Intelligent information system control cabinet
By setting up moisture absorption components and cleaning components in the intelligent information system control cabinet, the problem of increased humidity during the heat dissipation process is solved, and the synergistic effect of humidity control and heat dissipation is achieved, ensuring the stable operation and long-term reliability of electronic components.
Patent Information
- Application Number
- CN202510731701.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-03
- Publication Date
- 2025-08-29
AI Technical Summary
The existing intelligent information system control cabinets are prone to moisture during the heat dissipation process, resulting in increased internal humidity and causing circuit short circuits, which affects the stable operation of electronic components.
The moisture absorption component and a cleaning component are installed in the control cabinet. The moisture absorption component filters moisture in the air through the air inlet hood and the moisture absorption component. The cleaning component cleans the filter mesh holes through the driving mechanism to prevent clogging and form a multi-layer humidity control barrier.
Effectively prevent humid air from entering the control cabinet, avoid circuit short circuits, ensure the stable operation of electronic components, reduce the frequency of manual maintenance, and improve long-term operation reliability.
Smart Images

Figure CN120568636A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent control cabinets, and in particular to an intelligent information system control cabinet. Background Art
[0002] Intelligent information system control cabinets, as devices used for centralized control, monitoring, and management of various devices and circuits within intelligent information systems, play a vital role in modern information technology and other fields. The control cabinets integrate a variety of electronic components, which generate significant heat during operation due to the conversion and consumption of electrical energy. If this heat cannot be dissipated promptly and effectively, the temperature inside the control cabinet will continue to rise. Excessive temperatures not only affect the normal performance of electronic components, causing them to slow down their computing speed and data processing errors, but also accelerate the aging of electronic components and shorten their service life due to prolonged exposure to high temperatures. In severe cases, they may even directly damage the electronic components, leading to malfunctions and failure of the entire intelligent information system.
[0003] Therefore, to ensure stable operation of intelligent information system control cabinets, heat dissipation must be achieved through exchange of air with the outside air. In the prior art, a common approach is to install air inlets and outlets on the control cabinet. This approach utilizes natural convection or auxiliary equipment such as fans to force cool air from the outside into the control cabinet, where it exchanges heat with the hot air inside before being discharged through the air outlets, achieving heat dissipation and cooling within the control cabinet.
[0004] However, existing heat dissipation methods inevitably contain a certain amount of moisture in the outside air. When outside air enters the control cabinet through the air inlet, the humidity inside the control cabinet increases. This increased humidity causes condensation to form on the surfaces of internal components. Once this moisture comes into contact with electrical circuits and components, it can easily cause short circuits, seriously affecting the normal and stable operation of the electronic components within the control cabinet. Summary of the Invention
[0005] The purpose of the present invention is to provide an intelligent information system control cabinet to solve the technical problem in the prior art that the control cabinet is easily affected by moisture.
[0006] As conceived above, the technical solution adopted by the present invention is:
[0007] An intelligent information system control cabinet, comprising:
[0008] A main cabinet body is provided with a mounting plate inside, and an air inlet and an air outlet connected to the inside of the main cabinet body are opened on the main cabinet body;
[0009] A moisture absorption assembly, comprising an air inlet cover and a moisture absorption member, wherein the moisture absorption member is capable of communicating with the air inlet to filter the air entering the air inlet, the air inlet cover is disposed over the air inlet and connected to the main cabinet, and the air inlet cover is provided with a filter mesh hole communicating with the air inlet and the outside world;
[0010] The cleaning component comprises a driving mechanism and a cleaning piece, wherein the cleaning piece is connected to the output end of the driving mechanism, and the driving mechanism can drive the cleaning piece to clean the filter mesh.
[0011] Preferably, the moisture-absorbing component also includes a supporting frame and an adjusting mechanism. The supporting frame is connected to the main cabinet. The supporting frame is divided into a working position and a temporary storage position. The moisture-absorbing component is detachably connected to the working position and the temporary storage position. The moisture-absorbing component located at the working position can be connected to the air inlet. The adjusting mechanism is used to replace the moisture-absorbing component at the working position and the moisture-absorbing component at the temporary storage position.
[0012] Preferably, one working position and at least two temporary storage positions are provided in the support frame, the number of the moisture-absorbing parts is less than or equal to the number of the temporary storage positions, and the temporary storage positions are respectively located on both sides of the working position along the first straight line direction, and the inner walls on both sides of the support frame are provided with sliding grooves extending along the first straight line direction, and multiple moisture-absorbing parts are connected in sequence along the first straight line direction, and the moisture-absorbing parts are slidably connected to the sliding grooves, and the adjustment mechanism can drive the moisture-absorbing parts to slide along the sliding grooves to replace the positions of the moisture-absorbing parts.
