Fish and vegetable symbiosis device capable of adjusting positions of vegetables
By setting up a rotating component and an auxiliary fertilization component in the fish-vegetable symbiotic device, the problem of a long time spent by staff in harvesting vegetables due to the large scale of the fish-vegetable symbiotic device is solved. The convenient adjustment of the vegetable position and uniform fertilization are achieved, which improves work efficiency and vegetable quality.
Patent Information
- Application Number
- CN202422781098.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-11-14
AI Technical Summary
The existing fish-vegetable symbiotic devices are large in scale, which means that workers need to walk a long distance around the device when collecting vegetables, which is time-consuming, wastes manpower, and is inefficient.
A fish-vegetable symbiotic device with adjustable vegetable position was designed. By setting up a rotating component and an auxiliary fertilization component, the motor-driven gears and rotating platform were used to move the vegetables, making it convenient to observe and pick the vegetables. The synchronous gears and rotating base were used to achieve uniform fertilization of the fertilizer.
It reduces the time staff spend on observing or picking vegetables, improves work efficiency, ensures balanced nutrition of vegetables, and improves the growth effect and yield of vegetables.
Smart Images

Figure CN223310476U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of fish-vegetable symbiotic devices, in particular to a fish-vegetable symbiotic device capable of adjusting the positions of vegetables. Background Art
[0002] Aquaponics is a sustainable agricultural system that integrates aquaculture and hydroponic vegetable cultivation. In this system, fish excreta contain nutrients such as nitrogen and phosphorus, which are converted into a form that can be absorbed by vegetables through the action of microorganisms. After the vegetables absorb these nutrients, they purify the water. The purified water can then be recycled back into the aquaculture system for fish consumption, forming a closed-loop ecosystem that achieves efficient resource utilization and zero emissions.
[0003] The existing technology is usually divided into two parts: a fish pond and a vegetable garden. The fish pond is equipped with a water pump and a filtering mechanism. The water pump transports water from the fish pond to the vegetables in the vegetable garden, thereby watering the vegetables. The water is purified by the vegetables, and the fish feces in the fish pond are filtered and collected by the filtering mechanism, and the fish feces are transported to the vegetables as fertilizer through the mud pump, thereby promoting the growth of vegetables. Although the fish-vegetable symbiotic system can reduce the emission of pollutants, reduce the negative impact of agriculture on the environment, and increase the productivity per unit area, in order to maintain a certain benefit, the scale of the fish-vegetable symbiotic device is often set to be large, resulting in the staff needing to walk a long distance around the device to observe and collect the vegetables when collecting the vegetables, resulting in a long time, waste of manpower, and low efficiency.
[0004] Therefore, in order to solve the above problems, a fish-vegetable symbiotic device capable of adjusting the position of vegetables is proposed. Utility Model Content
[0005] In order to make up for the shortcomings of the existing technology and solve the problem that the scale of fish-vegetable symbiotic devices is often large, which requires staff to walk a long distance around the device to observe and collect vegetables, resulting in a long time, waste of manpower and low efficiency, a fish-vegetable symbiotic device with adjustable vegetable position is proposed.
[0006] The technical solution adopted by the present invention to solve the technical problem is as follows: the utility model provides an adjustable vegetable position fish-vegetable symbiotic device, comprising a fish pond, a filtering mechanism and a water pump provided at the bottom end of the inner side of the fish pond, a water pipe fixedly installed at the output end of the water pump, a first water sprayer fixedly installed on the outer wall of the water pipe, and a vegetable mechanism provided at the top end of the fish pond;
[0007] The vegetable mechanism includes a cultivation component and a transport component;
[0008] The culture assembly includes a rotating platform arranged at the top of the fish pond, a rotating assembly is arranged at the bottom of the rotating platform, a culture seat is evenly rotated and installed at the top of the rotating platform, and an auxiliary fertilization assembly is arranged at the bottom of the culture seat;
[0009] The transport component includes a mud pump arranged at the bottom end of the inner side of the fish pond, a fertilizer delivery pipe is fixedly installed at the output end of the mud pump, and a second sprinkler is fixedly installed at the top end of the water delivery pipe.
[0010] Preferably, the rotating assembly includes a rotating gear arranged at the bottom end of the rotating platform, a driving gear is meshedly installed on one side of the rotating gear, a support frame is rotatably installed on the top of the driving gear, the support frame is fixedly installed on one side of the fish pond, a motor is fixedly installed on the inner wall of the support frame, the motor is connected to the outer wall power supply through a wire, and the output end of the motor is fixedly connected to the bottom end of the driving gear; it can drive the vegetables to move when the staff needs to observe or pick the vegetables, so as to facilitate the staff to observe and pick the vegetables.
