Energy-saving off-grid container planting bin

By using technical means such as sunlight collectors, photovoltaic panels, fans and vertical rotating three-dimensional planting racks in container planting bins, the problem of high energy consumption of artificial lighting in container planting is solved, energy saving and consumption reduction and efficient planting are achieved, cost reduction and yield improvement.

CN120036158APending Publication Date: 2025-05-27谢崇泽 +1

Patent Information

Application Number
CN202510279531.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

In the existing container planting model, the energy consumption of artificial lighting solutions is extremely high, resulting in high electricity costs, which makes the cost of container planting remain high, seriously restricting its large-scale promotion and application.

Method used

An energy-saving off-grid container planting bin was designed, using a combination of sunlight collectors and photovoltaic panels and fans to use natural light and solar energy to power, reducing dependence on artificial lighting and power grids. At the same time, a vertically rotating three-dimensional planting rack and double-layer translucent thermally insulated glass are used to optimize light and energy use.

Benefits of technology

By reducing energy consumption and electricity costs, the overall cost of container planting is reduced, off-grid operation is achieved, the problem of high energy consumption of artificial lighting in traditional container planting is solved, and the photosynthesis efficiency and yield of crops are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of agricultural planting, and discloses an energy-saving off-grid container planting warehouse which comprises a container, a sealing plate is fixedly connected to the right side of the container, an equipment box is fixedly connected to the right side of the sealing plate, and a sunlight collector is fixedly connected to the top of the equipment box. A photovoltaic panel and a fan are fixedly connected to the rear side of the top of the container, optical fiber pipelines are fixedly connected to the right side of the inner wall of the container and the left side of a sealing plate, and two optical fiber pipeline light source releasers are fixedly connected with a sunlight collector light source releaser. The bottom of the inner wall of the container is provided with vertical rotating three-dimensional planting frames which are evenly distributed. Natural lighting is achieved through the light-transmitting heat-insulating glass, meanwhile, natural light is fully utilized through the sunlight collector, the requirement for artificial lighting is reduced, photovoltaic panel and draught fan power supply is reduced, energy consumption and electricity cost are reduced, dependence on external energy is reduced, and the problem that energy consumption of artificial lighting is high in the container planting process is solved; therefore, the cost of container planting is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of agricultural planting, and specifically to an energy-saving off-grid container planting warehouse. Background Art

[0002] With the continuous growth of the global population and the accelerating urbanization process, traditional agriculture is facing increasingly severe challenges. Land resources are becoming increasingly scarce, and environmental pollution problems are becoming more prominent. The sustainability of the traditional agricultural model has been severely tested. Container planting, as an innovative agricultural model, has emerged. It has significant advantages such as land saving, water conservation, strong mobility, and environmental controllability. It can be quickly deployed in complex areas lacking power grid coverage, such as islands, plateaus, mountains, deserts, and tidal flats, and can be deployed nearby to solve the problems of green plant planting and remote transportation.

[0003] Existing container planting models have many defects. The commonly used artificial lighting scheme has extremely high energy consumption, and the power system consumption accounts for more than about 60% of the total system energy consumption. The power consumption of its crop lighting and constant temperature system per day is not less than 180 degrees. Calculated by vegetables with a relatively fast production cycle, the power consumption per kilogram of vegetables is generally more than 10 degrees. The high electricity cost has become the main expenditure in crop production, making the cost of container planting remain high, which severely restricts its large-scale promotion and application. Summary of the Invention

[0004] Aiming at the deficiencies of the existing technology, the present invention provides an energy-saving off-grid container planting warehouse, which solves the problems of extremely high energy consumption of the artificial lighting scheme and the high cost of container planting caused by the high electricity cost.

