Down feather storage workshop humidity control system and method

By designing a down storage workshop humidity control system with multiple storage units, the double-layer structure of the inner and outer cylinders, humidity sensors and execution units can achieve precise humidity control, which solves the problems of uneven humidity and high energy consumption of the existing system, and improves the flexibility and energy-saving effect of humidity control.

CN120029373APending Publication Date: 2025-05-23SHANGHAI GAOFAN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510153181.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-05-23

AI Technical Summary

Technical Problem

The existing down storage workshop humidity control system is difficult to achieve partition adjustment in different areas, resulting in uneven humidity, affecting down quality, and high energy consumption, lack of effective energy-saving measures.

Method used

A humidity control system including multiple storage units is designed. Each storage unit is composed of an inner cylinder and an outer cylinder, which is divided into multiple storage tanks, equipped with a humidity sensor, a control unit and an execution unit. Real-time monitoring and adjustment of humidity is achieved through the suction and exhaust component and the gas transmission component, and a light guide mechanism and a reflection component are used to assist in humidity control and down fluff.

Benefits of technology

Accurate control of humidity in different areas is achieved, reducing the impact of external humidity changes on the internal humidity of the storage tank, improving the flexibility and efficiency of humidity control, and reducing operating costs through energy-saving design.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a down feather storage workshop humidity control system and method, and relates to the technical field of garment production, the down feather storage workshop humidity control system comprises a plurality of storage units located in a workshop and used for storing down feather, and each storage unit comprises an inner cylinder fixed on the workshop ground and an outer cylinder covering the inner cylinder and fixed between the workshop top surface and the ground; the interior of the inner barrel is divided into a plurality of storage grooves which are distributed at equal intervals; the monitoring unit is used for monitoring the humidity level in the inner barrel in real time; the control unit is used for receiving data of the monitoring unit and performing judgment and decision; the execution unit is used for adjusting the humidity in the inner barrel; the monitoring unit comprises a plurality of humidity sensors located on the top faces of the storage grooves correspondingly. According to the system, the storage workshop can be divided into a plurality of independent storage sections, each independent storage section is further divided into a plurality of independent storage grooves, and therefore the humidity control accuracy of the storage workshop is improved, the whole system is fully combined with solar energy, and the energy-saving and environment-friendly performance is better.
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Description

Technical Field

[0001] The invention belongs to the technical field of clothing production, and in particular relates to a humidity control system and method for a down storage workshop. Background Art

[0002] Humidity control is a crucial step in the production of down products. Humidity significantly impacts both the quality of down and the finished product. Humidity control is particularly crucial in down storage facilities, where high humidity can cause mold and deterioration, impacting product quality and even posing health risks. Humidity control systems in down storage facilities ensure that down maintains an appropriate humidity level during storage, preventing moisture, mold, or excessive drying that could deteriorate the quality of the down.

[0003] However, existing workshop humidity control systems often implement unified humidity control for the entire workshop, making it difficult to achieve zoning adjustments for different areas. This may cause the humidity in some areas to be too high or too low, affecting the storage of down. The down stored internally lacks isolation measures and is easily affected by the external environment. In addition, the existing workshop humidity control system consumes a lot of energy during operation and lacks effective energy-saving measures. This not only increases the company's operating costs, but also does not meet current energy-saving and environmental protection requirements.

[0004] To this end, we provide a down storage workshop humidity control system and method to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide a humidity control system and method for a down storage workshop in response to the problems of the background technology.

[0006] The present invention achieves the above-mentioned purpose through the following technical solutions:

[0007] A humidity control system for a down storage workshop comprises a plurality of storage units for storing down located in the workshop. The storage units comprise an inner cylinder fixed to the workshop floor and an outer cylinder covered on the outside of the inner cylinder and fixed between the workshop ceiling and the floor. The inner cylinder is divided into a plurality of storage tanks distributed at equal intervals.

[0008] It also includes a monitoring unit for monitoring the humidity level in the inner tube in real time, a control unit for receiving data from the monitoring unit and making judgments and decisions, and an execution unit for adjusting the humidity in the inner tube; the monitoring unit includes a plurality of humidity sensors respectively located on the top surface of the storage tank, the control unit includes a control box located on the outer surface of the outer tube, the execution unit includes a plurality of air suction and discharge components respectively located on the top surface of the storage tank, and an air transmission component located between the inner tube and the outer tube and cooperating with the air suction and discharge components, and a supporting plate for driving the lower part of the air transmission component to rise and fall along the inner tube; the execution unit also includes four light-guiding mechanisms evenly arranged along the circumference on the inner wall of the outer tube for guiding external sunlight into the outer tube, and a reflective component arranged on the supporting plate for reflecting sunlight emitted by the light-guiding mechanism onto the down.

