Hot plug intelligent power module guide rail connecting device
Patent Information
- Application Number
- CN202521855403.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-29
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-08-29
AI Technical Summary
[0004]现有技术中,计算机电源的拆卸通常需要将整个机箱拆开,这种设计存在诸多弊端,拆开机箱是一个繁琐的过程,需要拆卸多个螺丝和部件,这不仅增加了维修和更换电源的时间成本,还容易导致误操作,损坏其他硬件,频繁拆装机箱会破坏机箱的密封性和稳定性,影响其对内部硬件的保护作用,对于普通用户来说,拆卸机箱会需要一定的技术知识和工具,这增加了维修的难度和风险,这种设计限制了电源模块的可维护性和可更换性,降低了计算机系统的整体灵活性和用户体验
[0014]1、现有技术中,计算机电源的拆卸通常需要将整个机箱拆开,这种设计存在诸多弊端,拆开机箱是一个繁琐的过程,需要拆卸多个螺丝和部件,这不仅增加了维修和更换电源的时间成本,还容易导致误操作,损坏其他硬件,频繁拆装机箱会破坏机箱的密封性和稳定性,影响其对内部硬件的保护作用,对于普通用户来说,拆卸机箱会需要一定的技术知识和工具,这增加了维修的难度和风险,这种设计限制了电源模块的可维护性和可更换性,降低了计算机系统的整体灵活性和用户体验,针对此类问题,本实用新型采用电源可弹出装置,达到用户无需拆开整个机箱,只需简单拉动拉手即可快速弹出电源模块,极大地简化了拆卸过程,节省了维修和更换电源的时间,这避免了因频繁拆装机箱而破坏其密封性和稳定性,增强了对内部硬件的保护,同时,降低了对用户技术知识和工具的要求,使普通用户也能轻松完成电源的拆装,提高了电源模块的可维护性和可更换性,提升了计算机系统的整体灵活性和用户体验。
Smart Images

Figure CN224818325U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of power supply equipment technology, and in particular to a hot-swappable intelligent power supply modular rail connection device. Background Technology
[0002] A power supply is a device that converts one form of energy into another. It is widely used in various electronic devices to provide the electrical energy required by the devices. There are many types of power supplies, such as solar power supplies and battery power supplies. They play an important role in different fields and meet the electrical energy needs of various devices.
[0003] The computer power supply is one of the core components of a computer system. It converts AC mains power into DC power required by the various internal hardware components. Computer power supplies typically employ switching power supply technology, characterized by high efficiency, small size, and low power consumption. They can output various voltages, such as +12V, +5V, and +3.3V, to meet the power supply needs of hardware such as the CPU, graphics card, hard drive, and memory. The performance of the computer power supply directly affects the stability and reliability of the computer. A high-quality computer power supply can provide stable voltage output, reduce electromagnetic interference, and extend the lifespan of hardware. Furthermore, as computer hardware continues to upgrade, the power and performance requirements of the power supply are also increasing. Therefore, choosing a suitable computer power supply is crucial for building a high-performance and stable computer system.
[0004] In existing technologies, disassembling a computer power supply typically requires opening the entire chassis. This design has many drawbacks. Opening the chassis is a tedious process, requiring the removal of multiple screws and components. This not only increases the time cost of repairing and replacing the power supply but also easily leads to misoperation and damage to other hardware. Frequent disassembly and assembly of the chassis can compromise its sealing and stability, affecting its protection of internal hardware. For ordinary users, disassembling the chassis requires certain technical knowledge and tools, which increases the difficulty and risk of repair. This design limits the maintainability and replaceability of the power supply module, reducing the overall flexibility of the computer system and the user experience. Utility Model Content
[0005] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a hot-swappable intelligent power modular rail connection device.
