from said apparatus is connected to tA discharge container. 1 15 14. A process for selectively coating objects havingj i/I internal cavities with fluid in a pattern comprising: moving a succession of objects into a position for applicatiion of fluid; moving a hollow probe applicator with at least 26 one opening i t c; a po.9ition for coating from a position below the object to utilize gravitational forcces; spinning said applicator continually; pumping f luid f rom at least one holding chamb/ar when said applicatQr reacheb said coai- ing position; cor) Imining moving said applicator upward through sPaid object a pre-determined distance; sirlUltalteously stopping the upw~ard movement of sai~d applicator while reversing said pumping to pull, Afluid away from the opening of the, applical -or; and p removing said applicator, kx~om said object. 5. The process of claim 1.4 whe~rein said applicator coats said ob.- )ct as said applicator is withdrawn from said, *bjct.. 3
16. Appaxatus for Coating s§nlecbed internal cav'ities of, an oLject with fluid, comprising: positioning apparatus means f~xi positi.ning an inteivnal cavity of said object to be coated at a pre-detatmined location;- 4 if 23 probe means having a hollow cavity and at least one opening; said probe means being substantially vertical and said opening in said probe being positioned in a tip section of said probe means which has a smaller outside diameter than a shaft portion of said probe means; rotation drive means for rotating said probe means; supply container for said fluid; pumping means for pumping said fluid from said supply container into said hollow cavity of said probe means; movement means for moving said probe means from a first position to a second position within said internal cavity of said object; and control means for co-ordinating said rotation drive means, said pumping means, and said movement means thereby coating said object in a pre-determined manner, utilizing centrifugal force to disperse said fluid through said opening in said probe means; said control means including means for controlling the coating operation to selectively coat only a portion of the length of said internal cavity of said object.
17. Apparatus according to claim 16, wherein said control means includes a digital computer for co-ordinating said rotation means, said pumping means and said movement means thereby providing a uniform coating thickness.
18. Apparatus according to claim 17, wherein said digital computer includes means for controlling the coating operation to selectively coat only a portion of the length of said internal cavity of said object.
19. Apparatus according to any one of claims 16 to 18, wherein: said movement eans provides substantially vertical movement f said probe means; 0 'I d L_ -24 i said rotation drive means continually rotates said probe means and the centrifugal dispersion of fluid is controlled by said pumping means introducing said fluid to a level in said hollow cavity in said probe means adjoining said opening in said probe means for dispersion therethrough; and said centrifugal dispersion of fluid is ceased by said pumping means discontinuing its pumping of said fluid to said hollow cavity of said probe means. Apparatus for applying fluid to an internal cavity of a fastener or s.milar article, comprising: positioning device for locating said fastener at a pre-determined location; probe having a hollow cavity and at least one opening from said cavity; said probe having a substantially cylindrical cross-section and including a shaft portion which transitions into a tip porton and said opening is positioned in said tip portion which has a smaller outside diameter than the outside diameter of the shaft portion of the probe; drive motor for continuously rotating said probe; fluid supply chamber; is metering pump for pumping said fluid from said fluid supply chamber to said hollow cavity in said S* probe to a level in said hollow cavity of said probe adjoining said opening in said probe for dispersion therethrough; S..8 stepping motor for moving said probe from an i initial position below the bottom surface of said fastener vertically upward through said internal cavity of said fastener; and digital computer control for co-ordinating said drive motor, said metering pump and said stepping motor to coat said internal cavity by centrifugal dispersion of said fluid through said opening in said probe; said digitt compute including means for S49, controlling the operation to selectively coat only a portion of the length of said internal cavity of said I fastener; said centrifugal dispersion of said fluid being i i terminated by said metering pump discontinuing its pumping of said fluid i,nto said hollow cavity of said probe.
21. Apparatus according to claim 20, wherein said probe has a substantially smooth outside surface and said probe is removable and replaceable in a housing assembly and said housing assembly and said probe are rotated together by said drive motor.
22. Apparatus according to claim 20 or 21, wherein said fluid is pumped by said metering pump through a hollow tube positioned in said hollow cavity of said probe to a location below said opening in said probe.
23. Apparatus according to claim 22, wherein said hollow tube remains stationary while said probe continually rotates thereabout, causing circumferential dispersion of fluid pumped i :G through said hollow tube by said metering pump through said opening in said probe. i
