Intelligent temperature control sweet potato healing library

By using a retractable flexible liner and temperature control components in the sweet potato healing reservoir, combined with flexible piping and CO2 sensors, the problems of high energy consumption and poor environmental uniformity were solved, achieving efficient energy saving and uniform environmental control during the sweet potato healing process.

CN120615972APending Publication Date: 2025-09-12HAINAN ISLAND AGRI DEV CO LTD
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Patent Information

Application Number
CN202511033537.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-25
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

Existing sweet potato healing equipment has the problems of high energy consumption, poor uniformity of the healing environment, and difficulty in balancing energy saving and intelligent control of air quality.

Method used

A retractable flexible liner combined with flexible piping and temperature control components is used to achieve zone healing and uniform airflow distribution, and precise ventilation is carried out through CO2 sensors and return air ducts to form closed-loop airflow management.

Benefits of technology

High-efficiency energy saving, uniform environmental control and air quality maintenance are achieved during the sweet potato healing process, which avoids energy waste and cross-contamination and improves the consistency of healing effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of agricultural product postharvest treatment, and discloses an intelligent temperature control sweet potato healing warehouse which comprises a warehouse body and a bearing frame, a partition plate is fixedly connected to the interior of the warehouse body and divides the warehouse body into an upper layer and a lower layer, and the lower portion of the partition plate is fixedly connected with the bearing frame. A plurality of bearing assemblies are arranged on the inner surface of the storeroom body and used for fixing the bearing frame, a telescopic flexible inner container is arranged over the bearing assemblies, one end of the telescopic flexible inner container is fixedly connected to the lower surface of the partition plate, and the other end of the telescopic flexible inner container is fixedly connected to the lower surface of the partition plate. The other end of the telescopic flexible inner container is fixedly connected with a plurality of connecting piles, a furling assembly is arranged above the partition plate and in the storeroom body, and the furling assembly comprises a plurality of fixing piers. By arranging the telescopic flexible inner container and combining the sealing layer filled with sand grains at the bottom end of the telescopic flexible inner container, healing treatment of different batches of sweet potatoes in a partitioned and isolated mode is achieved.
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Description

Technical Field

[0001] The invention relates to the technical field of post-harvest processing of agricultural products, and in particular to an intelligent temperature-controlled sweet potato healing storage. Background Art

[0002] As an important economic crop, post-harvest healing of sweet potatoes is crucial for ensuring product quality, extending storage life, and reducing spoilage. The core of the healing process lies in maintaining the sweet potatoes in a stable, high-temperature, high-humidity environment to promote the corking of epidermal wounds, thereby forming an effective protective layer.

[0003] However, the equipment or places used for sweet potato healing in the prior art generally have certain technical defects. Traditional healing treatments are mostly carried out in large, fixed-volume warehouses or cellars. When processing small batches or different batches of sweet potatoes, this method still requires the entire huge space to be temperature and humidity regulated as a whole, which not only causes a huge waste of energy, but also makes it impossible to achieve flexible management and isolation in batches. At the same time, the temperature and humidity control method in the traditional healing warehouse is also relatively extensive. The regulated airflow generated by the heating and humidification equipment is difficult to spread evenly to all corners of the warehouse, which can easily lead to obvious temperature and humidity differences in different areas of the warehouse, making the healing effect of the sweet potato uneven and affecting the final overall quality. In addition, for the waste gases such as carbon dioxide that are continuously generated by the sweet potato's own respiration during the healing process, the prior art often adopts a simple timed ventilation method. This one-size-fits-all ventilation mode is difficult to accurately match the actual waste gas concentration, and will seriously damage the stable temperature and humidity environment that has been established in the warehouse during ventilation, resulting in repeated energy loss. There is a lack of an intelligent control mechanism that can take into account both energy saving and air quality. Summary of the Invention