[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: an energy-saving off-grid container planting warehouse, including a container, a sealing plate is fixedly connected to the right side of the container, an equipment box is fixedly connected to the right side of the sealing plate, a sunlight collector is fixedly connected to the top of the equipment box, a photovoltaic panel and a fan are fixedly connected to the rear side of the top of the container, optical fiber pipelines are fixedly connected to both the right inner wall of the container and the left side of the sealing plate, and a fixed connection is established between the light source emitters of the two optical fiber pipelines and the light source emitter of the sunlight collector. A vertically rotating three-dimensional planting rack is evenly installed on the bottom of the inner wall of the container, and the vertically rotating three-dimensional planting rack is used for planting crops. A water delivery pipeline is fixedly connected between the right inner wall of the container and the left side of the sealing plate. A uniformly distributed first daylighting glass is fixedly connected to the front side of the top of the inner wall of the container, and a uniformly distributed second daylighting glass is fixedly connected to the front side of the inner wall of the container. Two sealing doors are rotatably connected to the right side of the sealing plate, and an off-line integration system is arranged in the equipment box.

[0006] Preferably, the vertical rotary three-dimensional planting rack includes a support frame fixedly connected to the bottom of the inner wall of the container. Tracks are fixedly connected to both the front and rear sides of the support frame. Uniformly distributed planting platforms are arranged between two adjacent tracks on the left and right. A driving motor is installed on the right crossbeam of the support frame. A synchronous shaft is fixedly arranged at the left output end of the driving motor. Driving gears are fixedly connected to both the right output end of the driving motor and the left end of the synchronous shaft. Driven gears are installed on both the left and right sides of the support frame. Connecting gears are rotatably connected to the four corners on both the left and right sides of the support frame. A circulating chain is meshed and connected between the surfaces of the four connecting gears on the adjacent side.

[0007] Preferably, a partition door is provided on the right side of the sealing plate for entering the interior of the container.

[0008] Preferably, a transmission chain is meshed and connected between the surfaces of the adjacent driving gear and the driven gear. The planting platforms are slidably connected to the tracks.

[0009] Preferably, the circulating chain passes through the interiors of two adjacent tracks from the front and rear, and a chute sufficient for the circulating chain to move is provided inside the track. The planting platform is rotatably connected to the circulating chain.

[0010] Preferably, evenly distributed spray heads penetrate and are fixedly connected to the surface of the water delivery pipe. The spray heads are all interconnected with the water delivery pipe. Evenly distributed transmitting ends are fixedly connected to the surfaces of the two optical fiber pipes.

[0011] Preferably, both the first daylighting glass and the second daylighting glass are made of double-layer light-transmitting and heat-insulating glass. The thickness of a single-layer glass is >4 mm, the interval thickness is >6 mm, and the total thickness of the glass is >14 mm.

[0012] Preferably, the container is made of heat-insulating materials to reduce the influence of the external temperature on the internal environment.

[0013] Preferably, the offline integration system includes an environment control module and a monitoring and control module. The environment control module is used to create a suitable and stable growth environment for the crops in the planting warehouse. The monitoring and control module is used to monitor and collect the environmental parameter information in the planting warehouse. The environment control module includes a heat-insulating unit, a constant temperature regulation unit, and a humidity monitoring and regulation unit. The heat-insulating unit is used to reduce the influence of the external temperature by using heat-insulating materials. The constant temperature regulation unit is used to regulate the temperature in the warehouse. The humidity monitoring and regulation unit is used to monitor the humidity in the planting warehouse.

[0014] Preferably, the monitoring and control module includes a sensor monitoring unit and a data storage unit. The sensor monitoring unit is used to monitor various data inside the planting bin, and the data storage unit is used to store the collected data and processing results.

