Binding tape

A fastening tape with fused nonwoven fabric and resin layers addresses the need for high abrasion resistance and ease of tearing by hand, enhancing durability in automotive wiring.

JP7842022B2Active Publication Date: 2026-04-07DENKA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-06
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing fastening tapes for automotive wiring lack both high abrasion resistance and ease of tearing by hand, failing to meet the demands of modern automotive applications that require more than 100 abrasion cycles in scrape tests.

Method used

A fastening tape design comprising a nonwoven fabric with fused portions of two different shapes and sizes, laminated with a resin layer and an adhesive layer, where the fused portions are formed by heat-sealing the nonwoven fabric to enhance tearability and abrasion resistance.

Benefits of technology

The tape achieves high abrasion resistance and ease of tearing by hand, meeting the requirements for automotive wiring applications with improved durability and ease of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] To provide a binding tape that has high abrasion resistance and good hand cutting properties. [Solution] This binding tape has a base material layer including a non-woven fabric and a resin layer laminated on one surface of the non-woven fabric and an adhesive layer, wherein the non-woven fabric is provided with at least two types of fused parts having different shapes. The fused parts preferably include a fused part 1 and a fused part 2 having different areas, and an area of the fused part 1 is preferably smaller than that of the fused part 2. Further, an interval between the fused parts 1 in a width direction of the binding tape is preferably 0.1 to 1.5 mm, and an interval between the fused parts 2 is more preferably 1.0 to 5.0 mm.
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Description

[Technical Field]

[0001] This invention relates to a fastening tape. [Background technology]

[0002] In automotive wiring, electrical wires are bundled together in a specific shape using binding tape. The tape used to bind these wires must have excellent abrasion resistance to prevent damage to surrounding walls and interior materials. On the other hand, from the perspective of ease of handling during the binding process, good tearability is also required. "Tearability" refers to the ability to easily cut the tape by hand without the need for tools such as a cutter. As fastening tapes with high abrasion resistance, for example, fastening tapes using polyethylene terephthalate (PET) knitted fabric as a base material, and fastening tapes having a base material made by laminating a nonwoven fabric of a specific thickness with a resin film have been proposed (for example, Patent Documents 1 and 2). However, these fastening tapes are difficult to tear by hand and require the use of a special jig to cut the tape, which increases the number of work steps during fastening.

[0003] As a fastening tape that combines abrasion resistance and ease of tearing by hand, Patent Document 3 proposes a wire protection material comprising a base material and an adhesive layer, which are formed by bonding two pieces of cloth together with an adhesive to create a three-layer structure. Furthermore, Patent Document 4 proposes a fastening tape comprising a fiber layer with a woven or knitted fabric interposed between two abrasion-resistant resin films, and an adhesive layer. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] Japanese Patent Publication No. 2010-154634 [Patent Document 2] Japanese Patent Publication No. 2009-137296 [Patent Document 3] Japanese Patent Publication No. 2010-225327 [Patent Document 4] Japanese Patent Publication No. 2019-119458 [Overview of the Initiative] [Problems that the invention aims to solve]

[0005] However, the wire protection materials or binding tapes described in Patent Documents 3 and 4 do not adequately achieve both abrasion resistance and ease of tearing by hand. Furthermore, in recent years, there has been a demand for higher abrasion resistance in wiring applications for automobiles and other vehicles. Specifically, there is a need for fastening tapes that can withstand more than 100 abrasion cycles in scrape abrasion tests. However, conventional fastening tapes have the problem of not being able to pass the above abrasion tests. Therefore, the present invention aims to provide a fastening tape that has high abrasion resistance and is also easy to tear by hand. [Means for solving the problem]

[0006] As a result of diligent research into the above-mentioned problems, the inventors of this invention have found that all of the aforementioned problems can be solved by using a base material layer comprising a nonwoven fabric and a resin layer, and by forming fused portions having at least two different shapes on the nonwoven fabric, thereby completing the present invention. In other words, the present invention has the following aspects. [1] A fastening tape comprising a base layer including a nonwoven fabric and a resin layer laminated on one side of the nonwoven fabric, and an adhesive layer, wherein the nonwoven fabric has fused portions having at least two different shapes. [2] The binding tape according to [1], wherein the fused portion includes a fused portion 1 and a fused portion 2 having different areas, and the area of ​​the fused portion 1 is smaller than the area of ​​the fused portion 2. [3] The fastening tape according to [2], wherein the spacing between the fused portions 1 in the width direction of the fastening tape is 0.1 to 1.5 mm. [4] The fastening tape according to [2] or [3], wherein the spacing between the fused portions 2 in the width direction of the fastening tape is 1.0 to 5.0 mm. [5] The binding tape according to any one of [1] to [4], wherein the fibers constituting the non-woven fabric are polyester fibers or polyolefin fibers. [6] The basis weight of the non-woven fabric is 50 to 200 g / m 2 The binding tape according to any one of [1] to [5]. [7] The binding tape according to any one of [1] to [6], wherein the resin layer contains at least one resin selected from polyvinyl chloride, polypropylene, polyethylene, polyvinyl alcohol, and ethylene-vinyl acetate copolymer. [8] The binding tape according to any one of [1] to [7], wherein the resin layer is composed of at least one resin selected from polyvinyl chloride, polypropylene, and polyethylene. [9] The laminated amount of the resin layer is 10 to 200 g / m 2 The binding tape according to any one of [1] to [8].

