Double-sided greenhouse intelligent heat storage and release equipment

Through the circulation system of the cold water tank, heat dissipation box and heating box, combined with heat absorption pipe, heat dissipation pipe and automatic cleaning components, the problems of high energy consumption, low efficiency and easy accumulation of dust in the equipment of traditional double-sided greenhouses are solved, and efficient and low-cost greenhouse environmental control and plant growth support are achieved.

CN120548901AActive Publication Date: 2025-08-29YANTAI RES INST OF CHINA AGRI UNIV
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Patent Information

Application Number
CN202510927614.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-07
Publication Date
2025-08-29
Estimated Expiration
2045-07-07

AI Technical Summary

Technical Problem

Traditional double-sided greenhouses have problems such as high energy consumption, low efficiency, high equipment failure rate, inefficient pollution of the environment and water circulation systems in terms of cooling and heating, and the heating box is prone to dust accumulation, resulting in a decrease in heat absorption efficiency.

Method used

The circulation system of the cold water tank, heat dissipation box and heating box is adopted, combined with the heat suction pipe, heat dissipation pipe, electric valve and return pipe, precise temperature control and automatic cleaning are achieved through water circulation, and the heat transfer components driven by the water pump and motor are used to improve heat exchange efficiency, reduce the use of additional water pumps, and enhance the heat dissipation effect and cleanliness.

Benefits of technology

Accurate temperature regulation of different greenhouse environments is achieved, reducing the cost of use, improving heat exchange efficiency and cleanliness, and ensuring the stability and efficient utilization of the plant growth environment.

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Abstract

The equipment comprises a cold water tank, the top of the cold water tank is fixedly connected with a heat dissipation tank, the top of the heat dissipation tank is fixedly provided with a heating tank, one end of the cold water tank is provided with a heat absorption pipe for absorbing heat in a sunny shed, and the other end of the cold water tank is provided with a heat release pipe for releasing heat in a shady shed. A connecting pipe capable of adjusting temperature and an electric valve are arranged between the heat absorption pipe and the heat release pipe, the cold water tank is connected with the heating tank through a backflow pipe, the sunny shed is cooled in a circulating mode through the heat absorption pipe, the shady shed adjusts water supply temperature through the heat release pipe and the electric valve, and the precise temperature requirements of growth of different greenhouse plants are met. In the heat absorption process of the sunny shed, backflow is started through suction linkage of the first water pump, an additional water pump is not needed, the use cost is reduced, a backflow pipe is arranged in a bent mode to be in linkage with cooling fins, hot water flows back to the cold water tank from the heating tank to be cooled, and heat absorption treatment of the sunny shed is conveniently achieved through circulating water.
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Description

Technical Field

[0001] The present invention relates to the technical field of double-sided greenhouses, and in particular to intelligent heat storage and release equipment for double-sided greenhouses. Background Art

[0002] Double-sided greenhouses as a new type of greenhouse structure are gradually attracting attention. This type of greenhouse divides the space into a sun shed and a shade shed, which share a wall. The sun shed faces the sun and is mainly used for growing light-loving crops such as vegetables. It uses sufficient light to promote photosynthesis and achieve high quality and high yield. The shade shed faces away from the sun and is suitable for cultivating shade-loving crops such as edible fungi. Its relatively weak light and stable temperature and humidity environment are in line with the growth habits of edible fungi. The coexistence of the two not only improves land utilization, but also achieves resource complementarity and increased production through ecological connections such as gas exchange.

