Hospital information data management device
By using a split shelf design and auxiliary support and dehumidification mechanism, the problem of inconvenient access and storage of documents in deep cabinets has been solved, achieving convenient access and dry storage, and expanding the scope of application.
Patent Information
- Application Number
- CN202511364887.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-23
- Publication Date
- 2026-01-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing hospital information management devices, data access is inconvenient in deep cabinets, requiring the removal of data from the front and then the back, and the pull-out design occupies too much space on the front of the cabinet.
The design features a separate first and second shelf, with a sliding and rotating connection structure to adjust the shelf position. Combined with a longitudinal groove and traction rope system, it facilitates data retrieval. In conjunction with an auxiliary support mechanism and a dehumidification mechanism, it provides stable support and a dry environment.
This design allows for easy access to documents within the deep cabinet, reduces space requirements, improves ease of use and applicability, and maintains a dry storage environment.
Smart Images

Figure CN121312944A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of hospital information management technology, specifically to a hospital information management device. Background Technology
[0002] With the development of technology, more and more information is stored electronically. However, in hospitals and other institutions, some important information still needs to be backed up and saved in text format. When managing hospital information, it is generally stored in a dedicated management cabinet. For example, a hospital information management device disclosed in application number CN202021402601.2 on June 8, 2021, uses lighting to facilitate viewing of the stored information, especially in low-light conditions. It is also convenient to use. Information boards are used to mark the types of stored information, making it easy to find. Another hospital information management device disclosed in application number CN202121481540.8 on December 3, 2021, prevents data from being spilled or scattered, ensuring orderly storage and management of the data. When using document management storage cabinets, if the cabinet is deep, the documents inside are often obscured by the documents in front. To retrieve them, the documents in front must be removed first, and then the documents outside must be placed back into place. This makes subsequent retrieval extremely inconvenient. If the cabinet is designed as a pull-out type, there needs to be enough space at the front of the cabinet to pull out documents from the deeper parts. However, document cabinets are usually placed densely, and the required distance for pulling out documents cannot be provided. Summary of the Invention
[0003] The purpose of this invention is to provide a hospital information management device to solve the problem mentioned in the background art. When the data management storage cabinet is deep, the data inside is obscured by the data in front. Before taking it out, the data in front must be removed first, and then the data outside must be placed first when putting it back. This makes subsequent retrieval extremely inconvenient. If it is designed as a pull-out type, a sufficiently long space must be left on the front of the cabinet to pull out the data from the deep cabinet.
[0004] To achieve the above objectives, the present invention provides the following technical solution: a hospital information management device, comprising a storage cabinet for storing documents and a cabinet door, the cabinet door being installed on the front side of the storage cabinet, a document box being provided at the bottom of the storage cabinet, a first shelf being provided above the document box, and a second shelf being connected to the rear side of the first shelf. Documents can be placed on the plane formed by the first and second shelves. The first and second shelves are at the same height, and a document positioning mechanism is provided above both the first and second shelves to position the documents above them. First sliders are symmetrically fixed on the left and right sides of the second shelf, and second sliders are symmetrically fixed on the left and right sides of the first shelf. Horizontal grooves are formed on the outer sides of the first and second sliders, and the horizontal grooves and the first sliders and the second sliders are connected... The two sliders form a sliding structure that allows the first and second shelves to move within the storage cabinet. The length of the first slider is greater than the length of the second slider. A longitudinal groove is formed at the front end of the transverse groove, through which the second slider can drive the first shelf to move downward. The second slider and the longitudinal groove form an up-down sliding structure, and the depth of the longitudinal groove is less than the length of the first slider. A first connecting plate is provided on the front side of the second shelf, and a second connecting plate is connected to the front side of the first connecting plate. The outer ends of both the first and second connecting plates are fixed with mounting shafts, and the first and second connecting plates are rotatably connected to the second shelf and the first shelf respectively through the mounting shafts. A telescopic connecting mechanism is provided between the first and second connecting plates, allowing the overall length of the first and second connecting plates to be adjusted.
