A high-strength wire mesh mat with a multi-layer structure
Through a multi-layered structural design, including a pressure-resistant buffer mechanism and a corrosion-resistant layer, the shortcomings of wire mesh mats in terms of strength and corrosion resistance are solved, resulting in high-strength and long-life wire mesh mats.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGBO SHIELD SEALING CO LTD
- Filing Date
- 2025-07-01
- Publication Date
- 2026-05-26
Smart Images

Figure CN224283338U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a wire mesh mat, specifically a high-strength wire mesh mat with a multi-layer structure, belonging to the field of wire mesh mat technology. Background Technology
[0002] Wire mesh mats are mat-like products with a mesh structure made of materials such as metal wires and fiber filaments through a weaving and pressing process. They are used in many industrial production processes and some special application scenarios, such as filtration, separation, buffering and protection in the chemical, petroleum and environmental protection industries.
[0003] A shock-absorbing wire mesh pad assembly disclosed in Chinese Patent Application Publication CN216618382U includes an outer locking buckle and an inner locking buckle, with a steel wire shock-absorbing pad disposed between the outer locking buckle and the inner locking buckle; it also includes an anti-detachment mechanism disposed between the outer locking buckle and the inner locking buckle. This technical solution improves the riveting strength, avoids the risk of detachment, and is easy to operate. However, this wire mesh pad is made only of metal wire and fiber filaments, resulting in a relatively simple structure and certain limitations in strength. When faced with greater pressure, impact, or prolonged load, it is prone to deformation and damage, failing to meet the growing demand for high strength and high reliability in wire mesh pads.
[0004] Therefore, a high-strength wire mesh mat with a multi-layer structure is proposed here. Utility Model Content
[0005] This invention proposes a high-strength wire mesh mat with a multi-layer structure to solve the problem of low strength in existing wire mesh mats.
[0006] This utility model is achieved through the following technical solution: a high-strength wire mesh mat with a multi-layer structure, including a wire mesh mat body, wherein an anti-compression buffer mechanism is provided inside the wire mesh mat body, above the wire mesh mat body and below the wire mesh mat body;
[0007] The pressure-resistant buffer mechanism includes two buffer rings. The sides of the two buffer rings that are close to each other are in contact with the upper surface and the bottom surface of the mesh pad body, respectively. The sides of the two buffer rings that are close to each other are fixedly connected to two dampers. The inner wall of the mesh pad body is fixedly embedded with two mounting sleeves. The outer surfaces of the two dampers are in contact with the inner walls of the two mounting sleeves, respectively. The upper surface and the bottom surface of the mesh pad body are fixedly connected to two buffer springs. The ends of the two sets of buffer springs that are far apart from each other are fixedly connected to the sides of the two buffer rings that are close to each other.
[0008] The upper and lower parts of the mesh pad body are provided with multiple reinforcing components, and the internal part of the pressure-resistant buffer mechanism is provided with a locking component.
[0009] The multi-layer reinforcing component includes a first pressure-resistant layer disposed above the main body of the wire mesh mat, a second pressure-resistant layer disposed below the main body of the wire mesh mat, a first corrosion-resistant layer disposed above the first pressure-resistant layer, and a second corrosion-resistant layer disposed below the second pressure-resistant layer.
[0010] The locking assembly includes two movable plates, each of which is slidably connected to the inside of one of the buffer rings. The upper surface of the wire mesh pad body has two L-shaped grooves, and the two movable plates are slidably connected to the inside of the two L-shaped grooves respectively.
[0011] Each of the two movable plates has a movable stop fixedly connected to one of its opposite sides, and the two movable stops are slidably connected to the inside of the two L-shaped grooves.
[0012] Two extension springs are fixedly connected to the inner wall of each of the movable blocks. Limiting blocks are fixedly connected to the top of the two sets of extension springs. The two limiting blocks are slidably connected to the inside of the two movable blocks. The side of the two limiting blocks that are close to each other is in contact with the side of the two movable plates that are far apart from each other. The upper surface of the two limiting blocks is in contact with the inner top wall of the two L-shaped slides.