[10] The binding tape according to any one of [2] to [9], wherein the shapes of the fusion parts 1 and 2 are rectangular or elliptical, and at least one of the fusion parts 1 and 2 is provided so as to be parallel to the width direction of the binding tape.

[11] The binding tape according to any one of [1] to

[10] , which is for binding electric wires or the like.

Advantages of the Invention

[0007] According to the present invention, it is possible to provide a binding tape having high wear resistance and good tearability.

Brief Description of the Drawings

[0008] [Figure 1] It is a cross-sectional view showing one embodiment of the binding tape of the present invention. [Figure 2] It is an optical microscope photograph showing an example of the binding tape of the present invention.

Modes for Carrying Out the Invention

[0009] The present invention will be described in detail below, but the present invention is not limited to the following embodiments. [Binding tape] The present invention relates to a binding tape comprising a base layer including a nonwoven fabric and a resin layer laminated on one side of the nonwoven fabric, and an adhesive layer, wherein the nonwoven fabric is characterized by having fused portions having at least two different shapes. Such a binding tape has high abrasion resistance and good tearability by hand. In this specification, "tearability by hand" means the ability to easily cut the binding tape in the width direction by hand without using a special jig. In this specification, "width direction" means the direction perpendicular to the direction in which the tape is pulled out (length direction) when the binding tape is wound in a roll. In this specification, "width direction" may be written as "TD direction" and the length direction as "MD direction".

[0010] (base material layer) The base layer of the fastening tape of the present invention includes a nonwoven fabric and a resin layer laminated on one side of the nonwoven fabric. The nonwoven fabric also has fusion portions having at least two different shapes.

[0011] <Nonwoven fabric> The nonwoven fabric comprises fused portions having at least two different shapes. The fused portions are formed as recesses on the surface of the nonwoven fabric by joining the fibers constituting the nonwoven fabric together. The fused portions may be formed by mechanical processing or by embossing. In one embodiment of the present invention, it is preferable that the fused portions are formed by heat-fusing the fibers of the nonwoven fabric by thermal embossing. Having such fused portions improves the tearability of the binding tape by hand. Furthermore, it increases the horizontal stress relaxation that occurs during abrasion, improving abrasion resistance. Furthermore, it is preferable that the fused portion is provided on the side of the nonwoven fabric where the resin layer is not laminated (hereinafter referred to as the "other side"). That is, in one preferred embodiment, the resin layer is laminated on one side of the nonwoven fabric, and at least two different shaped fused portions may be provided on the other side of the nonwoven fabric. In the present invention, "fused portions having different shapes" include not only fused portions with different shapes, but also those with different sizes (areas). The fused portions of the nonwoven fabric may be fused portions with different areas, fused portions with different shapes, or a mixture of these. The shape of the fused portion is not particularly limited as long as it has the effects of the present invention, and examples include circular (perfect circle or ellipse), rhombus (rhombus or similar shape (but not a square)), and quadrilateral (rectangle, square, trapezoid, etc., including a rounded quadrilateral). Of these, from the viewpoint of achieving a better balance between tearability and wear resistance, a circular or quadrilateral shape is preferred, and an ellipse, rectangle, or a combination thereof is more preferred.

[0012] (Fused parts 1 and 2) In one embodiment, the fused portion includes a fused portion 1 and a fused portion 2 with different areas, and it is preferable that the area of ​​fused portion 1 is smaller than the area of ​​fused portion 2. By including fused portions 1 and 2 with different areas in this way, the tearability by hand tends to be better. The area of ​​the fused portion 1 is 0.01 to 0.5 mm². 2 Preferably, 0.1 to 0.4 mm 2 This is more preferable. Furthermore, the area of ​​the fused portion 2 is not particularly limited as long as it is larger than the area of ​​the fused portion 1 and has the effects of the present invention. In one preferred embodiment, the area of ​​the fused portion 2 is preferably 1.5 to 8 times, and more preferably 2 to 4 times, the area of ​​the fused portion 2 is preferably 1:1.5 to 1:8, and more preferably 1:2 to 1:4. Also, the area of ​​the fused portion 1 is preferably 0.1 to 0.4 mm² as described above. 2In that case, the area of ​​the fused portion 2 would be, for example, 0.15 to 3.2 mm². 2 Preferably, 0.2 to 1.6 mm 2 This is preferable. The shapes of fused portion 1 and fused portion 2 may be the same or different. It is preferable that the shapes of fused portion 1 and fused portion 2 are the same, as this tends to result in better tearability. In other words, it is more preferable that fused portion 1 and fused portion 2 are the same in shape but have different areas. Note that "the shapes of fused portion 1 and fused portion 2 are the same" means, for example, that if fused portion 1 is rectangular, then fused portion 2 is also rectangular, and the ratio of the long side to the short side of the rectangle may be the same or different. The shapes of the fused portions 1 and 2 are preferably circular or square, and more preferably elliptical or rectangular. In one preferred embodiment, it is preferable that at least one of the fusion portions 1 and 2 is provided such that its long side (or major axis) is parallel to the TD direction of the binding tape. In a more specific embodiment, it is preferable that the shapes of the fusion portions 1 and 2 are rectangular or elliptical, and that the long side of the rectangle or the major axis of the ellipse is provided such that it is parallel to the TD direction of the binding tape. With such a configuration, the ability of the binding tape to be torn by hand is further improved. It is also particularly preferable that both the fusion portion 1 and the fusion portion 2 are provided such that they are parallel to the TD direction of the binding tape. In one embodiment, when the fused portions 1 and 2 are each rectangular, the ratio of the long side to the short side (long side:short side) of the rectangle is preferably 1.5:1 to 8:1, and more preferably 3:1 to 6:1. Furthermore, from the viewpoint of avoiding the tape easily breaking after binding, it is preferable that it has a certain degree of strength in the MD direction. The binding tape of the present invention has good tearability in the TD direction of the tape, while being difficult to cut in the MD direction.

