DK3126551T3 - FIBER WITH MODIFIED SECTION - Google Patents

FIBER WITH MODIFIED SECTION Download PDF

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Publication number
DK3126551T3
DK3126551T3 DK15717266.9T DK15717266T DK3126551T3 DK 3126551 T3 DK3126551 T3 DK 3126551T3 DK 15717266 T DK15717266 T DK 15717266T DK 3126551 T3 DK3126551 T3 DK 3126551T3
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Prior art keywords
fiber
thermoplastic resin
modified cross
section
cross
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DK15717266.9T
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Danish (da)
Inventor
Hitoshi Kubota
Original Assignee
Es Fibervisions Co Ltd
Es Fibervisions Lp
Es Fibervisions Aps
Es Fibervisions Hong Kong Ltd
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Publication of DK3126551T3 publication Critical patent/DK3126551T3/en

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    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01DMECHANICAL METHODS OR APPARATUS IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS
    • D01D5/00Formation of filaments, threads, or the like
    • D01D5/253Formation of filaments, threads, or the like with a non-circular cross section; Spinnerette packs therefor
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01DMECHANICAL METHODS OR APPARATUS IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS
    • D01D5/00Formation of filaments, threads, or the like
    • D01D5/28Formation of filaments, threads, or the like while mixing different spinning solutions or melts during the spinning operation; Spinnerette packs therefor
    • D01D5/30Conjugate filaments; Spinnerette packs therefor
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F8/00Conjugated, i.e. bi- or multicomponent, artificial filaments or the like; Manufacture thereof
    • D01F8/04Conjugated, i.e. bi- or multicomponent, artificial filaments or the like; Manufacture thereof from synthetic polymers

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  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Multicomponent Fibers (AREA)
  • Nonwoven Fabrics (AREA)

Description

DESCRIPTION
Technical Field [0001] The present invention relates to a specific modified cross-section fiber. More specifically, the invention relates to a modified cross-section fiber that is excellent in splittability, and after being split, fine conjugate fiber structures thereof can be individually and independently derived as a fine conjugate fiber structure.
Background Art [0002] Study has been so far conducted on various splittable conjugate fibers. For example, PTL 1 proposes that splittability is improved by using as one component of a polyolefin-based resin a resin containing 1 to 30% by weight of ethylene-vinyl alcohol copolymer having a degree of saponification of 95% or more in a splittable conjugate fiber formed of the polyolefin-based resin. PTL 2 proposes that a thermoplastic resin containing two components having different thermal shrinkage is used to easily split the resin by utilizing a difference in the thermal shrinkage during heat treatment. However, in both PTLs 1 and 2, the fibers after being split have a monocomponent, thermally bonded points during forming a nonwoven fabric decrease, and strength of the nonwoven fabric has been far from sufficient.
[0003] PTL 3 proposes a splittable conjugate fiber having alternately arranged cross-section structure in which monocomponent (A) and component (B) having conjugate structure formed of a core component and a sheath component, and a fiber in which a part remains the form of sheath-core conjugate structure even after being split. Thus, the fiber having the conjugate structure partially remains after being split.
Citation List
Patent Literature [0004]
PTL 1: JP 2002-088583 A
PTL 2: JP 2006-328628 A
PTL 3: JP 2011-009150 A
Summary of Invention
Technical Problem [0005] However, in a splittable conjugate fiber according to PTL 3, a periphery of a fiber cross-section perpendicular to a major axis direction of the splittable conjugate fiber is circular, and also the fiber has structure in which a bonding area between component A and component B is obliged to be basically large, or the like, and therefore high external stress such as jet of high-pressure water stream or the like should be applied during splitting, and thus further improvement of splittability has been desired.
[0006] Thus, an object of the invention is to provide a modified cross-section fiber that can efficiently produce a fine conjugate fiber particularly by being split and then used.
Solution to Problem [0007] The present inventor has diligently continued to conduct research in order to solve the problem described above, and as a result, has found that a modified cross-section fiber having a configuration in which at least two conjugate fiber structures are connected by a connected body can achieve a desired object, and thus has completed the invention.
[0008] More specifically, the invention has constitutions described below. 1. [1] A modified cross-section fiber comprising: 1. (1) a plurality of pieces of conjugate fiber structures comprising a first thermoplastic resin and a second thermoplastic resin having a lower melting or softening point than the first thermoplastic resin and 2. (2) a connected body comprising a third thermoplastic resin having a higher melting or softening point than the second thermoplastic resin, wherein, in an arbitrary fiber cross-section, at least two pieces of the conjugated fiber structure are connected by the connected body. 2. [2] The modified cross-section fiber described in the above [1], wherein the connected body further comprises the second thermoplastic resin and has structure in which a periphery of the third thermoplastic resin is covered with the second thermoplastic resin. 3. [3] The modified cross-section fiber described in the above [1] or [2], wherein a cross-sectional shape of the conjugate fiber structure is substantially circular or polygonal. 4. [4] The modified cross-section fiber described in the above any one of [1] to [3], comprising 2 to 6 pieces of conjugate fiber structures. 5. [5] The modified cross-section fiber described in any one of the above [1] to [4], wherein the first thermoplastic resin and the third thermoplastic resin are the same resin. 6. [6] The modified cross-section fiber described in any one of the above [1] to [5], wherein the second thermoplastic resin occupies a surface of the conjugate fiber structure excluding a connected portion with the connected body. 7. [7] The modified cross-section fiber described in any one of the above [2] to [6], wherein the third thermoplastic resin occupies 20% or more of a cross-section of the connected body. 8. [8] The modified cross-section fiber described in any one of the above [2] to [7], wherein the second thermoplastic resin comprised in the connected body, and the second thermoplastic resin comprised in the conjugate fiber structure are melted and united. 9. [9] The modified cross-section fiber described in any one of the above [1] to [8], comprising structure in which three pieces of the conjugate fiber structures arranged at a substantially equal interval around one piece of the conjugate fiber structure located in a center are connected to one piece of the conjugate fiber structure located in the center by the connected body, respectively. 10. [10] The modified cross-section fiber described in any one of the above [1] to [9], wherein a length of a connected portion between the conjugate fiber structure and the connected body in the arbitrary fiber cross-section of the modified cross-section fiber is 65% or less of a peripheral length of the conjugate fiber structure, in a relationship between one piece of the conjugate fiber structure and one piece of the connected body connected therewith.