[0013] Each of the L-shaped slides has an extension hole on its inner sidewall. Compression springs are fixedly connected to the sides of the two moving plates that are close to each other. The two compression springs are slidably connected to the inside of the two extension holes. Fixed plates are fixedly connected to the ends of the two compression springs that are close to each other. The outer surfaces of the two fixed plates are fixedly connected to the inner walls of the two extension holes.
[0014] This invention provides a high-strength wire mesh mat with a multi-layer structure, which has the following beneficial effects:
[0015] This high-strength wire mesh mat with a multi-layered structure utilizes two buffer rings at the top and bottom of the mat body to buffer the vertical impact force. Furthermore, two buffer springs and dampers within the mat body, located between the two buffer rings, form a buffer structure to further enhance the mat's buffering performance. The installation sleeve limits the installation of this buffer structure, thereby increasing the mat's strength and reducing the risk of deformation and damage when subjected to significant pressure, impact, or prolonged loads.
[0016] This high-strength wire mesh mat with a multi-layer structure can improve the compressive strength of the wire mesh mat by using a first and a second compressive layer disposed on the outside of the wire mesh mat body, and improve the corrosion resistance of the wire mesh mat by using a first and a second corrosion resistant layer disposed on the outside of the wire mesh mat body, thereby extending the service life of the wire mesh mat. This can meet the growing demand for high strength and high reliability of wire mesh mats and further improve the strength of the wire mesh mat. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the movable stop of this utility model;
[0018] Figure 2 This is a schematic diagram of the structure of the wire mesh pad body of this utility model;
[0019] Figure 3 This is a schematic diagram of the structure of the buffer ring of this utility model;
[0020] Figure 4 This is a cross-sectional view of the movable stop of this utility model.
[0021] Figure 5 This is a cross-sectional view of the main body of the wire mesh mat of this utility model.
[0022] Explanation of reference numerals in the attached figures
[0023] 1. Main body of the wire mesh mat;
[0024] 2. Compression buffer mechanism; 201. Mounting sleeve; 202. Buffer spring; 203. Buffer ring; 204. Damper;
[0025] 3. Multi-layer reinforced components; 301. First compressive strength layer; 302. Second compressive strength layer; 303. First corrosion resistant layer; 304. Second corrosion resistant layer;
[0026] 4. Locking assembly; 401. L-shaped slide; 402. Extension hole; 403. Fixed plate; 404. Compression spring; 405. Moving plate; 406. Moving block; 407. Extension spring; 408. Limit block. Detailed Implementation
[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this application.
[0028] Please see Figures 1-5This utility model embodiment provides a high-strength wire mesh mat with a multi-layer structure, including a wire mesh mat body 1, and an anti-compression buffer mechanism 2 is provided inside the wire mesh mat body 1, above the wire mesh mat body 1 and below the wire mesh mat body 1.
[0029] Please refer to this carefully. Figure 1 , Figure 2 and Figure 3 The anti-compression buffer mechanism 2 includes two buffer rings 203. The side of the two buffer rings 203 that are close to each other is in contact with the upper surface and the bottom surface of the wire mesh pad body 1, respectively. The side of the two buffer rings 203 that are close to each other is fixedly connected to two dampers 204. The damper 204 is a device that uses damping characteristics to reduce mechanical vibration and consume kinetic energy. The model of the damper 204 is HB-12-20. The inner wall of the wire mesh pad body 1 is fixedly embedded with two mounting sleeves 201. The outer surface of the two dampers 204 is in contact with the inner wall of the two mounting sleeves 201, respectively. The upper surface and the bottom surface of the wire mesh pad body 1 are both fixedly connected to two buffer springs 202. The ends of the two sets of buffer springs 202 that are far apart from each other are fixedly connected to the side of the two buffer rings 203 that are close to each other.
