Synthetic leather and skin materials

The synthetic leather structure with laminated resin layers and hollow particles allows for uniform deformation during embossing, creating sharp edges in the textured pattern, enhancing design and maintaining abrasion resistance.

JP7723752B2Active Publication Date: 2025-08-14SEIREN CO LTD
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2023552867
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-08
Filing Date
2022-10-03
Publication Date
2025-08-14
Estimated Expiration
2042-10-03

AI Technical Summary

Technical Problem

Existing synthetic leather technologies struggle to create a textured pattern with sharp edges, which is essential for enhancing the design and aesthetic appeal.

Method used

A synthetic leather structure comprising a fibrous base material with a laminated porous resin layer containing hollow particles, where the resin layers have different softening temperatures and hole sizes, allowing for uniform deformation during embossing to achieve sharp edges in the concave-convex pattern.

Benefits of technology

The solution enables the formation of synthetic leather with sharp edges in the textured pattern, improving design quality and maintaining abrasion resistance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007723752000011
    Figure 0007723752000011
  • Figure 0007723752000012
    Figure 0007723752000012
  • Figure 0007723752000013
    Figure 0007723752000013
Patent Text Reader

Abstract

This synthetic leather (10) includes a fibrous base material (20) and a porous resin layer (30). The porous resin layer (30) is laminated on the fibrous base material (20). The porous resin layer (30) has a plurality of holes (40). The porous resin layer (30) contains a plurality of hollow particles (43) in a resin serving as a base material of the porous resin layer (30). The plurality of hollow particles (43) is dispersed in the resin serving as the base material of the porous resin layer (30). The hollow particles (43) each have a hole (40) therein.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to synthetic leather and a skin material having a textured pattern on the surface of the synthetic leather. [Background technology]

[0002] A technology related to synthetic leather for forming a skin material has been proposed. Patent Document 1 discloses a leather-like sheet. In the leather-like sheet, a surface layer and a finishing layer are laminated on at least one surface of a fibrous base layer. The surface layer is porous or non-porous and made of a polymer. This polymer is mainly composed of polyurethane with a softening temperature of 130 to 185°C. The finishing layer is non-porous and made of a polymer. This polymer has a softening temperature at least 30°C higher than that of the polyurethane of the surface layer. The finishing layer contains a colorant. The surface layer constitutes an intermediate portion between the fibrous base layer and the finishing layer. The leather-like sheet allows for clear shaping with minimal deformation of the base layer.

[0003] Patent Document 2 discloses a leather-like sheet. In the leather-like sheet, a surface finish layer, a surface porous layer, and a fibrous substrate layer are laminated in this order from the surface. The fibrous substrate layer includes an upper layer and a lower layer. In the fibrous substrate layer, an elastic resin is filled in the entangled spaces of the three-dimensionally entangled nonwoven fabric. The elastic resin is mainly composed of polyurethane. The surface porous layer is in close contact with the surface of the fibrous substrate layer. The surface porous layer is formed from a polyurethane resin. In the leather-like sheet, the ratio of the first apparent density (A) of the surface porous layer to the second apparent density (B) of the upper layer portion of the fibrous substrate layer is "A / B<1." The leather-like sheet has an elegant appearance similar to natural leather, excellent flexibility, and high peel strength.

[0004] The applicant has disclosed a skin material for vehicle interiors in Patent Document 3 and a skin material in Patent Document 4. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 02-61181 [Patent Document 2] Japanese Patent Application Laid-Open No. 2003-293270 [Patent Document 3] Japanese Patent Application Laid-Open No. 2016-147466 [Patent Document 4] Japanese Patent Application Laid-Open No. 2015-104848 Summary of the Invention [Problem to be solved by the invention]

[0006] A skin material is provided on the front side of a given product and forms the surface of the product. Skin materials are required to have a design. The inventors considered that a skin material with a design could be realized by providing a textured pattern on the surface of synthetic leather. The inventors then considered embossing as a preferred method for forming the textured pattern. For example, embossing has excellent productivity. Furthermore, the inventors considered that creating a sharp edge shape for the textured pattern was important for enhancing the design of the skin material. The "edge" corresponds to the following part within the textured pattern. The aforementioned part is formed by two non-parallel surfaces coming into contact and has an angular shape. The inventors considered a synthetic leather structure that would allow the edge of the textured pattern to have a sharp shape. The inventors then considered embossing as a method for forming the textured pattern.

[0007] The present invention aims to provide a synthetic leather in which the edges of the concave-convex pattern can be made sharp.The present invention aims to provide a skin material having a concave-convex pattern with sharp edges. [Means for solving the problem]

[0008] One aspect of the present invention includes a fibrous base material and a porous resin layer laminated on the fibrous base material and having a plurality of pores, the porous resin layer containing a plurality of hollow particles in a resin that serves as a base material of the porous resin layer, the plurality of hollow particles being dispersed in the resin, and the hollow particles each having the pores therein. The porous resin layer includes a first porous resin layer laminated on the fibrous base material and a second porous resin layer laminated on the first porous resin layer, the first porous resin layer having a plurality of first holes which are a part of the plurality of holes, the second porous resin layer having a plurality of second holes which are a part of the plurality of holes, the plurality of hollow particles being dispersed in a resin which is a base material of the second porous resin layer, the hollow particles having the second holes therein, the first holes being closed spaces having a major axis of a first dimension, and the second holes being closed spaces having a major axis of a second dimension which is smaller than the first dimension. It is synthetic leather.

[0009] This synthetic leather allows the pores formed inside the hollow particles to be uniform in size, and when the synthetic leather is embossed, the region in the porous resin layer where the hollow particles are dispersed can be uniformly deformed. The size of the plurality of second holes can be made uniform. The size of the plurality of second holes can be dispersed uniformly in the second porous resin layer laminated on the first porous resin layer. The second porous resin layer can be deformed uniformly when the synthetic leather is embossed. The second porous resin layer can be deformed more easily than the first porous resin layer when the synthetic leather is embossed.

[0010] Another aspect of the present invention is a porous resin layer including a fibrous substrate and a porous resin layer laminated on the fibrous substrate and having a plurality of holes, the porous resin layer including a plurality of hollow particles in a resin that is a base material of the porous resin layer, the plurality of hollow particles being dispersed in the resin, and the hollow particles having the pores therein, The porous resin layer includes a first porous resin layer laminated on the fibrous substrate and a second porous resin layer laminated on the first porous resin layer, the first porous resin layer having a plurality of first holes which are part of the plurality of holes, the second porous resin layer having a plurality of second holes which are part of the plurality of holes, the plurality of hollow particles being dispersed in a resin which is a base material of the second porous resin layer, and the hollow particles having the second holes therein. The synthetic leather has a softening temperature of the first porous resin layer at a first temperature, and a softening temperature of the second porous resin layer at a second temperature lower than the first temperature.

[0011] this synthetic leather According to The size of the pores formed inside the hollow particles can be made uniform, and when embossing synthetic leather, the region in which the hollow particles are dispersed in the porous resin layer can be deformed uniformly. The size of the plurality of second pores can be made uniform. The size of the plurality of second pores can be dispersed uniformly in the second porous resin layer laminated on the first porous resin layer. The second porous resin layer can be deformed uniformly during embossing of the synthetic leather. When embossing the synthetic leather, the second porous resin layer can be made more easily deformable than the first porous resin layer.

[0012] before The first porous resin layer may have a softening temperature of a first temperature, and the second porous resin layer may have a softening temperature of a second temperature lower than the first temperature.

[0013] According to these configurations, the second porous resin layer can be more easily deformed than the first porous resin layer when embossing the synthetic leather.

[0014] The present invention Furthermore Another aspect includes any of the synthetic leathers described above, wherein the synthetic leather is a skin material having a textured pattern on the surface.

[0015] According to this skin material, the synthetic leather exhibits the above-mentioned functions when embossed. [Effects of the Invention]

[0016] According to the present invention, it is possible to obtain synthetic leather in which the edges of the concave-convex pattern can be made sharp. According to the present invention, it is possible to obtain a skin material having a concave-convex pattern with sharp edges. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a cross-sectional view showing an example of a schematic configuration of synthetic leather, showing the synthetic leather in a state before embossing. [Figure 2] 2 is a cross-sectional view showing an example of a schematic configuration of a skin material, and shows the synthetic leather of FIG. 1 after embossing. [Figure 3] 1 is a side view showing an example of a schematic configuration of an embossing device. The embossing device is shown performing an embossing step in a method for manufacturing a skin material. The embossing die and the embossing receiving die have roll shapes. The synthetic leather and the skin material show the parts corresponding to the embossing device. [Figure 4] These are photographs of vertical cross sections of synthetic leather and skin material. The top photograph shows the synthetic leather of Sample 1 used in the examples, in the state before embossing. The bottom photograph shows the skin material of Sample 1 used in the examples. The cutting direction of the synthetic leather in the top photograph and the skin material in the bottom photograph coincides with the thickness direction. [Figure 5] 1 is a cross-sectional view showing another example of the schematic configuration of synthetic leather, showing the synthetic leather in a state before embossing. [Figure 6] 6 is a cross-sectional view showing another example of the schematic configuration of the skin material, and shows the synthetic leather of FIG. 5 after embossing. DETAILED DESCRIPTION OF THE INVENTION

[0018] Embodiments for carrying out the present invention will be described using the drawings. The present invention is not limited to the configurations described below, and various configurations can be adopted within the same technical concept. For example, some of the configurations shown below may be omitted or replaced with other configurations. The present invention may also include other configurations. The drawings schematically show specific configurations. In each drawing, correspondence with other drawings, correspondence with numerical values specified in the drawings (described below), or the magnitude relationship between compared configurations may not be accurate. Hatching indicates a cross section.

[0019] <Synthetic leather 10 and skin material 70> The synthetic leather 10 and the skin material 70 will be described with reference to Figures 1 and 2. The synthetic leather 10 includes a fibrous substrate 20, a porous resin layer 30, a non-porous resin layer 50, and a protective layer 60 (see Figure 1). The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32. In addition, the synthetic leather 10 may include a layer different from the porous resin layer 30 (the first porous resin layer 31 and the second porous resin layer 32), the non-porous resin layer 50, and the protective layer 60. An example of this different layer is an adhesive layer.

[0020] The synthetic leather 10 forms the skin material 70 (see FIG. 2). That is, the skin material 70 includes the synthetic leather 10. The skin material 70 is formed by embossing the synthetic leather 10. The synthetic leather 10 has an uneven pattern 71 on the surface in the state of the skin material 70.

[0021] The upholstery material 70 can be used as the outer surface of various products and parts. Examples of products and parts that can use the upholstery material 70 include transportation interior parts, interior goods, shoes, bags, and clothing. Transportation equipment includes automobiles, trains, airplanes, and ships. When the upholstery material 70 is used in transportation interior parts, the upholstery material 70 becomes the material that forms the next part of the transportation equipment. Examples of the aforementioned parts include the ceiling, seats, dashboard, door lining, and steering wheel. Interior goods include furniture. Examples of furniture include sofas and chairs.

[0022] In the embodiment, the thickness direction of the synthetic leather 10, the fibrous substrate 20, the porous resin layer 30, the non-porous resin layer 50, the protective layer 60, and the skin material 70 is referred to as the "thickness direction" (see Figures 1 and 2). One side in the thickness direction is referred to as the "front side," and the other side in the thickness direction is referred to as the "rear side." The front surface in the thickness direction is referred to as the "surface," and the rear surface in the thickness direction is referred to as the "rear side." The front surface of the synthetic leather 10 is the front surface of the skin material 70, and the rear surface of the synthetic leather 10 is the rear surface of the skin material 70.

[0023] In the synthetic leather 10, the fibrous substrate 20, porous resin layer 30, non-porous resin layer 50, and protective layer 60 are laminated from front to back in the thickness direction in the following order: protective layer 60, non-porous resin layer 50, porous resin layer 30, and fibrous substrate 20. In the porous resin layer 30, the first porous resin layer 31 and second porous resin layer 32 are laminated from front to back in the thickness direction in the following order: second porous resin layer 32 and first porous resin layer 31. That is, the porous resin layer 30 is laminated on the fibrous substrate 20. In this case, the first porous resin layer 31 is laminated on the fibrous substrate 20, and the second porous resin layer 32 is laminated on the first porous resin layer 31. The non-porous resin layer 50 is laminated on the porous resin layer 30 (second porous resin layer 32). The protective layer 60 is laminated on the non-porous resin layer 50. The surface of the protective layer 60 forms the surface of the synthetic leather 10 and the surface of the skin material 70. The back surface of the fibrous base material 20 forms the back surface of the synthetic leather 10 and the back surface of the skin material 70 .

[0024] The fibrous substrate 20 is a fibrous sheet material. Examples of the fibrous substrate 20 include fiber fabrics and natural leather. Examples of fiber fabrics include woven fabrics, knitted fabrics, and nonwoven fabrics. Natural leather includes split leather. However, from the viewpoint of the texture of the synthetic leather 10, the fibrous substrate 20 is preferably a woven fabric or knitted fabric, and more preferably a knitted fabric. "Texture" refers to the feel of an object in the hand. "Texture" is distinct from "touch." "Touch" refers to the surface feel of an object. The fiber fabric may be coated or impregnated with a solvent-based or solventless polymer compound, or the solvent-based or solventless polymer compound may be dry- or wet-coagulated. Solventless systems include water-based systems. Examples of polymer compounds include polyurethane resins and polyvinyl chloride-based resins. The density of the fibrous substrate 20 is 0.01 to 0.05 g / m 3 It is preferable that the density is 0.02 to 0.04 g / m 3 It is more preferable that:

[0025] The fibers forming the fiber fabric as the fibrous substrate 20 are not particularly limited. Examples of such fibers include natural fibers, regenerated fibers, semi-synthetic fibers, and synthetic fibers. The fibers may be of one type or a combination of two or more types. However, from the viewpoints of strength and processability, the fibers are preferably synthetic fibers, more preferably polyester fibers, and even more preferably polyethylene terephthalate fibers. The fibrous substrate 20 may be colored with known dyes or pigments. The dyes or pigments are not particularly limited.

[0026] The thickness of the fibrous substrate 20 is not particularly limited. However, the thickness of the fibrous substrate 20 is preferably 0.2 to 10 mm, and more preferably 0.5 to 2 mm. By making the thickness of the fibrous substrate 20 0.2 mm or more, the shapeability and feel of the synthetic leather 10 can be improved. By making the thickness of the fibrous substrate 20 10 mm or less, the abrasion resistance of the synthetic leather 10 can be improved.

[0027] The porous resin layer 30 has a plurality of pores 40 (see FIG. 1). The porous resin layer 30 contains a plurality of hollow particles 43 in the resin that is the base material of the porous resin layer 30. The hollow particles 43 are fine particles and have pores 40 inside. The plurality of hollow particles 43 are dispersed in the resin that is the base material of the porous resin layer 30. The porous resin layer 30 is preferably a laminate of two or more layers. In the embodiment, the porous resin layer 30 is a laminate of two layers including a first porous resin layer 31 and a second porous resin layer 32. When the porous resin layer 30 is a laminate of three or more layers, the second porous resin layer 32 is provided on the front side in the thickness direction of the first porous resin layer 31.