[0015] Working principle: First, the sunlight collector on the top of the container collects natural light and transmits the light to the inside of the bin through an optical fiber pipeline. At the same time, the photovoltaic panels and fans on the top convert solar energy into electrical energy to provide power support for the equipment inside the planting bin. The drive motor on the vertical rotating three-dimensional planting rack drives the dial wheel to rotate through the transmission of the drive shaft, chain and driven gear, so that the planting table moves up and down along the track to ensure that the crops can receive light evenly. The first daylighting glass and the second daylighting glass provide more natural daylighting for the inside of the container, reducing the dependence on artificial lighting. At the same time, the sprinkler on the water delivery pipeline on one side of the sealing plate can water the crops evenly. The thermal insulation material used in the container can reduce the influence of the external air temperature on the internal environment. The internal constant temperature system automatically adjusts according to the environmental temperature to ensure that the crops grow at a suitable temperature. The humidity sensor and the light sensor monitor the environmental parameters inside the bin in real time to provide data support for planting management. The equipment box is used to place control equipment and power storage equipment. The structure and system of the entire planting bin work together. In the offline state, using natural energy and energy-saving design, it provides a good growth environment for the crops.

[0016] The present invention provides an energy-saving off-grid container planting bin, which has the following beneficial effects: 1. The present invention realizes natural daylighting through light-transmitting and heat-insulating glass, and at the same time uses a sunlight collector to make full use of natural light, reducing the need for artificial lighting. The photovoltaic panels and wind turbines are used for power supply, thereby reducing energy consumption and electricity costs and realizing off-grid operation. The setting of the photovoltaic panels and fans converts solar energy into electrical energy to supply power for the equipment in the planting bin, getting rid of the dependence on the power grid and solving the problem of high energy consumption of artificial lighting in traditional container planting, thereby reducing the cost of container planting and getting rid of the dependence on the power grid; with a supporting small-scale wind-solar hybrid system (less than 50 degrees of electricity), off-grid (from the power grid) operation can be realized.

[0017] 2. Through the design of the vertical rotating three-dimensional planting rack, the present invention enables the crops to fully receive natural light, reduces the need for artificial lighting, optimizes the growth conditions, improves the photosynthesis efficiency, helps to increase the crop yield, enables each layer of crops to be irradiated by sunlight, avoids the problems of uneven lighting or insufficient local lighting, effectively improves the photosynthesis efficiency of the crops, provides continuous energy for their growth, and significantly reduces lighting energy consumption.

[0018] 3. Through the modular design of the container, the present invention facilitates transportation and rapid deployment, enabling the establishment of planting facilities in remote and harsh environments such as islands, plateaus, and deserts. It can adapt to various complex environments. The planting chamber uses heat-insulating materials to reduce the impact of the external environment on the internal temperature, enabling it to maintain a stable planting environment with low energy consumption even under extreme climate conditions, ensuring the stability of vegetable supply. At the same time, the internal vertical rotating three-dimensional planting rack layout ensures that crops can receive sunlight within the limited space of the container, achieving efficient planting, greatly improving the utilization rate, and making full use of the precious land resources.

[0019] 4. The present invention uses sensors in the monitoring and control module to continuously monitor parameters such as light intensity, temperature, humidity, and carbon dioxide concentration in the planting chamber. The intelligent control system automatically adjusts the operation of the equipment based on this data, achieving precise environmental control, reducing the errors and labor intensity of manual intervention, reducing energy consumption and carbon emissions, meeting the requirements of sustainable development, and having good economic and ecological benefits. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a three-dimensional view of the energy-saving off-grid container planting chamber of the present invention; Figure 2 is a top view schematic diagram of the energy-saving off-grid container planting chamber of the present invention; Figure 3 is a schematic diagram of the internal vertical rotating three-dimensional planting rack of the energy-saving off-grid container planting chamber of the present invention located inside the container; Figure 4 is a schematic diagram of the inside of the container of the energy-saving off-grid container planting chamber of the present invention; Figure 5 is a front view schematic diagram of the internal vertical rotating three-dimensional planting rack of the energy-saving off-grid container planting chamber of the present invention; Figure 6 is a left side view schematic diagram of the internal vertical rotating three-dimensional planting rack of the energy-saving off-grid container planting chamber of the present invention; Figure 7 is a schematic diagram of the framework of the off-line integration system of the energy-saving off-grid container planting chamber of the present invention.

