Anti-collision horse mouth fish feeding cage device
By improving the structure of the chub rearing cage device and utilizing the adjustment mechanism of the floating mounting plate and support connection seat, the problem of weakened anti-collision effect under water flow impact was solved, thereby improving the stability and durability of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QUANNAN COUNTY SHENGTANG BREEDING CO LTD
- Filing Date
- 2025-07-04
- Publication Date
- 2026-05-29
Smart Images

Figure CN224291019U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of chub breeding technology, and in particular to a collision-proof chub breeding cage device. Background Technology
[0002] The mandarin fish is a surface-dwelling fish that inhabits the upper layers of water. In the wild, it prefers to live in shallow, fast-flowing streams or tributaries of rivers with sandy or gravelly bottoms. It can also live in still lakes, reservoirs, and ponds, but is rarely seen in deep rivers. The mandarin fish is a small fish that lives in streams. Collision-resistant mandarin fish cages are specially designed to protect mandarin fish and reduce injuries caused by collisions.
[0003] In existing technologies, the device requires the use of stones and stakes to install the rearing cage. To achieve the anti-collision function, the device may employ complex structures such as elastic buffers and anti-collision sleeves, resulting in a complex overall structure and increased manufacturing and maintenance costs. The device may also struggle to adapt to water flow environments with varying flow rates and directions. Under strong water flow, the device may shift or tilt, weakening its anti-collision effect. For example, if the device is only secured by stakes, the stakes may loosen or come out under the impact of strong water flow, causing the device to lose stability. The water flow may then cause the rearing cage to collide with stones in the river, leading to long-term damage from impacts and abrasion. To reduce weight and improve anti-collision performance, the device may use lightweight materials, but these materials are easily damaged under long-term water flow and friction. For example, plastic protective sleeves may age and crack due to prolonged immersion and friction, losing their anti-collision function. Therefore, it is necessary to develop an improved anti-collision rearing cage device for chub to solve the above problems. Utility Model Content
[0004] To overcome the problem that the anti-collision effect of the chub rearing cage device is weakened by the impact of the water flow in the river, causing damage to the rearing cage and loss of anti-collision function.
[0005] The technical solution of this utility model is as follows: a collision-resistant chub rearing cage device, including a floating mounting plate, a support connecting seat set on the top of the floating mounting plate, a rearing cage body set on the bottom of the floating mounting plate, an isolation door set on the rearing cage body, a positioning light tube fixedly connected to the top of the floating mounting plate, a bundling assembly set on the support connecting seat, a steel wire rope fixedly connected between the bundling assembly and the rearing cage body, an installation connecting box fixedly connected to the floating mounting plate, a rotating connecting column rotatably connected inside the installation connecting box, a limiting mounting cylinder fixedly connected to the floating mounting plate, a sliding limiting rod slidably connected inside the limiting mounting cylinder, a threaded connecting cylinder fixedly connected to the support connecting seat, a threaded block threadedly connected inside the threaded connecting cylinder, and the threaded block fixedly connected to the rotating connecting column. The positioning light tube indicates the location of the rearing fish in the dark. The rearing cage body is used for rearing the chub. The rotation of the rotating connecting column drives the threaded block to rotate inside the threaded connecting cylinder. Under the condition of the threaded connecting cylinder and the threaded block meshing, the support connecting seat is adjusted.
[0006] Preferably, the limiting mounting cylinder has a groove at the corresponding position of the sliding limiting rod, and the sliding limiting rod slides inside the groove.
[0007] Preferably, there are two support connectors, and the two support connectors are symmetrically arranged on the floating mounting plate.
[0008] Preferably, a reset spring is provided on the reset spring, and an anti-collision post is fixedly connected to the reset spring. A first motor is fixedly connected to one side of the mounting connection box, and a rotating shaft is fixedly connected to the output end of the first motor. The rotating shaft is rotatably connected inside the mounting connection box, and a first bevel gear is fixedly connected to the rotating shaft. A second bevel gear is fixedly connected to the rotating connection post, and the second bevel gear meshes with the first bevel gear.
[0009] Preferably, several return springs are provided, and the several return springs are evenly and fixedly connected to the body of the feeding cage.
[0010] Preferably, the bundling assembly includes a mounting support plate fixedly connected to the threaded connecting cylinder, a second motor fixedly connected to the mounting support plate, a rotating column fixedly connected to the output end of the second motor, a snap-fit column fixedly connected to the rotating column, a limiting ring snapped onto the snap-fit column, a snap-fit wheel snapped onto the snap-fit column, and a threaded fixing shaft threadedly connected inside the snap-fit column.
