Classified storage device based on computer big data

Through a classified storage device based on computer big data, combined with cameras and sensors, convenient hard disk search and environmental control are achieved, which solves the inconvenience of searching and environmental adaptability problems of existing storage devices and improves storage effects.

CN120636484AInactive Publication Date: 2025-09-12YELLOW RIVER CONSERVANCY TECHN INST
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Patent Information

Application Number
CN202510643218.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-19
Publication Date
2025-09-12
Estimated Expiration
Not applicable · inactive patent

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Abstract

The invention relates to the technical field of classified storage devices, and discloses a classified storage device based on computer big data, which comprises a storage cabinet, the left side and the right side of the interior of the storage cabinet are each provided with a storage cavity, the front side of each storage cavity is provided with a cabinet door for blocking the storage cavity, and the cabinet doors are rotatably connected with the storage cabinet through hinges; a plurality of storage cavities are formed in the storage cabinet, a plurality of storage plates are fixedly installed in each storage cavity, a plurality of storage grooves are formed in each storage plate, a number plate is fixedly installed in each storage groove, a camera is arranged above each storage plate, a ventilation dustproof net is fixed to the right side of the storage cabinet, and a dehumidification mechanism communicating with the right side of the storage cabinet is installed on the right side of the storage cabinet; an auxiliary cooling mechanism communicated with the storage cabinet is installed on the left side of the storage cabinet, and a temperature sensor and a humidity sensor are installed at the top end in the storage cabinet. Materials are classified and stored conveniently, and concentrated searching is facilitated; and good dehumidification and heat dissipation functions are achieved, and the material storage effect is better.
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Description

Technical Field

[0001] The present invention relates to the technical field of classified storage devices, and in particular to a classified storage device based on computer big data. Background Art

[0002] Big data refers to data sets that cannot be captured, managed, and processed within a specific timeframe using conventional software tools. These massive, rapidly growing, and diverse information assets require new processing models to unlock greater decision-making power, insight discovery, and process optimization. The strategic significance of big data technology lies not in the acquisition of vast amounts of data but in the specialized processing of this meaningful data. In other words, if big data is compared to an industry, the key to profitability lies in improving data processing capabilities and achieving "added value" through this processing.

[0003] Computer big data generates a large amount of data information. In order to store a large amount of information, a large number of hard disks are required. Hard disks storing different information need to be stored separately. Existing storage devices are inconvenient to search when in use, and require people to check and search one by one on the spot, which is quite troublesome. In addition, existing storage devices have poor control performance over temperature and humidity, and are prone to damage to hard disks when encountering high temperature and high humidity weather. Therefore, in view of the above situation, it is urgent to develop a classification storage device based on computer big data that is convenient for material classification and storage, and easy to find in a centralized manner; has good dehumidification and heat dissipation functions, and has a better storage effect on materials, so as to overcome the shortcomings in current practical applications and meet current needs. Summary of the Invention

[0004] The purpose of the present invention is to provide a classification storage device based on computer big data, which is convenient for classifying and storing materials and convenient for centralized search; it has good dehumidification and heat dissipation functions and has a better storage effect on materials.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] A classification storage device based on computer big data includes a storage cabinet, a cabinet door, an electromagnet, a touch control screen, a dehumidification mechanism, a ventilation and dustproof net, an auxiliary cooling mechanism, a storage plate, a camera, a temperature sensor, and a humidity sensor. A storage cavity is provided on both the left and right sides of the interior of the storage cabinet. A cabinet door is provided on the front side of each storage cavity to block the storage cavity. The cabinet door is rotatably connected to the storage cabinet via a hinge. A touch control screen is fixedly installed at the middle position of the front side of the storage cabinet. A plurality of air circulation slots are provided at the middle position of the interior of the storage cabinet. A plurality of storage plates are fixedly installed in each storage cavity. Each storage plate is provided with a plurality of storage slots. A number plate is fixedly installed in each storage slot. A plurality of through holes are provided on the storage plate. A camera is provided above each storage plate. The ventilation and dustproof net is fixed on the right side of the storage cabinet. The dehumidification mechanism connected to the right side of the storage cabinet is installed on the right side of the storage cabinet. The auxiliary cooling mechanism connected to the left side of the storage cabinet is installed on the left side of the storage cabinet. The temperature sensor and the humidity sensor are installed at the top of the interior of the storage cabinet. When in use, the big data storage hard disk is placed in multiple storage slots for separate storage. The pattern of the hard disk in the storage slot is collected by the camera and the image is transmitted to the touch control screen. When searching, the required hard disk is first found on the image of the touch control screen, and then located according to the number plate in the storage slot where the hard disk is located. Finally, the person opens the cabinet door and directly takes out the required hard disk. The temperature and humidity inside the storage cabinet are monitored by the temperature sensor and the humidity sensor. When the humidity is high, the dehumidification mechanism is started to dehumidify the storage cabinet. When the temperature is high, the auxiliary cooling mechanism is started to cool the storage cabinet.

