Rod piece connecting mechanism and marine ranch net cage system
The design of the rod connection mechanism solves the problem of complex towing and installation of marine ranch cage structures, enabling rapid connection and disassembly between rods, improving assembly efficiency, and reducing transportation and installation costs.
Patent Information
- Application Number
- CN202410636432.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-22
- Publication Date
- 2025-11-25
AI Technical Summary
Existing large marine ranch cage structures are complex towed for transport and installation, and their dimensions are difficult to adjust, leading to construction difficulties.
The rod connection mechanism is adopted, which uses a connection unit composed of a connecting cylinder, guide plate, pin, pull rope and traction component to realize the quick connection and disassembly between rods. The rod connection mechanism includes multiple connection units, each unit is used to connect to one rod. The pin is connected to the traction component through the pull rope. The pin is inserted into the connection cavity of the rod, and the rod connection is stable.
The rod connection mechanism is easy to use, and the connection and disassembly are flexible, which improves assembly efficiency, reduces transportation and installation costs, and enables rapid assembly and flexible adjustment of marine ranch cages.
Smart Images

Figure CN121007172A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of marine ranching equipment technology, specifically to a rod connection mechanism and a marine ranching cage system. Background Technology
[0002] Under the guidance of new development concepts, marine utilization, marine protection, and marine governance are accelerating their transformation from traditional to innovative models, bringing many new opportunities to marine ranching. Marine ranching refers to the captive rearing of artificially introduced marine organisms, especially fish, in near-natural environments using large-scale fishery facilities and systematic management mechanisms in near-shore waters.
[0003] Currently, marine ranching is developing rapidly, with several marine ranches already built and put into use. However, the existing large-scale marine ranching cage structures have large main dimensions, making towing, transportation, and installation cumbersome and complicated, resulting in construction difficulties. Furthermore, the size of the cages is inconvenient to adjust, and the marine ranching cage structures cannot be assembled according to specific needs. Summary of the Invention
[0004] In view of the shortcomings of the prior art described above, the technical problem to be solved by the present invention is to provide a rod connection mechanism and a marine ranch cage system, which can quickly connect rods through the rod connection mechanism and flexibly and quickly assemble them into a cage frame structure.
[0005] To achieve the above objectives, the present invention provides a rod connection mechanism for connecting multiple rods. Each rod has a connecting cavity at its end, and the wall of the connecting cavity has a through-hole. The rod connection mechanism includes multiple connection units, each for connecting to one rod. Each connection unit includes a connecting cylinder, a guide plate, a pin, a pull rope, a traction member, and a traction rope. The connecting cylinder has a pin hole and a traction hole. The guide plate is fixed in the inner hole of the connecting cylinder. The pin is mounted on the guide plate and extends into the pin hole. The pin can move radially along the inner hole of the connecting cylinder to extend out of the pin hole or retract into the pin hole. The traction member is installed in the inner hole of the connecting cylinder and can move axially along the connecting cylinder. The pin is connected to one end of the traction member via the pull rope, and the other end of the traction member is connected to the traction rope. The traction rope extends out of the connecting cylinder from the traction hole. The connection point between the traction rope and the pin is denoted as connection point A, and the connection point with the traction member is denoted as connection point B. The distance L between connection point A and the center of the inner hole of the connecting cylinder is... A Less than the distance L between connection point B and the center of the inner hole of the connecting cylinder B All connecting units are fixedly connected; when the rod connecting mechanism is connected to multiple rods, the connecting tube of the connecting unit is inserted into the connecting cavity of the corresponding rod, and the pin hole is aligned with the connecting socket, and the pin is inserted into the pin hole and the connecting socket.
[0006] Furthermore, the number of pins in the connecting unit and the number of pin holes on the connecting cylinder are both M, where M≥2; each pin is connected to one end of the traction member via a pull rope; the connecting holes on the connecting inner cavity of the rod are also M, and they correspond one-to-one with the M pin holes on the connecting cylinder.
[0007] Furthermore, the connection points A of all pins in all connecting units are located on a positioning circle coaxial with the inner hole of the connecting cylinder, and the connection points B of the traction member are located on a positioning circle coaxial with the inner hole of the connecting cylinder.
