Novel storm-resistant oyster raft structural member
By using staggered oyster raft structural components, and forming an interlaced frame with transverse and longitudinal skeleton tubes and connectors, the problems of poor wind and wave resistance and low space utilization of oyster raft structural components are solved, achieving higher strength and space utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QIHANG CHUANGZHI (QINGDAO) OFFSHORE EQUIP TECH CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-01
AI Technical Summary
Existing oyster raft structural components have poor resistance to wind and waves and low space utilization, resulting in insufficient strength.
The structure is composed of horizontal skeleton tubes, vertical skeleton tubes and four-way connectors, forming an interlaced aquaculture frame through fixed tubes, limiting blocks and connecting tubes, which enhances the structure's resistance to wind and waves and space utilization.
It improves the oyster raft structure's resistance to wind and waves and its space utilization rate. The structure is simple, easy to install, and has high strength.
Smart Images

Figure CN224178925U_ABST
Abstract
Description
A novel wind and wave resistant oyster raft structural component Technical Field
[0001] This utility model relates to the field of oyster raft structure technology, specifically a novel oyster raft structure component resistant to wind and waves. Background Technology
[0002] Oysters are bivalve mollusks widely distributed in temperate and tropical seas worldwide. They belong to the Ostreidae family. Oyster raft structures are the core supporting components that make up the framework of oyster farming. Oysters are usually farmed on the inside of oyster raft structures.
[0003] There are many types of oyster raft structural components in the existing technology. Oyster raft structural components are placed on the sea surface for use. The unidirectional oyster raft structural components are generally long and narrow, which results in a large space occupied on the sea surface. As a result, the unidirectional oyster raft structural components have poor wind and wave resistance and low strength. Summary of the Invention
[0004] The purpose of this utility model is to provide a new type of oyster raft structure that is resistant to wind and waves, so as to solve the problem of poor wind and wave resistance of oyster raft structures mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a novel anti-wind and wave oyster raft structural component, comprising: a transverse skeleton tube, a longitudinal skeleton tube, and a four-way connector. A longitudinal skeleton tube is provided on the outer side of the end of the transverse skeleton tube. The transverse and longitudinal skeleton tubes are connected to each other via the four-way connector. A fixing tube is provided above both transverse skeleton tubes. A first through hole is formed inside the fixing tube. A limiting block is connected to the bottom of the fixing tube. A limiting hole is formed inside the limiting block. A first connecting tube is connected between the two sets of fixing tubes through two sets of first through holes. A fixing plate is installed above both sets of longitudinal skeleton tubes. A fixing seat is installed on the surface of the fixing plate. A second through hole is formed inside the fixing seat. A second connecting tube is connected between the four sets of fixing seats through four sets of second through holes.
[0006] Preferably, the two adjacent sets of first connecting pipes and the two adjacent sets of second connecting pipes enclose a breeding area.
[0007] Preferably, the first connecting pipe is longitudinally distributed with the longitudinal skeleton pipe, and the second connecting pipe is transversely distributed with the transverse skeleton pipe.
[0008] Preferably, the first connecting pipe and the second connecting pipe are of the same size, and the first through hole and the second through hole are of the same size.
[0009] Preferably, the transverse and longitudinal skeleton tubes are arranged in a vertically staggered manner through four-way connectors.
[0010] Preferably, the size of the limiting hole matches the size of the transverse skeleton tube, and the fixing tube and the limiting block are an integral structure.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: This novel anti-wave oyster raft structure first has two sets of transverse skeleton tubes passing through corresponding limiting holes, allowing the two sets of transverse skeleton tubes to pass through limiting blocks. Multiple sets of fixing tubes are then installed above the two sets of transverse skeleton tubes, and multiple sets of fixing plates are installed above the two sets of longitudinal skeleton tubes. Multiple sets of four-way connectors can vertically and alternately fix the four sets of transverse skeleton tubes and the four sets of longitudinal skeleton tubes. After the first connecting tube is installed between the two sets of longitudinally distributed fixing tubes, the second connecting tube can pass through the four sets of transverse second through holes to the four sets of transversely distributed fixing seats. After the second connecting tube is installed between the transversely distributed fixing seats, the first connecting tube and the second connecting tube can form an interlaced transverse and longitudinal aquaculture frame. The transverse skeleton tubes, longitudinal skeleton tubes, first connecting tubes, and second connecting tubes can form a novel anti-wave oyster raft structure, thereby improving its resistance to wind and waves. Compared with a unidirectional oyster raft structure, it improves space utilization and has a simple structure, is easy to install, and has high strength. Attached Figure Description
[0012] Figure 1 is a three-dimensional structural diagram of this utility model;
[0013] Figure 2 is a three-dimensional structural diagram of the fixing plate of this utility model;
[0014] Figure 3 is a three-dimensional structural diagram of the fixing tube of this utility model.
