Termite and termitomyces albuminosus symbiosis device
By designing a mounting frame and air vent assembly for the symbiosis device of termites and chicken mushrooms, the inconvenience and dangers of the existing device during inflation operation is solved, and convenient disassembly and safe inflation of the storage tank is achieved, which improves the convenience and safety of operation.
Patent Information
- Application Number
- CN202422209295.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-09-10
AI Technical Summary
The existing symbiosis device for termites and chicken mushrooms requires three types of gas storage tanks to be shipped during inflation operation, and special technicians are required to operate, resulting in inconvenient and dangerous inflation operation.
A symbiosis device based on termites and chicken mushrooms is designed, including a breeding box, a mounting rack and an exhaust assembly. The mounting frame is used to disassemble and install the storage tank body, and the air outlet assembly is used to dock and remove the input docking pipe to achieve the purpose of ventilation. This makes it easier to remove the storage tank from the breeding box and replace it, and perform uniform inflation operations under a safe environment.
Through the design of this device, the inconvenience and dangers of disassembly and assembly and inflation operation of the storage tank body are solved, the operation convenience and safety are improved, and the dependence on special technical personnel is reduced.
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Figure CN222982142U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of Aldrinia albuminosa cultivation, in particular to a device based on the symbiosis of termites and Aldrinia albuminosa. Background Art
[0002] After a long period of observation, people found that termites and Alternaria albuminosa have a symbiotic relationship. When termites build nests underground, they create a special environment suitable for the growth of Alternaria albuminosa. The temperature and humidity in the nest and the mushroom bed formed by termites chewing organic matter such as sawdust provide rich nutrition and stable growth conditions for the mycelium of Alternaria albuminosa. Termites also bring spores of Alternaria albuminosa into the nest through their daily activities, promoting the diffusion and growth of mycelium. Alternaria albuminosa also provides material nutrition for Baiyi. Through these, people have developed a symbiotic device based on termites and Alternaria albuminosa, which is used to mass-produce Alternaria albuminosa.
[0003] In the existing Chinese patent CN110122194A, the patent name is a simulation device for the symbiotic environment of termites and Aldrinia albuminii, which is a symbiotic device for termites and Aldrinia albuminii. The growth and use of termites and Leucococcus albuminii are ensured by controlling the temperature, humidity and nutrient solution in the device, and the symbiotic environment of Leucococcus albuminii and termites is simulated by setting the delivery of methane gas, carbon monoxide gas and carbon dioxide gas. However, in actual use of the device, we found that methane gas, carbon monoxide gas and carbon dioxide gas are all stored in the tank body, which are integrated with the breeding box body and are difficult to remove by themselves. Therefore, after the gas is used up, it is necessary to flush the gas into the tank body through an external storage tank device. Since there are three kinds of gases, it is necessary to carry three kinds of external storage tanks at the same time. Since these storage tanks are large, they need to be carried and dragged when inflating, which is very inconvenient. Then the tank bodies are inflated separately. This inflation operation requires special technicians to operate, so inflation in a termite breeding environment is very dangerous.
[0004] Therefore, how to provide a device based on the symbiosis of termites and Alternaria albuminata is a problem that those skilled in the art need to solve urgently. Utility Model Content
[0005] One purpose of the utility model is to propose a symbiotic device based on termites and Alternaria albuminata, which solves the problem that the existing tank body and the breeding box body need to be fixed by three gas storage tanks and special technicians need to operate the inflation, which makes the inflation operation very inconvenient.
[0006] According to the termite and Termitomyces symbiotic device of the embodiment of the present utility model, it includes a breeding box body. An air inlet pipe is arranged on one side of the breeding box body, and an input docking pipe is arranged on the air inlet pipe; an installation rack is arranged on the side surface of the breeding box body, a storage tank body is arranged on the installation rack, an air outlet assembly is arranged on the top of the storage tank body, and the air outlet assembly is docked with the input docking pipe.
[0007] The installation rack includes a fixed clamping seat and a movable clamping body. The fixed clamping seat is installed on the side surface of the breeding box body, the movable clamping body is arranged on the side surface of the storage tank body, and the movable clamping body is movably clamped on the fixed clamping seat.
