Intelligent integrated power supply equipment
Automatic heat dissipation of the power supply equipment is achieved by operating a wrench, which solves the problem of uneven heat dissipation in discrete power supply systems, improves the reliability and service life of the equipment, and simplifies the installation and disassembly process of the modules.
Patent Information
- Application Number
- CN202610044099.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-14
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2046-01-14
AI Technical Summary
The uneven heat dissipation design of existing discrete power supply systems leads to turbulent airflow and heat island effect, which reduces the reliability and service life of the equipment.
The system uses a lever to operate, and through the sequential switching of mechanical locking and heat dissipation air ducts, it achieves automatic heat dissipation and ensures electrical safety interlocking during system state changes.
It improves the heat dissipation efficiency and lifespan of power supply equipment, simplifies the installation and disassembly process of modules, and enhances the reliability and intelligent management of equipment.
Smart Images

Figure CN121529337A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of intelligent integrated technology, specifically to an intelligent integrated power supply device. Background Technology
[0002] With the rapid development of information technology, communication technology, and Internet of Things technology, key facilities such as various communication base stations, data centers, and industrial control centers have placed higher demands on the reliability, compactness, and intelligent management of power supply systems. Typically, AC power distribution, inverters, uninterruptible power supplies, and batteries are combined into a single cabinet, and then centrally controlled and managed through a central intelligent monitoring unit. Although this saves floor space and simplifies cabling, the actual deployment of current discrete power supply systems still has issues that warrant further improvement.
[0003] For example, in cases of unbalanced heat dissipation design and limited reliability, discrete modules usually have their own independent heat dissipation channels or heat sinks, which can easily create airflow turbulence or heat island effects inside the device, resulting in low overall heat dissipation efficiency. Some modules may overheat due to poor heat dissipation, thereby accelerating component aging and reducing the reliability and lifespan of the entire power supply system. Summary of the Invention
[0004] This invention provides an intelligent integrated power supply device that utilizes the single, intuitive operation of pulling a wrench to forcibly and sequentially convert into three key system state changes: mechanical locking, heat dissipation duct establishment, and electrical safety interlocking. This ensures the effectiveness of automatic heat dissipation and improves performance and service life.
[0005] To solve the above-mentioned technical problems, the technical solution of the present invention is as follows: Firstly, an intelligent integrated power supply device includes: an AC charging panel, a UPS power supply panel, a first DC feeder panel, a communication power supply panel, and a second DC feeder panel. The AC charging panel contains a charging box, which is divided into upper, middle, and lower sections. A DC power charging module is located in the middle section of the charging box, and a current indicator light is located in the lower section. A rotating shaft extends through the outer side of the charging box, a physical key is located on the outer side of the rotating shaft, and a wrench is located on the outer side of the rotating shaft and outside the charging box. A charging port is located on the back panel of the AC charging panel. The device also includes: The drive unit, located at the front of the inner wall of the casing, is used to drive and adjust the direction of heat dissipation; The drive unit includes a drive component and a conversion component. The drive component is disposed outside the rotating shaft and is connected to the conversion component. The conversion component is disposed below the drive component and located inside the insertion box. The prying part is located at the rear of the inner wall of the box and is used to open and close the heat dissipation vents; The prying part includes a horizontal component and a lifting component. The horizontal component is located on one side of the driving component. The horizontal component and the lifting component are connected. The lifting component is located on the side of the inner wall of the insertion box. The feedback unit, located on the outside of the drive component, is used to provide feedback on the locking status; The feedback unit includes a shrinking component and a positioning component. The shrinking component is disposed on the outside of the driving component and is connected to the positioning component. The positioning component is disposed on the side of the inner wall of the insertion box and is connected to the driving component.
[0006] Furthermore, the driving element includes: The charging chip is located inside the charging port; The cam is located on the outside of the rotating shaft; The wrench is located on the outside of the rotating shaft and on the outside of the insertion box; The guide rail is located on the inner wall of the insertion box and below the cam.
