hook body module
By designing hook units with the same orientation in the hook module and utilizing the shrinkage force of the fabric structure to achieve fixing and disassembly, the problems of noise and deformation of traditional hook structures are solved, improving structural stability and reliability, and making it suitable for multiple fixing and disassembly.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TAIWAN PAIHO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-08-04
AI Technical Summary
Traditional hook structures are prone to generating noise during disassembly and are easily deformed after repeated use, affecting structural stability and reliability, and cannot meet the needs of multiple fixing and separation.
Design a hook module in which one side of the hook structure is connected to one side of the fabric structure, the hook unit is disposed on the surface of the substrate, the hooks of the hook units face the same direction, and the hooks are fixed by the shrinkage force of the fabric structure. When disassembling, the hooks are released from the pores of the fabric structure to avoid deformation.
The structure stability and reliability of the hook module have been improved, noise during disassembly has been reduced, service life and fixing strength have been enhanced, and it is suitable for objects of different shapes and sizes.
Smart Images

Figure CN224584293U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a hook module, and more particularly to a hook module with structural stability and reliability. Background Technology
[0002] In daily life, traditional methods of fixing two objects include sewing or gluing. Separating sewn or glued objects can cause irreversible damage, such as removing the stitches left after sewing or removing the adhesive surfaces. Therefore, traditional fixing methods cannot meet the needs of repeated fixing and separation.
[0003] To enable the removal of fixed objects as needed with minimal damage, a new generation of fixing methods has been developed: hook structures. Hook structures of corresponding shapes are installed on each of the two objects to be fixed, and these hooks are pressed face-to-face to form a fixed state, which can be disassembled when separation is required. However, traditional hook structures, in order to increase the fixing effect, have multi-directional hooks, which can easily generate unpleasant noise during disassembly, and repeated disassembly can cause deformation of the hook structure, reducing its reliability. Reducing the noise and deformation problems of traditional hook structures requires changing the material or shape of the hook structure, which may affect the structural stability and fixing function.
[0004] In view of this, the development of a hook module that can easily fix objects and is easy to disassemble, while having structural stability, fixing function and reliability, and can reduce the noise generated during disassembly, has been a long-standing goal of the industry. Utility Model Content
[0005] One objective of this invention is to provide a hook module, wherein one side of the hook structure is connected to one side of the fabric structure, and the hook units in the hook structure are disposed on the surface of the substrate. By arranging the hook units of the hook structure in the same direction and cooperating with the fabric structure, a fixing effect is achieved. This improves the structural stability and reliability of the hook module and reduces noise generated during disassembly.
[0006] One aspect of this utility model is to provide a hook module, which includes a fabric structure and a hook structure. One side of the hook structure is connected to one side of the fabric structure to form a connection interface, and the hook structure includes a substrate and multiple hook units. Each hook unit is disposed on the surface of the substrate, and each hook unit includes a hook portion and a base. One end of the base is connected to the surface of the substrate, and the other end of the base is integrally connected to one end of the hook portion. The hook portions of each hook unit face the same extending direction.
[0007] Based on the hook module described above, the fabric structure can be an elastic fabric.
[0008] According to the hook module described above, when the surface of the fabric structure is connected to the surface of the substrate, the fabric structure and the hook unit can be in solid contact and have a contractile force in a direction away from the extension direction.
[0009] Based on the hook module described above, the extension direction can be away from the connection interface.
[0010] Based on the hook module described above, the height of each hook unit can be from 0.3mm to 3mm.
[0011] According to the hook module described above, the thickness of the substrate can be from 0.1mm to 1.5mm.
[0012] Based on the hook module described above, the spacing between two adjacent hook units can be from 0.1mm to 1.5mm.
[0013] Based on the hook module described above, each hook unit can be a polyamide hook unit, a polypropylene hook unit, a thermoplastic polyurethane hook unit, a thermoplastic polystyrene elastomer hook unit, or a thermoplastic polyester elastomer hook unit.
[0014] Based on the hook module described above, the fabric structure may include knitted fabric, woven fabric or non-woven fabric.
[0015] Based on the hook module described above, the fabric structure may include non-woven fabric, and the non-woven fabric may be polypropylene non-woven fabric. Attached Figure Description
[0016] To make the above and other objects, features, advantages and embodiments of this utility model more apparent and understandable, the accompanying drawings are described below:
[0017] Figure 1 This is a schematic diagram illustrating a hook module according to one embodiment of the present utility model;
[0018] Figure 2 It is a drawing according to Figure 1 A schematic diagram illustrating the use of the hook module in the implementation method.
