Convenient-to-combine fence structure for aquaculture
By using the design of mounting blocks and fixed blocks in the fence structure for aquaculture, the problem of complex combination of existing welding methods and poor stability is solved, and the rapid installation and efficient disassembly of fences is achieved, and the stability and convenience of use are improved.
Patent Information
- Application Number
- CN202422185264.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-06
AI Technical Summary
The existing fence structures for aquaculture are mainly combined with welding methods. The process is complex and requires skilled welders. The welding points are prone to loosening and cracking, which affects the stability of the fence and is difficult to repair or replace.
A convenient combination fence structure for aquaculture is designed, using the method of combining installation blocks and fixed blocks with installation and disassembly components. Through the coordination of installation columns and card blocks, the fence is quickly installed and disassembled.
It improves the overall stability and safety protection performance of the fence, simplifies the installation process, shortens the installation time, improves work efficiency, and makes the fence disassembly more flexible and convenient.
Smart Images

Figure CN223025226U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of fence structures, and specifically, to a fence structure for aquaculture that is convenient for combination. Background Art
[0002] Aquaculture is a production method in which humans utilize the water environment and, through artificial control and management, breed, cultivate, and harvest aquatic economic animals and plants. Aquaculture requires the use of fences. Aquaculture fences are important facilities to ensure the safety of aquaculture areas, prevent fish from escaping, and prevent the intrusion of external threat factors. They can not only improve the breeding efficiency but also effectively protect the breeding environment, ensuring the breeding quality and economic benefits.
[0003] There are some drawbacks in the use of existing devices. For example, most existing fences are combined by welding. The welding combination process is complex, requiring multiple processes such as grinding and alignment, and requires skilled welders to operate, increasing the workload and time cost. If the welding process is not good or the materials are not uniform, the welding points will become loose and cracked, affecting the overall stability of the fence. Once the welded fence is damaged, the repair or replacement work is relatively difficult. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a fence structure for aquaculture that is convenient for combination, and solve the problem that most fences are combined by welding.
[0005] The utility model provides the following technical solution: A fence structure for aquaculture that is convenient for combination, including two fence supports. A plurality of horizontal fences are fixedly connected in a horizontal array between the two fence supports. On one side outer wall of one of the fence supports away from the horizontal fences, two mounting blocks are fixedly connected, and the two mounting blocks are arranged vertically. On one side outer wall of the other fence support away from the horizontal fences, two fixing blocks are fixedly connected, and the two fixing blocks are arranged vertically. Mounting components are arranged on both of the two mounting blocks, and mounting and dismounting components are arranged on both of the two fixing blocks.
[0006] In the above solution, a strong fence framework is formed by a plurality of horizontal fences fixedly connected in a horizontal array between the two fence supports. This structure not only improves the overall stability of the fence but also effectively prevents the destruction of the internal area of the fence by external impact or extrusion, enhancing the safety protection performance. The mounting components and the mounting and dismounting components are used in cooperation, making the installation and dismounting of the fence extremely flexible and convenient. Users can quickly assemble or disassemble the fence according to actual needs, improving the use efficiency and convenience.
[0007] Preferably, as the above technical solution, the installation assembly includes installation columns respectively and fixedly connected to the bottoms of the two installation blocks. Installation holes are vertically penetrated through both of the two installation columns. Four sliding grooves are annularly arrayed on the inner side walls of the two installation holes. A clamping block is slidably connected to the inner side of each of the four sliding grooves. The bottom of each of the four clamping blocks is provided with an inclined surface near one side corner of the installation hole.
[0008] In the above solution, move the fence bracket with the installation column near another fence bracket, align the installation column with the connection hole on the fixing block, and insert the installation column into the connection hole. As the installation column is inserted, the inclined surface of the clamping block first contacts the conical surface of the fixed conical block. As the installation column is further inserted, the clamping block is squeezed inward by the conical surface and the spring is compressed at the same time. When the installation column reaches the predetermined position and the clamping block reaches below the fixed conical block, at this time the spring releases the compression force and pushes the clamping block to the locking position, preventing the installation column from being easily pulled out. This design simplifies the installation process of the fence bracket, improves work efficiency. At the same time, the unlocking process is also relatively simple. Just use the installation and disassembly assembly to pull out the installation column.
[0009] Preferably, as the above technical solution, first installation frames are fixedly connected to the inner side walls of the four sliding grooves. Second installation frames are fixedly connected to one side of the four clamping blocks close to the first installation frames. Springs are arranged between the first installation frame and the second installation frame in the same group.