[0013] Preferably, the adjustment mechanism includes a power part and a connecting part, and a travel groove extending along the first straight line direction is opened through the side wall of the support frame. The connecting part is connected to the moisture-absorbing part and is slidably connected to the travel groove, and the power part can drive the connecting part to move along the travel groove.
[0014] Preferably, the moisture absorption component also includes a closed cover, an air collecting hood and a conveying pipe. The closed cover is arranged at the temporary storage position and is connected to the support frame. The air collecting hood is arranged at part of the air outlet. The conveying pipe connects the closed cover and the air collecting hood.
[0015] Preferably, the driving mechanism includes a driving motor, an adapter, a screw and a guide seat. The output end of the driving motor is connected to the screw through the adapter, and can drive the screw to rotate around its own axis. The guide seat is fixed to the cleaning part, the cleaning surface of the cleaning part is in contact with the filter mesh, and the guide seat is threadedly connected to the screw.
[0016] Preferably, the adapter includes a transfer rod, a first bevel gear and a second bevel gear, the transfer rod extends along the second straight line direction, the transfer rod is coaxially connected to the output end of the drive motor, the end of the transfer rod away from the drive motor is coaxially provided with a first bevel gear, the screw rod extends along the first straight line direction, the end of the screw rod close to the transfer rod is coaxially provided with a second bevel gear, the first bevel gear and the second bevel gear are engaged with each other, wherein the first straight line direction is perpendicular to the second straight line direction.
[0017] Preferably, the main cabinet has an openable and closable cabinet door, and the mounting plate is movably connected to the main cabinet via a movable member, and the movable member can drive the mounting plate to move within the main cabinet in a direction close to or away from the cabinet door.
[0018] Preferably, a guide groove is provided on the main cabinet body along the direction facing the cabinet door, and a guide slider is correspondingly provided on the mounting plate, and the guide slider is slidably connected to the guide groove.
[0019] Preferably, a suction fan is provided in the air inlet hood, and the suction fan can rotate around its own axis to suck external air into the air inlet hood.
[0020] Beneficial effects of the present invention:
[0021] The intelligent information system control cabinet proposed by the present invention has a mounting plate inside the main cabinet for installing electronic components. An air convection channel is formed on the main cabinet through the air inlet and the air outlet, ensuring that the heat generated by the internal electronic components can be discharged in time with the air flow. In the moisture absorption component, the air inlet hood covers the outside of the air inlet, and the filter mesh holes opened on its surface can preliminarily filter the air entering the main cabinet and intercept large particles of impurities; the moisture absorption part is arranged on the air flow path between the air inlet hood and the air inlet, and actively absorbs moisture in the air through adsorption, preventing humid air from entering the main cabinet, preventing the increase of humidity inside the main cabinet from causing problems such as short circuits in the internal electronic components, and ensuring the stable operation of the electronic components in the cabinet. In the cleaning component, the driving mechanism drives the cleaning part connected to its output end to clean the filter mesh holes, which can prevent the filter mesh holes from being blocked by impurities such as dust, ensure smooth air intake, maintain good ventilation and heat dissipation effects, enable the moisture absorption component to continue to work normally, and further ensure the stable operation of the control cabinet. To sum up, the intelligent information system control cabinet provided by the present invention forms a multi-layer humidity control barrier through the coordinated cooperation of moisture absorption components and cleaning components without affecting the heat dissipation requirements. It not only avoids the internal circuit short circuit problem caused by the introduction of humid air in traditional heat dissipation solutions, but also reduces the frequency of manual maintenance through the automated cleaning mechanism, thereby improving the long-term operation reliability of the control cabinet in complex environments. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 This is a first structural diagram of an intelligent information system control cabinet provided by an embodiment of the present invention;
[0023] Figure 2 yes Figure 1 Enlarged view of point A in the middle;
[0024] Figure 3 yes Figure 1 Enlarged view of point B in the middle;
[0025] Figure 4 is a second structural diagram of the intelligent information system control cabinet provided by an embodiment of the present invention;
[0026] Figure 5 is a structural schematic diagram of a mounting plate provided by an embodiment of the present invention;
[0027] Figure 6 It is a schematic diagram of the exploded structure of the moisture absorbing component provided in an embodiment of the present invention.
