High-power ATX power supply module

By designing limit components and guide components in the ATX power supply module, the automatic limiting and storage of the wires is solved, and the inconvenience of sorting caused by excessive length of the power supply cable in the prior art is improved, and the practicality and convenience of the power supply module are improved.

CN120149902APending Publication Date: 2025-06-13GOLDEN FIELD IND CO LTD
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Patent Information

Application Number
CN202510302207.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

The power cord of the existing ATX power module is long and is inconvenient for organization and storage, which leads to frequent entanglement and inconvenient use and storage, and it takes a lot of time to organize the wire.

Method used

A high-power ATX power module is designed, using limiting components and guiding components. Through the design of gear discs and arc-shaped grooves, the limiting and automatic storage of the wires are achieved, which is convenient for the installation, maintenance and maintenance of the power supply body.

Benefits of technology

It realizes automatic limiting and storage of wires, reduces the time to organize wires, and improves the overall practicality and convenience of the power module.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a high-power ATX power supply module. An ATX power supply comprises a power supply main body; a wire is arranged on the outer side of the power source body, a connecting shell is arranged on the inner side of the power source body, limiting assemblies are arranged in the connecting shell, a mounting plate is arranged on the outer side of the power source body, a connecting frame is fixedly connected to the outer side of the mounting plate and located on the inner side of the power source body, and the two ends of the power source body are each provided with two connecting assemblies. A guide assembly is arranged at the bottom end of the mounting plate and located in the rack plate. The limiting assembly is used for conducting limiting treatment on the wire, the limiting assembly is composed of two sets of connecting bases, two sets of gear discs, a winding shaft, multiple sets of moving rods and multiple sets of fixing rods, the two sets of connecting bases are fixedly connected to the two ends of the interior of the connecting shell correspondingly, and compared with an existing ATX power module, the ATX power module can improve the overall practicability through the design.
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Description

Technical Field

[0001] The present invention belongs to the technical field of ATX power supply modules, and particularly relates to a high-power ATX power supply module. Background Art

[0002] An ATX power supply module is a power supply module that provides power for a computer and is widely used in desktop computer systems to provide stable power supply for various components of the computer (such as motherboards, hard drives, graphics cards, fans, etc.). It includes parts such as transformers, rectifiers, filters, power switching tubes, power control ICs, voltage regulation modules, protection cables, cooling systems, output interfaces and cables, standby power supplies, and main circuit boards. With the rapid development of computer technology, ATX power supplies have currently become the widely adopted switching power supplies for computers. As the working power supply of a computer, an ATX power supply can convert the AC 220V power supply into a low-voltage DC power supply for internal use in the computer and is an important part of the computer system;

[0003] All ATX power supplies are equipped with power cords with plugs, and the lengths of the power cords are relatively long, which are not convenient for sorting and storing. Subsequently, the wires often get tangled together, making it extremely inconvenient to use and store them. Sorting the wires takes a lot of time and needs to be improved. Therefore, it is particularly important to design a high-power ATX power supply module to solve the above defects. Summary of the Invention

[0004] (1) Technical Problems to be Solved

[0005] Aiming at the deficiencies of the prior art, the purpose of the present invention is to provide a high-power ATX power supply module. The power supply main body solves the problems in the prior art that ATX power supplies are equipped with power cords with plugs, the lengths of the power cords are relatively long, which are not convenient for sorting and storing, and subsequently the wires often get tangled together, making it extremely inconvenient to use and store them, and sorting the wires takes a lot of time.