[0010] In the above solution, the first installation frame and the second installation frame provide a stable installation position for the spring. The arrangement of the spring enables the clamping block to obtain a stronger locking force when in the locking position. When the installation column is inserted into the connection hole and reaches the predetermined position, the clamping block automatically pops out under the elastic force of the spring, thereby improving the firmness and reliability of the connection.
[0011] Preferably, as the above technical solution, first limiting blocks are fixedly connected to the outer walls of the opposite sides of the four clamping blocks. Limiting grooves adapted to the sizes of the first limiting blocks are opened on the inner walls of the opposite sides of the four sliding grooves. And the four clamping blocks are slidably connected to the corresponding limiting grooves through the corresponding first limiting blocks.
[0012] In the above solution, the first limiting block serves as a guiding and limiting device for the clamping block to move in the sliding groove, ensuring that the clamping block will not deviate from the predetermined track during the movement.
[0013] As an optimization of the above technical solution, the installation and disassembly component includes connection holes respectively opened on the upper end faces of the two fixed blocks, and the two connection holes are used in cooperation with the corresponding installation columns. Vertical sliding holes are respectively opened through the two fixed blocks, and the two sliding holes are respectively communicated with the corresponding connection holes. Limiting holes are vertically opened on the lower end faces of the two fixed blocks, and the two limiting holes are respectively communicated with the corresponding sliding holes.
[0014] In the above solution, the connection holes are used in cooperation with the corresponding installation columns, ensuring that the installation columns can be smoothly inserted and fixed on the fixed blocks, preventing the installation columns from shifting or shaking during the fixing process. The sliding holes provide space for the sliding rods to move, and the limiting holes limit the moving range of the third limiting blocks.
[0015] As an optimization of the above technical solution, the installation and disassembly component further includes sliding rods respectively slidably connected to the inner sides of the two sliding holes. Fixed conical blocks are fixedly connected to the tops of the two sliding rods. Sliding conical blocks are slidably connected to the outer sides of the tops of the two sliding rods, and the two sliding conical blocks are symmetrically arranged with the corresponding fixed conical blocks respectively. Second limiting blocks are arranged below the two sliding conical blocks, and the two second limiting blocks are respectively fixedly sleeved on the outer sides of the corresponding sliding rods. Third limiting blocks are fixedly connected to the bottom ends of the two sliding rods, and the two third limiting blocks are respectively slidably connected to the corresponding limiting holes.
[0016] In the above solution, the fixed conical block has a conical surface for contacting and squeezing the clamping block when the installation column is inserted, and the design of the conical surface enables the clamping block to slide smoothly and adapt to the shape change of the fixed conical block. The sliding conical block is symmetrically arranged with the fixed conical block for further assisting in unlocking the clamping block. The second limiting block is used to limit the moving range of the sliding conical block and the sliding rod. The third limiting block ensures the stable movement of the sliding rod in the sliding hole and prevents it from disengaging from the fixed block. At the same time, it also limits the moving range of the sliding rod. When it is necessary to unlock the clamping block, by pressing the third limiting block, the sliding rod is driven to move upward. The movement of the sliding rod drives the second limiting block, the fixed conical block, and the sliding conical block to move upward. When the sliding conical block moves to a specified position, it contacts and squeezes the clamping block. This squeezing changes the relative position between the clamping block and the fixed conical block, creating conditions for unlocking. As the sliding conical block continues to rise and finally moves above the clamping block, the clamping block is unlocked at this time. After the sliding conical block moves above the clamping block, the installation column is pulled out. Since the clamping block is already in the unlocked state, the installation column can be easily pulled out.
[0017] Compared with the prior art, the beneficial effects of the present utility model are:
[0018] In the present utility model, through the combined use of the installation component and the installation and disassembly component, the user only needs to simply insert the installation post into the connection hole, and it can be automatically locked when reaching the predetermined position without additional fastening steps, simplifying the installation process, shortening the installation time, and improving work efficiency. The design of the spring and the clamping block ensures that the installation post can be firmly locked on the fixed block after reaching the predetermined position, preventing loosening or falling off caused by external force or vibration, and improving the overall stability and use safety of the fence bracket. The unlocking process is also simple and fast. By pressing the third limit block to drive the sliding rod and the sliding tapered block to move, the unlocking of the clamping block can be achieved. This design enables the fence bracket to be easily disassembled when maintenance, replacement, or movement is required, improving the flexibility and convenience of use. Description of the Drawings
[0019] Figure 1 is a schematic diagram of the overall structure of a conveniently assembled fence structure for aquaculture;
[0020] Figure 2 is a schematic diagram of the fence combination structure of a conveniently assembled fence structure for aquaculture;
[0021] Figure 3 is a schematic diagram of the installation component structure of a conveniently assembled fence structure for aquaculture;
[0022] Figure 4 is a schematic diagram of the installation and disassembly component structure of a conveniently assembled fence structure for aquaculture.