[0013] In one embodiment, the spacing between fused portions 1 in the width direction of the binding tape (hereinafter referred to as "TD1") is preferably 0.1 to 1.5 mm, more preferably 0.3 to 1.3 mm, and particularly preferably 0.5 to 1.1 mm. Similarly, the spacing between fused portions 2 in the width direction of the binding tape (hereinafter referred to as "TD2") is preferably 1.0 to 5.0 mm, more preferably 1.0 to 4.5 mm, and particularly preferably 2.5 to 4.5 mm. If TD1 and TD2 are within these ranges, the tape tends to tear more easily by hand. Furthermore, in one embodiment, it is more preferable that TD1 is 0.8 mm and TD2 is 2.7 to 4.5 mm. Note that TD1 refers to the spacing between two fused portions 1 aligned in the TD direction of the binding tape. The same applies to TD2. TD1 and TD2 can be measured using an optical microscope. Furthermore, if the fused portions 1 and 2 are formed by embossing, the above range can be achieved by adjusting the distance between the protrusions on the embossing roll corresponding to the fused portion 1, or the distance between the protrusions corresponding to the fused portion 2. The fused portions 1 and 2 may be randomly arranged on the nonwoven fabric, or they may be arranged in a linear or grid pattern. Of these, from the viewpoint of improving tearability by hand, it is more preferable that they be arranged in a linear pattern parallel to the TD direction of the binding tape. Furthermore, it is particularly preferable that the fused portions 1 and 2 are each arranged as independent linear fused portions (i.e., no other than fused portion 1 or fused portion 2 are included in a single group of linear fused portions) and are arranged parallel to the TD direction. When the fused portions 1 and 2 are each arranged as independent linear fused portions, the distance in the MD direction between the group of linear fused portions composed of fused portion 1 and the group of linear fused portions composed of fused portion 2 may be 0.1 to 3 mm or 0.4 to 1.8 mm. The nonwoven fabric may include fused portions other than the fused portions 1 and 2 described above. The fused portions of the nonwoven fabric are of at least two types, preferably two to five types, and particularly preferably two to three types.

[0014] Figure 1 is a cross-sectional view showing one aspect of the binding tape of the present invention. The binding tape 100 in Figure 1 has a structure in which a non-woven fabric 10, a resin layer 20, and an adhesive layer 30 are laminated in this order. Figure 2 is an optical microscope photograph showing an example of the binding tape of the present invention. Figure 2 is a photograph taken with an optical microscope of the surface of the binding tape 100 having the structure of Figure 1, where the fused portion of the non-woven fabric 10 is provided. In Figure 2, the vertical direction is the MD direction of the binding tape 100, and the horizontal direction is the TD direction. On the surface of the non-woven fabric 10, rectangular fused portions 1 and fused portions 2 are provided. Also, the long sides of the rectangles of the fused portions 1 and fused portions 2 are provided so as to be linear and parallel to the width direction of the binding tape 100. As shown in Figure 2, in the binding tape 100, the interval in the width direction between the linearly arranged fused portions 1 is TD1. Similarly, the interval in the width direction between the linearly arranged fused portions 2 is TD2.

[0015] The non-woven fabric used for the base material layer is not particularly limited as long as it has the effects of the present invention. For example, a non-woven fabric made by the spunbond method, a non-woven fabric made by the spunlace method, a non-woven fabric made by the meltblow method, etc. can be used. Also, the non-woven fabric may be a single layer, or may be a laminated non-woven fabric composed of a plurality of layers. In the case of a laminated non-woven fabric, it may be a laminate of non-woven fabrics made by a plurality of methods. Among these, from the viewpoint of mechanical strength, it is preferable to use a non-woven fabric (spunbond non-woven fabric) made by the spunbond method. Also, the basis weight of the non-woven fabric is preferably 50 - 20 2 g / m, and more preferably 60 - 140 g / m 2 . If the basis weight of the non-woven fabric is within the above range, while suppressing an increase in the tape weight, the wear resistance is likely to be improved. Also, as the porosity, 40 - 90% is preferable. Also, as the apparent density, 0.1 - 0.4 g / cm 3 is preferable, and more preferably 0.2 - 0.4 g / cm 3 . If the apparent density of the non-woven fabric is within the above range, while maintaining high wear resistance, the flexibility of the bound product is likely to be good.