[0007] Furthermore, the conversion element includes: The upright frame is installed inside the rail; A return spring is located below the upright frame; Furthermore, the conversion element also includes: L-shaped strips are fixed to one side of the upright frame; The central axis is set at one end of the upright frame and located inside the upright frame; The roller is located on the outside of the central shaft.
[0008] Furthermore, the transverse member includes: The uprights are installed on the inner wall of the insertion box; A swing bar is installed at the top of the upright; Furthermore, the lifting component includes: The vertical guide rail is installed on the inner wall of the insertion box and located at the bottom of the insertion box; The sliding rod is installed on the inner wall of the vertical guide rail. Furthermore, the shrinkage member includes: Assembly plate, located on one side of the inner wall of the insertion box; Multiple tension springs are arranged below the assembly plate.
[0009] Furthermore, the shrink-fit component also includes: Magnetic strip is installed inside the insertion box; The damper is located at the bottom end of the tension spring; The assembly plate has a recessed groove inside, which is used to store the damper. The micro switch is located below the assembly plate and at the highest point of the sliding rod.
[0010] Furthermore, the positioning element includes: The housing is located on one side of the inner wall of the insertion box; A compression spring is located inside the housing.
[0011] Furthermore, the positioning element also includes: A sphere, positioned at the top of the shell; The locking teeth are located on the outside of the cam, and have a locking hole inside that is adapted to fit the ball.
[0012] The above-described solution of the present invention has at least the following beneficial effects: The upward-curving end of the swing bar contacts and pushes the sliding rod on the inner wall of the insertion box. Then, according to the cooperation of the sliding rod, the vertical guide rail, and the damper, the heat dissipation vent on the side of the insertion box is gradually opened. When the damper moves upward, it compresses the tension spring at the top, and the tension spring changes from the initial state to the stretched state. The damper continues to rise and gradually retracts into the recessed groove of the assembly plate. The assembly plate is fixed at the opening of the inner wall of the insertion box. The recessed groove is used to accommodate the damper. Finally, the damper is fully opened, and a ventilation channel is formed between the inside and outside of the insertion box, realizing automatic heat dissipation during equipment operation. Attached Figure Description
[0013] The invention will now be further described with reference to the accompanying drawings.
[0014] Figure 1 This is a schematic diagram of the overall three-dimensional structure provided in an embodiment of the present invention; Figure 2 An exploded three-dimensional structural diagram of an AC charging screen, a UPS power supply screen, a DC power charging module, and a current indicator light combination is provided for an embodiment of the present invention. Figure 3 An exploded view of the AC charging screen, physical key, rotating shaft, and wrench assembly is provided for embodiments of the present invention. Figure 4 This is a schematic diagram of the combined structure of the charging chip, charging port, and AC charging screen provided in an embodiment of the present invention; Figure 5 This is an exploded view of the combination of the socket, charging port, and socket structure provided in an embodiment of the present invention; Figure 6 This is a schematic diagram of the upright, swing bar, and L-shaped plate structure provided in an embodiment of the present invention; Figure 7 This is provided by the embodiments of the present invention. Figure 6 Enlarged schematic diagram of a local structure at point A; Figure 8 This is an exploded view of the combination of the upright frame, return spring, and rail provided in an embodiment of the present invention; Figure 9 This is an exploded view of the combined structure of cam, ball, and locking teeth provided in an embodiment of the present invention; Figure 10 This is provided by the embodiments of the present invention. Figure 9 Enlarged schematic diagram of the local structure at point B; Figure 11 This is a schematic diagram of the combination of the housing, compression spring, and sphere structure provided in an embodiment of the present invention; Figure 12 This is an exploded view of the combination of a damper, a vertical guide rail, and a sliding rod provided in an embodiment of the present invention.