[0028] The porous resin layer 30 is softer than a non-porous resin layer of the same material and thickness. This comparative non-porous resin layer differs from the porous resin layer 30 in that it does not have pores 40, but is otherwise identical to the porous resin layer 30. The multiple pores 40 soften the porous resin layer 30. The softness of the porous resin layer 30 improves the texture of the synthetic leather 10. By appropriately setting the thickness of the porous resin layer 30, the synthetic leather 10 can suppress a decrease in the abrasion resistance of the synthetic leather 10 due to the softness of the porous resin layer 30. The thickness of the porous resin layer 30 is determined depending on the thickness of the first porous resin layer 31 and the thickness of the second porous resin layer 32. The thicknesses of the first porous resin layer 31 and the second porous resin layer 32 will be described later.

[0029] The first porous resin layer 31 has a plurality of first holes 41 (see FIG. 1). The plurality of first holes 41 are part of the plurality of holes 40. The second porous resin layer 32 has a plurality of second holes 42 (see FIG. 1). The plurality of second holes 42 are part of the plurality of holes 40. However, the second holes 42 are holes 40 different from the first holes 41. In the embodiment, when there is no need to distinguish between the first holes 41 and the second holes 42 or when they are referred to collectively, they are referred to as "holes 40."

[0030] The first holes 41 may be closed spaces or open spaces. However, from the viewpoint of the abrasion resistance of the synthetic leather 10, it is preferable that the first holes 41 are closed spaces. By making the first holes 41 closed spaces, it is possible to suppress the occurrence of cracks originating from the first holes 41. In the embodiment, the first holes 41 are closed spaces (see FIG. 1). The shape of the first holes 41 is not particularly limited. The shape of the first holes 41 may be regular or irregular. An example of the shape of the first holes 41 is spherical. The spherical shape may be a perfect sphere or an elongated spheroid.

[0031] When manufacturing the first porous resin layer 31, the plurality of first pores 41 are formed in the base resin material by known foam molding. The plurality of first pores 41 are dispersed in the base resin material of the first porous resin layer 31. Examples of methods for forming the plurality of first pores 41 include physical foaming, chemical foaming, and wet solidification. Physical foaming may utilize mechanical stirring. Chemical foaming may utilize the addition of a foaming agent or a chemical reaction.

[0032] The second pores 42 are closed spaces (see FIG. 1). By making the second pores 42 closed spaces, it is possible to suppress the occurrence of cracks originating from the second pores 42. Furthermore, the second pores 42 are closed spaces inside the hollow particles 43. In this case, the porous resin layer 30 contains a plurality of hollow particles 43 in the resin that serves as the base material of the second porous resin layer 32. Each hollow particle 43 in the second porous resin layer 32 has a second pore 42 therein. In the porous resin layer 30, the hollow particles 43 are dispersed in the resin that serves as the base material of the second porous resin layer 32. The shape of the second pores 42 is not particularly limited. The shape of the second pores 42 may be regular or irregular. An example of the shape of the second pores 42 is spherical. The spherical shape may be a perfect sphere or an elongated spheroid. However, from the viewpoint of durability of the synthetic leather 10, it is preferable that the shape of the second pores 42 be a perfect sphere.

[0033] The hollow particles 43 have a spherical shape. As described above, the hollow particles 43 have minute spaces inside them that become the second pores 42. The coating of the hollow particles 43 that covers these spaces is called the outer shell or outer wall. In the embodiment, this coating is referred to as the "outer shell." The hollow particles 43 preferably have the property of not undergoing or being resistant to volumetric expansion upon heat treatment. By incorporating hollow particles 43 having such properties into the second porous resin layer 32, volume fluctuations in the second porous resin layer 32 can be suppressed during the production of the synthetic leather 10, and further, variations in the shape, size, and distribution of the plurality of second pores 42 can be suppressed.

[0034] In the second porous resin layer 32, the hollow particles 43 are appropriately determined taking into consideration the above-mentioned characteristics. Examples of the hollow particles 43 include organic hollow particles having an outer shell made of the following materials. Examples of the aforementioned materials include thermosetting resins and thermoplastic resins. Examples of the thermosetting resins forming the outer shell include phenolic resins, epoxy resins, and urea resins. Examples of the thermoplastic resins forming the outer shell include acrylic resins and vinyl chloride resins. Examples of the hollow particles 43 include inorganic hollow particles having an outer shell made of the following materials. Examples of the aforementioned materials include glass, shirasu, silica, alumina, and carbon. In addition, in the hollow particles 43, the surfaces of the organic hollow particles may be coated with inorganic fine powder. Examples of the inorganic fine powder material include calcium carbonate, talc, and titanium oxide.

[0035] The hollow particles 43 are preferably organic hollow particles of the first or second embodiment from the following viewpoints. The aforementioned viewpoint is that the hollow particles 43 can be easily deformed by heating and pressing the synthetic leather 10 when the synthetic leather 10 is embossed. Another viewpoint is that the hollow particles 43 can retain their shape after deformation. The organic hollow particles of the first embodiment have an outer shell made of a thermoplastic resin. The organic hollow particles of the second embodiment have an outer shell made of a thermoplastic resin whose surface is coated with inorganic fine powder.

[0036] When the hollow particles 43 have an outer shell made of a thermoplastic resin, the softening temperature of the thermoplastic resin is preferably 110 to 210° C., more preferably 130 to 190° C. By setting the softening temperature of the thermoplastic resin forming the outer shell of the hollow particles 43 within the above-mentioned range, the outer shell of the hollow particles 43 can be easily deformed by heating and pressing the synthetic leather 10 when embossing the synthetic leather 10. The hollow particles 43 retain their shape after deformation.

[0037] The softening temperature of the thermoplastic resin forming the outer shell of the hollow particles 43 can be measured by the following method. That is, the measurement device may be a thermomechanical analyzer (TMA2940) manufactured by TA Instruments. 250 μg of hollow particles 43 are placed in an aluminum cup with a diameter of 7 mm and a depth of 1 mm. Then, the hollow particles 43 in the cup are heated from 80 to 300°C at a heating rate of 5°C / min while a force of 0.1 N is applied from above. While the hollow particles 43 are being heated, the vertical displacement of the indenter is continuously measured. The temperature at which the maximum displacement is reached is taken as the softening temperature.

[0038] When the hollow particles 43 have a shell made of a thermoplastic resin, the hollow particles 43 may be formed using a microcapsule-type blowing agent as a material. The microcapsule-type blowing agent encapsulates a volatile blowing agent in the following shell. The shell is made of a thermoplastic resin that can be softened and expanded by heat treatment. Examples of volatile blowing agents include low-boiling-point hydrocarbons. In the step of forming the second porous resin layer 32, the microcapsule-type blowing agent may be foamed in the composition liquid prepared in this step. However, it is preferable that the hollow particles 43 are formed in advance using the microcapsule-type blowing agent as a material. A plurality of pre-formed hollow particles 43 are immersed in composition liquid B to form a plurality of second pores 42. Composition liquid B is used in step B. Step B forms the second porous resin layer 32. Step B and composition liquid B will be described later.

[0039] From the viewpoint of the shape retention of the microcapsules in a low-temperature environment, the encapsulated substance of the microcapsule-type blowing agent is preferably a lower hydrocarbon having a boiling point of 0 to 100°C. Examples of such encapsulated substances include butane, isobutane, pentane, isopentane, and neopentane. When hollow particles 43 are formed from the microcapsule-type blowing agent, the microcapsule-type blowing agent is subjected to a heat treatment. This heat treatment softens the outer shell of the microcapsule-type blowing agent and converts the encapsulated substance into a gas. As a result, the microcapsule-type blowing agent is formed into hollow particles 43 containing a closed space therein. This closed space forms second pores 42.

[0040] The plurality of hollow particles 43 in the second porous resin layer 32 may be of one type or a combination of two or more types. The plurality of hollow particles 43 in the second porous resin layer 32 may be a combination of two or more types. In this case, it is preferable that the two or more types of hollow particles 43 have spaces of the same shape inside. The plurality of second holes 42 may have the same shape.

[0041] The first hole 41 has a major axis of a first dimension. Assume that the first hole 41 is a closed space having a spherical shape. In this case, the major axis of the first hole 41 coincides with the diameter of the spherical first hole 41. Assume that the first hole 41 is a closed space having a shape other than a spherical shape. In this case, the major axis of the first hole 41 coincides with the maximum dimension of the first hole 41. The second hole 42 has a major axis of a second dimension. Assume that the second hole 42 is a closed space having a spherical shape. In this case, the major axis of the second hole 42 coincides with the diameter of the spherical second hole 42. Assume that the second hole 42 is a closed space having a shape other than a spherical shape. In this case, the major axis of the second hole 42 coincides with the maximum dimension of the second hole 42.

[0042] Assume that the synthetic leather 10 is before embossing (see FIG. 1). In this case, the first dimension of the major axis of the first holes 41 and the second dimension of the major axis of the second holes 42 preferably have the following values: The first dimension of the major axis of the first holes 41 is preferably 320 μm or less, and more preferably 100 to 280 μm. The second dimension of the major axis of the second holes 42 is preferably 200 μm or less, and more preferably 50 to 80 μm. The relationship between the first dimension and the second dimension of the synthetic leather 10 before embossing is preferably set to "first dimension > second dimension."

[0043] Assume that the synthetic leather 10 is in a state after embossing (see FIG. 2). In this case, the first dimension of the major axis of the first holes 41 and the second dimension of the major axis of the second holes 42 preferably have the following values. That is, the first dimension of the major axis of the first holes 41 is smaller than that before embossing in the region of the recessed portions 72 of the textured pattern 71, and is preferably 260 μm or less, and more preferably 180 μm or less. The first holes 41 may be eliminated in the region of the recessed portions 72 of the textured pattern 71. The first dimension of the major axis of the first holes 41 is preferably 320 μm or less, and more preferably 100 to 280 μm, in the region of the protruding portions 73 of the textured pattern 71, similar to that before embossing. The second dimension of the major axis of the second holes 42 is smaller than that before embossing in the region of the recessed portions 72 of the textured pattern 71, and is preferably 150 μm or less, and more preferably 40 μm or less. The second holes 42 may disappear in the regions of the recesses 72 of the uneven pattern 71. The second dimension of the major axis of the second holes 42 in the regions of the protrusions 73 of the uneven pattern 71 is preferably 200 μm or less, and more preferably 50 to 80 μm, as in the region before embossing.

[0044] The first porous resin layer 31 has a polyurethane resin as its base material. Polyurethane resin is a general term for the following polyurethane and resins containing polyurethane as a main component. The aforementioned polyurethane is a polymer compound having a urethane bond in its main chain. The polyurethane resin serving as the base material of the first porous resin layer 31 may be a copolymer containing a urethane bond, or a mixture of polyurethane and other resins. An example of a copolymer containing a urethane bond is an acrylic urethane resin. The polyurethane resin serving as the base material of the first porous resin layer 31 is not particularly limited. Examples of this polyurethane resin include polycarbonate-based polyurethane resin, polyether-based polyurethane resin, and polyester-based polyurethane resin. From the viewpoint of the durability of the synthetic leather 10, this polyurethane resin is preferably a polycarbonate-based polyurethane resin. Polycarbonate-based polyurethane resin is harder and more heat-resistant than polyether-based polyurethane resin and polyester-based polyurethane resin.

[0045] The polyurethane resin that serves as the base material of the first porous resin layer 31 may be solventless, solvent-based, or water-based, and is not particularly limited in this respect. Furthermore, this polyurethane resin may be one-component or two-component. However, from the viewpoint of environmental load, this polyurethane resin is preferably solventless, and from the viewpoint of ease of forming a porous layer by chemical foaming, it is preferably two-component.

[0046] The first porous resin layer 31 is formed from composition liquid A. Composition liquid A is used in step A, which forms the first porous resin layer 31. Composition liquid A may contain an additive. The additive is included to the extent that it does not impair the physical properties to be imparted to the first porous resin layer 31. Examples of the additive include a crosslinking agent, a catalyst, a leveling agent, a pigment, and a matting agent. One type of additive may be used, or two or more types may be used. Furthermore, composition liquid A may contain the following solvent. Examples of the solvent include an organic solvent. This solvent is preferably methyl ethyl ketone or dimethyl sulfoxide. Step A and composition liquid A will be described later.

[0047] The second porous resin layer 32 has a base material of polyurethane resin, similar to the first porous resin layer 31. The polyurethane resin that is the base material of the second porous resin layer 32 is preferably a polycarbonate-based polyurethane resin, a polyether-based polyurethane resin, or a polyester-based polyurethane resin. From the viewpoint of durability of the synthetic leather 10, this polyurethane resin is preferably a polycarbonate-based polyurethane resin, and from the viewpoint of texture, it is preferably a polyether-based polyurethane resin.

[0048] The polyurethane resin that serves as the base material of the second porous resin layer 32 may be solventless, solvent-based, or water-based, and is not particularly limited in this respect. Furthermore, this polyurethane resin may be one-component or two-component. However, from the viewpoint of environmental impact, this polyurethane resin is preferably solventless or water-based, and from the viewpoint of versatility and the formation of a uniform second porous resin layer 32, it is preferably one-component.

[0049] The composition liquid B may contain an additive. The additive is contained within a range that does not impair the physical properties to be imparted to the second porous resin layer 32. Examples of the additive include a crosslinking agent, a catalyst, a leveling agent, a pigment, a matting agent, a smoothing agent, a surfactant, a filler, and a thickener. One type of additive may be used, or two or more types may be used. Furthermore, the composition liquid B may contain the following solvent. Examples of the aforementioned solvent include a highly polar solvent. From the viewpoint of environmental impact, this solvent is preferably water.

[0050] The softening temperature of the first porous resin layer 31 is a first temperature. The first temperature is preferably a predetermined value in the range of 170 to 225°C. The softening temperature of the second porous resin layer 32 is a second temperature. The second temperature is preferably a predetermined value in the range of 120 to 170°C. The second temperature is preferably lower than the first temperature. In this case, the temperature difference between the first temperature and the second temperature is preferably 45 to 75°C.

[0051] In the embodiment, the thicknesses of the first porous resin layer 31 are specified as "thicknesses T1, T2, T3." The thickness T1 of the first porous resin layer 31 refers to the synthetic leather 10 before embossing (see FIG. 1). The thicknesses T2 and T3 of the first porous resin layer 31 refer to the synthetic leather 10 after embossing (see FIG. 2). The synthetic leather 10 after embossing can also be referred to as the synthetic leather 10 in the skin material 70. The thickness T2 of the first porous resin layer 31 refers to the region of the recessed portions 72 of the uneven pattern 71. The thickness T3 of the first porous resin layer 31 refers to the region of the protruding portions 73 of the uneven pattern 71.