[0007] Preferably, a plurality of casters are installed at the bottom of the storage cabinet, the casters are fixed to the storage cabinet by screws, and the casters are provided with foot brakes.

[0008] Preferably, a handle is fixed on the cabinet door, the electromagnet for sucking the cabinet door is fixedly installed on the storage cabinet, and an adsorption sheet for sucking onto the electromagnet is fixed on one side of the cabinet door, and the adsorption sheet is made of iron material.

[0009] Preferably: the dehumidification mechanism includes: an air pump, an air intake pipe, an air intake pipe, a dehumidification cylinder, an exhaust pipe, a condensed water collecting cylinder and a condensation mechanism, the air pump is fixed to the right side of the storage cabinet, the air inlet end of the air pump is fixedly connected to the air intake pipe, the exhaust pipe is inserted into the storage cabinet, the air outlet end of the air pump is fixedly connected to the air intake pipe, the lower end of the air intake pipe is inserted into the dehumidification cylinder, the exhaust pipe inserted into the storage cabinet is fixed to the left side of the dehumidification cylinder, the condensed water collecting cylinder is installed at the bottom of the dehumidification cylinder, the condensed water collecting cylinder is detachably fixed to the dehumidification cylinder by threads, and the dehumidification cylinder is installed with the condensation mechanism extending into the interior thereof.

[0010] Preferably: the condensation mechanism includes: a connecting rod, condensing fins, vents, a first semiconductor refrigeration sheet and a first heat dissipation fin; the connecting rod is fixed to the dehumidification cylinder, the connecting rod is inserted into the interior of the dehumidification cylinder, a plurality of the condensing fins are fixed on the connecting rod, each of the condensing fins is provided with a plurality of the vents, a plurality of the first semiconductor refrigeration sheets are fixedly mounted on the top of the connecting rod, and the hot end of each of the first semiconductor refrigeration sheets is fixedly mounted with the first heat dissipation fins. When in use, the air in the storage cabinet is extracted by the air pump and transported to the dehumidification cylinder, and the connecting rod and the condensing fins are cooled by the first semiconductor refrigeration sheet. The water vapor in the air contacts the low-temperature condensing fins and condenses onto the condensing fins. Then, as the water droplets gather, the water droplets slide down to the condensation water collection cylinder and are collected. Then, the dried air flows back into the storage cabinet from the exhaust pipe, thereby reducing the humidity in the storage cabinet.

[0011] Preferably, the auxiliary cooling mechanism includes: a mounting tube, a filter, a spiral tube, a second semiconductor cooling sheet, a second heat dissipation fin, and a fan. The mounting tube is placed on the ground, the fan is fixedly installed in the mounting tube, the filter is fixedly installed on the front side of the mounting tube, and the filter is detachably connected to the mounting tube via screws. The spiral tube is installed on the rear side of the mounting tube and is connected thereto. The upper end of the spiral tube is inserted into the storage cabinet, and a plurality of second semiconductor cooling sheets are fixed on the outside of the spiral tube, and the hot end of each second semiconductor cooling sheet is installed with a second heat dissipation fin. When in use, air is blown into the spiral tube by the fan, and the airflow flowing through the spiral tube is cooled by the second semiconductor cooling sheet. The cooled airflow then enters the storage cabinet, thereby cooling the storage cabinet.

