Three-dimensional digital garment design garment platform

Through the three-dimensional digital clothing design garment platform, scanning and projection technology is used to solve the problem that traditional clothing design is difficult to accurately present three-dimensional effects, and rapid trial and accurate adjustment are achieved, reducing the waste and modification of sample clothing.

CN119999981AInactive Publication Date: 2025-05-16JIANGXI INST OF FASHION TECH
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Patent Information

Application Number
CN202510102596.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2025-05-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional clothing design methods are difficult to accurately present the three-dimensional effect of clothing on the human body, which often leads to inconsistent with expectations when making sample clothes, which requires multiple modifications and adjustments, and wastes time and materials.

Method used

A three-dimensional digital clothing design garment platform is provided, including a support platform, a rotating disc, a first projection component, a second projection component and a scanning component. The human body features are collected through the scanning component, and the projection component is used to project the clothing style to the human body to realize intuitive display and precise adjustment of the three-dimensional effect.

Benefits of technology

It enables quick trial and observation of clothing design without making substantial sample clothes. The generated clothing images are more in line with the characteristics of the human body's contour, reducing the waste and modification of sample clothes.

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Abstract

The invention relates to the technical field of costume design, and discloses a three-dimensional digital garment design garment platform which is characterized in that supporting columns extending in the height direction are arranged at the four corners of a supporting platform, and a cross beam is arranged at the tops of the supporting columns. The rotating disc is rotatably arranged in the center of the upper surface of the supporting platform through a driving device and used for supporting a human body. The supporting platform is provided with a sliding rail surrounding the rotating disc, and the scanning part is arranged on the sliding rail through a moving structure. The first projection part is movably arranged on the cross beam in the height direction, and the projection direction of the first projection part right faces the rotating disc in the height direction. The four second projection parts are movably arranged on the corresponding supporting columns in the height direction. The first projection component and the second projection component can enable a user to quickly try on clothes and more conveniently observe in all directions, and under the cooperation of the scanning component, the generated clothes image can better conform to the human body contour features of the user, the manufacturing of substantial clothes is not needed, and the waste of raw materials is avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of clothing design, and in particular to a three-dimensional digital clothing design platform. Background Art

[0002] In the field of clothing design, designers first need to use measuring devices to measure the body's measurements and height, and then analyze customer needs, preferences and fashion trends, draw by hand and use two-dimensional design software to conceive, and make samples for customers to try on, in order to showcase their creativity.

[0003] However, traditional clothing design cannot accurately present the three-dimensional effect of clothing on the human body through manual drawing and two-dimensional design. Designers often need to make their ideas into samples for customers to try on or rely on experience and imagination to infer the actual wearing form of clothing. This leads to the situation that the actual sample production does not meet expectations, which requires multiple modifications and adjustments, consuming a lot of time and materials. Secondly, for the acquisition of human body data, the traditional manual measurement method is not only inefficient, but also prone to errors. Especially when facing a variety of human body shapes, it is difficult to achieve comprehensive and accurate measurements, which affects the fit and comfort of clothing. This leads to customers' inaccurate understanding of the design, affecting their purchasing decisions. Summary of the invention

[0004] In view of this, the present invention provides a three-dimensional digital clothing design platform to solve the problem that the traditional clothing design method produces customized clothes that do not meet customer expectations, and there are errors in the style and size of the clothes, resulting in many modifications and adjustments, and a waste of time and raw materials.

[0005] The present invention provides a three-dimensional digital clothing design platform, comprising:

[0006] A support platform, wherein four corners of the support platform are provided with support columns extending in the height direction, and the tops of the support columns are provided with cross beams;

[0007] A rotating disk is rotatably disposed at the center of the upper surface of the supporting platform through a driving device, wherein the rotating disk is used to support a human body;

[0008] A scanning component, wherein the support platform is provided with a slide rail surrounding the rotating disk, and the scanning component is arranged on the slide rail through a moving structure, and the scanning component is used to collect human body features on the rotating disk;

[0009] A first projection component is movably arranged on the beam in the height direction, and the projection direction is directly opposite to the rotating disk in the height direction;

[0010] The second projection components, four of which are respectively arranged on corresponding support columns so as to be movable along the height direction.

[0011] Optionally, the support column is provided with a groove extending in a height direction, and the second projection component is arranged on the groove via a lifting structure.

