A kind of ammonia prevention culture lamp rack and ammonia prevention method
By designing an anti-ammonia farming lamp rack and utilizing a combination of a drive motor and a frost-free cooling fan, automatic cleaning of the farming lamp is achieved, solving the ammonia corrosion problem, extending the service life and improving work efficiency.
Patent Information
- Application Number
- CN202411403383.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-10-09
AI Technical Summary
Ammonia corrosion shortens the service life of aquaculture lamps, and the wiping effect in the existing technology is not good.
An anti-ammonia aquaculture lamp rack is designed. The aquaculture lamp on the connecting ring and the connecting rod is driven by a driving motor to rotate. Combined with the frost-free air cooler for cooling and the wiping sponge to automatically wipe the attached ammonia liquefied matter, automatic cleaning is achieved.
It significantly extends the service life of aquaculture lamps, reduces replacement frequency and cost, improves work efficiency and operation accuracy, and reduces labor intensity and human errors.
Smart Images

Figure CN118998680B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of aquaculture equipment, and in particular to an anti-acid aquaculture lamp stand and a method for preventing hydrogen acid. Background Art
[0002] Aquaculture lamps are used to provide lighting for agricultural production, simulating or supplementing natural sunlight to meet the growth and development needs of plants and animals. Depending on the usage scenario and needs, aquaculture lamps can be divided into various types, including LED aquaculture lamps, high-pressure sodium lamps, metal halide lamps, fluorescent lamps, incandescent lamps, and high-intensity discharge lamps (HID).
[0003] Since aquaculture lamps are usually set up in greenhouses, the feces produced by animals are also in the greenhouses. The ammonia produced by the feces evaporates to the aquaculture lamps for a long time and gradually converts into ammonia. Ammonia has a certain corrosive effect on the bulbs of aquaculture lamps, thus reducing the service life of the aquaculture lamps.
[0004] In the prior art, workers would use a rag to wipe the aquaculture lamp, but the effect was poor. Summary of the Invention
[0005] In view of the shortcomings of the existing technology, the purpose of this application is to provide an ammonia-proof aquaculture lamp rack and an ammonia-proof method, which are used to solve the technical problem that ammonia will continue to corrode the aquaculture lamp and shorten the service life of the aquaculture lamp.
[0006] The above-mentioned purpose of the present application is achieved through the following technical solutions: an anti-ammonia breeding lamp stand, comprising a lamp stand, said lamp stand comprising a pair of upright poles and a connecting rod fixedly connected to the bottom of the upright poles, said lamp stands being fixedly provided with a connecting shaft between said lamp stands, a connecting ring being rotatably provided in the middle of said connecting shaft, a connecting rod being fixedly provided on said connecting ring, and a breeding lamp being fixedly provided on one end of said connecting rod away from said connecting ring. A hollow container is provided on said lamp stand, and support rods are extended downwardly at both ends of said hollow container, said support rods being fixedly connected to the lamp stand, a through slot is provided at the bottom of said hollow container, a frost-free cooling fan is plugged into the upper end of said hollow container, the output end of said frost-free cooling fan is in the hollow container, a wiping sponge installed on the hollow container is provided on the edge of said through slot, a driven gear is arranged in a circumferential array on said connecting ring, a driving motor is fixedly provided on said connecting shaft, an active gear is fixedly provided on the output end of said driving motor, and the active gear and the driven gear are meshed.
[0007] By adopting the above technical solution, the lamp holder is placed in the breeding farm. After the breeding lamp is used for a period of time, the driving motor is started to drive the active meshing gear to engage the driven meshing gear, thereby driving the connecting ring. At this time, the breeding lamp on the connecting rod on the connecting ring will rotate and enter the hollow container through the through groove in the hollow container. At this time, the frost-free air cooler is started to cool the outside of the breeding lamp. The ammonia attached to the breeding lamp will turn into liquid water droplets as the temperature drops. As the connecting ring rotates, the breeding lamp will continue to move to the wiping sponge at the edge of the hollow container, and the converted liquid water droplets will be wiped off. As it rotates, the breeding lamp leaves the hollow container and continues to be used. By liquefying the attached ammonia and then automatically wiping it with a wiping sponge, the corrosion caused by ammonia staying on the breeding lamp for a long time can be avoided. The breeding lamp in this application is made of quartz.