[0015] In the diagram: 1. AC charging panel; 2. UPS power supply panel; 3. First DC feeder panel; 4. Communication power supply panel; 5. Second DC feeder panel; 6. Plug-in box; 7. DC power charging module; 8. Current indicator light; 9. Rotating shaft; 10. Wrench; 11. Physical key; 12. Charging port; 13. Charging chip; 15. Cam; 16. Rail; 160. Central shaft; 161. Roller; 17. Vertical frame; 18. Return spring; 19. L-shaped plate; 20. Swing bar; 22. Upright pole; 26. Housing; 27. Compression spring; 28. Sphere; 29. Magnetic strip; 30. Assembly plate; 31. Tension spring; 32. Air damper; 33. Vertical guide rail; 34. Sliding rod; 35. Locking tooth; 36. Micro switch. Detailed Implementation
[0016] Exemplary embodiments of the invention will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the invention are shown in the drawings, it should be understood that the invention may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the invention and to fully convey the scope of the invention to those skilled in the art.
[0017] like Figures 1 to 12 As shown, an intelligent integrated power supply device includes: an AC charging panel 1, a UPS power supply panel 2, a first DC feeder panel 3, a communication power supply panel 4, and a second DC feeder panel 5. The AC charging panel 1 contains a socket box 6, which is divided into upper, middle, and lower sections. A DC power charging module 7 is located in the middle section of the socket box 6, and a current indicator light 8 is located in the lower section. A rotating shaft 9 extends through the outer side of the socket box 6, and a physical key 11 is located on the outer side of the rotating shaft 9. A wrench 10 is located on the outer side of the rotating shaft 9 and outside the socket box 6. A charging port 12 is located on the back panel of the AC charging panel 1. The device also includes: The drive unit is located at the front of the inner wall of the plug box 6 and is used to drive and adjust the direction of heat dissipation. The drive unit includes a drive component and a conversion component. The drive component is disposed outside the rotating shaft 9 and is connected to the conversion component. The conversion component is disposed below the drive component and is located inside the insertion box 6. The prying part is located at the rear of the inner wall of the insertion box 6 and is used to open and close the heat dissipation vent. The prying part includes a horizontal component and a lifting component. The horizontal component is located on one side of the driving component. The horizontal component and the lifting component are connected. The lifting component is located on the side of the inner wall of the insertion box 6. The feedback unit, located on the outside of the drive component, is used to provide feedback on the locking status; The feedback unit includes a shrinking component and a positioning component. The shrinking component is disposed on the outside of the driving component and is connected to the positioning component. The positioning component is disposed on the side of the inner wall of the insertion box 6 and is connected to the driving component. Specifically, both the AC charging panel 1 and the UPS power supply panel 2 are equipped with DC power supply units, inverter output modules, energy storage management modules, input rectifier modules, and intelligent control modules to balance the normal operation of the equipment. The modules and the plug-in box 6 are inserted into the frame on the outside of the AC charging panel 1. The plug-in box 6 is located below the modules, similar to a base. The two are combined into a whole to fill the internal frame of the AC charging panel 1. The physical key 11 is located at the end of the outer side of the rotating shaft 9. It is an encoding disk with a specific angle notch. The back plate of the plug-in box 6 is equipped with a detection rod. Only modules whose encoding disk notch matches the position of the detection rod are allowed to be inserted. This fundamentally eliminates the possibility of incorrect insertion. The physical key 11 is part of the rotating shaft 9, not a separate part. The wrench 10 is provided so that internal adjustment can be performed directly through the wrench 10 when the plug-in box 6 is on the outside. The charging port 12 is located on the back plate of the plug-in box 6. It can be directly connected to the plug-in box 1 when the plug-in box 6 is inserted into the frame of the AC charging panel 1 to form a circuit. In actual use, the staff first plugs the module and the plug box 6 into the back of the AC charging screen 1, combining it with the charging port 12 of the AC charging screen 1. Insert the module into the charging box 6 along the slide rail of the AC charging screen 1. The electrical connector at the rear of the module is initially connected to the charging box 6. The physical code disk on the module interacts with the identification rod on the charging box 6. After the model is matched, turn the wrench 10 by hand. The wrench 10 drives the rotating shaft 9, cam 15 and physical key 11 to rotate together. The rotation of cam 15 generates a deflection force, which, in conjunction with the conversion component, opens the damper 32 set on the inner wall side of the charging box 6 and simultaneously locks cam 15. This allows for automatic heat dissipation when the circuit is connected for AC power conversion. When the charging box 6 is pulled out and stops working, the damper 32 can be automatically closed to improve performance, service life and positioning, and facilitate installation and disassembly.
