Three-dimensional garment structure and production process therefor
The three-dimensional garment structure addresses the limitations of existing designs by employing a polygonal or fan-shaped design with folded sides and a filling layer, enhancing the stereoscopic effect and providing thermal insulation while offering diverse aesthetic possibilities.
Patent Information
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- SHEN BING
- Filing Date
- 2023-08-21
- Publication Date
- 2026-05-20
AI Technical Summary
Existing three-dimensional garments lack a realistic and varied stereoscopic effect due to single shapes and inadequate methods of attachment.
A three-dimensional garment structure featuring a polygonal or fan-shaped design with folded or bent sides, incorporating a filling layer of 95% white goose down, and a production process that involves sewing and folding three-dimensional structures onto a fabric layer to create a more pronounced three-dimensional effect.
The structure achieves a more realistic and aesthetically pleasing three-dimensional effect with enhanced stereoscopic appearance and thermal insulation, allowing for varied and abundant design options.
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Figure IMGAF001_ABST
Abstract
Description
TECHNICAL FIELD
[0001] This disclosure relates to technical field of garments, and in particular, to a three-dimensional garment structure and a production process therefor.BACKGROUND
[0002] Existing three-dimensional garments, three-dimensional bags, and three-dimensional background images are mostly composed of a carrier and an ornament. The ornament is generally formed by a block protruding from the carrier, and the block is mostly integrally formed and attached or sewn to a garment to create a three-dimensional effect. However, some of the existing methods have the following defects: first, the three-dimensional effect is not realistic enough; second, the shape is single.
[0003] In view of this, the inventor has specially designed a three-dimensional garment structure and a production process therefor, and thus this disclosure is proposed.SUMMARYTECHNICAL SOLUTION
[0004] To solve the above problems, this disclosure provides a three-dimensional structure for a garment and a garment. A three-dimensional structure with a stronger stereoscopic effect is provided to achieve a more distinct three-dimensional effect, and the specific technical solution adopted is as follows: a three-dimensional garment structure, including a first fabric layer, and a three-dimensional structure sewn on the first fabric layer, where the three-dimensional structure has a polygonal shape; and two opposite sides or two adjacent sides of the three-dimensional structure are sewn on the first fabric layer, and at least one side of the two opposite sides or the two adjacent sides is sewn on the first fabric layer after being folded or bent downwards and inwards; and a perimeter of an outer circumference of an orthographic projection of the unsewn three-dimensional structure is greater than a perimeter of an outer circumference of an orthographic projection of the sewn three-dimensional structure.
[0005] Further, the three-dimensional structure is V-shaped or fan-shaped in outline.
[0006] Further, the three-dimensional structure is formed by dividing a dodecagonal splicing main body, the splicing main body is divided into three V-shaped three-dimensional structures by three first sewing lines, and the three first sewing lines are Y-shaped.
[0007] Further, the splicing main body is sewn on the first fabric layer along the first sewing line, and a V-shaped inner side of the three-dimensional structure is sewn on the first fabric layer after being bent inwards.
[0008] Further, the three-dimensional structure is formed by dividing a fan-shaped main body, the fan-shaped main body is divided into a plurality of fan-shaped three-dimensional structures by several second sewing lines, and the several second sewing lines extend outwards from a central point.
[0009] Further, the fan-shaped main body is sewn on the first fabric layer along the second sewing line to form a third sewing line.
[0010] Further, an angle between adjacent third sewing lines is less than an angle between adjacent second sewing lines.
[0011] Further, each of the three-dimensional structures comprises a second fabric layer, a third fabric layer, and a filling layer filled between the second fabric layer and the third fabric layer.
[0012] Further, the filling layer is made of 95% white goose down.BENEFICIAL EFFECTS
[0013] A second objective of this disclosure is to provide a production process for a three-dimensional garment structure, which is used for the three-dimensional garment structure. One side of the three-dimensional structure is firstly sewn on the first fabric layer, and one side opposite or adjacent to the side is also sewn on the first fabric layer after being folded or bent downwards and inwards by a certain distance.