[0009] As a further optimization solution of the present invention, a first movable door is slidably provided on the outside of each storage tank, and a second movable door is slidably provided on the outer cylinder in front of the storage tank.

[0010] As a further optimization scheme of the present invention, the air suction and discharge assembly includes an annular tube fixed on the top surface of the storage tank and a connecting tube connected to the annular tube and passing through the inner cylinder; the bottom of the annular tube is provided with a plurality of air holes evenly distributed along the circumference, and a first solenoid valve is fixed on the end of the connecting tube, and a magnetic ring is fixed on the end face of the first solenoid valve.

[0011] As a further optimization scheme of the present invention, the gas delivery assembly includes a reel-up and rewinding rack, a humidifier and a dehumidifier located on the top of the workshop; an air delivery pipe is wound on the roller of the reel-up and rewinding rack, one end of the air delivery pipe extends into the outer cylinder and is fixed with a pipe joint, the pipe joint is located on the inner wall of the supporting plate and another magnetic ring body that magnetically cooperates with the magnetic ring is fixed on the end face; the other end of the air delivery pipe is connected to the humidifier and dehumidifier respectively through a three-way connector, and a second solenoid valve is provided on the three-way connector.

[0012] As a further optimization scheme of the present invention, supports are fixed on both sides of the supporting plate, guide rails are fixed on the inner wall of the outer cylinder, and sliders that slide with the guide rails are fixed on the end faces of the supports; a gear is rotated inside one of the supports, and a motor that drives the gear to rotate is provided on the outside of the support, and a rack that meshes with the gear is fixed on the guide rail.

[0013] As a further optimization scheme of the present invention, the light-guiding mechanism includes a skylight located on the top of the workshop and a light-guiding main pipe located on the inner wall of the outer tube and fixedly connected to the skylight; the light-guiding main pipe is provided with a plurality of light-guiding branches distributed at equal intervals, and a closing plate is provided on the end face of the light-guiding branch pipe, and a pin is fixedly provided at the edge of the closing plate, and the pin is hinged to the light-guiding branch pipe and a torsion spring is sleeved on it.

[0014] As a further optimization scheme of the present invention, the reflective assembly includes a first reflector fixed on the top of the supporting plate and a second reflector mounted outside the first reflector and fixed on the top of the supporting plate; the first reflector is used to reflect sunlight emitted by the light guide branch to the second reflector, and the second reflector is used to reflect sunlight to the surface of the down.

[0015] As a further optimization scheme of the present invention, the reflective assembly also includes a toggle mechanism fixed to the top edge of the supporting plate and used to open the closing plate; the toggle mechanism includes a support rod and a toggle rod fixed to the top end of the support rod, the toggle rod and the closing plate are on the same plane and the closing plate is driven to rotate by the lifting and lowering of the toggle rod.

[0016] As a further optimization scheme of the present invention, it also includes a photovoltaic component for power supply located on the top of the workshop, the photovoltaic component includes a support frame and a photovoltaic panel fixed on the top of the support frame, and a battery pack electrically connected to the photovoltaic panel is provided in the support frame; the reel rack, humidifier and dehumidifier are also located in the support frame.

[0017] A humidity control method for a down storage workshop comprises the following steps:

[0018] S1: Multiple humidity sensors monitor the humidity in each storage tank in real time and feed it back to the control box, which then makes judgments and decisions based on the preset humidity range.

[0019] S2: If the humidity in a certain storage tank is too high, the control box controls the execution unit to adjust the humidity in the storage tank. Specifically, the lower part of the air delivery component and the reflective component are driven to move to the storage tank through the carrier plate until the air delivery component and the air suction and discharge component are attracted to each other. The fan in the dehumidifier is started to extract the air with high humidity in the storage tank through the air suction and discharge component, and then the external air is drawn into the dehumidifier through the fan for dehumidification. The dehumidified air is transported to the air suction and discharge component through the air delivery component and finally sprayed into the storage tank to reduce the humidity.