[0012] Preferably, the connecting rod, the condensing fins, the first heat dissipating fins, the spiral tube and the second heat dissipating fins are all made of copper.

[0013] Preferably, the electromagnet, the air pump, the first semiconductor refrigeration sheet, the second semiconductor refrigeration sheet, the fan, the camera, the temperature sensor and the humidity sensor are all electrically connected to the touch control screen via wires.

[0014] The beneficial effects of the present invention are:

[0015] 1. This computer-based big data classification storage device, when in use, places the big data storage hard disks into multiple storage slots for separate storage. The camera captures the patterns of the hard disks in the storage slots and transmits the patterns to the touch control screen. When searching, a person first finds the required hard disk on the image on the touch control screen, then locates it according to the number plate in the storage slot where the hard disk is located. Finally, the person opens the cabinet door and directly takes out the required hard disk, making searching more convenient.

[0016] 2. The temperature and humidity inside the storage cabinet are monitored by temperature and humidity sensors. When the humidity is high, the air in the storage cabinet is extracted by the air pump and transported to the dehumidification cylinder. The first semiconductor refrigeration plate cools the connecting rod and condensation fins. The water vapor in the air contacts the low-temperature condensation fins and condenses on them. Then, as the water droplets gather, they slide down and are collected in the condensation water collection cylinder. The dried air then flows back into the storage cabinet through the exhaust pipe, thereby reducing the humidity inside the storage cabinet.

[0017] 3. When the temperature is high, the fan blows air into the spiral tube, and the dust in the air is filtered out by the filter. The airflow passing through the spiral tube is cooled by the second semiconductor refrigeration plate, and the cooled airflow enters the storage cabinet, thereby cooling the storage cabinet.

[0018] In summary, the present invention facilitates classified storage of materials and facilitates centralized search; it has good dehumidification and heat dissipation functions and has a better storage effect on materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 Schematic diagram of the three-dimensional structure of the present invention Figure 1 .

[0020] Figure 2 Schematic diagram of the three-dimensional structure of the present invention Figure 2 .

[0021] Figure 3 It is a schematic diagram of the open state of the present invention.

[0022] Figure 4 Schematic diagram of part of the structure of the present invention Figure 1 .

[0023] Figure 5 Schematic diagram of part of the structure of the present invention Figure 2 .

[0024] Figure 6 Schematic diagram of part of the structure of the present invention Figure 3 .

[0025] Figure 7 For the present invention Figure 6 interior view.

[0026] Figure 8 Schematic diagram of part of the structure of the present invention Figure 3 .

[0027] Figure 9 Schematic diagram of part of the structure of the present invention Figure 4 .

[0028] Figure 10 For the present invention Figure 9 Schematic diagram of the split state.

[0029] Legend:

[0030] 1. Storage cabinet; 101. Storage chamber; 102. Air circulation slot; 2. Cabinet door; 201. Handle; 202. Adsorption sheet; 3. Electromagnet; 4. Touch screen; 5. Casters; 6. Dehumidification mechanism; 601. Air pump; 602. Intake pipe; 603. Air pipe; 604. Dehumidification cylinder; 605. Exhaust pipe; 606. Condensate collection cylinder; 607. Condensation mechanism; 6071. Connecting rod; 6072. Condensation fin; 6073. Ventilation Air hole; 6074, first semiconductor refrigeration plate; 6075, first heat dissipation fin; 7, ventilation and dustproof net; 8, auxiliary cooling mechanism; 801, mounting tube; 802, filter screen; 803, spiral tube; 804, second semiconductor refrigeration plate; 805, second heat dissipation fin; 806, fan; 9, storage plate; 901, storage slot; 902, through hole; 903, number plate; 10, camera; 11, temperature sensor; 12, humidity sensor. DETAILED DESCRIPTION

[0031] 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 any creative efforts shall fall within the scope of protection of the present invention.

[0032] Specific examples are given below.