[0018] like Figure 1 , Figure 2 , Figures 6 to 8 As shown, the driving component includes: The charging chip 13 is located inside the charging port 12; Cam 15 is located on the outside of rotating shaft 9; Wrench 10 is located outside the rotating shaft 9 and outside the insertion box 6; The guide rail 16 is located on the inner wall of the insertion box 6 and below the cam 15.
[0019] The conversion component includes: The upright frame 17 is installed inside the rail 16; The return spring 18 is located below the upright frame 17; L-shaped plate 19 is fixed to one side of the upright frame 17; The central shaft 160 is set at one end of the vertical frame 17 and is located inside the vertical frame 17; Roller 161 is located outside the central shaft 160.
[0020] Specifically, the cam 15 is not a complete circle and has a protruding arc on the outside; the wrench 10 is fixedly connected to the rotating shaft 9; the L-strip 19 consists of two parts, a horizontal strip and a vertical strip, and is an integral unit; the horizontal strip of the L-strip 19 is fixed to the vertical frame 17; the internal dimensions of the rail 16 are adapted to the vertical frame 17, and the vertical frame 17 can gradually slide inside the rail 16; the return spring 18 is fixedly installed below the inner wall of the insertion box 6, which facilitates pushing the vertical frame 17 upward to form a reset by the return spring 18; the top of the vertical frame 17 has a through groove so that the central shaft 160 can be installed on the inner wall of the vertical frame 17; the roller 161 is rotatably connected to the cam 15, and with the assistance of the return spring 18, the cam 15 and the roller 161 are in contact; In practical applications, to avoid occupying too much space for other electronic components, the damper 32 is placed on one side of the inner wall of the insertion box 6. When the insertion box 6 needs to be locked and plugged into the AC charging screen 1 for automatic heat dissipation, the cam 15 rotates to press the roller 161 to move. The roller 161 presses the vertical frame 17 to move via the central shaft 160. When the vertical frame 17 moves downward, it will drive the horizontal bar of the L-shaped plate 19 to move synchronously. At this time, the downward movement of the horizontal bar of the L-shaped plate 19 will drive the vertical bar to move together. One end of the longitudinal bar of the L-shaped plate 19 is located above one end of the swing bar 20. The longitudinal bar of the L-shaped plate 19 presses on one end of the swing bar 20, and under the action of the upright 22 supporting the midpoint of the swing bar 20, the force is converted into an upward tilt towards the side of the insertion box 6, thus having the function of rapid drive and rotation force, which facilitates subsequent processing, and at the same time ensures that the equipment can work simultaneously, which is convenient for real-time operation. After the operation is completed, the return spring 18 changes from the compressed state formed by being pressed down by the upright frame 17 to the extended state again to complete the adjustment process.