[0008] Furthermore, the pins and pin holes are evenly distributed around the axis of the connecting cylinder, and the connecting holes on the connecting inner cavity of the rod are evenly distributed around the axis of the connecting inner cavity.
[0009] Furthermore, the connecting unit also includes an elastic rope loop that is fitted onto all the pull ropes.
[0010] Furthermore, a linear guide structure is provided between the guide plate and the pin of the connecting unit.
[0011] Furthermore, the connecting unit also includes an outer guide cylinder fixedly installed in the connecting cylinder, the traction member is disposed in the inner hole of the outer guide cylinder, the inner wall of the outer guide cylinder is provided with an axial guide groove extending along the axial direction of the connecting cylinder, the traction member is provided with an axial guide block located in the axial guide groove, and the axial guide block slides in the axial guide groove when the traction member moves along the axial direction of the connecting cylinder.
[0012] Furthermore, the inner hole of the outer guide cylinder is conical, the outer surface of the guide block is conical, and the outer surface of the traction member can abut against the inner wall of the outer guide cylinder when it moves away from the pin.
[0013] The present invention also provides a marine ranching cage system, including a cage frame, the cage frame including multiple rods and multiple rod connection mechanisms, the multiple rods being assembled into multiple cubic frame units arranged in a rectangular array, and two adjacent cubic frame units sharing four rods on one surface, each rod having a connecting cavity at both ends, and a through connecting hole on the wall of the connecting cavity, and a rod connection mechanism at each corner of each cubic frame unit connecting three rods.
[0014] Furthermore, it also includes suction piles connected to the bottom of the cage frame, which are used to be inserted into the seabed soil.
[0015] As described above, the rod connection mechanism and marine ranching cage system of the present invention have the following beneficial effects:
[0016] 1. The rod connection mechanism is easy to use and can be set as needed to connect multiple rods. The connection and disassembly between rods are flexible and convenient, which can improve assembly efficiency and ensure stable connection.
[0017] 2. The cage frame of the marine ranching cage system is flexibly assembled from rods and rod connection mechanisms to form multiple square frame units. The rods and rod connection mechanisms can be prefabricated into cage frames and transported in the form of loose parts. Then, cage frames with different spatial structures and sizes can be flexibly assembled on site as needed, thereby effectively improving transportation and installation efficiency, reducing transportation and installation costs, and realizing the full assembly of marine ranching cages. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of a certain embodiment of the rod connection mechanism in this invention.
[0019] Figure 2 for Figure 1 A schematic diagram of the connecting cylinder in the rod connection mechanism.
[0020] Figure 3 for Figure 1 A schematic diagram of the structure of the rod connection mechanism located inside the connecting cylinder.
[0021] Figure 4 This is a schematic diagram of another embodiment of the rod connection mechanism in the present invention.
[0022] Figure 5 This is a schematic diagram of the structure of the cage frame of the marine ranching cage system in this invention.
[0023] Figure 6 for Figure 5 Enlarged view of circle A.
[0024] Figure 7 for Figure 5 Side view.
[0025] Explanation of icon numbers
[0026] 1. Linkage Mechanism
[0027] 2. Connection Unit
[0028] 21 Connecting cylinder
[0029] 211 Pin Hole
[0030] 212 Traction Hole
[0031] 22 Guide Plate
[0032] 221 Radial guide groove
[0033] 23. Pin
[0034] 231 Radial guide slider
[0035] 24. Pull rope
[0036] 25 Traction components
[0037] 251 Axial Guide Block
[0038] 26. Outer guide tube
[0039] 261 Connecting plate
[0040] 27. Towing rope
[0041] 28 Elastic rope loops
[0042] 29. Guide rope cylinder
[0043] 3 rods
[0044] 31 Connection Socket
[0045] 4 cubic frame units
[0046] 5 Suction piles Detailed Implementation
[0047] The following specific embodiments illustrate the implementation of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification.