[0020] S3: When the reflective component is raised or lowered, the closing plate on the light guide branch on the side of the storage tank is opened. The light guide mechanism and the reflective component cooperate to guide sunlight to illuminate the down, thereby helping to reduce humidity and make the down fluffy.

[0021] S4: If the humidity in a storage tank is too low, start the fan in the humidifier to draw in external air and humidify it through the humidifier. The humidified air is transported to the air suction and discharge component through the air transmission component and finally sprayed into the storage tank to increase the humidity.

[0022] The beneficial effects of the present invention are:

[0023] 1. The present invention can divide the storage workshop into multiple independent storage areas by providing an outer cylinder, an inner cylinder and multiple storage tanks. Each independent storage area is further divided into multiple independent storage tanks, thereby improving the humidity control accuracy of the storage workshop and improving the zoned humidity control effect. A humidity buffer area is formed between the outer cylinder and the inner cylinder to reduce the impact of external humidity changes on the humidity inside the storage tank. The double-layer structure can provide a more stable and reliable humidity control environment, ensuring the quality and safety of down storage.

[0024] 2. The present invention realizes movable humidity control by setting up a gas transmission component and a carrier plate. The position in the outer cylinder can be adjusted as needed, so as to quickly respond to humidity changes in different areas or specific locations and perform targeted humidity adjustment, thereby improving the flexibility and efficiency of humidity control.

[0025] 3. The present invention provides a reflective component, a light-guiding mechanism and a photovoltaic component to assist in humidity control in the down storage workshop through sunlight, accelerate water evaporation, improve the humidity regulation effect, and enhance the energy-saving effect of the entire system. It can also make full use of natural light sources to improve the storage environment, so that the down can be kept in a fluffy state, which is more conducive to storage. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a schematic diagram of the assembly of the overall structure of the present invention in a workshop;

[0027] Figure 2 It is a three-dimensional schematic diagram of the overall structure of the present invention;

[0028] Figure 3 This is a schematic diagram of the inner cylinder structure of the present invention;

[0029] Figure 4 It is a schematic structural diagram of the components between the inner cylinder and the outer cylinder of the present invention;

[0030] Figure 5 This is a schematic structural diagram of the air suction and discharge assembly of the present invention;

[0031] Figure 6 This is a schematic diagram of the structure of the gas transmission component of the present invention;

[0032] Figure 7 It is a structural schematic diagram of the load-bearing plate of the present invention;

[0033] Figure 8 Schematic diagram of the light guide structure of the present invention;

[0034] Figure 9 It is a schematic diagram of the connection between the reflective assembly and the light guide mechanism of the present invention;

[0035] Figure 10 Schematic diagram of the photovoltaic module structure of the present invention.

[0036] In the picture:

[0037] 1. Inner cylinder; 101. Storage tank; 102. First movable door; 2. Outer cylinder; 201. Second movable door; 3. Humidity sensor; 4. Control box; 5. Air suction and discharge assembly; 501. Ring tube; 502. Air hole; 503. Connecting pipe; 504. First solenoid valve; 505. Magnetic ring; 6. Air delivery assembly; 601. Rewinding and unwinding rack; 602. Air delivery pipe; 603. Pipe joint; 604. Humidifier; 605. Dehumidifier; 606. Second solenoid valve; 7. Carrying plate; 701. Support; 702. Sliding Block; 703, guide rail; 704, gear; 705, motor; 706, rack; 8, reflective assembly; 801, first reflector; 802, second reflector; 803, toggle mechanism; 803a, support rod; 803b, toggle rod; 9, light guide mechanism; 901, light cover; 902, light guide main pipe; 903, light guide branch pipe; 904, closing plate; 904a, pin; 904b, torsion spring; 10, photovoltaic assembly; 1001, support frame; 1002, photovoltaic panel; 1003, battery pack. DETAILED DESCRIPTION

[0038] The present application is described in further detail below in conjunction with the accompanying drawings. It is necessary to point out that the following specific implementation methods are only used to further illustrate the present application and cannot be understood as limiting the scope of protection of the present application. Technicians in this field can make some non-essential improvements and adjustments to the present application based on the above application content.