[0011] Preferably, the locking wheel has a locking groove at the corresponding position of the locking post, and the locking wheel is locked onto the locking post.
[0012] Preferably, the snap-fit post has a threaded hole at the corresponding position of the threaded fixing shaft, and the thread of the threaded fixing shaft is inside the threaded hole of the snap-fit post.
[0013] The beneficial effects of this utility model are:
[0014] 1. Compared to the anti-collision fish rearing cage device under the impact of river water flow, the device uses a rotating connecting column to drive the threaded block to connect with the threaded connecting cylinder. This causes the sliding limit rod on the support connecting seat to be limited by the limit installation cylinder, raising the support connecting seat to a suitable position. This eliminates the need for complex elastic buffers, anti-collision sleeves, and other structures, reducing the overall structural complexity of the device and lowering manufacturing and maintenance costs. It can adapt to water flow environments with different flow velocities and directions, improving the anti-collision effect, ensuring the stability of the device, reducing weight, and improving anti-collision performance. It will not age, crack, or lose its anti-collision function due to long-term immersion and friction.
[0015] 2. By twisting the threaded fixing shaft to disengage it from the locking pulley, the locking pulley slides against the limit ring, disengaging from the locking post. The wire rope can then be detached from the locking pulley for replacement. Since the rope is constantly exposed to water, it is susceptible to erosion from water flow, friction, and microbial corrosion, leading to decreased strength or even breakage. The replaceable design allows users to promptly replace damaged ropes, preventing the loss or damage of the rearing cage due to rope failure and improving the overall reliability of the device. Differences in flow rate, water depth, and water quality in different water areas can accelerate rope wear. For example, in fast-flowing areas, the rope needs to withstand greater tension; in polluted waters, the rope may corrode. The replaceable design allows users to choose more durable materials based on the actual environment, extending the device's lifespan. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of one embodiment of the anti-collision fish rearing cage device of this utility model.
[0017] Figure 2 for Figure 1 A schematic diagram of the structure of the breeding cage;
[0018] Figure 3 for Figure 1 Schematic diagram of the floating mounting plate in the middle;
[0019] Figure 4 for Figure 1 A schematic diagram of the internal structure of the floating mounting plate;
[0020] Figure 5 for Figure 1 A schematic diagram of the structure in which the support plate is installed.
[0021] Explanation of reference numerals in the attached drawings: 1. Floating mounting plate; 2. Support connecting seat; 3. Feeding cage body; 4. Isolation door; 5. Positioning light tube; 6. Steel wire rope; 801. Return spring; 802. Anti-collision post; 803. Mounting connection box; 804. First motor; 805. Rotating shaft; 806. First bevel gear; 807. Rotating connecting post; 808. Second bevel gear; 809. Limiting mounting cylinder; 810. Sliding limit rod; 811. Threaded connecting cylinder; 812. Threaded block; 901. Mounting support plate; 902. Second motor; 903. Rotating post; 904. Snap-fit post; 905. Limiting ring; 906. Snap-fit wheel; 907. Threaded fixing shaft. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figure 1 - Figure 5 This utility model provides an embodiment of a collision-resistant chub rearing cage device, including a floating mounting plate 1, a support connecting seat 2 disposed on the top of the floating mounting plate 1, a rearing cage body 3 disposed on the bottom of the floating mounting plate 1, an isolation door 4 disposed on the rearing cage body 3, a positioning light tube 5 fixedly connected to the top of the floating mounting plate 1, a bundling assembly disposed on the support connecting seat 2, a steel wire rope 6 fixedly connected between the bundling assembly and the rearing cage body 3, a mounting connecting box 803 fixedly connected to the floating mounting plate 1, a rotating connecting column 807 rotatably connected inside the mounting connecting box 803, and a fixed connecting... A limiting mounting cylinder 809 is attached to the floating mounting plate 1; a sliding limiting rod 810 is slidably connected inside the limiting mounting cylinder 809; a threaded connecting cylinder 811 is fixedly connected to the support connecting seat 2; a threaded block 812 is threadedly connected inside the threaded connecting cylinder 811; and the threaded block 812 is fixedly connected to the rotating connecting column 807. A positioning light tube 5 indicates the fisherman's location in the dark. The fish are raised in the feeding cage body 3. The rotation of the rotating connecting column 807 drives the threaded block 812 to rotate inside the threaded connecting cylinder 811. The threaded connecting cylinder 811 and the threaded block 812... Under the condition of meshing connection, the support connecting seat 2 is adjusted. By rotating the connecting column 807 inside the mounting connecting box 803, it causes the threaded block 812 on the rotating connecting column 807 to rotate inside the threaded connecting cylinder 811. Under the condition of meshing connection between the threaded connecting cylinder 811 and the threaded block 812, the sliding limit rod 810 on the support connecting seat 2 slides inside the limiting mounting cylinder 809. The support connecting seat 2 is raised to a suitable position by the limiting of the sliding limit rod 810.