[0030] Please refer to this carefully. Figure 1 and Figure 5 A multi-layer reinforcing component 3 is provided above and below the main body 1 of the wire mesh mat. A locking component 4 is provided inside the pressure-resistant buffer mechanism 2. The multi-layer reinforcing component 3 includes a first pressure-resistant layer 301, which is located above the main body 1 of the wire mesh mat. A second pressure-resistant layer 302 is located below the main body 1 of the wire mesh mat. The first and second pressure-resistant layers 301 and 302 located on the outside of the main body 1 of the wire mesh mat improve the pressure resistance of the main body 1 of the wire mesh mat. The pressure-resistant layer is made of fiber-reinforced composite material, which is composed of fiber and matrix, and has both the high strength of fiber and the toughness of matrix. A first corrosion-resistant layer 303 is provided above the first pressure-resistant layer 301 and a second corrosion-resistant layer 304 is provided below the second pressure-resistant layer 302. The first and second corrosion-resistant layers 303 and 304 located on the outside of the main body 1 of the wire mesh mat improve the corrosion resistance of the main body 1 of the wire mesh mat. The corrosion-resistant layer is made of polytetrafluoroethylene (PTFE) Teflon material.
[0031] Please refer to this carefully. Figure 1 and Figure 2The locking assembly 4 includes two movable plates 405, each of which is slidably connected to the inside of one of the buffer rings 203. The upper surface of the wire mesh pad body 1 has two L-shaped grooves 401. The two movable plates 405 are slidably connected to the inside of the two L-shaped grooves 401 respectively. By sliding the two movable plates 405 in the two L-shaped grooves 401, the two movable plates 405 can slide inside one of the buffer rings 203, thereby facilitating the operation and use of this structure.
[0032] Please refer to this carefully. Figure 2 and Figure 4 Each L-shaped slide 401 has an extension hole 402 on its inner sidewall. A compression spring 404 is fixedly connected to the side of the two moving plates 405 that are close to each other. The two compression springs 404 are slidably connected to the inside of the two extension holes 402. A fixing plate 403 is fixedly connected to the end of the two compression springs 404 that are close to each other. The outer surfaces of the two fixing plates 403 are fixedly connected to the inner walls of the two extension holes 402. By using the compression springs 404 installed in the extension holes 402 and the fixing plates 403 to install the compression springs 404 into the extension holes 402, it is possible to easily push the moving plate 405 to slide in the L-shaped slide 401 using the compression springs 404.
[0033] Please refer to this carefully. Figure 1 and Figure 4 Each of the two movable plates 405 has a movable stop 406 fixedly connected to one of their opposite sides. The two movable stops 406 are slidably connected to the inside of the two L-shaped slide grooves 401. The movable plates 405 move the movable stops 406, which can be easily driven to extend outward, so that the movable stops 406 can be used to block the installation.
[0034] Please refer to this carefully. Figure 4 Each movable stop 406 has two extension springs 407 fixedly connected to its inner wall. The top of each set of extension springs 407 is fixedly connected to a limit stop 408. The two limit stops 408 are slidably connected to the inside of the two movable stops 406. The side of the two limit stops 408 that is close to each other contacts the side of the two movable plates 405 that is far apart from each other. The upper surface of the two limit stops 408 contacts the inner top wall of the two L-shaped slide grooves 401. The two extension springs 407 are used to install the limit stops 408 into the inside of the movable stops 406, so that the limit stops 408 can be used to block them, thereby forming a self-locking structure.
[0035] In use, when installing this high-strength wire mesh mat with a multi-layer structure, the wire mesh mat is first placed manually in the desired position. Then, by manually pressing the buffer ring 203 and the two limiting blocks 408 sliding within the L-shaped groove 401, the limiting blocks 408 are moved downwards and slide within the moving block 406, compressing the extension spring 407 on the bottom surface of the limiting block 408 until the upper surface of the limiting block 408 is flush with the upper surface of the moving block 406. At this point, the compressed spring 404 extends and releases its elastic force within the extension hole 402, pushing the moving plate 405 and the moving block 406 to slide within the L-shaped groove 401 until the moving block 406 extends to the outside of the wire mesh mat body 1. Thus, the two moving blocks 406 can be used to stably install the wire mesh mat in the desired position, reducing vibration and displacement of the wire mesh mat.
