Method for manufacturing leather products
The method of using a stacked set with ventilation holes and vacuum treatment effectively addresses bubble formation in artificial leather manufacturing, enhancing quality and yield by evacuating gas during the polymer material fusion process.
Patent Information
- Application Number
- JP2022126136
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-03-03
- Filing Date
- 2022-08-08
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2042-08-08
Smart Images

Figure 0007740624000001 
Figure 0007740624000002 
Figure 0007740624000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a method for manufacturing leather products, and in particular to a method for manufacturing leather products that can avoid the formation of air cells. [Background technology]
[0002] Artificial leather is widely used in daily life due to its advantages such as softness, lightness, waterproofness, ease of processing, and low cost. Generally, conventional artificial leather is manufactured as follows: a solid-state polymer material is mixed with an organic solvent and / or a dispersant to form a liquid or paste mixture. The liquid or paste mixture is uniformly coated on a substrate such as a cloth or release paper. The substrate with the liquid or paste mixture is then heated to remove the organic solvent and / or dispersant therein, allowing the polymer material to connect through thermal fusion or crosslinking to form a film- or sheet-like artificial leather.
[0003] However, in the process of manufacturing leather products, gas may be trapped by the polymer material, resulting in the formation of bubbles protruding from the leather product or pits remaining from the bubbles, which affects the quality and yield of the artificial leather. Therefore, relevant manufacturers are working to improve the method of manufacturing artificial leather. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] CN102933651 B [Patent Document 2] TWI357854 B Summary of the Invention
[0005] According to one embodiment of the present disclosure, a method for manufacturing a leather product is disclosed. The leather product includes flexible leather. The method for manufacturing the leather product includes the following steps: a leather precursor is provided, the leather precursor includes a polymer material; an ejection member, a leather precursor, and a pressing member are stacked in order to form a stacked set, and at least one of the ejection member and the pressing member is formed with a plurality of ventilation holes; the stacked set is heated and vacuum treated to allow the polymer material to form flexible leather, so that the leather precursor forms the leather product; and the leather product is separated from the ejection member and the pressing member.
[0006] According to another embodiment of the present disclosure, a method for manufacturing a leather product includes the following steps: providing a leather precursor comprising a polymer material and a substrate; stacking the leather precursor and a press member in order to form a stacked set, the press member being formed with a plurality of ventilation holes; heating and vacuum treating the stacked set to allow the polymer material to combine with the substrate so that the leather precursor forms a leather product; and separating the leather product from the press member.
[0007] These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment, which is illustrated in the various figures and drawings. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a flow chart illustrating a method for manufacturing a leather product according to one embodiment of the present disclosure. [Figure 2] 2 is a schematic diagram showing steps of a method for producing the leather product in FIG. 1. FIG. [Figure 3] FIG. 3 is an enlarged view of a part a in FIG. [Figure 4] 10 is a schematic cross-sectional view of a pressing member and a stacked set according to another embodiment of the present disclosure. [Figure 5] FIG. 10 is a schematic cross-sectional view of a pressing member and a stacked set according to yet another embodiment of the present disclosure. [Figure 6] FIG. 10 is a schematic cross-sectional view of a pressing member and a stacked set according to yet another embodiment of the present disclosure. [Figure 7] 1 is a schematic cross-sectional view of a leather precursor and a leather product according to another embodiment of the present disclosure. [Figure 8] 1A-1C are schematic top views of a leather precursor and cross-sectional views of a leather product according to yet another embodiment of the present disclosure. [Figure 9] 1 is a flow chart illustrating a method for manufacturing a leather product according to another embodiment of the present disclosure. [Figure 10] 10 is a schematic diagram showing steps of a method for producing the leather product in FIG. 9. DETAILED DESCRIPTION OF THE INVENTION
[0009] In order to enable those skilled in the art to better understand the present disclosure, the following provides preferred embodiments with drawings to illustrate the present disclosure and the effects to be achieved. It should be noted that the drawings are simplified schematic views. Therefore, only the elements and their combination relationships related to the present disclosure are shown to provide a clearer explanation of the basic framework or implementation method of the present disclosure. The actual elements and configurations may be more complicated. In addition, for convenience, the number of components in the drawings may not be equal to the actual number, and the shapes and sizes of the components may not be drawn proportionally to the actual shapes and sizes, and the proportions may be adjusted according to design requirements.