[0048] It should be understood that the structures, proportions, sizes, etc., depicted in the accompanying drawings of this specification are merely for illustrative purposes to aid those skilled in the art in understanding and reading the content disclosed herein, and are not intended to limit the conditions under which the invention can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in proportions, or adjustments to the size, without affecting the effects and objectives achieved by the invention, should still fall within the scope of the technical content disclosed herein. Furthermore, the terms such as "upper," "lower," "left," "right," and "middle" used in this specification are merely for clarity and are not intended to limit the scope of the invention. Changes or adjustments to their relative relationships, without substantially altering the technical content, should also be considered within the scope of the invention's implementation.
[0049] See Figures 1 to 7This invention provides a rod connection mechanism 1 for connecting multiple rods 3. Each rod 3 has a connecting cavity at its end, and a through connecting hole 31 is provided on the wall of the connecting cavity. The rod connection mechanism 1 includes multiple connecting units 2, each connecting unit 2 for connecting to one rod 3. Each connecting unit 2 includes a connecting cylinder 21, a guide plate 22, a pin 23, a pull rope 24, a traction member 25, and a traction rope 27. The connecting cylinder 21 has a pin hole 211 and a traction hole 212. The guide plate 22 is fixed in the inner hole of the connecting cylinder 21, and the pin 23 is mounted on the guide plate 22 and extends into the pin hole. In section 211, pin 23 can move radially along the inner hole of connecting cylinder 21 to extend out of pin hole 211 or retract into pin hole 211; traction member 25 is installed in the inner hole of connecting cylinder 21 and can move axially along connecting cylinder 21. Pin 23 is connected to one end of traction member 25 via pull rope 24, and the other end of traction member 25 is connected to traction rope 27. Traction rope 27 extends out of connecting cylinder 21 from traction hole 212. The connection point between traction rope 27 and pin 23 is denoted as connection point A, and the connection point with traction member 25 is denoted as connection point B. The distance L from connection point A to the center of the inner hole of connecting cylinder 21 is... A Less than the distance L from connection point B to the center of the inner hole of connecting cylinder 21 B All connecting cylinders 21 of the connecting units 2 are fixedly connected; when the rod connecting mechanism 1 is connected to multiple rods 3, the connecting cylinder 21 of the connecting unit 2 is inserted into the connecting cavity of the corresponding rod 3, and the connecting cylinder 21 and the connecting cavity have the same shape and size, and the two are fitted with a clearance. The pin hole 211 is aligned with the connecting insertion hole 31, and the pin 23 is inserted into the pin hole 211 and the connecting insertion hole 31.
[0050] The number of connecting units 2 and the angle between connecting cylinders 21 in the rod connecting mechanism 1 of the present invention are set according to the rods 3 that need to be connected. See also Figures 1 to 3 The rod connection mechanism 1 shown has two connecting units 2, and the connecting cylinders 21 of the two connecting units 2 are coaxial and integral. This rod connection mechanism 1 can be used to connect two rods 3 that need to be coaxially arranged. See also Figure 4 As shown, the connecting unit 2 in the rod connecting mechanism 1 consists of four connecting units 2, in which the connecting cylinders 21 of two connecting units 2 are coaxial, and the connecting cylinders 21 of the other two connecting units 2 are perpendicular to each other and simultaneously perpendicular to the two coaxial connecting cylinders 21. The rod connecting mechanism 1 can be used to connect four rods 3.
[0051] The main working principle of the rod connection mechanism 1 of the present invention is as follows: Before installation, the pins 23 in the connection unit 2 are all inserted into the pin holes 211 of the connection cylinder 21. The connection cylinder 21 of each connection unit 2 of the rod connection mechanism 1 is inserted into the connection cavity at the corresponding end of the rod 3, and the pin holes 211 are aligned with the connection insertion holes 31. Meanwhile, the traction hole 212 and the traction rope 27 are located outside the connection cavity. (See attached diagram) Figure 6 As shown. Then, pull the traction rope 27 forcefully. The traction rope 27 pulls the traction component 25 to move axially in a straight line away from the pin 23. Since the distance L from the connection point A to the center of the inner hole of the connecting cylinder 21 is... A Less than the distance L from connection point B to the center of the inner hole of connecting cylinder 21 B At this time, the pull rope 24 will pull the pin 23 and apply a radial force along the inner hole of the connecting cylinder 21 to the pin 23, thereby extending the pin 23 out of the pin hole 211 and inserting it into the connecting socket 31, thus connecting the connecting cylinder 21 and the rod 3. At this time, the traction rope 27 can be tied tightly to prevent the pin 23 from retracting inward and disengaging from the connecting socket 31, thereby achieving a stable connection between the rod 3 and the rod connecting mechanism 1. Multiple rods 3 can be fixedly connected through the rod connecting mechanism 1. When disassembly is required, the traction rope 27 is released, and the pin 23 is pressed inward to disengage it from the connecting socket 31. It is flexible and convenient to use. The rod connecting mechanism 1 of the present invention has a simple structure, is easy to use, and can connect and disassemble rods 3.