[0016] The fibers constituting the nonwoven fabric are not particularly limited as long as they have the effects of the present invention, and examples include aramid fibers, glass fibers, cellulose fibers, nylon fibers, vinylon fibers, polyester fibers, polyolefin fibers, rayon fibers, etc. These may be used individually or in combination of two or more. Of these, polyester fibers or polyolefin fibers are preferred, and polyester fibers are more preferred, because they easily achieve both high abrasion resistance and tearability, and also easily improve heat resistance. The fiber diameter of the fibers constituting the nonwoven fabric is preferably 3 to 30 μm, and more preferably 5 to 20 μm, as this allows for a better balance between high abrasion resistance and ease of tearing by hand. If the fiber diameter of the nonwoven fabric is within the above range, it becomes easier to obtain high abrasion resistance while maintaining the flexibility of the bundled product.

[0017] <Resin layer> The resin layer is laminated on one side of the nonwoven fabric. In one embodiment, it is preferable that the resin layer is directly laminated on one surface of the nonwoven fabric. The inclusion of the nonwoven fabric and resin layer in the base layer improves the abrasion resistance of the binding tape. The resin constituting the resin layer is not particularly limited as long as it has the effects of the present invention. It is more preferable to include at least one resin selected from polyvinyl chloride (PVC), polypropylene (PP), polyethylene (PE), polyvinyl alcohol (PVA), and ethylene-vinyl acetate copolymer (EVA) because abrasion resistance is more easily improved, and it is even more preferable to be composed of at least one resin selected from PVC, PP, and PE. Note that these PVC, PP, PE, PVA, and EVA may contain small amounts of additives or comonomers, as long as they do not hinder the effects of the present invention.

[0018] As for the PVC, for example, one with an average degree of polymerization of 500 to 3000 is preferred, one with an average degree of polymerization of 700 to 2000 is more preferred, and one with an average degree of polymerization of 800 to 1500 is particularly preferred. The average degree of polymerization refers to the value calculated according to JIS-K6720-2 by dissolving 200 mg of resin in 50 mL of nitrobenzene, measuring the specific viscosity of this polymer solution using an Ubbelohde viscometer in a 30°C constant temperature bath. PVC may contain plasticizers for reasons of tearability and flexibility. As plasticizers, phthalate-based plasticizers, isophthalate-based plasticizers, terephthalate-based plasticizers, adipic acid-based plasticizers and their polyester-based plasticizers, phosphate-based plasticizers, trimellitic acid-based plasticizers, epoxy-based plasticizers, etc., can be used. Specific examples of plasticizers include diisononyl phthalate (DINP), diheptyl phthalate (DHP), di-2-ethylhexyl phthalate (DOP), di-n-octyl phthalate (n-DOP), diisodecyl phthalate (DIDP), di-2-ethylhexyl isophthalate (DOIP), di-2-ethylhexyl terephthalate (DOTP), benzyl butyl phthalate (BBP), tri-2-ethylhexyl trimellitate (TOTM), and arginine. Examples include di-2-ethylhexyl pirate (DOA), tricresyl phosphate (TCP), benzyl octyl adipate (BOA), adipic acid-propylene glycol polyester, adipic acid-butylene glycol polyester, phthalate-propylene glycol polyester, diphenyl cresyl phosphate (DPCP), diisodecyl adipate, epoxidized soybean oil, epoxidized linseed oil, and chlorinated paraffin. These may be used individually or in combination of two or more. Of the above plasticizers, DINP is more preferred because it is inexpensive and has a high plasticizing effect. If the PVC contains a plasticizer, the content is preferably 40 to 70 parts by mass, more preferably 50 to 65 parts by mass, and even more preferably 57 to 65 parts by mass, per 100 parts by mass of polyvinyl chloride resin. Inorganic fillers, modifiers, and other additives may be added to the PVC as needed, to the extent that they do not impair the effects of the present invention. Examples of other additives include colorants, stabilizers, antioxidants, UV absorbers, and lubricants. The amounts of these additives are arbitrary.

[0019] Examples of PP include resins having isotactic or syndiotactic crystalline properties. Furthermore, PP may be copolymerized with a small amount of comonomer. Such PP may have a melting point of 155-175°C, preferably 160-170°C, as determined by differential scanning calorimetry (DSC).

[0020] As for PVA, for example, PVA with a degree of saponification of 70 to 90 mol% is preferred. Furthermore, from the viewpoint of abrasion resistance and ease of tearing by hand, EVA with an ethylene content in the range of 5 to 99%, preferably 10 to 98%, is preferred.

[0021] Examples of PE include low-density polyethylene (LDPE) and high-density polyethylene (HDPE). For example, LDPE has a density of 0.91 g / cm³. 3 More than 0.95g / cm 3 Less than 0.93-0.94 g / cm³ 3 Examples include those with a density of 0.95 g / cm³. Furthermore, HDPE can have, for example, a density of 0.95 g / cm³. 3 More than 0.97g / cm 3 The following is preferably 0.95 to 0.96 g / cm³. 3 Examples include those with a melting point of 110 to 140°C, preferably 120 to 135°C, as determined by differential scanning calorimetry (DSC).