[0033] See also Figures 1 to 10In an embodiment of the present invention, a classification storage device based on computer big data includes a storage cabinet 1, a cabinet door 2, an electromagnet 3, a touch control screen 4, a dehumidification mechanism 6, a ventilation and dustproof net 7, an auxiliary cooling mechanism 8, a storage plate 9, a camera 10, a temperature sensor 11 and a humidity sensor 12. A plurality of casters 5 are installed at the bottom of the storage cabinet 1. The casters 5 are fixed to the storage cabinet 1 by screws. The casters 5 are provided with foot brakes. The storage cabinet 1 can be moved by setting the casters 5. A storage cavity 101 is provided on both sides of the interior of the storage cabinet 1. The front side of each storage cavity 101 is provided with a cabinet door 2 that blocks it. The cabinet door 2 is rotatably connected to the storage cabinet 1 by a hinge. Then, a handle 201 is fixed on the cabinet door 2, and the electromagnet 3 for sucking the cabinet door 2 is fixedly installed on the storage cabinet 1. An adsorption sheet 202 for sucking onto the electromagnet 3 is fixed on one side of the cabinet door 2, and the adsorption sheet 202 is made of iron material so that the electromagnet 3 can suck the adsorption sheet 202. A touch control screen 4 is fixedly installed in the middle position of the front side of the storage cabinet 1, and people control the operation through the touch control screen 4. A plurality of air circulation grooves 102 are provided in the middle position of the interior of the storage cabinet 1 to allow air to circulate between the two storage cavities 101. A plurality of storage plates 9 are fixedly installed in each of the storage cavities 101, and a plurality of storage slots 901 are provided on each of the storage plates 9. A number plate 903 is fixedly installed in each storage slot 901, and a plurality of through holes 902 are provided on the storage plate 9 so that air can circulate through the through holes 902. When in use, different materials are placed in different storage slots 901 for storage, and the materials should not cover the number plate 903. A camera 10 is provided above each storage plate 9, and the camera 10 is fixedly installed in the storage cabinet 1 by screws. The ventilation and dustproof net 7 is fixed on the right side of the storage cabinet 1. The ventilation and dustproof net 7 is fixed to the detachable one by screws so that the ventilation and dustproof net 7 can be removed for cleaning. At normal temperature, air enters and exits from the ventilation and dustproof net 7. The dehumidifier connected to it is installed on the right side of the storage cabinet 1. Mechanism 6, the auxiliary cooling mechanism 8 connected to the left side of the storage cabinet 1 is installed, and the temperature sensor 11 and the humidity sensor 12 are installed on the top of the interior of the storage cabinet 1. The temperature and humidity inside the storage cabinet 1 are monitored by the temperature sensor 11 and the humidity sensor 12. When in use, the big data storage hard disk is placed in multiple storage slots 901 for separate storage. The pattern of the hard disk in the storage slot 901 is collected by the camera 10 and the graphic is transmitted to the touch control screen 4. When searching, the required hard disk is first found on the image of the touch control screen 4, and then located according to the number plate 903 in the storage slot 901 where the hard disk is located. Finally, the person opens the cabinet door 2 and directly takes out the required hard disk.The temperature and humidity inside the storage cabinet 1 are monitored by the temperature sensor 11 and the humidity sensor 12. When the humidity is high, the dehumidification mechanism 6 is activated to dehumidify the storage cabinet 1. When the temperature is high, the auxiliary cooling mechanism 8 is activated to cool the storage cabinet 1.