[0019] Figure label:
[0020] 100: Hook Module
[0021] 110: Fabric Structure
[0022] 120: Hook structure
[0023] 121: Substrate
[0024] 122: Hook unit
[0025] 123: hook part
[0026] 124: Base
[0027] I: Connection Interface Detailed Implementation
[0028] The various embodiments of this utility model will be discussed in more detail below. However, these embodiments can be applications of various utility model concepts and can be specifically implemented in various different scopes. The specific embodiments are for illustrative purposes only and are not limited to the scope of disclosure.
[0029] Please refer to Figure 1 and Figure 2 , Figure 1 This is a schematic diagram illustrating a hook module 100 according to one embodiment of the present invention. Figure 2 It is a drawing according to Figure 1 A schematic diagram illustrating the use of the hook module 100 in this embodiment. Figure 1 and Figure 2 As can be seen, the hook module 100 includes a fabric structure 110 and a hook structure 120. One side of the hook structure 120 is connected to one side of the fabric structure 110 to form a connection interface I, and the hook structure 120 includes a substrate 121 and a plurality of hook units 122. The hook units 122 are disposed on the surface of the substrate 121, wherein each hook unit 122 includes a hook portion 123 and a base 124. One end of the base 124 is connected to the surface of the substrate 121, and the other end of the base 124 is integrally connected to one end of the hook portion 123. In addition, the hook portion 123 of each hook unit 122 faces the same extending direction. This helps to improve the structural stability, fixing function and reliability of the hook module 100. Specifically, the extending direction can be away from the connection interface I. This ensures the reliability of the hook module 100.
[0030] Furthermore, when the surface of the fabric structure 110 is connected to the surface of the substrate 121, the fabric structure 110 and the hook unit 122 can be in physical contact and have a contractile force in a direction away from the extension direction. Specifically, the fabric structure 110 can be moved to a first position or a second position relative to the hook structure 120. When the fabric structure 110 is in the first position, the fabric structure 110 and the hook structure 120 are not in physical contact. When the fabric structure 110 is in the second position, the surface of the fabric structure 110 is connected to the surface of the substrate 121, the fabric structure 110 faces the hook structure 120 and is in physical contact with the hook unit 122. For example, when the fabric structure 110 is in the first position, the hook module 100 is in a non-fixed state. Two objects to be fixed can be placed near the connection interface I and on the hook structure 120. Then, the fabric structure 110 is covered and bound to the objects to be fixed in a manner facing the hook structure 120, so that at least a portion of the surface of the fabric structure 110 away from the connection interface I has physical contact with the hook unit 122, and the fabric structure 110 is in the second position, thereby achieving the fixed state of the hook module 100, thereby fixing the objects, but not limited to this.
[0031] Furthermore, the hooks 123 of the hook module 100 are oriented in the same direction. When the hook module 100 is in a fixed state, the fabric structure 110 contracts in the direction away from the hooks 123. The contraction force of the fabric structure 110 strengthens its correspondence with the hooks 123, thereby improving the structural stability of the hook module 100 in the fixed state. When the hook module 100 is in the fixed state, the contraction force of the fabric structure 110 can be between 1.5 kg and 3.5 kg, thereby ensuring the fixing strength at the physical contact point between the fabric structure 110 and the hook structure 120. Compared to the case where the contraction force is 0 kg, when the contraction force of the fabric structure 110 is 2 kg, the fixing strength of the hook module 100 can be increased by 35%, but this is not a limitation.
[0032] In detail, the fabric structure 110 can be an elastic fabric. Pulling the fabric structure 110 in a direction away from the connection interface I can extend its length. By adjusting the length of the fabric structure 110, the hook module 100 can be used to fix objects of different volumes. The larger the object, the longer the fabric structure 110 is to cover and bind the object. The longer the fabric structure 110, the greater the contractile force it can provide. Therefore, the hook module 100 can still ensure its reliability when used to fix large objects. This allows the hook module 100 to be applied to fix objects of different shapes and volumes, improving its ease of use and applicability.