[0036] When the wire mesh mat is used, it will be subjected to vertical impact force. The impact force can be buffered by the buffer rings 203 on both sides of the wire mesh mat body 1. The two mounting sleeves 201 fixed inside the wire mesh mat body 1 can be used to install and limit the damper 204 and buffer spring 202 between the two buffer rings 203. The damper 204 and buffer spring 202 between the two buffer rings 203 can also buffer the impact force on the high-strength wire mesh mat, thereby improving the overall strength performance of the high-strength wire mesh mat. The first anti-compression layer 301, the second anti-compression layer 302, the first corrosion-resistant layer 303 and the second corrosion-resistant layer 304 set on the outside of the wire mesh mat body 1 can further improve the compressive and corrosion resistance performance of the high-strength wire mesh mat, thereby further improving the strength of the high-strength wire mesh mat and extending its service life.
[0037] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A high-strength wire mesh mat with a multi-layer structure, comprising a wire mesh mat body (1), characterized in that: The pressure-resistant buffer mechanism (2) is provided inside the main body (1), above the main body (1) and below the main body (1). The anti-compression buffer mechanism (2) includes two buffer rings (203). The two buffer rings (203) are close to each other and their sides are in contact with the upper surface and the bottom surface of the mesh pad body (1), respectively. The two buffer rings (203) are close to each other and their sides are fixedly connected to two dampers (204). The inner wall of the mesh pad body (1) is fixedly inlaid with two mounting sleeves (201). The outer surfaces of the two dampers (204) are in contact with the inner walls of the two mounting sleeves (201), respectively. The upper surface and the bottom surface of the mesh pad body (1) are fixedly connected to two buffer springs (202). The ends of the two sets of buffer springs (202) that are far apart from each other are fixedly connected to the two buffer rings (203) that are close to each other. The upper and lower parts of the mesh pad body (1) are provided with a multi-layer reinforcing component (3), and the inside of the pressure-resistant buffer mechanism (2) is provided with a locking component (4).
2. The high-strength wire mesh mat with a multi-layer structure according to claim 1, characterized in that: The multi-layer reinforcing component (3) includes a first pressure-resistant layer (301), which is disposed above the wire mesh mat body (1). A second pressure-resistant layer (302) is disposed below the wire mesh mat body (1). A first corrosion-resistant layer (303) is disposed above the first pressure-resistant layer (301), and a second corrosion-resistant layer (304) is disposed below the second pressure-resistant layer (302).
3. A high-strength wire mesh mat with a multi-layer structure according to claim 1, characterized in that: The locking assembly (4) includes two movable plates (405), each of which is slidably connected to the interior of one of the buffer rings (203). The upper surface of the wire mesh pad body (1) has two L-shaped grooves (401), and the two movable plates (405) are slidably connected to the interior of the two L-shaped grooves (401).
4. A high-strength wire mesh mat with a multi-layer structure according to claim 3, characterized in that: Each of the two movable plates (405) has a movable stop (406) fixedly connected to one side away from the other, and the two movable stops (406) are slidably connected to the inside of the two L-shaped grooves (401).
5. A high-strength wire mesh mat with a multi-layer structure according to claim 4, characterized in that: Two extension springs (407) are fixedly connected to the inner wall of each of the movable blocks (406). Limiting blocks (408) are fixedly connected to the top of each of the two sets of extension springs (407). The two limiting blocks (408) are slidably connected to the inside of the two movable blocks (406). The side of the two limiting blocks (408) that are close to each other is in contact with the side of the two movable plates (405) that are far apart from each other. The upper surface of the two limiting blocks (408) is in contact with the inner top wall of the two L-shaped grooves (401).
6. A high-strength wire mesh mat with a multi-layer structure according to claim 3, characterized in that: Each L-shaped groove (401) has an extension hole (402) on its inner sidewall. Compression springs (404) are fixedly connected to the side of the two moving plates (405) that are close to each other. The two compression springs (404) are slidably connected to the inside of the two extension holes (402). Fixed discs (403) are fixedly connected to the ends of the two compression springs (404) that are close to each other. The outer surfaces of the two fixed discs (403) are fixedly connected to the inner walls of the two extension holes (402).