[0023] In the figure: 10, fence bracket; 11, horizontal fence; 12, mounting block; 13, fixed block; 20, installation post; 21, installation hole; 22, sliding groove; 23, clamping block; 24, inclined surface; 30, first mounting frame; 31, second mounting frame; 32, spring; 40, first limit block; 41, limit groove; 50, connection hole; 51, sliding hole; 52, limit hole; 60, sliding rod; 61, fixed tapered block; 62, sliding tapered block; 63, second limit block; 64, third limit block. Detailed Embodiment
[0024] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model.
[0025] Embodiment 1
[0026] As Figure 1 and Figure 2As shown in the figure, the utility model provides a technical solution: a fence structure for aquaculture that is convenient to assemble, including two fence supports 10. A plurality of horizontal fences 11 are fixedly connected in a horizontal array between the two fence supports 10. On one side outer wall of one fence support 10 away from the horizontal fence 11, two mounting blocks 12 are fixedly connected, and the two mounting blocks 12 are arranged vertically. On one side outer wall of the other fence support 10 away from the horizontal fence 11, two fixing blocks 13 are fixedly connected, and the two fixing blocks 13 are arranged vertically. Mounting components are arranged on both mounting blocks 12, and mounting and dismounting components are arranged on both fixing blocks 13. In the specific use process, a firm fence framework is formed by a plurality of horizontal fences 11 fixedly connected in a horizontal array between the two fence supports 10. This structure not only improves the overall stability of the fence but also effectively prevents the destruction of the internal area of the fence caused by external impact or extrusion, enhancing the safety protection performance. The cooperation of the mounting components and the mounting and dismounting components makes the installation and dismounting of the fence more flexible and convenient. Users can quickly assemble or disassemble the fence according to actual needs, improving the use efficiency and convenience.
[0027] As an implementation manner in this embodiment, as Figure 3 shown, the mounting component includes mounting columns 20 respectively fixedly connected to the bottom ends of the two mounting blocks 12. Mounting holes 21 are vertically penetrated through both mounting columns 20. Four sliding grooves 22 are annularly arrayed on the inner side walls of the two mounting holes 21. A clamping block 23 is slidably connected to the inner side of each of the four sliding grooves 22. An inclined surface 24 is arranged at the side corner of the bottom of each of the four clamping blocks 23 close to the mounting hole 21. In the specific use process, the fence support 10 with the mounting column 20 is moved near the other fence support 10, so that the mounting column 20 is aligned with the connection hole 50 on the fixing block 13. The mounting column 20 is inserted into the connection hole 50. As the mounting column 20 is inserted, the inclined surface 24 of the clamping block 23 first contacts the conical surface of the fixed conical block 61. As the mounting column 20 is further inserted, the clamping block 23 is squeezed by the conical surface and retracts inward, while compressing the spring 32. When the mounting column 20 reaches the predetermined position and the clamping block 23 reaches below the fixed conical block 61, at this time, the spring 32 releases the compression force and pushes the clamping block 23 to the locking position, preventing the mounting column 20 from being easily pulled out. This design simplifies the installation process of the fence support 10 and improves the work efficiency. At the same time, the unlocking process is also relatively simple. Only by using the mounting and dismounting component can the mounting column 20 be pulled out.
[0028] As an implementation manner in this embodiment, as Figure 3As shown in the figure, the inner side walls of the four sliding grooves 22 are fixedly connected with first mounting frames 30. On one side of the four clamping blocks 23 close to the first mounting frames 30, second mounting frames 31 are fixedly connected. Between the first mounting frames 30 and the second mounting frames 31 in the same group, springs 32 are arranged. In the specific use process, the first mounting frames 30 and the second mounting frames 31 provide stable mounting positions for the springs 32. The arrangement of the springs 32 enables the clamping blocks 23 to obtain stronger locking force when in the locking position. When the mounting post 20 is inserted into the connection hole 50 and reaches the predetermined position, the clamping blocks 23 automatically pop out under the elastic force of the springs 32, thereby improving the stability and reliability of the connection.
