Environment-friendly manure treatment device for planting and breeding combined greenhouse
By designing a manure treatment device, utilizing a liquid pump, sensors, and a crushing system, efficient and environmentally friendly transportation of manure and effective removal of carbon dioxide are achieved. This solves the problems of low transportation accuracy and environmental pollution in existing technologies, and promotes healthy plant growth and resource utilization.
Patent Information
- Application Number
- CN202520613669.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-04-02
AI Technical Summary
Existing methods for treating sewage have low accuracy during transportation, resulting in poor transportation efficiency, and the process generates a large amount of carbon dioxide, polluting the environment.
An environmentally friendly manure treatment device for integrated farming greenhouses was designed. It uses a liquid pump and a liquid pumping solenoid valve in conjunction with a liquid pumping pipe. Carbon dioxide is discharged through the gas outlet pipe controlled by a carbon dioxide sensor and a gas outlet plate motor. The manure liquid is broken up by a crushing motor and a crushing gear system. Combined with nitrogen, phosphorus and potassium sensors, the delivery of manure liquid is precisely controlled, achieving efficient and environmentally friendly manure treatment.
It improves the accuracy and efficiency of manure delivery, reduces carbon dioxide emissions, ensures healthy plant growth, prevents environmental pollution, and provides efficient utilization of manure resources.
Smart Images

Figure CN223928919U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of manure treatment technology, specifically an environmentally friendly manure treatment device for integrated farming greenhouses. Background Technology
[0002] With the rapid development of livestock and poultry farming, especially the promotion of integrated crop and livestock farming models, the treatment of livestock and poultry manure has become an urgent problem to be solved. Manure treatment not only affects the hygiene of farms but also directly impacts the protection of the surrounding ecological environment and the sustainable development of agriculture. Therefore, developing a highly efficient and environmentally friendly manure treatment device is particularly important.
[0003] However, most existing methods of manure treatment involve directly transporting the manure into the greenhouse. This method has low accuracy during transportation, resulting in poor transportation efficiency. At the same time, existing manure treatment devices generate a large amount of carbon dioxide during treatment, which pollutes the environment. In response to these problems, this invention designs an environmentally friendly manure treatment device for integrated farming greenhouses. Utility Model Content
[0004] In view of the above situation and to overcome the defects of the prior art, this utility model provides an environmentally friendly manure treatment device for integrated farming greenhouses, which effectively solves the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an environmentally friendly manure treatment device for integrated farming greenhouses, comprising a ground, a greenhouse fixed to the top of the ground, an air outlet pipe fixed to the left end of the greenhouse, an air outlet plate slidably connected to the left side of the air outlet pipe, a carbon dioxide sensor fixed to the inner surface of the left side of the greenhouse, nitrogen, phosphorus, and potassium sensors fixedly connected to the ground inside the greenhouse, a liquid pump fixed to the right side of the greenhouse, a fertilizer storage tank fixed to the right side of the liquid pump, an air pump at the rear of the liquid pump, a controller at the front end of the liquid pump, a power supply at the right end of the controller, a poultry house fixed to the right end of the power supply, a manure slatted floor fixed to the bottom of the poultry house, a manure hopper fixed to the bottom of the manure slatted floor, a manure pipe fixed to the bottom of the manure hopper, a baffle at the bottom of the manure pipe, a mixing tank fixed to the lower end of the manure pipe, a crushing shaft inside the mixing tank, a main crushing blade fixed to the bottom of the crushing shaft, and a secondary crushing blade slidably connected to the top of the main crushing blade.