[0008] Furthermore, at least two connecting rods are provided on the connecting ring, and a breeding lamp is fixedly provided on each connecting rod.
[0009] By adopting the above technical solution and setting up two breeding lamps, when one breeding lamp is being wiped, the other breeding lamp can still be used.
[0010] Furthermore, a mounting base is fixedly installed on the bottom of the wiping sponge, a plug-in block is fixedly provided on the mounting base, a plug-in slot matching the plug-in block is provided on the hollow container, and the plug-in block is plugged into the hollow container through the plug-in slot.
[0011] By adopting the above technical solution, the wiping effect of the wiping sponge will deteriorate due to repeated use. Therefore, in this application, the wiping sponge is fixed on the mounting base, and the mounting base is connected to the hollow container through the plug-in block, so that the wiping sponge can be quickly replaced.
[0012] Furthermore, an adsorption magnet is fixedly provided at the end of the plug-in block, and the hollow container is made of metal.
[0013] By adopting the above technical solution, by fixing an adsorption magnet at the end of the plug-in block, the mounting base is plugged into the hollow container and will be adsorbed. When removing, the mounting base can be detached by simply prying it hard.
[0014] Furthermore, a pair of vertical plates extend from the bottom of the lamp stand, a rotating shaft is rotatably arranged between the vertical plates, a supporting vertical pole is rotatably arranged on the rotating shaft, and a supporting base for support is installed at the bottom of the supporting vertical pole.
[0015] By adopting the above technical solution, the angle can be adjusted for different situations by rotating the lamp holder to be connected to the supporting pole.
[0016] Furthermore, a positioning hole is provided on the vertical plate, and a fixing hole of the same size as the positioning hole is provided on the supporting vertical rod. There are a plurality of fixing holes arranged in a circular array with the rotating axis as a circular axis, and a positioning shaft is inserted into the positioning hole.
[0017] By adopting the above technical solution, multiple fixing holes are opened on the supporting pole. After the angle of the lamp holder is adjusted, the positioning shaft is inserted into the positioning hole and then inserted into the corresponding fixing hole to complete the fixation.
[0018] Furthermore, an extension sleeve is fixedly installed at the position of the fixed hole on the vertical plate, a through hole is opened in the middle of the extension sleeve, and a spring is arranged in the through hole, one end of the spring is fixedly connected to the end of the extension sleeve away from the vertical plate, and the other end is fixedly connected to the shaft body of the positioning shaft.
[0019] By adopting the above technical solution, when fine-tuning, by pulling the positioning shaft, the positioning shaft will pull the spring and start adjusting the lamp holder. After the adjustment is completed, the positioning shaft is released and the elastic force of the spring will push the positioning shaft and insert it into the positioning hole and fix it to complete the fixation.
[0020] Furthermore, a buffer layer is fixedly provided on one end of the positioning shaft away from the extension sleeve.
[0021] By adopting the above technical solution, in order to reduce the damage caused by the end of the positioning shaft pushing the opposing plate, in this application, a buffer layer is fixedly provided on the positioning shaft to avoid this technical problem.
[0022] Furthermore, the buffer layer is made of flexible rubber.
[0023] Furthermore, a method for preventing ammonia is applicable to an ammonia-proof breeding lamp stand described in any one of the above technical solutions, comprising the following steps:
[0024] S1. Turn on the breeding lights and start normal lighting and breeding work;
[0025] S2. After a period of use, the driving motor is started, and the motor drives the active meshing gear to rotate and engage with the driven meshing gear, thereby driving the connecting ring and the breeding lamp on the connecting rod to rotate;
[0026] S3. When the aquaculture lamp rotates into the hollow container, the frost-free air cooler is started. The output end of the air cooler is inside the hollow container to cool the aquaculture lamp. As the temperature drops, the ammonia attached to the aquaculture lamp will liquefy into water droplets. The aquaculture lamp continues to rotate, carrying the water droplets to the edge of the hollow container, where they come into contact with the wiping sponge. The wiping sponge wipes off the water droplets, keeping the aquaculture lamp clean.