[0052] The thicknesses T1, T2, and T3 of the first porous resin layer 31 are determined appropriately in consideration of various conditions, but the thickness T1 of the first porous resin layer 31 is preferably 100 to 320 μm, and more preferably 160 to 280 μm.

[0053] The thickness T2 of the first porous resin layer 31 is thinner than the thickness T1 of the first porous resin layer 31, and is preferably 100 to 260 μm, and more preferably 140 to 200 μm. By making the thickness T2 of the first porous resin layer 31 100 μm or more, the texture of the synthetic leather 10 can be improved. By making the thickness T2 of the first porous resin layer 31 260 μm or less, the depth of the recesses 72 can be improved. Making the thickness T2 of the first porous resin layer 31 260 μm or less contributes to making the edges of the uneven pattern 71 sharp, further improving the design of the upholstery material 70.

[0054] The thickness T3 of the first porous resin layer 31 is preferably 100 to 320 μm, and more preferably 160 to 280 μm, similar to the thickness T1 of the first porous resin layer 31. By setting the thickness T3 of the first porous resin layer 31 to 100 μm or more, the shapeability and feel of the synthetic leather 10 can be improved. By setting the thickness T3 of the first porous resin layer 31 to 320 μm or less, the abrasion resistance of the synthetic leather 10 can be improved.

[0055] The thickness T1 of the first porous resin layer 31 can be determined by a known measurement method for the synthetic leather 10 before embossing. Alternatively, the thickness T1 of the first porous resin layer 31 may be determined by the following method. That is, the thickness T1 of the first porous resin layer 31 may be the average value of the following 10 measured values. The above-mentioned 10 measured values are obtained by measuring the first porous resin layer 31 at any 10 positions on the synthetic leather 10 before embossing. The number of measured values "10" is an example. This number of measured values is determined appropriately taking various conditions into consideration. The thickness T1 of the first porous resin layer 31 does not have to be an average value.

[0056] The thickness T2 of the first porous resin layer 31 can be determined by a known measurement method for the embossed synthetic leather 10. Alternatively, the thickness T2 of the first porous resin layer 31 may be determined by the following method. That is, the thickness T2 of the first porous resin layer 31 may be the average value of the following 20 measurements. The 20 measurements are obtained by measuring the first porous resin layer 31 of the embossed synthetic leather 10 at any 10 recesses 72 of the uneven pattern 71. In this case, the number of measurements per recess 72 is two. The number of measurements "20," the number of recesses 72 to be measured "10," and the number of measurements per recess 72 "two" are merely examples. These numbers are determined appropriately taking various conditions into consideration. The thickness T2 of the first porous resin layer 31 does not have to be an average value.

[0057] The thickness T3 of the first porous resin layer 31 can be determined by a known measurement method for the embossed synthetic leather 10. Alternatively, the thickness T3 of the first porous resin layer 31 may be determined by the following method. That is, the thickness T3 of the first porous resin layer 31 may be the average value of the following 20 measurements. The 20 measurements are obtained by measuring the first porous resin layer 31 of the embossed synthetic leather 10 at any 10 convex portions 73 of the uneven pattern 71. In this case, the number of measurements for one convex portion 73 is two. The number of measurements "20," the number of convex portions 73 to be measured "10," and the number of measurements for one convex portion 73 "two" are merely examples. These numbers are determined appropriately taking various conditions into consideration. The thickness T3 of the first porous resin layer 31 does not have to be an average value.

[0058] The thickness T1 of the first porous resin layer 31 may be measured by enlarging the first porous resin layer 31 in a vertical cross section of the synthetic leather 10 before embossing. The thickness T2 of the first porous resin layer 31 may be measured by enlarging the first porous resin layer 31 in the region of the recessed portion 72 in a vertical cross section of the synthetic leather 10 after embossing. The thickness T3 of the first porous resin layer 31 may be measured by enlarging the first porous resin layer 31 in the region of the protruding portion 73 in a vertical cross section of the synthetic leather 10 after embossing. The cutting direction of the synthetic leather 10 coincides with the thickness direction. A microscope may be used for magnification. An example of a microscope is a scanning electron microscope. The magnification ratio is determined appropriately taking into consideration various conditions. The thicknesses T1, T2, and T3 of the first porous resin layer 31 may be measured using a scanning electron microscope (S-3000N) manufactured by Hitachi High-Technologies Corporation. In this case, the magnification ratio may be 300 times. The magnification ratio is determined appropriately taking into consideration various conditions.

[0059] In the synthetic leather 10 after embossing, the compression ratio of the first porous resin layer 31 is preferably 20% or less. The compression ratio of the first porous resin layer 31 is calculated by {(T3-T2) / T3}×100. By setting the compression ratio of the first porous resin layer 31 to 20% or less, it is possible to prevent the texture of the synthetic leather 10 from being impaired.

[0060] In the embodiment, the thicknesses of the second porous resin layer 32 are specified as "thicknesses T4, T5, and T6." The thickness T4 of the second porous resin layer 32 refers to the synthetic leather 10 before embossing (see FIG. 1). The thicknesses T5 and T6 of the second porous resin layer 32 refer to the synthetic leather 10 after embossing (see FIG. 2). As described above, the synthetic leather 10 after embossing can also be referred to as the synthetic leather 10 in the skin material 70. The thickness T5 of the second porous resin layer 32 refers to the region of the recessed portions 72 of the uneven pattern 71. The thickness T6 of the second porous resin layer 32 refers to the region of the protruding portions 73 of the uneven pattern 71.

[0061] The thicknesses T4, T5, and T6 of the second porous resin layer 32 are determined appropriately in consideration of various conditions. However, the thickness T4 of the second porous resin layer 32 is preferably 20 to 300 μm, and more preferably 65 to 85 μm. The thickness T4 of the second porous resin layer 32 can be measured in accordance with the method for measuring the thickness T1 of the first porous resin layer 31 described above.

[0062] The thickness T5 of the second porous resin layer 32 is thinner than the thickness T4 of the second porous resin layer 32 and is preferably 10 to 150 μm, more preferably 40 to 70 μm. Setting the thickness T5 of the second porous resin layer 32 to 10 μm or more improves the texture of the synthetic leather 10. Setting the thickness T5 of the second porous resin layer 32 to 150 μm or less improves the depth of the recesses 72. Setting the thickness T5 of the second porous resin layer 32 to 150 μm or less contributes to forming sharp edges in the concave-convex pattern 71, further improving the design of the skin material 70. The thickness T5 of the second porous resin layer 32 can be measured in accordance with the method for measuring the thickness T2 of the first porous resin layer 31 described above.

[0063] The thickness T6 of the second porous resin layer 32, like the thickness T4 of the second porous resin layer 32, is preferably 20 to 300 μm, more preferably 65 to 85 μm. By making the thickness T6 of the second porous resin layer 32 20 μm or more, the depth of the recesses 72 can be improved. Making the thickness T6 of the second porous resin layer 32 20 μm or more contributes to making the edges of the concave-convex pattern 71 sharp, further improving the design of the upholstery material 70. Making the thickness T6 of the second porous resin layer 32 300 μm or less improves the abrasion resistance of the synthetic leather 10. The thickness T6 of the second porous resin layer 32 can be measured in accordance with the method for measuring the thickness T3 of the first porous resin layer 31 described above. In FIG. 2 and FIG. 6 described below, the second porous resin layer 32 is depicted with the same thicknesses T5 and T6.

[0064] In the synthetic leather 10 after embossing, the compression ratio of the second porous resin layer 32 is preferably 40 to 55%. The compression ratio of the second porous resin layer 32 is calculated by {(T6-T5) / T6}×100. By setting the compression ratio of the second porous resin layer 32 to 40% or more, the shapeability of the synthetic leather 10 can be improved. By setting the compression ratio of the second porous resin layer 32 to 55% or less, the thickness of the synthetic leather 10 can be maintained by the skin material 70, and the texture of the synthetic leather 10 can be improved.

[0065] The nonporous resin layer 50 conceals the porous resin layer 30 on the surface side in the thickness direction. Furthermore, the nonporous resin layer 50 colors the surface of the synthetic leather 10 in a desired color. The nonporous resin layer 50 may be made of the same resin as the resin that forms the base material of the first porous resin layer 31. From the viewpoint of the abrasion resistance and texture of the synthetic leather 10, the resin that forms the base material of the nonporous resin layer 50 is preferably a polycarbonate-based polyurethane resin. The resin that forms the base material of the nonporous resin layer 50 may be solvent-free, solvent-based, or water-based, and is not particularly limited in this respect.

[0066] The nonporous resin layer 50 contains a colorant in the resin that serves as the base material. There are no particular limitations on the colorant. Examples of the colorant include pigments. Examples of the pigment include inorganic pigments and organic pigments. The nonporous resin layer 50 may contain a pigment that is known as a colorant. The pigment is contained in composition liquid C. Composition liquid C is used in step C. Step C forms the nonporous resin layer 50. Step C and composition liquid C will be described later.

[0067] The content of the colorant is not particularly limited and is determined appropriately taking into consideration various conditions. For example, the content of the colorant may be determined appropriately depending on the color desired for the synthetic leather 10. However, the content of the colorant is preferably 5 to 25 mass % and more preferably 10 to 20 mass % in terms of solid content based on the total mass of the composition liquid C.

[0068] By setting the colorant content to 5% by mass or more, the hiding power of the porous resin layer 30 and the colorability of the surface of the synthetic leather 10 can be improved. A viewer of the skin material 70 can recognize the color of the surface of the synthetic leather 10 as a design provided on the surface of the skin material 70. By setting the colorant content to 25% by mass or less, a decrease in strength of the nonporous resin layer 50 can be suppressed. By suppressing a decrease in strength of the nonporous resin layer 50, the abrasion resistance of the synthetic leather 10 can be improved.

[0069] The liquid composition C may contain an additive. The additive is contained within a range that does not impair the physical properties to be imparted to the nonporous resin layer 50. Examples of the additive include a smoothing agent, a crosslinking agent, a matting agent, and a leveling agent. One type of additive may be used, or two or more types may be used. Furthermore, the liquid composition C may contain the following solvent. Examples of the aforementioned solvent include highly polar solvents. From the viewpoint of environmental impact, this solvent is preferably water.

[0070] The softening temperature of the nonporous resin layer 50 is the third temperature. The third temperature is preferably higher than the first temperature, which is the softening temperature of the first porous resin layer 31. That is, the relationship between the first temperature, the second temperature (the softening temperature of the second porous resin layer 32), and the third temperature is preferably "third temperature > first temperature > second temperature." By making the softening temperature of the nonporous resin layer 50 higher than the softening temperature of the first porous resin layer 31 (third temperature > first temperature), the surface of the synthetic leather 10 can be suppressed from becoming shiny by the skin material 70. The design of the skin material 70 can be improved. The third temperature is preferably a predetermined value in the range of 190 to 240°C.

[0071] In the embodiment, the thicknesses of the nonporous resin layer 50 are specified as "thicknesses T7, T8, and T9." Thickness T7 of the nonporous resin layer 50 refers to the synthetic leather 10 before embossing (see FIG. 1). Thicknesses T8 and T9 of the nonporous resin layer 50 refer to the synthetic leather 10 after embossing (see FIG. 2). As described above, the synthetic leather 10 after embossing can also be referred to as the synthetic leather 10 in the skin material 70. Thickness T8 of the nonporous resin layer 50 refers to the region of the recessed portions 72 of the uneven pattern 71. Thickness T9 of the nonporous resin layer 50 refers to the region of the protruding portions 73 of the uneven pattern 71.

[0072] The thicknesses T7, T8, and T9 of the nonporous resin layer 50 are determined appropriately in consideration of various conditions. However, the thickness T7 of the nonporous resin layer 50 is preferably 20 to 80 μm, and more preferably 25 to 50 μm. The thickness T7 of the nonporous resin layer 50 can be measured in accordance with the method for measuring the thickness T1 of the first porous resin layer 31 described above.

[0073] The thickness T8 of the nonporous resin layer 50 is thinner than the thickness T7 of the nonporous resin layer 50 and is preferably 15 to 60 μm, and more preferably 15 to 40 μm. By setting the thickness T8 of the nonporous resin layer 50 to 15 μm or more, the texture of the synthetic leather 10 can be improved. By setting the thickness T8 of the nonporous resin layer 50 to 60 μm or less, the depth of the recesses 72 can be improved. Setting the thickness T8 of the nonporous resin layer 50 to 60 μm or less contributes to forming a sharp shape at the edges of the uneven pattern 71, further improving the design of the skin material 70. The thickness T8 of the nonporous resin layer 50 can be measured in accordance with the method for measuring the thickness T2 of the first porous resin layer 31 described above.

[0074] The thickness T9 of the nonporous resin layer 50, like the thickness T7 of the nonporous resin layer 50, is preferably 20 to 80 μm, more preferably 25 to 50 μm. By making the thickness T9 of the nonporous resin layer 50 20 μm or more, the concealing properties of the porous resin layer 30 and the colorability of the surface of the synthetic leather 10 can be improved. A viewer of the skin material 70 can recognize the surface color of the synthetic leather 10 as a design applied to the surface of the skin material 70. By making the thickness T9 of the nonporous resin layer 50 80 μm or less, the shapeability of the synthetic leather 10 can be improved. The thickness T9 of the nonporous resin layer 50 can be measured in accordance with the method for measuring the thickness T3 of the first porous resin layer 31 described above. In FIG. 2 and FIG. 6 described below, the nonporous resin layer 50 is depicted with the same thicknesses T8 and T9.

[0075] In the synthetic leather 10 after embossing, the compression ratio of the non-porous resin layer 50 is preferably 40% or less. The compression ratio of the non-porous resin layer 50 is calculated by {(T9-T8) / T9}×100. By setting the compression ratio of the non-porous resin layer 50 to 40% or less, the durability of the synthetic leather 10 can be improved.

[0076] The protective layer 60 protects the synthetic leather 10 on the outer side in the thickness direction. The protective layer 60 improves the abrasion resistance of the synthetic leather 10. The protective layer 60 may be made of the same resin as the resin that forms the base material of the first porous resin layer 31. From the viewpoint of the abrasion resistance of the synthetic leather 10, the resin that forms the base material of the protective layer 60 is preferably a polycarbonate-based polyurethane resin. The resin that forms the base material of the protective layer 60 may be solventless, solvent-based, or water-based, and is not particularly limited in this respect. The composition liquid D may contain an additive. The composition liquid D is used in step D. In step D, the protective layer 60 is formed. Examples of additives include a smoothing agent, a crosslinking agent, a matting agent, and a leveling agent. The additive may be one type, or two or more types. Step D and composition liquid D will be described later.