[0006] (2) Technical Solutions

[0007] To solve the above technical problems, the present invention provides such a high-power ATX power supply module. The ATX power supply includes a power supply main body; a wire is provided on the outer side of the power supply main body, a connection shell is provided on the inner side of the power supply main body, a limiting component is provided inside the connection shell, a mounting plate is provided on the outer side of the power supply main body, a connection frame is fixedly connected on the outer side of the mounting plate and inside the power supply main body, two groups of connection components are provided at both ends of the power supply main body, a rack plate is provided on the outer side of the mounting plate, and a guiding component is provided at the bottom end of the mounting plate and inside the rack plate;

[0008] The limiting component is used for limiting the wire. The limiting component is composed of two groups of connecting seats, two groups of gear discs, a winding shaft, multiple groups of moving rods and multiple groups of fixed rods. The two groups of connecting seats are respectively fixedly connected to both ends inside the connecting shell. The gear discs are rotatably connected to the outside of the connecting seats. The multiple groups of moving rods are all slidably connected to the inside of the connecting seats. The fixed rods are located at one end of the two groups of moving rods away from the connecting seats;

[0009] The connecting component is used for installing the power supply main body inside the connecting frame;

[0010] The guiding component is used for limiting the mounting plate.

[0011] When using the power supply main body of this technical solution, pressing the pressing plate drives the moving plate to displace, causing the two limiting blocks to displace, so that the inside of the guiding gear displaces out, enabling the guiding gear to rotate, and thus enabling the mounting plate to rotate. When the mounting plate rotates to a specified angle, release the pressing plate. The second compression spring drives the sliding block to displace, causing the rotating rod to displace, driving the moving plate to displace, so that the two limiting blocks are in limiting connection with the limiting gear, limiting the limiting gear, and thus being able to limit the mounting plate. Press the connecting rod to displace, causing the guiding block to displace towards one end close to the power supply main body, displacing the limiting rod into the power supply main body, disconnecting the limiting connection with the connecting frame. At the same time, the displacement of the connecting rod drives the limiting ring to displace, enabling the limiting groove to be in limiting connection with the elastic ball, displacing the connecting rod, and thus limiting the limiting rod inside the power supply main body, enabling the power supply main body to displace into the connecting frame. Displace the power supply main body into the connecting frame, pull the connecting rod, drive the limiting ring to displace, disconnect the limiting connection with the fixed ring, and the first compression spring cooperates with the fixed ring to pull the moving ring to displace, causing the connecting rod to displace towards the front end of the power supply main body, driving the guiding block to displace, displacing the limiting rod into the connecting frame, and displacing the limiting rod into the mounting groove to be in limiting connection with the connecting frame, enabling the power supply main body to be in limiting connection with the connecting frame. Install the power supply main body inside the connecting frame, rotate the worm to drive the worm gear to rotate, enabling the driving gear to rotate, driving the gear disk to rotate. When the gear disk rotates, it drives multiple arc-shaped grooves to displace, guiding the guiding rod, driving the guiding rod to displace, and thus causing the moving rod to displace, driving the fixed rod to displace, disconnecting the contact between the fixed rod and the wire, making the wire loose, enabling the wire to be pulled out for use. When the wire is pulled to a certain length, reset the fixed rod and, due to the self-locking property between the worm and the worm gear, limit the wire inside the connecting shell. Reset the mounting plate to complete the installation of the power supply main body. When the power supply main body is in use, through the cavity and heat dissipation grooves formed by multiple heat dissipation fins, the external air can be introduced into the power supply main body, driving the gas inside the power supply main body to flow, discharging the hot air inside the power supply main body, and thus being able to dissipate heat from the power supply main body.

[0012] Preferably, multiple arc-shaped grooves are provided inside the gear disk. The moving rod extends into the arc-shaped grooves and is fixedly connected with a guiding rod, and the guiding rod is in sliding connection with the arc-shaped grooves.

[0013] Furthermore, a spiral groove is provided inside the wire winding shaft. The internal structure size of the spiral groove is designed to correspond to the external structure size of the wire. Through grooves are provided at both ends of the connecting shell, and the wire passes through the two through grooves to penetrate the connecting shell.