[0039] Example 1

[0040] To solve the problem of low accuracy of humidity control system in down storage workshop and poor humidity control effect of partition, please refer to Figures 1-4The present invention provides a down storage workshop humidity control system, comprising a plurality of storage units for storing down located in the workshop, the storage units comprising an inner cylinder 1 fixed on the workshop floor and an outer cylinder 2 covered on the outside of the inner cylinder 1 and fixed between the workshop ceiling and the floor, the inner cylinder 1 is divided into a plurality of storage tanks 101 distributed at equal intervals, each storage tank 101 is slidably provided with a first movable door 102 on the outside, and a second movable door 201 is slidably provided on the outer cylinder 2 in front of the storage tank 101, forming a humidity buffer area between the outer cylinder 2 and the inner cylinder 1 to reduce the influence of external humidity changes on the humidity inside the storage tank 101, and the double-layer structure can provide more stable and reliable The system provides a reliable humidity-controlled environment to ensure the quality and safety of down storage. It also includes a monitoring unit that monitors the humidity level within the inner tube 1 in real time, a control unit that receives data from the monitoring unit and makes judgments and decisions, and an execution unit for adjusting the humidity within the inner tube 1. The monitoring unit includes multiple humidity sensors 3 located on the top surface of the storage tank 101, the control unit includes a control box 4 located on the outer surface of the outer tube 2, and the execution unit includes multiple air intake and exhaust assemblies 5 located on the top surface of the storage tank 101, an air delivery assembly 6 located between the inner and outer tubes 1 and 2 and cooperating with the air intake and exhaust assemblies 5, and a support plate 7 for driving the lower portion of the air delivery assembly 6 to rise and fall along the inner tube 1. The system can divide the storage room into multiple independent storage areas, each of which is further divided into multiple independent storage tanks 101, thereby improving the accuracy of humidity control in the storage room and enhancing the effectiveness of zoned humidity control.

[0041] In order to improve the uniformity of humidification and dehumidification, Figure 5 As shown, the air intake and discharge assembly 5 includes an annular tube 501 fixed to the top surface of the storage tank 101, and a connecting tube 503 connected to the annular tube 501 and passing through the inner tube 1. The bottom of the annular tube 501 is provided with multiple air holes 502 evenly distributed along the circumference. A first solenoid valve 504 is fixed to the end of the connecting tube 503, and a magnetic ring 505 is fixed to the end surface of the first solenoid valve 504. During use, moist or dry air enters the connecting tube 503 through the first solenoid valve 504, then enters the annular tube 501 through the connecting tube 503, and finally is ejected from the multiple air holes 502, so that the moist or dry air is evenly sprayed onto the surface of the down.

[0042] In order to realize the zoning control of humidity in multiple storage tanks 101, the corresponding areas can be adjusted accurately, such as Figure 6As shown, the gas delivery assembly 6 includes a reel-up and reel-down rack 601, a humidifier 604, and a dehumidifier 605 located at the top of the workshop; a gas pipe 602 is wound around the roller of the reel-up and reel-down rack 601, one end of which extends into the outer cylinder 2 and is fixedly provided with a pipe joint 603. The pipe joint 603 is located on the inner wall of the support plate 7 and has another magnetic ring body fixed on the end face that magnetically cooperates with the magnetic ring 505; the other end of the gas pipe 602 is connected to the humidifier 604 and the dehumidifier 605 respectively through a three-way connector, and the three-way connector is provided with a second solenoid valve 606. When in use, the pipe joint 603 is attracted to the first solenoid valve 504 through the cooperation of the magnetic ring 505. At this time, the gas delivery assembly 6 is connected to the air suction and discharge assembly 5, and the gas charging and discharging operation can be realized. During the lifting and lowering process of the support plate 7, the gas pipe 602 is retracted and released through the reel-up and reel-down rack 601 to adapt to the lifting and lowering operation.

[0043] like Figure 7 As shown, supports 701 are fixed on both sides of the carrier plate 7, guide rails 703 are fixed on the inner wall of the outer cylinder 2, and sliders 702 are fixed on the end surfaces of the supports 701, which slide in cooperation with the guide rails 703. A gear 704 is rotatably mounted in one of the supports 701, and a motor 705 is provided on the outer side of the support 701 to drive the gear 704. A rack 706 is fixed on the guide rail 703, which meshes with the gear 704. During use, the motor 705 is started, and the motor 705 drives the gear 704 to move along the rack 706. At this time, the slider 702 slides along the guide rail 703, and the gear 704 drives the support 701 and the carrier plate 7 to move. The carrier plate 7 then drives the gas delivery assembly 6 thereon to move, thereby enabling precise humidity adjustment of the storage tanks 101 at various locations, achieving mobile humidity control, quickly responding to humidity changes in different areas or specific locations, and performing targeted humidity adjustment, thereby improving the flexibility and efficiency of humidity control.