[0077] The thickness T10 of the protective layer 60 (see FIGS. 1 and 2) is not particularly limited. However, the thickness T10 of the protective layer 60 is preferably 1 to 50 μm, and more preferably 3 to 20 μm. Thickness of the protective layer 60 T10 By setting the thickness of the protective layer 60 to 1 μm or more, the abrasion resistance of the synthetic leather 10 can be improved. T10 By setting the thickness T10 to 50 μm or less, it is possible to improve the shapability of the synthetic leather 10. The inventors know that the thickness T10 of the protective layer 60 does not change or is unlikely to change before and after embossing.

[0078] The total thickness T11 of the nonporous resin layer 50 and the protective layer 60 is not particularly limited. The total thickness T11 is the sum of the thickness T7 of the nonporous resin layer 50 and the thickness T10 of the protective layer 60 (see FIG. 1). However, from the viewpoint of the shapeability of the synthetic leather 10, the total thickness T11 of the nonporous resin layer 50 and the protective layer 60 is preferably 21 to 130 μm, and more preferably 28 to 70 μm. By setting the total thickness T11 of the nonporous resin layer 50 and the protective layer 60 to 21 μm or more, the abrasion resistance of the synthetic leather 10 can be improved. By setting the total thickness T11 of the nonporous resin layer 50 and the protective layer 60 to 130 μm or less, the shapeability of the synthetic leather 10 can be improved.

[0079] The synthetic leather 10 exhibits the above-described functions both before and after embossing, except for the specific functions that apply before embossing. In this case, the skin material 70 including the synthetic leather 10 exhibits the same functions as the synthetic leather 10, or the skin material 70 allows the synthetic leather 10 to exhibit the same functions as before embossing. In the embodiments, the texture of the synthetic leather 10 can be rephrased as the texture of the skin material 70, the abrasion resistance of the synthetic leather 10 can be rephrased as the abrasion resistance of the skin material 70, the durability of the synthetic leather 10 can be rephrased as the durability of the skin material 70, and the tactile feel of the synthetic leather 10 can be rephrased as the tactile feel of the skin material 70. The time of embossing the synthetic leather 10 has the same meaning as the time of manufacturing the skin material 70 or the time of carrying out the manufacturing method for the skin material 70.

[0080] <Manufacturing method of synthetic leather 10> The method for manufacturing synthetic leather 10 includes four steps A, B, C, and D. When carrying out the method for manufacturing synthetic leather 10, a fibrous substrate 20 is prepared. In step A, as described above, a first porous resin layer 31 is formed. In step A, composition liquid A is applied and solidified. Composition liquid A solidifies to form the first porous resin layer 31. In step B, as described above, a second porous resin layer 32 is formed. In step B, composition liquid B is applied and solidified. Composition liquid B solidifies to form the second porous resin layer 32. In step C, as described above, a non-porous resin layer 50 is formed. In step C, composition liquid C is applied and solidified. Composition liquid C solidifies to form the non-porous resin layer 50. In step D, as described above, a protective layer 60 is formed. In step D, composition liquid D is applied and solidified. Composition liquid D solidifies to form the protective layer 60.

[0081] Step A may include a procedure for preparing composition liquid A. Step B may include a procedure for preparing composition liquid B. Step C may include a procedure for preparing composition liquid C. Step D may include a procedure for preparing composition liquid D. In an embodiment, composition liquid A is prepared in step A, composition liquid B is prepared in step B, composition liquid C is prepared in step C, and composition liquid D is prepared in step D. However, composition liquid A may be prepared in advance before step A is performed. Step A may use composition liquid A that has been prepared in advance. Composition liquid B may be prepared in advance before step B is performed. Step B may use composition liquid B that has been prepared in advance. Composition liquid C may be prepared in advance before step C is performed. Step C may use composition liquid C that has been prepared in advance. Composition liquid D may be prepared in advance before step D is performed. Step D may use composition liquid D that has been prepared in advance.

[0082] The composition solutions A to D are applied by a known application method. Examples of application methods include knife coating, roll coating, gravure coating, and spray coating. The application method may be different for some or all of steps A to D, or may be the same for all of steps A to D. The application method used in steps A to D is determined appropriately taking into account various conditions.

[0083] In the embodiments, a first production method, a second production method, a third production method, a fourth production method, and a fifth production method are exemplified as methods for producing the synthetic leather 10.

[0084] <First manufacturing method> In the first manufacturing method, steps A to D are performed in the order of step A, step B, step C, and step D. That is, in step A, composition liquid A is applied to a fibrous substrate 20, and then composition liquid A is dry-solidified. The surface of the fibrous substrate 20 to which composition liquid A is applied is the front surface. In step A, a first intermediate is formed by laminating a first porous resin layer 31 on the front side of the fibrous substrate 20 in the thickness direction.

[0085] In step B, composition liquid B is applied onto a first intermediate, and then composition liquid B is dry-solidified. The surface of the first intermediate to which composition liquid B is applied is the surface of the first porous resin layer 31. In step B, a second intermediate is formed by laminating a second porous resin layer 32 on the front side of the first intermediate in the thickness direction.

[0086] In step C, the composition liquid C is applied onto the second intermediate, and then the composition liquid C is dry-solidified. The surface of the second intermediate to which the composition liquid C is applied is the surface of the second porous resin layer 32. In step C, a third intermediate is formed by laminating a non-porous resin layer 50 on the front side of the second intermediate in the thickness direction.

[0087] In step D, composition liquid D is applied onto the third intermediate, and then composition liquid D is dried and solidified. The surface of the third intermediate to which composition liquid D is applied is the surface of the non-porous resin layer 50. In step D, a laminate is formed by laminating a protective layer 60 on the front side of the third intermediate in the thickness direction. This laminate forms synthetic leather 10.

[0088] <Second manufacturing method> In the second production method, steps A to D are performed in the order of step C, step B, step A, and step D. That is, in step C, the liquid composition C is applied to a releasable substrate, and then the liquid composition C is dried and solidified. When a grain pattern is to be formed on the surface of the synthetic leather 10, the surface of the releasable substrate to which the liquid composition C is applied has a shape that is the inverse of the uneven shape of the grain pattern. An example of a releasable substrate is release paper. In step C, a first intermediate is formed by laminating a non-porous resin layer 50 on a releasable substrate.

[0089] In step B, composition liquid B is applied onto the first intermediate, and then composition liquid B is dried and solidified. The surface of the first intermediate to which composition liquid B is applied is the back surface of the non-porous resin layer 50. In step B, a second intermediate is formed by laminating a second porous resin layer 32 on the back surface of the first intermediate in the thickness direction.

[0090] In step A, composition liquid A is applied onto a second intermediate. The surface of the second intermediate to which composition liquid A is applied is the back surface of the second porous resin layer 32. Subsequently, in step A, the first porous resin layer 31 and the fibrous substrate 20 are pressure-bonded together while composition liquid A remains viscous after application as the first porous resin layer 31. Next, in step A, the releasable substrate is peeled off. In step A, a third intermediate is formed in which the non-porous resin layer 50, the second porous resin layer 32, the first porous resin layer 31, and the fibrous substrate 20 are laminated from the front side to the back side in the thickness direction.

[0091] In step D, composition liquid D is applied onto the third intermediate, and then composition liquid D is dried and solidified. The surface of the third intermediate to which composition liquid D is applied is the surface of the non-porous resin layer 50. In step D, a laminate is formed by laminating a protective layer 60 on the front side of the third intermediate in the thickness direction. This laminate forms synthetic leather 10.

[0092] <Third manufacturing method> In the third production method, steps A to D are carried out in the order of step C, step B, step A, and step D. That is, in step C, the liquid composition C is applied to a releasable substrate, and then the liquid composition C is dried and solidified. When a grain pattern is to be formed on the surface of the synthetic leather 10, the surface of the releasable substrate to which the liquid composition C is applied has a shape that is the inverse of the uneven shape of the grain pattern. An example of a releasable substrate is release paper. In step C, a first intermediate is formed by laminating a non-porous resin layer 50 on a releasable substrate.

[0093] In step B, composition liquid B is applied onto the first intermediate, and then composition liquid B is dried and solidified. The surface of the first intermediate to which composition liquid B is applied is the back surface of the non-porous resin layer 50. In step B, a second intermediate is formed by laminating a second porous resin layer 32 on the back surface of the first intermediate in the thickness direction.

[0094] In step A, composition liquid A is applied onto the second intermediate, and then composition liquid A is dried and solidified. The surface of the second intermediate to which composition liquid A is applied is the back surface of the second porous resin layer 32. Subsequently, in step A, an adhesive is applied onto the first porous resin layer 31 to bond the first porous resin layer 31 and the fibrous substrate 20. The adhesive is applied to the back surface of the first porous resin layer 31. Next, in step A, the releasable substrate is peeled off. In step A, a third intermediate is formed in which the non-porous resin layer 50, the second porous resin layer 32, the first porous resin layer 31, and the fibrous substrate 20 are laminated from the front side to the back side in the thickness direction.

[0095] In step D, composition liquid D is applied onto the third intermediate, and then composition liquid D is dried and solidified. The surface of the third intermediate to which composition liquid D is applied is the surface of the non-porous resin layer 50. In step D, a laminate is formed by laminating a protective layer 60 on the front side of the third intermediate in the thickness direction. This laminate forms synthetic leather 10. This synthetic leather 10 includes an adhesive layer between the fibrous substrate 20 and the first porous resin layer 31.

[0096] <Fourth manufacturing method> In the fourth manufacturing method, steps A to D are performed in the order of step D, step C, step B, and step A. That is, in step D, the liquid composition D is applied to a releasable substrate, and then the liquid composition D is dried and solidified. The shape of the surface of the releasable substrate to which the liquid composition D is applied is appropriately determined taking into consideration various conditions. An example of the releasable substrate is release paper. When the releasable substrate is release paper, the shape of the surface of the release paper to which the liquid composition D is applied may be either smooth or uneven. In step D, a first intermediate is formed by laminating a protective layer 60 on a releasable substrate.

[0097] In step C, composition liquid C is applied onto the first intermediate, and then composition liquid C is dried and solidified. The surface of the first intermediate to which composition liquid C is applied is the back surface of the protective layer 60. In step C, a second intermediate is formed by laminating a non-porous resin layer 50 on the back surface of the first intermediate in the thickness direction.

[0098] In step B, composition liquid B is applied onto the second intermediate. The surface of the second intermediate to which composition liquid B is applied is the back surface of the non-porous resin layer 50. In step B, a third intermediate is formed by laminating a second porous resin layer 32 on the back surface of the second intermediate in the thickness direction.

[0099] In step A, composition liquid A is applied onto the third intermediate. The surface of the third intermediate to which composition liquid A is applied is the back surface of the second porous resin layer 32. Subsequently, in step A, the first porous resin layer 31 and the fibrous substrate 20 are pressure-bonded together while composition liquid A remains viscous after application as the first porous resin layer 31. Next, in step A, the releasable substrate is peeled off. In step A, a laminate is formed in which the protective layer 60, the non-porous resin layer 50, the second porous resin layer 32, the first porous resin layer 31, and the fibrous substrate 20 are laminated from the front side to the back side in the thickness direction. This laminate forms the synthetic leather 10.

[0100] <Fifth manufacturing method> In the fifth manufacturing method, steps A to D are performed in the order of step D, step C, step B, and step A. That is, in step D, the liquid composition D is applied to a releasable substrate, and then the liquid composition D is dried and solidified. The shape of the surface of the releasable substrate to which the liquid composition D is applied is appropriately determined taking into consideration various conditions. An example of the releasable substrate is release paper. When the releasable substrate is release paper, the shape of the surface of the release paper to which the liquid composition D is applied may be either smooth or uneven. In step D, a first intermediate is formed by laminating a protective layer 60 on a releasable substrate.

[0101] In step C, composition liquid C is applied onto the first intermediate, and then composition liquid C is dried and solidified. The surface of the first intermediate to which composition liquid C is applied is the back surface of the protective layer 60. In step C, a second intermediate is formed by laminating a non-porous resin layer 50 on the back surface of the first intermediate in the thickness direction.

[0102] In step B, composition liquid B is applied onto the second intermediate. The surface of the second intermediate to which composition liquid B is applied is the back surface of the non-porous resin layer 50. In step B, a third intermediate is formed by laminating a second porous resin layer 32 on the back surface of the second intermediate in the thickness direction.

[0103] In step A, composition liquid A is applied to a third intermediate, and then composition liquid A is dry-coagulated. The surface of the third intermediate to which composition liquid A is applied is the back surface of the second porous resin layer 32. Subsequently, in step A, an adhesive is applied to the first porous resin layer 31 to bond the first porous resin layer 31 and the fibrous substrate 20. The adhesive is applied to the back surface of the first porous resin layer 31. Next, in step A, the releasable substrate is peeled off. In step A, a laminate is formed in which the protective layer 60, the non-porous resin layer 50, the second porous resin layer 32, the first porous resin layer 31, and the fibrous substrate 20 are laminated from the front side to the back side in the thickness direction. This laminate forms synthetic leather 10. This synthetic leather 10 includes an adhesive layer between the fibrous substrate 20 and the first porous resin layer 31.

[0104] <Method of manufacturing the skin material 70 and embossing device 80> The method for manufacturing the skin material 70 and the embossing device 80 will be described with reference to Figures 1 to 3. In this description, it is assumed that the synthetic leather 10 is a long sheet material. In this case, the skin material 70 is also a long sheet material. However, the synthetic leather 10 and the skin material 70 may be short sheet materials. The thickness direction (front side and back side) described above is used as the direction specifying the embossing device 80. The method for manufacturing the skin material 70 includes an embossing step. The embossing step is performed by the embossing device 80. The embossing device 80 embosses the unprocessed synthetic leather 10 (see Figure 1) in the embossing step.

[0105] The embossing device 80 includes an embossing die 81, an embossing receiving die 85, and a heater 86 (see FIG. 3). The embossing die 81 has a roll shape. The embossing receiving die 85 has a roll shape. The embossing die 81 and the embossing receiving die 85 are arranged side by side in the thickness direction. The embossing die 81 is arranged on the front side of the synthetic leather 10 in the thickness direction. The embossing receiving die 85 is arranged on the back side of the synthetic leather 10 in the thickness direction.

[0106] The embossing device 80 includes a supply device 87 and a recovery device 88 (see FIG. 3). In FIG. 3, the illustration of the supply device 87 and the recovery device 88 is simplified. The supply device 87 and the recovery device 88 are intended for the synthetic leather 10 and the skin material 70, which are in the form of long sheets. The supply device 87 supplies the unprocessed synthetic leather 10 to the embossing mold 81 and the embossing receiving mold 85. The recovery device 88 recovers the skin material 70. The embossing device 80 can employ, as the supply device 87 and the recovery device 88, the same supply device and recovery device as those of a known embossing device. Therefore, further description of the supply device 87 and the recovery device 88 will be omitted.