[0012] Optionally, the lifting structure includes:

[0013] A slider is movably disposed in the groove, and the second projection component is mounted on the slider;

[0014] A threaded rod is rotatably disposed in the groove, the slider has a threaded hole, and the threaded rod is threadably matched with the slider;

[0015] The first driving member is arranged on the supporting column and is drivingly connected to the threaded rod.

[0016] Optionally, the second projection component includes a socket, a projector body engaged with the socket, and a radiator arranged on one side of the projector body, a lens cover is provided on the other side of the projector body, and a light absorbing plate is provided on the top of the lens cover; the light absorbing plate is larger than the working size of the lens cover.

[0017] Optionally, a connecting plate is connected between the plurality of beams, and the first projection component is arranged on the connecting plate through an electric lifting rod.

[0018] Optionally, the scanning component includes: a first telescopic rod, a rotating table arranged at the telescopic end of the first telescopic rod, a connecting member arranged on the top of the rotating table, and a scanning device; the bottom of the first telescopic rod is slidably connected to the slide rail through a moving device, and a plurality of universal wheels are provided at the bottom of the moving device; one side of the connecting member is connected to the second telescopic rod through a rotating arm, and the second telescopic rod is rotatably connected to the scanning device through a damping rotating head.

[0019] Optionally, the scanning device comprises: a clamping plate and a scanning lens arranged in the middle of the clamping plate; and fill light plates are arranged on both sides of the clamping plate.

[0020] Optionally, a control device is further included, which is arranged on an external workbench and is electrically connected to the scanning component, the first projection component and the second projection component.

[0021] Beneficial effects:

[0022] The three-dimensional digital clothing design garment platform provided by the present invention comprises: a supporting platform, a rotating disk, a first projection component, a second projection component and a scanning component.

[0023] The four corners of the support platform are provided with support columns extending in the height direction, and a crossbeam is provided on the top of the support column. The support platform has a certain bearing capacity, and the top ends of the two support columns on the same side can be connected by the crossbeam, thereby forming a support surface for carrying the user, and a carrier for carrying the first projection component, the second projection component and the scanning component.

[0024] The rotating disk is rotatably arranged at the center of the upper surface of the supporting platform through a driving device, wherein the rotating disk is used to support a human body. The supporting platform is provided with a slide rail surrounding the rotating disk, and a scanning component is arranged on the slide rail through a movable structure, and the scanning component is used to collect human body features on the rotating disk. The first projection component is movably arranged on the crossbeam in the height direction, and the projection direction is directly opposite to the rotating disk in the height direction. The four second projection components are respectively movably arranged on the corresponding support columns in the height direction.

[0025] When working, the user can stand on the rotating disk, and the scanning device can rotate 360 ​​degrees around the user through the mobile structure to collect the user's body feature information. Before this, the user can first preset the clothing style, so that the clothing can be adjusted according to the collected body feature information. The clothing effect is then projected onto the user's body through the first projection component. The second projection components located at the four corners can be used to compensate for the missing effects caused by occlusion, thereby presenting the complete clothing image on the user, allowing the user to see the clothing design details more intuitively, and also facilitating the designers to flexibly adjust the clothing style and size. The final clothing design data can be used to make ready-made clothes.

[0026] The first projection component and the second projection component can enable users to quickly try on clothes, which is more convenient for all-round observation. With the cooperation of the scanning component, the generated clothing image can better conform to the user's body contour characteristics, without the need to make actual samples, thus avoiding waste of raw materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] In order to more clearly illustrate the specific implementation methods of the present invention or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0028] Figure 1 A schematic diagram of the structure of a three-dimensional digital clothing design platform according to an embodiment of the present invention;

[0029] Figure 2 for Figure 1 A partial structural diagram of a three-dimensional digital clothing design garment platform shown;

[0030] Figure 3 is a schematic structural diagram of a scanning component according to an embodiment of the present invention;

[0031] Figure 4 for Figure 3 A partial enlarged view of the middle A;

[0032] Figure 5 is a schematic structural diagram of a second projection component according to an embodiment of the present invention;

[0033] Figure 6 This is a reference diagram of the usage status of the three-dimensional digital clothing design garment platform according to an embodiment of the present invention.