[0022] The resin layer may be formed by impregnating or coating a nonwoven fabric with the aforementioned resin, or it may be formed by laminating a film or sheet containing the aforementioned resin onto a nonwoven fabric. If the resin layer is a layer formed by impregnating or coating a nonwoven fabric with the aforementioned resin, methods for forming the resin layer include, for example, coating it using a gravure coater, comma coater, die coater, etc. On the other hand, when forming a resin layer by laminating a film or sheet containing the aforementioned resin onto a nonwoven fabric, the film or sheet is preferably, for example, a film or sheet obtained by extrusion film formation using a sheet extruder. In one embodiment, from the viewpoint of ease of tearing by hand, a film or sheet containing PVC is preferred as the resin layer. In one embodiment, the amount of resin layer laminated is 10-200 g / m². 2 Preferably, 70-180 g / m² 2 More preferably, 100-150 g / m 2 This is particularly preferable. If the amount of resin layer lamination is within the aforementioned range, it is easier to achieve both ease of cutting by hand and high abrasion resistance. In one embodiment, the base layer may consist only of a nonwoven fabric and a resin layer. The thickness of the base layer is preferably 300 to 600 μm, and more preferably 300 to 500 μm. If the thickness of the base layer is within this range, it is easier to achieve both easy tearability and high abrasion resistance. The thickness of the base layer is measured at three points using a dial gauge as specified in JIS B 7503, and the average value is used. Furthermore, if the base layer consists only of a nonwoven fabric and a resin layer, the thickness of the base layer refers to the value measured using a dial gauge in the portion of the nonwoven fabric that does not have a fused section.

[0023] In the fastening tape of the present invention, the fused portion provided in the base layer is preferably formed by heat-sealing the fibers constituting the nonwoven fabric by heat embossing, as described above. That is, it is preferably formed by sandwiching the nonwoven fabric between a heat embossing roll having protrusions for forming the fused portion of the present invention formed on its surface and a flat roll, and applying pressure. The heat embossing may be performed in one step using an embossing roll having at least two different shapes of protrusions formed on its surface, or it may be performed in multiple steps using a plurality of embossing rolls. The temperature used for heat embossing can be adjusted as appropriate depending on the fibers that make up the nonwoven fabric. For example, when using a nonwoven fabric made of polyester fibers, 180 to 250°C is preferred, and 200 to 240°C is more preferred.

[0024] (Adhesive layer) The adhesive layer of the present invention is preferably composed of an adhesive. The adhesive is not particularly limited as long as it has the effects of the present invention, and adhesives conventionally used in binding tapes can be used as appropriate. Specifically, for example, acrylic adhesives, rubber adhesives, silicone adhesives, urethane adhesives, etc. can be used as adhesives.

[0025] As the acrylic adhesive, for example, one mainly composed of an acrylic polymer can be used. Examples of the acrylic polymers include alkyl (meth)acrylates and polymers of carboxyl group-containing unsaturated monomers. Examples of alkyl (meth)acrylates include methyl acrylate, methyl methacrylate, ethyl acrylate, ethyl methacrylate, n-propyl acrylate, n-propyl methacrylate, isopropyl acrylate, isopropyl methacrylate, n-butyl acrylate, n-butyl methacrylate, isobutyl acrylate, isobutyl methacrylate, sec-butyl acrylate, sec-butyl methacrylate, tert-butyl acrylate, tert-butyl methacrylate, 2-ethylhexyl acrylate, 2-ethylhexyl methacrylate, n-octyl acrylate, n-octyl methacrylate, isooctyl acrylate, isooctyl methacrylate, n-nonyl acrylate, n-nonyl methacrylate, isononyl acrylate, and isononyl methacrylate. These may be used individually or in combination of two or more.

[0026] The carboxyl group-containing unsaturated monomer is not particularly limited as long as it can copolymerize with the alkyl (meth)acrylate mentioned above and has the effects of the present invention. For example, acrylic acid, methacrylic acid, itaconic acid, fumaric acid, maleic acid, etc., can be used. These may be used individually or in combination of two or more.

[0027] The acrylic polymer may also be a copolymer containing monomers other than alkyl (meth)acrylates and carboxyl group-containing unsaturated monomers as exemplified above. Other monomers include, for example, hydroxyl group-containing monomers such as 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, and hydroxyhexyl (meth)acrylate; nitrogen-containing (meth)acrylates such as (meth)acrylamide, acryloylmorpholine, and (meth)acrylonitrile; and vinyl acetate, styrene, vinylitene chloride, and vinyl propionate. These may be used individually or in combination of two or more.

[0028] In one embodiment of the present invention, when an acrylic adhesive is used as the adhesive constituting the adhesive layer, it is preferable that the acrylic polymer is crosslinked in order to prevent the phenomenon of low molecular weight components contained in the acrylic adhesive permeating through the nonwoven fabric of the substrate layer (show-through). Methods for crosslinking acrylic polymers include, for example, irradiation with active energy rays (ultraviolet light, electron beams, etc.) and adding an arbitrary crosslinking agent. Examples of crosslinking agents include epoxy crosslinking agents, polyfunctional isocyanate crosslinking agents, melamine resin crosslinking agents, metal salt crosslinking agents, metal chelate crosslinking agents, amino resin crosslinking agents, and peroxide crosslinking agents. These may be used individually or in combination of two or more.

[0029] Examples of rubber-based adhesives include those obtained by appropriately blending at least one rubber component selected from natural rubber and synthetic rubber with at least one tackifier selected from the group consisting of rosin resins, terpene resins, petroleum resins, etc. Examples of synthetic rubbers include at least one selected from the group consisting of styrene-isoprene-styrene block copolymer (SIS), styrene-butadiene-styrene block copolymer (SBS), hydrogenated styrene-based block copolymers (SIPS, SEBS), styrene-butadiene rubber (SBR), polyisoprene rubber (IR), polyisobutylene (PIB), chloroprene rubber (CR), and butyl rubber (IIR). Of these, from the viewpoint of easily achieving both high tackiness and prevention of adhesive residue on the back, a combination of natural rubber and at least one synthetic rubber selected from SBR, CR, and IIR is preferred, and a combination of natural rubber and SBR is particularly preferred.