[0003] Sun sheds are prone to high temperature stress due to excessive light during the day, and traditional cooling methods will also lead to high energy consumption and low cooling efficiency. Shade sheds suffer from serious heat loss at night or in low temperature environments. Conventional heating equipment is not only expensive, but also pollutes the environment and wastes energy. The water circulation system mostly relies on independent water pumps to drive, which has high energy consumption and a high equipment failure rate. The water heat dissipation and heat recovery efficiency are low. Since the heating box has been dealing with the external environment for a long time, the surface of the heating box is easily reduced due to the accumulation of dust and dirt, which reduces the heat absorption efficiency. Manual cleaning is not only time-consuming and labor-intensive. Based on this, the present invention designs a double-sided greenhouse intelligent heat storage and release equipment to solve the above problems. Summary of the Invention

[0004] The present invention provides a double-sided greenhouse intelligent heat storage and release equipment, which can effectively solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: an intelligent heat storage and release equipment for a double-sided greenhouse, comprising a cold water tank, a heat dissipation box fixedly connected to the top of the cold water tank, a heating box fixedly installed on the top of the heat dissipation box, a heat absorption pipe for absorbing heat from the inside of the sun shed is provided at one end of the cold water tank, a heat release pipe for releasing heat to the shade shed is provided at the other end of the cold water tank, a connecting pipe with adjustable temperature and an electric valve are provided between the heat absorption pipe and the heat release pipe, the cold water tank and the heating box are connected by a return pipe, a movable plate is provided on the top of the return pipe, and the movable plate moves as water enters the heat absorption pipe.

[0006] Preferably, a first water pump is fixedly installed at one end of the cold water tank, the water outlet end of the first water pump is fixedly connected to a heat absorption pipe, the other end of the heat absorption pipe is fixedly installed on one end of the top of the heating box, a second water pump is fixedly installed at one end of the heating box, the water outlet end of the second water pump is fixedly connected to a heat release pipe, the other end of the heat release pipe is fixedly connected to the other end of the top of the heating box, one end of the heat absorption pipe is connected to the heat release pipe by a connecting pipe, the end of the connecting pipe is fixedly connected to an electric valve, three return pipes are arranged inside the heat dissipation box, the outer sides of the three return pipes and the outer side of the return pipe and the inner wall of the heat dissipation box are connected by heat sinks.

[0007] Preferably, a selective absorption coating is provided on the outside of the heating box, a heat insulation film is provided on the outside of the heat dissipation box, and the return pipe is in a continuously bent shape, forming a back-and-forth layout.

[0008] Preferably, a drive motor is fixedly installed at one end of the heat dissipation box, the output shaft of the drive motor is fixedly connected to a rotating shaft, a belt connection mechanism is provided on the top of the heat dissipation box, a heat-conducting column is rotatably connected inside the heat dissipation box, a heat-conducting plate is fixedly installed on the top of the heat-conducting column, and a heat-conducting frame is evenly fixedly sleeved on the outside of the heat-conducting column.

[0009] Preferably, two adjacent heat-conducting columns and a heat-conducting column and a rotating shaft are connected via a belt connection mechanism, and the heat-conducting plate is inclined.

[0010] Preferably, spring telescopic columns are installed at both ends of the bottom of the heating box by screws, one end of the two spring telescopic columns are connected by a movable plate, a sealing plate is bonded to the bottom surface of the movable plate, one end of the movable plate is fixedly connected to a connecting rope, one end of the connecting rope is fixedly connected to a moving ball, one end of the moving ball is fixedly connected to a limiting rod, and the limiting rod is slidably connected to the inside of the cold water tank.

[0011] Preferably, the movable ball is located at the bottom of the water inlet end of the first water pump, and the cross section of the limiting rod is T-shaped.

[0012] Preferably, one end of the heat release tube is rotatably connected to a bevel gear connection mechanism, one end of the bevel gear connection mechanism is fixedly connected to a turbine, the top of the bevel gear connection mechanism is fixedly connected to a connecting shaft, the top of the connecting shaft is fixedly connected to a reciprocating threaded rod, the outside of the reciprocating threaded rod is connected to a cleaning rod through a thread, the inside of the cleaning rod is evenly slidably connected to the outside of the limit column, and the limit column is fixedly installed on the outside of the heating box.

[0013] Preferably, a fixed rod is fixedly connected to the inside of the heat release tube, and the bevel gear connection mechanism includes two bevel gears, which are meshed and connected. One end of the fixed rod is rotatably connected to a bevel gear, and the top of the fixed rod is rotatably connected to a bevel gear. The turbine is installed on the end of the bevel gear through a fixed shaft.