24. Apparatus according to any one of claims 20 to 23, further including i a purge means for periodically cleaning said fluid from said apparatus; and I a drying means for drying said coaLed objects including a closed chamber into which heated forced i: air is introduced in order to decrease the time required to dry said fluid after said coating operation is complete.
25. Apparatus according to any one of claims 20 to 24, wherein said internal cavity is an internally threaded member.
26. A process for selectively coating an internal surface of an object with fluid, comprising the sequential steps of: 0 placing the object to be coated at a b l t^ -26 pre-determined location using a presentation pin; i securing said object at said pre-determined location by holding said object between a positioning i spring and a side support; moving a probe with a hollow cavity and at least one opening vertically upward at a first i pre-determined speed from a position below said object into a first preselected position in sid ifne of said object where the coating operation is to commence; rotating said probe at a pre-determined rotational speed about a longitudinal axis of said probe; momentarily stopping vertical movement of said probe at said first preselected position; continuing vertical movement of said rotating i probe upwardly at a second pre-determined coating travel speed from the first preselected position where the coating operation is to commence to a second preselected position where the coating operation is to i end, while simultaneously pumping said fluid from a I fluid holding chamber into said hollow cavity of said probe thereby substantially filling said hollow cavity of said probe below said opening in said probe and i thus positioning said fluid adjacent said opening in si said probe for centrifugal dispersion of said fluid through said opening in said probe onto said internal cavity of said object; discontinuing pumping said fluid; withdrawing said probe from said second preselected position to said position below said object; and removing said object from said pre-determined location,
27. A process according to claim 26, wherein: said centrifugal coating of said internal cavity of said object continues during said withdrawal of said probe from said second preselected position to 0" said first preselected position; and I 1 27 1 t2 said centrifugal coating of said internal surface of said object discontinues when said downward i i movement of said probe reaches said first preselected position in said internal cavity of said object.
28. A process according to claim 26 or 27, wherein said internal surfaces have internal threads and said .object is a fastener.
29. A process for coating surfaces of a hollow object with fluid in a preselected pattern comprising the steps of: placing said object to be coated at a pre-determined location; moving a hollow probe with at least one opening from below said object into a position for initiating coating of said object; simultaneously pumping material from a holding chamber into said probe, rotating said probe at a pre-determined speed and advancing said probe vertically through said object using centrifugal force from said rotary motion of said probe to disperse said fluid through said at least one opening in said probe *while travelling in a first direction through said object; simultaneously pumping material from a holding chamber into said probe, rotating said probe at a pre-determined speed and withdrawing said probe vertically through said object using centrifugal force i| from said rotary motion of said probe to disperse said i 56 fluid through said at least one opening in said probe S: while travelling in a second direction opposite to said first direction; withdrawing said probe from said object; and removing said object from said pre-determined location. A process according to claim 29 further including moving said coated object through a drying chamber after removing said object from said pre-determined location. 0 1 1 i: P 1 28
31. A process according to claim 29 or 30, wherein said probe is continually rotated during said coating process.
32. A process according to any one of claims 29 to 31, wherein a computer simultaneously controls a pump for providing said fluid to said probe and the rotational speed of said probe to allow for a variety of coating materials.
33. A process according to any one of claims 29 to 32, wherein said probe rotates between 10,000 and 15,000 revolutions per minute.
34. A process according to any one of claims 29 to 33, wherein said probe has a substantially cylindrical, smooth outside surface and said probe is removable and replaceable in a housing. A process according to any one of claims 29 to 34, wherein said hollow object is an internally threaded fastener. iTiT I jIf i i Ii E ji ii ii i *046 0S** OUSS 6 S *.5U: S L S.
36. A process for coating internal surfaces of a hollow object with fluid substantially as herein described with reference to the drawings. DATED: 2 June 1992 PHILLIPS ORMONDE FITZPATRICK Patent Attorneys For: MULTECH, INC. e B4 (2916h) AS U 0 t'
AU30444/89A 1988-01-14 1989-01-13 Method and apparatus for coating internal cavities Ceased AU627447B2 (en)

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Application Number Priority Date Filing Date Title
US14380488A 1988-01-14 1988-01-14
US143804 1988-01-14
PCT/US1989/000168 WO1989006757A1 (en) 1988-01-14 1989-01-13 Method and apparatus for coating internal cavities

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AU627447B2 true AU627447B2 (en) 1992-08-27

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