[0010] Directional terms in the following embodiments, such as up, down, left, right, front, or back, are used with reference to the orientation of one or more of the figures being described. As such, the directional terms are used for illustrative purposes and are in no way limiting. Furthermore, some figures in the present disclosure are illustrated based on an XYZ Cartesian coordinate system for ease of explanation.
[0011] According to the present disclosure, vent holes are provided to vent gas from the stacked set. For example, vent holes are provided to vent air between the leather precursor and the pressing member and / or between the leather precursor and the releasing member. The vent holes may be formed on the side of the releasing member and / or the pressing member.
[0012] According to the present disclosure, by heating and vacuum treating the stacked set, the polymeric material is allowed to form a flexible leather. Depending on the polymeric material, the polymeric material can form a flexible leather through physical fusion bonding or chemical crosslinking.
[0013] According to the present disclosure, the method of manufacturing leather products may be a continuous process or a discontinuous process. A continuous process may be carried out using equipment with a conveyor, which is useful for bundling the finished leather products. A discontinuous process can be used to manufacture one leather product, which is useful for stacking the finished leather products layer by layer. Continuous and discontinuous processes are well known in the art and will not be repeated here.
[0014] Please refer to FIG. 1, which is a flow chart illustrating a method 100 for manufacturing a leather product according to one embodiment of the present disclosure. The method 100 for manufacturing a leather product includes steps 110 to 140. In step 110, a leather precursor comprising a polymer material is provided. In step 120, an ejection member, a leather precursor, and a pressing member are stacked in order to form a stacked set, with at least one of the ejection member and the pressing member being formed with a plurality of ventilation holes. In step 130, the stacked set is heated and vacuum treated to allow the polymer material to form a flexible leather, so that the leather precursor forms a leather product. In step 140, the leather product is separated from the ejection member and the pressing member.
[0015] Please refer further to FIG. 2, which is a schematic diagram illustrating the steps of the method 100 for manufacturing a leather product in FIG. 1. For clarity of illustration, the viewing angles of each step may be different. The viewing angles of each step may refer to spatial directions defined by an XYZ Cartesian coordinate system. First, a leather precursor 200 is provided. Here, the leather precursor 200 includes only a polymer material. In other words, the leather precursor 200 is a polymer material. The polymer material is a plurality of polymer particles 221. According to one embodiment, the particle size of each of the polymer particles 221 may be greater than 0 μm and less than or equal to 500 μm. According to some embodiments, the thickness of the finished flexible leather can be adjusted by the particle size of the polymer particles 221. According to another embodiment, the particle size of each of the polymer particles 221 may be greater than 0 μm and less than or equal to 300 μm. In this embodiment, the polymer material includes only a single type of polymer particles 221. That is, the polymer particles 221 have the same color and material and similar particle sizes. However, the present disclosure is not limited thereto. In other embodiments, the polymer material may include at least two types of polymer particles, details of which can be found in the relevant description of FIG. 7. Here, the polymer material is granular, which is illustrative. In other embodiments, the polymer material may be formed in other shapes. For example, if the particle size of the polymer material is smaller, the polymer material may be in the form of a powder. As another example, the polymer material may be in the form of a sheet, which may be flakes having a smaller size or a sheet material having a larger size (see polymer sheets 221b-224b shown in FIG. 8). The polymer material may be made of a thermoplastic resin, a thermosetting resin, or a synthetic rubber. For example, the polymer material may be made of thermoplastic polyurethane (TPU). As such, the leather product 600 may be characterized as having excellent abrasion resistance and plasticity.