[0004] In response to the deficiencies of the existing technology, the present invention provides a sweet potato healing warehouse with intelligent temperature control, which solves the problems commonly existing in the existing sweet potato healing process, such as high energy consumption, poor uniformity of the healing environment, and difficulty in balancing energy saving and ventilation.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: an intelligent temperature-controlled sweet potato healing warehouse, comprising a warehouse body and a load-bearing rack, wherein a partition plate is fixedly connected to the interior of the warehouse body, and the partition plate divides the warehouse body into two layers, an upper layer and an lower layer, and a plurality of receiving components are provided on the inner surface of the warehouse body below the partition plate, and the receiving components are used to fix the load-bearing rack, and a retractable flexible liner is provided directly above the receiving components, one end of the retractable flexible liner is fixedly connected to the lower surface of the partition plate, and the other end of the retractable flexible liner is fixedly connected to Multiple connecting piles, above the partition plate, a winding assembly is provided inside the warehouse body, the winding assembly includes multiple fixed piers, the fixed piers are fixedly connected to the upper surface of the partition plate, a motor is fixedly connected to the interior of one of the fixed piers, the output end of the motor is fixedly connected to a winding rod, the winding rod is rotatably connected between the two fixed piers, the outer surface of the winding rod is fixedly connected to multiple winding ropes, the winding rod is fixedly connected to the connecting piles through the winding ropes, the retractable flexible liner is provided with an airflow distribution assembly, and the upper surface of the partition plate is provided with a temperature control assembly.

[0006] Preferably, the receiving assembly includes a receiving platform, which is rotatably connected to the inner surface of the warehouse body, and a plurality of fixed blocks are fixedly connected to the upper surface of the receiving platform. Among the plurality of fixed blocks, every two fixed blocks form a group of locking blocks. In a group of locking blocks, the upper surface of one fixed block is fixedly connected to a hook lock, and the upper surface of another fixed block is fixedly connected to a connecting rod.

[0007] Preferably, the temperature control component includes a bellows, which is fixedly connected to the upper surface of the partition plate, and the interior of the bellows is fixedly connected to a fan 1, the input end of the fan 1 is connected to the outside world, the upper part of the bellows is connected to a humidifier, the output end of the humidifier is connected to an air distributor, the humidifier is connected to a buffer box through the air distributor, the buffer box is fixedly connected to the upper surface of the bellows, and the interior of the bellows is fixedly connected to a heating wire.

[0008] Preferably, the air flow distribution assembly includes a plurality of flexible pipes, which are evenly distributed inside the retractable flexible liner. The input end of the flexible pipe is connected to the buffer box. The outer surface of the flexible pipe is connected to a plurality of nozzles. The nozzles of the same flexible pipe have the same orientation, and the nozzles of adjacent flexible pipes have different orientations.

[0009] Preferably, a fastening block is fixedly connected to the bottom of the carrier frame, a connecting hole is opened inside the fastening block, the connecting hole passes through the outer surface of the fastening block, and the fastening block is fixed by the hook lock passing through the connecting hole.

[0010] Preferably, a sealing layer is provided at the bottom end of the retractable flexible liner, the interior of the sealing layer is filled with sand, the connecting piles are fixedly connected to the outer surface of the sealing layer, and the size of the sealing layer is larger than the size of the receiving platform.

[0011] Preferably, a plurality of temperature and humidity sensors and CO2 sensors are fixedly connected to the interior of the carrier.

[0012] Preferably, a partition is fixedly connected to the interior of the buffer box, and the partition divides the internal space of the buffer box into a plurality of air storage chambers, and the number of the air storage chambers is at least the same as the number of the retractable flexible inner liners.

[0013] Preferably, a heat insulation layer is fixedly connected to the outer surface of the partition.

[0014] Preferably, a return air duct is provided inside the retractable flexible inner liner, the return air duct passes through the sealing layer and is connected to the outside world, and a second fan is fixedly connected to the inner surface of the warehouse body. Outside the retractable flexible inner liner, the input end of the second fan is magnetically connected to the return air duct, the output end of the second fan is connected to the outside world, and the output end of the return air duct is connected to the bellows.