[0107] The synthetic leather 10 and the upholstery material 70 are connected from a supply device 87 to a collection device 88 and are transported from the supply device 87 to the collection device 88. During transport from the supply device 87 to the collection device 88, the synthetic leather 10 passes between an embossing die 81 and an embossing receiving die 85 and is formed into the upholstery material 70 (embossing process). In this embodiment, the direction in which the synthetic leather 10 and the upholstery material 70 are transported is referred to as the "transport direction." Both the embossing die 81 and the embossing receiving die 85 have a roll shape. In this case, the embossing die 81 and the embossing receiving die 85 rotate in a direction corresponding to the transport direction. However, the rotation direction of the embossing receiving die 85 is opposite to that of the embossing die 81. In FIG. 3, the circular arrow in the embossing die 81 indicates the rotation direction of the embossing die 81, and the circular arrow in the embossing receiving die 85 indicates the rotation direction of the embossing receiving die 85.

[0108] The embossing mold 81 includes a molding section 82. The molding section 82 has an inverted uneven shape of the uneven shape of the uneven pattern 71. When the synthetic leather 10 passes between the embossing mold 81 and the embossing receiving mold 85, the molding section 82 comes into contact with the surface of the synthetic leather 10 and presses the surface of the synthetic leather 10. The molding section 82 includes a protruding section 83 and a recessed section 84. The protruding section 83 has a shape corresponding to the recessed section 72 of the uneven pattern 71 and bites into the surface of the synthetic leather 10. The recessed section 84 has a shape corresponding to the protruding section 73 of the uneven pattern 71. The next portion of the synthetic leather 10 fits into the recessed section 84. The aforementioned portion forms the protruding section 73 of the uneven pattern 71.

[0109] The embossing die 85 comes into contact with the back surface of the synthetic leather 10 when the synthetic leather 10 passes between the embossing die 81 and the embossing die 85, and supports the synthetic leather 10 from the back side in the thickness direction. The embossing die 85 may have the following surfaces formed of an elastic material. The above-mentioned surfaces come into contact with the back surface of the synthetic leather 10 when the synthetic leather 10 passes between the embossing die 81 and the embossing die 85. In the embodiment, the surface of the embossing die 85 that comes into contact with the back surface of the synthetic leather 10 is referred to as the "outer surface of the embossing die 85." The outer surface of the embossing die 85 may be a smooth surface. "Smooth" means a state without any elevations or irregularities.

[0110] Examples of elastic materials that form the outer surface of the embossing mold 85 include rubber, thermoplastic elastomers, and plastics. Examples of rubber that form the outer surface of the embossing mold 85 include silicone rubber, nitrile rubber, chloro rubber, and the like. P Examples of the thermoplastic elastomer that can form the outer surface of the embossing mold 85 include polyethylene rubber, ethylene-propylene rubber, butyl rubber, urethane rubber, fluororubber, and natural rubber. Examples of the thermoplastic elastomer that can form the outer surface of the embossing mold 85 include polyurethane elastomer, nylon elastomer, and polyvinyl chloride elastomer. Examples of the plastic that can form the outer surface of the embossing mold 85 include acrylic resin, polyvinyl chloride resin, polypropylene resin, polystyrene resin, polyethylene resin, and polyethylene terephthalate resin.

[0111] The hardness of the elastic material forming the outer surface of the embossing die 85 is preferably D20 to D95, and more preferably D50 to D80. Each of the above values is the average hardness obtained by the following hardness testing method. This hardness testing method is performed in accordance with JIS K6253-3:2012 (Vulcanized rubber and thermoplastic rubber -- Determination of hardness -- Part 3: Durometer hardness). [Hardness test method] Testing machine: Type D durometer (Kobunshi Keiki Co., Ltd. Digital Rubber Hardness Tester DD4-D) Test piece size (width x length x thickness): 40mm x 60mm x 11mm Test environment (temperature, relative humidity): 23±2°C, 50±5%RH Measurement time: Instantaneous Number of measurement points: 5 The heater 86 is provided in the embossing mold 81. The heater 86 is embedded inside the embossing mold 81. The heater 86 is an electric heater. In this embodiment, four electric heaters 86 are embedded in the embossing mold 81 at equal angular intervals. However, the heater 86 may be of a type other than an electric heater. The number of heaters 86 may be three or less or five or more. The type and number of heaters 86 are determined appropriately in consideration of various conditions. The arrangement of the heaters 86 in the embossing mold 81 is determined appropriately in consideration of various conditions.

[0112] The heater 86 heats the embossing mold 81 to a predetermined temperature. In the embodiment, the temperature of the embossing mold 81 heated by the heater 86 is referred to as the "heating temperature." The embossing device 80 performs the embossing process with the embossing mold 81 heated to the heating temperature. The heating temperature is determined appropriately taking into consideration various conditions. However, the heating temperature is preferably set as follows: The above setting is lower than the softening temperature of the first porous resin layer 31 and the softening temperature of the non-porous resin layer 50, and higher than the softening temperature of the second porous resin layer 32.

[0113] The heating temperature is set lower than the softening temperature of the first porous resin layer 31. In this case, the difference between the heating temperature and the softening temperature of the first porous resin layer 31 is preferably 5°C or more, and more preferably 10°C or more. The difference between the heating temperature and the softening temperature of the first porous resin layer 31 may be 40°C or less, or may be 30°C or less. By setting the heating temperature lower than the softening temperature of the first porous resin layer 31, the skin material 70 can maintain the thickness of the synthetic leather 10, and the texture of the synthetic leather 10 can be improved.

[0114] The heating temperature is set higher than the softening temperature of the second porous resin layer 32. In this case, the difference between the heating temperature and the softening temperature of the second porous resin layer 32 is preferably 10°C or more, more preferably 20°C or more. The difference between the heating temperature and the softening temperature of the second porous resin layer 32 may be 50°C or less, or may be 40°C or less. Setting the heating temperature higher than the softening temperature of the second porous resin layer 32 improves the shapeability of the synthetic leather 10. Setting the heating temperature higher than the softening temperature of the second porous resin layer 32 contributes to forming a sharp shape at the edges of the uneven pattern 71, further improving the design of the skin material 70.

[0115] The heating temperature is set lower than the softening temperature of the nonporous resin layer 50. In this case, the difference between the heating temperature and the softening temperature of the nonporous resin layer 50 is preferably 20°C or more, and more preferably 30°C or more. The difference between the heating temperature and the softening temperature of the nonporous resin layer 50 may be 60°C or less, or 50°C or less. By setting the heating temperature lower than the softening temperature of the nonporous resin layer 50, the feel of the synthetic leather 10 can be improved.

[0116] The conveying speed of the synthetic leather 10 in the embossing step is appropriately determined taking into consideration various conditions. For example, the conveying speed of the synthetic leather 10 in the embossing step may be 0.1 to 20 m / min, or 0.2 to 10 m / min. By making the conveying speed of the synthetic leather 10 in the embossing step 0.1 m / min or more, the shapeability of the synthetic leather 10 can be improved. The uneven pattern 71 can be easily formed on the surface of the synthetic leather 10. By making the conveying speed of the synthetic leather 10 in the embossing step 20 m / min or less, the texture of the synthetic leather 10 can be prevented from becoming rough and hard due to the skin material 70.

[0117] In addition, in the manufacturing method of the skin material 70, various embossing conditions are determined appropriately taking into consideration various factors. Examples of embossing conditions include pressing force and introduction tension. The pressing force acts on the synthetic leather 10 as it passes between the embossing die 81 and the embossing receiving die 85. As the pressing force increases, the molding section 82 bites more firmly into the surface of the synthetic leather 10. The introduction tension acts on the synthetic leather 10 as it passes through the embossing device 80. By increasing the introduction tension, slack that occurs in the synthetic leather 10 as it passes through the embossing device 80 can be suppressed, and the synthetic leather 10 can be kept in a tensioned state.

[0118] The embossing die and the embossing receiving die may be configured in a form different from the roll-shaped embossing die 81 and the embossing receiving die 85 shown in FIG. 3 . The embossing die and the embossing receiving die may be flat. However, in the embodiment, illustrations of the flat embossing die, the flat embossing receiving die, and the embossing device equipped with them are omitted. When the embossing die and the embossing receiving die have a flat shape, the embossing die moves back and forth relative to the embossing receiving die. This relative back and forth movement involves repeated movement from the front side to the back side in the thickness direction and from the back side to the front side in the thickness direction.

[0119] In the embossing process, the flat embossing mold and the embossing support mold sandwich the synthetic leather 10 in the following state. In the above state, the flat embossing mold moves to the rear end of the thickness direction relative to the flat embossing support mold. The outer surface of the flat embossing support mold becomes a smooth surface. The synthetic leather 10 is pressed by the shaping portion of the flat embossing mold while being supported on the outer surface of the flat embossing support mold. This shaping portion corresponds to shaping portion 82 and includes protrusions and recesses. The protrusions correspond to protrusions 83, and the recesses correspond to recesses 84. The flat embossing mold is heated by a heater. The heater corresponds to heater 86. The synthetic leather 10 is heated by the flat embossing mold. A textured pattern 71 is formed on the surface of the synthetic leather 10.

[0120] The pressing time of the synthetic leather 10 in the embossing step is determined appropriately taking into consideration various conditions. The pressing time is the time per pressing of the synthetic leather 10 by the flat embossing mold and embossing mold in the embossing step. For example, the pressing time of the synthetic leather 10 in the embossing step may be 15 to 120 seconds per pressing, or 20 to 90 seconds per pressing. By pressing the synthetic leather 10 for 15 seconds or more per pressing, the shapeability of the synthetic leather 10 can be improved. The uneven pattern 71 can be easily formed on the surface of the synthetic leather 10. By pressing the synthetic leather 10 for 120 seconds or less per pressing, the texture of the synthetic leather 10 can be prevented from becoming rough and hard due to the skin material 70.

[0121] Embossing devices are well known. Known embossing devices include a roll-shaped embossing die and an embossing receiving die, or a flat-plate-shaped embossing die and an embossing receiving die. In the method for manufacturing the skin material 70, a device equivalent to a well-known embossing device can be used as the embossing device 80. The method for manufacturing the skin material 70 can be performed in the same manner as the embossing method performed by a well-known embossing device. Therefore, further explanation of the method for manufacturing the skin material 70 and the embossing device 80 will be omitted.

[0122] <Example> The inventors conducted experiments using 12 types of synthetic leather and skin materials as samples to confirm the effectiveness of the synthetic leather 10 and skin material 70. The 12 types of synthetic leather and skin materials are referred to as "Sample 1" to "Sample 12."

[0123] In the examples, to clarify correspondence with the above-described embodiments, the same or corresponding parts are designated by the same reference numerals. However, in the examples, when the second porous resin layer does not contain hollow particles 43, the reference numerals for the synthetic leather, porous resin layer, second porous resin layer, holes, second holes, and skin material are designated by "synthetic leather 15," "porous resin layer 35," "second porous resin layer 37," "holes 45," "second holes 47," and "skin material 75." In the synthetic leather 10 of FIG. 1 and the skin material 70 of FIG. 2, multiple hollow particles 43 are dispersed in the resin that serves as the matrix of the second porous resin layer 32. From this perspective, the second porous resin layer 37 differs from the second porous resin layer 32 of FIGS. 1 and 2, and the second holes 47 differ from the second holes 42 of FIGS. 1 and 2. In this case, the synthetic leather 15 differs from the synthetic leather 10 in Figures 1 and 2, the porous resin layer 35 differs from the porous resin layer 30 in Figures 1 and 2, the holes 45 differ from the holes 40 in Figures 1 and 2, and the skin material 75 differs from the skin material 70 in Figure 2. In the examples (embodiments), illustrations of the synthetic leather 15 and the skin material 75 are omitted.

[0124] <Experimental Method> (1) Sample 1 (1-1) Synthetic leather 10 of sample 1 and its manufacturing method The synthetic leather 10 of Sample 1 includes a fibrous substrate 20, a porous resin layer 30, a non-porous resin layer 50, and a protective layer 60. The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32. The fibrous substrate 20, the first porous resin layer 31, the second porous resin layer 32, the non-porous resin layer 50, and the protective layer 60 are layered in the following order from front to back in the thickness direction: protective layer 60, non-porous resin layer 50, second porous resin layer 32, first porous resin layer 31, and fibrous substrate 20. The fibrous substrate 20 is a 28-gauge tricot knit. This tricot knit is made of polyester fiber and has a thickness of 1.1 mm and a modulus of 0.03 g / cm. 3 The synthetic leather 10 of Sample 1 was produced in accordance with the second production method described above, with steps A to D being carried out in the order of step C, step B, step A and step D.

[0125] In step C, composition liquid C prepared according to the following formulation 1 was applied in the form of a sheet onto release paper. The release paper used was AR-96M manufactured by Asahi Roll Co., Ltd. This release paper had a grained uneven pattern on the coated surface. A comma coater was used to apply composition liquid C. The application amount of composition liquid C was 35 g / m 2 In step C, after applying composition liquid C, composition liquid C was dried in a dryer. The drying conditions were 100° C. for 3 minutes. [Prescription 1] ·Base material: 90 parts by mass (Water-based polycarbonate polyurethane resin, manufactured by LANXESS KK, BAYDERM Bottom DLV, solid content 40% by mass, softening temperature 200°C) Matting agent: 10 parts by weight (Silica-containing water-based polycarbonate urethane resin, LANXESS HYDRHOLAC UD-2, solid content 25% by mass) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Pigment: 20 parts by weight (Carbon black pigment, EUDERM Black BN, manufactured by LANXESS KK, solid content 25% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In preparing Formulation 1, the viscosity of composition liquid C was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The nonporous resin layer 50 formed in step C had a thickness T7 of 35 μm and a softening temperature of 210°C.

[0126] In step B, composition liquid B prepared according to the following formulation 2 was applied in the form of a sheet onto the first intermediate formed in step C. The first intermediate was formed by laminating a non-porous resin layer 50 on a release paper. The surface of the first intermediate to be coated with composition liquid B was the backside of the non-porous resin layer 50. A comma coater was used to apply composition liquid B. The amount of composition liquid B applied was 45 g / m 2 In step B, after applying composition liquid B, composition liquid B was dried in a dryer. The drying conditions were 100° C. for 3 minutes. [Prescription 2] ·Base material: 100 parts by mass (Water-based polycarbonate polyurethane resin, LANXESS, LCC Binder UB-1770, solid content 30% by mass, softening temperature 160°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In preparing Formulation 2, the viscosity of Composition Solution B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and a rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in Step B had a thickness T4 of 80 μm and a softening temperature of 140°C.