[0027] S4. After wiping is completed, the culture lamp continues to rotate out of the hollow container and continues lighting work;
[0028] S5. As the number of uses increases, the wiping effect of the wiping sponge may deteriorate. Remove the old wiping sponge together with the mounting base from the hollow container by unplugging the plug-in block;
[0029] S6. Fix the new wiping sponge on the mounting base, insert it back into the socket slot of the hollow container through the socket block, and use the suction force of the adsorption magnet to ensure that the mounting base is stable.
[0030] By adopting this technical solution, the aquaculture lamps are regularly rotated into a hollow container and cooled by a frost-free air cooler. This liquefies any ammonia adhering to the lamps into water droplets, which are promptly wiped off by a wiping sponge. This effectively prevents corrosion caused by prolonged ammonia retention on the lamp surface. This significantly extends the lamp's lifespan and reduces replacement frequency and cost. The entire process, from lamp rotation, cooling, wiping, to sponge replacement, is automated. This reduces the frequency and intensity of manual intervention, lowers labor intensity, and improves work efficiency. Furthermore, automated operations reduce errors and omissions caused by human error, improving operational accuracy and reliability. Key components in this process, such as the sponge and mounting base, are modular in design for easy replacement and maintenance. If the sponge's wiping performance deteriorates, simply remove the old sponge by unplugging the connector, replace it with a new one, and then plug it back into the socket. This design not only simplifies replacements but also reduces maintenance costs.
[0031] In summary, this application includes at least one of the following beneficial technical effects:
[0032] By regularly rotating the aquaculture lamps into hollow containers and cooling them with a frost-free air cooler, the ammonia attached to the lamps is successfully liquefied into water droplets, which are promptly wiped away with a sponge. This process effectively prevents corrosion caused by ammonia remaining on the surface of the aquaculture lamps for a long time, significantly extending the life of the aquaculture lamps and reducing the frequency and cost of replacement.
[0033] 2. The entire process, from lamp rotation, cooling, wiping, and sponge replacement, is automated. This not only reduces the frequency and intensity of manual intervention, lowering labor intensity, but also improves work efficiency. Automation also reduces errors and omissions caused by human factors, improving operational accuracy and reliability.
[0034] 3. The design adopts a modular concept, such as the combination of the wiping sponge and the mounting base. The connection between the plug-in block and the plug-in slot makes replacing the wiping sponge simple and quick. This design not only simplifies the maintenance process, but also reduces maintenance costs and improves the maintainability of the equipment.
[0035] 4. By setting a rotating shaft and supporting pole at the bottom of the lamp frame, the angle of the aquaculture lamp frame can be adjusted according to actual needs. This design increases the flexibility of the equipment and can better adapt to different aquaculture environments and needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 2 is a schematic diagram of the overall structure of the embodiment;
[0037] Figure 2 is a structural schematic diagram from another perspective in the embodiment;
[0038] Figure 3 2. It is a schematic diagram of the structure of the wiping sponge in the embodiment;
[0039] Figure 4 This is a structural view of the vertical plate in the embodiment;
[0040] Figure 5 yes Figure 4 Section view along AA;
[0041] Figure 6 2 is a schematic diagram of the structure of the upper end of the supporting pole in the embodiment.