[0014] Further, the two sets of gear discs are connected by a transmission rod. The transmission rod is fixedly connected to the gear discs, the winding shaft is rotatably connected to the transmission rod, a driving gear is meshed and connected to the outside of the gear discs, a worm gear is fixedly connected to the outside of the driving gear, and a worm is meshed and connected to the outside of the worm gear.

[0015] Further, the connecting assembly is composed of a connecting rod, a guiding block, a limiting rod, a moving ring, a fixing ring and a limiting ring. The connecting rod is slidably connected to the inside of the power supply body. The guiding block is located at the bottom end of the connecting rod. The limiting rod is fixedly connected to the end of the guiding block away from the connecting rod. The moving ring is fixedly connected to the bottom end of the connecting rod. The fixing ring is fixedly connected to the inside of the power supply body and is located outside the connecting rod. The limiting ring is fixedly connected to the front end of the connecting rod.

[0016] Further, an inclined groove is formed inside the guiding block. The connecting rod is slidably connected to the inclined groove. A first compression spring is fixedly connected to the outside of the connecting rod at the end of the moving ring close to the fixing ring. The end of the first compression spring away from the moving ring is fixedly connected to the fixing ring.

[0017] Further, two sets of installation grooves are formed at both ends inside the connecting frame. The connecting frame is connected to the limiting rod through the installation grooves. A plurality of elastic balls are fixedly connected to the end of the fixing ring close to the limiting ring. A limiting groove is formed at the end of the limiting ring close to the fixing ring. The limiting ring is connected to the elastic balls through the limiting groove.

[0018] Further, the guiding assembly is composed of two sets of guiding gears, two sets of limiting blocks, a moving plate, two sets of rotating rods, two sets of sliding blocks and a sliding rod. The two sets of guiding gears are both fixedly connected to both ends of the mounting plate and are rotatably connected to the inside of the frame plate. The limiting blocks are located at the bottom of the guiding gears. The moving plate is located at the bottom of the two sets of limiting blocks. The two sets of rotating rods are both rotatably connected to the bottom of the moving plate. The sliding blocks are rotatably connected to the ends of the rotating rods away from the moving plate. The sliding rod is located inside the two sets of sliding blocks.

[0019] Further, the internal structure size of the guiding gear is designed to correspond to the external structure size of the limiting block. The moving plate extends to the outside of the frame plate and is fixedly connected to a pressing plate. The sliding block is slidably connected to the sliding rod. Second compression springs are sleeved on both ends of the sliding rod and on the outside of the two sets of sliding blocks.

[0020] Further, arc-shaped rods are rotatably connected to the middle parts of both ends of the mounting plate. Support rods are fixedly connected to both ends inside the mounting plate. The arc-shaped rods are slidably connected to the support rods. A plurality of heat sinks are fixedly connected to the inside of the power supply body. A cavity is formed between the plurality of heat sinks. A plurality of heat dissipation grooves are formed on both sides of the power supply body.

[0021] (3) Beneficial effects

[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0023] 1. Through the design of the limiting component of the power supply main body of the present invention, turning the worm drives the worm wheel to rotate, causing the driving gear to rotate, driving the gear disc to rotate. When the gear disc rotates, it drives multiple arc-shaped grooves to displace, guiding the guide rod and driving the guide rod to displace, thereby causing the moving rod to displace, driving the fixed rod to displace, disconnecting the contact between the fixed rod and the wire, making the wire loose so that the wire can be pulled out for use. When the wire is pulled to a certain length, the reset fixed rod cooperates with the self-locking property between the worm and the worm wheel to limit the wire inside the connection shell, and the length of the wire can be fixed at any time. At the same time, it is convenient to store the wire without spending extra time to organize the wire.