[0006] To achieve the above objectives, this utility model adopts the following technical solution: a hot-swappable intelligent power modular rail connection device, comprising a chassis body, side plates, and a power module. The side plates are located on both sides of the chassis body. The chassis body has a component slot 1 inside. A power support base is fixed to the inner wall of the component slot 1. The top of the power support base has component slots 2 and 3. A bearing base is slidably connected to the inner wall of component slot 2. A support block is fixed to the bottom of the bearing base. A spring 1 is fixed to one side of the support block. The other end of the spring 1 is fixed to the inner wall of component slot 3. A groove is provided at the bottom of the bearing base. A hook base is rotatably connected to the inner wall of component slot 3. A hook head is fixed to one end of the hook base. The hook head is located on the inner wall of the groove. A spring 2 is fixed to the bottom of the hook base. The other end of the spring 2 is fixed to the inner wall of component slot 3. A handle is fixed to the surface of the hook base.
[0007] Preferably, the power module has an upper guide rail groove and a lower guide rail groove on both sides. An upper roller group and a lower roller group are rotatably connected to the inner wall of the component groove two. The upper roller group is located on the inner wall of the upper guide rail groove, and the lower roller group is located on the inner wall of the lower guide rail groove. A clamping block is provided on one side of the bearing seat, and a component groove four is provided on one side of the clamping block. A support member is fixed on one side of the bearing seat, and a spring three is fixed on one side of the support member. The other end of the spring three is fixed to the inner wall of the component groove four. In existing technologies, power supplies typically lack guide rails within the chassis, making installation and removal complex and less stable. Without guide rails, the power module requires precise alignment with screw holes during installation; even slight misalignment can lead to installation difficulties or even damage to the power module or chassis. Furthermore, the power module's fixation within the chassis relies primarily on screws, which are susceptible to loosening under vibration or impact, affecting its connection stability with the motherboard and other hardware, potentially causing computer malfunctions. To address these issues, this invention employs a modular power supply guide rail device and a locking mechanism. The upper and lower guide rail grooves on both sides of the power module engage with the upper and lower roller sets on the inner wall of the component slot, forming a sliding connection. During power module installation, the roller assembly rolls along the guide rails, guiding the power module smoothly into the chassis. Simultaneously, the clamping block on one side of the support base, through the elastic force of spring three, clamps against the inner wall of component slot four, ensuring the power module's stable fixation within the chassis. This makes power module installation and removal extremely convenient, eliminating the need for precise alignment of screw holes and significantly reducing installation time and difficulty. The guide rail device ensures smooth sliding of the power module during installation, avoiding installation difficulties and damage risks caused by positional deviations. Furthermore, the clamping device utilizes the spring force to secure the power module more firmly within the chassis, maintaining stability even under vibration or impact, ensuring reliable connection between the power module and motherboard and other hardware, thereby effectively preventing computer malfunctions.
[0008] Preferably, a support block is fixed to one side of the side plate, and a cover plate is rotatably connected to one side of the support block. A gripping groove is formed on one side of the cover plate, and an inclined groove is formed on the inner wall of the gripping groove. In the prior art, the power supply compartment of the chassis lacks a rotatable cover plate, which causes considerable inconvenience to users. When installing or replacing the power module, users often need to disassemble the entire chassis side plate, a cumbersome operation that can easily lead to lost screws or damage to other components. Without a rotatable cover plate, the power supply compartment has poor sealing, allowing dust to easily enter and affecting the heat dissipation and lifespan of the power module. This design also hinders rapid maintenance and upgrades of the power module, increasing the user's time cost and operational difficulty. To address these problems, this utility model adopts a rotating cover plate structure. The support block fixed to one side of the side plate is connected to the cover plate via a rotatable connection, allowing the cover plate to rotate around the support block. The gripping groove on one side of the cover plate has an inclined groove on its inner wall. This design allows users to easily grip and open the cover plate using the combination of the gripping groove and the inclined groove. The rotating cover allows for easy opening and closing. To open the cover, simply grasp the first gripper and apply force along the first groove to easily rotate it from the closed to the open position, facilitating access to the internal components of the chassis. Conversely, closing the cover is achieved by rotating it in the opposite direction. This allows users to quickly open the power supply compartment without disassembling the entire chassis side panel when installing or replacing the power module. This significantly simplifies the process, reduces time costs, and minimizes the risk of lost screws or damaged components due to disassembly. Furthermore, the rotating cover effectively enhances the power supply compartment's seal, preventing dust from entering and improving the power module's heat dissipation efficiency and lifespan. It also facilitates rapid maintenance and upgrades of the power module, significantly improving the user experience and overall ease of use of the chassis.