[0028] In the picture:
[0029] 1. Main cabinet; 11. Air inlet; 12. Air outlet; 13. Cabinet door; 14. Guide groove;
[0030] 2. Mounting plate; 21. Guide slider; 22. Connecting card;
[0031] 3. Moisture absorbing assembly; 31. Air inlet cover; 311. Filter mesh; 32. Moisture absorbing member; 33. Support frame; 331. Working position; 332. Temporary storage position; 333. Slide; 334. Travel groove; 34. Adjustment mechanism; 341. Connecting portion; 35. Enclosed housing; 36. Air collecting cover; 37. Delivery pipe;
[0032] 4. Cleaning component; 41. Driving mechanism; 411. Driving motor; 412. Guide seat; 413. Adapter; 4131. Adapter rod; 4132. First bevel gear; 4133. Second bevel gear; 414. Screw; 42. Cleaning component. DETAILED DESCRIPTION
[0033] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to explain the present invention, but are not to be construed as limiting the present invention.
[0034] In the description of the present invention, unless otherwise expressly specified or limited, the terms "connected," "connected," and "fixed" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention in specific circumstances.
[0035] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.
[0036] The technical solution of the present invention will be further described below with reference to the accompanying drawings and through specific implementation methods.
[0037] See also Figure 1 and Figure 4 The intelligent information system control cabinet provided by the embodiment of the present invention includes a main cabinet 1, a moisture absorption component 3, and a cleaning component 4. The main cabinet 1 is provided with a mounting plate 2, and is provided with an air inlet 11 and an air outlet 12 connected to the interior of the main cabinet 1. The moisture absorption component 3 includes an air inlet cover 31 and a moisture absorption member 32. The moisture absorption member 32 is connected to the air inlet 11 to filter the air entering the air inlet 11. The air inlet cover 31 is provided over the air inlet 11 and is connected to the main cabinet 1. The air inlet cover 31 is provided with a filter mesh 311 that connects the air inlet 11 with the outside world. The cleaning component 4 includes a driving mechanism 41 and a cleaning member 42. The cleaning member 42 is connected to the output end of the driving mechanism 41. The driving mechanism 41 can drive the cleaning member 42 to clean the filter mesh 311.
[0038] The intelligent information system control cabinet proposed in the present invention has a mounting plate 2 provided inside the main cabinet 1 for mounting electronic components. An air convection channel is formed on the main cabinet 1 through the air inlet 11 and the air outlet 12, ensuring that the heat generated by the internal electronic components can be discharged promptly with the airflow. In the moisture absorption component 3, the air inlet cover 31 covers the outside of the air inlet 11, and the filter mesh holes 311 opened on its surface can perform preliminary filtration on the air entering the main cabinet 1 and intercept large particles of impurities; the moisture absorption component 32 is arranged in the airflow path between the air inlet cover 31 and the air inlet 11, and actively absorbs moisture from the air through adsorption, preventing humid air from entering the main cabinet 1, preventing the increase of humidity inside the main cabinet 1 from causing problems such as short circuits in the internal electronic components, and ensuring the stable operation of the electronic components in the cabinet. In the cleaning component 4, the driving mechanism 41 drives the cleaning member 42 connected to its output end to clean the filter mesh 311, which can prevent the filter mesh 311 from being blocked by dust and other impurities, ensure smooth air intake, maintain good ventilation and heat dissipation effects, enable the moisture absorption component 3 to continue to work normally, and further ensure the stable operation of the control cabinet. In summary, the intelligent information system control cabinet provided by the present invention forms a multi-layer humidity control barrier through the coordinated cooperation of the moisture absorption component 3 and the cleaning component 4 without affecting the heat dissipation requirements. This not only avoids the internal circuit short circuit problem caused by the introduction of humid air in traditional heat dissipation solutions, but also reduces the frequency of manual maintenance through the automated cleaning mechanism, thereby improving the long-term operational reliability of the control cabinet in complex environments.
[0039] The specific structure of the intelligent information system control cabinet is explained below.
[0040] Two air outlets 12 are set on one of the side walls of the main cabinet 1, which can increase the efficiency and area of hot air exhaust, speed up the exhaust speed of hot air, and more effectively realize heat exchange with the outside air; an air inlet 11 is set on the other side wall of the main cabinet 1, so that the outside cold air can enter the interior of the main cabinet 1 more concentratedly, forming a more reasonable convection path with the hot air, and promoting better circulation of air inside the main cabinet 1.