[0016] Next, the release member 300, the leather precursor 200, and the pressing member 400 are stacked in order from bottom to top to form a stacked set 500. The release member 300 and the pressing member 400 may independently be flexible or rigid pieces. For example, the flexible piece may be a flexible, bendable sheet, and the rigid piece may be a rigid, inflexible plate. In this embodiment, the release member 300 is formed with multiple ventilation holes V, such as the ventilation holes V shown in FIG. 3. For example, the surface of the release member 300 facing the leather precursor 200 is recessed to form multiple grooves 310, and multiple ventilation holes V are formed at the ends 311 of the grooves 310. In some embodiments, the multiple grooves 310 may exhibit a specific pattern or texture. The pressing member 400 may include an airtight material. For example, the pressing member 400 can be made entirely of an airtight material to form an airtight layer. Alternatively, the pressing member 400 may include an airtight layer disposed adjacent to the leather precursor 200 or disposed away from the leather precursor 200, such as the airtight layer 420a shown in FIG. 4, the airtight layer 420b shown in FIG. 5, and the airtight layer 420b' shown in FIG. 6.
[0017] The stacked set 500 is then placed in an apparatus 700. The apparatus 700 includes a heat press module 710 and a vacuum module 720. The heat press module 710 includes a plurality of heating units 711. The heat press module 710 is used to heat the stacked set 500. The vacuum module 720 includes a plurality of gas flow paths 721. The vacuum module 720 is used to evacuate or evacuate gas from the stacked set 500. To illustrate the direction of gas flow, the apparatus 700 is shown in cross section to show the heating units 711 and the gas flow paths 721 disposed therein; the stacked set 500 is shown in end view to show the side surface 430 of the pressing member 400 and the side surface 330 of the emission member 300. Additionally, the area of the upper surface 722 of the vacuum module 720 is greater than the area of the lower surface 320 of the emission member 300, so that at least one of the gas flow paths 721 is not covered by the emission member 300. Therefore, it is advantageous that the stacked set 500 can be vacuum-treated because the gas within the stacked set 500 flows through the side surface 330 of the release member 300 to the gas flow passage 721 that is not covered by the release member 300. Vacuum-treating the stacked set 500 allows the pressing member 400 to apply pressure to the leather precursors 200, which is advantageous in lowering the melting point of the leather precursors 200 so as to lower the process temperature. Next, the stacked set 500 is heated and vacuum-treated to allow the polymer material to form flexible leather so that the leather precursors 200 form the leather product 600. According to one embodiment of the present disclosure, the heating and vacuum-treating of the stacked set 500 can be performed under the following conditions: the heating temperature is within the range of 80°C to 250°C, the heating time is 180 seconds or less, and the pressure applied by the pressing member 400 to the leather precursors 200 is greater than 0 bar and less than 5 bar. According to another embodiment of the present disclosure, the heating and vacuum treatment of the stacked set 500 can be carried out under the following conditions: the heating temperature is in the range of 140°C to 200°C, the heating time is in the range of 90 seconds to 180 seconds, and the pressure applied to the leather precursor 200 by the pressing member 400 is in the range of 1 bar to 2 bar.In this embodiment, since the leather precursor 200 contains only polymer materials, the flexible leather formed by the polymer materials is the leather product 600. Finally, the leather product 600 is separated from the release member 300 and the pressing member 400 to complete the manufacture of the leather product 600.
[0018] Please refer to Figures 2 and 3. Figure 3 is an enlarged view of part a in Figure 2, where the X axis is perpendicular to the paper surface, the extension direction D1 of the groove 310 is parallel to the X axis, and the extension direction D2 of the gas flow path 721 of the vacuum module 720 is parallel to the Z axis. When the stacked set 500 is heated and vacuum-treated by the device 700, gas, such as air, within the stacked set 500 first flows along the extension direction D1 of the groove 310 and leaves the groove 310 through the vent V. Next, the gas flows down the side surface 330 of the release member 300, such as along the directions of arrows A11 and A12, and finally flows into the gas flow path 721 and is evacuated along the direction of arrow A2. Evacuating the gas within the stacked set 500 can prevent the gas from being trapped in the molten polymer material and forming bubbles, thereby preventing unevenness in the surface of the finished flexible leather. Although the surface of the flexible leather is uneven, it is not desirable for the flexible leather to adhere to other products, which makes it difficult to reach subsequent processes. Furthermore, flexible leather with bubbles tends to break, resulting in insufficient tensile strength and reduced yield. According to the method of the present disclosure, the leather precursor can be a solid material. That is, there is no need to form a liquid or paste mixture by using an organic solvent or dispersant, which can effectively reduce intermediate products (such as toxic gases) and is beneficial to environmental protection. Furthermore, by utilizing the method of the present disclosure, the process of leather products can be simplified, and the costs of raw materials and environmental safety can be significantly reduced.