[0008] A positioning component is arranged in the fixed clamping seat. The positioning component includes a positioning groove. A clamping head piece and a spring piece are respectively arranged inside the positioning groove. One end of the spring piece abuts against the surface of the clamping head piece. The other end of the clamping head piece extends into the positioning groove after passing through the positioning groove. A clamping groove is arranged on the inner wall of the movable clamping body corresponding to the position of the clamping head piece, and the end of the clamping head piece extending outside the positioning groove is clamped inside the clamping groove.
[0009] The air outlet assembly includes a telescopic pipe fitting, a control valve and a threaded docking head. The telescopic pipe fitting is arranged on the top of the storage tank body and extends into the storage tank body. The control valve is installed at the end of the telescopic pipe fitting away from the storage tank body. An installation pipe is arranged at the other end of the control valve. The threaded docking head is movably sleeved on the end of the installation pipe away from the control valve, and the threaded docking head is threadedly sleeved on one end of the input docking pipe to tightly dock the installation pipe and the input docking pipe.
[0010] Air holes are arranged on the side surface of the breeding box body above the air inlet pipe.
[0011] Docking clamping seats are arranged on the inner wall of the breeding box body corresponding to the positions of the air holes, and a protective net is movably clamped inside the docking clamping seats.
[0012] A baffle assembly is arranged on the side surface of the breeding box body. The baffle assembly includes an opening and closing positioner and a baffle body. The baffle is rotatably connected to the side surface of the breeding box body corresponding to the position of the air hole. The opening and closing positioner is embedded in the side surface of the breeding box body, and one end of the opening and closing positioner abuts against the lower surface of the baffle body to control the rotation angle of the baffle.
[0013] The opening and closing positioner includes a placement groove. A baffle support rod is rotated inside the placement groove. A positioning tooth groove is arranged on the surface of the baffle support rod. An inclined support rod is also rotated inside the placement groove, and one end of the inclined support rod is inserted into the positioning tooth groove to position the position of the baffle support rod.
[0014] The beneficial effects of the present utility model are:
[0015] By setting up the mounting frame and the air outlet assembly, the mounting frame is used for disassembling and installing the storage tank body, and the air outlet assembly is used for docking with and removing the input docking pipe to achieve the purpose of ventilation. This facilitates removing the storage tank body from the breeding box for replacement, replacing the storage tank body filled with gas, and then collecting the empty storage tank bodies together for inflation operation in a safe environment. It achieves the effect of conveniently removing the storage tank body without gas and replacing it with a new one. There is no need to perform inflation operation in the breeding environment, nor to drag three different storage tanks for inflation, improving the operation convenience and operation safety, and solving the problem that the existing tank body is fixed to the breeding box, requiring the transportation of three gas storage tanks and special technicians to operate the inflation, resulting in very inconvenient inflation operation.
[0016] By setting up the air holes, the protective net and the baffle assembly, the air holes are used for exchanging air with the outside world, the protective net covers the air holes to prevent termites from escaping, and then the baffle assembly controls the opening and closing of the baffle body. In this way, when ventilation is needed, the baffle body is opened, and when ventilation is not needed, the baffle body is closed to block the air holes. Brief Description of the Drawings
[0017] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention. In the drawings:
[0018] Figure 1 It is the overall three-dimensional flow chart of the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0019] Figure 2 It is the three-dimensional flow chart of the connection state of the storage tank body, the mounting frame and the air outlet assembly in the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0020] Figure 3 It is the front view flow chart of the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0021] Figure 4 It is the side view flow chart of the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0022] Figure 5 It is the side view cross-sectional flow chart of the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0023] Figure 6 It is the top view cross-sectional flow chart of the position of the baffle assembly in the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0024] Figure 7 It is the three-dimensional flow chart of the chuck part in the symbiotic device based on termites and Termitomyces albuminosus proposed by the present invention.
[0025] Attached drawing reference numerals: 1. Breeding box body; 2. Air inlet pipe; 3. Input docking pipe; 4. Mounting rack; 5. Storage tank body; 6. Air outlet assembly; 7. Fixed clamping seat; 8. Movable clamping body; 9. Positioning assembly; 10. Positioning groove; 11. Clamping head part; 12. Spring part; 13. Card slot; 14. Telescopic pipe fitting; 15. Control valve; 16. Threaded docking head; 17. Mounting pipe; 18. Air hole; 19. Docking clamping seat; 20. Protective net; 21. Baffle assembly; 22. Opening and closing positioner; 23. Baffle body; 24. Placing groove; 25. Baffle support rod; 26. Positioning tooth groove; 27. Diagonal support rod. Detailed implementation mode
[0026] Now, the present utility model will be further described in detail with reference to the accompanying drawings. These drawings are all simplified schematic diagrams, only showing the basic structure of the present utility model in a schematic manner, so they only show the components related to the present utility model.