[0015] The present invention provides a sweet potato healing storage with intelligent temperature control. It has the following beneficial effects: 1. The present invention realizes the healing treatment of zoning and isolating different batches of sweet potatoes by providing a retractable flexible inner liner and combining it with a sealing layer filled with sand at the bottom. When the flexible inner liner is lowered, the sealing layer at the bottom naturally droops by its own gravity and covers the outside of the receiving platform to form an independent enclosed space, thereby avoiding the huge energy waste caused by temperature and humidity control of the entire warehouse, and effectively preventing cross contamination between different batches, achieving the dual effects of high efficiency and energy saving and flexible management.

[0016] 2. The hot and humid airflow processed by the temperature control component of the present invention is first sent into a buffer box divided into multiple independent air storage chambers by partitions for pressure stabilization, and then transported to various places in the inner tank through flexible pipes, and finally ejected from nozzles in different directions, thereby breaking the problem of the static air layer formed in the healing space, ensuring a highly uniform temperature and humidity distribution in the entire space, and providing consistent, ideal healing conditions without dead angles for all sweet potatoes.

[0017] 3. During the normal healing period of the present invention, the air in the inner tank naturally flows back to the bellows through the return air duct to form a closed loop, and circulates heating and humidification to save energy to the greatest extent. When the CO2 sensor detects that the exhaust gas concentration exceeds the standard, the independent blower 2 will start to forcibly extract and discharge the exhaust gas, realizing precise ventilation on demand and avoiding energy loss caused by continuous ventilation while ensuring air quality, thus achieving the best balance between operating costs and healing effects. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A perspective view of the present invention; Figure 2 A schematic diagram of the upper layer of the separator of the present invention; Figure 3 A schematic diagram of the lower layer of the separator plate of the present invention; Figure 4 is a schematic diagram of a reel assembly of the present invention; Figure 5 is a schematic diagram of the temperature control assembly of the present invention; Figure 6 is a schematic diagram of the retractable flexible liner of the present invention; Figure 7 is a schematic diagram of a fixing block of the present invention; Figure 8 An interior view of the retractable flexible liner of the present invention; Figure 9 is a cross-sectional view of the temperature control assembly of the present invention; Figure 10 2 is a cross-sectional view of the sealing layer of the present invention.

[0019] Among them, 1. Warehouse body; 2. Carrying frame; 3. Partition plate; 4. Receiver assembly; 5. Retractable flexible liner; 6. Connecting pile; 7. Rewinding assembly; 701. Fixed pier; 702. Motor; 703. Rewinding rod; 704. Rewinding rope; 8. Air flow distribution assembly; 9. Temperature control assembly; 401. Receiver platform; 402. Fixed block; 403. Hook lock; 404. Connecting rod; 901. Bellows; 902. Fan 1; 903. Humidifier; 904. Air distributor; 905. Buffer box; 906. Heating wire; 801. Flexible pipe; 802. Nozzle; 10. Fastening block; 11. Connecting hole; 12. Sealing layer; 13. Sand; 14. Temperature and humidity sensor; 15. CO2 sensor; 16. Partition; 17. Air storage chamber; 18. Insulation layer; 19. Return air duct; 20. Fan 2. DETAILED DESCRIPTION