[0019] In other embodiments, the pressing member 400 may be integrated with a heating unit 711 (not shown). As such, the pressing member 400 can replace the heat press module 710 to directly heat the stacked set 500. In this case, the apparatus 700 does not require the heat press module 710.
[0020] In other embodiments, the position of the release member 300 may be exchanged with the position of the pressing member 400. For example, the pressing member 400 in Fig. 2 can be arranged as a pressing member 400c as shown in Fig. 10. In this case, the surface of the pressing member 400 facing towards the leather precursor 200 is formed with a plurality of grooves (similar to the release member 300 in Fig. 2). That is, the pressing member 400 is formed with a plurality of ventilation holes V instead of the release member 300.
[0021] In other embodiments, the pressing member 400 may be configured to have the same structure as the release member 300. For example, the pressing member 400 may be configured to have a structure similar to the pressing member 400c in Fig. 10, and the release member 300 may be configured to have a structure similar to the release member 300 in Fig. 2. In this case, the surfaces of the pressing member 400 and the release member 300 facing the leather precursor 200 are both formed with a plurality of grooves. That is, both the pressing member 400 and the release member 300 are formed with a plurality of ventilation holes V. As a result, the efficiency of evacuating the gas inside the stacked set 500 can be further improved.
[0022] See FIG. 4, which is a schematic cross-sectional view of a pressing member 400a and stacked sets 500a and 500b according to another embodiment of the present disclosure. The pressing member 400a includes a breathable layer 410a and an airtight layer 420a. Specifically, the breathable layer 410a may be a heat-resistant fabric, which may be, but is not limited to, a synthetic fabric, a woven fabric, a knitted fabric, a nonwoven fabric, or the like. The "heat-resistant fabric" mentioned above refers to a fabric that does not react with the leather precursor / leather product or melt at the temperature of step 130 (see FIG. 1), and therefore does not contaminate the leather precursor / leather product. In this embodiment, the heat-resistant fabric includes weft yarns 411a and warp yarns 412a, and the heat-resistant fabric has breathability due to the gaps (not labeled) between the weft yarns 411a and the warp yarns 412a. The breathable layer 410a and the airtight layer 420a are connected to each other. For example, the airtight layer 420a may be made of adhesive, or may be an adhesive film that is adhered to the breathable layer 410a by coating or impregnation. The adhesive film is flexible and can reflect the undulations of the surface of the breathable layer 410a, so that the airtight layer 420a has an uneven surface 421a, and the interconnected concave spaces on the surface 421a can serve as channels for gas flow. In other words, the surface 421a of the airtight layer 420a is indented by the undulations of the breathable layer 410a to form multiple grooves, and multiple ventilation holes V are formed at the ends of the multiple grooves. In this embodiment, to form a stacked set 500a, the breathable layer 410a may be placed adjacent to the leather precursor 200, and the airtight layer 420a may be placed away from the leather precursor 200. In this case, as shown in the lower left portion of Fig. 4, the breathable layer 410a is formed with a plurality of ventilation holes V due to gaps located at the edge of the heat-resistant fiber fabric. Alternatively, to form a stacked set 500b, the airtight layer 420a may be placed adjacent to the leather precursor 200, and the breathable layer 410a may be placed away from the leather precursor 200. In this case, the airtight layer 420a is formed with a plurality of ventilation holes V due to concave spaces located at the edge of the surface 421a. Therefore, the ventilation holes V are similarly located at the ends of a plurality of grooves, as shown in the lower right portion of Fig. 4.