[0027] Embodiment 1
[0028] Reference Figure 1 , Figure 4 and Figure 5 , including a breeding box body 1, an air inlet pipe 2 is arranged on one side of the breeding box body 1 for introducing air into the breeding box body 1. An input docking pipe 3 is arranged on the air inlet pipe 2, and the docking input pipe is used to dock with the air outlet assembly 6 to connect the gas inside the storage tank body 5 to the air inlet pipe 2;
[0029] A mounting rack 4 is arranged on the side surface of the breeding box body 1. The mounting rack 4 includes a fixed clamping seat 7 and a movable clamping body 8. The side surface of the fixed clamping seat 7 is a lying "T" shape, and the movable clamping body 8 is a "C" shape. The fixed clamping seat 7 is installed on the side surface of the breeding box body 1, and the movable clamping body 8 is arranged on the side surface of the storage tank body 5. The movable clamping body 8 is movably clamped on the fixed clamping seat 7. The movable clamping body 8 is clamped on the fixed clamping seat 7 and wraps around the surface of the fixed clamping seat 7. Such a clamping method is very stable, and a stop block on one side of the fixed clamping seat 7 blocks and limits the movable clamping seat to prevent excessive movement and detachment from the fixed clamping seat 7. Such a connection method greatly improves the disassembly, assembly and portability of the storage tank body 5. When removing, move the storage tank body 5, and drive the movable clamping seat to be removed from the fixed clamping seat 7 through the storage tank body 5, then the storage tank body 5 can be removed. When installing, operate in the reverse above. The storage tank body 5 is convenient for disassembly and assembly, facilitating the replacement of the storage tank body 5. After removing the empty storage tank body 5, install a storage tank body 5 filled with air, and then carry the empty storage tank body 5 to a safe environment for inflation by special technicians, which greatly improves safety, eliminates the need to drag three groups of storage tanks for inflation respectively, reduces the operation steps, and improves the operation convenience.
[0030] Embodiment 2
[0031] In this embodiment for reference Figure 5 and Figure 7 , a positioning component 9 is provided in the fixed clamping seat 7. The positioning component 9 includes a positioning groove 10 which is designed in a "convex" shape. In order to limit the clamping head part 11, a clamping head part 11 and a spring part 12 are respectively arranged inside the positioning groove 10. One end of the spring part 12 abuts against the surface of the clamping head part 11, and the spring part 12 pushes the clamping head part 11 out of the positioning groove 10, so that it is convenient for the clamping head part 11 to be docked with the clamping groove 13. One end of the clamping head part 11 docked with the positioning groove 10 is set to be conical, so that it is convenient to squeeze the clamping head part 11 through the positioning groove 10 when moving the movable clamping seat, so that the clamping head part 11 contracts into the positioning groove 10. The other end of the clamping head part 11 extends into the interior of the positioning groove 10 after passing through the positioning groove 10. A clamping groove 13 is provided on the inner wall of the movable clamping body 8 corresponding to the position of the clamping head part 11. One end of the clamping head part 11 extending outside the positioning groove 10 is clamped inside the clamping groove 13. When the movable clamping seat is stably clamped on the fixed clamping seat 7, the spring part 12 will push up the clamping head part 11 to stably insert the clamping head part 11 into the clamping groove 13 to stabilize the movable clamping seat, and then the storage tank body 5 is stably stored through the movable clamping seat, achieving the effect of locking the position of the storage tank body 5 and avoiding the problem that the storage tank body 5 slides on the fixed clamping seat 7 through the movable clamping seat during actual use.