[0006] Preferably, a liquid extraction pipe is fixed at the bottom of the mixing tank, the liquid extraction pipe passes through the ground and is fixedly connected to the liquid extraction pump, a fertilizer storage tank pipe is fixed at the rear end of the liquid extraction pipe, a fertilizer storage tank solenoid valve is fixed at the right end of the fertilizer storage tank pipe, the right end of the fertilizer storage tank solenoid valve is fixedly connected to the fertilizer storage tank through a pipe, a delivery pipe is fixed at the rear end of the liquid extraction pipe through a three-way valve, a liquid extraction solenoid valve is fixed at the left side of the delivery pipe, a discharge pipe is fixed at the right end of the liquid extraction solenoid valve through a pipe, and multiple discharge heads are fixed at the bottom of the discharge pipe.
[0007] Preferably, an air supply pipe is fixed to the top of the mixing tank, and the top of the air supply pipe is fixedly connected to the air pump. An air valve is fixed to the left side of the air pump through a pipe, and an air outlet is fixed to the left side of the air valve through a pipe.
[0008] Preferably, the mixing tank is fixedly connected to the ground via a fixing plate. A crushing motor is fixed at the bottom of the ground, and the crushing motor is rotatably connected to the crushing shaft at its bottom. A crushing main gear is fixed to the outside of the crushing shaft. A crushing bevel gear is meshed with the left side of the crushing main gear. A bevel gear positioning rod is fixed to the left side of the crushing bevel gear. A bearing is fixed to the left side of the bevel gear positioning rod. The left side of the outer ring of the bearing is fixedly connected to the mixing tank. A crushing secondary gear is meshed with the bottom of the crushing bevel gear. A crushing bearing is fixed to the bottom of the crushing secondary gear. The inner ring of the crushing bearing is fixedly connected to the crushing shaft. The outer ring of the crushing bearing is fixedly connected to the secondary crushing blade at its bottom. A rotating block is fixed to the top of the manure leakage pipe. The rotating block is rotatably connected to the baffle via a rotating shaft. Springs are fixed at both ends of the right side of the baffle. The other end of each spring is fixedly connected to the mixing tank.
[0009] Preferably, an air outlet plate motor is fixed to the top of the air outlet pipe, the air outlet plate motor is rotatably connected to the air outlet plate, an air outlet motor is fixed inside the air outlet pipe by a fixing rod, and an air outlet fan is rotatably connected to the left side of the air outlet motor.
[0010] Compared with the prior art, the beneficial effects of this utility model are:
[0011] (1) This utility model uses a pump and a solenoid valve to transport the manure inside the mixing tank to the discharge pipe through the pumping pipe, and then outputs it through the discharge head. Furthermore, the solenoid valve and the pipe of the storage tank can be used to transport excess manure to the storage tank, thereby ensuring the efficiency of manure transport. At the same time, the nitrogen, phosphorus and potassium sensors can ensure the accuracy of manure transport, thereby ensuring the manure transport effect.
[0012] (2) This utility model can monitor the carbon dioxide content inside the greenhouse through a carbon dioxide sensor, and then drive the air outlet plate to open through the air outlet plate motor. Furthermore, the air outlet plate motor can drive the air outlet fan to rotate, so that excess carbon dioxide can be output through the air outlet pipe, thereby ensuring the photosynthesis of the plants, ensuring the healthy growth of the plants, and preventing carbon dioxide pollution of the environment.
[0013] (3) The present invention can drive the crushing shaft to rotate through the crushing motor, thereby driving the crushing main gear to rotate, which in turn drives the crushing bevel gear to rotate, which in turn drives the crushing secondary gear to rotate, thereby driving the main crushing blade and the secondary crushing blade to rotate in opposite directions, thereby achieving the purpose of cutting and crushing the fecal liquid, thus ensuring the effect of fecal liquid transportation. Attached Figure Description
[0014] The accompanying drawings are provided to further understand the present invention and form 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 thereof.