[0021] Among them, 1. Container; 2. Photovoltaic panel and fan; 3. Sunlight collector; 4. First daylighting glass; 5. Equipment box; 6. Second daylighting glass; 7. Sealing plate; 8. Sealing door; 9. Vertical rotating three-dimensional planting rack; 10. Optical fiber pipeline; 11. Water supply pipeline; 12. Partition door; 13. Sprinkler; 14. Transmitting end; 15. Support frame; 16. Connecting gear; 17. Circulating chain; 18. Driving motor; 19. Driving gear; 20. Driven gear; 21. Transmission chain; 22. Synchronous shaft; 23. Planting table; 24. Track. DETAILED DESCRIPTION OF THE INVENTION

[0022] The technical solution of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0023] Please refer to the attached Figure 1 - attached Figure 4 , the embodiment of the present invention provides an energy-saving off-grid container planting warehouse, including a container 1, a sealing plate 7 is fixedly connected to the right side of the container 1, an equipment box 5 is fixedly connected to the right side of the sealing plate 7, a sunlight collector 3 is fixedly connected to the top of the equipment box 5, a photovoltaic panel and a fan 2 are fixedly connected to the rear side of the top of the container 1, optical fiber pipelines 10 are fixedly connected to the right inner wall of the container 1 and the left side of the sealing plate 7 respectively, and a light source releaser of each of the two optical fiber pipelines 10 is fixedly connected to a light source releaser of the sunlight collector 3. A uniformly distributed vertical rotating three-dimensional planting rack 9 is installed at the bottom of the inner wall of the container 1, and the vertical rotating three-dimensional planting rack 9 is used for planting crops. A water delivery pipeline 11 is fixedly connected between the right inner wall of the container 1 and the left side of the sealing plate 7. A uniformly distributed first daylighting glass 4 is fixedly connected to the front side of the top of the inner wall of the container 1, and a uniformly distributed second daylighting glass 6 is fixedly connected to the front side of the inner wall of the container 1. Two sealing doors 8 are rotatably connected to the right side of the sealing plate 7, and an off-line integrated system is arranged in the equipment box 5.

[0024] The sunlight collector 3 is a multi-head automatic sunlight collector. A small generator set is installed on the side of the container 1, and a wind turbine can be selected and configured. According to the local wind conditions, a 1-3kW wind turbine is adopted. In the case of insufficient photovoltaic power supply, it provides additional power support to ensure the normal operation of the equipment in the planting warehouse. The wind drives the generator rotor to rotate to generate electric energy. And a sunlight collector 3 is installed on the top of the container 1. The function of the sunlight collector 3 is to efficiently collect natural light and provide sufficient natural light illumination for the interior of the planting warehouse. A photovoltaic panel and a fan 2 are also provided to convert solar energy and wind energy into electric energy to supply power to various equipment in the planting warehouse, reducing the dependence on the external power grid, enabling the wind turbine and the photovoltaic panel and the fan 2 to complement each other in power. At the same time, an energy storage system is also arranged in the equipment box 5 to store the surplus energy, realizing self-sufficient energy supply and off-grid operation; The connection between the optical fiber pipeline 10 and the sunlight collector 3 efficiently transmits the natural light collected by the sunlight collector 3 to the interior of the planting warehouse through the optical fiber. The principle is to utilize the total reflection characteristic of the optical fiber to enable the light to be transmitted without loss in the pipeline, thereby providing uniform and sufficient natural light illumination in the warehouse, reducing the demand for artificial lighting and lowering energy consumption; Inside the container 1, there is a constant temperature system. The constant temperature system works with a dual-system, namely air-conditioning refrigeration and floor heating. The electricity required for the system can be provided by the photovoltaic panels, wind turbines, and energy storage system installed on the roof, which solves the problem of electricity required for maintaining a constant temperature inside the system.