[0034] The dehumidification mechanism 6 includes: an air pump 601, an air intake pipe 602, an air intake pipe 603, a dehumidification cylinder 604, an exhaust pipe 605, a condensed water collection cylinder 606 and a condensation mechanism 607. The air pump 601 is fixed to the right side of the storage cabinet 1. The air inlet end of the air pump 601 is fixedly connected to the air intake pipe 602, and the air intake pipe 602 is inserted into the storage cabinet 1. The air outlet end of the air pump 601 is fixedly connected to the air intake pipe 603. The lower end of the air intake pipe 603 is inserted into the dehumidification cylinder 604. The left side of the dehumidification cylinder 604 is fixed with Inserted into the exhaust pipe 605 in the storage cabinet 1, the condensed water collecting cylinder 606 is installed at the bottom of the dehumidification cylinder 604, and the condensed water collecting cylinder 606 is detachably fixed to the dehumidification cylinder 604 by a thread. The dehumidification cylinder 604 is installed with the condensation mechanism 607 extending to the interior thereof, and the condensation mechanism 607 includes: a connecting rod 6071, a condensation fin 6072, a vent 6073, a first semiconductor refrigeration plate 6074 and a first heat dissipation fin 6075, the connecting rod 6071 is fixed to the dehumidification cylinder 604, the connecting rod 6071 is fixed to the dehumidification cylinder 604, and the connecting rod 6071 is fixed to the dehumidification cylinder 604. The rod 6071 is inserted into the interior of the dehumidification cylinder 604, and a plurality of condensing fins 6072 are fixed on the connecting rod 6071, and a plurality of the condensing fins 6072 are provided on each of the condensing fins 6072. A plurality of the first semiconductor refrigeration fins 6074 are fixedly installed on the top of the connecting rod 6071, and a first heat dissipation fin 6075 is fixedly installed on the hot end of each of the first semiconductor refrigeration fins 6074. The heat of the hot end of the first semiconductor refrigeration fin 6074 is dissipated outward through the first heat dissipation fin 6075 to keep the first semiconductor refrigeration fin 6074 The continuous cooling effect of the refrigeration plate 6074, when in use, draws the air in the storage cabinet 1 through the air pump 601 and transports it to the dehumidification cylinder 604, and cools the connecting rod 6071 and the condensing fin 6072 through the first semiconductor refrigeration plate 6074. The water vapor in the air contacts the low-temperature condensing fin 6072 and condenses onto the condensing fin 6072. Then, as the water droplets gather, the water droplets slide down to the condensed water collection cylinder 606 and are collected. Then, the dried air flows back to the storage cabinet 1 from the exhaust pipe 605, thereby reducing the humidity in the storage cabinet 1.

[0035] The auxiliary cooling mechanism 8 includes: a mounting tube 801, a filter 802, a spiral tube 803, a second semiconductor refrigeration sheet 804, a second heat dissipation fin 805 and a fan 806. The mounting tube 801 is placed on the ground. The fan 806 is fixedly installed in the mounting tube 801. The filter 802 is fixedly installed on the front side of the mounting tube 801. The filter 802 is detachably connected to the mounting tube 801 by screws. The air entering the mounting tube 801 is filtered by the filter 802. The spiral tube 803 connected to the mounting tube 801 is installed on the rear side of the mounting tube 801. The upper end of the spiral tube 803 is inserted into the storage cabinet 1, and multiple second semiconductor refrigeration plates 804 are fixed to the outside of the spiral tube 803. The hot end of each second semiconductor refrigeration plate 804 is installed with a second heat dissipation fin 805. The heat of the hot end of the second semiconductor refrigeration plate 804 is dissipated outward through the second heat dissipation fin 805 to maintain the continuous cooling effect of the second semiconductor refrigeration plate 804. When in use, air is blown into the spiral tube 803 by the fan 806, and the air flow flowing through the spiral tube 803 is cooled by the second semiconductor refrigeration plate 804. The cooled air flow then enters the storage cabinet 1, thereby cooling the storage cabinet 1.

[0036] The connecting rod 6071, the condensing fins 6072, the first heat dissipating fins 6075, the spiral tube 803 and the second heat dissipating fins 805 are all made of copper, so that they have good thermal conductivity.

[0037] The electromagnet 3, air pump 601, first semiconductor cooling plate 6074, second semiconductor cooling plate 804, fan 806, camera 10, temperature sensor 11 and humidity sensor 12 are all electrically connected to the touch control screen 4 through wires to facilitate information transmission and control.

[0038] Working principle: When using the classification storage device based on computer big data, the big data storage hard disk is placed in multiple storage slots 901 for separate storage. The camera 10 collects the pattern of the hard disk in the storage slot 901 and transmits the pattern to the touch control screen 4. When searching, the person first finds the required hard disk on the image on the touch control screen 4, and then locates it according to the number plate 903 in the storage slot 901 where the hard disk is located. Finally, the person opens the cabinet door 2 and directly takes out the required hard disk, making searching more convenient.

