The present invention relates generally to a fabric structure, a stacking fabric structure, and a method for manufacturing a fabric structure. More particularly, the present invention relates to a fabric structure, a stacking fabric structure, and a method for manufacturing a fabric structure for a sole of a shoe.
As shown in
Foam polyethylene is an elastic material commonly used in the soles of shoes which provides good elasticity and lighter weight. The quality of foam polyethylene depends on the size, the number, and the degree of size uniformity of the foam pores. Soles made from foam polyethylene having poor quality may result in damage to feet of the users due to nonuniform compressive deformation.
It is an object of the present invention to provide a fabric structure having lighter weight, better elasticity, and more stable quality.
It is another object of the present invention to provide a stacking fabric structure having lighter weight, better elasticity, and more stable quality.
It is another object of the present invention to provide a method for manufacturing a fabric structure having lighter weight, better elasticity, and more stable quality.
The fabric structure of the present invention includes a bottom layer, a middle layer disposed on the bottom layer, and a top layer disposed on the middle layer. The middle layer includes a fabric layer and a plurality of structure bodies. The fabric layer is knitted from a plurality of yarns, wherein the outer surface of each yarn is at least partly covered by a first fusion part. The plurality of structure bodies are disposed on the fabric layer, wherein the projection of any of the plurality of structure bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer. Each of the plurality of the structure bodies includes a body and a second fusion part encapsulating the body. The first fusion part and the second fusion part fuse with each other to make the relative positions of the plurality of structure bodies and the plurality of yarns fixed. The melting points of the first fusion part and the second fusion part are respectively lower than or equal to the melting points of the bottom layer, the yarns, the bodies, and the top layer.
In one embodiment of the present invention, the first fusion part is made of thermoplastic polyurethane (TPU).
In one embodiment of the present invention, the first fusion part and the second fusion part are made of the same material.
In one embodiment of the present invention, the outer surface of each yarn is entirely covered by the first fusion part.
In one embodiment of the present invention, the first fusion part is yarn in shape and twines to partially cover the outer surface of each yarn.
In one embodiment of the present invention, the fabric structure includes a bottom layer, a middle layer disposed on the bottom layer, and a top layer disposed on the middle layer. The middle layer includes a fabric layer, a plurality of bodies, and a fusion unit. The fabric layer is knitted by a plurality of yarns. The plurality of bodies are disposed on the fabric layer, wherein the projection of any of the plurality of bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer. The fusion unit is disposed between the plurality of bodies and the fabric layer to make the relative positions of the plurality of bodies and the plurality of yarns fixed, wherein the fusion unit encapsulates the plurality of bodies and at least partially covers the plurality of yarns. The melting point of the fusion unit is respectively lower than or equal to the melting points of the bottom layer, the yarns, the bodies, and the top layer.
In one embodiment of the present invention, the body is manufactured by foaming.
In one embodiment of the present invention, the fusion unit is made of thermoplastic polyurethane (TPU).
In one embodiment of the present invention, the yarns and the bodies are made of thermoplastic polyester elastomer (TPEE).
In one embodiment of the present invention, the bottom layer and the top layer are made of thermoplastic polyester elastomer (TPEE).
In one embodiment of the present invention, the fabric structure is for shoe soles.
The stacking fabric structure of the present invention includes a bottom layer, a middle layer stack disposed on the bottom layer, and a top layer disposed on the middle layer. The middle layer stack includes a plurality of stacked middle layers. Each middle layer includes a fabric layer and a plurality of structure bodies. The fabric layer is knitted by a plurality of yarns. The outer surface of each yarn is at least partly covered by a first fusion part. The plurality of structure bodies are disposed on the fabric layer, wherein the projection of any of the plurality of structure bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer. Each of the plurality of the structure bodies includes a body and a second fusion part encapsulating the body. The first fusion part and the second fusion part fuse with each other to make the relative positions of the plurality of structure bodies and the plurality of yarns fixed. The melting points of the first fusion part and the second fusion part are respectively lower than or equal to the melting points of the bottom layer, the yarns, the bodies, and the top layer.