[0009] Preferably, a first heat dissipation hole is provided on one side of the cover plate, and the first heat dissipation hole is arranged in an array. A second heat dissipation hole is provided on one side of the power supply support, and the second heat dissipation hole is arranged in an array. The array arrangement of the first heat dissipation hole on the cover plate side and the second heat dissipation hole on the power supply support side significantly improves the heat dissipation performance of the power supply compartment. The array arrangement of the first and second heat dissipation holes forms a good airflow channel, allowing the heat generated by the power module during operation to dissipate quickly, preventing heat accumulation in the power supply compartment, thereby effectively reducing the operating temperature of the power module. This not only helps extend the service life of the power module but also improves its stability and reliability, ensuring the performance of the computer system during long-term operation.
[0010] Preferably, the clamping block has two gripping grooves on both sides, and the inner wall of each gripping groove has a slanted groove. The design of the gripping grooves and slanted grooves on both sides of the clamping block allows users to easily grip and operate the clamping block by inserting their fingers into the gripping grooves and applying force along the slanted grooves. This design enables users to easily press or pull the clamping block, thereby quickly fixing or releasing the power module. This not only improves the efficiency of power module installation and disassembly but also reduces the difficulty of operation, enhancing the convenience and flexibility for users when maintaining and upgrading computer power modules, and further improving the usability and user experience of the computer system.
[0011] Preferably, a push plate is fixed to the top of the support base. The push plate fixed to the top of the support base plays a key role in the ejection of the power module. When the user needs to disassemble the power module, pulling the handle releases the locking block, and the elastic force of the spring pushes the support base outward along the guide rail groove. At this time, the push plate will smoothly push the power module out of the chassis. This design not only simplifies the disassembly process of the power module, but also ensures the stability and safety of the power module when ejecting, avoiding damage caused by direct contact with the power module.
[0012] Preferably, the surface of the clamping head has an arc surface, which is smooth. This smooth arc surface design significantly reduces the friction between the clamping head and the groove of the support seat. This design allows the clamping head to enter or disengage from the groove more smoothly during the installation and removal of the power module, reducing the risk of jamming or damage caused by friction. The smooth arc surface also improves the durability of the device, extends its service life, and ensures more reliable and stable fixing and releasing of the power module, further enhancing the user experience and overall system performance.
[0013] Beneficial effects:
[0014] 1. In existing technologies, disassembling a computer power supply typically requires opening the entire chassis. This design has many drawbacks. Opening the chassis is a tedious process, requiring the removal of numerous screws and components. This not only increases the time cost of power supply repair and replacement but also easily leads to misoperation, damaging other hardware. Frequent chassis disassembly and assembly can compromise the chassis's sealing and stability, affecting its protection of internal hardware. For ordinary users, disassembling the chassis requires certain technical knowledge and tools, increasing the difficulty and risk of repair. This design limits the maintainability and replaceability of the power supply module, reducing the overall flexibility of the computer system and the user experience. To address these issues, this utility model adopts a power supply ejector device, allowing users to quickly eject the power supply module by simply pulling a handle without opening the entire chassis. This greatly simplifies the disassembly process, saves time on power supply repair and replacement, avoids damage to the sealing and stability caused by frequent chassis disassembly and assembly, enhances the protection of internal hardware, and reduces the technical knowledge and tool requirements for users, enabling ordinary users to easily disassemble and assemble the power supply. This improves the maintainability and replaceability of the power supply module, enhancing the overall flexibility of the computer system and the user experience.