[0032] Embodiment 3
[0033] Reference Figures 1 - 5, a storage tank body 5 is arranged on the mounting frame 4. An air outlet assembly 6 is arranged at the top of the storage tank body 5. The air outlet assembly 6 is docked with the input docking pipe 3. The air outlet assembly 6 includes a telescopic pipe fitting 14, a control valve 15 and a threaded docking head 16. The telescopic pipe fitting 14 is a movable sealed telescopic pipe, so it is not easy to leak air when extending and contracting. Mainly to match the height of the mounting pipe 17, the telescopic pipe fitting 14 is arranged at the top of the storage tank body 5 and extends into the interior of the storage tank body 5. The control valve 15 is installed at one end of the telescopic pipe fitting 14 away from the storage tank body 5. The control valve 15 is used to control the amount of gas flowing out of the interior of the storage tank body 5. The other end of the control valve 15 is provided with a mounting pipe 17. The mounting pipe 17 is mainly used to dock with the input docking pipe 3. The threaded docking head 16 is movably sleeved at one end of the mounting pipe 17 away from the control valve 15. The threaded docking head 16 is threadedly sleeved at one end of the input docking pipe 3 to closely dock the mounting pipe 17 and the input docking pipe 3. When docking, move the threaded docking head 16 upward to make it close to the input docking pipe 3. A circle of external threads is arranged on the surface of the input docking pipe 3 corresponding to the position of the threaded docking head 16. Then sleeve the threaded docking head 16 on the input docking pipe 3 and thread it with the circle of external threads. Subsequently, rotate the threaded docking head 16 to drive one end of the mounting pipe 17 to closely fit against one end of the input docking pipe 3. It should be noted here that the height of the mounting pipe 17 close to the input docking pipe 3 is compensated by the telescopic pipe fitting 14, so as to achieve the purpose of sealed docking, and then achieve the docking between the mounting pipe 17 and the input docking pipe 3. In order to further improve the sealing performance, a sealing ring is arranged at the joint of the mounting pipe 17 and the input docking pipe 3 to improve the sealing performance of this connection position.
[0034] Embodiment 4
[0035] Reference Figure 5 , air holes 18 are arranged at the side of the breeding box body 1 above the air inlet pipe 2. The air holes 18 are for improving the gas exchange between the breeding box body 1 and the environment. Docking chucks 19 are arranged on the inner wall of the breeding box body 1 corresponding to the positions of the air holes 18. A protective net 20 is movably clamped inside the docking chucks 19. The protective net 20 covers the air holes 18 to prevent termites from escaping from the air holes 18. It should be noted that the docking chucks 19 are used to clamp the protective net 20. When removing, move the protective net 20 upward to separate it from the docking chucks 19, so that it is convenient to remove the protective net 20 and facilitate the replacement and cleaning of the protective net 20.
[0036] Reference Figure 5 and Figure 6, a baffle assembly 21 is provided on the side of the breeding box body 1, mainly to block the air holes 18 to achieve ventilation and air cut-off. The baffle assembly 21 includes an opening and closing positioner 22 and a baffle body 23. The opening and closing positioner 22 is a support assembly, which can support the baffle body 23, so that the air holes 18 are unblocked. It should be noted that the baffle body 23 adopts an overhanging design. When the opening and closing positioner 22 is not in use, the baffle body 23 blocks the air holes 18 by its own weight, so that the air holes 18 cannot achieve ventilation. Magnets are respectively embedded on the baffle body 23 and the side of the breeding box body 1. When blocking the air holes 18, the magnets absorb sound from each other to stabilize the baffle body 23 and improve the stability of the baffle body 23. The baffle is rotatably connected to the side of the breeding box body 1 corresponding to the air holes 18. The opening and closing positioner 22 is embedded in the side of the breeding box body 1. One end of the opening and closing positioner 22 abuts against the lower surface of the baffle body 23 to control the rotation angle of the baffle. The opening and closing positioner 22 includes a placement groove 24 for placing a baffle support rod 25 and an inclined support rod 27 to avoid protrusions that affect the blocking effect of the baffle body 23. A baffle support rod 25 is rotatably arranged inside the placement groove 24. A positioning tooth groove 26 is formed on the surface of the baffle support rod 25. In order to position the inclined support rod 27 on the baffle support rod 25, an inclined support rod 27 is also rotatably arranged inside the placement groove 24. One end of the inclined support rod 27 is inserted into the positioning tooth groove 26 to position the position of the baffle support rod 25. When the baffle body 23 needs to be opened, rotate the baffle body 23 to make it rotate away from the air holes 18. The air holes 18 are opened for ventilation. Then rotate the baffle support rod 25 to make it block on the surface of the baffle body 23. Then rotate the inclined support rod 27 to make it inserted into the positioning tooth groove 26 to position the position of the baffle support rod 25. The opening position of the baffle body 23 is positioned through the cooperation of the inclined support rod 27 and the baffle support rod 25, similar to the design of a casement window. In this way, ventilation can be achieved when needed and ventilation can be stopped when not needed, and operations can be carried out according to the actual situation.