[0011] Preferably, the auxiliary fertilization component includes a rotating base arranged at the bottom end of the cultivation seat, and the bottom end of the rotating base is fixedly installed with a synchronous gear. A driving rod is evenly fixedly installed on the top of one of the rotating bases, and one side of the driving rod is abutted with an abutment rod, and the abutment rod is fixedly installed on the bottom end of the support frame; when the vegetables need to be fertilized, it can drive the vegetables to rotate, so that the fertilizer delivery pipe can evenly fertilize the surrounding side of the vegetables.
[0012] Preferably, the rotating platform is arranged to be inclined, and the horizontal height of the outer side of the rotating platform is higher than the horizontal height of the inner side; the water sprayed to the top of the rotating platform can flow back to the inside of the fish pond, avoiding waste of water resources and improving resource utilization.
[0013] Preferably, a barrier fence is provided at the bottom end of the outer side of the rotating platform; it can prevent rainwater from sticking to the gear blocks on the peripheral side of the rotating gear on rainy days, so that the rotating gear brings rainwater into the support frame and causes corrosion to the driving gear and the motor.
[0014] Preferably, the horizontal height of the first water sprinkler is lower than the horizontal height of the rotating platform, and the horizontal height of the second water sprinkler is higher than the horizontal height of the rotating platform; the stability and reliability of the fish-vegetable symbiosis device can be improved.
[0015] Beneficial effects of the utility model:
[0016] The utility model provides a fish-vegetable symbiotic device with adjustable vegetable positions. By arranging a rotating component, when a staff member needs to observe or pick vegetables, the motor can be started, so that the motor drives the vegetables to move through the driving gear, the rotating gear, the rotating platform and the cultivation seat, so as to facilitate the staff member to observe and pick the vegetables. This avoids the problem that the fish-vegetable symbiotic device is often set to be large, resulting in the staff member needing to walk a long distance around the device to observe and pick the vegetables when collecting the vegetables, resulting in a long time, waste of manpower and low efficiency. It reduces the time required for the staff to observe or pick vegetables and improves work efficiency.
[0017] The utility model provides a fish-vegetable symbiotic device with adjustable vegetable positions. By arranging an auxiliary fertilizing component, when it is necessary to fertilize the vegetables, the motor can be started, so that the motor drives the vegetables to move through the driving gear, the rotating gear, the rotating platform and the cultivation seat. At this time, the rotating base drives the driving rod to intermittently abut against the abutting rod, so that the abutting rod drives the driving rod to rotate, and the driving rod drives the vegetables to rotate through the rotating base, the synchronous gear and the cultivation seat, so that the fertilizer delivery pipe can evenly fertilize the surrounding sides of the vegetables, avoiding the problem that the fertilizer delivery pipe only fertilizes one side of the vegetables, which easily causes one side of the vegetables to absorb too much nutrition and the other side to be insufficiently nourished, affecting the overall growth balance and health of the vegetables, and causing the final quality of the vegetables to decline. The utility model BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The drawings described herein are used to provide a further understanding of the present invention and constitute a part of this application. The exemplary embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation of the present invention. In the drawings:
[0019] Figure 1 It is a three-dimensional diagram of the main structure of the utility model;
[0020] Figure 2 This is a cross-sectional structural perspective view of the rotating assembly in the present utility model;
[0021] Figure 3 This is a perspective view of the cross-sectional structure of the auxiliary fertilization component in the present utility model;
[0022] Figure 4 This utility model Figure 3 Enlarged view of point A in the middle.
[0023] Legend:
[0024] 1. Fish pond; 2. Water pipe; 3. First sprinkler; 4. Rotating platform; 5. Culture seat; 6. Fertilizer delivery pipe; 7. Second sprinkler; 8. Rotating gear; 9. Driving gear; 10. Support frame; 11. Motor; 12. Rotating base; 13. Synchronous gear; 14. Driving rod; 15. Abutting rod. DETAILED DESCRIPTION
[0025] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] Specific examples are given below.
[0027] See also Figures 1 to 4 The utility model provides a fish-vegetable symbiotic device with adjustable vegetable positions, comprising a fish pond 1, a filtering mechanism and a water pump being provided at the bottom end of the inner side of the fish pond 1, a water pipe 2 being fixedly installed at the output end of the water pump, a first water sprayer 3 being fixedly installed on the outer wall of the water pipe 2, and a vegetable mechanism being provided at the top end of the fish pond 1;
[0028] The vegetable mechanism includes a cultivation component and a transportation component;
[0029] The culture component includes a rotating platform 4 arranged at the top of the fish pond 1, a rotating component is provided at the bottom of the rotating platform 4, a culture seat 5 is evenly rotated and installed at the top of the rotating platform 4, and an auxiliary fertilization component is provided at the bottom of the culture seat 5;
[0030] The transport assembly includes a mud pump arranged at the bottom end of the inner side of the fish pond 1, a fertilizer delivery pipe 6 is fixedly installed at the output end of the mud pump, and a second sprinkler 7 is fixedly installed at the top end of the water delivery pipe 2.