[0005] To further optimize this technical solution, the data positioning mechanism includes a baffle, a limiting clamp, a connecting shaft, and a first torsion spring; The baffle, fixed above the first and second layers, provides lateral support for the data. The limiting clamp is located on the front side of the baffle to provide a clamping effect for the data; The connecting shaft is fixed to the end of the limiting clamp, and the limiting clamp is rotatably connected to the baffle through the connecting shaft; The first torsion spring is installed at the end of the connecting shaft to provide rotational restoring force for the connecting shaft.
[0006] To further optimize this technical solution, the top view of the baffle is designed with an "L" shape, which enables it to position the data in two directions and separate the data on the first layer and the data on the second layer, making it convenient to classify and store the data.
[0007] To further optimize this technical solution, the telescopic connection mechanism includes a movable block and a first return spring; The movable block is set inside the first connecting plate and between the first connecting plate to form a front-to-back sliding structure, and the front end of the movable block passes through the front surface of the first connecting plate and is fixedly connected to the second connecting plate. The first reset spring is located on the front side of the movable block, and the front end of the first reset spring is connected to the first connecting plate. It provides a reset thrust to the movable block, so that the movable block can be pulled out from the first connecting plate and can be reset subsequently.
[0008] To further optimize this technical solution, the second slider is fixed to the rear end of the first shelf, and an auxiliary support mechanism is provided on the front side of the second slider to provide auxiliary support for the first shelf inside the storage cabinet.
[0009] To further optimize this technical solution, the auxiliary support mechanism includes an auxiliary block, a first magnetic block, a second magnetic block, and a second reset spring; An auxiliary block is set between the side of the first layer plate and the first layer plate to form a left-right sliding structure; The first magnetic block is fixed at the outer end of the auxiliary block; The second magnetic block is fixed inside the transverse groove, and the second magnetic block and the first magnetic block are arranged with opposite magnetic poles facing each other, so that the auxiliary block can be sucked into the transverse groove. The second reset spring is located at the inner end of the auxiliary block and provides an internal thrust to the auxiliary block. After the positions of the first magnetic block and the second magnetic block are misaligned, it can push the auxiliary block to move into the interior of the first layer plate.
[0010] To further optimize this technical solution, a traction rope is fixed to the rear end of the second layer plate, and a winding shaft is connected to the rear end of the traction rope. The winding shaft is rotatably installed inside the storage cabinet. A second torsion spring is installed at the end of the winding shaft to provide rotational reset force for the winding shaft, so that the subsequent traction rope can provide a backward pulling force to the second layer plate, assisting in the reset of the second layer plate.
[0011] To further optimize this technical solution, a dehumidification mechanism is installed above the storage cabinet to absorb moisture inside the cabinet.
[0012] To further optimize this technical solution, the dehumidification mechanism includes a mounting block, a dehumidification box, a connector, a connecting block, a tension sensor, and an alarm. The mounting block is installed above the storage cabinet and forms a threaded connection between the storage cabinet and the storage cabinet; The dehumidifier box is located below the mounting block; The connector is fixed to the top of the dehumidifier box; The connecting block is positioned below the mounting block and between the mounting block to form an up-and-down sliding structure, and the connecting block and the connecting head form a threaded connection; A tension sensor is installed above the connecting block to detect the downward tension of the connecting block, and the upper end of the tension sensor is fixedly connected to the connecting block. The reminder device, installed above the mounting block, will issue an alert when the dehumidifier box absorbs moisture and increases in weight to the warning level, prompting personnel to replace it.
[0013] Compared with the prior art, the beneficial effects of the present invention are: This hospital information management device features a separate first and second shelf, allowing for adjustable positions. When data needs to be retrieved from the second shelf, the first shelf can be pulled forward and its vertical position adjusted using a longitudinal slot, thus exposing the second shelf for easy data retrieval. Furthermore, only half the cabinet depth needs to be reserved for extension, making it more convenient to use and applicable to a wider range of applications. The hospital information management device can provide auxiliary support for the first layer plate through the setting of auxiliary blocks. When the first layer plate is pulled forward, the auxiliary blocks can automatically retract without affecting the movement of the first layer plate. Furthermore, the lengths of the first connecting plate and the second connecting plate between the first and second layers plate are adjustable, which facilitates the vertical movement of the first layer plate and keeps the second layer plate in a horizontal position. The hospital's information management device uses a dehumidifier box to absorb moisture from the storage cabinet, providing a good storage environment for the data. The dehumidifier box also increases in weight after absorbing moisture, and with the reminder device, it can remind personnel to replace it later, ensuring that the environment inside the storage cabinet is dry. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a schematic diagram of the internal structure of the storage cabinet of the present invention; Figure 3 This is a top view of the first layer of the present invention. Figure 4 This is a schematic diagram of the three-dimensional structure of the first layer plate of the present invention; Figure 5 This is a top-section schematic diagram of the first connecting plate of the present invention; Figure 6 This is a side view of the second layer plate structure of the present invention; Figure 7 This is a schematic diagram of the three-dimensional structure of the connecting block of the present invention; Figure 8 This is a schematic diagram of the three-dimensional structure of the mounting block of the present invention.