[0034] Description of reference numerals:

[0035] 1. Support platform; 2. Rotating disk; 3. Scanning component; 301. First telescopic rod; 302. Rotating table; 303. Connecting piece; 304. Rotating arm; 305. Second telescopic rod; 306. Damping rotating head; 307. Scanning device; 308. Snap-in plate; 309. Scanning lens; 310. Fill-in light plate; 4. First projection component; 5. Second projection component; 501. Socket; 502. Radiator; 503. Projector body; 504. Lens cover; 505. Light-absorbing plate; 6. Support column; 7. Crossbeam; 8. Connecting plate; 9. Slide rail; 10. First driving piece; 11. Electric lifting rod; 12. Sliding block; 13. Threaded rod; 14. Moving device; 15. Connecting shaft; 16. Universal joint; 17. Groove. DETAILED DESCRIPTION

[0036] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of the present invention.

[0037] like Figure 1 As shown, this embodiment provides a three-dimensional digital clothing design garment platform, including: a supporting platform 1, a rotating disk 2, a first projection component 4, a second projection component 5 and a scanning component 3.

[0038] The four corners of the support platform 1 are provided with support columns 6 extending in the height direction, and the top of the support column 6 is provided with a crossbeam 7, so that a frame is built on the support platform 1 to facilitate the installation of the first projection component 4 and the second projection component 5. The support columns 6 are arranged at the four corners of the support platform 1 to leave projection space, and the upper surface of the support platform 1 can be a rectangular plate structure.

[0039] The rotating disk 2 is rotatably arranged at the center of the upper surface of the supporting platform 1 through a driving device, and the driving device can drive the rotating disk 2 to rotate around its own central axis, wherein the rotating disk 2 is used to support the human body so that the human body can rotate synchronously, and the driving device can be arranged inside the supporting platform 1 and be connected to the rotating disk 2 in transmission.

[0040] The support platform 1 is provided with a slide rail 9 surrounding the rotating disk 2. The scanning component 3 is set on the slide rail 9 through a movable structure. The scanning component 3 is used to collect human body features on the rotating disk 2, thereby realizing a 360-degree scan of the human body features. For example, the height, chest circumference, waist circumference, hip circumference and other body feature parameters of the human body are scanned and collected to facilitate subsequent calculations by the computing device. The collection accuracy of the scanning component 3 can be at the millimeter level.

[0041] The first projection component 4 is movably arranged on the crossbeam 7 in the height direction, and the projection direction is directly opposite to the rotating disk 2 in the height direction. The four second projection components 5 are movably arranged on the corresponding support columns 6 in the height direction. The projection light of the first projection component 4 is from the head to the feet of the human body, and the blocked light part is compensated by the four second projection components 5, so that the user can fully observe the style of the sample clothing. Combined with the human body characteristic parameters collected by the above-mentioned scanning component 3, the projected sample clothing is more suitable.

[0042] When working, Figure 6 As shown, the user can stand on the rotating disk 2, and the scanning device 307 rotates 360 degrees around the user through the mobile structure to collect the user's human body feature information. Before this, the user can first preset the clothing style, so that the clothing can be adjusted according to the collected human body feature information, and then the clothing effect is projected onto the user's body through the first projection component 4. The second projection components 5 located at the four corners can be used to compensate for the missing effects caused by occlusion, so as to present the complete clothing image on the user, so that the user can see the clothing design details more intuitively, and it is also convenient for designers to flexibly adjust the clothing style and size. The final clothing design data can be used to make ready-made clothes.

[0043] The first projection component 4 and the second projection component 5 can enable the user to quickly try on clothes, which is more convenient for all-round observation. In addition, with the cooperation of the scanning component 3, the generated clothing image can better conform to the user's body contour characteristics, without the need to make actual samples, thus avoiding waste of raw materials.

[0044] In this embodiment, the three-dimensional digital clothing design clothing platform includes a control device, which is arranged on an external workbench and is electrically connected to the scanning component 3, the first projection component 4 and the second projection component 5. The control device includes a clothing design module, a virtual fitting module and a sample generation module. The clothing design module has a three-dimensional clothing design software, which is accurately matched according to the user's three-dimensional shape and size data transmitted by the scanning component 3. The virtual fitting module can truly display dynamic effects on the virtual human body, including fabric texture. The sample generation module is used to transmit the sample clothes confirmed by the customer to the first projection component 4 and the second projection component 5, and project them to the human body through them. During the projection process, the human body and the projected sample clothes can be recorded from multiple angles through an external scanning and recording device. When the projection is finished, the human body can watch the overall effect and details at the external control device. During the recording process, small movements of the human body will not interfere with the projection effect.