[0041] Specifically, the main cabinet 1 has a cabinet door 13 that can be opened and closed, and the mounting plate 2 is movably connected to the main cabinet 1 through a movable part, and the movable part can drive the mounting plate 2 to move in the main cabinet 1 in a direction close to or away from the cabinet door 13. When the cabinet door 13 is opened, the movable part can drive the mounting plate 2 to move horizontally and extend in the direction close to the cabinet door 13, so that the electronic components on the mounting plate 2 are completely exposed to the operator's field of vision, which is convenient for rapid line inspection, component replacement or fault repair, and improves the convenience and safety of maintenance operations; when the operation is completed, by resetting the mounting plate 2 in a direction away from the cabinet door 13, the electronic components can be stored deep inside the main cabinet 1, avoiding the protrusion of the equipment interfering with the closing and sealing of the cabinet door 13, and ensuring the protective performance. In addition, during the movement of the mounting plate 2, its relative position with the air inlet 11 and the air outlet 12 can be synchronously adjusted to optimize the internal airflow distribution path, enhance the heat dissipation uniformity, and reduce the formation of local high-temperature areas.
[0042] Among them, the moving parts can be selected from telescopic cylinders, screw nut pairs, electric pumps, etc., which will not be described in detail here, as long as they can achieve the above effects.
[0043] Alternatively, see Figure 5 Along the direction facing the cabinet door 13, a guide groove 14 is provided on the main cabinet body 1, and a guide slider 21 is correspondingly provided on the mounting plate 2. The guide slider 21 is slidably connected to the guide groove 14. The sliding connection between the guide slider 21 and the guide groove 14 provides a rigid guide constraint for the movement of the mounting plate 2, ensuring that the mounting plate 2 moves smoothly in and out along a strictly straight path, avoiding shaking, tilting, or even jamming caused by center of gravity shift or external interference during movement, and ensuring the stability and safety of the electronic components on the mounting plate 2 during displacement.
[0044] The moisture absorption assembly 3 initially filters the outside air through an air inlet hood 31 positioned over the air inlet 11. Specifically, a suction fan is housed within the air inlet hood 31, which rotates around its axis to draw outside air into the hood 31. Compared to natural convection, the suction fan effectively increases the air volume and velocity, allowing cool air from the outside to enter the main cabinet 1 more quickly. This accelerates air exchange between the inside and outside of the main cabinet 1 and improves heat dissipation efficiency.
[0045] After initially filtering through the filter mesh 311 of the air inlet hood 31, external air is further filtered by the moisture-absorbing element 32, removing any moisture from the air. The moisture-absorbing element 32 comprises a multi-layered moisture-absorbing unit that is removably mounted within the air inlet hood 31. The moisture-absorbing unit consists of a frame with honeycomb-shaped through-holes on its surface and a moisture-absorbing material filled within the frame. The moisture-absorbing units are stacked and arranged along the airflow direction within the air inlet hood 31. Each layer of the frame is secured by a snap-fit structure, and the pore density of the moisture-absorbing material in adjacent layers varies in a gradient.
[0046] The hygroscopic material is selected from porous adsorbents with high specific surface area, such as surface-modified silica gel or molecular sieves, which capture water molecules in the air by physical adsorption.
[0047] Optionally, a guide plate is provided on the outside of the moisture absorption unit, and the guide plate and the inner wall of the air inlet cover 31 form a circuitous air flow channel to extend the contact time between the air and the moisture absorption material.
[0048] Optionally, a water collecting tank is provided at the bottom of the moisture absorbing member 32 , and a hydrophobic guide layer is laid in the water collecting tank to collect liquid water released when the moisture absorbing material desorbs and discharge it to the outside of the main cabinet 1 through a drain pipe.
[0049] Optionally, at least one layer of hygroscopic material in the moisture absorption unit is mixed with humidity indicator particles, and when the moisture absorption reaches a threshold value, the indicator particles change color to prompt replacement.
[0050] Furthermore, the moisture-absorbing component 3 also includes a supporting frame 33 and an adjusting mechanism 34. The supporting frame 33 is connected to the main cabinet 1. The supporting frame 33 is divided into a working position 331 and a temporary storage position 332. The working position 331 and the temporary storage position 332 are both detachably connected with a moisture-absorbing component 32. The moisture-absorbing component 32 located at the working position 331 can be connected to the air inlet 11. The adjusting mechanism 34 is used to replace the moisture-absorbing component 32 at the working position 331 and the moisture-absorbing component 32 at the temporary storage position 332.