[0015] In the diagram: 1. Storage cabinet; 2. Cabinet door; 3. Document box; 4. First shelf; 5. Second shelf; 6. Baffle; 7. Limiting clamp; 8. Connecting shaft; 9. First torsion spring; 10. First connecting plate; 11. Second connecting plate; 12. Mounting shaft; 13. Movable block; 14. First return spring; 15. First slider; 16. Second slider; 17. Horizontal groove; 18. Longitudinal groove; 19. Auxiliary block; 20. First magnetic block; 21. Second magnetic block; 22. Second return spring; 23. Traction rope; 24. Rewinding shaft; 25. Second torsion spring; 26. Mounting block; 27. Dehumidifier box; 28. Connector; 29. Connecting block; 30. Tension sensor; 31. Reminder. Detailed Implementation
[0016] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0017] Please see Figure 1-8This invention provides a technical solution: a hospital information management device, including a storage cabinet 1 for storing documents and a cabinet door 2. The cabinet door 2 is installed on the front side of the storage cabinet 1. A document box 3 is provided at the bottom of the storage cabinet 1, and a first shelf 4 is provided above the document box 3. A second shelf 5 is connected to the rear side of the first shelf 4. Documents can be placed on the plane formed by the first shelf 4 and the second shelf 5. The heights of the first shelf 4 and the second shelf 5 are set at the same level, and a document positioning mechanism is provided above both the first shelf 4 and the second shelf 5 to position the documents above the first shelf 4 and the second shelf 5. A first slider 15 is symmetrically fixed on both the left and right sides, and a second slider 16 is symmetrically fixed on both the left and right sides of the first shelf 4. A transverse groove 17 is formed on the outer side of both the first and second sliders 15 and 16, and the transverse groove 17, the first slider 15, and the second slider 16 form a sliding structure, allowing the first shelf 4 and the second shelf 5 to move within the storage cabinet 1. The length of the first slider 15 is greater than the length of the second slider 16. A longitudinal groove 18 is formed at the front end of the transverse groove 17, allowing the second slider 16 to move the first shelf 4 downwards via the longitudinal groove 18. The second slider 16 and the longitudinal groove 18 form an up-and-down sliding structure, and the longitudinal groove 18... The groove depth of groove 18 is less than the length of the first slider 15. A first connecting plate 10 is provided on the front side of the second layer plate 5, and a second connecting plate 11 is connected to the front side of the first connecting plate 10. Mounting shafts 12 are fixed to the outer ends of both the first connecting plate 10 and the second connecting plate 11. The first connecting plate 10 and the second connecting plate 11 are rotatably connected to the second layer plate 5 and the first layer plate 4 via the mounting shafts 12. A telescopic connecting mechanism is provided between the first connecting plate 10 and the second connecting plate 11, allowing the overall length of the first connecting plate 10 and the second connecting plate 11 to be adjusted. The data positioning mechanism includes a baffle 6, a limiting clamp 7, a connecting shaft 8, and... The first torsion spring 9 and the baffle 6 are fixed above the first layer plate 4 and the second layer plate 5 to provide lateral support for the data. The limiting clamp 7 is set on the front side of the baffle 6 to provide a clamping effect for the data. The connecting shaft 8 is fixed to the end of the limiting clamp 7, and the limiting clamp 7 forms a rotatable connection with the baffle 6 through the connecting shaft 8. The first torsion spring 9 is installed at the end of the connecting shaft 8 to provide rotational restoring force for the connecting shaft 8. The top view cross section of the baffle 6 is designed with an "L" shape, which enables it to provide positioning for the data in two directions and to separate the data on the first layer plate 4 and the data on the second layer plate 5, making it convenient to classify and store the data. In use, materials can be stacked back-to-back in the storage cabinet 1 using the first shelf 4 and the second shelf 5, allowing the deeper storage cabinet 1 to hold more materials. The materials on the first shelf 4 can be separated from the materials on the second shelf 5 by the baffle 6, facilitating subsequent retrieval and classification. Before placing materials on the first shelf 4 or the second shelf 5, the limiting clamp 7 can be turned to rotate around the connecting shaft 8, causing the first torsion spring 9 to store force. After the materials are placed, the limiting clamp 7 is released, allowing the first torsion spring 9 to drive the limiting clamp 7 to rotate through the connecting shaft 8, thus clamping the materials in conjunction with the baffle 6 and limiting their position, ensuring stability during subsequent placement. When it is necessary to retrieve materials on the second shelf 5, the first shelf 4 can be pulled to insert and pull out the second shelf 5.