[0021] like Figures 10 to 11 As shown, the transverse member includes: Upright pole 22 is installed on the inner wall of insertion box 6; The swing bar 20 is set at the top of the upright 22; The lifting component includes: The vertical guide rail 33 is set on the inner wall of the insertion box 6 and located below the insertion box 6; The sliding rod 34 is set on the inner wall of the vertical guide rail 33. Specifically, the upright 22 serves as the central fulcrum of the swing bar 20, allowing the other end of the swing bar 20 to tilt upwards when one end is pressed downwards, thus providing a foundation for pushing the damper 32 upwards; the vertical guide rail 33 has a track inside that matches the sliding rod 34, facilitating the use of force to complete the lifting and lowering process; the end of the swing bar 20 near the inner wall of the insertion box 6 contacts the sliding rod 34; the side of the sliding rod 34 is provided with two clamping plates of different heights, with the higher clamping plate fixed to the inner groove on the side of the damper 32; one end of the longitudinal bar of the L-strip 19 is located above one end of the swing bar 20; In practical application, driven by the rotational force of cam 15, the vertical frame 17 moves downward, causing L-strip 19 to move together. One end of the longitudinal strip of L-strip 19 is located above one end of swing bar 20. After the longitudinal strip of L-strip 19 presses against one end of swing bar 20, and with the support of the upright 22 at the midpoint of swing bar 20, the other end of swing bar 20 tilts upward and pushes the locking plate located at the lower part of the upper sliding rod 34. At this time, the entire sliding rod 34 moves upward, and the top of the sliding rod 34 is embedded in the inner side of the damper 32 and moves upward accordingly. The damper 32 is pushed upward from the side of the insertion box 6, completing the opening state of the side of the insertion box 6. This ensures that the heat of the insertion box 6 inserted into the AC charging screen 1 is dissipated in time, improving the performance of the AC charging screen 1 and thus improving work efficiency.
[0022] like Figures 10 to 12 As shown, the shrinkage member includes: Assembly plate 30 is set on one side of the inner wall of insertion box 6; Multiple tension springs 31 are disposed below the assembly plate 30; The shrink-fit component also includes: Magnetic strip 29 is installed inside the insertion box 6; The damper 32 is located at the bottom end of the tension spring 31; The assembly plate 30 has a recessed groove inside, which is used to accommodate the damper 32. A micro switch 36 is located below the assembly plate 30 and at the highest point of the sliding rod 34, and is used for power control.
[0023] Specifically, the recessed groove of the assembly plate 30 is connected to the card plate at the top of the sliding rod 34; the side of the insertion box 6 has an opening, and the assembly plate 30 is located on one side of the inner wall of the insertion box 6 and inside the opening; the magnetic strip 29 passes through the insertion box 6, making it easy to contact the top of the damper 32; the system supplies power to the module only when the sliding rod 34 moves to the highest point and triggers the micro switch 36.
[0024] In practical applications, when the damper 32 is pushed up, it is easy to fall down due to inertial force. Therefore, one end of the swing bar 20 tilts the sliding rod 34 upward and pushes it upward. The sliding rod 34 moves upward along the vertical guide rail 33, which will push the damper 32 to work. The damper 32 compresses the tension spring 31 to move. The damper 32 gradually retracts into the inside of the assembly plate 30. The damper 32 opens, thereby forming ventilation on one side of the inner wall of the insertion box 6, which has the function of rapid heat dissipation. Furthermore, when the sliding rod 34 contacts the micro switch 36, the opening of the damper 32 is at its maximum, and the damper 32 is fully opened. After the sliding rod 34 reaches the predetermined position and triggers the micro switch 36, the switch sends a signal to the power controller, allowing power to be supplied to the module.
[0025] like Figures 4 to 6 As shown, the positioning element includes: The housing 26 is disposed on one side of the inner wall of the insertion box 6; Compression spring 27 is disposed inside housing 26.
[0026] Sphere 28 is positioned at the top of housing 26; The locking tooth 35 is located on the outside of the cam 15 and has a locking hole inside that is adapted to the ball 28; In practical applications, when the cam 15 rotates, it will drive the locking tooth 35 to rotate synchronously. At this time, when the external wrench 10 rotates, there will be a feeling of force, indicating that the equipment is being locked. The ball 28 slides along the outside of the cam 15 by default. When it rotates to the locking hole on the locking tooth 35, the compression spring 27 is released by the force compressed when the cam 15 rotates, and then it is immediately locked into the inside of the cam 15, forming a click lock, thus forming a quick positioning state, and making it easy for the staff to understand the positioning feedback in a timely manner.
