Three-dimensional weaving auxiliary tool
Through the easy-tear mold, it provides stable support and weaving guidance, and solves the problem that existing braiding auxiliary tools are difficult to operate, and achieves an efficient and stable three-dimensional braiding process.
Patent Information
- Application Number
- CN202422450974.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-11
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-10-11
AI Technical Summary
Existing braiding auxiliary tools have poor promptness and are difficult to operate, and are difficult to adapt to the weaving needs of different materials and forms, resulting in low weaving efficiency and poor consistency of the finished product.
The easy-to-tear mold is adopted, including the bottom mold and the side mold. The side mold is surrounded by a cylinder, and is equipped with indicator marks, warp material fixing holes, weft material fixing holes and braided material covering pattern marks to provide stable support and braiding guidance.
It improves weaving efficiency and consistency of the finished product, reduces material damage, adapts to different weaving materials and forms, and reduces operation difficulty.
Smart Images

Figure CN223163576U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of knitting tools, in particular to a three-dimensional knitting auxiliary tool. Background Art
[0002] As an ancient handicraft technology, knitting technology is widely used in daily life. Different knitting materials, including bamboo strips, rattan, grass, paper, ropes, plastics, etc., can be used to make various three-dimensional containers and decorations. However, in the actual knitting process, the shape and structure of three-dimensional knitting products need to rely on skilled manual techniques and knitting experience to achieve, which is difficult for novice knitters or users who hope to produce quickly and on a large scale. Due to the diversity of knitting materials, different materials require different forces and techniques during knitting, which increases the knitting difficulty and failure rate. In order to improve knitting efficiency and ensure the stability of the knitting structure and the consistency of the shape, there are already some auxiliary tools on the market to help knitters fix the position of the knitting materials and ensure the shape stability during knitting. However, these existing tools often lack flexibility and have limited applicability, and it is difficult to meet the knitting needs of different materials or different shapes.
[0003] In the prior art, three-dimensional knitting technology usually relies on manual experience and manual operation. Craftsmen need long-term training and skilled skills to accurately control the shape and knitting structure of three-dimensional knitting products. During the knitting process, it is easy to deform or break due to the hardness of different materials, resulting in low knitting efficiency and poor consistency of the finished products. The prior art only has some simple tools such as rulers, clips and bamboo strips for auxiliary knitting, but it cannot improve the speed and efficiency well, nor can it solve the problem of beginners independently completing knitting work. Therefore, an auxiliary device is needed to better help beginners with three-dimensional knitting.
[0004] In addition, the rigid molds and frames in the prior art often can only provide a single shape support and cannot flexibly adjust the final shape of the knitted fabric. This is extremely inconvenient for knitters with complex or personalized knitting needs. There are a wide variety of knitting materials, and the prior art does not make corresponding adjustments according to the physical characteristics of different materials. For example, plastic and paper materials require different support forces during knitting, and it is difficult for rigid frames to be compatible with these changes, resulting in easy damage or knitting failure of the materials during knitting. Traditional knitting auxiliary tools are bulky and difficult to adjust. Knitters need to spend more energy installing and using the tools rather than focusing on the knitting itself, which reduces the overall knitting efficiency.
[0005] Therefore, the knitting auxiliary tools in the prior art have the technical problems of poor promptness and difficult operation. Summary of the Utility Model
[0006] A three-dimensional knitting aid provided by the present utility model solves the technical problems of poor prompting and difficult operation of knitting auxiliary tools in the prior art.
[0007] Some implementation schemes for solving the above technical problems include:
[0008] A three-dimensional knitting aid includes a tearable mold. The tearable mold includes a bottom mold and side molds. The side molds form a cylindrical shape, and the cylindrical shape formed by the side molds surrounds the bottom mold. Among them, the side molds are provided with indication marks indicating the orientation of the side molds;
[0009] The tearable mold includes an auxiliary knitting area and an explanation area located outside the auxiliary knitting area;
[0010] The auxiliary knitting area is provided with warp material fixing holes, weft material fixing holes, and knitting material covering pattern marks indicating the picking and pressing relationship of knitting materials;
[0011] The auxiliary knitting area is also provided with a tearable part.
[0012] Preferably, the explanation area is arranged on the bottom mold.
[0013] Preferably, the cylindrical shape formed by the side molds is a cylindrical shape.
[0014] Preferably, the cross-sectional shape of the cylindrical shape formed by the side molds is a polygon.
[0015] Preferably, the indication mark is an indication arrow.