[0051] During use, the working position 331 and the temporary storage position 332 in the support frame 33 are respectively installed with moisture-absorbing members 32. In the initial state, the moisture-absorbing member 32 at the working position 331 is connected to the air inlet 11 to perform the dehumidification function, while the moisture-absorbing member 32 at the temporary storage position 332 is in a standby state. When the moisture-absorbing member 32 at the working position 331 needs to be replaced due to saturation of absorbed moisture, the adjustment mechanism 34 is started to move the moisture-absorbing member 32 at the working position 331 to the temporary storage position 332 for temporary storage, and at the same time, the new moisture-absorbing member 32 that has been dried or replaced in the temporary storage position 332 is moved to the working position 331 to continue working.
[0052] Through the above-described structure, the partitioned design of the support frame 33 and the coordinated action of the adjustment mechanism 34 enable the moisture absorber 32 to quickly switch between operating and standby modes. This replacement operation does not require interrupting the control cabinet operation or disassembling components of the main cabinet 1, improving maintenance efficiency. The moisture absorber 32 in the temporary storage position 332 can be dried naturally by utilizing residual heat within the cabinet or the external environment, enabling the moisture absorber to be recycled, reducing replacement frequency and operating costs. Furthermore, the redundant design of the dual-station design ensures that at least one moisture absorber 32 is always in operation, eliminating the risk of humidity loss during replacement of a single moisture absorber 32.
[0053] Exemplarily, a working position 331 and at least two temporary storage positions 332 are provided in the support frame 33. The number of moisture-absorbing parts 32 is less than or equal to the number of temporary storage positions 332. The temporary storage positions 332 are respectively located on both sides of the working position 331 along the first straight line direction. Slide grooves 333 extending along the first straight line direction are provided on the inner walls on both sides of the support frame 33. Multiple moisture-absorbing parts 32 are connected in sequence along the first straight line direction. The moisture-absorbing parts 32 are slidably connected to the slide grooves 333. The adjustment mechanism 34 can drive the moisture-absorbing parts 32 to slide along the slide grooves 333 to replace the position of the moisture-absorbing parts 32.
[0054] See also Figure 6 The following example illustrates a support frame 33 having one working position 331 and two temporary storage positions 332, located above and below the working position 331 along a first straight line. The support frame 33 also includes two moisture-absorbing members 32, a first moisture-absorbing member and a second moisture-absorbing member. The process is as follows: Initially, the first moisture-absorbing member is located in the working position 331, performing dehumidification, while the second moisture-absorbing member is located in the upper temporary storage position 332, ready for use. When the first moisture-absorbing member becomes saturated and requires replacement, the adjustment mechanism 34 drives the two moisture-absorbing members 32 to slide synchronously downward along the chute 333, causing the second moisture-absorbing member, originally located in the upper temporary storage position 332, to move to the working position 331, while the first moisture-absorbing member, originally located in the working position 331, moves to the lower temporary storage position 332. At this point, the second moisture-absorbing member is connected to the air inlet 11 to perform its dehumidification function, while the first moisture-absorbing member remains in the lower temporary storage position 332 for natural drying or manual maintenance. When the second moisture absorbing member is saturated, the adjustment mechanism 34 drives the two moisture absorbing members 32 to slide upward again. The first moisture absorbing member returns to the working position 331 after drying, and the second moisture absorbing member is naturally dried or manually maintained in the upper temporary storage position 332, thereby forming a cyclic alternation mode.
[0055] Through the above structure, the sliding grooves 333 on both sides and the linearly arranged moisture-absorbing parts 32 form a symmetrical sliding path. The replacement action only requires a single-direction translation to complete the workstation switching, and the mechanical structure is simple and reliable; the temporary storage positions 332 are distributed on both sides of the working position 331 along the first straight line direction, so that the moisture-absorbing parts 32 always move in a straight line during the replacement process, avoiding wear caused by steering friction. In the alternating use mode of multiple moisture-absorbing parts 32, the saturated moisture-absorbing parts 32 can use the cabinet heat dissipation waste heat to accelerate dehydration at the temporary storage position 332 so that they can be used again, thereby realizing the lossless recycling of the moisture-absorbing parts 32 in a limited space while maintaining uninterrupted operation of humidity control.