[0014] Preferably, the cleaning rod is located outside the heating box, and an inclination angle is provided at the end of the heating box.

[0015] Compared with the prior art, the present invention has the following beneficial effects: the structure of the present invention is scientific and reasonable, and it is safe and convenient to use: the sun shed is cooled by circulating the heat absorption pipe, and the shade shed adjusts the water supply temperature by the heat release pipe and the electric valve, which meets the precise temperature requirements of the growth of different greenhouse plants and ensures the plant growth environment. In the process of absorbing heat from the sun shed, the suction of the first water pump is used to start the reflux, and no additional water pump is required, which reduces the cost of use. The reflux pipe is bent and linked with the heat sink, and the hot water is returned to the cold water tank from the heating box to cool the hot water, which is convenient for the sun shed to absorb heat through circulating water, ensuring the heat absorption effect inside the sun shed, and the reflux pipe with a continuously bent shape is used to extend the water flow path to enhance heat dissipation, achieving a "circulation-energy saving-heat dissipation" cost control and recycling linkage system. In the process of releasing heat from the shade shed, the cleaning rod can be moved by the impact of the water flow, and the outside of the heating box can be cleaned to ensure the cleanliness of the outside of the heating box, so as to ensure the efficiency of solar energy absorption during the day. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The accompanying drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used to explain the present invention together with the embodiments of the present invention and do not constitute a limitation of the present invention.

[0017] In the attached figure: Figure 1 It is a structural schematic diagram of the present invention; Figure 2 This is a schematic diagram of the heat pipe installation structure of the present invention; Figure 3 This is a schematic diagram of the heat release pipe installation structure of the present invention; Figure 4 It is a schematic diagram of the rotating shaft installation structure of the present invention; Figure 5 It is a schematic diagram of the movable plate installation structure of the present invention; Figure 6 This is a schematic diagram of the connecting rope installation structure of the present invention; Figure 7 It is a schematic diagram of the installation structure of the reciprocating threaded rod of the present invention; Figure 8 The present invention Figure 7 Schematic diagram of the enlarged structure of area A in the middle; Figure 9 This is a schematic diagram of the heating box installation structure of the present invention; Numbers in the figure: 1, cold water tank; 2, heat dissipation tank; 3, heating tank; 4, heat storage and release assembly; 401, first water pump; 402, heat absorption pipe; 403, second water pump; 404, heat release pipe; 405, connecting pipe; 406, electric valve; 407, return pipe; 408, heat sink; 5, rotary heat conduction assembly; 501, drive motor; 502, rotating shaft; 503, belt connection mechanism; 504, heat conduction Column; 505, heat conduction plate; 506, heat conduction frame; 6, automatic adjustment water supply assembly; 601, spring telescopic column; 602, moving plate; 603, sealing plate; 604, connecting rope; 605, moving ball; 606, limiting rod; 7, automatic cleaning assembly; 701, bevel gear connection mechanism; 702, turbine; 703, connecting shaft; 704, reciprocating threaded rod; 705, cleaning rod; 706, limiting column. DETAILED DESCRIPTION

[0018] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.

[0019] Example: Figure 1-9 As shown, the present invention provides a technical solution, a double-sided greenhouse intelligent heat storage and release equipment, including a cold water tank 1, a heat dissipation box 2 is fixedly connected to the top of the cold water tank 1, a heating box 3 is fixedly installed on the top of the heat dissipation box 2, and heat storage and release components 4 are provided at both ends of the cold water tank 1. The heat storage and release components 4 include a first water pump 401, a heat absorption pipe 402, a second water pump 403, a heat release pipe 404, a connecting pipe 405, an electric valve 406, a return pipe 407 and a heat sink 408; A first water pump 401 is fixedly installed at one end of the cold water tank 1, and the water outlet end of the first water pump 401 is fixedly connected to a heat absorption pipe 402, and the other end of the heat absorption pipe 402 is fixedly installed at one end of the top of the heating box 3. A second water pump 403 is fixedly installed at one end of the heating box 3, and the water outlet end of the second water pump 403 is fixedly connected to a heat release pipe 404, and the other end of the heat release pipe 404 is fixedly connected to the other end of the top of the heating box 3. One end of the heat absorption pipe 402 and the heat release pipe 404 are connected by a connecting pipe 405, and the end of the connecting pipe 405 is fixedly connected to an electric valve 406. Three return pipes 407 are arranged inside the heat dissipation box 2, and the outer sides of the three return pipes 407 and the outer sides of the return pipes 407 and the inner wall of the heat dissipation box 2 are connected by heat sinks 408.