In one embodiment of the present invention, the stacking fabric structure includes a bottom layer, a middle layer stack disposed on the bottom layer, and a top layer disposed on the middle layer. The middle layer stack includes a plurality of stacked middle layers. Each middle layer includes a fabric layer, a plurality of bodies, and a fusion unit. The fabric layer is knitted by a plurality of yarns. The plurality of bodies are disposed on the fabric layer, wherein the projection of any of the plurality of bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer. The fusion unit is disposed between the plurality of bodies and the fabric layer to make the relative positions of the plurality of bodies and the plurality of yarns fixed, wherein the fusion unit encapsulates the plurality of bodies and at least partially covers the plurality of yarns. The melting point of the fusion unit is respectively lower than or equal to the melting points of the bottom layer, the yarns, the bodies, and the top layer.
In one embodiment of the present invention, the stacking fabric structure is for shoe soles.
The method for manufacturing a fabric structure of the present invention includes (A) providing a fabric layer knitted by a plurality of yarns, wherein the outer surface of each yarn is at least partly covered by a first fusion part, wherein the melting point of the first fusion part is lower than or equal to the melting point of the yarn; (B) disposing a plurality of structure bodies on the fabric layer, wherein the projection of any of the plurality of structure bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer, wherein each of the plurality of the structure bodies includes a body and a second fusion part encapsulating the body, wherein the melting point of the second fusion part is lower than or equal to the melting point of the body, wherein the first fusion part and the second fusion part are able to fuse with each other; (C) pressing downward to exert a force on the plurality of structure bodies and heating to a temperature higher than or equal to the melting points of the first fusion part and the second fusion part to make the first fusion part and the second fusion part fuse with each other; (D) cooling to make the relative positions of the plurality of structure bodies and the plurality of yarns fixed.
In one embodiment of the present invention, the method for manufacturing a fabric structure further includes providing a bottom layer before step (A) and disposing the fabric layer on the bottom layer, wherein the melting points of the first fusion part and the second fusion part are respectively lower than or equal to the melting point of the bottom layer; and providing a top layer between step (B) and step (C) and pressing downward to exert a force on the top layer, wherein the melting points of the first fusion part and the second fusion part are respectively lower than or equal to the melting point of the top layer.
Accordingly, the fabric structure and the stacking fabric structure of the present invention have lighter weight and more stable quality. The method can be used to manufacture the above fabric structure and stacking fabric structure. The problems in prior arts can be solved.
In the preferred embodiment, based on the elasticity and lighter weight, the fabric structure and the stacking fabric structure are for the sole, especially the midsole, of shoes. In different embodiments, however, the fabric structure and the stacking fabric structure of the present can be used in different ways, e.g. as a bumper pad of backpacks, inner shell of helmets, or armors.