[0044] Example 2

[0045] On the basis of the first embodiment, in order to further improve the effect of humidity regulation, natural drying is used to achieve energy saving, and natural light is used to improve the storage environment. Figure 4 、 Figure 8-Figure 9 As shown, the execution unit also includes four light-guiding mechanisms 9 evenly arranged along the circumference on the inner wall of the outer tube 2 for guiding external sunlight into the outer tube 2, and a reflective component 8 arranged on the supporting plate 7 for reflecting the sunlight emitted by the light-guiding mechanism 9 onto the down.

[0046] The light guide mechanism 9 comprises a skylight 901 located at the top of the workshop, and a main light guide pipe 902 located on the inner wall of the outer tube 2 and fixedly connected to the skylight 901. The main light guide pipe 902 is equipped with multiple equally spaced branch light pipes 903. The end faces of these branch light pipes are provided with closing plates 904. A pin 904a is fixed to the edge of these closing plates 904. This pin 904a is hingedly connected to the branch light pipe 903 and fitted with a torsion spring 904b. The skylight 901 efficiently collects natural light from outside the workshop and directs it into the main light guide pipe 902. After being transmitted through the main light guide pipe 902, it is emitted from the multiple branch light pipes 903, illuminating down feathers at different heights.

[0047] The reflective assembly 8 includes a first reflector 801 fixed to the top of the supporting plate 7 and a second reflector 802 mounted outside the first reflector 801 and fixed to the top of the supporting plate 7; the first reflector 801 is used to reflect sunlight emitted by the light guide branch 903 to the second reflector 802, and the second reflector 802 is used to reflect sunlight to the surface of the down; the reflective assembly 8 also includes a toggle mechanism 803 fixed to the top edge of the supporting plate 7 and used to open the closing plate 904; the toggle mechanism 803 includes a support rod 803a and a toggle rod 803b fixed to the top of the support rod 803a, the toggle rod 803b and the closing plate 904 are on the same plane and the closing plate 904 is driven to rotate by the lifting and lowering of the toggle rod 803b. During use, when the supporting plate 7 drives the reflective assembly 8 to rise and fall, when the toggle rod 803b contacts the closing plate 904, the closing plate 904 is forced to rotate, thereby opening the light guide branch 903. At this time, sunlight is emitted through the light guide branch 903 to the first reflector 801, then reflected by the first reflector 801 to the second reflector 802, and finally reflected by the second reflector 802 to the surface of the down. After the irradiation is completed, when the toggle rod 803b leaves the closing plate 904, the closing plate 904 is reset under the action of the torsion spring 904b, and the light guide branch 903 is closed again. Sunlight is used to assist in humidity control in the down storage workshop, accelerate water evaporation, and improve the energy saving effect of the entire system. Regular irradiation of the down raw materials with sunlight can effectively kill bacteria and mites, reduce the breeding of microorganisms, keep the down clean and hygienic, and activate the down fibers to restore their fluffy state, thereby improving the warmth retention effect.

[0048] Example 3

[0049] On the basis of the first and second embodiments, in order to further improve the environmental protection and energy saving performance of the entire system, as Figure 1 、 Figure 10As shown, the workshop also includes a photovoltaic module 10 located on the roof for energy supply. The photovoltaic module 10 includes a support frame 1001 and a photovoltaic panel 1002 fixed to the top of the support frame 1001. The support frame 1001 is equipped with a battery pack 1003 electrically connected to the photovoltaic panel 1002. The reel 601, humidifier 604, and dehumidifier 605 are also located within the support frame 1001. The photovoltaic panel 1002 collects solar energy and converts it into heat or electricity. The heat energy can directly heat and dehumidify the air, while the electricity energy can drive various electrical devices to achieve automatic humidity regulation.

