Vehicle-mounted composite material fishpond
By designing separate small breeding chambers and an automatic feeding structure in the vehicle-mounted fish pond, the problems of fish jumping out of the water and inconvenience in feeding during transportation are solved, and high survival rate of fish is achieved during transportation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-03-31
AI Technical Summary
Existing vehicle-mounted fish ponds are prone to fish jumping out of the water during transportation, leading to death or injury, and are also inconvenient to feed, affecting survival rates.
The water tank is designed with multiple small breeding chambers, equipped with an openable and closable shielding structure and an automatic feeding structure. Combined with air stone boxes for oxygenation, it ensures that the fish do not jump out of the water and achieves automatic feeding.
It effectively prevents fish from jumping out of the water during transportation, reduces the risk of death and injury, increases survival rate, reduces disease infection, and improves the survival rate during transportation.
Smart Images

Figure CN224055107U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of fish transport devices, and in particular to a vehicle-mounted composite material fish pond. Background Technology
[0002] Fish are highly susceptible to death from oxygen deprivation during transportation. To prevent this, a multi-functional, vehicle-mounted fishpond has been developed. This fishpond includes a tank body, aeration heads, a blower, air supply pipes, and a buffer net. The tank body has an inner breeding chamber with a partition inside. The partition's inner cavity has through-holes, and filter cartridges are installed inside these through-holes. By combining the blower, air supply pipes, aeration heads, and buffer net, oxygenation can be applied to the fishpond according to actual transportation needs, preventing oxygen deprivation and fish deaths during transport, thus avoiding unnecessary losses. However, while existing multi-functional fishponds can prevent fish deaths from oxygen deprivation, they still have the following two shortcomings:
[0003] Firstly, there is the drawback of fish easily jumping out of the water. During the transportation of fish, the fish are easily stressed by the horns or vibrations of the surrounding vehicles, which makes them restless and attempts to jump out, which can easily lead to the death or injury of the fish, causing economic losses and polluting the water.
[0004] Secondly, the difficulty in feeding the fish forces them to rely on their own energy reserves to sustain life during transport, increasing the risk of disease infection and affecting their survival rate. Utility Model Content
[0005] To address the above deficiencies, the purpose of this utility model is to provide a vehicle-mounted composite material fish pond. This vehicle-mounted composite material fish pond can effectively prevent fish from jumping out of the pond during transportation, while facilitating feeding and effectively reducing the risk of fish death, injury, or disease, thus greatly improving the survival rate of fish during transportation.
[0006] To achieve the above objectives, the technical solution of this utility model is as follows:
[0007] A vehicle-mounted composite material fish pond includes a water tank, which is divided into multiple breeding chambers. Each breeding chamber is further divided into multiple smaller breeding chambers by partitions. The partitions are densely covered with water passage holes connecting the smaller breeding chambers on both sides. Each smaller breeding chamber has an openable and closable shielding structure on its upper part and an automatically operating feeding structure on its side wall.
[0008] The culture chamber is also equipped with a filter tank and a protein separator.
[0009] The breeding chamber has a circulation trough on one long side.
[0010] A water pumping trough is provided on one short side of the breeding chamber.
[0011] Each of the small breeding chambers is equipped with an air stone box at the bottom.
[0012] The partition has multiple raised reinforcing plates on both sides.
[0013] The shielding structure includes two guide shells arranged opposite each other, with a retractable shielding plate between the two guide shells. One side of the shielding plate is fixedly installed between the two guide shells by a fixing seat, and the other side of the shielding plate is connected to a movable plate. The two ends of the movable plate are slidably installed in the two guide shells respectively. A handle is installed on the movable plate.
[0014] The inner side wall of the small breeding chamber is provided with a magnetic buckle corresponding to the position of the movable plate. The magnetic buckle has a slot facing the side of the movable plate, and the width of the slot is adapted to the thickness of the movable plate.