[0027] Working principle: First, check that the DC power supply unit, inverter output module, energy storage management module, input rectifier module, and intelligent control module in the AC charging panel 1 and UPS power supply panel 2 are all pre-installed; the upper, middle, and lower parts of the plug box 6 are structurally intact, the middle DC power charging module 7 and the lower current indicator light 8 are undamaged, the wrench 10 and physical key 11 on the outside of the rotating shaft 9, and the encoder disk with a specific angle notch are not deformed, and the charging port 12 and the identification rod anti-misinsertion key components on the back panel of the plug box 6 are clean and free of foreign objects; then, according to the equipment markings, confirm that the physical encoder disk of the module to be installed is compatible with the physical key 11 and that the model of the identification rod of the plug box 6 is consistent. Only modules whose encoder disk notch angle and quantity are completely matched with the position of the identification rod can proceed to the subsequent installation process, thus avoiding the risk of misinsertion from the source; The staff first plugged the plug box 6, which can be used as a module base, into the back of the AC charging screen 1, ensuring that the charging port 12 on the back panel of the plug box 6 is fully connected with the corresponding interface of the AC charging screen 1 to form a preliminary path. At this time, no power is connected, only the physical connection is completed. At the same time, it is confirmed that the plug box 6 has been embedded in the outer frame of the AC charging screen 1 and fits snugly against the inner wall of the frame without any loose gaps. The handheld module is slowly pushed into the charging box 6 along the preset slide rail of the AC charging screen 1: During the process, the electrical connector at the rear of the module gradually approaches the corresponding interface of the plug box 6, completing the initial docking but not fully locking, only achieving electrical pre-contact; The physical encoder disk that comes with the module makes synchronous contact with the identification rod on the back panel of the insertion box 6. If the models do not match, the identification rod will block the movement of the encoder disk and the module cannot be inserted further. If the models match, the identification rod will slide smoothly along the notch of the encoder disk and the module can be fully pushed into the insertion box 6. At this time, the current indicator light 8 is off, indicating that the module is not powered on. The staff member manually rotates the wrench 10 on the outside of the insertion box 6 clockwise. Since the wrench 10 is fixedly connected to the rotating shaft 9, it drives the rotating shaft 9 to rotate synchronously, which in turn causes the physical key 11 and the encoding disk on the outside of the rotating shaft 9 to rotate with the shaft, further verifying the matching status with the identification rod. If the matching is off, the encoding disk will jam the identification rod, and the wrench will not be able to continue rotating. It should be noted that the cam 15 on the outside of the rotating shaft 9 is not a complete circle, but has a protruding arc on the outside that rotates synchronously. The protruding part of the cam 15 gradually contacts the roller 161 on the inner wall of the insertion box 6. The rotation of cam 15 generates a deflection force, which compresses roller 161 to move along the contour of cam 15. Roller 161 transmits the force to the upright frame 17 through central shaft 160. The upright frame 17 slides downward along the guide rail 16 on the inner wall of the insertion box 6, compressing the lower return spring 18 during the process. The return spring 18 is fixed to the lower part of the inner wall of the insertion box 6 and changes from the initial extended state to the compressed state. The L-shaped plate 19 fixed on one side of the upright frame 17 has an integrated structure of horizontal and vertical bars that moves downward synchronously with the upright frame 17. The L-shaped plate 19 is located at one end of the vertical bar above one end of the swing bar 20. The oscillating bar 20 is gradually approached and squeezed; with the upright rod 22 on the inner wall of the insertion box 6 as the central fulcrum, under the squeezing force of the longitudinal strip of the L-plate 19, the end of the oscillating bar 20 close to the L-plate 19 deflects downward and the other end tilts upward; the tilted end of the oscillating bar 20 contacts and pushes the sliding rod 34 on the inner wall of the insertion box 6, and the sliding rod 34 moves upward along the vertical guide rail 33; the high plate on the side of the sliding rod 34 rises synchronously with the sliding rod 34, driving the damper 32 to move upward, at which time the heat dissipation vent on the side of the insertion box 6 is gradually opened to prepare for subsequent heat dissipation; When the damper 32 moves upward, it compresses the tension spring 31 at the top, and the tension spring changes from the initial state to the tensioned state. The damper 32 continues to rise and gradually retracts into the recessed groove of the assembly plate 30. The assembly plate 30 is fixed to the opening of the inner wall of the insertion box 6. The recessed groove is used to accommodate the damper 32. Finally, the damper 32 is fully opened, and a ventilation channel is formed between the inside and outside of the insertion box 6 to achieve automatic heat dissipation during equipment operation.