[0016] Preferably, the indication mark is adhered to the side mold, or the indication mark is printed on the side mold.
[0017] Preferably, the knitting material covering pattern mark is printed on the tearable mold.
[0018] Preferably, the tearable part is a through hole arranged linearly.
[0019] Preferably, the shape of the through hole is a long strip.
[0020] Preferably, the tearable mold is a paper mold.
[0021] Compared with the prior art, the present utility model has the following advantages:
[0022] By setting warp material fixing holes, weft material fixing holes, and knitting material covering pattern marks indicating the picking and pressing relationship of knitting materials, the knitter can complete the knitting operation quickly and accurately, greatly reducing the time for manual positioning and repeated adjustment in the traditional knitting process.
[0023] The tearable mold keeps the weaving material stable during the weaving process, reducing the damage of the weaving material caused by improper stretching or dislocation, thereby reducing the weaving loss. The tearable mold can also well adapt to the weaving of different weaving materials.
[0024] By setting the warp material fixing holes, weft material fixing holes and the weaving material covering pattern logo indicating the picking and pressing relationship of the weaving material, the standardized design enables all users to weave products with consistent shapes, ensuring the unity of the product quality and appearance.
[0025] The tearable mold can be made of environmentally friendly paper, with low production cost, suitable for wide promotion and application, and can be flexibly adjusted and replaced according to different product designs.
[0026] The tearable mold can be customized according to different weaving requirements. By using the origami technique, the shape of the paper mold can be changed, and the size, etc. can also be realized to weave weaving products with multiple shapes and different volumes. For example, it can be used for more complex three-dimensional structures such as vases and lamp shades, thereby expanding the application range of the weaving material process. Brief Description of the Drawings
[0027] For the purpose of explanation, several embodiments of the technical solution of the present utility model are illustrated in the following drawings. The following drawings are incorporated into the present text and constitute a part of the specific embodiments. In some cases, well-known structures and components are shown in block diagram form to avoid obscuring the concepts of the technical subject matter of the present utility model.
[0028] Figure 1 It is a schematic diagram of the bottom mold. [[ID=-19]]
[0029] Figure 2 It is a schematic diagram of the side mold.
[0030] As shown in the figure:
[0031] 1. Warp material fixing hole, 2. Weft material fixing hole, 3. Weaving material covering pattern logo, 4. Tearable part. Detailed Description of the Embodiments
[0032] The following specific embodiments shown are intended to be descriptions of various configurations of the technical subject matter of the present utility model, and are not intended to represent the only configurations in which the technical subject matter of the present utility model can be practiced. The specific embodiments include specific details intended to provide a thorough understanding of the technical subject matter of the present utility model. However, it will be clear and obvious to those skilled in the art that the technical subject matter of the present utility model is not limited to the specific details shown herein, and can be practiced without these specific details.
[0033] It will be understood that, in this text, relational terms such as "first" and "second" are intended to distinguish one entity or operation from another entity or operation, and are not intended to imply any actual relationship or order between these entities or operations.
[0034] The term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or apparatus comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or apparatus. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or apparatus comprising the element.
[0035] Referring to Figures 1 to 2 As shown, a three-dimensional weaving auxiliary tool includes a tearable mold, the tearable mold includes a bottom mold and side molds, the side molds enclose a cylindrical shape, and the cylindrical shape enclosed by the side molds surrounds the bottom mold, wherein, the side molds are provided with indication marks indicating the orientation of the side molds;
[0036] The tearable mold includes an auxiliary weaving area and an instruction area located outside the auxiliary weaving area;
[0037] In the auxiliary weaving area, there are provided warp material fixing holes 1, weft material fixing holes 2 and a weaving material covering pattern mark 3 indicating the over-under relationship of the weaving materials;
[0038] The auxiliary weaving area is further provided with a tearable part 4.
[0039] In some embodiments, the instruction area is provided on the bottom mold.
[0040] Since the side molds enclose a cylindrical shape, therefore, it is not suitable to provide the instruction area on the side molds to make the three-dimensional weaving auxiliary tool easier to operate. Prevent the instruction area from interfering with the weaving.
[0041] In some embodiments, the cylindrical shape enclosed by the side molds is a cylindrical shape.
[0042] Or, the cross-sectional shape of the cylindrical shape enclosed by the side molds is a polygon.
[0043] In some embodiments, the indication mark is an indication arrow.
[0044] The indication mark is adhered to the side mold, or, the indication mark is printed on the side mold.