[0020] A selective absorption coating is provided on the outside of the heating box 3. The heating box 3 is made of stainless steel. An insulation film is provided on the outside of the heat dissipation box 2. A water inlet pipe is fixedly connected to one side of the top of the heating box 3. The water inlet pipe is connected to the external pipeline, which is convenient for adding cold water into the heating box 3 and for heating the cold water inside the heating box 3.

[0021] The return pipe 407 is in a continuously bent shape, forming a back-and-forth layout, which can increase the pipe length and thereby enhance the heat dissipation effect on the cold water.

[0022] The personnel bury the cold water tank 1 in the soil between the two greenhouses, and place the heat absorption pipe 402 in the soil behind the sunny greenhouse, called the sun shed, and place the heat release pipe 404 in the soil behind the shady greenhouse, called the shade shed. Thermometers and temperature sensors are set inside the sun shed and the shade shed. When the personnel use the device, the heat dissipation box 2 and the heating box 3 are distributed between the two greenhouses, and water is added to the cold water tank 1. During the water adding process, the return pipe 407 is opened to allow water to also enter the cold water tank 1. After the cold water tank 1 is filled, during use, the cold water inside the cold water tank 1 is heated by the external sunlight to achieve heat storage treatment. According to the temperature inside the sun shed, the personnel can The first water pump 401 is turned on to allow the water in the cold water tank 1 to enter the heat absorption pipe 402, and absorb heat from the inside of the greenhouse through the heat absorption pipe 402, thereby reducing the heat inside the shed, ensuring the temperature inside the shed, and ensuring the growth of plants inside the shed. The water in the heat absorption pipe 402 flows back into the heating box 3, thereby realizing water recycling and avoiding the problem of cold water flowing back into the cold water tank 1. In order to continuously cool the inside of the shed, the water in the heating box 3 flows back to the cold water tank 1 through the return pipe 407. In the process of flowing to the cold water tank 1, the water is cooled by the heat sink 408, thereby realizing a reciprocating cycle of cooling the shed and ensuring the growth of plants inside the shed. At night, when the temperature inside the shade is low, personnel can turn on the second water pump 403 to allow the water inside the heating box 3 to enter the heat release pipe 404, and release heat inside the shade to raise the temperature inside the shade to a suitable temperature to ensure the growth of plants inside the shade. In order to meet the control of different temperatures inside the shade, personnel can open the electric valve 406 to allow the water inside the cold water tank 1 to enter the heat release pipe 404 through the connecting pipe 405, and control the temperature of the water inside the heat release pipe 404 to control the appropriate temperature inside the shade, further ensure the growth of plants inside the shade, and ensure the use of heat storage and release equipment.

[0023] A rotary heat-conducting assembly 5 is installed at the end of the heating box 3. The rotary heat-conducting assembly 5 includes a driving motor 501, a rotating shaft 502, a belt connecting mechanism 503, a heat-conducting column 504, a heat-conducting plate 505 and a heat-conducting frame 506; A driving motor 501 is fixedly installed at one end of the heat dissipation box 2, and the output shaft of the driving motor 501 is fixedly connected to the rotating shaft 502. A belt connecting mechanism 503 is provided on the top of the heat dissipation box 2. A heat-conducting column 504 is rotatably connected inside the heat dissipation box 2, and a heat-conducting plate 505 is fixedly installed on the top of the heat-conducting column 504. A heat-conducting frame 506 is evenly fixedly sleeved on the outside of the heat-conducting column 504.