[0024] 2. Through the design of the connection component cooperating with the guiding component of the power supply main body of the present invention, when the power supply main body needs to be installed, the guiding component enables the mounting plate to rotate. When the mounting plate rotates to a specified angle, the mounting plate is limited, thus facilitating the installation of the power supply main body. When the power supply main body needs to be installed, the connection component can install the power supply main body inside the connection frame and thus inside the mounting plate. When the power supply main body needs to be repaired and maintained, the connection between the power supply main body is disconnected through the connection component, enabling the power supply main body to be displaced out of the connection frame, facilitating the repair and maintenance of the power supply main body. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is the overall three-dimensional structure schematic diagram of the device of the present invention;

[0026] Figure 2 is the schematic diagram of the frame plate structure of the device of the present invention;

[0027] Figure 3 is the schematic diagram of the mounting plate structure of the device of the present invention;

[0028] Figure 4 is the schematic diagram of the power supply main body structure of the device of the present invention;

[0029] Figure 5 is the schematic diagram of the connection shell structure of the device of the present invention;

[0030] Figure 6 is the schematic diagram of the wire structure of the device of the present invention;

[0031] Figure 7 is the schematic diagram of the limiting component structure of the device of the present invention;

[0032] Figure 8 is the schematic diagram of the gear disc structure of the device of the present invention;

[0033] Figure 9Schematic diagram of the connection frame structure of the device of the present invention;

[0034] Figure 10 Schematic diagram of the connection component structure of the device of the present invention;

[0035] Figure 11 Schematic diagram of the fixed ring and limit ring structure of the device of the present invention;

[0036] Figure 12 Schematic diagram of the guiding component structure of the device of the present invention;

[0037] The reference signs in the drawings are: 1, power supply main body; 2, connection shell; 3, limit component; 4, mounting plate; 5, connection frame; 6, connection component; 7, frame plate; 8, guiding component; 9, wire; 10, connection seat; 11, gear disk; 12, winding shaft; 13, moving rod; 14, fixed rod; 15, arc groove; 16, guiding rod; 17, spiral groove; 18, transmission rod; 19, driving gear; 20, worm gear; 21, worm; 22, connecting rod; 23, guiding block; 24, limit rod; 25, moving ring; 26, fixed ring; 27, limit ring; 28, inclined groove; 29, first compression spring; 30, mounting groove; 31, elastic ball; 32, limit groove; 33, guiding gear; 34, limit block; 35, moving plate; 36, rotating rod; 37, sliding block; 38, sliding rod; 39, pressing plate; 40, second compression spring; 41, arc rod; 42, heat sink; 43, heat dissipation groove. Detailed implementation manners

[0038] This detailed implementation manner is a high-power ATX power supply module, and its structural schematic diagram is as Figures 1-12 shown. The ATX power supply includes a power supply main body 1; a wire 9 is arranged outside the power supply main body 1, a connection shell 2 is arranged inside the power supply main body 1, a limit component 3 is arranged inside the connection shell 2, a mounting plate 4 is arranged outside the power supply main body 1, a connection frame 5 is fixedly connected to the outside of the mounting plate 4 and inside the power supply main body 1, two groups of connection components 6 are arranged at both ends of the power supply main body 1, a frame plate 7 is arranged outside the mounting plate 4, and a guiding component 8 is arranged at the bottom of the mounting plate 4 and inside the frame plate 7;

[0039] The limit component 3 is used for limiting the wire 9. The limit component 3 is composed of two groups of connection seats 10, two groups of gear disks 11, a winding shaft 12, multiple groups of moving rods 13 and multiple groups of fixed rods 14. The two groups of connection seats 10 are respectively fixedly connected to both ends inside the connection shell 2, the gear disks 11 are rotatably connected to the outside of the connection seats 10, multiple groups of moving rods 13 are all slidably connected inside the connection seats 10, and the fixed rods 14 are located at one ends of the two groups of moving rods 13 far away from the connection seats 10;

[0040] The connection component 6 is used for installing the power supply main body 1 inside the connection frame 5;

[0041] The guiding component 8 is used to limit the mounting plate 4.

