Breeding rod and breeding row

By designing grooves and convex structures on the aquaculture poles and combining them with buoyancy components and support systems, the problems of people being unable to walk and poor anti-slip performance in traditional marine aquaculture equipment are solved, achieving efficient and safe marine aquaculture operations.

CN223463509UActive Publication Date: 2025-10-24HESHAN ZEFENG BREEDING EQUIP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423053738.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-11
Publication Date
2025-10-24
Estimated Expiration
2034-12-11

AI Technical Summary

Technical Problem

Traditional marine aquaculture equipment lacks a walking platform, has poor anti-slip performance, and cannot adapt to harsh marine environments, resulting in low operating efficiency and poor safety.

Method used

A farming pole with grooves and convex patterns is designed, combined with a buoyancy component and a bracket system to provide an anti-slip structure and stable support to adapt to different scales and buoyancy requirements.

Benefits of technology

It improves operation safety and convenience, enhances equipment stability and adaptability, reduces operating costs and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223463509U_ABST
    Figure CN223463509U_ABST
Patent Text Reader

Abstract

The utility model discloses a breeding pole and a breeding row, and relates to the field of mariculture, the breeding pole comprises a breeding pole body, the upper surface of the breeding pole body is provided with a plurality of integrally formed grooves and raised lines; the boss is arranged on the side face of the breeding rod body, and the boss and the breeding rod body are integrally formed; the binding openings are located in the side face of the breeding rod body, and the multiple binding openings are used for binding breeding ropes. The breeding row comprises a plurality of breeding rods, a buoyancy assembly, a support and a pedal, the breeding row can be customized according to the scale and buoyancy requirements of breeding operation through the buoyancy pipe, the floating barrel, the support and the pedal which are arranged in different configurations, the requirements in different operation environments are met, operators can walk on the breeding row safely and conveniently, and the working efficiency is improved. The stability and buoyancy support of cultured objects under different conditions can be ensured, and the device is widely applicable to culture modes with small-scale, large-scale and high-buoyancy requirements.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to the field of mariculture, and particularly relates to a culture rod and a culture row. BACKGROUND

[0002] In the field of mariculture, especially in the cultivation of oysters, shellfish and other marine products, the common cultivation method mainly relies on ropes to bind the cultivated objects on the pipelines or thick ropes. The cultivation equipment is usually composed of simple floating racks, cultivation ropes and supporting objects. The existing cultivation method has several significant deficiencies:

[0003] 1. Personnel cannot walk on the equipment: the design of most traditional cultivation row equipment lacks an effective walking platform, which results in that the staff can only jump or carefully walk on the cultivation equipment for inspection and operation during the cultivation process. In order to check the cultivation state or maintain the cultivated objects, the personnel often need to work in the water, which not only increases the risk of operation, but also reduces the work efficiency.

[0004] 2. Poor anti-skid performance: since the surface of the culture rod is mostly smooth, the staff is prone to slipping when walking on the culture rod, which increases the risk of accidents during operation. The existing culture rod and floating rack design fails to well consider the anti-skid demand, which increases the difficulty of operation of the personnel in bad weather or in a large wind wave.

[0005] 3. Large influence of wind wave: the traditional cultivation equipment is mostly a simple floating rack structure, which lacks stability design for adapting to the harsh sea environment. In a large wind wave sea area, the existing equipment is easily affected by the wind wave, which results in unstable equipment or easy falling of the cultivated objects.

[0006] 4. Low operation efficiency: the traditional cultivation row design lacks a convenient walking platform or supporting structure when the personnel need to frequently move, so the staff must very carefully walk on the cultivation row, which affects the operation efficiency and the daily management of cultivation.

[0007] Therefore, the existing marine cultivation equipment has great defects in safety, convenience, adaptability and the like, and there is an urgent need for a cultivation equipment that can provide a walking platform, effectively improve the anti-skid performance and adapt to the harsh sea environment. SUMMARY

[0008] The utility model aims at providing a culture rod and a culture row to solve the problems of personnel unable to walk, inconvenient operation and poor anti-skid performance in the traditional cultivation equipment. The culture row proposed by the utility model can enable the staff to walk on the culture rod and improve the safety and convenience, and by optimizing the surface and side structure of the culture rod, better supporting force, stability and anti-skid function can be provided, and flexible adjustment according to different cultivation demands can be realized.