[0015] In the attached diagram:
[0016] Figure 1 This is a schematic diagram of the overall design of this utility model;
[0017] Figure 2 This is a top view of the entire utility model;
[0018] Figure 3 This is a schematic diagram of the air outlet pipe of this utility model;
[0019] Figure 4 This is a schematic cross-sectional view of the internal structure of the air outlet pipe of this utility model;
[0020] Figure 5 This is a schematic cross-sectional view of the present invention;
[0021] Figure 6 This is a cross-sectional schematic diagram of the mixing tank of this utility model;
[0022] Figure 7 This is a schematic diagram of the gear breaking mechanism of this utility model.
[0023] In the diagram: 1-Ground; 2-Greenhouse; 3-Poultry House; 4-Mixing Tank; 5-Fertilizer Storage Tank; 6-Liquid Pump; 7-Air Pump; 8-Crushing Motor; 9-Baffle; 101-Controller; 102-Power Supply; 201-Air Outlet Pipe; 202-Air Outlet Plate; 203-Air Outlet Plate Motor; 204-Air Outlet Fan; 205-Air Outlet Motor; 206-Carbon Dioxide Sensor; 207-Nitrogen, Phosphorus, and Potassium Sensor; 301-Manure Slatter Hopper; 302-Manure Slatter Plate; 303-Manure Slatter Pipe; 401-Liquid Level Sensor; 501-Fertilizer Storage Tank Solenoid valve; 502-Fertilizer storage tank pipe; 601-Liquid extraction solenoid valve; 602-Liquid extraction pipe; 603-Liquid delivery pipe; 604-Discharge pipe; 605-Discharge head; 701-Air valve; 702-Air delivery pipe; 703-Air outlet head; 801-Crushing shaft; 802-Crushing main gear; 803-Crushing bevel gear; 804-Crushing secondary gear; 805-Bevel gear positioning rod; 806-Bearing; 807-Secondary crushing blade; 808-Main crushing blade; 809-Crushing bearing; 901-Spring; 902-Rotating block. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0025] Example 1, by Figures 1-3 , Figures 5-6The present invention includes a ground surface 1 supporting the entire device. A greenhouse 2, made of plastic material, is fixed to the top of the ground surface 1 for growing fruits and vegetables. An exhaust pipe 201, also made of plastic material, is fixed to the left end of the greenhouse 2 for discharging excess carbon dioxide. An exhaust plate 202, also made of plastic material, is slidably connected to the left side of the exhaust pipe 201 to ensure the airtightness of the exhaust pipe 201. A carbon dioxide sensor 206, also made of plastic material, is fixed to the inner left surface of the greenhouse 2 to monitor the carbon dioxide content inside the greenhouse 2. A nitrogen, phosphorus, and potassium (NPK) sensor 207 is fixedly connected to the ground 1. The NPK sensor 207 monitors the NPK content of the soil inside the greenhouse 2. A liquid pump 6 is located on the right side of the greenhouse 2. The liquid pump 6 can extract manure from the mixing tank 4. A fertilizer storage tank 5, made of alloy material, is located on the right side of the liquid pump 6. The fertilizer storage tank 5 is used to hold excess manure. An air pump 7 is located at the rear of the liquid pump 6. The air pump 7 can extract carbon dioxide from the mixing tank 4. A controller 101 is located at the front end of the liquid pump 6. The controller 101 controls the entire device. A power supply 102 is located at the right end of the controller 101. The power supply 102 provides the necessary energy for the entire device. A poultry house 3, made of concrete, is fixed to the right end of the power supply 102. The poultry house 3 is used for raising poultry. A manure-slatted floor 302, made of alloy material, is fixed to the bottom of the poultry house 3. The manure-slatted floor 302 is used to drain manure. A manure-slatted hopper 301, also made of alloy material, is fixed to the bottom of the manure-slatted floor 302. The manure-slatted hopper 301 has a funnel-shaped structure and is also made of alloy material. A manure-slatted pipe 303, also made of alloy material, is fixed to the bottom of the manure-slatted hopper 301. The manure-slatted pipe 303, in conjunction with the manure-slatted hopper 301, allows manure to be transported into the mixing tank 4. A baffle 9, also made of alloy material, is provided at the bottom of the manure-slatted pipe 303. The baffle 9 ensures the sealing of the manure leakage pipe 303. A mixing tank 4 is fixed at the lower end of the manure leakage pipe 303. The mixing tank 4 is made of alloy material and provides a place for mixing manure liquid. A crushing shaft 801 is provided inside the mixing tank 4. The crushing shaft 801 is made of alloy material. A main crushing blade 808 is fixed at the bottom of the crushing shaft 801. The main crushing blade 808 is made of alloy material. The crushing shaft 801 can drive the main crushing blade 808 to rotate. A secondary crushing blade 807 is slidably connected to the top of the main crushing blade 808. The secondary crushing blade 807 is made of alloy material. The secondary crushing blade 807 and the main crushing blade 808 work together to disperse the manure liquid, thereby facilitating the transportation of manure liquid.