[0018] The telescopic connection mechanism includes a movable block 13 and a first return spring 14. The movable block 13 is disposed inside the first connecting plate 10 and forms a front-to-back sliding structure between the first connecting plate 10 and the first connecting plate 11. The front end of the movable block 13 passes through the front surface of the first connecting plate 10 and is fixedly connected to the second connecting plate 11. The first return spring 14 is disposed on the front side of the movable block 13, and the front end of the first return spring 14 is connected to the first connecting plate 10, providing a return thrust for the movable block 13, so that the movable block 13 can be pulled out from the first connecting plate 10 and can be reset subsequently. The second slider 16 is fixed to the rear end of the first shelf 4, and an auxiliary support mechanism is provided on the front side of the second slider 16 to provide auxiliary support for the first shelf 4 in the storage cabinet 1. The auxiliary support mechanism includes an auxiliary block 19, a first magnetic block 20, a second magnetic block 21, and a second return spring 22. The auxiliary block 19 is disposed on the side of the first shelf 4. A left-right sliding structure is formed between the edge and the first layer plate 4. The first magnetic block 20 is fixed to the outer end of the auxiliary block 19, and the second magnetic block 21 is fixed inside the transverse groove 17. The second magnetic block 21 and the first magnetic block 20 are arranged with opposite magnetic poles to each other, so that the auxiliary block 19 can be sucked into the transverse groove 17. The second reset spring 22 is set at the inner end of the auxiliary block 19 to provide an internal pushing force for the auxiliary block 19. After the positions of the first magnetic block 20 and the second magnetic block 21 are staggered, the auxiliary block 19 can be pushed to move into the interior of the first layer plate 4. The rear end of the second layer plate 5 is fixed with a traction rope 23, and the rear end of the traction rope 23 is connected to a winding shaft 24. The winding shaft 24 is rotatably installed inside the storage cabinet 1. The end of the winding shaft 24 is equipped with a second torsion spring 25 to provide a rotational reset force for the winding shaft 24, so that the subsequent traction rope 23 can provide a backward pulling force for the second layer plate 5 to assist in the reset of the second layer plate 5. When the first layer plate 4 is pulled, the second slider 16 slides in the transverse groove 17. Simultaneously, the first magnetic block 20 and the second magnetic block 21 are misaligned. The auxiliary block 19 moves inside the first layer plate 4 under the action of the second return spring 22, pulling the second slider 16 into the longitudinal groove 18 and moving it downwards along the longitudinal groove 18, thus misaligning the positions of the first layer plate 4 and the second layer plate 5. At the same time, the first connecting plate 10 and the second connecting plate 11 rotate on the second layer plate 5 and the first layer plate 4 via the mounting shaft 12. The second layer plate 5 is stopped moving by the first slider 15 at the front side of the transverse groove 17. When the second layer plate 5 moves forward, it pulls the traction rope 23 to unwind on the winding shaft 24, causing the second torsion spring 25 to store force. Subsequently, through... The second torsion spring 25 drives the winding shaft 24 to rotate, providing a pull force to the second layer plate 5, facilitating the reset of the second layer plate 5. When the first layer plate 4 is moved downward, the movable block 13 can be pulled to move within the first connecting plate 10, changing the distance between the first layer plate 4 and the second layer plate 5, allowing the front side of the second layer plate 5 to be exposed, thus facilitating the retrieval of materials on the second layer plate 5. After retrieval, the first layer plate 4 can be pushed upward to reset it. The second slider 16 is moved from the longitudinal groove 18 to the transverse groove 17, and the second layer plate 5 is pushed backward. Under the action of the second torsion spring 25, the winding shaft 24 winds up the traction rope 23, pulling the second layer plate 5 backward to reset it, thus completing the placement of the first layer plate 4 and the second layer plate 5.