[0009] In order to achieve the above object, the utility model provides the following technical scheme:

[0010] In the first aspect, the utility model provides a kind of breeding pole, comprising:

[0011] Breeding pole body, upper surface is equipped with multiple integrally formed recess and ridge;

[0012] Boss, it is set to the side of the breeding pole body and integrally formed with breeding pole body;

[0013] Binding mouth, located the side of the breeding pole body, multiple binding mouths are used to bind breeding rope.

[0014] Preferably, the recess is integrally formed with the pipe wall of the breeding pole body by hot melt film pressing.

[0015] Preferably, the recess and the ridge are staggered and distributed on the upper surface of the breeding pole body in matrix array.

[0016] Preferably, the recess and the ridge staggered and distributed form several anti-skid blocks on the upper surface of the breeding pole body, and the anti-skid blocks are one or several patterns selected from square, rectangle and circle.

[0017] Preferably, the breeding pole body is provided with a boss on one side or both sides, and the side of the breeding pole body is provided with at least one boss.

[0018] Preferably, the breeding pole body is a hollow pole body with a cross section in the shape of a sun.

[0019] In the second aspect, the utility model further provides a breeding row, comprising: a buoyancy assembly and multiple breeding poles;

[0020] The buoyancy assembly is a floating rack connected with the multiple breeding poles by a connecting piece;The upper surface of each breeding pole is provided with multiple integrally formed recesses and ridges, forming an anti-skid structure.

[0021] Preferably, the floating rack comprises multiple buoyancy pipes connected in a preset arrangement;The multiple buoyancy pipes are parallel to each other and connected and fixed by several straight-through and elbow joints;Each breeding pole is fixed on the floating rack by binding, and the breeding pole is perpendicular to the multiple buoyancy pipes on the floating rack.

[0022] In the third aspect, the utility model further provides a breeding row, comprising: a buoyancy assembly and multiple breeding poles;

[0023] The buoyancy assembly is a floating rack composed of double rows of buoyancy pipes, and the breeding poles are fixed on the floating rack by binding;

[0024] The double rows of buoyancy pipes of the floating rack are fixed by a support, and a tread plate is laid around and in the middle of the floating rack, and the tread plate is laid on the top of the support.

[0025] Preferably, the support is provided with buoyancy pipe holes for the parallel passage of double-row buoyancy pipes, and the top of the support is provided with a laying plane for the laying of the footboards.

[0026] Preferably, each row of buoyancy pipes of the floating rack is arranged in a preset arrangement mode and is fixed by connecting a plurality of straight pipes and elbows; and the culture poles are vertically bound and fixed to the plurality of buoyancy pipes on the floating rack.

[0027] In a fourth aspect, the utility model also provides a culture row, comprising a floating bucket, a footboard and a culture pole, the culture row bottom is composed of the floating bucket, the longitudinal footboard and the longitudinal culture pole are fixed on the floating bucket and form a bottom layer, and the transverse footboard and the transverse culture pole are laid on the bottom layer and form the culture row.

[0028] Preferably, the floating bucket, the connected footboard and the culture pole are fixed through the support, so as to ensure the stability and buoyancy support of the culture row and be suitable for the culture of heavy marine products.

[0029] In the above technical solution, the culture pole and the culture row provided by the utility model have the following beneficial effects:

[0030] 1. Strong adaptability, capable of meeting different scales and culture requirements. The culture pole and the culture row of the utility model can be customized according to different scale culture operations and are suitable for small-scale culture, medium-scale culture and large-scale culture with high buoyancy requirements. Through the adjustable buoyancy assembly and the detachable or adjustable footboard module, the culture row can flexibly cope with different marine environments and operation intensities, thereby realizing wide application. Whether it is daily culture operation or heavy marine product culture, stable support and sufficient buoyancy can be provided, so as to ensure the smooth progress of culture work.

[0031] 2. Improved safety and convenience of culture operation. The culture pole and the footboard of the utility model have an anti-slip design, so that the culture personnel can walk more safely during operation, reducing the risk of slipping. Especially in culture operations that often require walking, the footboard is laid on the top of the support, providing a stable and fast walking path for the culture personnel, thereby reducing the safety hazards caused by unstable ground.