[0127] In step A, composition liquid A prepared according to the following formulation 3 was applied in the form of a sheet onto the second intermediate formed in step B. The second intermediate was formed by laminating a second porous resin layer 32 on the back side of the first intermediate in the thickness direction. The surface of the second intermediate to be coated with composition liquid A was the back side of the second porous resin layer 32. A knife coater was used to apply composition liquid A. The amount of composition liquid A applied was 180 g / m 2 In step A, after the composition liquid A was applied, the composition liquid A was dried in a dryer. The drying conditions were 100°C for 3 minutes. Subsequently, in step A, the first porous resin layer 31 and the fibrous base material 20 were pressed together while the composition liquid A after application as the first porous resin layer 31 was still viscous. The pressure conditions were 39.2 N / cm 2 Next, in step A, the release paper was peeled off. [Prescription 3] ·Base material: 100 parts by mass (Polycarbonate polyol, manufactured by Kuraray Co., Ltd., Kuraray Polyol C2090, solid content 100% by mass) Hardener: 15 parts by weight (4,4'-diphenylmethane diisocyanate, manufactured by Seiko Chemicals Co., Ltd., solid content 50% by mass) ·Catalyst: 0.1 part by mass (DBU phenol salt, San-Apro Co., Ltd., U-CAT SA1, solid content 0.1% by mass) ·Catalyst: 0.1 part by mass (DBU paratoluenesulfonate, San-Apro Co., Ltd., U-CAT SA50, solid content 0.1% by mass) Solvent (methyl ethyl ketone): 40 parts by weight In preparing Formulation 3, the viscosity of composition liquid A was adjusted to 5000 mPa·s using a solvent. A Brookfield viscometer and a rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The first porous resin layer 31 formed in step A had a thickness T1 of 200 μm and a softening temperature of 190°C.

[0128] In step D, composition liquid D prepared according to the following formulation 4 was applied in the form of a sheet onto the third intermediate formed in step A. The third intermediate was formed by laminating a non-porous resin layer 50, a second porous resin layer 32, a first porous resin layer 31, and a fibrous substrate 20 from front to back in the thickness direction. The surface of the third intermediate to be coated with composition liquid D was the surface of the non-porous resin layer 50. A reverse coater was used to apply composition liquid D. The average coating thickness of composition liquid D was 5 μm (see "thickness T10" in Figure 1). In step D, after application of composition liquid D, composition liquid D was dried in a dryer. The drying conditions were 100°C for 3 minutes. [Formulation 4] ·Base material: 90 parts by mass (Water-based polycarbonate-based polyurethane resin, LANXESS, BAYDERM Finish 61UD, solid content 35% by mass) Matting agent: 10 parts by weight (Silica-containing water-based polycarbonate urethane resin, LANXESS HYDRHOLAC UD-2, solid content 25% by mass) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (acrylic acid alkyl ester-methacrylic acid copolymer aqueous emulsion, manufactured by Seiko Chemical Co., Ltd., Laccoat AD480, solid content 70% by mass) ·Water: 20 parts by mass In preparing Formulation 4, the viscosity of Composition Solution D was adjusted to 200 mPa·s using a thickener. A Brookfield viscometer and rotor No. 1 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C.

[0129] The softening temperatures of the non-porous resin layer 50, the second porous resin layer 32, and the first porous resin layer 31 were measured in accordance with JIS K7196. The measurements were performed using a thermomechanical analyzer (EXSTAR TMA-SS6100) manufactured by Hitachi High-Tech Science Corporation, using a needle-penetration probe. The needle tip diameter was 1.0 mm.

[0130] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0131] (1-2) Sample 1 Skin Material 70 and Its Manufacturing Method The skin material 70 of Sample 1 is formed using the synthetic leather 10 of Sample 1 as a raw material. The skin material 70 of Sample 1 includes the synthetic leather 10 of Sample 1, and this synthetic leather 10 has an uneven pattern 71 on its surface. In the skin material 70 of Sample 1, a plurality of hollow particles 43 are dispersed in the resin that serves as the base material of the second porous resin layer 32. The method for manufacturing the skin material 70 of Sample 1 used an embossing device 80 shown in Figure 3. The specifications and embossing conditions for the embossing device 80 were as follows. Regarding the "top surface of the convex portions 83," "vertical" corresponds to the diagonal distance of the hexagon, "horizontal" corresponds to the width across two faces of the hexagon, and "side" corresponds to the dimension of one side. Regarding the "arrangement of the plurality of convex portions 83," the "circumferential direction" corresponds to the rotation direction of the embossing mold 81 and the opposite direction, and the "width direction" corresponds to the direction of the rotation axis of the embossing mold 81. [Specifications of the embossing device 80] Outer diameter of embossing mold 81: 250mm Configuration of molding section 82 Shape of the protrusion 83: hexagonal column (top surface: hexagonal, height: 3 mm) Top surface (length x width x side): 4.6mm x 3.9mm x 2.3mm Arrangement of the plurality of protrusions 83: Arranged at intervals of 2.5 mm in the circumferential and width directions Outer diameter of embossed mold 85: 350mm [Embossing conditions] Surface temperature of embossing mold 81: 175°C ·Pushing force: 20MPa Conveying speed: 0.3m / min The surface temperature of the embossing die 81 corresponds to the "heating temperature" in the above-described embodiment. That is, in the manufacturing method of the skin material 70 of Sample 1, the heating temperature (175°C) was set to be 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0132] (2) Sample 2 (2-1) Synthetic leather 10 of sample 2 and its manufacturing method Sample 2 was synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 2 was produced in accordance with the second production method described above, similar to the production method of the synthetic leather 10 of Sample 1. However, in step C, the composition solution C was changed from the above-described formulation 1 to the following formulation 1-2. [Prescription 1-2] ·Base material: 95 parts by mass (Water-based polyester polyurethane resin, manufactured by Daiichi Kogyo Seiyaku Co., Ltd., Superflex 460, solid content 38% by mass, softening temperature 152°C) Matting agent: 10 parts by weight (Silica-containing water-based polycarbonate urethane resin, LANXESS HYDRHOLAC UD-2, solid content 25% by mass) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Pigment: 20 parts by weight (Carbon black pigment, EUDERM Black BN, manufactured by LANXESS KK, solid content 25% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In preparing Formulation 1-2, the viscosity of composition liquid C was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The nonporous resin layer 50 formed in step C had a thickness T7 of 35 μm and a softening temperature of 152°C.

[0133] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (152°C) of the non-porous resin layer 50 was 38°C lower than the softening temperature (190°C) of the first porous resin layer 31 and 12°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0134] The differences between Samples 1 and 2 are as described above. Other than this, the synthetic leather 10 of Sample 2 and its manufacturing method were the same as those of Sample 1. Therefore, further explanation regarding the synthetic leather 10 of Sample 2 and its manufacturing method will be omitted.

[0135] (2-2) Skin Material 70 of Sample 2 and Its Manufacturing Method The skin material 70 of Sample 2 is formed using the synthetic leather 10 of Sample 2 as a raw material. The skin material 70 of Sample 2 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 2, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 2, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 32, and 23°C higher than the softening temperature (152°C) of the non-porous resin layer 50.

[0136] The differences between Samples 1 and 2 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 2 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 2 and the manufacturing method thereof will be omitted.

[0137] (3) Sample 3 (3-1) Synthetic leather 10 of sample 3 and its manufacturing method Sample 3 was made into synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 3 was produced in accordance with the second production method described above, similar to the synthetic leather 10 of Sample 1. However, in step B, the amount of composition liquid B applied was 45 g / m 2 from 68g / m 2 The second porous resin layer 32 formed in step B had a thickness T4 of 120 μm and a softening temperature of 140°C.

[0138] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0139] The differences between Samples 1 and 3 are as described above. Other than this, the synthetic leather 10 of Sample 3 and its manufacturing method were the same as those of Sample 1. Therefore, further explanation regarding the synthetic leather 10 of Sample 3 and its manufacturing method will be omitted.

[0140] (3-2) Skin Material 70 of Sample 3 and Its Manufacturing Method The skin material 70 of Sample 3 is formed using the synthetic leather 10 of Sample 3 as a raw material. The skin material 70 of Sample 3 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 3, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 3, the heating temperature (175°C) was set to be 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0141] The differences between Samples 1 and 3 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 3 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 3 and the manufacturing method thereof will be omitted.

[0142] (4) Sample 4 (4-1) Synthetic leather 10 of sample 4 and its manufacturing method Sample 4 was made into synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 4 was produced in accordance with the second production method described above, similar to the synthetic leather 10 of Sample 1. However, in step B, composition liquid B was changed from the above-described formulation 2 to the following formulation 2-2, and the amount of composition liquid B applied was 45 g / m 2 from 68g / m 2 It was changed to. [Prescription 2-2] ·Base material: 100 parts by mass (Water-based polycarbonate polyurethane resin, LANXESS, LCC Binder UB-1770, solid content 30% by mass, softening temperature 160°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere F-80DE, average particle size 110 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 160°C), inclusion: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In preparing Formulation 2-2, the viscosity of Composition Solution B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and a rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in Step B had a thickness T4 of 110 μm and a softening temperature of 140°C.

[0143] In addition, in step A, the composition A was changed from the above-mentioned formulation 3 to the following formulation 3-2, and the coating amount of the composition A was 180 g / m 2 from 200 g / m 2 Furthermore, in step A, the drying conditions after application of composition liquid A were changed from 3 minutes at 100°C to 8 minutes at 70°C. [Prescription 3-2] ·Base material: 100 parts by mass (Polycarbonate polyol, manufactured by Kuraray Co., Ltd., Kuraray Polyol C2090, solid content 100% by mass) Hardener: 15 parts by weight (4,4'-diphenylmethane diisocyanate, manufactured by Seiko Chemicals Co., Ltd., solid content 50% by mass) ·Catalyst: 0.1 part by mass (DBU phenol salt, San-Apro Co., Ltd., U-CAT SA1, solid content 0.1% by mass) ·Catalyst: 0.1 part by mass (DBU paratoluenesulfonate, San-Apro Co., Ltd., U-CAT SA50, solid content 0.1% by mass) Solvent (methyl ethyl ketone): 60 parts by weight In preparing Formulation 3-2, the viscosity of composition liquid A was adjusted to 3000 mPa·s using a solvent. A Brookfield viscometer and a rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The first porous resin layer 31 formed in step A had a thickness T1 of 200 μm and a softening temperature of 190°C.

[0144] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0145] The differences between Samples 1 and 4 are as described above. Other than this, the synthetic leather 10 of Sample 4 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 4 and its manufacturing method will be omitted.

[0146] (4-2) Skin Material 70 of Sample 4 and Its Manufacturing Method The skin material 70 of Sample 4 is formed using the synthetic leather 10 of Sample 4 as a raw material. The skin material 70 of Sample 4 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 4, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 4, the heating temperature (175°C) was set to be 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0147] The differences between Samples 1 and 4 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 4 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 4 and the manufacturing method thereof will be omitted.

[0148] (5) Sample 5 (5-1) Synthetic leather 10 of sample 5 and its manufacturing method Sample 5 was synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 5 was produced in accordance with the second production method described above, similar to the production method of the synthetic leather 10 of Sample 1. However, in step B, composition solution B was changed from the above-described formulation 2 to the following formulation 2-3. [Prescription 2-3] ·Base material: 100 parts by mass (Water-based polycarbonate polyurethane resin, manufactured by DIC Corporation, WLS-290SG, solid content 30% by mass, softening temperature 220°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-3, the viscosity of composition liquid B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in step B had a thickness T4 of 80 μm and a softening temperature of 220°C.

[0149] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (220°C) of the second porous resin layer 32 was 30°C higher than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 10°C lower than the softening temperature (220°C) of the second porous resin layer 32.

[0150] The differences between Samples 1 and 5 are as described above. Other than this, the synthetic leather 10 of Sample 5 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 5 and its manufacturing method will be omitted.

[0151] (5-2) Skin Material 70 of Sample 5 and Its Manufacturing Method The skin material 70 of Sample 5 is formed using the synthetic leather 10 of Sample 5 as a raw material. The skin material 70 of Sample 5 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 5, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 5, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 45°C lower than the softening temperature (220°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0152] The differences between Samples 1 and 5 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 5 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 5 and the manufacturing method thereof will be omitted.

[0153] (6) Sample 6 (6-1) Synthetic leather 10 of sample 6 and its manufacturing method Sample 6 was synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 6 was produced in accordance with the second production method described above, similar to the production method of the synthetic leather 10 of Sample 1. However, in step B, composition solution B was changed from the above-described formulation 2 to the following formulation 2-4. [Prescription 2-4] ·Base material: 79 parts by mass (Water-based polycarbonate polyurethane resin, manufactured by Daiichi Kogyo Seiyaku Co., Ltd., Superflex 470, solid content 38% by mass, softening temperature 97°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-4, the viscosity of composition liquid B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in step B had a thickness T4 of 80 μm and a softening temperature of 97°C.

[0154] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (97°C) of the second porous resin layer 32 was 93°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 113°C higher than the softening temperature (97°C) of the second porous resin layer 32.

[0155] The differences between Samples 1 and 6 are as described above. Other than this, the synthetic leather 10 of Sample 6 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 6 and its manufacturing method will be omitted.

[0156] (6-2) Skin Material 70 of Sample 6 and Its Manufacturing Method The skin material 70 of Sample 6 is formed using the synthetic leather 10 of Sample 6 as a raw material. The skin material 70 of Sample 6 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 6, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 6, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 78°C higher than the softening temperature (97°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0157] The differences between Samples 1 and 6 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 6 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 6 and the manufacturing method thereof will be omitted.

[0158] (7) Sample 7 (7-1) Synthetic leather 10 of sample 7 and its manufacturing method Sample 7 was synthetic leather 10, similar to synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 7 was produced in accordance with the second production method described above, similar to the production method of synthetic leather 10 of Sample 1. However, in step B, composition solution B was changed from the above-described formulation 2 to the following formulation 2-5. [Prescription 2-5] ·Base material: 79 parts by mass (Water-based polycarbonate polyurethane resin, manufactured by Daiichi Kogyo Seiyaku Co., Ltd., F-2405D, solid content 38% by mass, softening temperature 120°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-5, the viscosity of composition liquid B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in step B had a thickness T4 of 80 μm and a softening temperature of 120°C.

[0159] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (120°C) of the second porous resin layer 32 was 70°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 90°C higher than the softening temperature (120°C) of the second porous resin layer 32.

[0160] The differences between Samples 1 and 7 are as described above. Other than this, the synthetic leather 10 of Sample 7 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 7 and its manufacturing method will be omitted.

[0161] (7-2) Skin material 70 of sample 7 and its manufacturing method The skin material 70 of Sample 7 is formed using the synthetic leather 10 of Sample 7 as a raw material. The skin material 70 of Sample 7 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 7, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 7, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 55°C higher than the softening temperature (120°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0162] The differences between Samples 1 and 7 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 7 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 7 and the manufacturing method thereof will be omitted.

[0163] (8) Sample 8 (8-1) Synthetic leather 10 of sample 8 and its manufacturing method Sample 8 was synthetic leather 10, similar to the synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 8 was produced in accordance with the second production method described above, similar to the production method of the synthetic leather 10 of Sample 1. However, in step B, composition solution B was changed from the above-described formulation 2 to the following formulation 2-6. [Prescription 2-6] ·Base material: 54 parts by mass (Water-based polycarbonate polyurethane resin, manufactured by DIC Corporation, WLA-195AR, solid content 56% by mass, softening temperature 166°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-6, the viscosity of composition liquid B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in step B had a thickness T4 of 80 μm and a softening temperature of 166°C.