[0031] Further, such as Figures 1 to 4As shown, the rotating assembly includes a rotating gear 8 arranged at the bottom end of the rotating platform 4, and a driving gear 9 is meshed and installed on one side of the rotating gear 8. A support frame 10 is rotatably installed on the top of the driving gear 9. The support frame 10 is fixedly installed on one side of the fish pond 1, and a motor 11 is fixedly installed on the inner wall of the support frame 10. The motor 11 is connected to the outer wall power supply through a wire, and the output end of the motor 11 is fixedly connected to the bottom end of the driving gear 9. By setting up the rotating assembly, when the staff needs to observe or pick the vegetables, the motor 11 can be started so that the motor 11 drives the vegetables to move through the driving gear 9, the rotating gear 8, the rotating platform 4 and the culture seat 5, so as to facilitate the staff to observe and pick the vegetables, thereby avoiding the problem that the fish-vegetable symbiotic device is often set to be large in scale, resulting in the staff needing to walk a long distance around the device to observe and pick the vegetables when collecting the vegetables, resulting in a long time, waste of manpower and low efficiency. It reduces the time required for the staff to observe or pick the vegetables and improves work efficiency.
[0032] Further, such as Figure 3 and Figure 4 As shown, the auxiliary fertilization component includes a rotating base 12 arranged at the bottom end of the culture seat 5, and the bottom end of the rotating base 12 is fixedly installed with a synchronous gear 13. A driving rod 14 is evenly fixedly installed on the top of one of the rotating bases 12, and one side of the driving rod 14 is abutted with an abutting rod 15. The abutting rod 15 is fixedly installed on the bottom end of the support frame 10. By setting the auxiliary fertilization component, when it is necessary to fertilize the vegetables, the motor 11 can be started, so that the motor 11 drives the vegetables to move through the driving gear 9, the rotating gear 8, the rotating platform 4 and the culture seat 5. At this time, the rotating base 12 drives the driving rod 14 intermittently abuts against the abutment rod 15, so that the abutment rod 15 drives the driving rod 14 to rotate, and the driving rod 14 then drives the vegetables to rotate through the rotating base 12, the synchronous gear 13 and the cultivation seat 5, so that the fertilizer delivery pipe 6 can evenly fertilize the circumference of the vegetables, avoiding the fertilizer delivery pipe 6 only fertilizing one side of the vegetables, which easily causes one side of the vegetables to absorb too much nutrition while the other side is insufficiently nourished, affecting the overall growth balance and health of the vegetables, resulting in a decline in the final quality of the vegetables, ensuring the nutritional balance of the vegetables, improving the growth effect of the vegetables, and thus improving the yield and quality of the vegetables.
[0033] Further, such as Figures 1 to 3 As shown, the rotating platform 4 is set to be inclined, and the horizontal height of the outer side of the rotating platform 4 is higher than the horizontal height of the inner side, which can enable the water sprayed to the top of the rotating platform 4 to flow back to the inside of the fish pond 1, avoiding the waste of water resources and improving resource utilization.
[0034] Further, such as Figures 1 to 4As shown, a barrier fence is provided at the bottom end of the outer side of the rotating platform 4, which can prevent rainwater from sticking to the gear blocks on the side of the rotating gear 8 on rainy days, so that the rotating gear 8 brings rainwater into the support frame 10, causing corrosion to the driving gear 9 and the motor 11, reducing the service life of the device, and reducing the corrosion effect of rainwater in the environment on the rotating components, thereby extending the service life of the fish-vegetable symbiosis device.
[0035] Further, such as Figures 1 to 3 As shown, the horizontal height of the first sprinkler 3 is lower than the horizontal height of the rotating platform 4, and the horizontal height of the second sprinkler 7 is higher than the horizontal height of the rotating platform 4. This avoids the problem that when there is only one sprinkler, if the sprinkler is always on, it is easy to cause over-watering of vegetables, which is not conducive to the growth of vegetables. If the sprinkler is turned on intermittently, it is not conducive to the oxygen exchange in the fish pond 1, which hinders the biological cycle, thereby improving the stability and reliability of the fish-vegetable symbiotic device.
[0036] Working Principle: When the aquaponics device is operating normally, the water in the fish pond 1 is filtered by the filter mechanism provided at the bottom of the fish pond 1. The water pump then transports the filtered water to the first water sprinkler 3 through the water pipe 2. The first water sprinkler 3 sprays the water back into the fish pond 1, thereby increasing oxygen exchange in the water and promoting biological circulation in the fish tank.