[0039] The temperature and humidity inside the storage cabinet 1 are monitored by the temperature sensor 11 and the humidity sensor 12. When the humidity is high, the air in the storage cabinet 1 is extracted by the air pump 601 and transported to the dehumidification cylinder 604. The first semiconductor refrigeration plate 6074 cools the connecting rod 6071 and the condensing fin 6072. The water vapor in the air contacts the low-temperature condensing fin 6072 and condenses on the condensing fin 6072. Then, as the water droplets gather, they slide down and are collected in the condensed water collection cylinder 606. The dried air then flows back into the storage cabinet 1 through the exhaust pipe 605, thereby reducing the humidity inside the storage cabinet 1.

[0040] When the temperature is high, air is blown into the spiral tube 803 by the fan 806, and the dust in the spiral tube is filtered out by the filter 802. The air flow passing through the spiral tube 803 is cooled by the second semiconductor refrigeration plate 804, and the cooled air flow then enters the storage cabinet 1, thereby cooling the storage cabinet 1.

[0041] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A classification storage device based on computer big data, characterized in that: The invention comprises a storage cabinet (1), a cabinet door (2), an electromagnet (3), a touch control screen (4), a dehumidification mechanism (6), a ventilation dust screen (7), an auxiliary cooling mechanism (8), a storage plate (9), a camera (10), a temperature sensor (11) and a humidity sensor (12). A storage cavity (101) is provided on both the left and right sides of the interior of the storage cabinet (1). The front side of each storage cavity (101) is provided with a cabinet door (2) for blocking the storage cavity. The cabinet door (2) is rotatably connected to the storage cabinet (1) via a hinge. A touch control screen (4) is fixedly installed at the middle position of the front side of the storage cabinet (1). A plurality of air circulation slots (102) are provided at the middle position of the interior of the storage cabinet (1). Each storage cavity (101) is provided with a cabinet door (2) for blocking the storage cavity. The cabinet door (2) is rotatably connected to the storage cabinet (1) via a hinge. 1), multiple storage plates (9) are fixedly installed in each storage plate (9), multiple storage slots (901) are provided on each storage plate (9), a number plate (903) is fixedly installed in each storage slot (901), multiple through holes (902) are provided on the storage plate (9), a camera (10) is provided above each storage plate (9), the ventilation and dustproof net (7) is fixed on the right side of the storage cabinet (1), the dehumidification mechanism (6) connected to the storage cabinet (1) is installed on the right side of the storage cabinet (1), the auxiliary cooling mechanism (8) connected to the storage cabinet (1) is installed on the left side of the storage cabinet (1), and the temperature sensor (11) and the humidity sensor (12) are installed on the top of the interior of the storage cabinet (1).

2. The classification storage device based on computer big data according to claim 1, characterized in that: A plurality of casters (5) are installed at the bottom of the storage cabinet (1), and the casters (5) are fixed to the storage cabinet (1) by screws, and the casters (5) are provided with foot brakes.

3. The classification storage device based on computer big data according to claim 1, characterized in that: A handle (201) is fixed on the cabinet door (2), the electromagnet (3) for sucking the cabinet door (2) is fixedly mounted on the storage cabinet (1), and an adsorption sheet (202) for sucking onto the electromagnet (3) is fixed on one side of the cabinet door (2), and the adsorption sheet (202) is made of iron material.

4. The classification storage device based on computer big data according to claim 1, characterized in that: The dehumidification mechanism (6) comprises: an air delivery pump (601), an air intake pipe (602), an air delivery pipe (603), a dehumidification cylinder (604), an exhaust pipe (605), a condensed water collection cylinder (606) and a condensation mechanism (607). The air delivery pump (601) is fixed to the right side of the storage cabinet (1). The air inlet end of the air delivery pump (601) is fixedly connected to the air intake pipe (602). The air intake pipe (602) is inserted into the storage cabinet (1). The air outlet end of the air delivery pump (601) is fixedly connected to the air intake pipe (602). There is the gas supply pipe (603), the lower end of the gas supply pipe (603) is inserted into the dehumidification cylinder (604), the exhaust pipe (605) inserted into the storage cabinet (1) is fixed on the left side of the dehumidification cylinder (604), the condensation water collection cylinder (606) is installed at the bottom of the dehumidification cylinder (604), the condensation water collection cylinder (606) is detachably fixed to the dehumidification cylinder (604) through threads, and the dehumidification cylinder (604) is installed with the condensation mechanism (607) extending into the interior thereof.