[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0021] Please see the attached Figure 1 -Attached Figure 10 The embodiment of the present invention provides an intelligent temperature-controlled sweet potato healing warehouse, including a warehouse body 1 and a load-bearing rack 2. A partition plate 3 is fixedly connected to the interior of the warehouse body 1. The partition plate 3 divides the warehouse body 1 into two layers, an upper layer and an lower layer. Below the partition plate 3, a plurality of receiving components 4 are provided on the inner surface of the warehouse body 1. The receiving components 4 are used to fix the load-bearing rack 2. A retractable flexible liner 5 is provided just above the receiving components 4. One end of the retractable flexible liner 5 is fixedly connected to the lower surface of the partition plate 3, and the other end of the retractable flexible liner 5 is fixedly connected to a plurality of connecting piles 6. Above the partition plate 3, the warehouse body 1 is provided with a plurality of connecting piles 6. A winding assembly 7 is provided inside the body 1, and the winding assembly 7 includes multiple fixed piers 701, and the fixed piers 701 are fixedly connected to the upper surface of the partition plate 3. A motor 702 is fixedly connected to the inside of a fixed pier 701, and the output end of the motor 702 is fixedly connected to a winding rod 703, and the winding rod 703 is rotatably connected between the two fixed piers 701. The outer surface of the winding rod 703 is fixedly connected to multiple winding ropes 704, and the winding rod 703 is fixedly connected to the connecting pile 6 through the winding rope 704. The retractable flexible inner liner 5 is provided with an air flow distribution assembly 8, and the upper surface of the partition plate 3 is provided with a temperature control assembly 9.

[0022] Specifically, the warehouse body 1 provides the basic physical space, and the carrier rack 2 is used to carry the batch of sweet potatoes to be cured. The key component partition plate 3 inside the warehouse body 1 divides the overall space into two layers, the upper and lower layers, to separate the equipment area from the healing work area, thereby greatly improving the safety of equipment operation and simplifying the maintenance process. In the lower space, the receiving component 4 can accurately position and stabilize the carrier rack 2 through its locking structure, and the retractable flexible liner 5 deployed just above it can form an independent enclosed space with variable volume according to the size of the healing batch, so as to achieve the ultimate goal of energy saving and zoning management. The lifting action of the retractable flexible liner 5 is entirely responsible for the retracting component 7 in the upper space, and its internal The fixed pier 701 provides a stable installation base for the entire mechanism, and the motor 702 serves as the core power source to drive the winding rod 703 to rotate. The winding rod 703 winds or releases the winding rope 704 and connects the connecting pile 6 as the force point to finally achieve precise control of the expansion or folding state of the retractable flexible liner 5. At the same time, the temperature control component 9, which is also located in the upper space, is responsible for accurately heating and humidifying the inhaled air to prepare the target gas that meets the requirements of the healing process. These regulated gases are finally evenly transported to various parts of the healing space through the airflow distribution component 8 arranged inside the retractable flexible liner 5, thereby creating a stable and uniform microenvironment for sweet potato healing in the retractable flexible liner 5.

[0023] The receiving assembly 4 includes a receiving platform 401, which is rotatably connected to the inner surface of the warehouse body 1. A plurality of fixed blocks 402 are fixedly connected to the upper surface of the receiving platform 401. Among the plurality of fixed blocks 402, every two fixed blocks 402 form a group of locking blocks. In a group of locking blocks, the upper surface of one fixed block 402 is fixedly connected to a hook lock 403, and the upper surface of another fixed block 402 is fixedly connected to a connecting rod 404.

[0024] Specifically, in the operation process of the device, the receiving component 4 is mainly responsible for the precise positioning and firm locking of the carrier. The receiving platform 401 inside it first provides a basic bearing platform to support the weight of the entire carrier, and multiple fixed blocks 402 use the platform as a base, and further introduce a functional structure for realizing locking. Specifically, the hook lock 403 and the connecting rod 404 work together as a complete locking combination, and through precise mechanical cooperation with the entering carrier, the carrier is finally firmly locked to prevent any accidental displacement. More importantly, it ensures that the position of each placement is highly consistent, creating the necessary basic conditions for the subsequent retractable flexible liner 5 to be able to descend smoothly and form an effective seal.

[0025] The temperature control component 9 includes a bellows 901, which is fixedly connected to the upper surface of the partition plate 3. A fan 902 is fixedly connected to the inside of the bellows 901. The input end of the fan 902 is connected to the outside world. The upper part of the bellows 901 is connected to a humidifier 903. The output end of the humidifier 903 is connected to an air distributor 904. The humidifier 903 is connected to a buffer box 905 through the air distributor 904. The buffer box 905 is fixedly connected to the upper surface of the bellows 901. The inside of the bellows 901 is fixedly connected to a heating wire 906.