[0033] Furthermore, the fabric structure 110 may comprise knitted fabric, woven fabric, or non-woven fabric. This improves the stability of the hook module 100. Specifically, the fabric structure 110 may include non-woven fabric, and the non-woven fabric may be made of polypropylene. This increases the tightness of the fabric structure 110 and the hook structure 120, which improves the reliability of the hook module 100. Specifically, non-woven fabrics offer advantages such as moisture resistance, breathability, and water repellency, contributing to the durability of the hook module 100. Additionally, the fabric structure 110 may be knitted fabric, which is elastic and can extend in length when stressed, reaching 1.2 to 2 times its original length. This improves the hook module 100's ability to adhere to objects of different shapes while ensuring stability. Specifically, the hook module 100 can be composed of both knitted fabric and non-woven fabric, or it can be composed of both woven fabric and non-woven fabric, thereby providing stable fixing strength and benefiting the service life of the hook module 100, but the present invention is not limited thereto. Furthermore, weaving the adhesive threads into the fabric structure 110 helps to improve the elasticity and structural strength of the fabric structure 110.
[0034] In detail, the physical structure of the fabric structure 110 includes numerous pores, each corresponding to a hook 123, through which the hook 123 of the hook structure 120 can pass. When the hook module 100 is in a fixed state, the hook 123 of the hook structure 120 hooks into the pores of the fabric structure 110 to achieve a fixing effect. To release the hook module 100 from its fixed state, the hook 123 needs to be removed from the pores of the fabric structure 110, causing the fabric structure 110 to detach from the hook structure 120. Known hook structures extend their hooks in multiple directions to increase the number of fixing points, which not only produces a loud noise when releasing the fixed state but may also cause structural deformation, reducing reliability after repeated use. The hook portion 123 of the hook module 100 of this utility model is arranged in the same direction. When the hook module 100 is released from the fixed state, the fabric structure 110 can be stretched in the extension direction, so that the hook portion 123 can be released from the gap of the fabric structure 110 without deforming the hook structure 120. This can improve the service life of the hook module 100.
[0035] Furthermore, the fabric structure 110 may be made of polyester (PE), polyurethane (PU), or polyamide (PA). This improves the durability of the fabric structure 110 of the hook module 100. Specifically, polyester, polyurethane, or polyamide offer advantages such as lightweight and high strength, and their functionality can be adjusted by adding additives. This enhances the softness and smooth feel of the fabric structure 110.
[0036] Furthermore, the height of each hook unit 122 can be from 0.3 mm to 3 mm. This improves the structural stability of the hook module 100 in the fixed state. Specifically, the height of each hook unit 122 can be less than the thickness of the fabric structure 110. This contributes to the structural tightness of the hook module 100. Preferably, the height of each hook unit 122 can be from 1 mm to 2 mm. Reducing the height of the hook units 122 decreases the gap between the fabric structure 110 and the substrate 121 when the hook module 100 is in the fixed state, which is beneficial to structural stability.
[0037] Furthermore, the spacing between adjacent hook units 122 can be from 0.1mm to 1.5mm, which ensures the reliability of the hook module 100. Preferably, the spacing between adjacent hook units 122 can be from 0.1mm to 1.0mm. Specifically, the smaller the spacing between adjacent hook units 122, the more stress points the hook structure 120 corresponds to the fabric structure 110 per unit area, which helps to increase the resistance of the hook structure 120 to external forces and improve the hooking effect of the hook unit 122. In this way, the stress burden on the hook 123 can be reduced while ensuring the structural stability of the hook module 100 and extending the service life of the hook module 100.
[0038] Specifically, each hook unit 122 may comprise polyamide, polypropylene (PP), thermoplastic polyurethane (TPU), thermoplastic polystyrene (TPS), or thermoplastic polyether ester elastomer (TPEE). Specifically, thermoplastic polyurethane exhibits superior abrasion resistance, tear resistance, and flexural strength. Thermoplastic polystyrene elastomers possess high elongation and high resilience. Thermoplastic polyester elastomers offer elasticity, softness, and ease of processing. This enhances the cushioning capacity and durability of the hook structure 120. Furthermore, each hook unit 122 may simultaneously comprise one of polyamide and polypropylene, and one of thermoplastic polyurethane, thermoplastic polystyrene elastomer, and thermoplastic polyester elastomer. For example, each hook unit 122 can be made from polyamide or polypropylene as the main raw material and with the addition of an elastomer, and is obtained through a molding process to obtain a hook unit 122 that has both elasticity and toughness, but the scope of this utility model is not limited thereto. Furthermore, each hook unit 122 can have a central structure and a covering layer. The central structure has toughness and can be regarded as the core skeleton of the hook unit 122. The material of the central structure can be thermoplastic polyurethane, thermoplastic polystyrene, or thermoplastic polyester elastomer, which helps the elongation and resilience of the hook unit 122. The material of the covering layer can be polyamide, which helps the hook unit 122 to resist friction and structural stability. The covering layer can be regarded as a protective layer. The thickness of the covering layer can be adjusted as needed to reduce surface friction damage of the hook unit 122 after long-term use, which helps to extend the service life of the hook module 100.