[0014] The three-dimensional garment structure of this disclosure is provided with the three-dimensional structure, where two opposite sides or two adjacent sides of the three-dimensional structure are sewn on the first fabric layer, and at least one side of the two opposite sides or the two adjacent sides is sewn on the first fabric layer after being folded or bent downwards and inwards; and a perimeter of an outer circumference of an orthographic projection of the unsewn three-dimensional structure is greater than a perimeter of an outer circumference of an orthographic projection of the sewn three-dimensional structure. Therefore, the sewn three-dimensional structure is more stereoscopic. Meanwhile, the three-dimensional structure is polygonal and can be selected as required, making the three-dimensional structure of this disclosure more abundant and aesthetically pleasing.BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The accompanying drawings described herein are intended for further understanding of this disclosure and constitute a part of this disclosure. Schematic embodiments of this disclosure and descriptions thereof are intended to explain this disclosure, and do not constitute any inappropriate limitation on this disclosure.
[0016] In the accompanying drawings: FIG. 1 is a schematic structural diagram of Embodiment 1 of this disclosure; FIG. 2 is a schematic structural diagram 1 of a splicing main body of Embodiment 1 of this disclosure; FIG. 3 is a schematic structural diagram 2 of a splicing main body of Embodiment 1 of this disclosure; FIG. 4 is a sectional view of a three-dimensional structure of Embodiment 1 of this disclosure; FIG. 5 is a schematic structural diagram 1 of Embodiment 2 of this disclosure; FIG. 6 is a schematic structural diagram of a fan-shaped main body of Embodiment 2 of this disclosure; FIG. 7 is a schematic structural diagram 2 of Embodiment 2 of this disclosure; and FIG. 8 is a sectional view of a three-dimensional structure of Embodiment 2 of this disclosure. Reference numerals:
[0017] 10. first fabric layer; 20. three-dimensional structure; 30. splicing main body; 31. first sewing line; 32. outer edge; 33. inner edge; 40. fan-shaped main body; 41. second sewing line; 50. second fabric layer; 60. third fabric layer; 70. filling layer; 80. fan surface main body; 81. fan surface portion.DETAILED DESCRIPTION OF THE EMBODIMENTS
[0018] To make the technical problems to be solved, technical solutions, and beneficial effects in this disclosure clearer and more comprehensible, the following further describes this disclosure in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely used to explain this disclosure but not to limit this disclosure.Embodiment
[0019] Referring to FIG. 1 to FIG. 4, which illustrate a three-dimensional garment structure according to Embodiment 1 of this disclosure, including a first fabric layer 10, and a three-dimensional structure 20 sewn on the first fabric layer 10, where the three-dimensional structure 20 has a polygonal shape; and two opposite sides or two adjacent sides of the three-dimensional structure 20 are sewn on the first fabric layer 10, and at least one side of the two opposite sides or the two adjacent sides is sewn on the first fabric layer 10 after being folded or bent downwards and inwards; and a perimeter of an outer circumference of an orthographic projection of the unsewn three-dimensional structure 20 is greater than a perimeter of an outer circumference of an orthographic projection of the sewn three-dimensional structure.
[0020] The three-dimensional structure 20 is V-shaped in outline. Specifically, the three-dimensional structure 20 is formed by dividing a dodecagonal splicing main body 30, the splicing main body 30 is divided into three V-shaped three-dimensional structures 20 by three first sewing lines 31, and the three first sewing lines 31 are Y-shaped. In this embodiment, six sides of the splicing main body 30 serve as inner edges 33 of the three three-dimensional structures 20, and the remaining six sides serve as outer edges 32 of the three-dimensional structure 20. The length of the outer edge 32 is greater than that of the inner edge 33, so as to facilitate the splicing of several splicing main bodies 30.
[0021] The splicing main body 30 is sewn on the first fabric layer 10 along the first sewing line 31, and a V-shaped inner side of the three-dimensional structure 20 is sewn on the first fabric layer 10 after being bent inwards.