[0015] In the diagram: 1. Horizontal skeleton tube; 2. Longitudinal skeleton tube; 3. Four-way connector; 4. Fixing tube; 5. First through hole; 6. Limiting block; 7. Limiting hole; 8. First connecting tube; 9. Fixing plate; 10. Fixing base; 11. Second through hole; 12. Second connecting tube; 13. Aquaculture area. Detailed Implementation
[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0017] Please refer to Figures 1 and 3. As can be seen, this utility model provides a technical solution: a novel anti-wind and wave oyster raft structure, including: a transverse skeleton tube 1, a longitudinal skeleton tube 2, and a four-way connector 3. The longitudinal skeleton tube 2 is provided on the outer side of the end of the transverse skeleton tube 1. The transverse skeleton tube 1 and the longitudinal skeleton tube 2 are connected to each other by the four-way connector 3. A fixing tube 4 is provided above the two transverse skeleton tubes 1. A first through hole 5 is opened through the inside of the fixing tube 4. A limiting block 6 is connected to the bottom of the fixing tube 4. A limiting hole 7 is opened through the inside of the limiting block 6. A first connecting tube 8 is connected between the two sets of fixing tubes 4 through the two sets of first through holes 5.
[0018] In this new type of wind and wave resistant oyster raft structure, the first connecting pipe 8 is used to connect two sets of longitudinally distributed fixed pipes 4.
[0019] In Figures 1-3: A fixing plate 9 is installed above the two sets of longitudinal skeleton tubes 2. A fixing seat 10 is installed on the surface of the fixing plate 9. A second through hole 11 is opened through the inside of the fixing seat 10. The four sets of fixing seats 10 are connected by a second connecting pipe 12 through the four sets of second through holes 11. The two adjacent sets of first connecting pipes 8 and the two adjacent sets of second connecting pipes 12 enclose and form a breeding area 13.
[0020] In this novel anti-wind and wave oyster raft structure, the second connecting pipe 12 is located on the surface above the first connecting pipe 8, and the second connecting pipe 12 and the first connecting pipe 8 are staggered.
[0021] In Figures 1-3: the first connecting pipe 8 is longitudinally distributed with the longitudinal skeleton pipe 2, the second connecting pipe 12 is transversely distributed with the transverse skeleton pipe 1, the first connecting pipe 8 and the second connecting pipe 12 have the same size, the first through hole 5 and the second through hole 11 have the same size, the transverse skeleton pipe 1 and the longitudinal skeleton pipe 2 are vertically staggered by the four-way connector 3, the size of the limiting hole 7 matches the size of the transverse skeleton pipe 1, and the fixing pipe 4 and the limiting block 6 are an integral structure.
[0022] In this new type of wind and wave resistant oyster raft structure, the fixing pipes 4 are evenly distributed on the transverse skeleton pipes 1.
[0023] In specific implementation, firstly, the two sets of transverse skeleton tubes 1 are respectively inserted through the corresponding limiting holes 7, so that the two sets of transverse skeleton tubes 1 can pass through the limiting blocks 6, thereby allowing the two sets of transverse skeleton tubes 1 to be installed below the same set of fixing tubes 4. Then, multiple sets of fixing tubes 4 are installed above the two sets of transverse skeleton tubes 1 to fix them in place. Next, multiple sets of fixing plates 9 are installed above the two sets of longitudinal skeleton tubes 2. Multiple sets of four-way connectors 3 are used to vertically and alternately fix the four sets of transverse skeleton tubes 1 and the four sets of longitudinal skeleton tubes 2. At this time, the first connecting tube 8 passes through... Two sets of longitudinal first through holes 5 can pass through two sets of longitudinally distributed fixed pipes 4. When the first connecting pipes 8 are installed between the two sets of longitudinally distributed fixed pipes 4, the second connecting pipe 12 can pass through the four sets of transverse second through holes 11 and the four sets of transversely distributed fixed seats 10. When the second connecting pipe 12 is installed between the transversely distributed fixed seats 10, the first connecting pipes 8 and the second connecting pipes 12 can form an interlaced transverse and longitudinal aquaculture frame. The second connecting pipe 12 is located above the first connecting pipe 8. At this time, oysters can be cultured in the aquaculture area 13.