[0015] 2. In existing technologies, power supplies typically lack guide rails within the chassis, making installation and removal complex and unstable. Without guide rails, the power module requires precise alignment with screw holes during installation; even slight misalignment can lead to installation difficulties or even damage to the power module or chassis. Furthermore, the power module's fixation within the chassis relies primarily on screws, which can easily loosen under vibration or impact, affecting its connection stability with the motherboard and other hardware, potentially causing computer malfunctions. To address these issues, this invention employs a modular power supply guide rail device and a locking mechanism, making power module installation and removal extremely convenient. Precise alignment of screw holes is no longer required, significantly reducing installation time and difficulty. The guide rail device ensures smooth sliding of the power module during installation, avoiding installation difficulties and damage risks due to misalignment. Simultaneously, the locking mechanism utilizes spring force to secure the power module more firmly within the chassis, maintaining stability even under vibration or impact, ensuring reliable connection between the power module and motherboard, effectively preventing computer malfunctions.
[0016] 3. In existing technologies, the power supply compartment of the chassis lacks a rotatable cover, which causes considerable inconvenience to users. When installing or replacing the power module, users often need to remove the entire side panel of the chassis, a cumbersome operation that can easily lead to lost screws or damage to other components. Without a rotatable cover, the power supply compartment has poor sealing, allowing dust to easily enter and affecting the power module's heat dissipation and lifespan. This design also hinders rapid maintenance and upgrades of the power module, increasing user time and operational difficulty. To address these issues, this invention adopts a rotatable cover structure, allowing users to easily open the power supply compartment by simply rotating the cover using a lever when installing or replacing the power module, without disassembling the entire side panel. This greatly simplifies the operation process, reduces time costs and the risk of lost screws or damaged components due to disassembly. Simultaneously, the rotatable cover effectively enhances the sealing of the power supply compartment, preventing dust from entering and thus improving the power module's heat dissipation efficiency and lifespan. This provides convenience for rapid maintenance and upgrades of the power module, significantly improving the user experience and the ease of use of the chassis. Attached Figure Description
[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0018] Figure 2 This is a cross-sectional view of the pop-out power supply device of this utility model;
[0019] Figure 3 This is an exploded view of the guide rail device of this utility model;
[0020] Figure 4 This is a three-dimensional structural diagram of the clamping device of this utility model;
[0021] Figure 5 This is a cross-sectional view of the side of the pop-out power supply device of this utility model;
[0022] Figure 6 This is a cross-sectional view of the interior of the power supply pop-out device of this utility model;
[0023] Figure 7 for Figure 4 Enlarged view of point A in the middle.
[0024] Legend:
[0025] 1. Chassis main body; 101. Side panel; 102. Component slot one; 103. Power supply support base; 104. Component slot two; 105. Component slot three; 106. Bearing base; 107. Support block; 108. Spring one; 109. Groove; 110. Hook base; 111. Spring two; 112. Handle; 113. Power module; 2. Upper guide rail slot; 201. Lower guide rail slot; 202. Upper roller group; 203. Lower roller group; 204. Clamping block; 205. Component slot four; 206. Support component; 207. Spring three; 3. Bearing block; 301. Cover plate; 302. Grip groove one; 4. Ventilation hole one; 401. Ventilation hole two; 5. Grip groove two; 6. Push plate; 7. Hook head. Detailed Implementation
[0026] To make the technical means, creative features, and achieved objectives and effects of this utility model easier to understand, the present utility model is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this utility model and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described in the implementation plan without creative effort are all within the protection scope of this utility model.