[0050] Example 4

[0051] On the basis of the first, second and third embodiments, the present invention further provides a humidity control method for a down storage workshop, comprising the following steps:

[0052] S1: The humidity in each storage tank 101 is monitored in real time by multiple humidity sensors 3 and fed back to the control box 4, which makes judgments and decisions based on a preset humidity range;

[0053] S2: If the humidity in a certain storage tank 101 is too high, the control box 4 controls the execution unit to adjust the humidity in the storage tank 101. Specifically, the lower part of the air delivery component 6 and the reflective component 8 are driven to move to the storage tank 101 by the carrying plate 7 until the air delivery component 6 and the air suction and discharge component 5 are attracted, and the fan in the dehumidifier 605 is started to extract the air with high humidity in the storage tank 101 through the air suction and discharge component 5, and then the external air is drawn into the dehumidifier 605 through the fan for dehumidification. The dehumidified air is transported to the air suction and discharge component 5 through the air delivery component 6 and finally sprayed into the storage tank 101 to reduce the humidity;

[0054] S3: while the reflective assembly 8 is being raised and lowered, the closing plate 904 on the light guide branch 903 on the side of the storage tank 101 is opened. Through the cooperation between the light guide mechanism 9 and the reflective assembly 8, sunlight is guided to illuminate the down, thereby helping to reduce humidity and make the down fluffy.

[0055] S4: If the humidity in a certain storage tank 101 is too low, the fan in the humidifier 604 is started, and the external air is drawn in and humidified through the humidifier 604. The humidified air is transported to the air suction and discharge component 5 through the air delivery component 6, and finally sprayed into the storage tank 101 to increase the humidity.

[0056] The above embodiment merely represents one embodiment of the present invention. While the description is relatively specific and detailed, it should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art may make various modifications and improvements without departing from the scope of the present invention, and such modifications and improvements are all within the scope of protection of the present invention.

Claims

1. A humidity control system for a down storage workshop, comprising a plurality of storage units for storing down located in the workshop, characterized in that: The storage unit comprises an inner cylinder (1) fixed on the workshop floor and an outer cylinder (2) covered on the outside of the inner cylinder (1) and fixed between the workshop ceiling and the floor, wherein the inner cylinder (1) is divided into a plurality of storage tanks (101) distributed at equal intervals; It also includes a monitoring unit for real-time monitoring of the humidity level in the inner cylinder (1), a control unit for receiving data from the monitoring unit and making judgments and decisions, and an execution unit for adjusting the humidity in the inner cylinder (1); The monitoring unit comprises a plurality of humidity sensors (3) respectively located on the top surface of the storage tank (101); the control unit comprises a control box (4) located on the outer surface of the outer cylinder (2); the execution unit comprises a plurality of air suction and discharge assemblies (5) respectively located on the top surface of the storage tank (101); and an air delivery assembly (6) located between the inner cylinder (1) and the outer cylinder (2) and matched with the air suction and discharge assemblies (5); and a bearing plate (7) for driving the lower part of the air delivery assembly (6) to rise and fall along the inner cylinder (1); The execution unit further comprises four light-guiding mechanisms (9) uniformly arranged along the circumference on the inner wall of the outer tube (2) for guiding external sunlight into the outer tube (2), and a reflective component (8) arranged on the supporting plate (7) for reflecting sunlight emitted by the light-guiding mechanisms (9) onto the down.

2. A down storage workshop humidity control system according to claim 1, characterized in that: A first movable door (102) is slidably provided outside each storage tank (101), and a second movable door (201) is slidably provided on the outer cylinder (2) in front of the storage tank (101).

3. A down storage workshop humidity control system according to claim 1, characterized in that: The air suction and discharge assembly (5) comprises an annular tube (501) fixedly arranged on the top surface of the storage tank (101) and a connecting tube (503) connected to the annular tube (501) and passing through the inner tube (1); The bottom of the annular tube (501) is provided with a plurality of air holes (502) evenly distributed along the circumference, the end of the connecting tube (503) is fixedly provided with a first solenoid valve (504), and the end surface of the first solenoid valve (504) is fixedly provided with a magnetic attraction ring (505).

4. A down storage workshop humidity control system according to claim 3, characterized in that: The gas delivery assembly (6) comprises a reel-up and reel-down rack (601), a humidifier (604) and a dehumidifier (605) located at the top of the workshop; An air delivery pipe (602) is wound around the roller of the reel-up and unreeling rack (601), one end of the air delivery pipe (602) extends into the outer cylinder (2) and is fixedly provided with a pipe joint (603), the pipe joint (603) is located on the inner wall of the bearing plate (7) and another magnetic attraction ring body that is magnetically matched with the magnetic attraction ring (505) is fixedly provided on the end surface; The other end of the gas delivery pipe (602) is connected to the humidifier (604) and the dehumidifier (605) respectively through a three-way connector, and a second solenoid valve (606) is provided on the three-way connector.