[0052] See Figure 1 Figure 3 In this embodiment, as a preferred design, the number of pin holes 211 on the connecting cylinder 21 and the number of pins 23 on the connecting unit 2 are both M, where M≥2. Each pin 23 extends into the corresponding pin hole 211. The number of connecting holes 31 on the connecting inner cavity of the rod 3 is also M. Furthermore, the number of pin holes 211 and connecting units 2 are both four, evenly distributed around the axis of the connecting cylinder 21. The four connecting holes 31 on the connecting inner cavity of the rod 3 are evenly distributed around the axis of the connecting inner cavity, thereby facilitating the alignment of the pin holes 211 and the connecting holes 31 when the connecting cylinder 21 is inserted into the rod 3.
[0053] See Figure 3 In this embodiment, as a preferred design, the connection points A of all the pins 23 in all the connecting units 2 are located on a positioning circle coaxial with the inner hole of the connecting cylinder 21, and all the connection points B on the traction member 25 are also located on a positioning circle coaxial with the inner hole of the connecting cylinder 21. In this way, the traction member 25 can pull all the pins 23 to move synchronously when it moves. The connection points A and B at both ends of a pull rope 24 are located on a radial plane passing through the axis of the inner hole of the connecting cylinder 21, which can better pull the pins 23.
[0054] See Figure 3In this embodiment, as a preferred design, the connecting unit 2 further includes an elastic rope loop 28. The elastic rope loop 28 can be made of rubber band and has a certain elasticity. The elastic rope loop 28 is fitted over all the pull ropes 24, meaning that all the pull ropes 24 pass through the elastic rope loop 28 and are in contact with it. The elastic rope loop 28 is used to restrain multiple pull ropes 24, providing a slight convergence effect. The pull ropes 24 are preferably made of a plastic material with a certain degree of elasticity, capable of providing elastic tension.
[0055] See Figure 3 In this embodiment, as a preferred design, the guide plate 22 is provided with a radial guide groove 221 extending radially along the inner hole of the connecting cylinder 21, and a radial guide slider 231 is fixedly provided on the pin 23. The radial guide slider 231 is disposed in the radial guide groove 221 and can slide along the radial guide groove 221, thereby guiding the radial linear movement of the pin 23. The radial guide groove 221 and the radial guide slider 231 constitute a linear guide structure between the guide plate 22 and the pin 23. Of course, the linear guide structure can also be set in other forms.
[0056] See Figure 3 In this embodiment, as a preferred design, the connecting unit 2 further includes an outer guide cylinder 26 fixedly installed in the connecting cylinder 21. The outer guide cylinder 26 is conical and is fixedly connected to the connecting cylinder 21 via a connecting plate 261 on its outer side. A traction member 25 is disposed in the inner hole of the outer guide cylinder 26. The inner wall of the outer guide cylinder 26 is provided with an axial guide groove (not shown in the figures) extending axially along the connecting cylinder 21. The traction member 25 is provided with an axial guide block 251 located in the axial guide groove. When the traction member 25 moves axially along the connecting cylinder 21, the axial guide block 251 slides in the axial guide groove, thereby guiding the movement of the traction member 25. Furthermore, since the inner hole of the outer guide cylinder 26 is conical and the outer surface of the traction member 25 is also conical, when the traction member 25 moves away from the pin 23, its outer surface can abut against the inner wall of the outer guide cylinder 26, thereby restricting the position of the traction member 25. At this time, the pin 23 can extend out of the pin hole 211 and can no longer move outward.