[0019] A dehumidification mechanism is installed above the storage cabinet 1 to absorb moisture inside the cabinet. The dehumidification mechanism includes a mounting block 26, a dehumidification box 27, a connector 28, a connecting block 29, a tension sensor 30, and an alarm 31. The mounting block 26 is located above the storage cabinet 1 and forms a threaded connection with it. The dehumidification box 27 is located below the mounting block 26. The connector 28 is fixed above the dehumidification box 27. The connecting block 29 is located below the mounting block 26 and forms a sliding structure with it. The connecting block 29 and the connector 28 form a threaded connection. The tension sensor 30 is located above the connecting block 29 to detect the downward pulling force of the connecting block 29. The upper end of the tension sensor 30 is fixedly connected to the connecting block 29. The alarm 31 is installed above the mounting block 26 and can issue an alarm when the dehumidification box 27 absorbs moisture and increases in weight to the warning range, prompting personnel to replace it. The dehumidifier box 27 absorbs moisture from the storage cabinet 1, providing a dry storage environment for the data. When the dehumidifier box 27 is fully saturated, its overall mass will change significantly. This change in mass can be monitored by the tension sensor 30. Setting an appropriate alarm value can trigger the alarm 31 when the mass of the dehumidifier box 27 reaches the set range. The alarm 31 can be an audible and visual alarm, which can then emit a warning. Subsequently, staff can remove the mounting block 26 from the storage cabinet 1 by rotating it, and then rotate the dehumidifier box 27 to disconnect the connector 28 and the connecting block 29. Alternatively, the dehumidifier box 27 can be directly rotated inside the storage cabinet 1 to remove it for replacement.
[0020] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0021] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A hospital information management device, comprising a storage cabinet (1) for storing information and a cabinet door (2), wherein the cabinet door (2) is installed on the front side of the storage cabinet (1); Its features are: The storage cabinet (1) is provided with a data box (3) at the bottom, and a first shelf (4) is provided above the data box (3). A second shelf (5) is connected to the back of the first shelf (4). Data can be placed on the plane formed by the first shelf (4) and the second shelf (5). The heights of the first shelf (4) and the second shelf (5) are set at the same level. Data positioning mechanisms are provided above the first shelf (4) and the second shelf (5) to position the data above the first shelf (4) and the second shelf (5). A first slider (15) is symmetrically fixed on the left and right sides of the second shelf (5). A second slider (16) is symmetrically fixed on the left and right sides of the first shelf (4). A transverse groove (17) is provided on the outer side of the first slider (15) and the second slider (16). The transverse groove (17), the first slider (15), and the second slider (16) form a front and back sliding structure, so that the first shelf (4) and the second shelf (5) can move inside the storage cabinet (1). The length of the first slider (15) is greater than the length of the second slider (16). The front end of the transverse groove (17) is provided with a longitudinal groove (18). The second slider (16) can drive the first layer plate (4) to move downward through the longitudinal groove (18). The second slider (16) and the longitudinal groove (18) form an up-and-down sliding structure. The groove depth of the longitudinal groove (18) is less than the length of the first slider (15). The front side of the second layer plate (5) is provided with a first connecting plate (10), and the front side of the first connecting plate (10) is connected with a second connecting plate (11). The outer ends of the first connecting plate (10) and the second connecting plate (11) are fixed with mounting shafts (12). The first connecting plate (10) and the second connecting plate (11) are respectively connected to the second layer plate (5) and the first layer plate (4) through the mounting shaft (12). A telescopic connection mechanism is provided between the first connecting plate (10) and the second connecting plate (11) so that the overall length of the first connecting plate (10) and the second connecting plate (11) can be adjusted.