[0024] Please see Figure 2 - Figure 4In this embodiment, the limiting mounting cylinder 809 has a groove at the corresponding position of the sliding limiting rod 810. The sliding limiting rod 810 slides inside the groove. The groove inside the limiting mounting cylinder 809 corresponding to the position of the sliding limiting rod 810 limits the sliding limiting rod 810 when it slides inside the groove. There are two support connecting seats 2, and the two support connecting seats 2 are symmetrically arranged on the floating mounting plate 1. The two support connecting seats 2 enable the feeding cage body 3 to be stably lifted inside the floating mounting plate 1. A return spring 801 is provided on the return spring 801, and an anti-collision post 802 is fixedly connected to the return spring 801. A first motor 804 is fixedly connected to one side of the mounting connection box 803. A rotating shaft 805 is fixedly connected to the output end of the first motor 804. The rotating shaft 805 is rotatably connected inside the mounting connection box 803. A first bevel gear 806 is fixedly connected to the rotating shaft 805. A second bevel gear 808 is fixedly connected to the rotating connection post 807. The second bevel gear 808 meshes with the first bevel gear 806. The first motor 804 drives the rotating shaft 805 to rotate inside the mounting box 803. The rotation of the rotating shaft 805, through the engagement of the first bevel gear 806 and the second bevel gear 808, drives the rotating connecting column 807 to rotate inside the mounting box 803. A return spring 801 is provided on the return spring 801, and an anti-collision post 802 is fixedly connected to the return spring 801. The first motor 804 is fixedly connected to one side of the mounting box 803, and the output end of the first motor 804 is fixedly connected to the rotating shaft 805. 805 is rotatably connected inside the mounting connection box 803. A first bevel gear 806 is fixedly connected to the rotating shaft 805, and a second bevel gear 808 is fixedly connected to the rotating connection column 807. The second bevel gear 808 meshes with the first bevel gear 806. The rotating shaft 805 is driven to rotate inside the mounting connection box 803 by the first motor 804. The rotation of the rotating shaft 805, in conjunction with the first bevel gear 806 and the second bevel gear 808, drives the rotating connection column 807 to rotate inside the mounting connection box 803.
[0025] Please see Figure 5In this embodiment, the bundling assembly includes a mounting support plate 901 fixedly connected to the threaded connecting cylinder 811, a second motor 902 fixedly connected to the mounting support plate 901, a rotating column 903 fixedly connected to the output end of the second motor 902, a snap-fit column 904 fixedly connected to the rotating column 903, a limiting ring 905 snapped onto the snap-fit column 904, a snap-fit wheel 906 snapped onto the snap-fit column 904, and a threaded fixing shaft 907 threadedly connected inside the snap-fit column 904. The steel wire rope 6 is tied to the snap-fit wheel 906 by snapping the limiting ring 905 onto the snap-fit column 904, and the snap-fit wheel 906 is snapped into the inside of the snap-fit column 904. The assembly is then threadedly connected via the threaded fixing shaft 907. The threaded fixing shaft 907 of the snap-fit post 904 contacts the snap-fit wheel 906 to fix the snap-fit wheel 906, thus completing the installation and replacement of the wire rope 6. The snap-fit wheel 906 has a slot at the corresponding position of the snap-fit post 904, and the snap-fit wheel 906 snaps into the snap-fit post 904. The sliding groove opened inside the snap-fit wheel 906 at the corresponding position of the snap-fit post 904 makes the rotation of the snap-fit wheel 906 more stable. The snap-fit post 904 has a threaded hole at the corresponding position of the threaded fixing shaft 907, and the thread of the threaded fixing shaft 907 is inside the threaded hole of the snap-fit post 904. The threaded hole opened on the snap-fit post 904 makes it more stable when fixing the snap-fit wheel 906 and the limit ring 905.
[0026] During operation, when disassembling and installing the wire rope 6, the threaded fixing shaft 907 is threadedly connected to the inside of the clamping post 904, so that the threaded fixing shaft 907 contacts the clamping wheel 906 to fix the clamping wheel 906, thus completing the installation and replacement of the wire rope 6. When adjusting the height of the breeding cage body 3 inside the floating mounting plate 1, the second motor 902 drives the clamping wheel 906 on the rotating post 903 to rotate. The rotation of the clamping wheel 906 causes the wire rope 6 to wind around the clamping wheel 906, thus fixing the breeding cage. When adjusting the position of the main body 3, the connecting column 807 is rotated inside the mounting box 803, causing the threaded block 812 on the connecting column 807 to rotate inside the threaded connecting cylinder 811. Under the condition that the threaded connecting cylinder 811 and the threaded block 812 are engaged, the sliding limit rod 810 on the support connecting seat 2 slides inside the limit mounting cylinder 809. The limit of the sliding limit rod 810 raises the support connecting seat 2 to a suitable position, ensuring that the main body 3 of the breeding cage can be suspended in the river water.