As shown in the embodiment in
As shown in the embodiments in
As shown in the embodiment in
More particularly, the material of the first fusion part 410 and the material of the second fusion part 420 are able to fuse with each other in the melted state. In other words, there is no obvious boundary in the mixture of the first fusion part 410 and the second fusion part 420. The first fusion part 410 and the second fusion part 420 can be made of the same or of different materials. In one embodiment of the present invention, the first fusion part 410 and the second fusion part 420 are both made of thermoplastic polyurethane (TPU). Specifically, when the plurality of structure bodies 220 are pressed downward and heated to a temperature higher than or equal to the melting points of the first fusion part 410 and the second fusion part 420, the first fusion part 410 and the second fusion part 420 are in melted state and fuse with each other for the structure bodies 220 to be embedded into the grid cells 212 as shown in
Taking a different point of view, as shown in the embodiment in
In one embodiment of the present invention, the body is manufactured by foaming to decrease weight further more. The yarns 211 and the bodies 221 are made of thermoplastic polyester elastomer (TPEE). The bottom layer 100 and the top layer 300 are made of thermoplastic polyester elastomer (TPEE). More particularly, while manufacturing the fabric structure 900, the fabric layer 210 is disposed on the bottom layer 100, wherein the plurality of structure bodies 220 are distributed on the fabric layer 201, followed by covering such bodies with the top layer 300, pressing and heating to a temperature higher than or equal to the melting points of the first fusion part 410 and the second fusion part 420, and then cooling to solid. Afterward, it can be cut by demand and be hot pressed again to form desired thickness and shapes. For example, in one embodiment, several fabric structures are cut to a shape of a sole and are disposed between an upper clamp and a lower clamp to be hot pressed to form shoe soles as shown in the embodiment in
One of the considerations in choosing TPEE and TPU is the advantages of the two. Specifically, TPEE provides better deformation elasticity, while TPU provides better damping elasticity. Better performance is obtained by combining the advantages of the two. In other words, when selecting materials, in addition to the differences between their melting points, the type of elasticity provided could be further taken into consideration. In different embodiments, several middle layers 200 can be repeatedly disposed on the bottom layer 100. Namely, several fabric layers 210 are disposed on the bottom layer 100, wherein each fabric layer 210 has a plurality of structure bodies 220 on it, pressed and heated to a temperature higher than or equal to the melting points of the first fusion part 410 and the second fusion part 420, and then cooled to solid. Afterward, it can be cut by demand, covering the top face and the bottom face respectively with the top layer 300 and the bottom layer 100, and be hot pressed again to form desired thickness and shapes.
In different embodiments, stacking effect can also be produced if a single layer of fabric structure 900 uses yarns 211 with larger average width and/or bodies 221 with larger second average diameter D221.
As shown in the flow chart of an embodiment in
Step 2000 provides a fabric layer knitted by a plurality of yarns, wherein the outer surface of each yarn is at least covered by a first fusion part, wherein the melting point of the first fusion part is lower than or equal to the melting point of the yarn. More particularly, as shown in
Step 4000 disposes a plurality of structure bodies on the fabric layer, wherein the projection of any of the plurality of structure bodies on the fabric layer at least partially eclipses any of the grid cells of the fabric layer, wherein each of the plurality of the structure bodies includes a body and a second fusion part encapsulating the body, wherein the melting point of the second fusion part is lower than or equal to the melting point of the body, wherein the first fusion part and the second fusion part are able to fuse with each other. More particularly, the plurality of structure bodies 220 are distributed on the fabric layer 201 as shown in
Step 6000 exerts a downward force on the plurality of structure bodies and heats such bodies to a temperature higher than or equal to the melting points of the first fusion part and the second fusion part to make the first fusion part and the second fusion part fuse with each other. More particularly, when the plurality of structure bodies 220 are pressed downward and heated to a temperature higher than or equal to the melting points of the first fusion part 410 and the second fusion part 420, the first fusion part 410 and the second fusion part 420 are in melted state and fuse with each other for the structure bodies 220 to be embedded into the grid cells 212 as shown in
Step 8000 is the step where the plurality of structure bodies and the plurality of yarns are cooled to make their relative positions fixed. More particularly, after cooling, the relative positions of the bodies 221 in the structure bodies 220 and the plurality of yarns 211 are fixed since the first fusion part 410 and the second fusion part 420 are not in the melted state.
As shown in the flow chart of an embodiment in
Step 1000 provides a bottom layer and disposes the fabric layer on the bottom layer in step 2000.
Step 5000 provides a top layer and exerts a downward force on the top layer which in turn exerts a force on the plurality of structure bodies in step 6000, wherein the melting points of the first fusion part and the second fusion part are respectively lower than or equal to the melting point of the top layer.
Although the preferred embodiments of the present invention have been described herein, the above description is merely illustrative. Further modification of the invention herein disclosed will occur to those skilled in the respective arts and all such modifications are deemed to be within the scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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201710061335.8 | Jan 2017 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/073977 | 1/24/2018 | WO | 00 |