[0027] The specific embodiments of this utility model are described below with reference to the accompanying drawings. Specific implementation examples:
[0029] Reference Figure 1-7A hot-swappable intelligent power supply modular rail connection device includes a chassis body 1, side plates 101, and a power module 113. The side plates 101 are located on both sides of the chassis body 1. The chassis body 1 has a component slot 102 inside. A power support base 103 is fixed to the inner wall of the component slot 102. The top of the power support base 103 has a component slot 2 104 and a component slot 3 105. A bearing base 106 is slidably connected to the inner wall of the component slot 2 104. A support block 10 is fixed to the bottom of the bearing base 106. 7. A spring 108 is fixed on one side of the support block 107. The other end of the spring 108 is fixed to the inner wall of the component groove 105. A groove 109 is provided at the bottom of the bearing seat 106. A hook seat 110 is rotatably connected to the inner wall of the component groove 105. A hook head 7 is fixed at one end of the hook seat 110. The hook head 7 is located in the inner wall of the groove 109. A spring 2 111 is fixed at the bottom of the hook seat 110. The other end of the spring 2 111 is fixed to the inner wall of the component groove 105. A handle 112 is fixed on the surface of the hook seat 110. In existing technologies, disassembling a computer power supply typically requires opening the entire chassis. This design has many drawbacks. Disassembling the chassis is a tedious process, requiring the removal of multiple screws and components. This not only increases the time cost of repairing and replacing the power supply but also easily leads to misoperation and damage to other hardware. Frequent disassembly and assembly of the chassis can compromise its sealing and stability, affecting its protection of internal hardware. For ordinary users, disassembling the chassis requires certain technical knowledge and tools, increasing the difficulty and risk of repair. This design limits the maintainability and replaceability of the power module, reducing the overall flexibility of the computer system and the user experience. To address these issues, this utility model adopts a power supply ejection device. When it is necessary to remove the power module, pulling the handle 112 rotates the hook seat 110, causing the hook head 7 to disengage from the groove 109 at the bottom of the support seat 106. Under the elastic force of the spring 108, the support seat 106 slides along the component slot 104 and ejects the power module, allowing the user to quickly remove the power module for replacement or repair.
[0030] The power module 113 has an upper guide rail groove 2 and a lower guide rail groove 201 on both sides. The inner wall of the component groove 2 104 is rotatably connected to an upper roller group 202 and a lower roller group 203. The upper roller group 202 is located on the inner wall of the upper guide rail groove 2, and the lower roller group 203 is located on the inner wall of the lower guide rail groove 201. A clamping block 204 is provided on one side of the bearing seat 106. A component groove 4 205 is provided on one side of the clamping block 204. A support member 206 is fixed on one side of the bearing seat 106. A spring 3 207 is fixed on one side of the support member 206. The other end of the spring 3 207 is fixed to the inner wall of the component groove 4 205. In existing technologies, power supplies typically lack guide rails within the computer case. This makes installation and removal complex and less secure. Without guide rails, the power supply module requires precise alignment with the screw holes during installation; even slight misalignment can lead to installation difficulties or even damage to the power supply module or the case. Furthermore, the power supply module's fixation within the case relies primarily on screws. This method of fixing is susceptible to loosening when the case is subjected to vibration or impact, affecting the stability of its connection to the motherboard and other hardware, potentially causing computer malfunctions. To address this type of problem, this utility model employs a modular power supply guide rail device and a clamping device. The upper guide rail groove 2 and lower guide rail groove 201 on both sides of the power module cooperate with the upper roller group 202 and lower roller group 203 on the inner wall of the component groove 2 104 to form a sliding connection. When the power module is installed, the roller group rolls along the guide rail groove, guiding the power module to slide smoothly into the chassis. At the same time, the clamping block 204 on one side of the bearing seat 106 is clamped to the inner wall of the component groove 4 205 by the elastic force of the spring 3 207, ensuring the stable fixation of the power module in the chassis.