[0039] Furthermore, the thickness of the substrate 121 can be from 0.1 mm to 1.5 mm. This improves the structural strength of the hook structure 120. Preferably, the thickness of the substrate 121 can be from 0.3 mm to 1 mm. This improves the extensibility of the substrate 121 while ensuring structural stability. Additionally, the substrate 121 may comprise thermoplastic polyurethane, thermoplastic polystyrene elastomer, or thermoplastic polyester elastomer. This enhances the elasticity and extensibility of the hook module 100, facilitating its application to various surface shapes. Furthermore, the elastic substrate 121 conforms to the surface shape of the object it is attached to, increasing the shape adaptability of the hook module 100.
[0040] In summary, the hook module provided by this utility model includes a fabric structure and a hook structure. One side of the hook structure is connected to one side of the fabric structure. The hook structure includes a substrate and hook units, with each hook unit disposed on the surface of the substrate and comprising a hook and a base. This improves the structural stability, fixing function, and reliability of the hook module. Furthermore, when the surface of the fabric structure is connected to the surface of the substrate, the fabric structure and the hook units can make physical contact and have a contractile force in the direction away from the extension direction. The fabric structure can move relative to the hook structure to a first position or a second position. When the fabric structure is in the first position, there is no physical contact between the fabric structure and the hook structure, and the hook module is in a non-fixed state. When the fabric structure is in the second position, the surface of the fabric structure is connected to the surface of the substrate, the fabric structure faces the hook structure, and makes physical contact with the hook units, thus achieving a fixed state for the hook module. In addition, the fabric structure can be an elastic fabric to tightly bind the object to be fixed. When the hook of the hook structure hooks onto the fabric structure, it improves the ease of use of the hook module. By adjusting the height of the hook unit and the spacing between adjacent hook units, the structural stability of the hook module in a fixed state can be improved, and the reliability of the hook module can be ensured.
[0041] Although the present invention has been disclosed above with reference to embodiments, it is not intended to limit the scope of the present invention. Any person skilled in the art may make various modifications and refinements without departing from the spirit and scope of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.
Claims
1. A hook body module, characterized by, Include: Fabric structure; and A hook structure, wherein one side of the hook structure is connected to one side of the fabric structure to form a connection interface, and the hook structure includes: Substrate; and Multiple hook units are disposed on the surface of the substrate, wherein each of the multiple hook units includes a hook and a base, one end of the base is connected to the surface of the substrate, and the other end of the base is integrally connected to one end of the hook. In each of the plurality of hook units, the hook portion faces the same extending direction.
2. The hook body module of claim 1, wherein, The fabric structure is an elastic fabric.
3. The hook body module of claim 2, wherein, When the surface of the fabric structure is connected to the surface of the substrate, the fabric structure contacts the plurality of hook unit entities and has a contractile force in a direction away from the extension direction.
4. The hook body module of claim 1, wherein, The direction of extension is away from the connection interface.
5. The hook body module of claim 1, wherein, The height of each of the plurality of hook units is 0.3 mm to 3 mm.
6. The hook body module of claim 1, wherein, The thickness of the substrate is 0.1 mm to 1.5 mm.
7. The hook body module of claim 1, wherein, The spacing between adjacent hook units is 0.1 mm to 1.5 mm.
8. The hook body module of claim 1, wherein, Each of the plurality of hook units is a polyamide hook unit, a polypropylene hook unit, a thermoplastic polyurethane hook unit, a thermoplastic polystyrene elastomer hook unit, or a thermoplastic polyester elastomer hook unit.
9. The hook body module of claim 1, wherein, The fabric structure includes knitted fabrics, woven fabrics, or non-woven fabrics.
10. The hook body module of claim 9, wherein, The fabric structure includes the nonwoven fabric, and the nonwoven fabric is a polypropylene nonwoven fabric.