[0045] like Figure 1 and Figure 2 As shown, in this embodiment, the support column 6 is provided with a groove 17 extending in the height direction, and the second projection component 5 is arranged on the groove 17 through a lifting structure, thereby facilitating the second projection component 5 to adjust its own height, thereby projecting the human body more accurately.

[0046] like Figure 1 , Figure 2 and Figure 5 As shown, in this embodiment, the lifting structure includes: a sliding block 12 , a threaded rod 13 and a first driving member 10 .

[0047] The slider 12 is movably disposed in the groove 17 , and the second projection component 5 is mounted on the slider 12 . The slider 12 is guided and matched with the groove 17 , so that the second projection component 5 moves more smoothly in the height direction.

[0048] The threaded rod 13 is rotatably arranged in the groove 17, and the slider 12 has a threaded hole. The threaded rod 13 is threadedly matched with the slider 12. For example, two bearings are relatively arranged in the height direction of the groove 17, and the top and bottom of the threaded rod 13 are rotatably matched with the two bearings respectively. Since the slider 12 cannot rotate in the horizontal direction due to the limitation of the groove 17, when the threaded rod 13 rotates, the external thread and the threaded hole cooperate to drive the slider 12 to move in the height direction under the guidance of the groove 17, thereby driving the second projection component 5 to move in the height direction.

[0049] The first driving member 10 is arranged on the support column 6 and is connected to the threaded rod 13. The first driving member 10 can be a driving motor, which can be arranged at the top or bottom of the support column 6 and is connected to the threaded rod 13. For example, the threaded rod 13 is directly coaxially arranged with the output shaft of the driving motor, or a conventional transmission structure such as a gear set transmission or a connecting rod transmission is used to transmit power, so as to drive the threaded rod 13 to rotate.

[0050] like Figure 2 and Figure 5 As shown, in this embodiment, the second projection component 5 includes a receiving seat 501, a projector body 503 engaged with the receiving seat 501, and a heat sink 502 arranged on one side of the projector body 503. A lens cover 504 is arranged on the other side of the projector body 503, and a light absorbing plate 505 is arranged on the top of the lens cover 504. The light absorbing plate 505 is larger than the working size of the lens cover 504.

[0051] The receiving seat 501 is connected to the slider 12 through the universal joint 16 and the connecting shaft 15. The universal joint 16 can realize free rotation at multiple angles, can meet the projection requirements of different positions, and has the characteristics of being detachable and highly flexible. When the projector body 503 is damaged, it is convenient to replace. The projector body 503 is a side-mounted projection device, which can project specific details, decorative elements and color difference changes from different side angles, and compensate for the area that the first projection component 4 cannot cover. The lens cover 504 and the light absorption plate 505 are both for the projector body 503 to reduce stray light interference, prevent light from unexpected directions from entering the lens, reduce the impact of stray light on the projected image, and improve projection efficiency and clarity. The light absorption plate 505 helps to optimize the light distribution in the projection area, reduce the scattering and diffuse reflection of light, and make the projection effect more uniform and stable. When the projection light of the first projection component 4 and the second projection component 5 intersect, the control device adjusts according to the photosensitivity priority of different parts of the virtual human body, so that the details and colors of the clothing are more prominent.

[0052] like Figure 1 As shown, in this embodiment, a connecting plate 8 is connected between the plurality of beams 7, and the first projection component 4 is disposed on the connecting plate 8 via an electric lifting rod 11, so that the projection direction of the first projection component 4 is directly opposite to the rotating disk 2 in the height direction.

[0053] like Figure 1 and Figure 3As shown, in this embodiment, the scanning component 3 includes: a first telescopic rod 301, a rotating platform 302 arranged at the telescopic end of the first telescopic rod 301, a connecting member 303 arranged on the top of the rotating platform 302, and a scanning device 307. The bottom of the first telescopic rod 301 is slidably connected to the slide rail 9 through the moving device 14, and a plurality of universal wheels are provided at the bottom of the moving device 14. One side of the connecting member 303 is connected to the second telescopic rod 305 through a rotating arm 304, and the second telescopic rod 305 is rotatably connected to the scanning device 307 through a damping rotating head 306. The damping rotating head 306 helps to maintain the stability of the scanning lens 309, ensuring that there is no shaking caused by the movement of the moving device 14 during the scanning process, thereby improving the scanning accuracy.