[0042] Figure numerals: 1. Vertical pole; 10. Connecting rod; 11. Connecting shaft; 12. Connecting ring; 13. Connecting rod; 14. Farming lamp; 15. Driving motor; 16. Active gear; 17. Driven gear; 2. Hollow container; 21. Frost-free air cooler; 22. Support rod; 3. Vertical plate; 31. Support vertical pole; 32. Rotating shaft; 33. Positioning shaft; 34. Extension sleeve; 35. Positioning hole; 36. Fixing hole; 37. Spring; 38. Buffer sleeve; 4. Support base; 5. Wiping sponge; 50. Plug block; 51. Mounting base; 52. Adsorption magnet. DETAILED DESCRIPTION
[0043] The present application is further described in detail below with reference to the accompanying drawings.
[0044] Example, see Figure 1-Figure 5, an anti-acid breeding lamp stand, an anti-acid breeding lamp stand, including a lamp stand, the lamp stand includes a pair of upright poles 1 and a connecting rod 2 fixedly connected to the bottom of the upright poles 1, a connecting shaft 11 is fixedly provided between the upright poles 1, a connecting ring 12 is rotatably provided in the middle of the connecting shaft 11, a connecting rod 13 is fixedly provided on the connecting ring 12, and a breeding lamp 14 is fixedly provided on the end of the connecting rod 13 away from the connecting ring 12, a hollow container 2 is provided on the upright pole 1, and support rods 22 are extended downward at both ends of the hollow container 2, and the support rods 22 are fixed. It is connected to the vertical pole 1, and a through groove is provided at the bottom of the hollow container 2. A frost-free air cooler 21 is inserted into the upper end of the hollow container 2. The output end of the frost-free air cooler 21 is in the hollow container 2. A wiping sponge 5 installed on the hollow container 2 is provided on the edge of the through groove. A driven gear 17 is provided in a circumferential array on the connecting ring 12. A driving motor 15 is fixedly provided on the connecting shaft 11. An active gear 16 is fixedly provided on the output end of the driving motor 15. The active gear 16 and the driven gear 17 are engaged. The breeding lamp in this application is made of quartz.
[0045] Place the lamp holder in the farm. After using the farming lamp 14 for a period of time, start the driving motor 15 to drive the active gear 16 to engage the driven gear 17, thereby driving the connecting ring 12. At this time, the farming lamp 14 on the connecting rod 13 on the connecting ring 12 will rotate and enter the hollow container 2 through the through groove in the hollow container 2. At this time, start the frost-free air cooler 21 to cool the outside of the farming lamp 14. The ammonia attached to the farming lamp 14 will turn into liquid water droplets as the temperature drops. As the connecting ring 12 rotates, the farming lamp 14 will continue to move to the wiping sponge 5 at the edge of the hollow container 2, and the converted liquid water droplets will be wiped off. As it rotates, the farming lamp 14 leaves the hollow container 2 and continues to be used. By liquefying the attached ammonia and then automatically wiping it with the wiping sponge 5, the corrosion caused by ammonia staying on the farming lamp 14 for a long time can be avoided.
[0046] In this embodiment, at least two connecting rods 13 are provided on the connecting ring 12, and a breeding lamp 14 is fixedly provided on each of the connecting rods 13. By providing two breeding lamps 14, when one breeding lamp 14 is being wiped, the other breeding lamp 14 can still be used.
[0047] In this embodiment, a mounting base 51 is fixedly mounted on the bottom of the wiping sponge 5, and a plug-in block 50 is fixedly mounted on the mounting base 51. A plug-in slot matching the plug-in block 50 is provided on the hollow container 2, and the plug-in block 50 is plugged into the hollow container 2 through the plug-in slot. Since the wiping sponge 5 has a poor wiping effect after repeated use, in this application, the wiping sponge 5 can be quickly replaced by fixing the wiping sponge 5 on the mounting base 51 and plugging the mounting base 51 into the hollow container 2 through the plug-in block 50.
[0048] In this embodiment, an adsorption magnet 52 is fixedly mounted on the end of the plug-in block 50, and the hollow container 2 is made of metal. By fixing the adsorption magnet 52 on the end of the plug-in block 50, the mounting base 51 is attracted to the hollow container 2 when inserted into the hollow container 2. When removing the mounting base 51, it can be detached by simply prying it off with force.