[0026] Example 2, based on Example 1, combined with... Figure 4 , Figure 7As provided, a suction pipe 602, made of alloy material, is fixed to the bottom of the mixing tank 4. The suction pipe 602 is used to transport manure. It passes through the ground 1 and is fixedly connected to the suction pump 6. A fertilizer storage tank pipe 502, also made of alloy material, is fixed to the rear end of the suction pipe 602. A fertilizer storage tank solenoid valve 501, also made of alloy material, is fixed to the right end of the fertilizer storage tank pipe 502. The right end of the solenoid valve 501 is fixedly connected to the fertilizer storage tank 5 via a pipe. The solenoid valve 501 controls the transport of manure through the fertilizer storage tank pipe 502 into the fertilizer storage tank 5. A delivery pipe 603, made of alloy material, is fixed to the rear end of the suction pipe 602 via a three-way valve. Made of gold material, the infusion pipe 603 has a liquid extraction solenoid valve 601 fixed to its left side. A discharge pipe 604 is fixed to the right end of the liquid extraction solenoid valve 601 via a pipe. The liquid extraction solenoid valve 601 controls the delivery of fecal matter through the infusion pipe 603 to the discharge pipe 604. Multiple discharge heads 605, made of alloy material, are fixed to the bottom of the discharge pipe 604 and can spray fecal matter. An air supply pipe 702, also made of alloy material, is fixed to the top of the mixing tank 4. The top of the air supply pipe 702 is fixedly connected to the air pump 7. An air valve 701 is fixed to the left side of the air pump 7 via a pipe, and an air outlet 703 is fixed to the left side of the air valve 701 via a pipe. The air pump 7, in conjunction with the air pump 7, can transport the air inside the mixing tank 4 to the air outlet 703 through the air supply pipe 702. The mixing tank 4 is fixedly connected to the ground 1 via a fixing plate. A crushing motor 8 is fixed at the bottom of the ground 1, and the crushing motor 8 is rotatably connected to the crushing shaft 801 at its bottom. The crushing motor 8 can drive the crushing shaft 801 to rotate. A crushing main gear 802 is fixed to the outside of the crushing shaft 801. A crushing bevel gear 803 is meshed with the left side of the crushing main gear 802, and the crushing main gear 802 can drive the crushing bevel gear 803 to rotate. A bevel gear positioning rod 805, made of alloy material, is fixed to the left side of the crushing bevel gear 803. The bevel gear positioning rod 805 is used to position the crushing bevel gear 803. A bearing 806 is fixed to the left side of the bevel gear positioning rod 805. The bearing 806 is used to position the bevel gear positioning rod 805. The left side of the outer ring of the bearing 806 is fixedly connected to the mixing tank 4. A crushing auxiliary gear 804 is meshed with the bottom of the crushing bevel gear 803. The crushing bevel gear 803 can drive the crushing auxiliary gear 804 to rotate. A crushing bearing 809 is fixed to the bottom of the crushing auxiliary gear 804. The inner ring of the crushing bearing 809 is fixedly connected to the crushing shaft 801. The outer ring of the crushing bearing 809 is fixedly connected to the auxiliary crushing blade 807 at its bottom. The crushing bearing 809 is used to position the auxiliary crushing blade 807.A rotating block 902, made of alloy material, is fixed to the top of the manure-leaking pipe 303. The rotating block 902 is used to position the baffle 9 and is rotatably connected to the baffle 9 via a rotating shaft. Springs 901 are fixed to the front and rear ends of the right side of the baffle 9, with the other end of each spring 901 fixedly connected to the mixing tank 4. The springs 901 are elastic, allowing the baffle 9 to fit tightly against the manure-leaking pipe 303. An air outlet motor 203 is fixed to the top of the air outlet pipe 201 and is rotatably connected to the air outlet plate 202. The air outlet motor 203 can drive the air outlet plate 202 to rotate. An air outlet motor 205 is fixed inside the air outlet pipe 201 via a fixing rod. An air outlet fan 204 is rotatably connected to the left side of the air outlet motor 205, and the air outlet motor 205 can drive the air outlet fan 204 to rotate.