[0026] Specifically, the temperature control component 9 is responsible for the core task of preparing and delivering regulated air that meets the process requirements in the entire healing library. The bellows 901 inside it first provides an integrated functional carrier and a closed air flow channel, while the fan 902, which serves as the airflow power source, is responsible for driving the air. In this process, the heating wire 906 heats the flowing air to provide basic thermal energy for the healing process. Then, the humidifier 903 adds necessary moisture to the heated air, thereby creating a high-humidity environment required for healing. The treated hot and humid air is then uniformly collected and guided by the air distributor 904, and finally sent to the buffer box 905. The buffer box realizes the pressure stabilization and buffering effect of the airflow through its internal space, effectively avoiding the impact of high-speed airflow on the healing environment, and ensuring that a stable and gentle regulated gas is finally delivered to the retractable flexible liner 5.

[0027] The air flow distribution assembly 8 includes multiple flexible pipes 801, which are evenly distributed inside the retractable flexible inner liner 5. The input end of the flexible pipe 801 is connected to the buffer box 905, and the outer surface of the flexible pipe 801 is connected to multiple nozzles 802. The nozzles 802 of the same flexible pipe 801 have the same direction, and the nozzles 802 of adjacent flexible pipes 801 have different directions.

[0028] Specifically, the airflow distribution component 8, as the final execution link of air conditioning, has the core function of accurately and evenly delivering the stable airflow from the buffer box to the inside of the healing space. The multiple flexible pipes 801 therein are responsible for guiding the airflow and covering the entire retractable flexible inner liner 5 area, thereby avoiding the local overheating or overhumidification problems that may be caused by single-point air supply. The multiple nozzles 802 that are ultimately responsible for releasing the airflow, through their special orientation layout, achieve the effect of actively creating a composite disturbed airflow inside the retractable flexible inner liner 5. This design can effectively stir and mix the air in the space, completely breaking the static air layer with uneven environmental parameters that may be formed, and ultimately ensuring that the temperature and humidity at any location in the entire healing space remain highly consistent, providing a stable and uniform ideal healing environment for all sweet potatoes.

[0029] The bottom of the carrier 2 is fixedly connected with a fastening block 10 , and a connecting hole 11 is opened inside the fastening block 10 . The connecting hole 11 passes through the outer surface of the fastening block 10 , and the fastening block 10 is fixed by a hook lock 403 passing through the connecting hole 11 .

[0030] Specifically, in order to ensure high precision and stability at the beginning of the healing process, a fastening block 10 is specially provided at the bottom of the carrier 2 as a dedicated locking interface, and the connecting hole 11 opened inside it provides a precise engagement channel for the locking mechanism on the ground. When the carrier 2 is placed in place, the locking mechanism can smoothly pass through the connecting hole 11, thereby instantly achieving the effect of firmly locking the entire carrier 2 in the predetermined position. This design not only effectively prevents any displacement of the device due to vibration and other factors during subsequent operation, but more importantly, it ensures the position repeatability of each operation, creating the necessary basic conditions for the subsequent retractable flexible liner 5 to be able to accurately descend and form a reliable peripheral seal.

[0031] A sealing layer 12 is provided at the bottom end of the retractable flexible inner liner 5 , the interior of the sealing layer 12 is filled with sand 13 , and the connecting piles 6 are fixedly connected to the outer surface of the sealing layer 12 . The size of the sealing layer 12 is larger than the size of the receiving platform 401 .