[0032] 3. Strengthened buoyancy support, suitable for different buoyancy requirements. The culture pole and the culture row of the utility model adopt buoyancy support components such as buoyancy pipes and floating buckets, and the culture row of the utility model can provide different levels of buoyancy according to culture requirements. For culture environments requiring high buoyancy, the floating bucket system designed at the bottom enhances the stability and carrying capacity of the culture row, which can meet the demand of culture of heavy marine products. In comparison, the culture row with low buoyancy requirement provides economical and effective support through the optimized buoyancy pipe structure.

[0033] 4. Strong structural stability, suitable for various marine environments. The structure of the breeding rod and breeding row of the utility model pays attention to enhancing stability, and the configuration of multiple supports effectively fixes the components such as the buoyancy tube, the floating bucket and the pedal, thereby ensuring the stability of the breeding row in the marine environment. Even in relatively severe sea conditions, such as strong wind and tide change, the breeding row can still maintain sufficient buoyancy and stability, reducing the risk of damage or sinking of the breeding row due to insufficient buoyancy or loose structure, thereby reducing downtime or loss caused by operation safety problems through improving stability and safety.

[0034] 5. Low cost and high efficiency, improving breeding efficiency and production benefit. The breeding rod and breeding row of the utility model adopt simple buoyancy tube design for small-scale breeding operation, which is low in material cost and simple in structure, thereby reducing the initial investment of breeding enterprises and lowering operation cost. For large-scale or high buoyancy requirement breeding operation, although the equipment structure is more complex, through modular design, it is convenient to assemble and disassemble, and related configurations can be selectively upgraded or increased according to requirements, thereby avoiding unnecessary resource waste. The breeding row can be efficiently applied to various breeding modes, thereby increasing the flexibility and production benefit of operation. Breeding personnel can adjust the layout of the breeding row according to actual needs, adapt to different breeding scales and operation conditions, and improve overall productivity.

[0035] 6. Enhancing operation space and improving operation flexibility. For breeding rows requiring large activity space, the utility model adopts multiple pedal modules to improve the operation space and personnel activity range of the breeding row. Breeding personnel can move conveniently according to needs, improve operation flexibility, and complete various operations in a short time. Especially the combination of double-row buoyancy tube design and pedal module ensures the safety and comfort of personnel walking, and further improves work efficiency.

[0036] In summary, the breeding rod and breeding row structure provided by the utility model are reasonable in structure and innovative in design, and have high adaptability, high stability and high safety. Through the design of buoyancy components, support systems and pedals with different configurations, not only the environmental adaptability of breeding operation is optimized, but also the operation efficiency is effectively improved, the safety risk is reduced, and the production benefit is improved. Whether it is small-scale breeding or large-scale, high buoyancy requirement breeding operation, significant economic and operation benefits can be obtained, and it has good market prospect. BRIEF DESCRIPTION OF DRAWINGS

[0037] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments will be briefly introduced as follows. Obviously, the drawings in the following description only represent some embodiments described in the present application, and other drawings can also be obtained by those skilled in the art based on these drawings.

[0038] Figure 1 It is a three-dimensional structure schematic view of the breeding rod of the present application.

[0039] Figure 2 It is a top view of the breeding rod of the present application.

[0040] Figure 3 It is a cross-sectional view of the breeding rod of the present application.

[0041] Figure 4 It is a three-dimensional structure schematic view of the breeding row of the first embodiment of the present application.

[0042] Figure 5 It is a bottom view of the breeding row of the first embodiment of the present application.

[0043] Figure 6 It is a three-dimensional structure schematic view of the breeding row of the second embodiment of the present application.

[0044] Figure 7 It is a bottom view of the breeding row of the second embodiment of the present application.

[0045] Figure 8 It is a side view of the breeding row of the second embodiment of the present application.

[0046] Figure 9 It is a three-dimensional structure schematic view of the support in the breeding row of the second embodiment of the present application.

[0047] Figure 10 It is a three-dimensional structure schematic view of the breeding row of the third embodiment of the present application.