2. The hospital information management device according to claim 1, characterized in that: The data positioning mechanism includes a baffle (6), a limiting clamp (7), a connecting shaft (8), and a first torsion spring (9). The baffle (6) is fixed above the first layer plate (4) and the second layer plate (5) to provide lateral support for the data; The limiting clamp (7) is set on the front side of the baffle (6) to provide a clamping effect for the data; The connecting shaft (8) is fixed at the end of the limiting clamp (7), and the limiting clamp (7) is rotatably connected to the baffle (6) through the connecting shaft (8); The first torsion spring (9) is installed at the end of the connecting shaft (8) to provide rotational restoring force to the connecting shaft (8).
3. The hospital information management device according to claim 2, characterized in that: The baffle (6) has an "L" shaped cross-section when viewed from above, which enables it to provide positioning of the data in two directions and to separate the data on the first plate (4) and the data on the second plate (5).
4. The hospital information management device according to claim 1, characterized in that: The telescopic connection mechanism includes a movable block (13) and a first return spring (14). The movable block (13) is set inside the first connecting plate (10) and between the first connecting plate (10) to form a front-to-back sliding structure, and the front end of the movable block (13) passes through the front surface of the first connecting plate (10) and is fixedly connected to the second connecting plate (11). The first reset spring (14) is located on the front side of the movable block (13), and the front end of the first reset spring (14) is connected to the first connecting plate (10) to provide a reset thrust for the movable block (13).
5. A hospital information management device according to claim 1, characterized in that: The second slider (16) is fixed to the rear end of the first layer plate (4), and an auxiliary support mechanism is provided on the front side of the second slider (16) to provide auxiliary support for the first layer plate (4) in the storage cabinet (1).
6. A hospital information management device according to claim 5, characterized in that: The auxiliary support mechanism includes an auxiliary block (19), a first magnetic block (20), a second magnetic block (21), and a second return spring (22); An auxiliary block (19) is set between the side of the first layer plate (4) and the first layer plate (4) to form a left-right sliding structure; The first magnetic block (20) is fixed to the outer end of the auxiliary block (19); The second magnetic block (21) is fixed inside the transverse groove (17), and the second magnetic block (21) and the first magnetic block (20) are arranged with opposite magnetic poles facing each other, so that the auxiliary block (19) can be sucked into the transverse groove (17); The second reset spring (22) is located at the inner end of the auxiliary block (19) and provides an internal thrust to the auxiliary block (19). After the positions of the first magnetic block (20) and the second magnetic block (21) are offset, the auxiliary block (19) can be pushed to move into the interior of the first layer plate (4).
7. A hospital information management device according to claim 1, characterized in that: The rear end of the second layer plate (5) is fixed with a traction rope (23), and the rear end of the traction rope (23) is connected to a winding shaft (24). The winding shaft (24) is rotatably installed inside the storage cabinet (1). The end of the winding shaft (24) is equipped with a second torsion spring (25) to provide rotational reset force for the winding shaft (24).
8. A hospital information management device according to claim 1 or 7, characterized in that: A dehumidification mechanism is provided above the storage cabinet (1) to absorb the water vapor inside the storage cabinet (1).
9. A hospital information management device according to claim 8, characterized in that: The dehumidification mechanism includes a mounting block (26), a dehumidification box (27), a connector (28), a connecting block (29), a tension sensor (30), and an alarm (31); Mounting block (26) is set above storage cabinet (1) and forms a threaded connection between storage cabinet (1); A dehumidifier box (27) is located below the mounting block (26); Connector (28) is fixed above the dehumidifier box (27); The connecting block (29) is located below the mounting block (26) and forms an up-and-down sliding structure between the mounting block (26), and the connecting block (29) and the connecting head (28) form a threaded connection; A tension sensor (30) is set above the connecting block (29) to detect the downward force of the connecting block (29), and the upper end of the tension sensor (30) is fixedly connected to the connecting block (29); The reminder (31) is installed above the mounting block (26). When the dehumidifier box (27) absorbs moisture and increases in weight to the reminder range, it can issue a reminder to prompt the personnel to replace it.