[0015] The feeding structure includes a fixed frame that can be hung on the side wall of the small breeding chamber. A feed box is fixedly connected to the fixed frame. The lower end of the feed box is connected to a feeding port. A feeding plate is rotatably installed inside the feeding port.
[0016] A feeding motor is installed on the outside of the feeding port, and the power output shaft of the feeding motor extends into the feeding port and is fixedly connected to the feeding plate.
[0017] After adopting the above technical solution, the beneficial effects of this utility model are:
[0018] This utility model's vehicle-mounted composite material fishpond includes a water tank divided into multiple aquaculture chambers. Each aquaculture chamber is further divided into smaller chambers by partitions, which are densely covered with water passages connecting the two sides of each chamber. Each smaller chamber has an openable and closable shielding structure at its top, and an automatically operating feeding mechanism on its side wall. The shielding structure, when closed, blocks the aquaculture chamber, preventing fish from jumping out of the water and also preventing the water tank from contacting the external environment, reducing interference and water pollution, and lowering the risk of fish death and injury. The automatic feeding mechanism feeds the fish automatically, facilitating feeding during long-distance transport, reducing manual labor, lowering the risk of disease during transport, and increasing the survival rate of fish during transit.
[0019] In summary, the present invention provides a vehicle-mounted composite material fish pond that solves the technical problems of low fish survival rate during transportation in the prior art. The present invention can effectively prevent fish from jumping out of the fish pond during transportation, while facilitating feeding, effectively reducing the risk of fish death, injury, or disease, and greatly improving the survival rate of fish during transportation. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of the vehicle-mounted composite material fish pond of this utility model;
[0021] Figure 2 yes Figure 1 AA-line sectional view;
[0022] Figure 3 yes Figure 1 A schematic diagram of the feeding structure;
[0023] Figure 4 yes Figure 1 A schematic diagram of the central shading structure;
[0024] Figure 5 yes Figure 1 Enlarged view of part B;
[0025] In the diagram: 10. Water tank, 11. Circulation tank, 12. Passageway, 15. Pumping tank, 16. Partition, 160. Water passage hole, 162. Reinforcing plate, 20. Filter tank, 22. Protein separator, 30. Feeding structure, 31. Fixing frame, 32. Feed box, 34. Feed outlet, 36. Feeding plate, 38. Feeding motor, 40. Covering structure, 41. Magnetic buckle, 410. Card slot, 42. Guide shell, 43. Moving plate, 44. Covering plate, 46. Fixing seat, 48. Handle, 50. Breeding chamber, 52. Air stone box. Detailed Implementation
[0026] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0027] The directions mentioned in this manual are based on the directions shown in the attached diagram and represent only relative positional relationships, not absolute positional relationships.
[0028] like Figure 1As shown, a vehicle-mounted composite material fish pond includes a rectangular water tank 10. A passageway 12 is located at the center of the water tank 10, extending along the long axis of the water tank 10. Two aquaculture chambers 50 are located on each side of the passageway, meaning that in this embodiment, the entire water tank 10 is divided into four aquaculture chambers 50. The four aquaculture chambers 50 have identical structures; the aquaculture chambers 50 on both sides of the passageway 12 are mirror images of each other, and the aquaculture chambers 50 on the same side of the passageway 12 are aligned in the same direction. Because the four aquaculture chambers 50 have identical structures, the following detailed description of this vehicle-mounted composite material fish pond will only use one aquaculture chamber 50 as an example.