[0029] As an implementation manner in this embodiment, as Figure 3 shown in the figure, on the outer side walls of the opposite sides of the four clamping blocks 23, first limiting blocks 40 are fixedly connected. On the inner side walls of the opposite sides of the four sliding grooves 22, limiting grooves 41 adapted to the sizes of the first limiting blocks 40 are respectively opened. And the four clamping blocks 23 are slidably connected with the corresponding limiting grooves 41 through the corresponding first limiting blocks 40. In the specific use process, the first limiting blocks 40 serve as guiding and limiting devices for the clamping blocks 23 to move in the sliding grooves 22, ensuring that the clamping blocks 23 will not deviate from the predetermined track during the moving process.
[0030] As an implementation manner in this embodiment, as Figure 4 shown in the figure, the installation and disassembly assembly includes connection holes 50 respectively opened on the upper end surfaces of the two fixing blocks 13, and the two connection holes 50 are used in cooperation with the corresponding mounting posts 20. Vertically penetrating sliding holes 51 are respectively opened in the two fixing blocks 13, and the two sliding holes 51 are respectively communicated with the corresponding connection holes 50. Vertically opened limiting holes 52 are respectively arranged on the lower end surfaces of the two fixing blocks 13, and the two limiting holes 52 are respectively communicated with the corresponding sliding holes 51. In the specific use process, the connection holes 50 are used in cooperation with the corresponding mounting posts 20, ensuring that the mounting posts 20 can be smoothly inserted and fixed on the fixing blocks 13, preventing the mounting posts 20 from shifting or shaking during the fixing process. The sliding holes 51 provide space for the sliding rods 60 to move, and the limiting holes 52 limit the moving range of the third limiting blocks 64.
[0031] As an implementation manner in this embodiment, as Figure 4As shown, the installation and disassembly component further includes sliding rods 60 respectively and slidably connected to the inner sides of the two sliding holes 51. Fixed conical blocks 61 are fixedly connected to the tops of the two sliding rods 60. Sliding conical blocks 62 are slidably connected to the outer sides of the tops of the two sliding rods 60, and the two sliding conical blocks 62 are symmetrically arranged with the corresponding fixed conical blocks 61. Second limit blocks 63 are arranged below the two sliding conical blocks 62, and the two second limit blocks 63 are respectively fixedly sleeved on the outer sides of the corresponding sliding rods 60. Third limit blocks 64 are fixedly connected to the bottoms of the two sliding rods 60, and the two third limit blocks 64 are respectively slidably connected to the corresponding limit holes 52. In the specific use process, the fixed conical block 61 has a conical surface for contacting and squeezing the clamping block 23 when the mounting post 20 is inserted. The design of the conical surface enables the clamping block 23 to slide smoothly and adapt to the shape change of the fixed conical block 61. The sliding conical block 62 is symmetrically arranged with the fixed conical block 61 to further assist in unlocking the clamping block 23. The second limit block 63 is used to limit the movement range of the sliding conical block 62 and the sliding rod 60. The third limit block 64 ensures the stable movement of the sliding rod 60 in the sliding hole 51 and prevents it from disengaging from the fixed block 13. At the same time, it also limits the movement range of the sliding rod 60. When it is necessary to unlock the clamping block 23, the third limit block 64 is pressed to drive the sliding rod 60 to move upward. The movement of the sliding rod 60 drives the second limit block 63, the fixed conical block 61, and the sliding conical block 62 to move upward. When the sliding conical block 62 moves to a specified position, it contacts and squeezes the clamping block 23. This squeezing changes the relative position between the clamping block 23 and the fixed conical block 61, creating conditions for unlocking. As the sliding conical block 62 continues to rise and finally moves above the clamping block 23, the clamping block 23 is released from the locked state. After the sliding conical block 62 moves above the clamping block 23, the mounting post 20 is pulled out. Since the clamping block 23 is already in the unlocked state, the mounting post 20 can be easily pulled out.