[0022] Each of the three-dimensional structures 20 includes a second fabric layer 50, a third fabric layer 60, and a filling layer 70 filled between the second fabric layer 50 and the third fabric layer 60. Since the three-dimensional structure 20 in this embodiment is formed by dividing the splicing main body 30, the shapes of the second fabric layer 50 and the third fabric layer 60 can be consistent with the outline of the splicing main body 30. The outer edges of the second fabric layer 50 and the third fabric layer 60 are sewn together first, with the filling layer 70 filled therebetween. The filling layer 70 is made of 95% white goose down, which not only endows the entire splicing block with a three-dimensional effect but also achieves a certain thermal insulation effect. Specifically, eleven of the twelve sides are sewn together first, then the first fabric layer 10 and the second fabric layer 50 are turned over; and after the filling of the filling layer 70 is completed, the remaining side is sewn. Upon the completion of sewing, the splicing main body 30 is divided into three three-dimensional structures 20 by the three first sewing lines 31. In addition, in this embodiment, a plurality of splicing main bodies 30 can be provided as required, and the splicing main bodies 30 can be spliced into different shapes as required. The second fabric layer 50 and the third fabric layer 60 in this embodiment are made of the same material and have the same color, and different colors can be selected as required. Every two adjacent splicing main bodies 30 can adopt different colors.
[0023] The sewing process of the three-dimensional structure 20 in this embodiment is as follows: the processed splicing main body 30 is sewn on the first fabric layer 10 along a position of the first sewing line 31, where the sewing position is an outer side of the V-shaped three-dimensional structure 20 (i.e., the adjacent position of two three-dimensional structures 20), and then the inner side is folded or bent and then sewn on the first fabric layer 10.Embodiment
[0024] Referring to FIG. 5 to FIG. 8, which illustrate a three-dimensional garment structure according to Embodiment 2 of this disclosure. The difference between this embodiment and Embodiment 1 lies in the different shapes of the three-dimensional structure 20. In Embodiment 2, the three-dimensional structure 20 is fan-shaped in outline.
[0025] The three-dimensional structure 20 is formed by dividing a fan-shaped main body 40. The fan-shaped main body 40 is divided into a plurality of fan-shaped three-dimensional structures 20 by several second sewing lines 41, and the several second sewing lines 41 extend outwards from a central point. In this embodiment, two fan-shaped main bodies 40 can be adopted to form several three-dimensional structures 20 by division, and the several three-dimensional structures 20 are circular as a whole. Specifically, in this embodiment, the fan-shaped main body 40 is formed by sewing a fan-shaped first fabric layer 10 and a fan-shaped second fabric layer 50 together and then filling a filling layer 70 therebetween. Since two fan-shaped main bodies 40 are used, the two first fabric layers 10 and the two second fabric layers 50 are first spliced together, then the outer sides of the first fabric layer 10 and the second fabric layer 50 are sewn together with a filling opening reserved; and after sewing, the filling layer 70 is turned over for filling, and then sealed. The entire three-dimensional structure 20 is then divided into several fan-shaped three-dimensional structures 20 by the second sewing line 41, which may be divided into 18 three-dimensional structures 20.
[0026] The fan-shaped main body 40 is sewn on the first fabric layer 10 along the second sewing line 41 to form a third sewing line; and an angle between adjacent third sewing lines is less than an angle between adjacent second sewing lines 41.
[0027] In this embodiment, the three-dimensional structure 20 further includes a fan surface portion 81 which is arranged on the first fabric layer 10 and located on an outer side of the three-dimensional structure 20, and the fan surface portion 81 is formed by dividing a fan surface main body 80. The structure of the fan surface main body 80 is similar to that of the fan-shaped main body 40, with only a difference in shape, and thus will not be described in detail herein. The cooperation of the fan-shaped three-dimensional structure 20 with the fan surface portion 81 renders the entire garment more aesthetically pleasing, and in addition, a plurality of fan surface portions 81 can be arranged in the same direction, which only need to extend outwards in sequence from the outer side of the three-dimensional structure 20. The color of the three-dimensional structure 20 is consistent with or different from that of the fan surface portion 81.