Advantageous Effects of Invention [0009] A modified cross-section fiber according to the invention has excellent glossiness and concealing properties of a fiber, and excellent moisture discharge properties. In particular, by using the modified cross-section fiber of the present invention after split, a fine conjugate fiber can be efficiently produced. Moreover, a nonwoven fabric having high strength can be obtained by using a conjugate fiber derived from the split modified cross-section fiber.
Brief Description of Drawings [0010]
Fig. 1(a) to Fig. 1(f) show schematic diagrams of a fiber cross-section perpendicular to a major axis direction of a modified cross-section fiber according to the invention.
Fig. 2 is a fluorescence microphotograph (magnification: 20) of a fiber cross-section perpendicular to a major axis direction of a modified cross-section fiber obtained in Example 1.
Fig. 3 is a SEM photograph (magnification: 1,000) showing a split state of the modified cross- section fiber obtained in Example 1.
Description of Embodiments [0011] The invention will be described in more detail below.
[0012] A fiber according to the invention is a modified cross-section fiber having a plurality of pieces of conjugate fiber structures to be processed into a plurality of pieces of fine conjugate fibers by being split.
[0013] The modified cross-section fiber according to the invention comprises: (1) a plurality of pieces of conjugate fiber structures comprising a first thermoplastic resin and a second thermoplastic resin having a lower melting or softening point than the first thermoplastic resin and (2) a connected body comprising a third thermoplastic resin having a higher melting or softening point than the second thermoplastic resin; and in an arbitrary fiber cross-section, at least two pieces of the conjugated fiber structure are connected by the connected body [0014] In the present invention, a transverse section perpendicular to the major axis direction of the fiber is referred to as "cross-section" or "fiber cross-section".
[0015] A modified shape of the modified cross-section fiber is not particularly limited, if the fiber has the configuration described above. However, in order to facilitate understanding of the invention, an example of the cross-section of the modified cross-section fiber of the invention is shown in Fig. 1(a) to Fig. 1(f).
[0016] Specific examples of the modified cross-section fibers according to the invention include modified cross-section fibers 1A, 1B, 1C, ID, IE and IF as shown in Fig. 1(a) to Fig. 1(f), respectively. In the arbitrary fiber cross-sections of the modified cross-section fibers 1Ato 1F, a plurality of pieces of conjugate fiber structures 14 which comprises a first thermoplastic resin 11 and a second thermoplastic resin 12 having a melting or softening point lower than a melting or softening point of the first thermoplastic resin 11 are connected by a connected body 15 which comprises a third thermoplastic resin 13 having a melting or softening point higher than a melting or softening point of the second thermoplastic resin 12. In the modified cross-section fiber, a shape of the fiber cross-section may be geometrically or dynamically symmetrical or asymmetrical.
[0017] In Fig. 1 (a) to Fig. 1 (f), the number of the conjugate fiber structures 14 is 2 to 4, but the number of the conjugate fiber structures is not particularly limited in the invention, and only needs to be 2 or more. From viewpoints of structure of a spinneret used for production of the modified cross-section fiber and retaining modified cross-section structure during spinning, the number of the conjugate fiber structures 14 is preferably 2 to 6, and further preferably, 3 to 6.
[0018] Above all, as shown in Fig. 1(c) and Fig. 1(f), the modified cross-section fibers 1C and 1F having structure in which three pieces of the conjugate fiber structures 14 arranged at a substantially equal interval around one piece of the conjugate fiber structure 14 located in a center thereof are connected to one piece of the conjugate fiber structure 14 located in the center by the connected body 15 are particularly preferred because the fiber easily retains the modified shape, and splittability is improved.
[0019] In addition, if the number of the conjugate fiber structures 14 becomes too high, the structure of the modified cross-section fiber becomes complicated, and high external stress is obliged to be applied during splitting in several cases.
[0020] In the invention, as the conjugate fiber structure 14, a sheath-core conjugate fiber in which the first thermoplastic resin 11 is contained as a core component and the second thermoplastic resin 12 is contained as a sheath portion, or a side-by-side type (parallel type) conjugate fiber in which the second thermoplastic resin 12 occupies 30% or more of a fiber periphery is preferred. When the conjugate fiber structure 14 is the sheath-core conjugate fiber, the second thermoplastic resin 12 only needs to occupy the periphery of the conjugate fiber, and the conjugate fiber may be of a concentric type or an eccentric type.