[0032] Specifically, in order to form an airtight environment in the healing space, the bottom end of the retractable flexible liner 5 realizes this function through a sealing layer 12. The sand 13 filled inside the sealing layer 12 uses its own weight to make the sealing layer 12 naturally sag and deform when the retractable flexible liner 5 is lowered into place, so as to fit closely to the receiving platform 401 and the ground around it. The connecting piles 6 fixed here serve as the key force-bearing points of the entire retractable flexible liner 5 structure, directly receiving the lifting force from the upper winding mechanism, thereby accurately controlling the lifting process of the entire retractable flexible liner 5 including the sealing layer 12. Finally, the sealing layer 12 is deliberately designed to be larger than the receiving platform 401. This dimensional redundancy ensures that it can completely cover and exceed the edge of the receiving platform after falling and will not interfere with the rotation of the receiving platform, thereby achieving a more comprehensive and dead-angle-free seal.

[0033] A plurality of temperature and humidity sensors 14 and CO 2 sensors 15 are fixedly connected to the interior of the carrier 2 .

[0034] Specifically, in order to achieve intelligent closed-loop control of the healing environment, a temperature and humidity sensor 14 and a CO2 sensor 15 are specially arranged inside the carrier 2. The function of the temperature and humidity sensor 14 is to collect the core parameters that best represent the environment in which the sweet potato is located in real time, and provide a direct decision-making basis for the control system whether to start the heating or humidification function, thereby achieving the dynamic stability of the temperature and humidity in the retractable flexible inner liner 5. The CO2 sensor 15 focuses on monitoring the exhaust gas concentration generated by the respiration of the sweet potato during the healing process. Its monitoring data is the only criterion for deciding when to start the external fan for forced ventilation, and ultimately achieves the purpose of timely updating the internal air to avoid the accumulation of harmful gases while ensuring the stability of temperature and humidity.

[0035] A partition 16 is fixedly connected to the interior of the buffer box 905 , and the partition 16 divides the internal space of the buffer box 905 into a plurality of air storage chambers 17 . The number of the air storage chambers 17 is at least the same as the number of the retractable flexible inner liners 5 .

[0036] Specifically, in order to achieve independent and stable airflow delivery to multiple healing spaces, the interior of the buffer box 905 is functionally divided through the key component of the partition 16. Its core function is to divert the entire stream of hot and humid air entering the buffer box, thereby forming multiple physically isolated air storage chambers 17. Each air storage chamber 17 is equivalent to a dedicated secondary buffer cavity facing a single healing retractable flexible liner 5. This design can not only perform final pressure stabilization and buffering on the airflow to be delivered to each retractable flexible liner 5, ensuring the smoothness of the airflow, but more importantly, it realizes the effect of independent and interference-free distribution from a total air source to multiple target areas, providing structural guarantees for the system to simultaneously perform uniform healing treatment on multiple batches of sweet potatoes.

[0037] A heat insulation layer 18 is fixedly connected to the outer surface of the partition 16 .

[0038] Specifically, in order to further ensure that the airflow delivered to each healing space can maintain its preset precise temperature, the surface of the partition 16 is specially covered with an insulation layer 18. This insulation layer effectively prevents heat exchange between adjacent air storage chambers 17. On the one hand, it avoids unnecessary energy loss in the terminal link before delivery. On the other hand, it ensures that each independent air storage chamber can become a stable, undisturbed constant temperature air cavity, ultimately achieving the effect of maximizing energy utilization efficiency and temperature control accuracy.

[0039] A return air duct 19 is provided inside the retractable flexible inner liner 5. The return air duct 19 passes through the sealing layer 12 and is connected to the outside world. A fan 20 is fixedly connected to the inner surface of the warehouse body 1. Outside the retractable flexible inner liner 5, the input end of the fan 20 is magnetically connected to the return air duct 19, and the output end of the fan 20 is connected to the outside world. The output end of the return air duct 19 is connected to the bellows 901.