[0042] Among them, in this embodiment, a plurality of arc-shaped grooves 15 are formed inside the gear disk 11. The moving rod 13 extends into the arc-shaped groove 15 and is fixedly connected with a guiding rod 16. The guiding rod 16 is slidably connected with the arc-shaped groove 15. By slidably connecting the guiding rod 16 with the arc-shaped groove 15, when the gear disk 11 rotates, it drives the plurality of arc-shaped grooves 15 to displace, so as to guide the guiding rod 16 and drive the guiding rod 16 to displace, thereby causing the moving rod 13 to displace and driving the fixed rod 14 to displace;

[0043] Secondly, in this embodiment, a spiral groove 17 is formed inside the wire winding shaft 12. The internal structure size of the spiral groove 17 corresponds to the external structure size of the wire 9. Through grooves are formed at both ends of the connecting shell 2. The wire 9 passes through the connecting shell 2 through the two through grooves. By connecting the wire 9 with the spiral groove 17, the wire 9 can be connected with the wire winding shaft 12. Rotating the wire winding shaft 12 can wind the wire 9 through the spiral groove 17, so as to store it;

[0044] In addition, in this embodiment, the two gear disks 11 are connected by a transmission rod 18. The transmission rod 18 is fixedly connected with the gear disk 11. The wire winding shaft 12 is rotatably connected with the transmission rod 18. A driving gear 19 is meshed with the outer side of the gear disk 11. A worm gear 20 is fixedly connected to the outer side of the driving gear 19. A worm 21 is meshed with the outer side of the worm gear 20. Rotating the worm 21 drives the worm gear 20 to rotate, so that the driving gear 19 rotates and drives the gear disk 11 to rotate;

[0045] Furthermore, in this embodiment, the connecting component 6 is composed of a connecting rod 22, a guiding block 23, a limiting rod 24, a moving ring 25, a fixed ring 26 and a limiting ring 27. The connecting rod 22 is slidably connected inside the power supply main body 1. The guiding block 23 is located at the bottom end of the connecting rod 22. The limiting rod 24 is fixedly connected to the end of the guiding block 23 away from the connecting rod 22. The moving ring 25 is fixedly connected to the bottom end of the connecting rod 22. The fixed ring 26 is fixedly connected inside the power supply main body 1 and is located outside the connecting rod 22. The limiting ring 27 is fixedly connected to the front end of the connecting rod 22. When the power supply main body 1 needs to be installed, the power supply main body 1 can be installed inside the connecting frame 5 and thus inside the mounting plate 4 through the connecting component 6. When the power supply main body 1 needs to be repaired and maintained, the installation of the power supply main body 1 is released through the connecting component 6, so that the power supply main body 1 can be displaced out of the connecting frame 5, which is convenient for repairing and maintaining the power supply main body 1;

[0046] Further, in this embodiment, a chute 28 is formed inside the guiding block 23. The connecting rod 22 is slidably connected to the chute 28. One end of the moving ring 25 close to the fixed ring 26 and located outside the connecting rod 22 is fixedly connected with a first compression spring 29. One end of the first compression spring 29 away from the moving ring 25 is fixedly connected with the fixed ring 26. By slidably connecting the connecting rod 22 with the chute 28, when the connecting rod 22 is displaced, the guiding block 23 can be driven to displace through the chute 28. The moving ring 25 is pulled to displace through the cooperation of the first compression spring 29 and the fixed ring 26, so that the connecting rod 22 displaces towards the front end of the power supply main body 1, driving the guiding block 23 to displace, and the limiting rod 24 is displaced into the connecting frame 5;