[0030] Examples of silicone-based adhesives include those made by appropriately blending silicone rubber with silicone resin, silicone oil, etc.

[0031] Examples of urethane-based adhesives include those obtained by reacting polyols such as polyether-based polyols and polyester-based polyols with polyisocyanates such as tolylene diisocyanate (TDI), diphenylmethane diisocyanate (MDI), hexamethylene diisocyanate (HDI), and xylylene diisocyanate (XDI).

[0032] The adhesive used to form the adhesive layer may contain any additives as described above. Examples of additives include softeners, tackifiers, surface lubricants, leveling agents, antioxidants, corrosion inhibitors, light stabilizers, UV absorbers, heat stabilizers, polymerization inhibitors, silane coupling agents, lubricants, inorganic or organic fillers, metal powders, pigments, etc. These may be used individually or in combination of two or more.

[0033] Examples of tackifiers include petroleum-based resins such as aliphatic copolymers, aromatic copolymers, aliphatic-aromatic copolymers, and alicyclic copolymers; coumarone-indene resins; terpene resins; terpene phenol resins; rosin-based resins such as polymerized rosin; (alkyl)phenol resins; xylene resins; or hydrogenated versions thereof. These may be used individually or in combination of two or more.

[0034] In one embodiment of the present invention, a rubber-based adhesive is preferably used as the adhesive for forming the adhesive layer, from the viewpoint of high adhesive strength and prevention of adhesive residue on the back. The amount of adhesive layer to be applied is 10-100 g / m². 2 Preferably, 20-80 g / m 2 More preferably, 20-60 g / m 2 This is particularly preferable. If the amount of adhesive layer is within the aforementioned range, it is easier to achieve both tearability and high abrasion resistance. Furthermore, the adhesive layer may be composed of multiple layers. When the adhesive layer is composed of multiple layers, it is preferable that the total amount of adhesive layers is adjusted to fall within the aforementioned range.

[0035] In one embodiment, the binding tape of the present invention preferably has a total thickness of 200 to 700 μm, more preferably 250 to 500 μm, and even more preferably 300 to 450 μm. The binding tape of the present invention having the above configuration can easily achieve both high abrasion resistance and ease of tearing by hand, even when its total thickness is in the range of 200 to 700 μm. In one embodiment, the total thickness of the binding tape (total thickness of the base layer and adhesive layer) is 100-400 g / m², from the viewpoint of achieving both tearability and high abrasion resistance. 2 Preferably, 180-320 g / m² 2 More preferably, 220-280 g / m 2 That is particularly preferable.

[0036] In one embodiment, the fastening tape of the present invention preferably has a scrape abrasion resistance of 100 times or more, and more preferably 1000 times or more, as measured in accordance with ISO 6722. Specifically, the scrape abrasion resistance refers to the value measured by the following method. <Method for measuring the number of scrape wear cycles> A 10mm diameter steel rod is covered with a 19mm wide, 50mm long layer of binding tape along its longitudinal direction. Next, a 0.45mm diameter piano wire is brought into contact with the base layer of the binding tape, and a load of 7N is applied. The wire is then moved back and forth over a distance of 15.5mm in the longitudinal direction at a speed of 60 cycles / minute. During this process, the piano wire rubs against the binding tape, and the number of cycles required for the binding tape to be penetrated is defined as the number of scrape abrasion resistance cycles.

[0037] Furthermore, in one embodiment, the binding tape of the present invention preferably has a tear load in the TD direction of 30 N or less, measured in accordance with JIS K7128-2 (ISO6383-2:1983), and more preferably between 3 and 25 N. If the tear load is 30 N or less, it becomes easier to achieve good tearability by hand. Specifically, the tear load refers to the value measured by the following method. <Method for measuring tear load> A 9mm long slit is made in the width direction at the center of the length direction of a 19mm wide, 75mm long binding tape. Next, the tape is clamped and fixed to the sample chuck of an Elmendorf testing machine (No. 163, manufactured by Toyo Seiki Co., Ltd.) so that its width direction is horizontal to the ground. Under conditions of 23°C and 50% RH humidity, a 2.4kg sector-shaped pendulum is dropped under its own weight from a position with a swing angle of 70 degrees from the ground, tearing the test piece. The value on the scale at this time is read, and the load required for tearing is calculated.

[0038] [Manufacturing method for binding tape] As a method for manufacturing the binding tape of the present invention, for example, a fusion portion is formed on one side of a nonwoven fabric by the aforementioned heat embossing process. Next, a resin film is produced by a sheet extrusion method. Then, a resin is laminated onto one side of the nonwoven fabric by a heat lamination method to form a base layer containing the nonwoven fabric and the resin layer. After that, the binding tape can be manufactured by a method in which the aforementioned adhesive is directly applied to the base layer to form an adhesive layer, or by a method in which the adhesive applied to another sheet is transferred to the base layer. When the base layer is composed of a nonwoven fabric and a resin layer, it is preferable to apply the adhesive for forming the adhesive layer onto the resin layer. Methods for applying adhesive to a substrate layer or another sheet include, for example, the roll coating method, spray coating method, gravure coating method, reverse coating method, rod coating method, bar coating method, die coating method, kiss coating method, reverse kiss coating method, and air knife coating method.