[0049] In this embodiment, a pair of uprights 3 extend from the bottom of the connecting rod 2. A rotation axis 32 is rotatably mounted between the uprights 3. A support rod 31 is rotatably mounted on the rotation axis 32. A support base 4 is mounted at the bottom of the support rod 31 for support. By rotatably connecting the connecting rod 2 to the support rod 31, the angle can be adjusted for different situations.
[0050] In this embodiment, the vertical plate 3 has a positioning hole 35, and the support rod 31 has a fixing hole 36 of the same size as the positioning hole 35. A plurality of fixing holes 36 are arranged in a circular array around the rotation axis 32. A positioning shaft 33 is inserted into the positioning hole 35. After adjusting the angle of the lamp holder 1, the positioning shaft 33 is inserted into the positioning hole 35 and then into the fixing hole 36 to complete the fixation.
[0051] In this embodiment, an extension sleeve 34 is fixedly mounted in the position of the fixing hole 36 on the upright 3. A through-hole is formed in the middle of the extension sleeve 34, and a spring 37 is disposed in the through-hole. One end of the spring 37 is fixedly connected to the end of the extension sleeve 34 away from the upright 3, and the other end is fixedly connected to the shaft of the positioning shaft 33. When fine-tuning, the positioning shaft 33 is pulled, which in turn pulls the spring 37, and the lamp holder 1 begins to adjust. After the adjustment is complete, the positioning shaft 33 is released, and the elastic force of the spring 37 drives the positioning shaft 33, which is then inserted into the positioning hole 35 and fixed to the fixture.
[0052] In this embodiment, a buffer layer is fixedly provided on the end of the positioning shaft 33 away from the extension sleeve 34. In order to reduce the damage caused by the end of the positioning shaft 33 pushing the stand plate 3, the present application avoids this technical problem by fixing a buffer layer on the positioning shaft 33. The buffer layer is made of flexible rubber.
[0053] In this embodiment, an anti-ammonia method is applicable to an anti-ammonia breeding lamp stand described in any one of the above technical solutions, comprising the following steps: S1, turning on the breeding lamp 14 to start normal lighting and breeding work; S2, after a period of use, starting the drive motor 15, the motor drives the active gear 16 to rotate, meshing with the driven gear 17, thereby driving the breeding lamp 14 on the connecting ring 12 and the connecting rod 13 to rotate; S3, when the breeding lamp 14 rotates into the hollow container 2, starting the frost-free air cooler 21, the output end of the air cooler is in the hollow container 2, and the breeding lamp 14 is cooled. As the temperature drops, the ammonia attached to the breeding lamp 14 will liquefy into water droplets, and the breeding lamp 14 continues to rotate, carrying the water droplets to the edge of the hollow container 2, and contacts with the wiping sponge 5, and the wiping sponge 5 wipes off the water droplets. Keep the breeding lamp 14 clean; S4. After wiping, the breeding lamp 14 continues to rotate out of the hollow container 2 and continues lighting work; S5. As the number of uses increases, the wiping effect of the wiping sponge 5 may deteriorate. By unplugging the plug block 50, the old wiping sponge 5 is taken out from the hollow container 2 together with the mounting base 51; S6. Fix the new wiping sponge 5 on the mounting base 51, and insert it back into the plug slot of the hollow container 2 through the plug block 50, and use the suction force of the adsorption magnet 52 to ensure that the mounting base 51 is stable; by regularly rotating the breeding lamp 14 into the hollow container 2, and using the frost-free air cooler 21 for cooling treatment, the ammonia attached to the breeding lamp 14 is liquefied into water droplets, and is wiped off in time by the wiping sponge 5, which effectively prevents the corrosion caused by the ammonia staying on the surface of the breeding lamp 14 for a long time. This significantly extends the service life of the breeding lamp 14, reduces the replacement frequency and cost, and the entire process, from the rotation, cooling, wiping of the breeding lamp 14 to the replacement of the wiping sponge 5, is automated. This reduces the frequency and intensity of manual intervention, reduces labor intensity, and improves work efficiency. At the same time, automated operation also reduces errors and omissions caused by human factors, and improves the accuracy and reliability of operation. Key components in this process, such as the wiping sponge 5 and the mounting base 51, all adopt a modular design for easy replacement and maintenance. When the wiping effect of the wiping sponge 5 deteriorates, you only need to simply pull out the plug block 50 to remove the old wiping sponge 5, replace it with a new wiping sponge 5 and insert it back into the plug slot. This design not only simplifies the replacement process, but also reduces maintenance costs.