[0047] Further, in this embodiment, two sets of installation grooves 30 are formed at both ends inside the connecting frame 5. The connecting frame 5 is connected with the limiting rod 24 through the installation grooves 30. One end of the fixed ring 26 close to the limiting ring 27 is fixedly connected with a plurality of elastic balls 31. A limiting groove 32 is formed at one end of the limiting ring 27 close to the fixed ring 26. The limiting ring 27 is connected with the elastic balls 31 through the limiting groove 32. The limiting rod 24 is displaced into the installation groove 30 to be limitedly connected with the connecting frame 5, so that the power supply main body 1 can be limitedly connected with the connecting frame 5, and the power supply main body 1 is installed inside the connecting frame 5. When it is necessary to disassemble the power supply main body 1, the connecting rod 22 is pressed to displace, so that the guiding block 23 displaces towards one end close to the power supply main body 1, and the limiting rod 24 is displaced into the power supply main body 1, and the limiting connection with the connecting frame 5 is disconnected. At the same time, the displacement of the connecting rod 22 drives the limiting ring 27 to displace, so that the limiting groove 32 is limitedly connected with the elastic balls 31, and the connecting rod 22 is displaced, so as to limit the limiting rod 24 inside the power supply main body 1, and thus the power supply main body 1 can be conveniently disassembled;

[0048] Further, in this embodiment, the guiding assembly 8 is composed of two guiding gears 33, two limiting blocks 34, a moving plate 35, two rotating rods 36, two sliding blocks 37 and a sliding rod 38. The two guiding gears 33 are fixedly connected to both ends of the mounting plate 4 and rotatably connected inside the frame plate 7. The limiting blocks 34 are located at the bottom of the guiding gears 33. The moving plate 35 is located at the bottom of the two limiting blocks 34. The two rotating rods 36 are rotatably connected to the bottom of the moving plate 35. The sliding blocks 37 are rotatably connected to the ends of the rotating rods 36 away from the moving plate 35. The sliding rod 38 is located inside the two sliding blocks 37. When it is necessary to install the power supply main body 1, the guiding assembly 8 enables the mounting plate 4 to rotate. When the mounting plate 4 rotates to a specified angle, the mounting plate 4 is limited, so as to facilitate the installation of the power supply main body 1;

[0049] Furthermore, in this embodiment, the internal structure size of the guiding gear 33 is designed to correspond to the external structure size of the limiting block 34. The moving plate 35 extends to the outside of the frame plate 7 and is fixedly connected with a pressing plate 39. The sliding block 37 is slidably connected with the sliding rod 38. Both ends of the sliding rod 38 and outside the two sliding blocks 37 are sleeved with second compression springs 40. When it is necessary to open the mounting plate 4, pressing the pressing plate 39 drives the moving plate 35 to displace, so that the two limiting blocks 34 are displaced, and thus the inside of the guiding gear 33 is displaced out, enabling the guiding gear 33 to rotate, and then enabling the mounting plate 4 to rotate. When the mounting plate 4 rotates to a specified angle, release the pressing plate 39. The second compression spring 40 drives the sliding block 37 to displace, causing the rotating rod 36 to displace and driving the moving plate 35 to displace, so that the two limiting blocks 34 are in limiting connection with the limiting gear, limiting the limiting gear, and thus being able to limit the mounting plate 4, which is convenient for the installation of the power supply main body 1;

[0050] Furthermore, in this embodiment, arc-shaped rods 41 are rotatably connected to the middle of both ends of the mounting plate 4. Support rods are fixedly connected to both ends inside the mounting plate 4. The arc-shaped rods 41 are slidably connected with the support rods. A plurality of heat dissipation fins 42 are fixedly connected inside the power supply main body 1. A cavity is formed between the plurality of heat dissipation fins 42. A plurality of heat dissipation grooves 43 are formed on both sides of the power supply main body 1. When the mounting plate 4 rotates, the arc-shaped rods 41 cooperate with the support rods to guide the mounting plate 4, enabling the mounting plate 4 to rotate stably and preventing deviation. When the power supply main body 1 is in use, through the cavity formed by the cooperation of the plurality of heat dissipation fins 42 and the heat dissipation grooves 43, the outside air can be introduced into the inside of the power supply main body 1, driving the gas inside the power supply main body 1 to flow and discharging the hot air inside the power supply main body 1, so as to dissipate heat from the power supply main body 1;