[0024] Two adjacent heat-conducting columns 504 and the heat-conducting column 504 and the rotating shaft 502 are connected by a belt connecting mechanism 503. The heat-conducting plate 505 is inclined to facilitate the synchronous rotation of multiple heat-conducting columns 504 and facilitate the heat absorption and conduction treatment of solar energy.

[0025] Personnel turn on the drive motor 501 to drive the rotating shaft 502 to rotate, and through the connection of the belt connecting mechanism 503, multiple heat-conducting columns 504 can be driven to rotate, and then the heat-conducting plate 505 and the heat-conducting frame 506 can be driven to rotate, so that the heat-conducting plate 505 is always facing the direction of sunlight, which can better absorb and conduct heat from the sunlight. Moreover, since the heat-conducting columns 504 and the heat-conducting frame 506 are both inside the water body, they can heat the inside of the water body, improve the efficiency of heating cold water, ensure the use of heat storage and release equipment, and solve the problem of low water heating efficiency caused by only heating from the outside of the water in existing life.

[0026] An automatic water-replenishing assembly 6 is installed at the bottom of the heating box 3. The automatic water-replenishing assembly 6 includes a spring telescopic column 601, a movable plate 602, a sealing plate 603, a connecting rope 604, a movable ball 605 and a limiting rod 606; Spring telescopic columns 601 are installed at both ends of the bottom of the heating box 3 by screws. One end of the two spring telescopic columns 601 is connected by a movable plate 602. A sealing plate 603 is bonded to the bottom of the movable plate 602. One end of the movable plate 602 is fixedly connected to a connecting rope 604. One end of the connecting rope 604 is fixedly connected to a moving ball 605. One end of the moving ball 605 is fixedly connected to a limiting rod 606. The limiting rod 606 is slidably connected to the inside of the cold water tank 1.

[0027] The moving ball 605 is located at the bottom of the water inlet end of the first water pump 401. The cross-section of the limiting rod 606 is T-shaped. The suction force generated by the use of the first water pump 401 drives the moving ball 605 to move. During the movement of the moving ball 605, the T-shaped limiting rod 606 prevents the position of the moving ball 605 from being offset.

[0028] The movable plate 602 is located at the top of the return pipe 407, which is convenient for closing the top of the return pipe 407 and preventing the water inside the heating box 3 from entering the heat dissipation box 2 when the awning does not need to absorb heat.

[0029] When the first water pump 401 is started, the suction force generated by the first water pump 401 drives the moving ball 605 to move, causing the moving ball 605 to move upward, and the movement of the moving ball 605 pulls the connecting rope 604 to move, and the movement of the connecting rope 604 drives the sealing plate 603 to move, opening the top of the return pipe 407, so that the water inside the heating box 3 enters the cold water tank 1 again through the return pipe 407, realizing the recycling of water, and no extra water pump is needed to control the return of water, reducing the use cost of the heat storage and release equipment, and at the same time being able to realize the return of water in the first time, ensuring the use of the heat storage and release equipment.

[0030] An automatic cleaning assembly 7 is provided outside the heating box 3, and the automatic cleaning assembly 7 includes a bevel gear connection mechanism 701, a turbine 702, a connecting shaft 703, a reciprocating threaded rod 704, a cleaning rod 705 and a limiting column 706; One end of the heat release tube 404 is rotatably connected to a bevel gear connection mechanism 701, one end of the bevel gear connection mechanism 701 is fixedly connected to a turbine 702, the top of the bevel gear connection mechanism 701 is fixedly connected to a connecting shaft 703, the top of the connecting shaft 703 is fixedly connected to a reciprocating threaded rod 704, the outside of the reciprocating threaded rod 704 is connected to a cleaning rod 705 through a thread, the inside of the cleaning rod 705 is evenly slidably connected to the outside of the limiting column 706, and the limiting column 706 is fixedly installed on the outside of the heating box 3.

[0031] A fixed rod is fixedly connected to the inside of the heat release tube 404, and the bevel gear connection mechanism 701 includes two bevel gears, which are meshed and connected. One end of the fixed rod is rotatably connected to a bevel gear, and the top of the fixed rod is rotatably connected to a bevel gear. The turbine 702 is installed on the end of the bevel gear through a fixed shaft to ensure the rotation of the bevel gear connection mechanism 701, and then ensure the rotation of the reciprocating threaded rod 704.