[0039] [Application] As described above, the fastening tape of the present invention has high abrasion resistance and is also easy to tear by hand. Therefore, it can be suitably used in fields where these properties are required, for example, as a fastening tape for automotive electrical wires. Of course, the fastening tape of this embodiment is not limited to the fastening of automotive electrical wires.

[0040] Another more preferred embodiment of the fastening tape of the present invention is a fastening tape having a base layer consisting of a nonwoven fabric and a resin layer laminated on one side of the nonwoven fabric, and an adhesive layer laminated on the resin layer, wherein the nonwoven fabric has fused portions 1 and fused portions 2 of different areas, and the long sides of the fused portions 1 and fused portions 2 are parallel to the width direction of the fastening tape. The total thickness of the fastening tape is more preferably 250 to 500 μm. The nonwoven fabric is more preferably a nonwoven fabric made by the spunbond method using polyester fibers or polyolefin fibers. Furthermore, the resin layer is more preferably composed of at least one resin selected from PVC, PE, and PP. [Examples]

[0041] The present invention will be described in detail below with reference to examples, but the present invention is not limited to the following description.

[0042] [Example 1] (Creation of the base layer) Fiber diameter 10 μm, basis weight 70 g / m 2 Apparent density 0.28 g / m³ 3 Using polyethylene terephthalate fibers, a nonwoven fabric was created by the spunbond method, and fused sections 1 and 2 were formed on it by an embossing method. Fused section 1 is rectangular in shape and has an area of ​​0.3 mm². 2 The shape of the fused portion 2 was rectangular, and its area was 0.8 mm². 2 These fused sections 1 and 2 were formed so that the longer sides of the rectangle were parallel to the TD direction. Furthermore, fused section 1 and fused section 2 were each formed as independent, linear fused sections. Also, TD1 was 0.8 mm and TD2 was 2.7 mm. Next, a 110 μm thick PVC film, extruded using a sheet extruder (T-die width 500 mm, φ40 mm extruder (manufactured by Tanabe Plastic Machinery Co., Ltd.)), was laminated to the side of the nonwoven fabric without a fused joint using a heat lamination method to form a resin layer. The amount of resin layer laminated was 140 g / m². 2The PVC used to make up the resin layer had the following composition. (Composition of PVC resin) The following ingredients were blended with 100 parts by mass of PVC (homopolymer of polyvinyl chloride, average degree of polymerization 1300, product name: "TH-1300", manufactured by Taiyo Vinyl Chloride Co., Ltd.): 58 parts by mass of DINP (manufactured by J-Plus Co., Ltd.), 2 parts by mass of epoxidized soybean oil (product name: "Chemiser SNE-50", manufactured by Sanwa Synthetic Chemical Co., Ltd.), 2 parts by mass of Ca-Zn-Mg composite stabilizer (product name: "OW-5200", manufactured by Sakai Chemical Industry Co., Ltd.), and 28 parts by mass of calcium carbonate (product name: "Calcies® P", manufactured by Kamishima Chemical Industry Co., Ltd.).

[0043] (Making binding tape) A rubber-based adhesive emulsion was prepared by mixing 10 parts by mass (solids) of natural rubber latex (product name: "HA LATEX", manufactured by Resitex Co., Ltd.), 40 parts by mass (solids) of styrene-butadiene rubber latex (product name: "T-093A", manufactured by JSR Corporation), and 50 parts by mass (solids) of petroleum resin emulsion tackifier (product name: "AP-1100-NT", manufactured by Arakawa Chemical Industries, Ltd.). Next, an adhesive layer was formed on the resin layer of the base material layer (i.e., the side where the nonwoven fabric was not laminated) using the comma coater method to obtain a binding tape. The amount of adhesive layer laminated was 50 g / m 2 The total amount of adhesive tape obtained was 260 g / m². 2 The total thickness was 360 μm. The abrasion resistance and tearability of the binding tape were evaluated according to the following procedure. The results are shown in Table 1.

[0044] <Evaluation of wear resistance> A 10mm diameter steel rod was fitted with a single layer of binding tape measuring 19mm in width and 50mm in length along its longitudinal direction. A 0.45mm diameter piano wire was brought into contact with the nonwoven fabric side of the binding tape and, under conditions of 23°C and 50% RH humidity, a load of 7N was applied. The wire was then moved back and forth at a speed of 60 cycles / minute over a distance of 15.5mm in the longitudinal direction. The piano wire rubbed against the binding tape, and the number of cycles until the binding tape was penetrated was defined as the number of scrape abrasion cycles. Furthermore, the abrasion resistance was evaluated according to the following evaluation criteria, with a rating of B or higher indicating a pass (high abrasion resistance). In the following evaluation criteria, binding tape with an A rating (scrape abrasion cycles of 1000 or more) has abrasion resistance of Class D according to the European automotive standard LV312. (Evaluation Criteria) A: It can withstand more than 1000 scraping cycles. B: The number of scrape wear cycles is between 100 and 1000. C: The number of scrape wear cycles is less than 100.