[0028] When the sliding rod 34 rises to the highest point of the vertical guide rail 33, the top of the sliding rod 34 contacts and triggers the micro switch 36 below the assembly plate 30. Microswitch 36 sends a heat dissipation ready signal to the intelligent control module, and the system removes the power supply restriction, allowing the module to be powered on. After power is supplied, the DC power supply unit and input rectifier module in AC charging panel 1 and UPS power supply panel 2 start to work, converting AC power into the power required by the equipment. The current indicator light 8 lights up, indicating that the equipment is operating normally. During the rotation of cam 15, it synchronously drives the outer locking tooth 35, which has a locking hole adapted to the ball 28, to rotate. In the initial state, the top of the ball 28 inside the inner wall housing 26 of the insertion box 6 protrudes, and the housing 26 slides along the outside of the cam 15. When the operator turns the wrench 10, he will feel a slight "force bump", indicating that the equipment is in the locking preparation state. When the cam 15 rotates to the preset angle, that is, when the damper 32 is fully open and the micro switch 36 is triggered, the locking hole of the locking tooth 35 is exactly aligned with the ball 28. The compression spring 27 inside the housing 26 releases its elasticity in the initial compression state, pushing the ball 28 into the locking hole of the locking tooth 35, producing a "click" sound. The sound feedback is synchronized with the disappearance of the force feedback of the wrench 10, indicating to the operator that the cam 15 has been locked, the equipment is in a stable operating state, and there is no need to continue turning the wrench. The operator rotates the wrench 10 counterclockwise, causing the rotating shaft 9, cam 15, and locking teeth 35 to rotate in the opposite direction. The locking teeth 35 squeeze the ball 28 out of the lock hole, and the compression spring 27 is compressed again. The "click" sound disappears, and the locking state is released. After the cam 15 rotates in the opposite direction, the squeezing force on the roller 161 disappears, and the return spring 18 returns from the compressed state to the extended state, pushing the upright frame 17 to return to its original position along the rail 16. The L-strip 19 moves upward synchronously and no longer squeezes the swing bar 20. After the oscillating bar 20 loses its compressive force, it returns to its original position under the action of its own weight and the tension of the tension spring 31, and the upward tilting end deflects downward. The sliding rod 34 moves downward along the vertical guide rail 33 and disengages from the micro switch 36. Microswitch 36 sends a heat dissipation shutdown signal to the system, cutting off the power supply and turning off the current indicator 8; at the same time, sliding rod 34 drives damper 32 to move downward, tension spring 31 returns to its initial state, and damper 32 completely closes the heat dissipation vent on the side of the casing 6 to prevent dust from entering the equipment; The handheld module is pulled out along the slide rail, and the electrical connector at the rear of the module is disconnected from the plug box 6; then the plug box 6 is pulled out from the frame of the AC charging screen 1, and the charging port 12 is separated from the interface of the AC charging screen 1, completing the overall disassembly and restoring the equipment to its initial installation state.