[0021] Moreover, conjugate fiber structure 14 is preferably substantially circular or polygonal in a cross-sectional shape. If the fiber cross-section is substantially circular or polygonal, a bonding area during thermobonding processing of first thermoplastic resin 11 with second thermoplastic resin 12 can be increased.
[0022] Structure of connected body 15 is not particularly limited, and as shown in Fig. 1(a) to Fig. 1(c), may be formed of third thermoplastic resin 13 only, or as shown in Fig. 1(d) to Fig. 1(f), may be formed of third thermoplastic resin 13 and any other thermoplastic resin such as second thermoplastic resin 12. In particular, from a viewpoint of melting and uniting with conjugate fiber structure 14, any other thermoplastic resin preferably includes the second thermoplastic resin.
[0023] When the connected body 15 is formed of the third thermoplastic resin 13 and any other thermoplastic resin (the second thermoplastic resin 12), the connected body 15 preferably has structure in which the second thermoplastic resin 12 covers a circumference of the third thermoplastic resin 13.
[0024] When the connected body 15 comprises the third thermoplastic resin 13 and the second thermoplastic resin 12, in particular, when the connected body 15 has the structure in which the second thermoplastic resin 12 covers the circumference of the third thermoplastic resin 13, the connected body 15 is a structure in which the third thermoplastic resin 13 and the second thermoplastic resin 12 are contacted on an interface in the arbitrary cross-section perpendicular to the major axis direction of the modified cross-section fiber. In the cross-section of the connected body 15, the third thermoplastic resin 13 preferably occupies 20% or more. A ratio of the third thermoplastic resin 13 in the cross-section of connected body 15 is further preferably 60 to 100%, and most preferably, 80 to 100%. When the ratio is in the range described above, splittability between the conjugate fiber structure 14 and the connected body 15 is improved, and therefore modified cross-section fibers 1Ato IF can be easily split.
[0025] When the connected body 15 comprises the third thermoplastic resin 13 and the second thermoplastic resin 12, the second thermoplastic resin 12 comprised in conjugate fiber structure 14, and the second thermoplastic resin 12 comprised in the connected body 15 are preferably melted and united on a contact surface thereof. When the conjugate fiber structure 14 and the connected body 15 are melted and united on the contact surface, processing stability during spinning becomes satisfactory.
[0026] A length of the connected body 15 is not particularly limited. For example, in the case of a fiber having a fineness of 5 to 30 dtex in an unstretched fiber, the length is in the range of 2 to 10 micrometers, and preferably, in the range of 4 to 8 micrometers in view of spinnability and retention of the modified cross-sectional shape. When the length is in the range describe above, the processing stability during spinning becomes satisfactory, and therefore such a length is preferred.
[0027] In addition, in the invention, when the resins on the contact surface between the conjugate fiber structure 14 and the connected body 15 are melted and united, a length of the third thermoplastic resin 13 connecting two conjugate fiber structures 14 in the cross-section perpendicular to the major axis direction of the modified cross-section fiber, in a direction toward the conjugate fiber structure 14, is defined as the length of the connected body. In addition, in the connected body, the direction toward the conjugate fiber structure may be occasionally referred to as "length direction of the connected body" hereinafter.
[0028] A bonding area between the conjugate fiber structure 14 and the connected body 15 is preferably smaller from the viewpoint of splittability. As the bonding area between the conjugate fiber structure 14 and the connected body 15 is smaller, only smaller external stress during being split is required, and splitting is facilitated.
[0029] Bonding length X (see Fig. 1(a) and Fig. 1(d)) between the conjugate fiber structure 14 and the connected body 15 in the cross-section of the modified cross-section fiber is preferably equal to or less than maximum width Y (see Fig. 1(a) and Fig. 1(d)) (when the conjugate fiber structure is circular, a diameter thereof) of the conjugate fiber structure 14 in the direction perpendicular to the length direction of the connected body. When the bonding length X is equal to or less than maximum width Y of the conjugate fiber structure, splitting is facilitated. From viewpoints of the processing stability during spinning and ease of splittability, the bonding length X is preferably in the range of 50 to 95% of maximum width Y of the conjugate fiber structure in the direction perpendicular to the length direction of the connected body, and further preferably, in the range of 60 to 90% thereof.
[0030] Moreover, in the invention, in a relationship between one piece of the conjugate fiber structure 14 and one piece of the connected body 15 connected therewith, length Z (see Fig. 1(a) and Fig. 1(d)) of a connected portion between the conjugate fiber structure 14 and the connected body 15 in the fiber cross-section is preferably .65% or less of a peripheral length of the conjugate fiber structure 14, and further preferably, 50 to 15% thereof. When the length Z of the connected portion is in the range described above, splitting is facilitated, and therefore such a length is preferred. Here, the connected portion means the contact portion between the conjugate fiber structure 14 and the connected body 15. In addition, the length Z of the connected portion means a length of the contact portion between the conjugate fiber structure 14 and the connected body 15 in the fiber cross-section. As shown in Fig. 1(d), when the connected body is formed of the third thermoplastic resin 13 and the other thermoplastic resin such as the second thermoplastic resin 12, the length Z of the connected portion means the length of the connected portion on the assumption that the conjugate fiber structure 14 keeps the original structure. The peripheral length of conjugate fiber structure 14 means an estimated length when only conjugate fiber structure 14 is viewed.