[0045] <Evaluation of the ability to end a relationship quickly> The tear load in the TD direction of the binding tape was evaluated in accordance with JIS K7128-2 (ISO 9383-2:1983). Specifically, a 9 mm long slit was made in the width direction at the center of the length direction of a binding tape that was 19 mm wide and 75 mm long. Next, the tape was clamped and fixed in the sample chuck of an Elmendorf testing machine (No. 163, manufactured by Toyo Seiki Co., Ltd.) so that the width direction was horizontal to the ground. Under conditions of a temperature of 23°C and a humidity of 50% RH, a 2.4 kg sector pendulum was dropped under its own weight from a position with an upward swing angle of 70 degrees from the ground, tearing the test piece. The value on the scale at this time was read, and the load required for tearing was calculated. Furthermore, the ease of tearing by hand was evaluated according to the following evaluation criteria, and a rating of B or higher was considered a pass (good ease of tearing by hand). A rating of C was considered to be poor at tearing by hand (a jig is required to cut the tape). (Evaluation Criteria) A: The tear load in the TD direction is less than 15N. B: The tear load in the TD direction is between 15N and 30N. The tear load in the C:TD direction is greater than 30N.

[0046] [Examples 2-12, Comparative Example 1] The binding tapes were prepared in the same manner as in Example 1, except that the nonwoven fabric, resin layer, and fused section were configured as shown in Tables 1 and 2. The abrasion resistance and tearability of each binding tape were evaluated in the same manner as in Example 1. In Tables 1 and 2, "NR / SBR" refers to natural rubber and synthetic rubber (styrene-butadiene rubber). The adhesive (NR / SBR) used in Examples 2-12 and Comparative Example 1 was the same adhesive used in Example 1. In Tables 1 and 2, "PET" refers to polyethylene terephthalate fiber, and "PP" refers to polypropylene fiber. The "PVC" in Examples 2-6 and 8-9 was the same PVC resin as in Example 1. Furthermore, the "EVA" in Example 7, the "LDPE" in Example 10, the "HDPE" in Example 11, and the "PP" in Example 12 were resins with the following compositions. (EVA resin) We used EVA resin with an ethylene content of 94% (product name: "Novatec LV211A", manufactured by Nippon Polyethylene Co., Ltd.). (LDPE resin) Density is 0.94 g / cm³ 3 We used LDPE resin (product name: "Novatec LL UH943", manufactured by Nippon Polyethylene Co., Ltd.) with a melting point of 127°C as determined by differential scanning calorimetry (DSC). (HDPE resin) Density is 0.95 g / cm³ 3 We used HDPE resin (product name: "Novatec HD HF313", manufactured by Nippon Polyethylene Co., Ltd.) with a melting point of 132°C as determined by differential scanning calorimetry (DSC). (PP resin) A PP resin (product name: "PL400A", manufactured by Sun Allomer Co., Ltd.) with a melting point of 168°C determined by differential scanning calorimetry (DSC) was used.

[0047] [Table 1]

[0048] [Table 2]

[0049] As shown in Tables 1-2, the binding tapes of Examples 1-12, which satisfy the configuration of the present invention, exhibited high abrasion resistance and good tearability by hand. Furthermore, it was found that the binding tapes of Examples 1-4, 6, and 9-12 also possessed excellent abrasion resistance equivalent to Class D of the European automotive standard LV312. On the other hand, the binding tape of Comparative Example 1, which had only one type of fused portion formed on the nonwoven fabric, exhibited good abrasion resistance, but it was not tearable by hand, and a special jig was required to cut the tape. From these results, it was confirmed that the binding tape of the present invention has high abrasion resistance and good tearability by hand. [Explanation of Symbols]

[0050] 1: Fusion part 1 2: Fusion part 2 10: Nonwoven fabric 20: Resin layer 30: Adhesive layer 100: Binding tape

Claims

1. A fastening tape having a base layer including a nonwoven fabric and a resin layer laminated on one side of the nonwoven fabric, and an adhesive layer, wherein the nonwoven fabric has at least two types of fusion portions, The fused portion includes a fused portion 1 and a fused portion 2 having different areas. The area of ​​the fused portion 1 is smaller than the area of ​​the fused portion 2. The shapes of the fused portion 1 and the fused portion 2 are rectangular. Both the fusion portion 1 and the fusion portion 2 are provided as independent, linear fusion portions, with their longer sides parallel to the width direction of the binding tape. The spacing between fused portions 1 in the width direction of the binding tape is 0.5 to 1.1 mm, and the spacing between fused portions 2 in the width direction of the binding tape is 2.5 to 4.5 mm. The longitudinal distance between the linear fusion section group formed by the fusion section 1 and the linear fusion section group formed by the fusion section 2 is 0.1 to 3 mm. The basis weight of the aforementioned nonwoven fabric is 60 to 140 g / m². 2 (However, 60g / m 2 (excluding) and the amount of the resin layer laminated is 100 to 200 g / m² 2 That is, fastening tape.

2. The fastening tape according to claim 1, wherein the fibers constituting the nonwoven fabric are polyester fibers or polyolefin fibers.

3. The fastening tape according to claim 1 or 2, wherein the resin layer comprises at least one resin selected from polyvinyl chloride, polypropylene, polyethylene, polyvinyl alcohol, and ethylene-vinyl acetate copolymer.

4. The fastening tape according to claim 1 or 2, wherein the resin layer is composed of at least one resin selected from polyvinyl chloride, polypropylene, and polyethylene.

5. A binding tape for bundling electric wires, according to any one of claims 1 to 4.

Citation Information

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