[0054] Specific implementation steps: Place the lamp stand in an appropriate location within the farm, ensuring that the support pole 31 is securely mounted on the ground and that the support base 4 provides sufficient support. Secure the connecting rod 13 to the connecting ring 12, and install the farming lamp 14 at the end of the connecting rod 13. Multiple farming lamps 14 can be installed as needed to ensure effective lighting. Plug the frost-free air cooler 21 into the hollow container 2, ensuring that the output end of the air cooler can extend into the interior of the hollow container 2. Secure the wiping sponge 5 to the mounting base 51, then insert the mounting base 51 into the socket of the hollow container 2 through the plug-in block 50, using the suction force of the adsorption magnet 52 to ensure a secure connection. Turn on the farming lamp 14 to begin normal lighting and farming operations. After the farming lamp 14 has been used for a period of time, start the drive motor 15. The motor rotates the driving gear 16, which engages with the driven gear 17, thereby driving the farming lamp 14 on the connecting ring 12 and connecting rod 13. As the connecting ring 12 rotates, the farming lamp 14 enters the hollow container 2. At this time, start the frost-free air cooler 21 to cool the outside of the breeding lamp 14. The ammonia attached to the breeding lamp 14 turns into liquid water droplets as the temperature drops. The breeding lamp 14 continues to rotate, carrying the water droplets to the edge of the hollow container 2, and comes into contact with the wiping sponge 5. The wiping sponge 5 wipes off the water droplets to keep the breeding lamp 14 clean. After wiping, the breeding lamp 14 continues to rotate out of the hollow container 2 and returns to its original position to continue lighting. Replace the wiping sponge 5. As the number of uses increases, the wiping effect of the wiping sponge 5 may deteriorate. At this time, by unplugging the plug block 50, remove the old wiping sponge 5 together with the mounting base 51 from the hollow container 2, fix the new wiping sponge 5 on the mounting base 51, and insert it back into the plug slot of the hollow container 2 through the plug block 50. Use the suction force of the adsorption magnet 52 to ensure that the mounting base 51 is stable. If the angle of the culture lamp 14 needs to be adjusted, the positioning shaft 33 can be loosened, the lamp holder 1 can be rotated to the desired angle, and then the positioning shaft 33 can be reinserted and fixed in the positioning hole 35 and the fixing hole 36 by the elastic force of the spring 37.