[0031] In the invention, for all of the first thermoplastic resin, the second thermoplastic resin and the third thermoplastic resin, different resins can be used, but the third thermoplastic resin is preferably identical with the first thermoplastic resin from the viewpoints of processability and improvement of splittability.
[0032] The second thermoplastic resin 12 has the melting or softening point lower than the melting or softening point of first thermoplastic resin 11 as described above. Specifically, a resin having a melting or softening point lower by 15 to 150°C than the melting point of first thermoplastic resin 11 is preferably used, and a resin having a melting or softening point lower by 30 to 130°C than the melting point of first thermoplastic resin 11 is further preferably used. If the melting or softening point is in the temperature range described above, thermobonding processing utilizing a difference in the melting or softening point can be made. In the invention, the thermoplastic resin to be used is ordinarily selected based on a temperature of the melting point, but the softening point is to be adopted for the resin having no melting point.
[0033] The first to third thermoplastic resins to be used for the modified cross-section fiber according to the invention is not particularly limited as long as they meet the requirements for the melting or softening point. A fiber-formable resin is preferably used, such as a polyester resin; a polyamide resin (nylon); a polyolefin-based resin; an ABS resin; an AS resin; a polystyrene resin; an acrylic resin; polycarbonate; polyphenylene ether; polyacetal; polyphenylene sulfide; polyetheretherketone; a liquid crystal polymer; a fluorocarbon resin; a urethane resin; and an elastomer, and a polyolefin resin or a polyester resin is further preferably used. Moreover, the thermoplastic resins can also be prepared by combining plural of the resins described above.
[0034] Specific examples of the polyolefin-based resin that can be used for the modified cross-section fiber according to the invention are described below, but the polyolefin-based resin is not particularly limited thereto.
[0035] For example, polyethylene, polypropylene, polybutene-1, polyhexene-1, polyoctene-1, poly(4-methylpentene-1), polymethylpentene, 1,2-polybutadiene, 1,4-polybutadiene or the like can be used. Further, a small amount of α-olefin as a copolymer component, such as ethylene, propylene, butene-1, hexene-1, octene-1 or 4-methylpentene-1 may be contained in homopolymers described above under conditions in which the α-olefin is a component other than a monomer forming the homopolymer. Moreover, a small amount of other ethylenic unsaturated monomers such as butadiene, isoprene, 1,3-pentadiene, styrene and a-methylstyrene may be contained as the copolymer component. Moreover, two or more kinds of the polyolefin-based resins may be mixed and used.
[0036] As the resins, not only a polyolefin-based resin polymerized using an ordinary Ziegler-Natta catalyst but also a polyolefin-based resin polymerized using a metallocene catalyst and a copolymer thereof can be preferably used. Moreover, a melt mass flow rate (hereinafter, abbreviates as MFR) of the polyolefin-based resin that can be preferably used is not particularly limited, if the MFR is in the range in which the fiber can be spun, but is preferably in the range of 1 to 100 g/10 min, and further preferably, in the range of 5 to 70 g/10 min.
[0037] The polyolefin-based resin that can be used for the modified cross-section fiber in the invention preferably includes at least one kind of polyolefin-based resin selected from the group of polyethylene, polypropylene and a copolymer containing propylene as a main component. Specific examples thereof include high density polyethylene, linear low density polyethylene, low density polyethylene, polypropylene (propylene homopolymer), an ethylene-propylene copolymer containing propylene as the main component and an ethylene-propylene-butene-1 copolymer containing propylene as the main component. A term "copolymer containing propylene as the main component" means a copolymer in which a propylene unit is contained in a largest amount in copolymer components forming the copolymer.
[0038] Physical properties of polyolefin other than the MFR described above, for example, physical properties such as a Q value (weight average molecular weight/number of mean molecular weight), Rockwell hardness and the number of branched methyl chains are not particularly limited, if the physical properties meet the requirement according to the invention.
[0039] A polyester-based resin that can be used for the modified cross-section fiber according to the invention can be obtained by condensation polymerization of diol and dicarboxylic acid. Specific examples of the dicarboxylic acid used for the condensation polymerization for the polyester resin include terephthalic acid, isophthalic acid, 2,6-naphthalene dicarboxylic acid, adipic acid and sebacic acid. Specific examples of the diol used include ethylene glycol, diethylene glycol, 1,3-propanediol, 1,4-butanediol, neopentyl glycol and 1,4-cyclohexanedimethanol.
[0040] As the polyester-based resin that can be used the modified cross-section fiber in the invention, polyethylene terephthalate, polypropylene terephthalate or polybutylene terephthalate can be preferably used. Moreover, aliphatic polyester can also be used in addition to the aromatic polyester. Specific examples of a preferred aliphatic polyester include polylactic acid and polybutylene succinate. The polyester resins may be not only a homopolymer but also a copolymerized polyester (copolyester). On the occasion, as a copolymerization component, a dicarboxylic acid component such as adipic acid, sebacic acid, phthalic acid, isophthalic acid and 2,6-naphthalene dicarboxylic acid, a diol component such as diethylene glycol and neopentyl glycol, or an optical isomer such as L-lactic acid can be utilized. Specific examples of such a copolymer include polybutylene adipate terephthalate. Further, two or more kinds of the polyester resins may be mixed and used. When material cost and thermal stability of the fiber obtained are taken into consideration, as the resin used for the present conjugate fiber, an unmodified polymer formed only of polyethylene terephthalate is most preferred.