[0057] See Figure 1 , Figure 3 and Figure 4 In this embodiment, as a preferred design, the connecting unit 2 further includes a rope guide tube 29, which is fixed inside the connecting tube 21. The traction rope 27 passes through the rope guide tube 29, and the rope guide tube 29 serves to guide the position of the traction rope 27. The two connecting units 2 coaxially arranged in the rod connecting mechanism 1 can share a single rope guide tube 29, and when the connecting tubes 21 of the two units are integral, they can share a single traction hole 212.
[0058] See Figures 5 to 7The present invention also provides a marine ranching cage system, including a cage frame, and also conventional structures such as a net (not shown in the drawings) and a float. The cage frame includes multiple rods 3 and multiple rod connecting mechanisms 1. The multiple rods 3 are assembled into multiple cubic frame units 4 arranged in a rectangular array, and two adjacent cubic frame units 4 share four rods 3 on one face, that is, four horizontal rods 3, four vertical rods 3, and four vertical bars 3 form the 12 sides of a cube, forming a cubic frame unit 4. See [reference needed]. Figure 5 As shown, the cubic frame units 4 are arranged horizontally, and adjacent cubic frame units 4 share two longitudinal rods 3 and two vertical rods 3 on one surface. Each end of the rod 3 has a connecting cavity, and the wall of the connecting cavity has a through connecting hole 31. The rod 3 can also be a hollow tube. Each corner of the cubic frame unit 4 has a rod connecting mechanism 1 that connects three rods 3, and the rod connecting mechanism 1 has four connecting units 2, namely… Figure 4 The rod connection mechanism 1 shown has two connecting units 2 whose connecting cylinders 21 are coaxial, and two other connecting units 2 whose connecting cylinders 21 are perpendicular to each other and simultaneously perpendicular to the two coaxial connecting cylinders 21. Since two adjacent cubic frame units 4 share four rods 3 on one surface, the rod connection mechanism 1 set between the two cubic frame units 4 connects the rods 3 of both cubic frame units 4. The netting is set in the internal space of the cubic frame unit 4 and connected to the cubic frame unit 4, and the space inside the cubic frame unit 4 constitutes the breeding space.
[0059] The cage frame is assembled from rods 3 and rod connecting mechanism 1. Rods 3 and rod connecting mechanism 1 can be prefabricated and transported in the form of loose parts for easy transportation. They can then be flexibly assembled on site as needed. Some cubic frame units 4 can also be added or removed according to changes in requirements.
[0060] See Figure 5 In this embodiment, the marine ranching cage system also includes suction piles 5 connected to the bottom of the cage frame. The suction piles 5 can be connected to the bottom of the cage frame by ropes. The suction piles 5 are used to be inserted into the seabed soil to anchor the cage frame. The cage frame is provided with buoyancy by floats and floats in the seawater.
[0061] As can be seen from the above, the rod connection mechanism and the marine ranching cage system of the present invention have the following beneficial effects:
[0062] 1. The rod connection mechanism 1 is easy to use and can be set as needed to connect multiple rods 3. The connection and disassembly between rods 3 are flexible and convenient, which can improve assembly efficiency and ensure stable connection.
[0063] 2. The cage frame of the marine ranch cage system is flexibly assembled by rods 3 and rod connecting mechanism 1 to form multiple square frame units. The cage frame can be prefabricated by rods 3 and rod connecting mechanism 1 and transported in the form of loose parts. Then, cage frames with different spatial structures and sizes can be flexibly assembled on site as needed, which can effectively improve transportation and installation efficiency, reduce transportation and installation costs, and realize the full assembly of marine ranch cages.
[0064] In summary, this invention effectively overcomes the various shortcomings of the prior art and has high industrial application value.
[0065] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.