[0037] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. A device based on the symbiosis of termites and Alternaria albuminata, characterized in that: The invention comprises a breeding box (1), wherein an air inlet pipe (2) is arranged on one side of the breeding box (1), and an input butt joint pipe (3) is arranged on the air inlet pipe (2); a mounting frame (4) is arranged on the side of the breeding box (1), a storage tank (5) is arranged on the mounting frame (4), and an air outlet assembly (6) is arranged on the top of the storage tank (5), and the air outlet assembly (6) is butt jointed with the input butt joint pipe (3).
2. The device based on the symbiosis of termites and Alternaria albuminata according to claim 1 is characterized in that: The mounting frame (4) comprises a fixed card seat (7) and a movable card body (8), wherein the fixed card seat (7) is mounted on the side of the breeding box (1), and the movable card body (8) is arranged on the side of the storage tank (5), and the movable card body (8) is movably connected to the fixed card seat (7).
3. The device based on the symbiosis of termites and Alternaria albuminata according to claim 2 is characterized in that: A positioning assembly (9) is arranged in the fixed card seat (7), and the positioning assembly (9) includes a positioning groove (10). A clamping piece (11) and a spring piece (12) are arranged inside the positioning groove (10), one end of the spring piece (12) presses against the surface of the clamping piece (11), and the other end of the clamping piece (11) passes through the positioning groove (10) and extends to the inside of the positioning groove (10). A clamping groove (13) is arranged on the inner wall of the movable card body (8) at a position corresponding to the clamping piece (11), and one end of the clamping piece (11) extending to the outside of the positioning groove (10) is clamped inside the clamping groove (13).
4. The device based on the symbiosis of termites and Alternaria albuminata according to claim 3 is characterized in that: The gas outlet assembly (6) comprises a telescopic pipe fitting (14), a control valve (15) and a threaded joint (16); the telescopic pipe fitting (14) is arranged on the top of the storage tank body (5) and extends to the inside of the storage tank body (5); the control valve (15) is installed at one end of the telescopic pipe fitting (14) away from the storage tank body (5); a mounting pipe (17) is arranged at the other end of the control valve (15); the threaded joint (16) is movably sleeved on one end of the mounting pipe (17) away from the control valve (15); the threaded joint (16) is threadedly sleeved on one end of the input joint pipe (3) to tightly connect the mounting pipe (17) to the input joint pipe (3).
5. The device based on the symbiosis of termites and Alternaria albuminata according to claim 4 is characterized in that: An air hole (18) is provided on the side of the breeding box (1) above the air inlet pipe (2).
6. The device based on the symbiosis of termites and Alternaria albuminata according to claim 5, characterized in that: A docking seat (19) is provided on the inner wall of the breeding box (1) at a position corresponding to the air hole (18), and a protective net (20) is movably connected inside the docking seat (19).
7. The device based on the symbiosis of termites and Alternaria albuminata according to claim 6 is characterized in that: A baffle assembly (21) is arranged on the side of the breeding box (1), and the baffle assembly (21) comprises an opening and closing positioner (22) and a baffle body (23). The baffle is rotatably connected to the side of the breeding box (1) at a position corresponding to the air hole (18), and the opening and closing positioner (22) is embedded in the side of the breeding box (1). One end of the opening and closing positioner (22) is pressed against the lower surface of the baffle body (23) to control the rotation angle of the baffle.
8. The device based on the symbiosis between termites and Alternaria albuminata according to claim 7 is characterized in that: The opening and closing positioner (22) comprises a placement groove (24), a baffle support rod (25) is rotatably arranged inside the placement groove (24), a positioning tooth groove (26) is provided on the surface of the baffle support rod (25), an oblique support rod (27) is also rotatably arranged inside the placement groove (24), and one end of the oblique support rod (27) is inserted into the positioning tooth groove (26) to position the baffle support rod (25).
Citation Information
Patent Citations
Simulator for termite and termitomyces albuminosus symbiotic environment
CN110122194A