[0031] A bearing block 3 is fixed to one side of the side plate 101, and a cover plate 301 is rotatably connected to one side of the bearing block 3. A gripping groove 302 is formed on one side of the cover plate 301, and an inclined groove is formed on the inner wall of the gripping groove 302. In the prior art, the power supply compartment of the chassis does not have a cover plate that can be rotated and opened, which brings many inconveniences to users. When installing or replacing the power module, users often need to remove the entire side plate of the chassis, which is cumbersome and can easily lead to the loss of screws or damage to other parts. Without a rotatable cover plate, the sealing of the power supply compartment is poor, and dust can easily enter the power supply compartment, affecting the heat dissipation and service life of the power module. This design is also not conducive to the rapid maintenance and upgrade of the power module, increasing the user's time cost and operation difficulty. To address the above problems, this utility model adopts a rotating cover plate structure, with a bearing block 3 fixed to one side of the side plate 101. The fixed support block 3 is connected to the cover plate 301 by a rotatable connection, so that the cover plate can rotate around the support block. The inner wall of the gripping groove 302 on one side of the cover plate 301 is provided with a slanted groove. This design makes it easy for users to grasp and rotate the cover plate by the cooperation of the gripping groove 302 and the slanted groove, so as to realize the opening and closing operation of the cover plate. When it is necessary to open the cover plate, the user only needs to grasp the gripping groove 302 and apply force in the direction of the slanted groove to easily rotate the cover plate from the closed state to the open state, which facilitates the user to operate inside the chassis. When it is necessary to close the cover plate, the operation is reversed.
[0032] A heat dissipation hole 4 is provided on one side of the cover plate 301, and the heat dissipation hole 401 is arranged in an array. A heat dissipation hole 401 is provided on one side of the power supply support 103, and the heat dissipation hole 401 is also arranged in an array. The array arrangement of the heat dissipation hole 4 on one side of the cover plate 301 and the heat dissipation hole 401 on the other side of the power supply support 103 significantly improves the heat dissipation performance of the power supply compartment. The array arrangement of the heat dissipation hole 4 and the heat dissipation hole 401 forms a good airflow channel, allowing the heat generated by the power module during operation to dissipate quickly, preventing heat accumulation in the power supply compartment, and thus effectively reducing the operating temperature of the power module. This not only helps to extend the operating time... Extending the lifespan of the power module also improves its stability and reliability, ensuring the performance of the computer system during long-term operation. The clamping block 204 has two gripping slots 5 on both sides, and the inner wall of each gripping slot 5 has an inclined groove 2. The design of the gripping slots 5 and inclined grooves 2 on both sides of the clamping block 204 allows users to easily grip and operate the clamping block 204 by inserting their fingers into the gripping slots 5 and applying force along the inclined grooves 2. This design allows users to easily press or pull the clamping block 204, thereby quickly fixing or releasing the power module. This not only improves the efficiency of power module installation and disassembly but also reduces the difficulty of operation. This design enhances the convenience and flexibility for users when maintaining and upgrading computer power modules, further improving the usability and user experience of the computer system. A push plate 6 is fixed to the top of the support base 106, playing a crucial role in the ejection of the power module. When the user needs to disassemble the power module, pulling the handle 112 releases the locking block 204, and the spring force of spring 108 pushes the support base 106 outward along the guide rail groove. At this time, the push plate 6 smoothly pushes the power module out of the chassis. This design not only simplifies the disassembly process of the power module but also ensures the stability and safety of the power module during ejection, avoiding... To prevent damage caused by direct contact with the power module, the surface of the clamping head 7 is provided with an arc surface that is smooth. This smooth arc surface design significantly reduces the friction between the clamping head and the groove 109 of the bearing seat 106. This design allows the clamping head to enter or exit the groove more smoothly during the installation and removal of the power module, reducing the risk of jamming or damage caused by friction. The smooth arc surface also improves the durability of the device and extends its service life. At the same time, it ensures that the fixing and releasing actions of the power module are more reliable and stable, further improving the user's operating experience and the overall performance of the system.