[0056] It is understood that when the number of temporary storage locations 332 is expanded to three, four, or five, and three, four, or five moisture-absorbing members 32 are configured accordingly, the workflow is similar to the aforementioned scenario with two moisture-absorbing members 32 and two temporary storage locations 332. In both cases, the adjustment mechanism 34 is used to drive the moisture-absorbing members 32 to slide along the chute 333 to achieve station switching, so this description will not be repeated. Such simple adjustments to the number and arrangement of temporary storage locations 332, such as increasing the number of stations, changing the direction of the chute 333, or adjusting the spacing between the moisture-absorbing members 32, all achieve alternate use and cyclic maintenance of the moisture-absorbing members 32 based on the same operating principle, are natural extensions and equivalent implementations of the technical solution of this application, and should be covered by the scope of protection of this application.
[0057] More specifically, the adjustment mechanism 34 includes a power unit and a connecting portion 341. A travel slot 334 extending along a first linear direction is formed through the sidewall of the support frame 33. The connecting portion 341 is connected to the moisture-absorbing member 32 and slidably connected to the travel slot 334. The power unit drives the connecting portion 341 along the travel slot 334. The cooperation between the power unit and the travel slot 334 enables automated control of the replacement of the moisture-absorbing member 32, allowing station switching without manual intervention. The travel slot 334 guides the movement of the connecting portion 341, ensuring a clear and controllable movement path, preventing deviation or jamming of the moisture-absorbing member 32 during movement, and ensuring the stability of the replacement action.
[0058] The power unit may be a drive motor 411, a hydraulic cylinder and other equipment, which will not be described in detail here, as long as the above-mentioned effects can be achieved.
[0059] In other embodiments, the support frame 33 may also be configured as a circular turntable, with the working positions 331 and multiple temporary storage positions 332 evenly distributed along the circumference of the support frame 33, and the moisture absorbing members 32 removably secured to the edges of the support frame 33. The adjustment mechanism 34 drives the turntable to rotate about its axis, sequentially aligning different moisture absorbing members 32 with the air inlet 11, thereby switching between workstations. This description is omitted here.
[0060] Optionally, the moisture absorbing component 3 further includes a closed cover 35, an air collecting hood 36, and a conveying pipe 37. The closed cover 35 is located at the temporary storage position 332 and is connected to the support frame 33. The air collecting hood 36 is located at a portion of the air outlet 12. The conveying pipe 37 connects the closed cover 35 and the air collecting hood 36. During use, when the moisture absorbing member 32 is moved to the temporary storage position 332 by the adjustment mechanism 34, the closed cover 35 completely wraps the moisture absorbing member 32, forming a closed space to prevent interference from external moisture. At the same time, the air collecting hood 36 covers a portion of the air outlet 12, and guides the hot air exhausted from the main cabinet 1 to the conveying pipe 37. The hot air is conveyed to the interior of the closed cover 35 through the conveying pipe 37. The high-temperature air circulates in the closed cover 35, heating the moisture absorbing member 32 at the temporary storage position 332, accelerating the desorption of moisture adsorbed in the moisture absorbing material. The water vapor generated by desorption is discharged with the air flow through the conveying pipe 37 or condensed and discharged through the drainage structure.
[0061] This design utilizes waste heat from the air outlet 12 to dry and regenerate the temporary moisture-absorbing element 32, achieving energy recycling and reducing the energy consumption required for moisture-absorbing material replacement or external drying. The enclosed housing 35 and duct 37 form an independent air duct, preventing desorbed water vapor from flowing back into the main cabinet 1 and maintaining stable humidity within the cabinet. The air collection hood 36 collects hot air in a targeted manner, ensuring controllable drying airflow temperature and flow, thereby improving the utilization efficiency of the moisture-absorbing element 32. Furthermore, the enclosed regeneration process allows maintenance without disassembling the moisture-absorbing element 32, further reducing the need for manual intervention.
[0062] The cleaning assembly 4 drives the cleaning member 42 to clean the filter mesh 311 of the air inlet cover 31 through the driving mechanism 41 to prevent the filter mesh 311 from being blocked by dust and other impurities, thereby ensuring smooth air intake.
[0063] Specifically, the drive mechanism 41 includes a drive motor 411, an adapter 413, a screw 414, and a guide seat 412. The output end of the drive motor 411 is connected to the screw 414 via the adapter 413, and can drive the screw 414 to rotate around its own axis. The guide seat 412 is fixed to the cleaning member 42, and the cleaning surface of the cleaning member 42 contacts the filter mesh 311. The guide seat 412 is threadedly connected to the screw 414. During use, after the drive motor 411 is started, it drives the screw 414 to rotate around its own axis via the adapter 413. The guide seat 412, which is threadedly connected to the screw 414, converts the rotational motion into linear motion, thereby pushing the cleaning member 42 to translate along the surface of the filter mesh 311. The cleaning surface of the cleaning member 42 continuously contacts the filter mesh 311 during movement, scraping off dust, fibers, and other pollutants attached to the inside and outside of the filter mesh 311 through friction. When the rotation direction of the screw rod 414 is switched, the guide seat 412 drives the cleaning member 42 to move in the opposite direction, forming a reciprocating cleaning path, thereby ensuring that all areas of the filter mesh 311 are effectively cleaned.