[0023] See FIG. 5, which is a schematic cross-sectional view of a pressing member 400b and a stacked set 500c according to yet another embodiment of the present disclosure. The pressing member 400b includes a breathable layer 410b and an airtight layer 420b. The breathable layer 410b may be a heat-resistant fiber fabric. In this embodiment, the heat-resistant fiber fabric includes weft threads 411b and warp threads 412b. In this embodiment, the airtight layer 420b may be made of silicone. The pressing member 400b differs from the pressing member 400a in that the breathable layer 410b and the airtight layer 420b are two independent components. That is, the breathable layer 410b and the airtight layer 420b are detachable and may not be fixed to each other via adhesive or other means. In this embodiment, to form the stacked set 500c, the breathable layer 410b may be positioned adjacent to the leather precursor 200, and the airtight layer 420b may be positioned away from the leather precursor 200. In this case, only the breathable layer 410b is formed with a plurality of ventilation holes V. Please refer to FIG. 6, which is a schematic cross-sectional view of a pressing member 400b' and a stacked set 500d according to yet another embodiment of the present disclosure. The difference between FIG. 5 and FIG. 6 is that the surface 421b' of the airtight layer 420b' facing away from the breathable layer 410b is recessed to form a plurality of grooves 422b', and a plurality of ventilation holes V are formed at the ends of the plurality of grooves 422b'. In this embodiment, to form the stacked set 500d, the airtight layer 420b' may be disposed adjacent to the leather precursor 200, and the surface 421b' may be formed with a plurality of grooves 422b' facing toward the leather precursor 200, and the breathable layer 410b may be disposed away from the leather precursor 200. In some embodiments, the airtight layer 420b' may be made of plastic, which is convenient for forming grooves 422b' on the surface 421b' of the airtight layer 420b'. In other embodiments, the airtight layer may be composed of several materials. For example, the airtight layer may be a composite structure formed by two of the following materials: plastic, silicone, rubber, adhesive, etc.
[0024] 4, 5, and 6, the surface 340a of the release member 300a facing towards the leather precursor 200 is completely flat. That is, only the pressing members 400a, 400b, 400b' are formed with a plurality of ventilation holes V. However, in other embodiments, the release member 300a can be replaced with the release member 300 (see FIG. 2) so that the pressing members 400a, 400b, 400b' and the release member 300 are simultaneously formed with a plurality of ventilation holes V. Alternatively, the surface 340a of the release member 300a can be formed with a special texture or a designed pattern, so that the special texture or designed pattern can be imprinted on the leather product, allowing the leather product to exhibit a desired visual effect.
[0025] See FIG. 7, which is a schematic cross-sectional view of a leather precursor 200a and a leather product 600a according to another embodiment of the present disclosure. The leather precursor 200a includes a polymer material 220a and a substrate 210a. In this embodiment, the substrate 210a may be placed adjacent to a release member (not shown), and the polymer material 220a may be placed adjacent to a pressing member (not shown) to form a stacked set. After step 130 (see FIG. 1), the leather precursor 200a can be formed into a leather product 600a. In this case, the leather product 600a is a composite structure including a flexible leather 610a and the substrate 210a. Comparing the leather product 600 (see FIG. 2) to the leather product 600a, the leather product 600 still requires an additional step to bond the leather product 600 to another substrate for subsequent use. In contrast, the leather product 600a already has the required substrate 210a, which is convenient for subsequent applications. Specifically, the polymer material 220a may include multiple polymer particles. The polymer particles may include at least one type of polymer particles. Here, the polymer particles include two types of polymer particles: a plurality of first polymer particles 221a and a plurality of second polymer particles 222a. Because the polymer material 220a includes at least two types of polymer particles, each type of polymer particle preferably has similar characteristics. For example, the at least two types of polymer particles may all be thermoplastic polymer particles or all thermosetting polymer particles. On the other hand, the at least two types of polymer particles may have different colors, different materials, and / or different particle sizes. In a delicate configuration, the leather product 600a can exhibit surprising visual effects. In the example shown in FIG. 7, the first polymer particles 221a and the second polymer particles 222a have different colors, similar material