[0033] The working principle of this utility model is as follows: When the power module needs to be removed, pull the handle 112 to rotate the hook seat 110, causing the hook head 7 to disengage from the groove 109 at the bottom of the support seat 106. Under the elastic force of the spring 108, the support seat 106, carrying the power module, slides out along the component slot 2 104, facilitating quick removal of the power module for replacement or repair. The upper guide rail groove 2 and lower guide rail groove 201 on both sides of the power module cooperate with the upper roller group 202 and lower roller group 203 on the inner wall of the component slot 2 104 to form a sliding connection. When the power module is installed, the roller group rolls along the guide rail groove, guiding the power module to slide smoothly into the chassis. At the same time, the clamping block 204 on one side of the support seat 106 is engaged by the spring 3 208. The elastic force of the 07 clamps the power module to the inner wall of the component slot 205, ensuring the stable fixation of the power module in the chassis. The bearing block 3 fixed on one side of the side plate 101 is connected to the cover plate 301 by a rotatable connection, allowing the cover plate to rotate around the bearing block. The inner wall of the gripping groove 302 on one side of the cover plate 301 is provided with a slanted groove. This design allows users to easily grip and rotate the cover plate by the cooperation of the gripping groove 302 and the slanted groove, realizing the opening and closing operation of the cover plate. When it is necessary to open the cover plate, the user only needs to grip the gripping groove 302 and apply force in the direction of the slanted groove to easily rotate the cover plate from the closed state to the open state, which is convenient for users to operate inside the chassis. When it is necessary to close the cover plate, the operation is reversed.
[0034] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0035] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A hot-swappable intelligent power supply modular rail connection device, comprising a chassis body (1), side plates (101), and a power module (113), wherein the side plates (101) are disposed on both sides of the chassis body (1), characterized in that: The chassis body (1) has a component slot 1 (102) inside. A power support base (103) is fixed to the inner wall of the component slot 1 (102). A component slot 2 (104) and a component slot 3 (105) are opened on the top of the power support base (103). A bearing base (106) is slidably connected to the inner wall of the component slot 2 (104). A support block (107) is fixed to the bottom of the bearing base (106). A spring 1 (108) is fixed to one side of the support block (107). The other end of the spring 1 (108) is fixed to... The support seat (106) is fixed to the inner wall of the component groove three (105), and a groove (109) is provided at the bottom of the support seat (106). A hook seat (110) is rotatably connected to the inner wall of the component groove three (105). A hook head (7) is fixed at one end of the hook seat (110). The hook head (7) is located on the inner wall of the groove (109). A spring two (111) is fixed at the bottom of the hook seat (110). The other end of the spring two (111) is fixed to the inner wall of the component groove three (105). A handle (112) is fixed on the surface of the hook seat (110).
2. The hot-swappable intelligent power supply modular rail connection device according to claim 1, characterized in that: The power module (113) has an upper guide rail groove (2) and a lower guide rail groove (201) on both sides. The inner wall of the component groove two (104) is rotatably connected to an upper roller group (202) and a lower roller group (203). The upper roller group (202) is located on the inner wall of the upper guide rail groove (2), and the lower roller group (203) is located on the inner wall of the lower guide rail groove (201). The bearing seat (106) has a clamping block (204) on one side. The clamping block (204) has a component groove four (205) on one side. The bearing seat (106) has a support member (206) fixed on one side. The support member (206) has a spring three (207) fixed on one side. The other end of the spring three (207) is fixed to the inner wall of the component groove four (205).
3. The hot-swappable intelligent power supply modular rail connection device according to claim 1, characterized in that: A bearing block (3) is fixed on one side of the side plate (101), and a cover plate (301) is rotatably connected to one side of the bearing block (3). A gripping groove (302) is provided on one side of the cover plate (301), and an inclined groove is provided on the inner wall of the gripping groove (302).
4. The hot-swappable intelligent power supply modular rail connection device according to claim 3, characterized in that: The cover plate (301) has a heat dissipation hole 1 (4) on one side, and the heat dissipation hole 1 (4) is arranged in an array. The power support base (103) has a heat dissipation hole 2 (401) on one side, and the heat dissipation hole 2 (401) is arranged in an array.
5. The hot-swappable intelligent power supply modular rail connection device according to claim 2, characterized in that: Both sides of the clamping block (204) are provided with gripping grooves (5), and the inner wall of the gripping grooves (5) is provided with inclined grooves.
6. The hot-swappable intelligent power supply modular rail connection device according to claim 1, characterized in that: A push plate (6) is fixed to the top of the bearing seat (106).
7. The hot-swappable intelligent power supply modular rail connection device according to claim 1, characterized in that: The hook head (7) has an arc surface on its surface, and the arc surface is smooth.