[0055] The embodiments of this specific implementation method are all preferred embodiments of the present application and are not intended to limit the scope of protection of the application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A kind of ammonia-proof aquaculture lamp stand, characterized in that: The invention comprises a U-shaped lamp stand, wherein the U-shaped stand (1) is opened upward, a connecting shaft (11) is fixedly provided between the U-shaped stands (1), a connecting ring (12) is rotatably provided in the middle of the connecting shaft (11), a connecting rod (13) is fixedly provided on the connecting ring (12), a breeding lamp (14) is fixedly provided on the end of the connecting rod (13) away from the connecting ring (12), a hollow container (2) is provided on the U-shaped lamp stand, support rods (22) are extended downward at both ends of the hollow container (2), and the support rods (22) are fixedly connected to the U-shaped lamp stand. A through slot is provided at the bottom of the hollow container (2); a frost-free cooling fan (21) is plugged into the upper end of the hollow container (2); an output end of the frost-free cooling fan (21) is arranged in the hollow container (2); a wiping sponge (5) mounted on the hollow container (2) is provided at the edge of the through slot; a driven gear (17) is provided in a circumferential array on the connecting ring (12); a driving motor (15) is fixedly provided on the connecting shaft (11); an active gear (16) is fixedly provided on the output end of the driving motor (15); the active gear (16) and the driven gear (17) are engaged with each other; At least two connecting rods (13) are provided on the connecting ring (12), and a breeding lamp (14) is fixedly provided on each of the connecting rods (13); A pair of vertical plates (3) extend from the bottom of the U-shaped frame (1), a rotating shaft (32) is rotatably provided between the vertical plates (3), a supporting vertical rod (31) is rotatably provided on the rotating shaft (32), and a supporting base (4) for supporting is installed at the bottom of the supporting vertical rod (31); The vertical plate (3) is provided with a positioning hole (35), the supporting vertical rod (31) is provided with a fixing hole (36) of the same size as the positioning hole (35), a plurality of the fixing holes (36) are arranged in a circular array with the rotating shaft (32) as the center, and a positioning shaft (33) is inserted into the positioning hole (35); An extension sleeve (34) is fixedly arranged at the position of the fixing hole (36) on the vertical plate (3), a through hole is opened in the middle of the extension sleeve (34), and a spring (37) is arranged in the through hole, one end of the spring (37) is fixedly connected to the end of the extension sleeve (34) away from the vertical plate (3), and the other end is fixedly connected to the shaft body of the positioning shaft (33).
2. The ammonia-proof aquaculture lamp stand according to claim 1, characterized in that: The bottom of the wiping sponge (5) is fixedly mounted with a mounting base (51), a plug-in block (50) is fixedly arranged on the mounting base (51), a plug-in slot matching the plug-in block (50) is provided on the hollow container (2), and the plug-in block (50) is plugged into the hollow container (2) through the plug-in slot.
3. The ammonia-proof aquaculture lamp stand according to claim 2, characterized in that: An adsorption magnet (52) is fixedly provided at the end of the plug-in block (50), and the hollow container (2) is made of metal.
4. The ammonia-proof aquaculture lamp stand according to claim 1, characterized in that: A buffer layer is fixedly provided on one end of the positioning shaft (33) away from the extension sleeve (34).
5. The ammonia-proof aquaculture lamp stand according to claim 4, characterized in that: The buffer layer is made of flexible rubber.
6. A method for preventing ammonia, applicable to the ammonia-proof culture lamp stand according to any one of claims 1 to 5, characterized in that: The following steps are involved: S1, turn on the breeding light (14) and start normal lighting and breeding work; S2. After a period of use, the driving motor (15) is started, and the motor drives the active gear (16) to rotate and engage with the driven gear (17), thereby driving the connecting ring (12) and the breeding lamp (14) on the connecting rod (13) to rotate; S3. When the cultivation lamp (14) rotates and enters the hollow container (2), the frost-free air cooler (21) is started. The output end of the air cooler is in the hollow container (2) to cool the cultivation lamp (14). As the temperature drops, the ammonia attached to the cultivation lamp (14) will liquefy into water droplets. The cultivation lamp (14) continues to rotate and moves with the water droplets to the edge of the hollow container (2) and contacts the wiping sponge (5). The wiping sponge (5) wipes off the water droplets to keep the cultivation lamp (14) clean. S4. After wiping is completed, the culture lamp (14) continues to rotate away from the hollow container (2) and continues the lighting work. S5. As the number of times of use increases, the wiping effect of the wiping sponge (5) may deteriorate. The old wiping sponge (5) and the mounting base (51) are removed from the hollow container (2) by unplugging the plug block (50); S6. Fix the new wiping sponge (5) on the mounting base (51), insert it back into the insertion slot of the hollow container (2) through the insertion block (50), and use the suction force of the adsorption magnet (52) to ensure that the mounting base (51) is stable.
Citation Information
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