[0048] Figure 11 It is a bottom view of the breeding row of the third embodiment of the present application.

[0049] Figure 12 It is a top view of the breeding row of the third embodiment of the present application.

[0050] Figure 13 It is a side view of the breeding row of the third embodiment of the present application.

[0051] Figure 14 It is a three-dimensional structure schematic view of the breeding row of the fourth embodiment of the present application.

[0052] Figure 15 Figure 4 is a bottom view of the breeding row according to the fourth embodiment of the present application.

[0053] Figure 16 Figure 4 is a bottom view of the breeding row according to the fourth embodiment of the present application.

[0054] Figure 17 Figure 4 is a bottom view of the breeding row according to the fourth embodiment of the present application.

[0055] Figure 18 Figure 5 is a perspective view of the breeding row according to the fifth embodiment of the present application.

[0056] Figure 19 Figure 5 is a perspective view of the breeding row according to the fifth embodiment of the present application.

[0057] Figure 20 Figure 5 is a perspective view of the breeding row according to the fifth embodiment of the present application.

[0058] Figure 21 Figure 5 is a perspective view of the breeding row according to the fifth embodiment of the present application.

[0059] Figure 22 Figure 6 is a perspective view of the breeding row according to the sixth embodiment of the present application.

[0060] Figure 23 Figure 6 is a perspective view of the breeding row according to the sixth embodiment of the present application.

[0061] Figure 24 Figure 6 is a perspective view of the breeding row according to the sixth embodiment of the present application.

[0062] Figure 25 Figure 6 is a perspective view of the breeding row according to the sixth embodiment of the present application.

[0063] Reference signs:

[0064] 1, breeding rod; 11, breeding rod body; 12, groove; 13, convex; 14, anti-skid block; 15, boss; 16, binding port; 17, reinforcing rib; 2, buoyancy assembly; 21, floating frame; 22, buoyancy pipe, 23, floating barrel; 4, straight-through; 5, elbow; 6, connecting piece; 7, support; 71, buoyancy pipe hole; 72, placing plane; 8, pedal. DETAILED DESCRIPTION

[0065] In order to make the technical personnel in the art better understand the technical scheme of the present application, the preferred detailed introduction of the present application will be made below in combination with the drawings.

[0066] Due to the traditional breeding mode is mostly used rope binding method, usually through the rope binding on the pipeline or rope to support the breeding. Because these binding methods need to go down to the water for daily breeding state inspection and maintenance, and personnel can not walk on the breeding equipment, causing the operation is inconvenient and hidden trouble. At the same time, the existing breeding equipment does not have good anti-skid function, increase the risk of operating personnel. The utility model aims at providing a new breeding pole and breeding row, solve the problem of personnel can not walk, operation is inconvenient in the traditional breeding mode. Through the surface and side of the breeding pole are innovatively designed, so that personnel can walk on the breeding pole, and provide enough stability and safety in the breeding process.

[0067] The utility model provides a kind of breeding pole and breeding row, can solve the problem of personnel can not walk, operation is inconvenient and poor anti-skid performance in traditional breeding equipment. The utility model provides a kind of breeding row, can let staff walk on breeding pole 1 and improve safety and convenience, by optimizing the surface and side structure of breeding pole 1, better supporting force, stability and anti-skid function can be provided, and can be flexibly adjusted according to different breeding needs.

[0068] Some embodiments of the present application will be described in detail below with reference to the accompanying drawings. In the case of no conflict, the following examples and features in examples can be combined with each other.

[0069] As shown in Figure 1 and Figure 2 The utility model discloses a kind of breeding pole 1, including breeding pole body 11, boss 15 and binding mouth 16;The upper surface of the breeding pole body 11 is equipped with a plurality of one-piece recess 12 and ridge 13, the recess 12 is integrally formed with the pipe wall of breeding pole body 11 by hot melt film pressing, the recess 12 and ridge 13 are staggered distribution in matrix array on the upper surface of breeding pole body 11, the recess 12 and ridge 13 of staggered distribution form several anti-skid blocks 14 on the upper surface of the breeding pole body 11, the anti-skid block 14 is one or several graphics consisting of square, rectangle, circle.In the embodiment, as shown in Figure 1 The anti-skid block 14 is rectangle, and the recess 12 and ridge 13 are staggered distribution in matrix array.