[0051] When using the device of this technical solution, pressing the pressing plate 39 drives the moving plate 35 to displace, causing the two limiting blocks 34 to displace, so that they move out of the inside of the guiding gear 33, enabling the guiding gear 33 to rotate, and thus enabling the mounting plate 4 to rotate. When the mounting plate 4 rotates to a specified angle, release the pressing plate 39. The second compression spring 40 drives the sliding block 37 to displace, causing the rotating rod 36 to displace, driving the moving plate 35 to displace, so that the two limiting blocks 34 are in limiting connection with the limiting gear, limiting the limiting gear, and thus being able to limit the mounting plate 4. Press the connecting rod 22 to displace, causing the guiding block 23 to displace towards the end close to the power supply main body 1, displacing the limiting rod 24 into the inside of the power supply main body 1, and disconnecting the limiting connection with the connecting frame 5. At the same time, the displacement of the connecting rod 22 drives the limiting ring 27 to displace, causing the limiting groove 32 to be in limiting connection with the elastic ball 31, displacing the connecting rod 22, and thus limiting the limiting rod 24 inside the power supply main body 1, enabling the power supply main body 1 to be displaced into the inside of the connecting frame 5. Displace the power supply main body 1 into the inside of the connecting frame 5, pull the connecting rod 22, drive the limiting ring 27 to displace, and disconnect the limiting connection with the fixed ring 26. The first compression spring 29 cooperates with the fixed ring 26 to pull the moving ring 25 to displace, causing the connecting rod 22 to displace towards the front end of the power supply main body 1, driving the guiding block 23 to displace, and displacing the limiting rod 24 into the inside of the connecting frame 5. Displace the limiting rod 24 into the mounting groove 30 and make a limiting connection with the connecting frame 5, enabling the power supply main body 1 to be in limiting connection with the connecting frame 5. Install the power supply main body 1 inside the connecting frame 5. Rotate the worm 21 to drive the worm gear 20 to rotate, causing the driving gear 19 to rotate, driving the gear disk 11 to rotate. When the gear disk 11 rotates, it drives multiple arc-shaped grooves 15 to displace, guiding the guiding rod 16, driving the guiding rod 16 to displace, and thus causing the moving rod 13 to displace, driving the fixed rod 14 to displace, disconnecting the contact between the fixed rod 14 and the wire 9, making the wire 9 slack, and enabling the wire 9 to be pulled out for use. When the wire 9 is pulled to a certain length, reset the fixed rod 14 and, due to the self-locking property between the worm gear 20 and the worm 21, limit the wire 9 inside the connecting shell 2. Reset the mounting plate 4 to complete the installation of the power supply main body 1. When the power supply main body 1 is in use, through the cavities formed by multiple heat dissipation fins 42 and the heat dissipation grooves 43, external air can be introduced into the inside of the power supply main body 1, driving the gas inside the power supply main body 1 to flow, discharging the hot air inside the power supply main body 1, and enabling heat dissipation treatment of the power supply main body 1. Compared with the existing ATX power supply module, the present invention can improve the overall practicality of the ATX power supply module through design.

[0052] The above embodiments are preferred implementation solutions of the present invention. In addition, the present invention can also be implemented in other ways. Any obvious substitution without departing from the concept of the technical solution of the present invention is within the protection scope of the present invention.