[0027] Through the above steps, by rotating the connecting column 807 to drive the threaded block 812 to be threadedly connected to the threaded connecting cylinder 811, the sliding limit rod 810 on the support connecting seat 2 is driven to lift the support connecting seat 2 to a suitable position under the limit installation cylinder 809. This solves the problem that the anti-collision effect of the anti-collision fish breeding cage device is weakened by the impact of water flow in the river, causing damage to the breeding cage and loss of anti-collision function.
Claims
1. A collision-resistant fish rearing cage device, comprising a floating mounting plate (1), characterized in that: It also includes a support connector (2) set on the top of the floating mounting plate (1), a rearing cage body (3) set at the bottom of the floating mounting plate (1), an isolation door (4) set on the rearing cage body (3), a positioning light tube (5) fixedly connected to the top of the floating mounting plate (1), a bundling assembly set on the support connector (2), a steel wire rope (6) fixedly connected between the bundling assembly and the rearing cage body (3), an installation connection box (803) fixedly connected to the floating mounting plate (1), a rotating connection column (807) rotatably connected inside the installation connection box (803), and a limiting installation cylinder (807) fixedly connected to the floating mounting plate (1). 9) A sliding limit rod (810) is slidably connected inside the limit mounting cylinder (809), a threaded connecting cylinder (811) is fixedly connected to the support connecting seat (2), a threaded block (812) is threadedly connected inside the threaded connecting cylinder (811), and the threaded block (812) is fixedly connected to the rotating connecting column (807). The positioning light tube (5) is set to indicate the location of the breeder in the dark. The breeding cage body (3) is set to raise chub. The rotating connecting column (807) is set to rotate and drive the threaded block (812) to rotate inside the threaded connecting cylinder (811). The support connecting seat (2) is adjusted under the condition that the threaded connecting cylinder (811) and the threaded block (812) are meshed.
2. The anti-collision fish rearing cage device according to claim 1, characterized in that: The limiting installation cylinder (809) has a groove at the corresponding position of the sliding limiting rod (810), and the sliding limiting rod (810) slides inside the groove.
3. The anti-collision fish rearing cage device according to claim 1, characterized in that: There are two support connectors (2), and the two support connectors (2) are symmetrically arranged on the floating mounting plate (1).
4. The anti-collision fish rearing cage device according to claim 1, characterized in that: A reset spring (801) is provided on the reset spring (801), and an anti-collision post (802) is fixedly connected to the reset spring (801). A first motor (804) is fixedly connected to one side of the mounting connection box (803). A rotating shaft (805) is fixedly connected to the output end of the first motor (804). The rotating shaft (805) is rotatably connected inside the mounting connection box (803). A first bevel gear (806) is fixedly connected to the rotating shaft (805). A second bevel gear (808) is fixedly connected to the rotating connection post (807). The second bevel gear (808) meshes with the first bevel gear (806).
5. The anti-collision fish rearing cage device according to claim 4, characterized in that: Several reset springs (801) are provided, and several reset springs (801) are evenly fixedly connected to the body of the feeding cage (3).
6. The anti-collision fish rearing cage device according to claim 1, characterized in that: The bundling assembly includes a mounting support plate (901) fixedly connected to the threaded connecting cylinder (811), a second motor (902) fixedly connected to the mounting support plate (901), a rotating column (903) fixedly connected to the output end of the second motor (902), a snap-fit column (904) fixedly connected to the rotating column (903), a limiting ring (905) snapped onto the snap-fit column (904), a snap-fit threaded wheel (906) snapped onto the snap-fit column (904), and a threaded fixing shaft (907) threadedly connected inside the snap-fit column (904).
7. The anti-collision fish rearing cage device according to claim 6, characterized in that: The locking wheel (906) has a locking groove at the corresponding position of the locking post (904), and the locking wheel (906) is locked onto the locking post (904).
8. The anti-collision fish rearing cage device according to claim 6, characterized in that: The snap-fit post (904) has a threaded hole at the corresponding position of the threaded fixing shaft (907), and the thread of the threaded fixing shaft (907) is inside the threaded hole of the snap-fit post (904).