characteristics, and similar particle sizes. After step 130 (see FIG. 1), the first polymer particles 221a and the second polymer particles 222a are both melted and then physically connected, so that the color of the left portion of the leather product 600a shown in FIG. 7 is different from the color of the right portion of the leather product 600a.As another example, the color and material of the first polymer particles 221a are different from those of the second polymer particles 222a, but the particle size of the first polymer particles 221a is similar to those of the second polymer particles 222a. In this case, the melting temperature of the first polymer particles 221a is illustratively higher than that of the second polymer particles 222a, and the first polymer particles 221a are scattered on the second polymer particles 222a, which are configured to be transparent or translucent. After step 130 (see FIG. 1), the second polymer particles 222a, which have a lower melting temperature, are completely melted and envelop the first polymer particles 221a. As such, a different visual effect from that of the leather product 600a can be provided. As yet another example, the color and particle size of the first polymer particles 221a are different from those of the second polymer particles 222a, but the material of the first polymer particles 221a is the same as that of the second polymer particles 222a. In this case, the particle size of the first polymer particles 221a is illustratively larger than that of the second polymer particles 222a, and the first polymer particles 221a are scattered on the second polymer particles 222a. After step 130 (see FIG. 1), the heating temperature and duration of step 130 are adjusted to achieve that only the outer portion of each of the first polymer particles 221a is melted, but the inner portion is not melted, and each of the second polymer particles 222a is completely melted. Because the melting ratio (e.g., 50%) of each of the first polymer particles 221a is different from the melting ratio (e.g., 100%) of each of the second polymer particles 222a, the leather product can provide yet another visual effect different from that of the leather product 600a.
[0026] See FIG. 8, which shows a schematic top view of a leather precursor 200b and a cross-sectional view of a leather product 600b according to yet another embodiment of the present disclosure. The leather precursor 200b includes a polymer material 220b and a substrate 210b. After step 130 (see FIG. 1), the leather precursor 200b forms a leather product 600b. In this case, the leather product 600b is a composite structure including a flexible leather 610b and a substrate 210b. In this embodiment, the polymer material 220b is a plurality of polymer sheets 221b-224b. Here, the polymer sheets 221b-224b are rectangular sheets, which is illustrative. Some edge portions of the plurality of polymer sheets 221b-224b overlap each other, forming an overlapping region M. After step 130, the polymer sheets 221b-224b can be combined with each other via the overlapping region M to form a unitary flexible leather 610b. In this embodiment, depending on the needs of the finished product, the substrate 210b may be positioned adjacent to the release member (not shown) and the polymer material 220b may be positioned adjacent to the pressing member (not shown), or the polymer material 220b may be positioned adjacent to the release member and the substrate 210b may be positioned adjacent to the pressing member. In some embodiments, each of the polymer sheets 221b-224b may be a flexible leather, which may be made of thermoplastic resin, thermosetting resin, or synthetic rubber. According to one embodiment of the present disclosure, the polymer sheets 221b-224b may be flexible leather manufactured by the steps shown in FIG. 2. That is, when the leather precursor contains only polymer material, the leather product is flexible leather. As a result, multiple flexible leathers with smaller areas are combined to form a flexible leather 610b with a larger area.
[0027] 7 and 8, substrates 210a and 210b may independently be flexible or rigid pieces. For example, a flexible piece may be a flexible, bendable sheet, film, or fabric, and a rigid piece may be a rigid, inflexible plate or shell.
[0028] See Figure 9, which is a flow chart illustrating a method 800 for manufacturing a leather product according to another embodiment of the present disclosure. The method 800 for manufacturing a leather product includes steps 810 to 840. In step 810, a leather precursor is provided, including a polymer material and a substrate. In step 820, the leather precursor and a press member are stacked in order to form a stacked set, and the press member is formed with a plurality of ventilation holes. In step 830, the stacked set is heated and vacuum treated to allow the polymer material to combine with the substrate so that the leather precursor forms a leather product. In step 840, the leather product is separated from the press member.