Claims
1. A rod connection mechanism for connecting multiple rods (3), wherein the ends of the rods (3) have connecting cavities, and the walls of the connecting cavities are provided with through connecting holes (31), characterized in that: The rod connection mechanism includes multiple connection units (2), each connection unit (2) being used to connect to a rod (3). The connection unit (2) includes a connecting cylinder (21), a guide plate (22), a pin (23), a pull rope (24), a traction member (25), and a traction rope (27). The connecting cylinder (21) is provided with a pin hole (211) and a traction hole (212). The guide plate (22) is fixed in the inner hole of the connecting cylinder (21). The pin (23) is installed on the guide plate (22) and extends into the pin hole (211). The pin (23) can move linearly along the radial direction of the inner hole of the connecting cylinder (21) to... The pin (23) extends out of the pin hole (211) or retracts into the pin hole (211); the traction member (25) is installed in the inner hole of the connecting cylinder (21) and can move along the axial direction of the connecting cylinder (21). The pin (23) is connected to one end of the traction member (25) through the pull rope (24), and the other end of the traction member (25) is connected to the traction rope (27). The traction rope (27) extends out of the connecting cylinder (21) from the traction hole (212). The connection point between the traction rope (27) and the pin (23) is recorded as connection point A, and the connection point with the traction member (25) is recorded as connection point B. The distance L between connection point A and the center of the inner hole of the connecting cylinder (21) is... A The distance L between connection point B and the center of the inner hole of connecting cylinder (21) is less than the distance between connection point B and the center of the inner hole. B All connecting units (2) have their connecting cylinders (21) fixedly connected; when the rod connecting mechanism is connected to multiple rods (3), the connecting cylinder (21) of the connecting unit (2) is inserted into the connecting cavity of the corresponding rod (3), and the pin hole (211) is aligned with the connecting insertion hole (31), and the pin (23) is inserted into the pin hole (211) and the connecting insertion hole (31).
2. The rod connection mechanism according to claim 1, characterized in that: The number of pins (23) in the connecting unit (2) and the number of pin holes (211) on the connecting tube (21) are both M, M≥2; each pin (23) is connected to one end of the traction member (25) through a pull rope (24); the connecting holes (31) on the connecting cavity of the rod (3) are also M, and correspond one-to-one with the M pin holes (211) on the connecting tube (21).
3. The rod connection mechanism according to claim 2, characterized in that: All connection points A of all pins (23) in all connecting units (2) are located on a positioning circle coaxial with the inner hole of the connecting cylinder (21), and all connection points B of the traction member (25) are located on a positioning circle coaxial with the inner hole of the connecting cylinder (21).
4. The rod connection mechanism according to claim 2, characterized in that: The pin (23) and pin hole (211) are evenly distributed around the axis of the connecting cylinder (21), and the connecting insertion hole (31) on the connecting inner cavity of the rod (3) is evenly distributed around the axis of the connecting inner cavity.
5. The rod connection mechanism according to claim 2, characterized in that: The connecting unit (2) also includes an elastic rope loop (28) which is fitted onto all the pull ropes (24).
6. The rod connection mechanism according to claim 1, characterized in that: A linear guide structure is provided between the guide plate (22) and the pin (23) of the connecting unit (2).
7. The rod connection mechanism according to claim 1, characterized in that: The connecting unit (2) further includes an outer guide cylinder (26) fixedly installed in the connecting cylinder (21). The traction member (25) is disposed in the inner hole of the outer guide cylinder (26). The inner wall of the outer guide cylinder (26) is provided with an axial guide groove (261) extending along the axial direction of the connecting cylinder (21). The traction member (25) is provided with an axial guide block (251) located in the axial guide groove (261). When the traction member (25) moves along the axial direction of the connecting cylinder (21), the axial guide block (251) slides in the axial guide groove (261).
8. The rod connection mechanism according to claim 7, characterized in that: The inner hole of the outer guide cylinder (26) is conical, the outer side of the guide block is conical, and the outer side of the traction member (25) can abut against the inner wall of the outer guide cylinder (26) when it moves away from the pin (23).
9. A marine ranching cage system, characterized in that: The cage includes a wire mesh frame, which includes multiple rods (3) and multiple rod connection mechanisms as described in any one of claims 1 to 8. The multiple rods (3) are assembled into multiple cubic frame units (4) arranged in a rectangular array, and two adjacent cubic frame units (4) share four rods (3) on one surface. Both ends of the rods (3) are provided with connecting cavities, and the walls of the connecting cavities are provided with through connecting holes (31). Each corner of the cubic frame unit (4) is provided with a rod connection mechanism to connect three rods (3).
10. The marine ranching cage system according to claim 9, characterized in that: It also includes suction piles (5) connected to the bottom of the cage frame, which are used to be inserted into the seabed soil.