[0064] Optionally, the adapter 413 includes a transfer rod 4131, a first bevel gear 4132, and a second bevel gear 4133. The transfer rod 4131 extends along the second linear direction and is coaxially connected to the output end of the drive motor 411. The first bevel gear 4132 is coaxially disposed on the end of the transfer rod 4131 away from the drive motor 411. The screw rod 414 extends along the first linear direction and is coaxially disposed on the end of the screw rod 414 near the transfer rod 4131. The first bevel gear 4132 and the second bevel gear 4133 are meshed with each other, wherein the first linear direction is perpendicular to the second linear direction. During use, when the drive motor 411 is activated, the transfer rod 4131 is driven around its own axis, and the first bevel gear 4132 fixed to the end of the transfer rod 4131 rotates accordingly. The first bevel gear 4132 transmits power to the screw rod 414 through engagement with the second bevel gear 4133, causing the screw rod 414 to rotate around its own axis. Because the first linear direction is perpendicular to the second linear direction, the transmission structure converts the output direction of the drive motor 411 from the second linear direction to the first linear direction, thereby driving the guide seat 412 and the cleaning member 42 to move linearly along the extension direction of the screw rod 414, completing the cleaning operation of the filter mesh 311. This arrangement achieves a 90-degree conversion of the power output direction through bevel gear meshing transmission, allowing the drive motor 411 to be arranged in a direction perpendicular to the screw rod 414, thereby improving the space utilization of the main cabinet 1 and optimizing the compactness of the component layout.
[0065] In this embodiment, in order to streamline the structure and save energy, the cabinet door 13 is arranged on one of the side walls of the main cabinet body 1 along the second straight line direction, the driving motor 411 and the transfer rod 4131 are arranged on the top of the main cabinet body 1, and the outer periphery of part of the transfer rod 4131 is provided with a threaded line. The top of the mounting plate 2 is provided with a connecting card plate 22, which passes through the top of the main cabinet body 1 and is threadedly connected to the transfer rod 4131, so that the driving motor 411 serves as the moving part of the mounting plate 2, and there is no need to set up additional moving parts. In the process of the driving motor 411 driving the transfer rod 4131 to rotate, due to the threaded connection between the two, the connecting card plate 22 converts the rotational motion of the transfer rod 4131 into linear motion, driving the mounting plate 2 to move along the extension direction of the transfer rod 4131.
[0066] Similarly, the connecting part 341 connects the moisture absorbing part 32 and the cleaning part 42. At this time, the driving motor 411 serves as the power part, and there is no need to set up an additional power part. When the driving motor 411 drives the cleaning part 42 to reciprocate along the first straight line direction through the cooperation of the adapter 413, the screw rod 414 and the guide seat 412, the moisture absorbing part 32 is also synchronously driven to move along the first straight line direction through the transmission effect of the connecting part 341, thereby realizing the replacement effect of the moisture absorbing part 32 between the working position 331 and the temporary storage position 332.
[0067] In summary, this design uses the drive motor 411 as the sole power source through the transmission design of each component, and integrates the three major functions of displacement of the mounting plate 2, replacement of the moisture-absorbing part 32, and cleaning of the filter into the same transmission chain, thereby greatly simplifying the mechanical structure, reducing the energy consumption and space occupancy caused by multiple drive units, and achieving the dual improvement of structural streamlining and energy efficiency optimization.
[0068] The above embodiments merely illustrate the basic principles and features of the present invention. The present invention is not limited to the above embodiments. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent information system control cabinet, characterized in that: include: A main cabinet (1) is provided with a mounting plate (2) therein, and an air inlet (11) and an air outlet (12) are provided on the main cabinet (1) and are connected to the interior of the main cabinet (1); A moisture absorption component (3) comprises an air inlet cover (31) and a moisture absorption member (32); the moisture absorption member (32) is capable of being connected to the air inlet (11) to filter the air entering the air inlet (11); the air inlet cover (31) is disposed on the air inlet (11) and is connected to the main cabinet (1); and a filter mesh hole (311) is provided on the air inlet cover (31) for connecting the air inlet (11) with the outside world; The cleaning assembly (4) comprises a driving mechanism (41) and a cleaning member (42), wherein the cleaning member (42) is connected to the output end of the driving mechanism (41), and the driving mechanism (41) can drive the cleaning member (42) to clean the filter mesh (311).