[0024] Referring to Figures 1-3, a new type of wind and wave resistant oyster raft structure can be formed by the horizontal skeleton tube 1, the vertical skeleton tube 2, the first connecting tube 8, and the second connecting tube 12. This structure improves space utilization compared to the unidirectional oyster raft structure, and is simple in structure, easy to install, and has high strength.
[0025] In summary, when using this novel anti-wave oyster raft structure, firstly, the two sets of transverse skeleton tubes 1 are respectively inserted through the corresponding limiting holes 7, so that the two sets of transverse skeleton tubes 1 can pass through the limiting blocks 6. Thus, the two sets of transverse skeleton tubes 1 can be installed below the same set of fixing tubes 4. Multiple sets of fixing tubes 4 are installed above the two sets of transverse skeleton tubes 1 to fix the two sets of transverse skeleton tubes 1. The second connecting tube 12 is located above the first connecting tube 8. At this time, oysters can be cultivated in the aquaculture area 13. The transverse skeleton tubes 1, longitudinal skeleton tubes 2, first connecting tube 8 and second connecting tube 12 can form a novel anti-wave oyster raft structure, which improves the space utilization rate compared with the unidirectional oyster raft structure. Moreover, the structure is simple, easy to install and has high strength. The contents not described in detail in this description belong to the prior art known to those skilled in the art.
[0026] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A novel wind and wave resistant oyster raft structural component, comprising: A transverse skeleton tube (1), a longitudinal skeleton tube (2), and a four-way connector (3) are characterized in that: a longitudinal skeleton tube (2) is provided on the outer side of the end of the transverse skeleton tube (1), and the transverse skeleton tube (1) and the longitudinal skeleton tube (2) are connected to each other by a four-way connector (3); a fixing tube (4) is provided on the upper part of the two transverse skeleton tubes (1), a first through hole (5) is provided through the interior of the fixing tube (4), a limiting block (6) is connected to the bottom of the fixing tube (4), a limiting hole (7) is provided through the interior of the limiting block (6), a first connecting tube (8) is provided through the two sets of fixing tubes (4) through the two sets of first through holes (5), a fixing plate (9) is installed on the upper part of the two sets of longitudinal skeleton tubes (2), a fixing seat (10) is installed on the surface of the fixing plate (9), a second through hole (11) is provided through the interior of the fixing seat (10), and a second connecting tube (12) is provided through the four sets of fixing seats (10) through the four sets of second through holes (11).
2. The novel wind and wave resistant oyster raft structural component according to claim 1, characterized in that: The two adjacent sets of the first connecting pipe (8) and the two adjacent sets of the second connecting pipe (12) enclose each other to form a breeding area (13).
3. A novel wind and wave resistant oyster raft structural component according to claim 2, characterized in that: The first connecting pipe (8) is longitudinally distributed with the longitudinal skeleton pipe (2), and the second connecting pipe (12) is transversely distributed with the transverse skeleton pipe (1).
4. A novel wind and wave resistant oyster raft structural component according to claim 3, characterized in that: The first connecting pipe (8) and the second connecting pipe (12) are the same size, and the first through hole (5) and the second through hole (11) are the same size.
5. A novel wind and wave resistant oyster raft structural component according to claim 3, characterized in that: The transverse skeleton tube (1) and the longitudinal skeleton tube (2) are vertically staggered by a four-way connector (3).
6. A novel wind and wave resistant oyster raft structural component according to claim 1, characterized in that: The size of the limiting hole (7) matches the size of the transverse skeleton tube (1), and the fixing tube (4) and the limiting block (6) are an integral structure.