[0027] When using this equipment, the worker inserts the nitrogen, phosphorus, and potassium sensor 207 into the soil inside the greenhouse 2. When poultry produce a large amount of manure, the worker flushes water onto the manure-leaking plate 302, causing the manure to fall into the manure-leaking hopper 301, and then through the manure-leaking pipe 303 onto the baffle 9. Due to gravity, the baffle 9 opens, allowing the manure to fall into the mixing tank 4. When no manure is falling, the spring 901 and the rotating block 902 keep the baffle 9 tightly against the manure-leaking pipe 303, preventing backflow of odor and ensuring the safety of the poultry. Furthermore, the controller 101 controls the liquid level sensor 401 and the... The crushing motor 8 starts working, thereby driving the crushing shaft 801 to rotate, which in turn drives the main crushing gear 802 and the main crushing blade 808 to rotate, which in turn drives the crushing bevel gear 803 to rotate, which in turn drives the secondary crushing gear 804 to rotate, which in turn drives the crushing bearing 809 to rotate, which in turn drives the main crushing blade 808 to reverse, so that the secondary crushing blade 807 and the main crushing blade 808 cut and crush the manure. At this time, the controller 101 controls the carbon dioxide sensor 206 and the nitrogen, phosphorus and potassium sensor 207 to work. When the carbon dioxide sensor 206 detects that the carbon dioxide content inside the greenhouse 2 is low, the controller 101 controls the air pump 7 and the air valve 701 to open. The system begins operation, transporting carbon dioxide from the mixing tank 4 through the gas pipe 702 and the gas outlet 703 into the greenhouse 2, thus initiating photosynthesis. When the carbon dioxide sensor 206 detects a high carbon dioxide content inside the greenhouse 2, the controller 101 controls the gas outlet plate motor 203 to start working, thereby rotating the gas outlet plate 202 and opening the gas outlet pipe 201. Furthermore, the controller 101 controls the gas outlet motor 205 to start working, thereby rotating the gas outlet fan 204 to output excess carbon dioxide. Further, when the nitrogen, phosphorus, and potassium sensor 207 detects a low nitrogen, phosphorus, and potassium content in the soil inside the greenhouse 2, the controller... The controller 101 controls the pump 6 and the solenoid valve 601 to work together, so that the manure is transported through the pumping pipe 602 and the delivery pipe 603 to the discharge pipe 604, and then through the discharge head 605 to the soil inside the greenhouse 2. When the nitrogen, phosphorus and potassium sensor 207 detects that the nitrogen, phosphorus and potassium content in the soil is high, the controller 101 controls the solenoid valve 601 to close. Furthermore, when the liquid level sensor 401 detects that the manure in the mixing tank 4 is full, the controller 101 controls the pump 6 and the solenoid valve 501 of the fertilizer storage tank to work, so as to transport the manure in the mixing tank 4 to the fertilizer storage tank 5, thereby providing the required manure for the other greenhouses.