[0025] The first daylighting glass 4 and the second daylighting glass 6. The effect of these two daylighting glasses is to increase the daylighting area inside the planting warehouse, enabling more natural light to enter the warehouse, promoting the photosynthesis of crops. Utilizing the light-transmitting property of the glass, at the same time, the double-layer heat insulation design can reduce heat loss and maintain a stable temperature inside the container 1. The outer dimensions of the container 1 adopt a high-cube GP. The opaque single side of the container 1 has a 5 - 8 cm heat insulation layer. The skeleton of the container 1 is made of square pipes. The equipment box 5 is a compartment smaller than 2 m. The partition board is made of foam shell board. One side of the sealing board 7 connected to the equipment box 5 is provided with a door, and the rest is the production area.

[0026] Please refer to the appendix Figure 5 and Figure 6 As shown in the figure, the vertical rotating three-dimensional planting rack 9 includes a support frame 15. The support frame 15 is fixedly connected between the bottom of the inner wall of the container 1. Both the front and rear sides of the support frame 15 are fixedly connected with tracks 24. Uniformly distributed planting platforms 23 are arranged between two adjacent tracks 24 on the left and right. A driving motor 18 is installed on the right crossbeam of the support frame 15. The left output end of the driving motor 18 is fixedly provided with a synchronous shaft 22. Both the right output end of the driving motor 18 and the left end of the synchronous shaft 22 are fixedly connected with driving gears 19. Driven gears 20 are installed on both the left and right sides of the support frame 15. Connecting gears 16 are rotatably connected at the four corners on both the left and right sides of the support frame 15. A circulating chain 17 is meshed between the surfaces of the four connecting gears 16 on the adjacent side.

[0027] When the driving motor 18 starts, the driving gears 19 at its right output end and left output end start to rotate. Since both the driving gears 19 and the driven gears 20 are meshed with the transmission chain 21 for power transmission, and the driven gears 20 are fixedly connected to the corresponding connecting gears 16 on one side, the connecting gears 16 start to rotate. They are connected to each other through the circulating chain 17 and move synchronously, so that the circulating chain 17 circulates.

[0028] The planting platforms 23 are arranged between two adjacent tracks 24 on the left and right, thereby driving the planting platforms 23 to move correspondingly along the tracks 24, realizing the translation and cyclic movement of the planting platforms 23 to meet different planting requirements. The crops can receive light evenly, avoiding the situation of uneven light, and improving the growth quality of the crops. The vertical rotating three-dimensional planting rack 9 is set near the light-transmitting side. The overall width of the vertical rotating three-dimensional planting rack 9 is > 1.5 m. The distance between the glass light-transmitting side and the three-dimensional planting machine is reserved > 50 mm, and the remaining non-light-transmitting side of the working aisle is > 500 mm A smooth and stable sliding connection is achieved between the two tracks 16. This sliding connection method reduces the frictional resistance, makes the movement of the planting table 17 more stable and efficient, and also reduces the wear and energy consumption of the equipment As the main load-bearing structure for crop growth, the layout and design of the vertical rotating three-dimensional planting rack 9 fully consider space utilization and light uniformity. The vertical rotating three-dimensional planting rack 9 provides a suitable growth space and support for crops Please refer to the appendix Figure 4 , an access door 12 is provided on the right side of the sealing plate 7. The access door 12 is used to enter the container 1

[0029] The setting of the access door 12 facilitates personnel to enter and exit for planting, maintenance and harvesting operations. An offline integration system is provided in the equipment box 5, and this system is used for the stable operation and intelligent management of the entire planting warehouse

[0030] Please refer to the appendix Figure 6 , a drive chain 21 is meshed and connected between the surfaces of adjacent driving gears 19 and driven gears 20. The planting tables 23 are all slidably connected to the tracks 24

[0031] Please refer to the appendix Figure 5 , the circulating chain 17 passes through the interiors of two adjacent tracks 24 from front to back, and a chute sufficient for the movement of the circulating chain 17 is provided inside the track 24. The planting table 23 is rotatably connected to the circulating chain 17