[0041] To the thermoplastic resin, an additive such as an antioxidant, a light stabilizer, an ultraviolet light absorber, a neutralizer, a nucleating agent, an epoxy stabilizer, a lubricant, an antibacterial agent, a flame retardant, an antistatic agent, a pigment and a plasticizer may be further added appropriately, when necessary, within the range in which advantageous effects of the invention are not adversely affected.
[0042] Examples of combinations of the resins constituting the modified cross-section fiber according to the invention are described below, but the combinations are not particularly limited thereto. The first thermoplastic resin and the third thermoplastic resin are preferably identical in view of processability. Moreover, when the connected body comprises the second thermoplastic resin and the third thermoplastic resin, the second thermoplastic resin comprised in the conjugate fiber structure, and the second thermoplastic resin contained in the connected body the same resin.
[0043] Specific examples of combinations of (the first thermoplastic resin and the third thermoplastic resin)-(the second thermoplastic resin) include, under conditions in which the first thermoplastic resin and the third thermoplastic resin have a higher melting point in comparison with the second thermoplastic resin, polypropylene-high density polyethylene, polypropylene-low density polyethylene, polypropylene-linear low density polyethylene, an ethylene-propylene copolymer-high density polyethylene, an ethylene-propylene copolymer-low density polyethylene, an ethylene-propylene copolymer-linear low density polyethylene, polyethylene terephthalate-an ethylene-propylene copolymer, polyethylene terephthalate-polypropylene, polyethylene terephthalate-high density polyethylene, polyethylene terephthalate-linear low density polyethylene, polyethylene terephthalate-low density polyethylene, polybutylene terephthalate-high density polyethylene, polybutylene terephthalate-low density polyethylene, polybutylene terephthalate-linear low density polyethylene, polybutylene terephthalate-polypropylene, polybutylene terephthalate-an ethylene-propylene copolymer, and polybutylene terephthalate-polyethylene terephthalate. In the combinations, a further preferred combination is polypropylene-high density polyethylene or polyethylene terephthalate-high density polyethylene.
[0044] When all of the first thermoplastic resin, the second thermoplastic resin and the third thermoplastic resin are different, under conditions in which the first thermoplastic resin has a higher melting point in comparison with the second thermoplastic resin, specific examples of combinations (the first thermoplastic resin)-(the second thermoplastic resin)-(the third thermoplastic resin) include polypropylene-high density polyethylene-polyethylene terephthalate, polypropylene-linear low density polyethylene-high density polyethylene, polypropylene-low density polyethylene-high density polyethylene, polypropylene-high density polyethylene-an ethylene-propylene copolymer, polyethylene terephthalate-high density polyethylene-an ethylene-propylene copolymer, polyethylene terephthalate-high density polyethylene-polypropylene, polyethylene terephthalate-low density polyethylene-polypropylene, polyethylene terephthalate-linear low density polyethylene-polypropylene, , polyethylene terephthalate-high density polyethylene-polybutylene terephthalate, polyethylene terephthalate-low density polyethylene-polybutylene terephthalate, polyethylene terephthalate-linear low density polyethylene-polybutylene terephthalate, polyethylene terephthalate-polypropylene-polybutylene terephthalate, polybutylene terephthalate-high density polyethylene-an ethylene-propylene copolymer, polybutylene terephthalate-low density polyethylene-an ethylene-propylene copolymer, and polybutylene terephthalate-linear low density polyethylene-an ethylene-propylene copolymer, but the combination is not limited thereto.
[0045] Specific examples of a method for producing the modified cross-section fiber according to the invention are described below, but the method is not particularly limited thereto. An example of the method for producing the modified cross-section fiber is described in which two kinds of polyolefin-based resins having different melting points are combined, the first thermoplastic resin and the third thermoplastic resin are identical, and have a melting point higher by 15°C than the melting point of the second thermoplastic resin.
[0046] Two kinds of the polyolefin-based resins are processed into the fiber by applying a melt spinning method and using a spinneret having a specific shape that can produce the modified cross-section fiber. Upon spinning, the fiber is preferably spun at a spinning temperature of 180 to 350°C and a taking-up speed is favorably adjusted to about 40 to 1500 m/min. As stretching, multi-stage stretching may be performed when necessary, and a stretching ratio may be adjusted to about 3 to 9 times. Further, the resultant tow (fiber bundle) is crimped when necessary, and then is cut into a predetermined length to be processed into a short fiber. Moreover, the tow may be processed into a long fiber without being cut.
[0047] A method of using the modified cross-section fiber according to the invention is not particularly limited, but the modified cross-section fiber may be used as a modified fiber or a splittable fiber, and preferably used properly according to a field in which the fiber is used.
[0048] In the invention, when the modified cross-section fiber according to the invention is split and used, a constituent from which the conjugate fiber is derived by being split in the modified cross-section fiber is referred to as the conjugate fiber structure, and based on the conjugate fiber structure, the fiber obtained by being split and derived from the structure is referred to as the conjugate fiber, and may be properly used in several cases. The conjugate fiber obtained by being derived therefrom is not particularly limited, but may have structure in which the connected body and the conjugate fiber structure are completely detached or at least part of the connected body is kept connected. The conjugate fiber that is derived therefrom may have a circular shape or an un-circular shape.