[0029] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent integrated power device comprising: The utility model relates to an alternating current charging screen (1), UPS power screen (2), first DC feeder screen (3), communication power screen (4), second DC feeder screen (5), alternating current charging screen (1) is provided with the plug -in box (6) in, plug -in box (6) is divided into upper middle and lower three parts, the middle part of plug -in box (6) is provided with DC power charging module (7), plug -in box (6) lower part is provided with current display lamp (8), plug -in box (6) outside is provided with rotating shaft (9) through, rotating shaft (9) outside is provided with physical key (11), rotating shaft (9) outside and located plug -in box (6) outside is provided with spanner (10), alternating current charging screen (1) backboard is provided with charging port (12), its characterized in that still includes: The driving part is arranged at the front of the inner wall of the plug-in box (6) and is used for driving the direction of heat dissipation adjustment; The driving part includes a driving member and a conversion member, the driving member is arranged outside the rotating shaft (9), the driving member is connected with the conversion member, the conversion member is arranged below the driving member and inside the plug-in box (6); The prying part is arranged at the rear of the inner wall of the plug-in box (6) and is used for switching the heat dissipation port; The prying part includes a horizontal member and a lifting member, the horizontal member is arranged on one side of the driving member, the horizontal member is connected with the lifting member, and the lifting member is arranged at the side of the inner wall of the plug-in box (6); The feedback part is arranged outside the driving member and is used for feeding back the locking state; The feedback part includes a contraction member and a positioning member, the contraction member is arranged outside the driving member, the contraction member is connected with the positioning member, the positioning member is arranged at the side of the inner wall of the plug-in box (6) and is connected with the driving member.
2. The intelligent integrated power supply device of claim 1, wherein: The driving member includes: The charging chip (13) is arranged inside the charging port (12); The cam (15) is arranged outside the rotating shaft (9); The spanner (10) is arranged outside the rotating shaft (9) and outside the plug-in box (6); The rail (16) is arranged on the inner wall of the plug-in box (6) and below the cam (15).
3. The intelligent integrated power supply device of claim 2, wherein: The conversion member includes: The vertical frame (17) is arranged inside the rail (16); The reset spring (18) is arranged below the vertical frame (17).
4. The intelligent integrated power supply device of claim 3, wherein: The conversion member further includes: The L-shaped plate (19) is fixed on one side of the vertical frame (17); The center shaft (160) is arranged at one end of the vertical frame (17) and inside the vertical frame (17); The roller (161) is arranged outside the center shaft (160).
5. The intelligent integrated power supply device of claim 4, wherein: The horizontal member includes: The vertical rod (22) is arranged on the inner wall of the plug-in box (6); The swing bar (20) is arranged at the top end of the vertical rod (22).
6. The intelligent integrated power supply device of claim 5, wherein: The lifting member includes: The vertical guide rail (33) is arranged on the inner wall of the plug-in box (6) and below the plug-in box (6); The sliding rod (34) is arranged on the inner wall of the vertical guide rail (33).
7. The intelligent integrated power supply device of claim 6, wherein: The contraction member includes: The assembly plate (30) is arranged on one side of the inner wall of the plug-in box (6); The stretching spring (31) is arranged below the assembly plate (30).
8. The intelligent integrated power supply device of claim 7, wherein: The contraction member further includes: The magnetic attraction strip (29) is arranged inside the plug-in box (6); The air door (32) is arranged at the bottom end of the stretching spring (31). The assembling plate (30) is internally provided with a recessed groove for accommodating the air door (32); The micro switch (36) is arranged below the assembling plate (30) and at the highest point of the sliding rod (34) for triggering when the air door (32) is fully opened and sending a power-on permission signal to the power controller.
9. The intelligent integrated power supply device of claim 8, wherein: The positioning member comprises: The shell (26) is arranged on one side of the inner wall of the plug-in box (6); The compression spring (27) is arranged inside the shell (26).
10. The intelligent integrated power supply device of claim 9, wherein: The positioning member further comprises: The ball (28) is arranged at the top end of the shell (26); The lock tooth (35) is arranged outside the cam (15) and internally provided with a lock hole matched with the ball (28).
Citation Information
Patent Citations
Automatic intelligent control cabinet
CN114885551A
Refrigeration air supply and air volume adjusting device of refrigeration heat dissipation formula looped netowrk cabinet
CN205092471U
Voltage-stabilizing energy-saving power distribution cabinet
CN219918116U
Equipment case handle structure
WO2016197756A1