[0032] The cleaning rod 705 is located outside the heating box 3, and an inclined angle is provided at the end of the heating box 3 to facilitate cleaning the outside of the heating box 3 and avoid guiding the cleaned impurities so that the cleaned impurities fall.

[0033] After the water inside the heating box 3 enters the heat release pipe 404 through the second water pump 403, the water flow impacts the turbine 702 to rotate. The rotation of the turbine 702 and the connection of the bevel gear connection mechanism 701 can drive the connecting shaft 703 to rotate, and the rotation of the connecting shaft 703 drives the reciprocating threaded rod 704 to rotate. The reciprocating threaded rod 704 is threadedly connected to the cleaning rod 705, which can drive the cleaning rod 705 to move. The movement of the cleaning rod 705 can clean the outside of the heating box 3 to ensure the cleanliness of the outside of the heating box 3, so as to better absorb and process solar energy during the day.

[0034] Inject external cold water into the heating box 3. During the day, the sunlight irradiates the heating box 3 and the heat conducting plate 505 to heat the cold water inside the heating box 3. The cold water tank 1 is underground and is injected with cold water. When the heat storage and release equipment is in use, the first water pump 401 can be used to inject cold water into the heat absorption pipe 402 to absorb the heat inside the shed to ensure the temperature inside the shed. The cold water flows back into the heating box 3 through the heat absorption pipe 402. During the cold water injection process, the return pipe 407 is opened to allow the water inside the heating box 3 to flow back into the cold water tank 1. The water can be cooled during the reflux process to achieve water recycling, ensure the temperature inside the shed, and ensure the growth of plants inside the shed. During the heat storage process during the day, the driving motor 501 can be turned on to drive multiple heat-conducting columns 504 and heat-conducting plates 505 to rotate, so as to achieve better heating treatment of the water in the heating box 3 and improve the efficiency of heat storage. At night, the second water pump 403 can be turned on to allow the water inside the heating box 3 to be injected into the heat release pipe 404 and then flow back into the heat release pipe 404 to heat the inside of the shade shed, thereby ensuring the temperature inside the shade shed and the growth of plants inside the shade shed. In the process of heat release for the shade shed, the water flow will impact the rotation of the turbine 702, realizing the rotation of the reciprocating threaded rod 704, and then driving the cleaning rod 705 to move back and forth, cleaning the outside of the heating box 3, ensuring the cleanliness of the outside of the heating box 3, and ensuring the efficiency of heat storage in the heating box 3 during the day.

[0035] Finally, it should be noted that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A double-sided greenhouse intelligent heat storage and release equipment, comprising a cold water tank (1), characterized in that: The top of the cold water tank (1) is fixedly connected to a heat dissipation box (2), and the top of the heat dissipation box (2) is fixedly installed with a heating box (3). A heat absorption pipe (402) for absorbing heat from the inside of the sun shed is provided at one end of the cold water tank (1), and a heat release pipe (404) for releasing heat to the sun shed is provided at the other end of the cold water tank (1). A temperature-adjustable connecting pipe (405) and an electric valve (406) are provided between the heat absorption pipe (402) and the heat release pipe (404). The cold water tank (1) and the heating box (3) are connected via a return pipe (407). A movable movable plate (602) is provided on the top of the return pipe (407). The movable plate (602) moves as water enters the heat absorption pipe (402). A cleaning rod (705) for cleaning the outside of the heating box (3) is provided on the outside of the heating box (3). The cleaning rod (705) moves as water enters the heat release pipe (404).