[0032] Please refer to the appendix Figure 4 , the surface of the water delivery pipe 11 is penetrated and fixedly connected with evenly distributed spray nozzles 13. The spray nozzles 13 are all interconnected with the water delivery pipe 11. The surfaces of the two optical fiber pipes 10 are fixedly connected with evenly distributed transmitting ends 14

[0033] The function of the water delivery pipe 11 is to provide irrigation water for crops. Water is transported into the pipe through pressure and evenly sprayed through the spray nozzles 13 to ensure that crops obtain sufficient water, and the water pump is provided in the equipment box 5 Please refer to the appendix Figure 4 , both the first daylighting glass 4 and the second daylighting glass 6 adopt double-layer light-transmitting and heat-insulating glass. The thickness of the single-sided glass is > 4 mm, the interval thickness is > 6 mm, and the total thickness of the glass is > 14 mm

[0034] While achieving effective daylighting, it can significantly reduce heat loss. An insulating barrier is formed by the air layer between the double-layer glasses to reduce heat conduction and convection. The first daylighting glass 4 and the second daylighting glass 6 need to be disassembled during transportation, and they are in pieces. The first daylighting glass 4 and the second daylighting glass 6 are installed on-site.

[0035] The container 1 is made of heat-insulating materials to reduce the impact of the external temperature on the internal environment.

[0036] The container 1 is manufactured using heat-insulating materials, which can effectively reduce the impact of the external temperature on the internal environment. The heat-insulating materials have a low thermal conductivity, can prevent heat transfer, reduce the adverse factors of temperature fluctuations on crop growth, and improve the stability and controllability of the internal environment of the planting warehouse. The bottom plate of the container 1 is made of iron plate with a thickness > 5 mm. Steel profiles are used to make the keel. The three-dimensional planter and crops are within 3 tons. It has a double-layer bottom plate with a keel inside. The keel is made of steel profiles, and heat-insulating materials are installed in the vacant areas of the keel. The exterior of the container 1 is painted, and the ordinary painting process is directly adopted. LOGO, company name, and contact information are sprayed on the non-transparent box parts of the container 1.

[0037] Please refer to the appendix Figure 7 , The off-line integration system includes an environmental control module and a monitoring and control module. The environmental control module is used to create a suitable and stable growth environment for the crops in the planting warehouse. The monitoring and control module is used to monitor and collect the environmental parameter information in the planting warehouse. The environmental control module includes a heat insulation unit, a constant temperature regulation unit, and a humidity monitoring and regulation unit. The heat insulation unit is used to reduce the impact of the external temperature using heat-insulating materials. The constant temperature regulation unit is used to adjust the temperature in the warehouse. The humidity monitoring and regulation unit is used to monitor the humidity in the planting warehouse.

[0038] Please refer to the appendix Figure 7 , The monitoring and control module includes a sensor monitoring unit and a data storage unit. The sensor monitoring unit is used to monitor various data in the planting warehouse. The data storage unit is used to store the collected data and processing results.

[0039] The sensor monitoring unit uses sensors to monitor various data such as light intensity, temperature, humidity, and carbon dioxide concentration in the planting warehouse in real time. The data storage unit is convenient for subsequent analysis and traceability, providing a basis for optimizing the planting strategy.

[0040] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An energy-saving off-grid container planting warehouse, comprising a container (1), characterized in that: The right side of the container (1) is fixedly connected to a sealing plate (7), the right side of the sealing plate (7) is fixedly connected to an equipment box (5), the top of the equipment box (5) is fixedly connected to a sunlight collector (3), the top rear side of the container (1) is fixedly connected to a photovoltaic panel and a fan (2), the right side of the inner wall of the container (1) and the left side of the sealing plate (7) are both fixedly connected to optical fiber pipes (10), the light source releasers of the two optical fiber pipes (10) are both fixedly connected to the light source releasers of the sunlight collector (3), a vertically rotating stereoscopic planting rack (9) is installed at the bottom of the inner wall of the container (1), the vertically rotating stereoscopic planting rack (9) is used for planting crops, a water supply pipe (11) is fixedly connected between the right side of the inner wall of the container (1) and the left side of the sealing plate (7), the top front side of the inner wall of the container (1) is fixedly connected to a uniformly distributed first lighting glass (4), the front side of the inner wall of the container (1) is fixedly connected to a uniformly distributed second lighting glass (6), the right side of the sealing plate (7) is rotatably connected to two sealing doors (8), and an offline integrated system is arranged in the equipment box (5).