[0028] In conclusion, the three-dimensional garment structure of this disclosure is provided with the three-dimensional structure, where two opposite sides or two adjacent sides of the three-dimensional structure are sewn on the first fabric layer, and at least one side of the two opposite sides or the two adjacent sides is sewn on the first fabric layer after being folded or bent downwards and inwards; and a perimeter of an outer circumference of an orthographic projection of the unsewn three-dimensional structure is greater than a perimeter of an outer circumference of an orthographic projection of the sewn three-dimensional structure. Therefore, the sewn three-dimensional structure is more stereoscopic. Meanwhile, the three-dimensional structure is polygonal and can be selected as required, making the three-dimensional structure of this disclosure more abundant and aesthetically pleasing.
[0029] This disclosure is described above by way of example in conjunction with the accompanying drawings. Apparently, a specific implementation of this disclosure is not limited to the above manner. Various non-substantial improvements made by using the method concepts and technical solutions of this disclosure, or the concepts and technical solutions of this disclosure directly applied to other occasions without improvements all fall within the protection scope of this disclosure.
Claims
1. A three-dimensional garment structure, <b>characterized by comprising a first fabric layer (10), and a three-dimensional structure (20) sewn on the first fabric layer (10), wherein the three-dimensional structure (20) has a polygonal shape; and two opposite sides or two adjacent sides of the three-dimensional structure (20) are sewn on the first fabric layer (10), and at least one side of the two opposite sides or the two adjacent sides is sewn on the first fabric layer (10) after being folded or bent downwards and inwards; and a perimeter of an outer circumference of an orthographic projection of the unsewn three-dimensional structure (20) is greater than a perimeter of an outer circumference of an orthographic projection of the sewn three-dimensional structure.
2. The three-dimensional garment structure according to claim 1, characterized in that the three-dimensional structure (20) is V-shaped or fan-shaped in outline.
3. The three-dimensional garment structure according to claim 1, characterized in that the three-dimensional structure (20) is formed by dividing a dodecagonal splicing main body (30), the splicing main body (30) is divided into three V-shaped three-dimensional structures (20) by three first sewing lines (31), and the three first sewing lines (31) are Y-shaped.
4. The three-dimensional garment structure according to claim 3, characterized in that the splicing main body (30) is sewn on the first fabric layer (10) along the first sewing line (31), and a V-shaped inner side of the three-dimensional structure (20) is sewn on the first fabric layer (10) after being bent inwards.
5. The three-dimensional garment structure according to claim 1, characterized in that the three-dimensional structure (20) is formed by dividing a fan-shaped main body (40), the fan-shaped main body (40) is divided into a plurality of fan-shaped three-dimensional structures (20) by several second sewing lines (41), and the several second sewing lines (41) extend outwards from a central point.
6. The three-dimensional garment structure according to claim 1, characterized in that the fan-shaped main body (40) is sewn on the first fabric layer (10) along the second sewing line (41) to form a third sewing line.
7. The three-dimensional garment structure according to claim 1, characterized in that an angle between adjacent third sewing lines is less than an angle between adjacent second sewing lines (41).
8. The three-dimensional garment structure according to claim 1, characterized in that each of the three-dimensional structures (20) comprises a second fabric layer (50), a third fabric layer (60), and a filling layer (70) filled between the second fabric layer (50) and the third fabric layer (60).
9. The three-dimensional garment structure according to claim 8, characterized in that the filling layer (70) is made of 95% white goose down.
10. A production process for a three-dimensional garment structure, used for manufacturing the three-dimensional garment structure according to any one of claims 1 to 9, characterized in that one side of the three-dimensional structure (20) is firstly sewn on the first fabric layer (10), and one side opposite or adjacent to the side is also sewn on the first fabric layer (10) after being folded or bent downwards and inwards by a certain distance.