[0070] In the embodiment, the recess 12 is formed by hot melt film pressing in the production process of breeding pole 1 product, and the ridge 13 is integrally formed with the pipe wall of breeding pole 1. By the combination of recess 12 and ridge 13, the anti-skid block 14 structure with anti-skid effect is formed on the surface of breeding pole 1, which can effectively reduce the risk of operating personnel slipping and fall, and improve safety.

[0071] As shown in Figure 1 and Figure 3As shown, the culture rod body 11 is a hollow rod body with a cross-section in the shape of a sun, and a reinforcing rib 17 is arranged in the middle of the hollow rod body, see Figures 1 to 3 As shown, the boss 15 is arranged on the side of the culture rod body 11 and is integrally formed with the culture rod body 11. One side or both sides of the culture rod body 11 are provided with the boss 15, and at least one boss is arranged on the side of the culture rod body 11. In this embodiment, the boss 15 is a boss arranged on one side of the culture rod body 11.

[0072] In this embodiment, the boss 15 arranged on the side of the culture rod 1 can be adjusted according to the wind and wave conditions of the culture sea area. More bosses 15 can be designed in areas with larger wind and waves to provide stronger support. The boss 15 can be located on one side or both sides of the culture rod body 11 of the culture rod 1, and the specific position and number can be flexibly adjusted according to actual needs.

[0073] Referring to Figures 1 to 3 As shown, the binding port 16 is located on the side of the culture rod body 11, and a plurality of binding ports 16 are used to bind the culture ropes. The boss 15 on the side of the culture rod body 11 is provided with a plurality of binding ports 16 for binding ropes. During the culture process, the staff can bind the ropes at the binding port 16 to ensure that the cultured creatures (such as oysters, shellfish, etc.) are fixed on the culture rod 1. The binding port 16 can be formed by stamping or machining in the later stage.

[0074] According to different culture needs, the culture rod 1 is combined with the floating frame to form different types of culture rows, specifically:

[0075] As Figure 4 and Figure 5 As shown, the first embodiment of the utility model further provides a culture row, comprising: a buoyancy assembly 2 and a plurality of culture rods 1. The buoyancy assembly 2 is a floating frame 21 connected with a plurality of culture rods 1 through a connecting piece 6; a plurality of integrally formed grooves 12 and ridges 13 are arranged on the upper surface of each culture rod 1, forming an anti-skid structure.

[0076] In this embodiment, the floating frame 21 comprises a plurality of buoyancy pipes 22 connected in a predetermined arrangement; the plurality of buoyancy pipes 22 are parallel to each other and are connected and fixed by a plurality of straight-through pipes 4 and elbows 5; each culture rod 1 is fixed on the floating frame 21 by binding, and the culture rod 1 is perpendicular to the plurality of buoyancy pipes 22 on the floating frame 21.

[0077] The culture row of this embodiment is suitable for small-scale culture. In this way, the culture rod 1 is fixed on the floating frame 21 by binding, and the floating frame 21 is composed of a plurality of straight-through pipes 4, elbows 5 and buoyancy pipes 22. The advantage of this way is that the cost is relatively low, and the staff needs to be careful when walking on the culture rod.

[0078] AsFigures 6 to 8 As shown, the second embodiment of the present invention further provides an aquaculture row, comprising: a buoyancy assembly 2 and a plurality of aquaculture poles 1. The buoyancy assembly 2 is a floating frame 21 composed of two rows of buoyancy tubes 22, and the aquaculture poles 1 are fixed to the floating frame 21 by binding. The two rows of buoyancy tubes 22 of the floating frame 21 are fixed by brackets 7, and steps 8 are laid around and in the middle of the floating frame 21, and the steps 8 are laid on top of the brackets 7.

[0079] In this embodiment, see Figure 6 and Figure 9 As shown, the bracket 7 is provided with buoyancy tube holes 71 for the double rows of buoyancy tubes 22 to pass through in parallel, and the top of the bracket 7 is provided with a placement plane 72 for laying the pedals 8.