[0054] During operation, when the customer stands on the electric rotating disk 2, the control device starts the moving device 14, and the moving device 14 drives the three-dimensional scanning component 3 to perform a surround scan of the human body. At this time, the first telescopic rod 301 is adjusted according to the height of different customers, and the rotating table 302, the rotating arm 304, the second telescopic rod 305 and the damping rotating head 306 drive the scanning device 307 to perform a comprehensive scan of the human body, and transmit the obtained data to the control device. The designer designs the clothing through the control device and provides it for the customer to choose, and then projects it, so as to determine the purchase style and put it into production.

[0055] like Figure 3 and Figure 4 As shown, in this embodiment, the scanning device 307 includes: a clamping plate 308 and a scanning lens 309 arranged in the middle of the clamping plate 308, and fill light plates 310 are arranged on both sides of the clamping plate 308. The scanning lens 309 is a telecentric lens, which can obtain the characteristics of low distortion, high resolution and constant magnification within a short distance, so as to obtain a more accurate scanning result.

[0056] Although the embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art may make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations are all within the scope defined by the appended claims.

Claims

1. A three-dimensional digital clothing design platform, characterized in that: include: A support platform (1), wherein four corners of the support platform (1) are provided with support columns (6) extending in a height direction, and a crossbeam (7) is provided on the top of the support column (6); a rotating disk (2) rotatably arranged at the center of the upper surface of the supporting platform (1) through a driving device, wherein the rotating disk (2) is used to support a human body; A scanning component (3), wherein the support platform (1) is provided with a slide rail (9) surrounding the rotating disk (2), the scanning component (3) is arranged on the slide rail (9) via a movable structure, and the scanning component (3) is used to collect human body features on the rotating disk (2); A first projection component (4) is movably arranged on the crossbeam (7) in the height direction, and the projection direction faces the rotating disk (2) in the height direction; The second projection components (5) are four second projection components (5) which are respectively arranged on corresponding support columns (6) so as to be movable along the height direction.

2. The three-dimensional digital clothing design platform according to claim 1, characterized in that: The support column (6) is provided with a groove (17) extending in the height direction, and the second projection component (5) is arranged on the groove (17) via a lifting structure.

3. The three-dimensional digital clothing design platform according to claim 2 is characterized in that: The lifting structure comprises: A slider (12) is movably arranged in the groove (17), and the second projection component (5) is mounted on the slider (12); A threaded rod (13) is rotatably disposed in the groove (17); the slider (12) has a threaded hole; the threaded rod (13) is threadably matched with the slider (12); The first driving member (10) is arranged on the supporting column (6) and is drivingly connected to the threaded rod (13).

4. The three-dimensional digital clothing design platform according to claim 1, characterized in that: The second projection component (5) comprises a receiving seat (501), a projector body (503) engaged with the receiving seat (501), and a heat sink (502) arranged on one side of the projector body (503); a lens cover (504) is arranged on the other side of the projector body (503); a light absorbing plate (505) is arranged on the top of the lens cover (504); and the light absorbing plate (505) is larger than the working size of the lens cover (504).

5. The three-dimensional digital clothing design platform according to claim 1, characterized in that: A connecting plate (8) is connected between the plurality of cross beams (7), and the first projection component (4) is arranged on the connecting plate (8) via an electric lifting rod (11).

6. The three-dimensional digital clothing design platform according to claim 1, characterized in that: The scanning component (3) comprises: a first telescopic rod (301), a rotating platform (302) arranged at the telescopic end of the first telescopic rod (301), a connecting piece (303) arranged at the top of the rotating platform (302), and a scanning device (307); the bottom of the first telescopic rod (301) is slidably connected to the slide rail (9) through a moving device (14), and a plurality of universal wheels are provided at the bottom of the moving device (14); one side of the connecting piece (303) is connected to the second telescopic rod (305) through a rotating arm (304), and the second telescopic rod (305) is rotationally connected to the scanning device (307) through a damping rotating head (306).

7. The three-dimensional digital clothing design platform according to claim 6, characterized in that: The scanning device (307) comprises: a clamping plate (308) and a scanning lens (309) arranged in the middle of the clamping plate (308); and fill light plates (310) are arranged on both sides of the clamping plate (308).

8. The three-dimensional digital clothing design platform according to claim 1, characterized in that: It also includes a control device, which is arranged on an external workbench and is electrically connected to the scanning component (3), the first projection component (4) and the second projection component (5).

Citation Information

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