[0029] Please refer to FIG. 10, which is a schematic diagram showing the steps of the method 800 for manufacturing a leather product in FIG. 9. For clear illustration, the viewing angle of each step may be different. The viewing angle of each step may refer to a spatial direction defined by an XYZ Cartesian coordinate system. First, a leather precursor 200c is provided. The leather precursor 200c includes a polymer material 220c and a substrate 210c. Here, the polymer material 220c includes only a single type of polymer particles 221c, which is illustrative. For related details of the polymer material 220c and the polymer particles 221c, please refer to the related description of the polymer material and the polymer particles 221 shown in FIG. 2. Furthermore, the leather precursor 200c can be replaced with a leather precursor similar to the leather precursor 200a shown in FIG. 7 or the leather precursor 200b shown in FIG. 8 according to actual needs.
[0030] Next, the leather precursors 200c and the pressing members 400c are stacked in order from bottom to top to form a stacked set 500e. The pressing member 400c may be a soft or hard piece. The pressing member 400c is formed with a plurality of ventilation holes V. For example, the pressing member 400c may include an airtight layer (without a label). The airtight layer is disposed adjacent to the leather precursor 200c. The surface of the airtight layer facing the leather precursor 200c is recessed to form a plurality of grooves 440c, and a plurality of ventilation holes V are formed at the ends 441c of the plurality of grooves 440c. In some embodiments, the plurality of grooves 440c may exhibit a specific pattern or texture. In this embodiment, the pressing member 400c includes only the airtight layer. In other words, the pressing member 400c is formed by the airtight layer. In addition, according to actual needs, the pressing member 400c can be replaced with a pressing member similar to the pressing member 400a shown in FIG. 4, the pressing member 400b shown in FIG. 5, or the pressing member 400b' shown in FIG. 5.
[0031] The stacked set 500e is then placed in the apparatus 700. Next, the stacked set 500e is heated and vacuum treated to allow the polymer material 220c to form flexible leather 610c, so that the leather precursor 200c forms the leather product 600c. Finally, the leather product 600c is separated from the pressing member 400c to complete the production of the leather product 600c.
[0032] 1, the method 800 for manufacturing a leather product does not require an ejection member, which is beneficial for reducing the process steps and manufacturing costs of the leather product. In addition, since the leather product 600c manufactured by the method 800 already has the substrate 210c, the leather product 600c can be directly applied to subsequent processes, which is favorable for the convenience of various applications.
[0033] Compared with the prior art, the pressing member and / or release member of the present disclosure formed with multiple vent holes and vacuum treating the stacked set can prevent gas from being trapped by the polymer material during the melting or bonding process, thus avoiding the formation of bubbles or pits left from the bubbles protruding from the leather product, thus beneficially improving the quality and production yield of the leather product.
[0034] Those skilled in the art will readily observe that numerous modifications and variations of the apparatus and method may be made while retaining the teachings of the present invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Claims
1. 1. A method for producing a leather product comprising flexible leather, comprising: providing a leather precursor comprising a polymeric material, said leather precursor being a solid material, said polymeric material being a plurality of polymer particles, each of said polymer particles having a particle size greater than 0 μm and less than or equal to 500 μm, said plurality of polymer particles comprising a plurality of first polymer particles and a plurality of second polymer particles, wherein the melting temperature of the first polymer particles is higher than the melting temperature of the second polymer particles; a step of stacking an emission member, the leather precursor, and a pressing member in order to form a stacked set, wherein at least one of the emission member and the pressing member is formed with a plurality of vent holes for exhausting gas from the stacked set; a step of heating and vacuum treating the stacked set through an apparatus to allow the polymer material to form the flexible leather, so that the leather precursor forms the leather product, evacuating gas between the leather precursor and the release member and / or gas between the leather precursor and the pressing member, and further melting the plurality of second polymer particles to encase the plurality of first polymer particles, the apparatus including a heat press module and a vacuum module, the vacuum module including a plurality of gas flow paths for evacuating gas from the stacked set; Separating the leather product from the ejection member and the pressing member; A method for producing a leather product, comprising:
2. 2. The method for manufacturing a leather product according to claim 1, wherein the pressing member is formed with the plurality of ventilation holes.