[0049] A method of splitting the modified cross-section fiber is not particularly limited, and splitting may be performed by a publicly known method such as needle punching and high-pressure fluid jet processing after the fiber is processed into a web and a nonwoven fabric, or may be performed by the external stress such as stretching processing in a step of producing the fiber, or fiber shrinkage in a step of heat treatment.
[0050] The modified cross-section fiber according to the invention is not particularly limited. For example, if the fiber is composed of a bi-component thermoplastic resin, a conjugate ratio is preferably in the range of 10/90 to 90/10, and further preferably, in the range of 30/70 to 70/30 in terms of a volume ratio.
[0051] Single yarn fineness of the modified cross-section fiber before the fiber is split according to the invention is preferably in the range of 0.6 to 10 dtex, and further preferably, in the range of 1.0 to 6.0 dtex. Moreover, when the modified cross-section fiber is split by high-pressure fluid jet processing or the like, mean single yarn fineness of the single fiber in an ultra-fine conjugate fiber split from the connected body after being split is preferably 0.5 dtex or less, and further preferably, 0.3 dtex or less.
[0052] The modified cross-section fiber according to the invention can be formed into a fibrous formed body according to an application through a high-order working processing when necessary.
[0053] As the fibrous formed body here, any of the fibrous formed bodies may be used, if the body has in the form of a fabric, and the body is not particularly limited. Specific examples include a woven fabric, a knitted fabric and a nonwoven fabric. Moreover, the fiber according to the invention can also be subjected to mixing with any other fiber or mixed spinning, and processed into the fibrous formed body. Moreover, the fibrous formed body may be laminated with a web-shaped material uniformized by a carding method, an air-laid method or a papermaking method, the woven fabric, the knitted fabric or the nonwoven fabric.
[0054] The fibrous formed body according to the invention can be used by mixing or by mixed spinning of any other fiber into the modified cross-section fiber. Specific examples of such any other fiber include a synthetic fiber such as a polyamide, a polyester, a polyolefin and an acryl fiber, a natural fiber such as cotton, wool and hemp, a regenerated fiber such as rayon, cupra and acetate, and a semi-synthetic fiber.
[0055] In such a step, after the fiber is spun, a surfactant can be deposited on a surface of the fiber for the purpose of static protection of the fiber, providing the fibrous formed body with smoothness for improving processability, or the like. A type and a concentration of the surfactant are appropriately adjusted according to the application. As a deposition method, a roller method, a dipping method or the like can be applied. The surfactant may be deposited in any of a spinning step, a stretching step and a crimping step. Moreover, the surfactant can also be deposited in a step other than the spinning step, the stretching step and the crimping step, for example, after forming into the fibrous formed body with regard to the short fiber or the long fiber.
[0056] A length of the modified cross-section fiber according to the invention is not particularly limited. When a web is prepared using a carding machine, the fiber having a length of 20 to 76 mm is generally used, and in the paper-making method or the air-laid method, the fiber having a length of 2 to 20 mm is preferably used.
[0057] As one example of the method for producing the fibrous formed body obtained from the modified cross-section fiber according to the invention nonwoven, specific examples of a method for producing the nonwoven fabric are described.
[0058] For example, the short fiber produced by the method for producing the modified cross-section fiber is used to prepare a web having required basis weight by applying the carding method, the air-laid method or the paper-making method. The fibrous formed body can be obtained by splitting the web prepared by the method into a fine fiber by a publicly known method such as the needle-punching method and high-pressure fluid jet processing. Further, the fibrous formed body can be also processed by a publicly known working method such as hot air or a heat roll.
[0059] The basis weight of the fibrous formed body according to the invention is not particularly limited, but is preferably in the range of 10 to 200 g/m2.
[0060] A product obtained using the modified cross-section fiber according to the invention is excellent in glossiness, concealing properties and moisture discharge properties, and therefore can be preferably used for an absorbent article such as a diaper, a napkin and an incontinence pad. Moreover, the nonwoven fabric produced using the conjugate fiber obtained by splitting the modified cross-section fiber according to the invention can be utilized in applications to various textile products, such as the absorbent article including the diaper, the napkin and the incontinence pad, a medical and sanitary material including a gown and a surgical gown, an indoor interior material including a wall sheet, a shoji paper and a floor material, a life-related material including a cover cloth, a cleaning wiper and a kitchen garbage cover, a toiletry product including a disposable toilet and a toilet cover, a pet product including a pet sheet, a diaper for a pet and a towel for a pet, an industrial material including a wiping material, a battery separator, an electric windshield wiper, a filter, a cushioning material, an oil adsorbent and an adsorbent for an ink tank, a common medical material, a bed clothing and a nursing care product.
Examples [0061] The invention will be described in more detail by way of Examples, but the invention is in no way limited by the Examples. (Thermoplastic resin) [0062] A resin described below was used as a thermoplastic resin that constitutes a conjugate fiber.
[0063] First thermoplastic resin: a propylene homopolymer (abbreviation: PP) in which MFR (at 230°C, load: 21.18 N) is 16 g/10 min, a melting point is 163°C.
[0064] Second thermoplastic resin: high density polyethylene (abbreviation: PE) in which density is 0.96 g/cm3, MFR (at 190°C, load: 21.18N) is 16 g/10 min, a melting point is 130°C.