[0029] like Figure 1 and Figure 2 As shown, the aquaculture chamber 50 is divided into multiple smaller aquaculture chambers by partitions 16. In this embodiment, there are two partitions 16, meaning the aquaculture chamber 50 is divided into three smaller aquaculture chambers. The partitions 16 are densely covered with water passages 160 connecting the smaller aquaculture chambers on both sides. Multiple raised reinforcing plates 162 are provided on both sides of the partitions 16. In this embodiment, the reinforcing plates 162 are preferably arranged in three layers at intervals to provide reinforcement. Each smaller aquaculture chamber has an air stone box 52 at its bottom, connected to an air pump (not shown in the figure) to oxygenate the water and prevent oxygen deficiency during transport. Each smaller aquaculture chamber has an openable and closable shielding structure 40 at its top. When closed, this structure isolates the smaller aquaculture chamber from the external environment, effectively preventing fish from jumping out of the chamber and also preventing external pollution of the water and frightening the fish. Each small aquaculture chamber is equipped with an automatically operating feeding structure 30 on the side wall near the passageway 12. This structure can automatically feed the fish during transportation, reducing the risk of disease, increasing the survival rate, and minimizing manual labor. Dividing the aquaculture chamber 50 into multiple smaller chambers facilitates the transportation of different species of fish.
[0030] like Figure 1 and Figure 2 As shown, a water pumping tank 15 is located on the left side of the culture chamber 50 (i.e., the short side of the culture chamber). From left to right, a circulation tank 11, a protein skimmer 22, and a filter tank 20 are arranged on the long side wall of the culture chamber 50 near the water tank 10 (i.e., the long side of the culture chamber). In this embodiment, the protein skimmer 22 is an acrylic protein skimmer. The filter tank 20 and the protein skimmer 22 can circulate and purify the water in the culture chamber 50, ensuring the cleanliness of the water. It should be noted that the above orientation is based on… Figure 1 The directions shown are for reference.
[0031] like Figure 1 , Figure 2 , Figure 4 and Figure 5As shown, the shielding structure 40 includes two guide shells 42 arranged opposite each other, with a retractable shielding plate 44 between the two guide shells 42. A fixing seat 46 is fixedly connected between the ends of the two guide shells 42 near the long sidewall of the water tank 10. One side of the shielding plate 44 is fixedly installed between the two guide shells 42 via the fixing seat 46, and a movable plate 43 is connected to the other side of the shielding plate 44. Both ends of the movable plate 43 are slidably installed inside the two guide shells 42. In this embodiment, preferably, each end of the movable plate 43 is equipped with a pulley (not shown in the figure), and the two pulleys are slidably installed inside the two guide shells 42. The pulleys can reduce the friction between the movable plate 43 and the guide shells 42. A handle 48 is installed on the movable plate 43, which makes the sliding of the movable plate 43 more convenient, and thus makes the opening and closing of the shielding plate 44 more convenient. In this embodiment, the movable plate 43 is preferably made of metal steel. A magnetic buckle 41 is provided on the inner side wall of the small breeding chamber near the passageway 12, corresponding to the position of the movable plate 43. When the baffle 44 is closed, the movable plate 43 and the magnetic buckle 41 are attracted to each other, preventing the baffle 44 from retracting due to shaking during vehicle movement, thus ensuring the closing effect of the baffle 44. A slot 410 is provided on the side of the magnetic buckle 41 facing the movable plate 43. The width of the slot 410 is adapted to the thickness of the movable plate 43. When the baffle 44 is closed, the movable plate 43 can be locked in the slot 410, allowing for adsorption from three directions, resulting in a better adsorption effect. In this embodiment, the baffle 44 is a folding accordion panel.