[0028] The working process of this utility model is as follows: When using this equipment, the worker inserts the nitrogen, phosphorus, and potassium sensor 207 into the soil inside the greenhouse 2. When the poultry produce a large amount of manure, the worker flushes water onto the manure-leaking plate 302, causing the manure to fall into the manure-leaking hopper 301, and then through the manure-leaking pipe 303 onto the baffle 9. At this time, due to the gravity of the manure, the baffle 9 opens, allowing the manure to fall into the mixing tank 4. When no manure falls, the action of the spring 901 and the rotating block 902 keeps the baffle 9 tightly against the manure-leaking pipe 303, preventing backflow of odor and ensuring the safety of the poultry. Furthermore, the controller 101 controls the liquid level. Sensor 401 and the crushing motor 8 start working, thereby driving the crushing shaft 801 to rotate, which in turn drives the main crushing gear 802 and the main crushing blade 808 to rotate, which in turn drives the crushing bevel gear 803 to rotate, which in turn drives the secondary crushing gear 804 to rotate, which in turn drives the crushing bearing 809 to rotate, which in turn drives the main crushing blade 808 to reverse, so that the secondary crushing blade 807 and the main crushing blade 808 cut and crush the manure. At this time, the controller 101 controls the carbon dioxide sensor 206 and the nitrogen, phosphorus and potassium sensor 207 to work. When the carbon dioxide sensor 206 detects that the carbon dioxide content inside the greenhouse 2 is low, the controller 101 controls the air pump 7 and the... When the gas valve 701 starts working, it transports carbon dioxide from the mixing tank 4 through the gas pipe 702 and the gas outlet 703 into the greenhouse 2, thus initiating photosynthesis. When the carbon dioxide sensor 206 detects a high carbon dioxide content inside the greenhouse 2, the controller 101 controls the gas outlet plate motor 203 to start working, thereby rotating the gas outlet plate 202 and opening the gas outlet pipe 201. Furthermore, the controller 101 controls the gas outlet motor 205 to start working, thereby rotating the gas outlet fan 204 to output excess carbon dioxide. Further, when the nitrogen, phosphorus, and potassium sensor 207 detects a low nitrogen, phosphorus, and potassium content in the soil inside the greenhouse 2, ... The controller 101 controls the pump 6 and the solenoid valve 601 to work together, so that the manure is transported through the pumping pipe 602 and the delivery pipe 603 to the discharge pipe 604, and then through the discharge head 605 to the soil inside the greenhouse 2. When the nitrogen, phosphorus and potassium sensor 207 detects that the nitrogen, phosphorus and potassium content in the soil is high, the controller 101 controls the solenoid valve 601 to close. Furthermore, when the liquid level sensor 401 detects that the manure in the mixing tank 4 is full, the controller 101 controls the pump 6 and the solenoid valve 501 of the fertilizer storage tank to work, so as to transport the manure in the mixing tank 4 to the fertilizer storage tank 5, thereby providing the required manure for the other greenhouses.
[0029] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An environmentally friendly manure treatment device for integrated farming greenhouses, characterized in that: The structure includes a ground surface (1), a greenhouse (2) fixed to the top of the ground surface (1), an air outlet pipe (201) fixed to the left end of the greenhouse (2), an air outlet plate (202) slidably connected to the left side of the air outlet pipe (201), a carbon dioxide sensor (206) fixed to the inner surface of the left side of the greenhouse (2), a nitrogen, phosphorus and potassium sensor (207) fixedly connected to the ground surface (1) inside the greenhouse (2), a liquid pump (6) on the right side of the greenhouse (2), a fertilizer storage tank (5) on the right side of the liquid pump (6), an air pump (7) at the rear of the liquid pump (6), and a controller (101) at the front end of the liquid pump (6). 1) A power supply (102) is provided at the right end. A poultry house (3) is fixed at the right end of the power supply (102). A manure slat (302) is fixed at the bottom of the poultry house (3). A manure hopper (301) is fixed at the bottom of the manure slat (302). A manure pipe (303) is fixed at the bottom of the manure hopper (301). A baffle (9) is provided at the bottom of the manure pipe (303). A mixing tank (4) is fixed at the lower end of the manure pipe (303). A crushing shaft (801) is provided inside the mixing tank (4). A main crushing blade (808) is fixed at the bottom of the crushing shaft (801). A secondary crushing blade (807) is slidably connected to the top of the main crushing blade (808).