2. The intelligent information system control cabinet according to claim 1, characterized in that: The moisture absorbing component (3) further comprises a supporting frame (33) and an adjusting mechanism (34). The supporting frame (33) is connected to the main cabinet (1). The supporting frame (33) is divided into a working position (331) and a temporary storage position (332). The working position (331) and the temporary storage position (332) are both detachably connected with the moisture absorbing member (32). The moisture absorbing member (32) located at the working position (331) can be connected to the air inlet (11). The adjusting mechanism (34) is used to replace the moisture absorbing member (32) at the working position (331) with the moisture absorbing member (32) at the temporary storage position (332).
3. The intelligent information system control cabinet according to claim 2, characterized in that: The support frame (33) is provided with one working position (331) and at least two temporary storage positions (332). The number of the moisture absorbing members (32) is less than or equal to the number of the temporary storage positions (332). The temporary storage positions (332) are respectively located on both sides of the working position (331) along the first straight line direction. The inner walls on both sides of the support frame (33) are provided with sliding grooves (333) extending along the first straight line direction. The plurality of moisture absorbing members (32) are connected in sequence along the first straight line direction. The moisture absorbing members (32) are slidably connected to the sliding grooves (333). The adjustment mechanism (34) can drive the moisture absorbing members (32) to slide along the sliding grooves (333) to replace the position of the moisture absorbing members (32).
4. The intelligent information system control cabinet according to claim 3, characterized in that: The adjustment mechanism (34) includes a power unit and a connecting unit (341). A travel groove (334) extending along a first linear direction is provided through the side wall of the support frame (33). The connecting unit (341) is connected to the moisture absorbing member (32) and is slidably connected to the travel groove (334). The power unit can drive the connecting unit (341) to move along the travel groove (334).
5. The intelligent information system control cabinet according to claim 2, characterized in that: The moisture absorption component (3) further comprises a closed cover (35), an air collecting hood (36) and a delivery pipe (37); the closed cover (35) is arranged at the temporary storage position (332) and is connected to the support frame (33); the air collecting hood (36) is arranged at a portion of the air outlet (12); and the delivery pipe (37) communicates the closed cover (35) and the air collecting hood (36).
6. The intelligent information system control cabinet according to claim 1, characterized in that: The driving mechanism (41) comprises a driving motor (411), an adapter (413), a screw rod (414) and a guide seat (412). The output end of the driving motor (411) is connected to the screw rod (414) through the adapter (413), and can drive the screw rod (414) to rotate around its own axis. The guide seat (412) is fixed to the cleaning member (42). The cleaning surface of the cleaning member (42) contacts the filter mesh (311). The guide seat (412) is threadedly connected to the screw rod (414).
7. The intelligent information system control cabinet according to claim 6, characterized in that: The adapter (413) includes a transfer rod (4131), a first bevel gear (4132) and a second bevel gear (4133); the transfer rod (4131) extends along a second linear direction; the transfer rod (4131) is coaxially connected to the output end of the drive motor (411); the first bevel gear (4132) is coaxially arranged at one end of the transfer rod (4131) away from the drive motor (411); the lead screw (414) extends along the first linear direction; the second bevel gear (4133) is coaxially arranged at one end of the lead screw (414) close to the transfer rod (4131); the first bevel gear (4132) and the second bevel gear (4133) are meshed with each other, wherein the first linear direction is perpendicular to the second linear direction.
8. The intelligent information system control cabinet according to claim 1, characterized in that: The main cabinet (1) has an openable and closable cabinet door (13), and the mounting plate (2) is movably connected to the main cabinet (1) via a movable member, and the movable member can drive the mounting plate (2) to move within the main cabinet (1) in a direction approaching or away from the cabinet door (13).
9. The intelligent information system control cabinet according to claim 8, characterized in that: A guide groove (14) is provided on the main cabinet body (1) in a direction facing the cabinet door (13), and a guide slider (21) is correspondingly provided on the mounting plate (2), wherein the guide slider (21) is slidably connected to the guide groove (14).
10. The intelligent information system control cabinet according to claim 1, characterized in that: A suction fan is provided in the air inlet cover (31), and the suction fan is capable of rotating around its own axis to draw external air into the air inlet cover (31).