[0040] Specifically, the device achieves the unity of energy saving and air renewal through a dual-mode airflow management system, in which the return air duct 19 serves as a key airflow channel. During normal operation, it provides an energy-saving closed-loop path for the gas in the retractable flexible inner liner 5 to return to the temperature control component for reprocessing, thereby achieving the effect of energy recycling. When too much internal exhaust gas accumulates, the independently deployed fan 20 is activated. Its function is to provide powerful suction power, forcibly extracting the airflow that was originally to return to the circulation and directly discharging it to the outside, thereby achieving the purpose of precise and on-demand adjustment of the internal air quality without interfering with the temperature and humidity stability of the main circulation.

[0041] Working principle: In actual use, the classified sweet potatoes are loaded onto the carrier 2 according to their healing conditions and placed on the receiving assembly 4 in the lower space of the warehouse body 1. At this time, the fastening block 10 at the bottom of the carrier 2 interacts with the hook lock 403 and the connecting rod 404 on the receiving assembly 4 through its connecting hole 11 to achieve precise positioning and locking. Subsequently, the reeling assembly 7 located above the upper partition plate 3 starts to work, and the motor 702 inside it drives the reeling rod 703 to rotate in the opposite direction, thereby slowly lowering and connecting through the reeling rope 704. The retractable flexible liner 5 is connected to the pile 6, until the sealing layer 12 filled with sand 13 at the bottom of the retractable flexible liner 5 naturally sags by its own gravity and covers the outside of the receiving platform 401, forming a closed healing space; then, the temperature control component 9 located above the partition plate 3 is started, and the fan 902 draws fresh air from the outside into the bellows 901, the air flows through the heating wire 906 to be heated, and then humidified by the humidifier 903, and the processed hot and humid air is sent to the air with the insulation layer 18 through the air distributor 904. The buffer box 905 of the partition 16 is divided into multiple independent air storage chambers 17, where the airflow is buffered and stabilized. The airflow is then transported to different retractable flexible inner tanks 5 through the flexible pipes 801 of the airflow distribution assembly 8 and ejected from nozzles 802 in different directions to form a uniform mixed airflow environment. During this process, the temperature and humidity sensors 14 and CO2 sensors 15 fixed inside the carrier 2 monitor the internal environmental parameters in real time. When the temperature or humidity is detected to be lower than the set value, the control system instructs the heating. Wire 906 increases power or instructs humidifier 903 to increase workload, otherwise it reduces or stops working; the gas inside the retractable flexible liner 5 naturally flows back into the bellows through the return air pipe 19 to form a closed loop; when there is too much exhaust gas inside the retractable flexible liner 5, it is accelerated and drawn away to the outside through the fan 20 outside the retractable flexible liner 5; after the healing is completed, the motor 702 rotates forward, driving the winding rod 703 to wind up the winding rope 704, thereby winding up the retractable flexible liner 5 to complete the entire working cycle.

[0042] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent temperature-controlled sweet potato healing warehouse, comprising a warehouse body (1) and a supporting frame (2), characterized in that: A partition plate (3) is fixedly connected to the interior of the warehouse body (1), and the partition plate (3) divides the warehouse body (1) into two layers, an upper layer and an lower layer. Below the partition plate (3), a plurality of receiving components (4) are provided on the inner surface of the warehouse body (1), and the receiving components (4) are used to fix the supporting frame (2). A retractable flexible liner (5) is provided just above the receiving component (4), and one end of the retractable flexible liner (5) is fixedly connected to the lower surface of the partition plate (3), and the other end of the retractable flexible liner (5) is fixedly connected to a plurality of connecting piles (6). Above the partition plate (3), a retracting component (7) is provided inside the warehouse body (1), and the retracting component The component (7) includes a plurality of fixed piers (701), wherein the fixed piers (701) are fixedly connected to the upper surface of the partition plate (3), a motor (702) is fixedly connected to the interior of one of the fixed piers (701), an output end of the motor (702) is fixedly connected to a winding rod (703), the winding rod (703) is rotatably connected between two of the fixed piers (701), a plurality of winding ropes (704) are fixedly connected to the outer surface of the winding rod (703), and the winding rod (703) is fixedly connected to the connecting pile (6) via the winding ropes (704), the retractable flexible liner (5) is provided with an airflow distribution component (8), and the upper surface of the partition plate (3) is provided with a temperature control component (9).