[0045] In some embodiments, the weaving material covering pattern mark 3 is printed on the tearable mold.
[0046] In some embodiments, the tearable part 4 is a through-hole arranged linearly.
[0047] The shape of the through-hole is elongated.
[0048] In some embodiments, the tearable mold is a paper mold.
[0049] Referring to Figures 1 to 2 As shown, specifically, this solution uses a perforated paper mold, which mainly includes warp material fixing holes 1, weft material fixing holes 2, a woven material covering pattern logo 3 indicating the pick-and-place relationship of the woven material, and a tearable part 4.
[0050] The tearable mold includes a bottom mold and a side mold. The bottom mold usually includes an auxiliary weaving area and an instruction area located outside the auxiliary weaving area, while the side mold can only be provided with an auxiliary weaving area for the convenience of weaving.
[0051] It can be understood that this solution is a paper mold for a three-dimensional weaving product auxiliary tool based on origami technology, which is used to assist in three-dimensional weaving using various materials such as bamboo, rattan, grass, paper, rope, plastic, etc.
[0052] This paper mold provides stable morphological support during the weaving process through origami technology, ensuring structural stability and morphological consistency during the weaving process. In particular, it is a paper mold (i.e., the woven material covering pattern logo 3) that uses preset hole positions (i.e., warp material fixing holes 1 and weft material fixing holes 2) and a hint pattern to help the weaver complete the three-dimensional weaving product.
[0053] The paper mold guides the weaver to complete the weaving process of the vertical and bottom surfaces of the three-dimensional weaving product through the preset hole positions and hint patterns. In this way, the weaving sequence of traditional three-dimensional weaving can be broken, and the finished product can be woven according to different methods of the user. This solution can greatly improve the weaving efficiency and the consistency of the finished product.
[0054] The paper mold uses a paper material with a moderate thickness to provide sufficient support force to help the weaver fix the position of the woven material and guide its weaving operation. The paper mold has a certain flexibility. It can not only maintain the overall frame shape but also be adjusted according to the weaving requirements to adapt to different sizes and shapes of designs.
[0055] Referring to Figures 1 to 2 As shown, the paper mold is pre-designed through origami technology, and the paper mold is provided with preset perforations (warp material fixing holes 1 and weft material fixing holes 2) and hint patterns (woven material covering pattern logo 3).
[0056] The side mold is a flat cardboard when unfolded, with multiple perforations (warp material fixing holes 1 and weft material fixing holes 2) evenly distributed on it. The positions and spacings of the perforations are designed according to the characteristics of different weaving materials to adapt to the flexible shuttling and weaving requirements of various materials.
[0057] The side mold forms a three-dimensional frame structure after folding. Weavers can adjust it according to the required final form, which functions to guide and fix the weaving materials.
[0058] The side mold is a planar structure when not folded, which is convenient for transportation and storage. During use, the side mold forms a three-dimensional support structure through folding, which can provide the form support required by the weaving materials. Origami technology not only improves the flexibility of the paper mold but also ensures the form accuracy and stability of the final woven product. In addition, through origami technology, the shape, size, etc. of the paper mold can be changed, and products with various shapes and different volumes can also be woven.
[0059] The sizes, shapes, and arrangements of the perforations (warp material fixing holes 1 and weft material fixing holes 2) of the paper mold are calculated. The calculation process of the perforation positions is as follows: the distance between the hole positions is determined by the maximum width of the weaving materials that are woven horizontally on the vertical surface. The distance between two hole positions is based on the maximum width that can pass the weaving materials, and diverse personalized adjustments such as one wide and one narrow, several wide and several narrow can also be made to achieve personalized and diverse shapes on the vertical surface.
[0060] The size of the hole positions is determined according to the maximum width of the weaving materials on the bottom surface to ensure that the hole positions can smoothly pass the weaving materials and have good fixing tightness for the weaving materials, so as to ensure that the weaving materials can pass through the hole positions smoothly and maintain a consistent tightness during the weaving process.
[0061] The shapes of the perforations (warp material fixing holes 1 and weft material fixing holes 2) of the paper mold can also be set personalized, such as ellipse, rectangle, square, etc. However, the smoothness of the weaving materials when passing through the perforations should also be ensured. The arrangement is determined by the shape of the final woven product. Different shapes will have different paper mold shapes, such as different arrangement ways of annular three-dimensional paper molds, square three-dimensional paper molds, etc., which also greatly enriches the diversity of the auxiliary paper mold and the final woven product. The size and spacing of the hole positions can also be adjusted personalized according to the shapes and sizes of different three-dimensional woven products, so as to achieve diverse three-dimensional weaving.