5. The classification storage device based on computer big data according to claim 4, characterized in that: The condensing mechanism (607) includes: a connecting rod (6071), condensing fins (6072), vents (6073), a first semiconductor refrigeration fin (6074) and a first heat dissipation fin (6075). The connecting rod (6071) is fixed to the dehumidification cylinder (604). The connecting rod (6071) is inserted into the interior of the dehumidification cylinder (604). A plurality of condensing fins (6072) are fixed on the connecting rod (6071). Each of the condensing fins (6072) is provided with a plurality of vents (6073). A plurality of the first semiconductor refrigeration fins (6074) are fixedly mounted on the top of the connecting rod (6071). The hot end of each of the first semiconductor refrigeration fins (6074) is fixedly mounted with the first heat dissipation fin (6075).

6. The classification storage device based on computer big data according to claim 5, characterized in that: The auxiliary cooling mechanism (8) comprises: a mounting tube (801), a filter (802), a spiral tube (803), a second semiconductor cooling plate (804), a second heat dissipation fin (805) and a fan (806); the mounting tube (801) is placed on the ground; the fan (806) is fixedly installed in the mounting tube (801); the filter (802) is fixedly installed on the front side of the mounting tube (801); the filter (802) is detachably connected to the mounting tube (801) by screws; the spiral tube (803) is installed on the rear side of the mounting tube (801) and is in communication with the mounting tube; the upper end of the spiral tube (803) is inserted into the storage cabinet (1); a plurality of the second semiconductor cooling plates (804) are fixed on the outside of the spiral tube (803); and the hot end of each second semiconductor cooling plate (804) is installed with the second heat dissipation fin (805).

7. The classification storage device based on computer big data according to claim 6, characterized in that: The connecting rod (6071), the condensing fin (6072), the first heat dissipation fin (6075), the spiral tube (803) and the second heat dissipation fin (805) are all made of copper.

8. The classification storage device based on computer big data according to claim 6, characterized in that: The electromagnet (3), the air pump (601), the first semiconductor cooling plate (6074), the second semiconductor cooling plate (804), the fan (806), the camera (10), the temperature sensor (11) and the humidity sensor (12) are all electrically connected to the touch control screen (4) via wires.

9. The classification storage device based on computer big data according to claim 8, characterized in that: When in use, the big data storage hard disk is placed in a plurality of storage slots (901) for separate storage. The pattern of the hard disk in the storage slot (901) is collected by the camera (10) and the pattern is transmitted to the touch control screen (4). When searching, the person first finds the required hard disk on the image of the touch control screen (4), and then locates it according to the number plate (903) in the storage slot (901) where the hard disk is located. Finally, the person opens the cabinet door (2) and directly takes out the required hard disk, making the search more convenient. The temperature and humidity inside the storage cabinet (1) are monitored by a temperature sensor (11) and a humidity sensor (12). When the humidity is high, the air in the storage cabinet (1) is extracted by an air pump (601) and transported to the dehumidification cylinder (604). The connecting rod (6071) and the condensing fin (6072) are cooled by the first semiconductor refrigeration plate (6074). The water vapor in the air contacts the low-temperature condensing fin (6072) and condenses onto the condensing fin (6072). Then, as the water droplets gather, the water droplets slide down. The air falls into the condensate collecting cylinder (606) and is collected. Then, the dried air flows back into the storage cabinet (1) from the exhaust pipe (605), thereby reducing the humidity in the storage cabinet (1); when the temperature is high, air is blown into the spiral tube (803) by the fan (806), and the dust in the spiral tube is filtered out by the filter (802). The air flow passing through the spiral tube (803) is cooled by the second semiconductor refrigeration plate (804), and the cooled air flow enters the storage cabinet (1), thereby cooling the storage cabinet (1).