[0164] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature of the second porous resin layer 32 (166°C) was 24°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature of the non-porous resin layer 50 (210°C) was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 44°C higher than the softening temperature (166°C) of the second porous resin layer 32.

[0165] The differences between Samples 1 and 8 are as described above. Other than this, the synthetic leather 10 of Sample 8 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 8 and its manufacturing method will be omitted.

[0166] (8-2) Skin material 70 of sample 8 and its manufacturing method The skin material 70 of Sample 8 is formed using the synthetic leather 10 of Sample 8 as a raw material. The skin material 70 of Sample 8 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 8, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 8, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 9°C higher than the softening temperature (166°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0167] The differences between Samples 1 and 8 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 8 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 8 and the manufacturing method thereof will be omitted.

[0168] (9) Sample 9 (9-1) Synthetic leather 10 of sample 9 and its manufacturing method Sample 9 was synthetic leather 10, similar to synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 9 was produced in accordance with the second production method described above, similar to the production method of synthetic leather 10 of Sample 1. However, in step B, composition solution B was changed from the above-described formulation 2 to the following formulation 2-7. [Prescription 2-7] ·Base material: 56 parts by mass (Water-based polycarbonate polyurethane resin, DIC Corporation, CRS-1701, solid content 54% by mass, softening temperature 180°C) ·Hollow particles 43: 2.5 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100S (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 150°C), inclusions: isopentane, pre-foamed product) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 3 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-7, the viscosity of composition liquid B was adjusted to 5000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 32 formed in step B had a thickness T4 of 80 μm and a softening temperature of 180°C.

[0169] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (180°C) of the second porous resin layer 32 was 10°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 30°C higher than the softening temperature (180°C) of the second porous resin layer 32.

[0170] The differences between Samples 1 and 9 are as described above. Other than this, the synthetic leather 10 of Sample 9 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 9 and its manufacturing method will be omitted.

[0171] (9-2) Skin Material 70 of Sample 9 and Its Manufacturing Method The skin material 70 of Sample 9 is formed using the synthetic leather 10 of Sample 9 as a raw material. The skin material 70 of Sample 9 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 9, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 9, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 5°C lower than the softening temperature (180°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0172] The differences between Samples 1 and 9 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 9 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 9 and the manufacturing method thereof will be omitted.

[0173] (10) Sample 10 (10-1) Synthetic leather 10 of sample 10 and its manufacturing method In the synthetic leather 10 of Sample 10, the protective layer 60 was omitted. The synthetic leather 10 of Sample 10 includes a fibrous substrate 20, a porous resin layer 30, and a non-porous resin layer 50. The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32. The fibrous substrate 20, the first porous resin layer 31, the second porous resin layer 32, and the non-porous resin layer 50 are laminated from the front side to the back side in the thickness direction in the following order: non-porous resin layer 50, second porous resin layer 32, first porous resin layer 31, and fibrous substrate 20. The synthetic leather 10 of Sample 10 was produced in the same manner as the second production method described above, with steps A to C being carried out in the order of step C, step B, and step A. Step D was not carried out due to the omission of the protective layer 60.

[0174] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0175] The differences between Samples 1 and 10 are as described above. Other than this, the synthetic leather 10 of Sample 10 and its manufacturing method were the same as those of Sample 1. Therefore, further explanation regarding the synthetic leather 10 of Sample 10 and its manufacturing method will be omitted.

[0176] (10-2) Skin material 70 of sample 10 and its manufacturing method The skin material 70 of Sample 10 is formed using the synthetic leather 10 of Sample 10 as a raw material. The skin material 70 of Sample 10 has the same structure as the skin material 70 of Sample 1, except that it does not include the protective layer 60. In the method for manufacturing the skin material 70 of Sample 10, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the method for manufacturing the skin material 70 of Sample 10, the heating temperature (175°C) was set to be 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 32, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0177] The differences between Samples 1 and 10 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 10 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 10 and the manufacturing method thereof will be omitted.

[0178] (11) Sample 11 (11-1) Synthetic leather 10 of sample 11 and its manufacturing method Sample 11 was synthetic leather 10, similar to synthetic leather 10 of Sample 1. The synthetic leather 10 of Sample 11 was produced in accordance with the second production method described above, similar to the production method of synthetic leather 10 of Sample 1. However, in step A, composition solution A was changed from the above-described formulation 3 to the following formulation 3-3. [Prescription 3-3] ·Base material: 100 parts by mass (Solvent-based, yellowing-resistant polycarbonate polyol, manufactured by DIC Corporation, SAD-30, solid content 70% by mass) ·Hollow particles: 4.76 parts by mass (Pre-foamed microcapsules, Matsumoto Yushi Pharmaceutical Co., Ltd., Matsumoto Microsphere FN-100SD (pre-foamed by heat treatment), average particle size 50 μm, solid content 100% by mass, powder, outer shell: acrylonitrile polymer (softening temperature: 160°C), inclusions: isopentane, pre-foamed product) Hardener: 10.5 parts by weight (4,4'-diphenylmethane diisocyanate, manufactured by Seiko Chemicals Co., Ltd., solid content 50% by mass) Solvent (methyl ethyl ketone): 42 parts by weight In preparing Formulation 3-3, the viscosity of composition liquid A was adjusted to 5000 mPa·s using a solvent. A Brookfield viscometer and a rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The first porous resin layer 31 formed in step A had a thickness T1 of 200 μm and a softening temperature of 190°C.

[0179] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 32, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 32 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 32.

[0180] The differences between Samples 1 and 11 are as described above. Other than this, the synthetic leather 10 of Sample 11 and its manufacturing method were the same as those of Sample 1. Therefore, other explanations regarding the synthetic leather 10 of Sample 11 and its manufacturing method will be omitted.

[0181] (11-2) Skin material 70 of sample 11 and its manufacturing method The skin material 70 of Sample 11 is formed using the synthetic leather 10 of Sample 11 as a raw material. The skin material 70 of Sample 11 has the same structure as the skin material 70 of Sample 1. In the manufacturing method of the skin material 70 of Sample 11, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the manufacturing method of the skin material 70 of Sample 11, the heating temperature (175°C) was set 15°C lower than the softening temperature (190°C) of the first porous resin layer 31 and 35°C lower than the softening temperature (140°C) of the second porous resin layer 32. high The temperature was set to 35°C higher than the softening temperature (210°C) of the non-porous resin layer 50. low It was set to

[0182] The differences between Samples 1 and 11 are as described above. Other than this, the manufacturing method of the skin material 70 of Sample 11 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 70 of Sample 11 and the manufacturing method thereof will be omitted.

[0183] (12) Sample 12 (12-1) Synthetic leather 15 of sample 12 and its manufacturing method Sample 12 was a synthetic leather 15 with a different structure from the synthetic leather 10 of Sample 1. The synthetic leather 15 of Sample 12 included a fibrous substrate 20, a porous resin layer 35, a non-porous resin layer 50, and a protective layer 60. The porous resin layer 35 included a first porous resin layer 31 and a second porous resin layer 37. The fibrous substrate 20, the first porous resin layer 31, the second porous resin layer 37, the non-porous resin layer 50, and the protective layer 60 were laminated in this order from front to back in the thickness direction: the protective layer 60, the non-porous resin layer 50, the second porous resin layer 37, the first porous resin layer 31, and the fibrous substrate 20. The second porous resin layer 37 had a plurality of second holes 47. The second holes 47 were part of the plurality of holes 45 of the porous resin layer 35. However, the second holes 47 were not formed by hollow particles 43. That is, in the synthetic leather 15 of sample 12, the plurality of hollow particles 43 are not dispersed in the resin that serves as the base material of the second porous resin layer 37. In the synthetic leather 15 of sample 12, similar to the plurality of first holes 41 in the first porous resin layer 31, the plurality of second holes 47 are formed in the resin that serves as the base material of the second porous resin layer 37 by known foam molding (mechanical foaming).

[0184] The synthetic leather 15 of Sample 12 was produced in accordance with the second production method described above, similar to the production method for synthetic leather 10 of Sample 1. In step B, the composition solution B was changed from the above-described formulation 2 to the following formulation 2-8. [Prescription 2-8] ·Base material: 100 parts by mass (Water-based polycarbonate polyurethane resin, LANXESS, LCC Binder UB-1770, solid content 30% by mass, softening temperature 160°C) Crosslinking agent: 1 part by weight (Isocyanate-based crosslinking agent, LANXESS AQUADERM XL-50, solid content 50% by mass) Leveling agent: 1 part by weight (Silicone leveling agent, LANXESS AQUADERM Fluid H, solid content 100% by mass) Thickener: 6 parts by weight (Polyether polyol polyurethane polymer, manufactured by ADEKA Corporation, ADEKA NOL UH-450VF, solid content 50% by mass) ·Water: 20 parts by mass In the preparation of Formulation 2-8, the viscosity of composition solution B was adjusted to 10,000 mPa·s using a thickener. A Brookfield viscometer and rotor No. 4 were used to measure the viscosity. The rotation speed was 12 rpm. The measurement was carried out in an environment set to 23°C. The second porous resin layer 37 formed in step B had a thickness T4 of 80 μm and a softening temperature of 140°C.

[0185] When the softening temperature (first temperature) of the first porous resin layer 31, the softening temperature (second temperature) of the second porous resin layer 37, and the softening temperature (third temperature) of the non-porous resin layer 50 were compared, the results were as follows: The softening temperature (140°C) of the second porous resin layer 37 was 50°C lower than the softening temperature (190°C) of the first porous resin layer 31. The softening temperature (210°C) of the non-porous resin layer 50 was 20°C higher than the softening temperature (190°C) of the first porous resin layer 31 and 70°C higher than the softening temperature (140°C) of the second porous resin layer 37.

[0186] The differences between Samples 1 and 12 are as described above. Other than this, the synthetic leather 15 of Sample 12 and its manufacturing method were the same as those of Sample 1. Therefore, further explanation regarding the synthetic leather 15 of Sample 12 and its manufacturing method will be omitted.

[0187] (12-2) Skin material 75 of sample 12 and its manufacturing method The skin material 75 of Sample 12 is formed using the synthetic leather 15 of Sample 12 as a raw material. The skin material 75 of Sample 12 includes the synthetic leather 15 of Sample 12, and this synthetic leather 15 has an uneven pattern 71 on its surface. In the skin material 75 of Sample 12, the plurality of hollow particles 43 are not dispersed in the resin that serves as the base material of the second porous resin layer 37. In the method for manufacturing the skin material 75 of Sample 12, the specifications of the embossing device 80 and the embossing conditions were the same as those of Sample 1. That is, in the method for manufacturing the skin material 75 of Sample 12, the heating temperature (175°C) was set to be 15°C lower than the softening temperature (190°C) of the first porous resin layer 31, 35°C higher than the softening temperature (140°C) of the second porous resin layer 37, and 35°C lower than the softening temperature (210°C) of the non-porous resin layer 50.

[0188] The differences between Samples 1 and 12 are as described above. Other than this, the manufacturing method of the skin material 75 of Sample 12 was the same as that of Sample 1. Therefore, other explanations regarding the skin material 75 of Sample 12 and the manufacturing method thereof will be omitted.

[0189] (13) Rating 1 The appearance of the uneven pattern 71 was visually observed and evaluated according to the following evaluation criteria: In this evaluation 1, an evaluation result of grade 4 or higher was deemed to be acceptable. [Evaluation criteria for the appearance of 71 textured patterns] Grade 5: Clear unevenness and excellent sharpness of the edges Grade 4: There is a clear sense of unevenness, but the edges are slightly lacking in sharpness. Grade 3: There is a sense of unevenness, but the edges lack sharpness Grade 2: The texture is slightly unclear Grade 1: The sense of unevenness is unclear (14) Rating 2 The thickness difference ΔT was evaluated according to the following evaluation criteria. The thickness difference ΔT is the difference (TB - TA) between the thickness TA of the recessed portion 72 and the thickness TB of the protruding portion 73 (see Figure 2). The thickness TA of the recessed portion 72 was taken as the average value of the following three first measurement values. The three first measurement values were obtained by measuring any three recessed portions 72 in the uneven pattern 71. The thickness TB of the protruding portion 73 was taken as the average value of the following three second measurement values. The three second measurement values were obtained by measuring any three protruding portions 73 in the uneven pattern 71. The thickness TA of the recessed portion 72 and the thickness TB of the protruding portion 73 were measured by magnifying the vertical cross section of the skin materials 70 and 75 by 500 times using a microscope (VHX-200 / 100F) manufactured by Keyence Corporation. The cutting direction of the skin materials 70 and 75 coincided with the thickness direction. In this evaluation 2, an evaluation result of B or higher was considered to be acceptable. [Evaluation criteria for thickness difference ΔT] A:85μm or more B: 60 μm or more and less than 85 μm C: Less than 60 μm <Experimental Results> (1) Rating 1 and Rating 2 The results of Evaluation 1 and Evaluation 2 are shown in Table 1. [Table 1]

[0190] For the skin materials 70 of Samples 1 to 11, the evaluation results for Evaluation 1 were Grade 4 or higher, and the evaluation results for Evaluation 2 were Grade B or higher. That is, all of the skin materials 70 of Samples 1 to 11 met the pass criteria for Evaluation 1 and the pass criteria for Evaluation 2.

[0191] In contrast, the skin material 75 of Sample 12 received an A in Evaluation 2 but a Grade 3 in Evaluation 1. That is, the skin material 75 of Sample 12 met the criteria for passing Evaluation 2 but did not meet the criteria for passing Evaluation 1. In the synthetic leather 15 of Sample 12, the resin that forms the base material of the second porous resin layer 37 is mechanically foamed, thereby causing the second porous resin layer 37 to include multiple second holes 47. The inventors believe that the inclusion of multiple second holes 47 in the second porous resin layer 37 of the synthetic leather 15 of Sample 12 also made it possible to form the textured pattern 71 that received an A in Evaluation 2. However, the inventors believe that the following first and second reasons prevented the textured pattern 71 from being sharp. The first reason is that it is difficult or impossible to uniformly size the multiple second holes 47 using foam molding such as mechanical foaming. The second reason is that it is difficult or impossible to disperse the multiple second holes 47 throughout the second porous resin layer 37. As a result, the inventors believe that the skin material 75 of Sample 12 was rated as Grade 3.

[0192] From the results of this experiment, the inventors speculate that the second porous resin layer 32 of Samples 1 to 11 can more easily achieve the following phenomenon, compared to the multiple second holes 47 in the second porous resin layer 37 of Sample 12. The phenomenon is that the multiple second holes 42 are uniformly dispersed and arranged throughout the second porous resin layer 32 by the multiple hollow particles 43.