5. A down storage workshop humidity control system according to claim 1, characterized in that: Supports (701) are fixedly provided on both sides of the bearing plate (7), a guide rail (703) is fixedly provided on the inner wall of the outer cylinder (2), and a sliding block (702) that slidably cooperates with the guide rail (703) is fixedly provided on the end surface of the support (701); A gear (704) is rotatably disposed inside one of the supports (701), a motor (705) for driving the gear (704) to rotate is disposed on the outer side of the support (701), and a rack (706) meshing with the gear (704) is fixedly disposed on the guide rail (703).

6. A down storage workshop humidity control system according to claim 1, characterized in that: The light guide mechanism (9) comprises a light cover (901) located on the top of the workshop and a light guide main pipe (902) located on the inner wall of the outer cylinder (2) and fixedly connected to the light cover (901); The main light guide tube (902) is provided with a plurality of light guide branch tubes (903) distributed at equal intervals, and a closing plate (904) is provided on the end surface of the light guide branch tube (903). A pin shaft (904a) is fixedly provided at the edge of the closing plate (904), and the pin shaft (904a) is hinged to the light guide branch tube (903) and a torsion spring (904b) is sleeved thereon.

7. A down storage workshop humidity control system according to claim 6, characterized in that: The reflective assembly (8) comprises a first reflector (801) fixedly arranged on the top of the carrying plate (7) and a second reflector (802) sleeved outside the first reflector (801) and fixedly arranged on the top of the carrying plate (7); The first reflector (801) is used to reflect sunlight emitted by the light guide branch (903) to the second reflector (802), and the second reflector (802) is used to reflect sunlight to the surface of the down.

8. A down storage workshop humidity control system according to claim 7, characterized in that: The reflective assembly (8) further comprises a toggle mechanism (803) fixed to the top edge of the carrying plate (7) and used for opening the closing plate (904); The toggle mechanism (803) comprises a support rod (803a) and a toggle rod (803b) fixedly arranged at the top end of the support rod (803a); the toggle rod (803b) and the closing plate (904) are located on the same plane and the closing plate (904) is driven to rotate by the lifting and lowering of the toggle rod (803b).

9. A down storage workshop humidity control system according to claim 4, characterized in that: Also included is a photovoltaic assembly (10) for supplying energy and located on the top of the workshop, the photovoltaic assembly (10) comprising a support frame (1001) and a photovoltaic panel (1002) fixed on the top of the support frame (1001), and a battery pack (1003) electrically connected to the photovoltaic panel (1002) is provided in the support frame (1001); The reel-up and reel-down rack (601), humidifier (604) and dehumidifier (605) are also located inside the support frame (1001).

10. A humidity control method for a down storage workshop, using a humidity control system for a down storage workshop according to any one of claims 1 to 9, characterized in that: The following steps are involved: S1: The humidity in each storage tank (101) is monitored in real time by a plurality of humidity sensors (3), and the humidity is fed back to the control box (4), and the control box (4) makes judgments and decisions according to a preset humidity range; S2: If the humidity in a certain storage tank (101) is too high, the control box (4) controls the execution unit to adjust the humidity in the storage tank (101), specifically, the lower part of the air delivery component (6) and the reflective component (8) are driven to move to the storage tank (101) through the carrier plate (7), until the air delivery component (6) and the air suction and discharge component (5) are attracted, the fan in the dehumidifier (605) is started, and the air with high humidity in the storage tank (101) is extracted through the air suction and discharge component (5), and then the external air is sucked into the dehumidifier (605) through the fan for dehumidification, and the dehumidified air is transported to the air suction and discharge component (5) through the air delivery component (6), and finally sprayed into the storage tank (101) to reduce the humidity; S3: while the reflective assembly (8) is being raised or lowered, the closing plate (904) on the light guide branch pipe (903) at the side of the storage tank (101) is opened, and the light guide mechanism (9) cooperates with the reflective assembly (8) to guide sunlight to illuminate the down, thereby helping to reduce humidity and make the down fluffy; S4: If the humidity in a storage tank (101) is too low, the fan in the humidifier (604) is started, and the external air is drawn and humidified through the humidifier (604). The humidified air is transported to the air suction and discharge component (5) through the air delivery component (6), and finally sprayed into the storage tank (101) to increase the humidity.