2. The intelligent temperature-controlled sweet potato healing storage according to claim 1, characterized in that: The receiving assembly (4) comprises a receiving platform (401), the receiving platform (401) being rotatably connected to the inner surface of the warehouse body (1), and a plurality of fixed blocks (402) being fixedly connected to the upper surface of the receiving platform (401), wherein every two of the fixed blocks (402) form a group of locking blocks, and within a group of locking blocks, a hook lock (403) is fixedly connected to the upper surface of one of the fixed blocks (402), and a connecting rod (404) is fixedly connected to the upper surface of another of the fixed blocks (402).

3. The intelligent temperature-controlled sweet potato healing storage according to claim 2, characterized in that: The temperature control component (9) includes a bellows (901), the bellows (901) is fixedly connected to the upper surface of the partition plate (3), the interior of the bellows (901) is fixedly connected to a fan 1 (902), the input end of the fan 1 (902) is connected to the outside, the upper part of the bellows (901) is connected to a humidifier (903), the output end of the humidifier (903) is connected to an air distributor (904), the humidifier (903) is connected to a buffer box (905) through the air distributor (904), the buffer box (905) is fixedly connected to the upper surface of the bellows (901), and the interior of the bellows (901) is fixedly connected to a heating wire (906).

4. The intelligent temperature-controlled sweet potato healing storage according to claim 3, characterized in that: The air flow distribution assembly (8) comprises a plurality of flexible pipes (801), wherein the flexible pipes (801) are evenly distributed inside the retractable flexible liner (5), the input end of the flexible pipe (801) is connected to the buffer box (905), and the outer surface of the flexible pipe (801) is connected to a plurality of nozzles (802), wherein the nozzles (802) of the same flexible pipe (801) have the same orientation, and the nozzles (802) of adjacent flexible pipes (801) have different orientations.

5. The intelligent temperature-controlled sweet potato healing storage according to claim 2, characterized in that: The bottom of the carrier (2) is fixedly connected to a fastening block (10), a connecting hole (11) is provided inside the fastening block (10), and the connecting hole (11) passes through the outer surface of the fastening block (10), and the fastening block (10) is fixed by the hook lock (403) passing through the connecting hole (11).

6. The intelligent temperature-controlled sweet potato healing storage according to claim 3, characterized in that: A sealing layer (12) is provided at the bottom end of the retractable flexible liner (5), the interior of the sealing layer (12) is filled with sand (13), the connecting pile (6) is fixedly connected to the outer surface of the sealing layer (12), and the size of the sealing layer (12) is larger than the size of the receiving platform (401).

7. The intelligent temperature-controlled sweet potato healing storage according to claim 1, characterized in that: A plurality of temperature and humidity sensors (14) and CO2 sensors (15) are fixedly connected to the interior of the carrier (2).

8. The intelligent temperature-controlled sweet potato healing storage according to claim 3, characterized in that: A partition (16) is fixedly connected to the interior of the buffer box (905), and the partition (16) divides the internal space of the buffer box (905) into a plurality of air storage chambers (17), and the number of the air storage chambers (17) is at least the same as the number of the retractable flexible liner (5).

9. The intelligent temperature-controlled sweet potato healing storage according to claim 8, characterized in that: A heat insulation layer (18) is fixedly connected to the outer surface of the partition (16).

10. The intelligent temperature-controlled sweet potato healing storage according to claim 6, characterized in that: A return air duct (19) is provided inside the retractable flexible inner liner (5), and the return air duct (19) passes through the sealing layer (12) and is connected to the outside. A second fan (20) is fixedly connected to the inner surface of the warehouse body (1). Outside the retractable flexible inner liner (5), the input end of the second fan (20) is magnetically connected to the return air duct (19), the output end of the second fan (20) is connected to the outside, and the output end of the return air duct (19) is connected to the bellows (901).