2. The energy-saving off-grid container planting warehouse according to claim 1 is characterized by: The vertically rotating three-dimensional planting frame (9) comprises a support frame (15), the support frame (15) is fixedly connected to the bottom of the inner wall of the container (1), the front and rear sides of the support frame (15) are fixedly connected to tracks (24), and evenly distributed planting tables (23) are arranged between two adjacent tracks (24) on the left and right. A driving motor (18) is installed on the right crossbeam of the support frame (15), a synchronous shaft (22) is fixedly arranged at the left output end of the driving motor (18), and a driving gear (19) is fixedly connected between the right output end of the driving motor (18) and the left end of the synchronous shaft (22), and a driven gear (20) is installed on the left and right sides of the support frame (15). Connecting gears (16) are rotatably connected at the four corners of the left and right sides of the support frame (15), and a circulating chain (17) is meshed and connected between the surfaces of the four connecting gears (16) on the adjacent sides.

3. The energy-saving off-grid container planting warehouse according to claim 1 is characterized by: A partition door (12) is provided on the right side of the sealing plate (7), and the partition door (12) is used to enter the interior of the container (1).

4. The energy-saving off-grid container planting warehouse according to claim 2 is characterized by: A transmission chain (21) is meshedly connected between the surfaces of the adjacent driving gear (19) and driven gear (20), and the planting platform (23) is slidably connected to the track (24).

5. The energy-saving off-grid container planting warehouse according to claim 2 is characterized by: The circulating chain (17) passes through the interior of two adjacent tracks (24) at the front and rear sides, and a sliding groove is provided inside the track (24) that is sufficient for the circulating chain (17) to move. The planting platform (23) is rotatably connected to the circulating chain (17).

6. The energy-saving off-grid container planting warehouse according to claim 1 is characterized by: The surface of the water delivery pipe (11) is penetrated by and fixedly connected with uniformly distributed nozzles (13), the nozzles (13) are mutually connected with the water delivery pipe (11), and the surfaces of the two optical fiber pipes (10) are fixedly connected with uniformly distributed emission ends (14).

7. The energy-saving off-grid container planting warehouse according to claim 1 is characterized by: The first daylighting glass (4) and the second daylighting glass (6) are both double-layer light-transmitting and heat-insulating glass, with a single-side glass thickness of >4 mm, a spacing thickness of >6 mm, and a total glass thickness of >14 mm.

8. The energy-saving off-grid container planting warehouse according to claim 2 is characterized by: The container (1) is made of heat-insulating material to reduce the impact of the external temperature on the internal environment.

9. The energy-saving off-grid container planting warehouse according to claim 1 is characterized by: The offline integrated system includes an environmental control module and a monitoring and control module. The environmental control module is used to create a suitable and stable growth environment for the crops in the planting bin. The monitoring and control module is used to monitor and collect environmental parameter information in the planting bin. The environmental control module includes a thermal insulation unit, a constant temperature adjustment unit and a humidity monitoring and adjustment unit. The thermal insulation unit is used to use thermal insulation materials to reduce the impact of external temperature. The constant temperature adjustment unit is used to adjust the temperature in the bin. The humidity monitoring and adjustment unit is used to monitor the humidity in the planting bin.

10. The energy-saving off-grid container planting warehouse according to claim 9 is characterized in that: The monitoring and control module includes a sensor monitoring unit and a data storage unit. The sensor monitoring unit is used to monitor various data of the content of the planting bin, and the data storage unit is used to store the collected data and processing results.

Citation Information

Patent Citations

  • Full-self-sustained solar off-network container plant factory

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