[0032] like Figure 1 and Figure 3 As shown, the feeding structure 30 includes a fixed frame 31 that can be hung on the side wall of the small breeding chamber near the passage 12. The fixed frame 31 is fixedly connected to a feed box 32. The upper and lower ends of the feed box 32 are open structures, and the size of the upper opening is larger than the size of the lower opening. The lower end of the feed box 32 is connected to a feeding port 34. A feeding plate 36 is rotatably installed inside the feeding port 34. A feeding motor 38 is installed on the outside of the feeding port 34. The power output shaft of the feeding motor 38 extends into the feeding port 34 and is fixedly connected to the feeding plate 36. In this embodiment, the feeding plate 36 is cross-shaped and has a central hole. The power output shaft of the feeding motor 38 is fixed in the central hole. Before driving, pour the fish food into the feed box 32 and connect the feeding motor 38 to the vehicle ECU (vehicle's on-board computer). The vehicle ECU can control the start of the feeding motor 38. After the feeding motor 38 starts, it drives the feeding plate 36 to rotate. The feeding plate 36 can push the fish food down into the small breeding chamber, realizing automatic feeding of the fish. At the same time, the amount of feeding can be controlled by controlling the speed of the feeding motor 38 and the number of rotations of the feeding plate 36, thereby preventing overfeeding.
[0033] In summary, the vehicle-mounted composite material fish pond of this invention can effectively prevent fish from jumping out of the pond during transportation, while facilitating feeding, effectively reducing the risk of fish death, injury, or disease, and greatly improving the survival rate of fish during transportation.
[0034] This utility model is not limited to the specific embodiments described above. Any modifications made by those skilled in the art based on the above concept without creative effort shall fall within the protection scope of this utility model.
Claims
1. A composite material fish tank for a vehicle, characterized by, The application relates to an aquaculture device, which comprises a water tank (10) internally divided into multiple aquaculture cavities (50), wherein each aquaculture cavity is divided into multiple small aquaculture cavities by a partition plate (16) densely provided with water passing holes (160) for connecting the small aquaculture cavities on both sides of the partition plate (16); the upper part of each small aquaculture cavity is provided with an openable and closable shielding structure (40), and the sidewall of each small aquaculture cavity is provided with an automatically operated feeding structure (30).
2. The vehicle-mounted composite fish tank of claim 1, wherein, The aquaculture cavity (50) is further provided with a filter groove (20) and a protein separator (22).
3. The vehicle-mounted composite fish tank of claim 2, wherein, The aquaculture cavity (50) is provided with a circulating groove (11) at one long side.
4. The vehicle-mounted composite fish tank of claim 3, wherein, The aquaculture cavity (50) is provided with a water pumping groove (15) at one short side.
5. The vehicle-mounted composite fish tank of claim 1, wherein, The bottom of each small aquaculture cavity is provided with an air stone box (52).
6. The vehicle-mounted composite fish tank of claim 1, wherein, The partition plate (16) is provided with multiple protruding reinforcing plates (162) on both sides.
7. The vehicle-mounted composite fish tank of claim 1, wherein, The shielding structure (40) comprises two oppositely arranged guide shells (42), and a shielding plate (44) is arranged between the two guide shells (42) and can be extended and retracted; one side of the shielding plate (44) is fixedly installed between the two guide shells (42) through a fixing seat (46), the other side of the shielding plate (44) is connected with a moving plate (43), and both ends of the moving plate (43) are slidably installed in the two guide shells (42); a handle (48) is installed on the moving plate (43).
8. The vehicle-mounted composite material fish tank according to claim 7, characterized in that, The sidewall of the small aquaculture cavity is provided with a magnetic buckle (41) corresponding to the position of the moving plate (43) on the inner side; the side of the magnetic buckle (41) facing the moving plate (43) is provided with a clamping groove (410), and the width of the clamping groove (410) is matched with the thickness of the moving plate (43).
9. The vehicle-mounted composite material fish tank according to claim 1, characterized in that, The feeding structure (30) comprises a fixing frame (31) which can be hung on the sidewall of the small aquaculture cavity; the fixing frame (31) is fixedly connected with a material box (32); the lower end of the material box (32) is communicated with a discharging port (34); and the discharging port (34) is rotatably installed with a discharging plate (36).
10. The vehicle-mounted composite material fish tank according to claim 9, characterized in that, The outer side of the discharging port (34) is installed with a discharging motor (38), and the power output shaft of the discharging motor (38) extends into the discharging port (34) and is fixedly connected with the discharging plate (36).