3. The pressing member is an air-permeable layer disposed adjacent to the leather precursor and having the plurality of air holes; an airtight layer disposed away from the leather precursor; 10. A method for producing the leather product of claim 1, comprising:
4. The pressing member is 2. The method for manufacturing a leather product according to claim 1, further comprising: an airtight layer disposed adjacent to the leather precursor, the surface of the airtight layer facing the leather precursor being recessed to form a plurality of grooves, the plurality of air holes being formed at the ends of the grooves.
5. The method for manufacturing a leather product according to claim 1, wherein the release member is formed with the plurality of ventilation holes.
6. 2. The method for manufacturing a leather product according to claim 1, wherein the surface of the release member facing the leather precursor is recessed to form a plurality of grooves, and the plurality of ventilation holes are formed at the ends of the grooves.
7. 2. The method for manufacturing a leather product according to claim 1, wherein the step of heating and vacuum treating the stacked set so that a pressure of greater than 0 bar and not more than 5 bar is applied to the leather precursor by the pressing member is carried out at a temperature of 80°C to 250°C while vacuum treating the stacked set.
8. 4. The method for manufacturing a leather product according to claim 3, wherein the breathable layer is made of a heat-resistant fiber fabric.
9. 5. The method for manufacturing a leather product according to claim 4, wherein the airtight layer is made of plastic, silicone, rubber, adhesive, or a combination thereof.
10. 10. The method for manufacturing a leather product according to claim 1, wherein the leather precursor further comprises a substrate, and the leather product is a composite structure comprising the flexible leather and the substrate.
11. 11. The method for manufacturing a leather product according to claim 10, wherein in the stacked set, the polymer material is disposed adjacent to the release member and the substrate is disposed adjacent to the pressing member.
12. 1. A method for producing a leather product, comprising: providing a leather precursor comprising a polymer material and a substrate, wherein the leather precursor is a solid material, the polymer material being a plurality of polymer particles, each of the polymer particles having a particle size greater than 0 μm and less than or equal to 500 μm, the plurality of polymer particles comprising a plurality of first polymer particles and a plurality of second polymer particles, wherein the melting temperature of the first polymer particles is higher than the melting temperature of the second polymer particles; Stacking the leather precursors and the press member in order to form a stacked set, the press member being formed with a plurality of vent holes for venting gas from the stacked set; heating and vacuum treating the stacked set through an apparatus to allow the polymer material to combine with the substrate, and evacuating gas between the leather precursor and the pressing member, so that the leather precursor forms the leather product; and melting the second polymer particles to encase the first polymer particles, the apparatus including a heat press module and a vacuum module, the vacuum module including a plurality of gas flow paths for evacuating gas from the stacked set; Separating the leather product from the pressing member; A method for producing a leather product, comprising:
13. The pressing member is an air-permeable layer disposed adjacent to the leather precursor and having the plurality of air holes; an airtight layer disposed away from the leather precursor; 13. A method for producing the leather product of claim 12, comprising:
14. The pressing member is 13. The method for manufacturing a leather product according to claim 12, comprising an airtight layer disposed adjacent to the leather precursor, the surface of the airtight layer facing the leather precursor being recessed to form a plurality of grooves, the plurality of air holes being formed at the ends of the grooves.
15. 13. The method for manufacturing a leather product according to claim 12, wherein the step of heating and vacuum treating the stacked set so that the leather precursor forms the leather product is to enable the plurality of polymer particles to form a flexible leather and combine with the substrate.
16. 13. The method for manufacturing a leather product according to claim 12, wherein the step of heating and vacuum treating the stacked set so that a pressure of greater than 0 bar and not more than 5 bar is applied to the leather precursor by the pressing member is carried out at a temperature of 80°C to 250°C while vacuum treating the stacked set.
Citation Information
Patent Citations
Polyolefin elastomer compositions for artificial leather applications
CN102933651B
Laminated shaped material
JP1990234986A
Plastic foamed composite
JP2000000908A
A method for bonding an artificial skin film to a non-perfectly smooth surface of a hard object and the resulting product.
TWI357854B
Seat foam tool lid groove venting
US20150183137A1