[0037] When it is necessary to water the vegetables, the operating power of the water pump can be increased so that the water pump transports the filtered water through the water pipe 2 to the second water sprinkler 7, so that the second water sprinkler 7 waters the vegetables. At this time, the water is purified by the vegetables and then returns to the fish pond 1 through the return pipe at the bottom of the culture seat 5. At the same time, the water sprayed on the surface of the rotating platform 4 also flows back to the fish pond 1 through the inclined surface provided on the rotating platform 4.
[0038] When the staff needs to observe and pick vegetables, the motor 11 can be started, so that the motor 11 drives the driving gear 9 to rotate, the driving gear 9 drives the rotating gear 8 to rotate, the rotating gear 8 drives the rotating platform 4 to rotate, and the rotating platform 4 drives the cultivation seat 5 to rotate, thereby driving the vegetables to move, making it convenient for the staff to observe and pick the vegetables;
[0039] When it is necessary to fertilize the vegetables, the mud pump can be started so that the mud pump can intermittently transport the fish feces stored in the filter mechanism to the vegetables through the fertilizer delivery pipe 6. At the same time, the staff starts the motor 11, so that the motor 11 drives the vegetables to move through the driving gear 9, the rotating gear 8, the rotating platform 4 and the cultivation seat 5. At this time, the rotating base 12 drives the driving rod 14 to intermittently abut against the abutment rod 15, so that the abutment rod 15 drives the driving rod 14 to rotate, and the driving rod 14 drives the rotating base 12 to rotate. The rotating base 12 drives the synchronous gear 13 to rotate, so that the synchronous gear 13 rotates a certain angle at the same time, and the synchronous gear 13 drives the cultivation seat 5 to rotate. The cultivation seat 5 drives the vegetables to rotate, so that the fertilizer delivery pipe 6 can evenly fertilize the surrounding side of the vegetables, thereby improving the growth effect of the vegetables.
[0040] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention as claimed.
Claims
1. A fish-vegetable symbiotic device capable of adjusting the position of vegetables, comprising a fish pond (1), characterized in that: The bottom end of the inner side of the fish pond (1) is provided with a filtering mechanism and a water pump, the output end of the water pump is fixedly installed with a water pipe (2), the outer wall of the water pipe (2) is fixedly installed with a first water sprayer (3), and the top end of the fish pond (1) is provided with a vegetable mechanism; The vegetable mechanism includes a cultivation component and a transport component; The culture component comprises a rotating platform (4) arranged at the top of the fish pond (1), a rotating component is arranged at the bottom of the rotating platform (4), a culture seat (5) is evenly rotated and mounted at the top of the rotating platform (4), and an auxiliary fertilization component is arranged at the bottom of the culture seat (5); The transport assembly comprises a mud pump arranged at the bottom end of the inner side of the fish pond (1), a fertilizer delivery pipe (6) is fixedly installed at the output end of the mud pump, and a second sprinkler (7) is fixedly installed at the top end of the water delivery pipe (2).
2. The fish-vegetable symbiotic device with adjustable vegetable position according to claim 1, characterized in that: The rotating assembly comprises a rotating gear (8) arranged at the bottom end of the rotating platform (4); a driving gear (9) is meshedly mounted on one side of the rotating gear (8); a support frame (10) is rotatably mounted on the top end of the driving gear (9); the support frame (10) is fixedly mounted on one side of the fish pond (1); a motor (11) is fixedly mounted on the inner wall of the support frame (10); the motor (11) is connected to an outer wall power supply via a wire; and the output end of the motor (11) is fixedly connected to the bottom end of the driving gear (9).
3. The fish-vegetable symbiotic device with adjustable vegetable position according to claim 1, characterized in that: The auxiliary fertilization assembly comprises a rotating base (12) arranged at the bottom end of the cultivation seat (5), the bottom end of each rotating base (12) is fixedly mounted with a synchronous gear (13), the top end of one of the rotating bases (12) is evenly fixedly mounted with a driving rod (14), one side of the driving rod (14) is abutted with an abutting rod (15), and the abutting rod (15) is fixedly mounted on the bottom end of the support frame (10).
4. The fish-vegetable symbiotic device with adjustable vegetable position according to claim 1, characterized in that: The rotating platform (4) is arranged in an inclined shape, and the horizontal height of the outer side of the rotating platform (4) is higher than the horizontal height of the inner side.
5. The fish-vegetable symbiotic device with adjustable vegetable position according to claim 1, characterized in that: A blocking fence is provided at the bottom end of the outer side of the rotating platform (4).
6. The fish-vegetable symbiotic device with adjustable vegetable position according to claim 1, characterized in that: The level of the first water sprayer (3) is lower than the level of the rotating platform (4), and the level of the second water sprayer (7) is higher than the level of the rotating platform (4).