[0062] The weaving material covering pattern logo 3 printed on the paper mold provides guidance on the weaving pick-and-press relationship. By weaving along the marks, it helps weavers clarify the weaving sequence and direction of each step, avoid incorrect pick-and-press relationships, and improve the weaving efficiency.
[0063] The specific weaving process can be as follows:
[0064] Step 1: First, use a conventional digital graphic design tool to design a paper mold suitable for the weaving form. Personalize the size, position of the perforations and the hint patterns on the paper mold according to the shape and size of the final woven product. After the design is completed, use a conventional printing technique to print the designed pattern on the paper and perform the perforation process. The paper mold can be customized according to different weaving requirements.
[0065] Step 2: On the completed paper mold, fold the flat paper mold into a three-dimensional frame shape according to the preset creases. Through folding, the paper mold can provide the necessary form support to ensure stability during the weaving process. The weaver can also change the weaving order according to their own ideas. They can choose to weave the bottom surface first or the vertical surface first, and can also customize the weaving steps according to the different specific shaping requirements of the woven product. Ensure that each weaving material is interwoven according to the specific instructions during the weaving.
[0066] Step 3: After completing the paper folding and forming, the weaver can start weaving according to the pick-and-press marks provided on the paper mold. The pick-and-press marks provide guidance on the weaving order, ensuring that the weaving materials pass through the reserved perforations in sequence according to the marks. After passing through all the perforations, a complete three-dimensional woven object is finally formed. The operation is simple and does not require complex manual skills. Even beginners can easily complete the weaving work with this tool.
[0067] Step 4: After completing the weaving, tear off the paper mold from the finished product along the easily tearable part 4. Finally, an independent three-dimensional woven product is formed.
[0068] The above has introduced the technical solution of the subject matter of the present utility model and the corresponding details. It can be understood that the above introduction is only some implementation schemes of the technical solution of the subject matter of the present utility model, and some details can also be omitted during its specific implementation.
[0069] In addition, in some implementation schemes of the above utility model, it is possible to combine multiple implementation schemes. Due to space limitations, various combination schemes are not listed one by one. Those skilled in the art can freely combine and implement the above implementation schemes according to their needs during specific implementation to obtain a better application experience.
[0070] When those skilled in the art implement the technical solution of the subject matter of the present utility model, they can obtain other detailed configurations or drawings according to the technical solution of the subject matter of the present utility model and the drawings. Obviously, without departing from the technical solution of the subject matter of the present utility model, these details still fall within the scope covered by the technical solution of the subject matter of the present utility model.
Claims
1. A three-dimensional weaving auxiliary tool, characterized in that: It includes a tearable mold. The tearable mold includes a bottom mold and side molds. The side molds form a cylindrical shape, and the cylindrical shape formed by the side molds surrounds the bottom mold. Among them, the side molds are provided with indication marks indicating the orientation of the side molds; The tearable mold includes an auxiliary weaving area and an explanation area located outside the auxiliary weaving area; The auxiliary weaving area is provided with warp material fixing holes (1), weft material fixing holes (2), and a woven material covering pattern logo (3) indicating the pick - and - press relationship of the woven materials; The auxiliary weaving area is also provided with a tearable part (4).
2. The three-dimensional weaving auxiliary tool according to claim 1, wherein: The explanation area is arranged on the bottom mold.
3. The three-dimensional weaving auxiliary tool according to claim 1, characterized in that: The cylindrical shape formed by the side molds is a cylindrical shape.
4. The three-dimensional weaving auxiliary tool according to claim 1, characterized in that: The cross - sectional shape of the cylindrical shape formed by the side molds is a polygon.
5. The three-dimensional knitting auxiliary tool according to claim 1, wherein: The indication mark is an indication arrow.
6. The three-dimensional weaving auxiliary tool according to claim 5, characterized in that: The indication mark is adhered to the side mold, or the indication mark is printed on the side mold.
7. The three-dimensional knitting auxiliary tool according to claim 1, wherein: The woven material covering pattern logo (3) is printed on the tearable mold.
8. The three-dimensional weaving auxiliary tool according to claim 1, characterized in that: The tearable part (4) is a through - hole arranged linearly.
9. The three-dimensional weaving auxiliary tool according to claim 8, wherein: The shape of the through - hole is a long strip.
10. The three-dimensional braiding auxiliary tool according to claim 1, characterized in that: The tearable mold is a paper mold.