[0080] See also Figures 6 to 8 As shown, each row of buoyancy tubes 22 of the floating frame 21 is arranged in a preset manner and connected and fixed through a plurality of straight throughs 4 and elbows 5; the breeding pole 1 is perpendicular to the multiple buoyancy tubes 22 on the floating frame 21 and is bundled and fixed.

[0081] This embodiment of the aquaculture row is suitable for farming environments that require frequent movement. The aquaculture poles 1 are still secured to the floating frame 21 by means of binding. The floating frame 21 comprises two rows of buoyancy tubes, each row of which is composed of several straight tubes 4, elbows 5, and buoyancy tubes. The two rows of buoyancy tubes are secured by brackets 7. Pedals 8 are added around and in the center of the buoyancy frame 21. These pedals 8 are placed on top of the brackets 7, allowing workers to move quickly. This arrangement is suitable for farming environments where frequent movement is required, improving work efficiency and reducing fatigue during the farming process.

[0082] like Figures 10 to 13 As shown, the third embodiment of the present invention also provides a breeding row, including a floating barrel 23, a pedal 8 and a breeding rod 1. The bottom of the breeding row is composed of the floating barrel 23, the longitudinal pedal 8 and the longitudinal breeding rod 1 are fixed on the floating barrel 23 to form a bottom layer, and the transverse pedal 8 and the transverse breeding rod 1 are laid on the bottom layer to form a breeding row.

[0083] The floating barrel 23 is fixed to the connected pedal 8 and the aquaculture pole 1 by a bracket 7, which ensures the stability and buoyancy support of the aquaculture row and is suitable for aquaculture of heavy seafood.

[0084] This embodiment of the aquaculture platform is suitable for aquaculture methods requiring greater buoyancy. In this method, the bottom is supported by a buoyancy barrel 23, to which the aquaculture poles 1 and pedals 8 are fixed longitudinally and transversely, forming a multi-layered aquaculture platform. This arrangement provides greater buoyancy, capable of supporting the aquaculture of heavier seafood, while also providing a more stable walking space for workers.

[0085] The manufacturing of the culture rod 1 adopts an integrated forming technology, and the groove 12, the boss 15 and the binding opening 16 can be processed by hot melt film pressing, stamping or machining. This manufacturing method not only improves the production efficiency, but also guarantees the stability and durability of the product.

[0086] As shown in Figures 14 to 17 The fourth embodiment of the utility model further provides a culture row, comprising: a plurality of floating buckets 23 and a plurality of culture rods 1. Different from the first embodiment, the embodiment does not use the buoyancy pipe 22 as the frame of the culture row, but uses a plurality of culture rods 1 to be transversely and longitudinally bound and fixed to form the frame of the culture row, and a plurality of floating buckets 23 are fixed at the bottom of the culture rod 1 to form the culture row structure, which is lower in cost.

[0087] As shown in Figures 18 to 21 The fifth embodiment of the utility model further provides a culture row, comprising: a plurality of floating buckets 23, a plurality of buoyancy pipes 22 and a plurality of culture rods 1. Different from the fourth embodiment, the embodiment uses the buoyancy pipe 22 to be transversely and longitudinally bound and fixed to form the frame of the culture row, and then the plurality of culture rods 1 are laid on the buoyancy pipe 22, and a plurality of floating buckets 23 are fixed at the bottom of the buoyancy pipe 22 to form the culture row structure, which is better in buoyancy effect.

[0088] As shown in Figures 22 to 25 The sixth embodiment of the utility model further provides a culture row, comprising: a plurality of floating buckets 23, a plurality of buoyancy pipes 22, a plurality of culture rods 1 and a plurality of supports 7. Different from the fifth embodiment, the embodiment uses the support 7 to fix the buoyancy pipes 22 to each other to form double-row buoyancy pipes, and the double-row buoyancy pipes 22 are transversely and longitudinally bound and fixed to form the frame of the culture row, and then the plurality of culture rods 1 are laid on the buoyancy pipe 22, and a plurality of floating buckets 23 are fixed at the bottom of the buoyancy pipe 22 to form the culture row structure, which uses the buoyancy pipe 22 and the support 7 to form the frame of the culture row, and after the firm support is formed, the culture rod 1 and the floating bucket 23 are laid, and the structural strength is higher than that of the fifth embodiment, and the buoyancy effect is better.