[0193] (2) Other For example, the synthetic leather 10 of Sample 1 had the configuration shown in the upper panel of Fig. 4, and the skin material 70 of Sample 1 had the configuration shown in the lower panel of Fig. 4. In the upper and lower panels of Fig. 4, which show the synthetic leather 10 and skin material 70 of Sample 1, the following boundaries and the surface of the synthetic leather 10 are depicted with solid lines superimposed to clarify them. The aforementioned boundaries are the boundary between the fibrous substrate 20 and the first porous resin layer 31, the boundary between the first porous resin layer 31 and the second porous resin layer 32, and the boundary between the second porous resin layer 32 and the non-porous resin layer 50. The protective layer 60 cannot be observed in the upper and lower panels of Fig. 4. This is because the vertical cross sections of the upper and lower panels of Fig. 4 were magnified 300 times.

[0194] For reference, the results obtained for the synthetic leather 10 and skin material 70 of Samples 1 to 11, and the synthetic leather 15 and skin material 75 of Sample 12 are summarized in Tables 2 to 9. The "first dimension (A)," "first dimension (B)," and "first dimension (C)" in Tables 2 to 5 and the "second dimension (A)," "second dimension (B)," and "second dimension (C)" in Tables 6 to 9 are as follows: The first dimension (A) indicates the major axis of the first hole 41 in the synthetic leather 10, 15 before embossing. The first dimension (B) indicates the major axis of the first hole 41 in the region of the recessed portion 72 of the textured pattern 71. The first dimension (C) indicates the major axis of the first hole 41 in the region of the protruding portion 73 of the textured pattern 71. The second dimension (A) indicates the major axis of the second hole 42, 47 in the synthetic leather 10, 15 before embossing. The second dimension (B) indicates the major axis of the second holes 42, 47 in the region of the recessed portion 72 of the uneven pattern 71. The second dimension (C) indicates the major axis of the second holes 42, 47 in the region of the protruding portion 73 of the uneven pattern 71. [Table 2] [Table 3] [Table 4] [Table 5] [Table 6] [Table 7] [Table 8] [Table 9]

[0195] For the synthetic leather 10 and skin material 70 of Samples 1 to 11, and the synthetic leather 15 and skin material 75 of Sample 12, the relationships between the first dimension (A) and the second dimension (A), the relationship between the first dimension (B) and the second dimension (B), the relationship between the first dimension (C) and the second dimension (C), and the relationship between the second dimension (B) and the second dimension (C) were as shown in Table 10. In Table 10, "Yes" indicates that the magnitude relationship is satisfied, and "No" indicates that the magnitude relationship is not satisfied. Based on the results of this experiment, the inventors believe that the synthetic leather 10 of Samples 1 to 11 has excellent shaping properties. [Table 10]

[0196] <Effects of the embodiment> According to the embodiment, the following effects can be obtained.

[0197] (1) The synthetic leather 10 includes a fibrous substrate 20 and a porous resin layer 30 (see FIG. 1). The porous resin layer 30 is laminated on the fibrous substrate 20 and has a plurality of pores 40. The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32. The first porous resin layer 31 is laminated on the fibrous substrate 20. The second porous resin layer 32 is laminated on the first porous resin layer 31. The first porous resin layer 31 has a plurality of first pores 41 that are part of the plurality of pores 40. The second porous resin layer 32 has a plurality of second pores 42 that are part of the plurality of pores 40. The porous resin layer 30 contains a plurality of hollow particles 43 in the following resin. The aforementioned resin serves as the matrix for the porous resin layer 30 and also serves as the matrix for the second porous resin layer 32. The plurality of hollow particles 43 are dispersed in the resin that serves as the matrix for the second porous resin layer 32. The hollow particles 43 have second pores 42 therein.

[0198] According to the synthetic leather 10, the size of the plurality of second pores 42 can be made uniform. The plurality of second pores 42 of uniform size can be dispersed in the second porous resin layer 32 laminated on the first porous resin layer 31.

[0199] Consider a comparative synthetic leather. The comparative synthetic leather includes a first porous resin layer 31 and a comparative porous resin layer on the thickness-wise surface of the first porous resin layer 31. The comparative porous resin layer corresponds to the second porous resin layer 32. However, unlike the second porous resin layer 32, the comparative porous resin layer has multiple pores of different sizes dispersed therein. For ease of explanation, the portion of the comparative porous resin layer containing large pores will be referred to as the "first portion," and the portion of the comparative porous resin layer containing small pores will be referred to as the "second portion." The second portion is disposed in a direction perpendicular to the thickness direction relative to the first portion. The pore size may be defined by the major axis of the pore. When the comparative synthetic leather is embossed, the comparative porous resin layer is pressed with the same force throughout. However, differences in deformation are likely to occur between the first and second portions. Synthetic leather 10 can prevent such occurrences.

[0200] When the synthetic leather 10 is embossed, the second porous resin layer 32 can be uniformly deformed. The synthetic leather 10 can have sharp edges of the concave-convex pattern 71. For example, the edges of the concave-convex pattern 71 correspond to portions P1 and P2 within the concave-convex pattern 71 (see FIG. 2). The portions P1 and P2 are formed by two non-parallel surfaces in contact and have angular shapes. The portion P1 serving as the edge has a convex angular shape. The portion P2 serving as the edge has a concave angular shape. Note that portions P1 and P2 are examples of the edges of the concave-convex pattern 71.

[0201] (2) The first holes 41 are closed spaces having a major axis of a first dimension, and the second holes 42 are closed spaces having a major axis of a second dimension (see FIG. 1). The relationship between the first dimension and the second dimension is preferably "first dimension > second dimension." The softening temperature of the first porous resin layer 31 is a first temperature, and the softening temperature of the second porous resin layer 32 is a second temperature. The relationship between the first temperature and the second temperature is preferably "first temperature > second temperature." These configurations make it easier to deform the second porous resin layer 32 than the first porous resin layer 31 when embossing the synthetic leather 10.

[0202] (3) The skin material 70 includes synthetic leather 10 (see FIG. 2). The synthetic leather 10 has a concave-convex pattern 71 on its surface. This skin material 70 allows the synthetic leather 10 to achieve the above-mentioned functions when embossed. The skin material 70 has a concave-convex pattern 71 with sharp edges.

[0203] <Modification> The embodiment can also be as follows. Some of the configurations of the modified examples shown below can also be adopted in appropriate combination. Below, we will explain the differences from the above, and will omit explanations of similarities as appropriate.

[0204] (1) Synthetic leather 10 includes a fibrous substrate 20, a porous resin layer 30, a non-porous resin layer 50, and a protective layer 60 (see FIG. 1). The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32. The skin material 70 includes synthetic leather 10 (see FIG. 2). The synthetic leather 10 in the skin material 70 has a textured pattern 71 on its surface. One or both of the non-porous resin layer 50 and the protective layer 60 may be omitted. In this description, the reference numerals used above are used to clarify correspondence with the embodiment based on FIGS. 1 and 2. Even in synthetic leather 10 in which one or both of the non-porous resin layer 50 and the protective layer 60 are omitted, the second porous resin layer 32 in the porous resin layer 30 is provided on the outer side in the thickness direction of the first porous resin layer 31.

[0205] Assume that the non-porous resin layer 50 is omitted. In this case, the synthetic leather 10 includes a fibrous substrate 20, a porous resin layer 30, and a protective layer 60 (not shown). In this synthetic leather 10, the fibrous substrate 20, the porous resin layer 30, and the protective layer 60 are laminated in this order from the front side to the back side in the thickness direction: protective layer 60, porous resin layer 30, and fibrous substrate 20. In this method for manufacturing synthetic leather 10, step C is omitted. In step C, the non-porous resin layer 50 is formed. The skin material 70 includes synthetic leather 10 from which the non-porous resin layer 50 is omitted (not shown). The synthetic leather 10 with this skin material 70 has an uneven pattern 71 on its surface.

[0206] Assume that the protective layer 60 is omitted (see "Sample 10" in the above example). In this case, the synthetic leather 10 includes a fibrous substrate 20, a porous resin layer 30, and a non-porous resin layer 50 (see FIG. 5). In this synthetic leather 10, the fibrous substrate 20, the porous resin layer 30, and the non-porous resin layer 50 are laminated in this order from the front side to the back side in the thickness direction: the non-porous resin layer 50, the porous resin layer 30, and the fibrous substrate 20. In the manufacturing method of this synthetic leather 10, step D is omitted. In step D, the protective layer 60 is formed. The skin material 70 includes synthetic leather 10 from which the protective layer 60 is omitted (see FIG. 6). The synthetic leather 10 with this skin material 70 has an uneven pattern 71 on its surface.

[0207] Assume that the non-porous resin layer 50 and the protective layer 60 are omitted. In this case, the synthetic leather 10 includes a fibrous substrate 20 and a porous resin layer 30 (not shown). In this synthetic leather 10, the fibrous substrate 20 and the porous resin layer 30 are laminated in this order from the front side to the back side in the thickness direction: the porous resin layer 30 and the fibrous substrate 20. In this method of manufacturing the synthetic leather 10, steps C and D are omitted. In step C, the non-porous resin layer 50 is formed. In step D, the protective layer 60 is formed. The skin material 70 includes the synthetic leather 10 from which the non-porous resin layer 50 and the protective layer 60 are omitted (not shown). The synthetic leather 10 with this skin material 70 has an uneven pattern 71 on its surface.

[0208] (2) The porous resin layer 30 includes a first porous resin layer 31 and a second porous resin layer 32 (see FIG. 1). The porous resin layer may be a single layer. In this case, the single layer porous resin layer has the same configuration as the second porous resin layer 32. That is, like the porous resin layer 30 described above, this porous resin layer is laminated on the fibrous substrate 20 and has multiple pores. The single layer porous resin layer contains multiple hollow particles in the resin that serves as the base material of the porous resin layer. The multiple hollow particles are dispersed in the resin. That is, the single layer porous resin layer has multiple pores formed by the multiple hollow particles dispersed throughout. This configuration allows the multiple pores to be uniform in size throughout the porous resin layer. When embossing synthetic leather, the porous resin layer can be uniformly deformed.

[0209] The single-layer porous resin layer is formed by a process similar to the process B described above. In this process, a composition liquid similar to composition liquid B is applied and the composition liquid is solidified. In the method for producing synthetic leather, the single-layer porous resin layer is laminated on the fibrous substrate 20 by the same method as described above. The thickness of the single-layer porous resin layer is determined appropriately taking into account various conditions. For example, the thickness of the single-layer porous resin layer may be the same as the thickness of the porous resin layer 30. In the embodiment described above, the thickness of the porous resin layer 30 is the sum of the thickness T1 of the first porous resin layer 31 and the thickness T4 of the second porous resin layer 32.

[0210] (3) The porous resin layer 30 contains a plurality of hollow particles 43 in the resin that serves as the base material for the second porous resin layer 32 (see FIG. 1). The porous resin layer may contain a plurality of hollow particles in the resin that serves as the base material for the first porous resin layer (see "Sample 11" in the above example). In this case, the hollow particles in the first porous resin layer have first holes inside. In the porous resin layer, the plurality of hollow particles are dispersed in the resin that serves as the base material for the first porous resin layer.

[0211] The hollow particles in the first porous resin layer may have the property of not undergoing or being unlikely to undergo volumetric expansion upon heat treatment, similar to the hollow particles 43 in the second porous resin layer 32. This can suppress volumetric fluctuations in the first porous resin layer during the production of synthetic leather, and can also suppress variations in the shape, size, and distribution of the plurality of first pores. During embossing of the synthetic leather, the first porous resin layer can be uniformly deformed together with the second porous resin layer 32.

[0212] The first pores are closed spaces inside hollow particles, and the second pores 42 are closed spaces inside hollow particles 43. In this case, the hollow particles 43 in the second porous resin layer 32 are different from the hollow particles in the first porous resin layer. That is, the porous resin layer contains a plurality of hollow particles of a first type in a first resin, and a plurality of hollow particles of a second type in a second resin. The first resin serves as the base material for the first porous resin layer. The second resin serves as the base material for the second porous resin layer 32. The major axis of the first pores can be defined as a first dimension, and the major axis of the second pores 42 can be defined as a second dimension smaller than the first dimension. However, the hollow particles of the first type may have the same specifications as the hollow particles of the second type 43 in all respects except for size. [Explanation of symbols]

[0213] 10 Synthetic leather, 20 Fiber substrate, 30 Porous resin layer 31 first porous resin layer, 32 second porous resin layer, 40 pores 41 first pore, 42 second pore, 43 hollow particle 50 Non-porous resin layer, 60 Protective layer, 70 Skin material 71 uneven pattern, 72 concave portion, 73 convex portion 80 embossing device, 81 embossing mold, 82 molding section 83 convex portion, 84 concave portion, 85 embossing receiving mold, 86 heater 87 supply device, 88 recovery device, P1, P2 parts T1~T10, TA, TB thickness, T11 total thickness, ΔT thickness difference

Claims

1. A fibrous base material; a porous resin layer laminated on the fibrous base material and having a plurality of holes; the porous resin layer contains a plurality of hollow particles in a resin that serves as a base material of the porous resin layer, the plurality of hollow particles are dispersed in the resin; The hollow particles have the pores inside, The porous resin layer is a first porous resin layer laminated on the fibrous base material; a second porous resin layer laminated on the first porous resin layer, the first porous resin layer has a plurality of first holes that are part of the plurality of holes, the second porous resin layer has a plurality of second holes that are part of the plurality of holes, the plurality of hollow particles are dispersed in a resin that serves as a base material of the second porous resin layer; the hollow particles have the second pores therein, the first hole is a closed space having a major axis of a first dimension; The second hole is a closed space having a second dimension, a major axis of which is smaller than the first dimension.

2. A fibrous base material; a porous resin layer laminated on the fibrous base material and having a plurality of holes; the porous resin layer contains a plurality of hollow particles in a resin that serves as a base material of the porous resin layer, the plurality of hollow particles are dispersed in the resin; The hollow particles have the pores inside, The porous resin layer is a first porous resin layer laminated on the fibrous base material; a second porous resin layer laminated on the first porous resin layer, the first porous resin layer has a plurality of first holes that are part of the plurality of holes, the second porous resin layer has a plurality of second holes that are part of the plurality of holes, the plurality of hollow particles are dispersed in a resin that serves as a base material of the second porous resin layer; the hollow particles have the second pores therein, the softening temperature of the first porous resin layer is a first temperature; The synthetic leather, wherein the softening temperature of the second porous resin layer is a second temperature lower than the first temperature.

3. the softening temperature of the first porous resin layer is a first temperature; The synthetic leather according to claim 1 , wherein the second porous resin layer has a softening temperature of a second temperature lower than the first temperature.

4. The synthetic leather according to any one of claims 1 to 3, The synthetic leather is a surface material having an uneven pattern on its surface.

Citation Information

Patent Citations

  • Leather-like sheet and production thereof

    JP1990061181A

  • Synthetic leather and production thereof

    JP1990307987A

  • Silvered artificial leather

    JP1994192966A

  • Leather-like sheet

    JP2003293270A

  • Skin material

    JP2015104848A