2. The double-sided greenhouse intelligent heat storage and release equipment according to claim 1, characterized in that: A first water pump (401) is fixedly installed at one end of the cold water tank (1), a water outlet end of the first water pump (401) is fixedly connected to a heat absorption pipe (402), the other end of the heat absorption pipe (402) is fixedly installed at one end of the top of the heating box (3), a second water pump (403) is fixedly installed at one end of the heating box (3), a water outlet end of the second water pump (403) is fixedly connected to a heat release pipe (404), the other end of the heat release pipe (404) is fixedly connected to the other end of the top of the heating box (3), one end of the heat absorption pipe (402) and the heat release pipe (404) are connected via a connecting pipe (405), the end of the connecting pipe (405) is fixedly connected to an electric valve (406), and three return pipes (407) are provided inside the heat dissipation box (2), and the outer sides of the three return pipes (407) and the outer sides of the return pipes (407) and the inner wall of the heat dissipation box (2) are connected via heat sinks (408).

3. The double-sided greenhouse intelligent heat storage and release equipment according to claim 2, characterized in that: The outer side of the heating box (3) is provided with a selective absorption coating, the outer side of the heat dissipation box (2) is provided with a heat insulation film, and the return pipe (407) is in a continuously bent shape, forming a back-and-forth layout.

4. The double-sided greenhouse intelligent heat storage and release equipment according to claim 1, characterized in that: A driving motor (501) is fixedly mounted on one end of the heat dissipation box (2); an output shaft of the driving motor (501) is fixedly connected to a rotating shaft (502); a belt connecting mechanism (503) is provided on the top of the heat dissipation box (2); a heat conducting column (504) is rotatably connected inside the heat dissipation box (2); a heat conducting plate (505) is fixedly mounted on the top of the heat conducting column (504); and a heat conducting frame (506) is evenly and fixedly sleeved on the outside of the heat conducting column (504).

5. The double-sided greenhouse intelligent heat storage and release equipment according to claim 4, characterized in that: Two adjacent heat-conducting columns (504) and the heat-conducting column (504) and the rotating shaft (502) are connected via a belt connection mechanism (503), and the heat-conducting plate (505) is inclined.

6. The double-sided greenhouse intelligent heat storage and release equipment according to claim 2, characterized in that: Both ends of the bottom of the heating box (3) are fixed with spring telescopic columns (601) by screws, one end of the two spring telescopic columns (601) is connected by a movable plate (602), the bottom surface of the movable plate (602) is bonded with a sealing plate (603), one end of the movable plate (602) is fixedly connected to a connecting rope (604), one end of the connecting rope (604) is fixedly connected to a moving ball (605), one end of the moving ball (605) is fixedly connected to a limiting rod (606), and the limiting rod (606) is slidably connected to the inside of the cold water tank (1).

7. The double-sided greenhouse intelligent heat storage and release equipment according to claim 6, characterized in that: The movable ball (605) is located at the bottom of the water inlet end of the first water pump (401), and the cross section of the limiting rod (606) is T-shaped.

8. The double-sided greenhouse intelligent heat storage and release equipment according to claim 1, characterized in that: One end of the heat release tube (404) is rotatably connected to a bevel gear connection mechanism (701), one end of the bevel gear connection mechanism (701) is fixedly connected to a turbine (702), the top of the bevel gear connection mechanism (701) is fixedly connected to a connecting shaft (703), the top of the connecting shaft (703) is fixedly connected to a reciprocating threaded rod (704), the outside of the reciprocating threaded rod (704) is connected to a cleaning rod (705) through a thread, the inside of the cleaning rod (705) is uniformly slidably connected to the outside of a limiting column (706), and the limiting column (706) is fixedly installed on the outside of the heating box (3).

9. The double-sided greenhouse intelligent heat storage and release equipment according to claim 8, characterized in that: A fixed rod is fixedly connected inside the heat release pipe (404), and the bevel gear connection mechanism (701) includes two bevel gears, which are meshed and connected. One end of the fixed rod is rotatably connected to a bevel gear, and the top of the fixed rod is rotatably connected to a bevel gear. The turbine (702) is mounted on the end of the bevel gear via a fixed shaft.

10. The double-sided greenhouse intelligent heat storage and release equipment according to claim 8, characterized in that: The cleaning rod (705) is located outside the heating box (3), and an inclined angle is provided at the end of the heating box (3).

Citation Information

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