[0032] Working principle: Move the fence bracket 10 with the mounting post 20 near another fence bracket 10, ensure that the mounting post 20 is precisely aligned with the connection hole 50 on the fixed block 13, insert the mounting post 20 into the connection hole 50. As the mounting post 20 is inserted, the inclined surface 24 of the clamping block 23 will contact the conical surface of the fixed conical block 61. The clamping block 23 is squeezed inward and retracts, while compressing the spring 32. When the mounting post 20 reaches the predetermined position and the clamping block 23 reaches below the fixed conical block 61, at this time the spring 32 releases the compression force and pushes the clamping block 23 to the locking position. When the fence needs to be disassembled, by pressing the third limit block 64, the sliding rod 60 is driven to move upward. The movement of the sliding rod 60 will further drive the second limit block 63, the fixed conical block 61 and the sliding conical block 62 to rise together. When the sliding conical block 62 moves to the specified position and contacts and squeezes the clamping block 23, this squeeze changes the relative position between the clamping block 23 and the fixed conical block 61, creating conditions for unlocking. As the sliding conical block 62 continues to rise and finally moves above the clamping block 23, at this time the clamping block 23 is released from the locked state. When the clamping block 23 is in the unlocked state, the mounting post 20 can be easily pulled out of the connection hole 50.
[0033] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.
Claims
1. A conveniently assembled aquaculture fence structure, comprising two fence brackets (10), characterized in that: A plurality of transverse fences (11) are fixedly connected in a transverse array between the two fence brackets (10), wherein one of the fence brackets (10) is fixedly connected to an outer wall on a side away from the transverse fence (11) with two mounting blocks (12), and the two mounting blocks (12) are arranged vertically, and another fence bracket (10) is fixedly connected to an outer wall on a side away from the transverse fence (11) with two fixing blocks (13), and the two fixing blocks (13) are arranged vertically, both mounting blocks (12) are provided with mounting components, and both fixing blocks (13) are provided with mounting and disassembly components.
2. The conveniently assembled aquaculture fence structure according to claim 1, characterized in that: The mounting assembly comprises mounting columns (20) respectively fixedly connected to the bottom ends of the two mounting blocks (12); the two mounting columns (20) are each provided with a mounting hole (21) vertically extending therethrough; the inner side walls of the two mounting holes (21) are provided with four sliding grooves (22) in a circular array; the inner sides of the four sliding grooves (22) are each slidably connected with a clamping block (23); and the bottoms of the four clamping blocks (23) are each provided with an inclined surface (24) at a side corner close to the mounting hole (21).
3. The conveniently assembled aquaculture fence structure according to claim 2, characterized in that: The inner side walls of the four sliding grooves (22) are all fixedly connected to a first mounting frame (30), the four clamping blocks (23) are all fixedly connected to a second mounting frame (31) on one side close to the first mounting frame (30), and a spring (32) is provided between the first mounting frame (30) and the second mounting frame (31) of the same group.
4. The conveniently assembled aquaculture fence structure according to claim 3, characterized in that: The outer walls on both sides opposite to each other of the four clamping blocks (23) are fixedly connected with first limit blocks (40), the inner walls on both sides opposite to each other of the four sliding grooves (22) are provided with limit grooves (41) adapted to the size of the first limit blocks (40), and the four clamping blocks (23) are slidably connected with the corresponding limit grooves (41) via the corresponding first limit blocks (40).
5. The conveniently assembled aquaculture fence structure according to claim 1, characterized in that: The installation and disassembly assembly comprises connection holes (50) respectively opened on the upper end surfaces of the two fixed blocks (13), and the two connection holes (50) are used in conjunction with corresponding installation columns (20); sliding holes (51) are vertically penetrated in the two fixed blocks (13), and the two sliding holes (51) are respectively communicated with the corresponding connection holes (50); and limiting holes (52) are vertically opened on the lower end surfaces of the two fixed blocks (13), and the two limiting holes (52) are respectively communicated with the corresponding sliding holes (51).
6. The conveniently assembled aquaculture fence structure according to claim 5, characterized in that: The mounting and disassembly assembly also includes a sliding rod (60) slidably connected to the inner sides of the two sliding holes (51), the top ends of the two sliding rods (60) are fixedly connected to a fixed conical block (61), the outer sides of the tops of the two sliding rods (60) are slidably connected to a sliding conical block (62), and the two sliding conical blocks (62) are symmetrically arranged with the corresponding fixed conical blocks (61), a second limit block (63) is arranged below the two sliding conical blocks (62), and the two second limit blocks (63) are fixedly sleeved on the outer sides of the corresponding sliding rods (60), and the bottom ends of the two sliding rods (60) are fixedly connected to a third limit block (64), and the two third limit blocks (64) are slidably connected to the corresponding limit holes (52).