[0089] The culture rod and the culture row provided by the utility model have the advantages that the surface and the side surface structure of the culture rod 1 are optimized, so that the culture rod 1 not only has better anti-skid function, but also meets the needs of personnel walking operation. Through the design of the buoyancy assembly 2, the support 7 system and the pedal 8 with different configurations, the environmental adaptability of the culture operation is optimized, the operation efficiency is effectively improved, the safety risk is reduced, and the production benefit is improved. Whether small-scale culture or large-scale culture with high buoyancy requirement, remarkable economic and operation benefits can be obtained, and the utility model has good market prospect.

[0090] The above has only described certain exemplary embodiments of the present application by way of illustration, and it is needless to say that the described embodiments can be modified in various ways without departing from the spirit and scope of the present application for those skilled in the art. Therefore, the above drawings and descriptions are illustrative in nature, and should not be understood as limiting the scope of protection of the claims of the present application.

Claims

1. A rearing stick, characterized by, The application relates to a culture rod, which comprises the following parts: a culture rod body, the upper surface of which is provided with a plurality of concaves and convexes which are integrally formed; a boss which is arranged on the side surface of the culture rod body and is integrally formed with the culture rod body; a binding port which is arranged on the side surface of the culture rod body and is used for binding culture ropes.

2. A culture rod according to claim 1, wherein The concaves are integrally formed with the pipe wall of the culture rod body through hot melt film pressing; the concaves and the convexes are arranged in a matrix array on the upper surface of the culture rod body.

3. A grow stake according to claim 2, wherein, The concaves and the convexes which are arranged in a staggered mode form a plurality of anti-skid blocks on the upper surface of the culture rod body, wherein the anti-skid blocks are in one or a plurality of patterns such as square, rectangle and circle.

4. The culture stick of claim 1, wherein, One side or both sides of the culture rod body are provided with a boss, and the side surface of the culture rod body is provided with at least one boss.

5. A raceway for aquaculture, characterised in that The application relates to a culture rod, which comprises the following parts: a buoyancy assembly and a plurality of culture rods as claimed in any one of claims 1-4; The buoyancy assembly is a floating frame which is connected with the plurality of culture rods through connecting pieces; the upper surface of each culture rod is provided with a plurality of concaves and convexes which are integrally formed, so as to form an anti-skid structure.

6. A raceway according to claim 5, characterised in that, The floating frame comprises a plurality of buoyancy pipes which are connected in a preset arrangement mode; the plurality of buoyancy pipes are parallel to each other and are fixed through a plurality of straight-through and elbow connecting pieces; each culture rod is fixed on the floating frame through binding, and the culture rod is perpendicular to the plurality of buoyancy pipes on the floating frame.

7. A raceway for aquaculture, characterised in that The application relates to a culture rod, which comprises the following parts: a buoyancy assembly and a plurality of culture rods as claimed in any one of claims 1-4; The buoyancy assembly is a floating frame which is composed of double-row buoyancy pipes, and the culture rods are fixed on the floating frame through binding; The double-row buoyancy pipes of the floating frame are fixed through a support, and a stepping plate is arranged around and in the middle of the floating frame; the stepping plate is arranged on the top of the support.

8. A raceway according to claim 7, characterised in that, The support is provided with buoyancy pipe holes which are used for the parallel passing of the double-row buoyancy pipes, and the top of the support is provided with a placing plane which is used for the arrangement of the stepping plate.

9. A raceway according to claim 8, characterised in that, Each row of buoyancy pipes of the floating frame is arranged in a preset arrangement mode and is fixed through a plurality of straight-through and elbow connecting pieces; the culture rods are fixed through binding and are perpendicular to the plurality of buoyancy pipes on the floating frame.

10. A raceway for aquaculture, characterised in that The application relates to a culture rod, which comprises the following parts: a floating bucket, a stepping plate and a culture rod as claimed in any one of claims 1-4; the bottom of the culture row is composed of the floating bucket, the longitudinal stepping plate and the longitudinal culture rod are fixed on the floating bucket to form a bottom layer, and the transverse stepping plate and the transverse culture rod are arranged on the bottom layer to form the culture row.