2. The environmentally friendly manure treatment device for integrated crop and livestock greenhouses according to claim 1, characterized in that: A liquid extraction pipe (602) is fixed at the bottom of the mixing tank (4). The liquid extraction pipe (602) passes through the ground (1) and is fixedly connected to the liquid extraction pump (6). A fertilizer storage tank pipe (502) is fixed at the rear end of the liquid extraction pipe (602). A fertilizer storage tank solenoid valve (501) is fixed at the right end of the fertilizer storage tank pipe (502). The right end of the fertilizer storage tank solenoid valve (501) is fixedly connected to the fertilizer storage tank (5) through a pipe. A delivery pipe (603) is fixed at the rear end of the liquid extraction pipe (602) through a three-way valve. A liquid extraction solenoid valve (601) is fixed at the left side of the delivery pipe (603). A discharge pipe (604) is fixed at the right end of the liquid extraction solenoid valve (601) through a pipe. Multiple discharge heads (605) are fixed at the bottom of the discharge pipe (604).
3. The environmentally friendly manure treatment device for integrated crop and livestock greenhouses according to claim 2, characterized in that: The top of the mixing tank (4) is fixed with an air supply pipe (702), the top of the air supply pipe (702) is fixedly connected to the air pump (7), the left side of the air pump (7) is fixed with an air valve (701) through a pipe, and the left side of the air valve (701) is fixed with an air outlet (703) through a pipe.
4. The environmentally friendly manure treatment device for integrated crop and livestock greenhouses according to claim 3, characterized in that: The mixing tank (4) is fixedly connected to the ground (1) via a fixing plate. A crushing motor (8) is fixed at the bottom of the ground (1). The crushing motor (8) is rotatably connected to the crushing shaft (801) at its bottom. A crushing main gear (802) is fixed to the outside of the crushing shaft (801). A crushing bevel gear (803) is meshed with the left side of the crushing main gear (802). A bevel gear positioning rod (805) is fixed to the left side of the crushing bevel gear (803). A bearing (806) is fixed to the left side of the bevel gear positioning rod (805). The outer ring of the bearing (806) is fixedly connected to the mixing tank (4) on the left side. A crushing auxiliary gear (804) is meshed with the bottom of the gear (803). A crushing bearing (809) is fixed at the bottom of the crushing auxiliary gear (804). The inner ring of the crushing bearing (809) is fixedly connected to the crushing shaft (801). The outer ring of the crushing bearing (809) is fixedly connected to the auxiliary crushing blade (807) at its bottom. A rotating block (902) is fixed at the top of the manure leakage pipe (303). The rotating block (902) is rotatably connected to the baffle (9) through a rotating shaft. Springs (901) are fixed at both ends of the right side of the baffle (9). The other end of each spring (901) is fixedly connected to the mixing tank (4).
5. The environmentally friendly manure treatment device for integrated crop and livestock greenhouses according to claim 1, characterized in that: An air outlet motor (203) is fixed to the top of the air outlet pipe (201). The air outlet motor (203) is rotatably connected to the air outlet plate (202). An air outlet motor (205) is fixed inside the air outlet pipe (201) by a fixing rod. An air outlet fan (204) is rotatably connected to the left side of the air outlet motor (205).