[0065] Third thermoplastic resin: a propylene homopolymer identical with the first thermoplastic resin.
Example 1 (Production of modified cross-section fiber) [0066] The first thermoplastic resin (PP), the second thermoplastic resin (PE) and the third thermoplastic resin (PP) were used to spin a modified cross-section fiber shown in Figure 1(f) through a spinneret for the modified cross-section fiber at 50/50 in a volume ratio of (the first thermoplastic resin and the third thermoplastic resin) to the second thermoplastic resin. The modified cross-section fiber having a fineness of 9.5 dtex and having a cross-sectional shape shown in Fig. 2 was obtained.
[0067] On the occasion, as a surfactant, a fiber treating agent containing an alkyl phosphate K salt as a main component was brought into contact with a spun fiber using an oiling roll, and was deposited onto the fiber.
[0068] The resultant unstretched fiber was stretched 6 times using a stretching machine by setting a stretching temperature at 90°C, and the fiber was cut using a cutter into a short fiber.
[0069] As shown in Fig. 3, in the fiber after being stretched, a fine conjugate fiber having a fineness of 0.3 dtex was derived from the fiber after being split. The fiber is was split by being stretched, and thus the modified cross-section fiber according to the invention was found to have structure in which the fiber can be easily split.
[0070] While the present invention has been described in detail and with reference to specific embodiments thereof, it will be apparent to one skilled in the art that various changes and modifications can be made therein without departing from the spirit and scope thereof. This application is based on Japanese Patent Application No. 2014-073057 (filed March 31, 2014), and the contents thereof are herein incorporated by reference.
Industrial Applicability [0071] A modified cross-section fiber according to the invention can be preferably used for in an industrial-material field, such as a battery separator, an electric windshield wiper and a filter, and a hygienic material field, such as a diaper and a napkin.
Reference Signs List [0072] 1A, IB, 1C, 1D, 1E and 1F: Modified cross-section fibers 11: First thermoplastic resin 12: Second thermoplastic resin 13: Third thermoplastic resin 14: Conjugate fiber structure 15: Connected body X: Length X between conjugate fiber structure 14 and connected body 15 Y: Maximum width Y of conjugate fiber structure 14 Z: Connected portion between conjugate fiber structure 14 and connected body 15
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.
Patent documents cited in the description • JP2002088583A [0004] • JP2006328628A [0004] • JP2011009150A [00041 • JP2014073057A [GOTO]

Claims (10)

1. Fiber med modificeret tværsnit omfattende: (1) flere dele af sammensatte fiberstrukturer omfattende en første termoplastisk kunstharpiks og en anden termoplastisk kunstharpiks, som har et lavere smeltepunkt eller blødgøringspunkt end den første termoplastiske kunstharpiks og (2) et forbundet legeme omfattende en tredje termoplastisk kunstharpiks, som har et højere smeltepunkt eller blødgøringspunkt end den første termoplastiske kunstharpiks, hvor, i et arbitrært tværsnit af fiberen, i det mindste to dele af de sammensatte fiberstrukturer er forbundet gennem det forbundne legeme.A modified cross-sectional fiber comprising: (1) several parts of composite fiber structures comprising a first thermoplastic synthetic resin and a second thermoplastic synthetic resin having a lower melting or softening point than the first thermoplastic synthetic resin and (2) a connected body comprising a third thermoplastic synthetic resin having a higher melting point or softening point than the first thermoplastic synthetic resin, where, in an arbitrary cross-section of the fiber, at least two parts of the composite fiber structures are connected through the connected body. 2. Fiber med modificeret tværsnit ifølge krav 1, hvor det forbundne legeme yderligere omfatter den anden termoplastiske kunstharpiks og har en struktur hvor en periferi af den tredje termoplastiske kunstharpiks er dækket med den anden termoplastiske kunstharpiks.The modified cross-sectional fiber of claim 1, wherein the connected body further comprises the second thermoplastic synthetic resin and has a structure wherein a periphery of the third thermoplastic synthetic resin is covered with the second thermoplastic synthetic resin. 3. Fiber med modificeret tværsnit ifølge krav 1 ifølge krav 1 eller 2, hvor formen af et tværsnit af den sammensatte fiberstruktur er i det væsentlige cirkulær eller polygonal.The modified cross-sectional fiber of claim 1 according to claim 1 or 2, wherein the shape of a cross-section of the composite fiber structure is substantially circular or polygonal. 4. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 1 til 3, omfattende 2 til 6 dele af sammensatte fiberstrukturer.A modified cross-sectional fiber according to any one of claims 1 to 3, comprising 2 to 6 parts of composite fiber structures. 5. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 1 til 4, hvor den første termoplastiske kunstharpiks og den tredje termoplastiske kunstharpiks er den samme kunstharpiks.A modified cross-sectional fiber according to any one of claims 1 to 4, wherein the first thermoplastic resin and the third thermoplastic resin are the same resin. 6. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 1 til 5, hvor den anden termoplastiske kunstharpiks dækker en overflade af den sammensatte fiberstruktur bortset fra et forbindende stykke med det forbundne legeme.The modified cross-sectional fiber according to any one of claims 1 to 5, wherein the second thermoplastic resin covers a surface of the composite fiber structure other than a connecting piece with the connected body. 7. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 2 til 6, hvor den tredje termoplastiske kunstharpiks udgør 20% eller mere af tværsnittet af det forbundne legeme.A modified cross-sectional fiber according to any one of claims 2 to 6, wherein the third thermoplastic resin constitutes 20% or more of the cross-section of the connected body. 8. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 2 til 6, hvor den anden termoplastiske kunstharpiks omfattet i det forbundne legeme, og den anden termoplastiske kunstharpiks omfattet i den forbundne fiberstruktur er smeltede og forenede.A modified cross-sectional fiber according to any one of claims 2 to 6, wherein the second thermoplastic synthetic resin included in the bonded body and the second thermoplastic synthetic resin included in the bonded fiber structure are fused and united. 9. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 1 til 8, omfattende en struktur, hvor tre dele af den sammensatte fiberstruktur, anbragt med i det væsentlige ens afstand omkring en i midten befindende sig enkel del af den sammensatte fiberstruktur, henholdsvist er forbundet til én del af den i midten befindende sig sammensatte fiberstruktur via det forbundne legeme.A modified cross-sectional fiber according to any one of claims 1 to 8, comprising a structure, wherein three parts of the composite fiber structure, spaced substantially at a central distance about a simple portion of the composite fiber structure, respectively is connected to one part of the middle fiber composite structure via the connected body. 10. Fiber med modificeret tværsnit ifølge et hvilket som helst af kravene 1 til 9, hvor en længde af en forbunden del mellem den sammensatte fiberstruktur og det forbundne legeme i det arbitrære fibertværsnit af fiberen med det modificerede tværsnit er 65% eller mindre af en perifer længde af den sammensatte fiberstruktur, i et forhold mellem én del af den sammensatte fiberstruktur og én del af det forbundne legeme, som er forbundet dermed.A modified cross-sectional fiber according to any one of claims 1 to 9, wherein a length of an interconnected portion between the composite fiber structure and the connected body in the arbitrary fiber cross-section of the modified cross-sectional fiber is 65% or less of a peripheral length of the composite fiber structure, in a ratio of one part of the composite fiber structure to one part of the connected body associated therewith.
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JP6324789B2 (en) * 2014-03-31 2018-05-16 Esファイバービジョンズ株式会社 Irregular cross-section fiber
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Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NL292704A (en) * 1962-05-14
NL6802563A (en) * 1967-02-25 1968-08-26
CH641844A5 (en) * 1978-01-25 1984-03-15 Akzo Nv METHOD AND DEVICE FOR PRODUCING A MULTI-COMPONENT THREAD WITH A MATRIX COMPONENT AND AT LEAST ONE SEGMENT COMPONENT.
JPS5782526A (en) * 1980-10-31 1982-05-24 Toray Ind Inc Splitting type antistatic conjugate fiber
JPS6021904A (en) * 1983-07-13 1985-02-04 Toray Ind Inc Fiber generating extremely fine fibrils
JPS60185816A (en) * 1984-03-02 1985-09-21 Chisso Corp Conjugated expanded monofilament and its preparation
JPH01250412A (en) * 1988-03-31 1989-10-05 Mitsubishi Rayon Co Ltd Splittable multi fiber
JPH02175919A (en) * 1988-12-27 1990-07-09 Mitsubishi Rayon Co Ltd Heat-fusible conjugate fiber
US5429856A (en) * 1990-03-30 1995-07-04 Minnesota Mining And Manufacturing Company Composite materials and process
JP2977372B2 (en) * 1992-06-05 1999-11-15 三菱重工業株式会社 Casting method with vanishing model
CN1079453C (en) * 1996-08-27 2002-02-20 智索股份有限公司 Non-woven fabric and absorbent article using thereof
FR2790489B1 (en) * 1999-03-01 2001-04-20 Freudenberg Carl Fa TABLECLOTH NOT WOVEN IN THERMOLIA FILAMENTS OR FIBERS
US20050039836A1 (en) * 1999-09-03 2005-02-24 Dugan Jeffrey S. Multi-component fibers, fiber-containing materials made from multi-component fibers and methods of making the fiber-containing materials
US6444312B1 (en) * 1999-12-08 2002-09-03 Fiber Innovation Technology, Inc. Splittable multicomponent fibers containing a polyacrylonitrile polymer component
JP4785659B2 (en) * 2000-01-24 2011-10-05 ダイワボウホールディングス株式会社 Thermally divided composite fiber and fiber assembly
JP4608819B2 (en) * 2000-06-26 2011-01-12 チッソ株式会社 Polyolefin-based split composite fiber and fiber molded body using the same
US20030203695A1 (en) * 2002-04-30 2003-10-30 Polanco Braulio Arturo Splittable multicomponent fiber and fabrics therefrom
KR101210973B1 (en) * 2007-08-02 2012-12-12 노쓰 캐롤라이나 스테이트 유니버시티 Mixed fibers and nonwoven fabrics made from the same
JP5535555B2 (en) * 2009-08-27 2014-07-02 Esファイバービジョンズ株式会社 Thermal adhesive composite fiber and non-woven fabric using the same
US9855680B2 (en) * 2013-06-11 2018-01-02 Johns Manville Fiber-reinforced composite articles and methods of making them
JP6324789B2 (en) * 2014-03-31 2018-05-16 Esファイバービジョンズ株式会社 Irregular cross-section fiber

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