Claims

1. A high-power ATX power supply module, the ATX power supply comprising a power supply body (1); characterized in that: A conductor (9) is provided on the outside of the power source body (1), a connection shell (2) is provided on the inside of the power source body (1), a limit assembly (3) is provided inside the connection shell (2), a mounting plate (4) is provided on the outside of the power source body (1), a connection frame (5) is fixedly connected to the outside of the mounting plate (4) and located inside the power source body (1), two groups of connection assemblies (6) are provided at both ends of the power source body (1), a frame plate (7) is provided on the outside of the mounting plate (4), and a guide assembly (8) is provided at the bottom end of the mounting plate (4) and located inside the frame plate (7); The limiting assembly (3) is used to limit the position of the wire (9), and the limiting assembly (3) is composed of two groups of connecting seats (10), two groups of gear plates (11), a reel (12), multiple groups of moving rods (13) and multiple groups of fixed rods (14). The two groups of connecting seats (10) are respectively fixedly connected to the two ends inside the connecting shell (2), the gear plates (11) are rotatably connected to the outside of the connecting seats (10), the multiple groups of moving rods (13) are slidably connected to the inside of the connecting seats (10), and the fixed rods (14) are located at one end of the two groups of moving rods (13) away from the connecting seats (10); The connection assembly (6) is used to install the power source body (1) inside the connection frame (5); The guide assembly (8) is used to perform position limiting processing on the mounting plate (4).

2. A high-power ATX power supply module according to claim 1, characterized in that: The gear plate (11) has a plurality of arc grooves (15) formed inside thereof, the movable rod (13) extending into the arc grooves (15) is fixedly connected with a guide rod (16), and the guide rod (16) is slidably connected to the arc grooves (15).

3. A high-power ATX power supply module according to claim 2, characterized in that: The winding shaft (12) is provided with a spiral groove (17) inside, the internal structure size of the spiral groove (17) is designed to correspond to the external structure size of the conductor (9), and through grooves are provided at both ends of the connecting shell (2), and the conductor (9) passes through the connecting shell (2) through two groups of through grooves.

4. A high-power ATX power supply module according to claim 1, characterized in that: The two groups of gear plates (11) are connected via a transmission rod (18), the transmission rod (18) and the gear plate (11) are fixedly connected, the winding shaft (12) and the transmission rod (18) are rotatably connected, the outer side of the gear plate (11) is meshingly connected with a driving gear (19), the outer side of the driving gear (19) is fixedly connected with a worm wheel (20), and the outer side of the worm wheel (20) is meshingly connected with a worm (21).

5. A high-power ATX power supply module according to claim 1, characterized in that: The connecting assembly (6) is composed of a connecting rod (22), a guide block (23), a limiting rod (24), a movable ring (25), a fixed ring (26) and a limiting ring (27); the connecting rod (22) is slidably connected to the inside of the power supply body (1); the guide block (23) is located at the bottom end of the connecting rod (22); the limiting rod (24) is fixedly connected to an end of the guide block (23) away from the connecting rod (22); the movable ring (25) is fixedly connected to the bottom end of the connecting rod (22); the fixing ring (26) is fixedly connected to the inside of the power supply body (1) and is located on the outside of the connecting rod (22); and the limiting ring (27) is fixedly connected to the front end of the connecting rod (22).

6. A high-power ATX power supply module according to claim 5, characterized in that: An inclined groove (28) is provided inside the guide block (23), and the connecting rod (22) is slidably connected to the inclined groove (28). A first compression spring (29) is fixedly connected to one end of the movable ring (25) close to the fixed ring (26) and located outside the connecting rod (22), and one end of the first compression spring (29) away from the movable ring (25) is fixedly connected to the fixed ring (26).

7. A high-power ATX power supply module according to claim 5, characterized in that: Two sets of mounting grooves (30) are provided at both ends of the connection frame (5), the connection frame (5) is connected to the limiting rod (24) via the mounting grooves (30), one end of the fixing ring (26) close to the limiting ring (27) is fixedly connected to a plurality of sets of elastic balls (31), one end of the limiting ring (27) close to the fixing ring (26) is provided with a limiting groove (32), and the limiting ring (27) is connected to the elastic balls (31) via the limiting grooves (32).

8. A high-power ATX power supply module according to claim 1, characterized in that: The guide assembly (8) is composed of two groups of guide gears (33), two groups of limit blocks (34), a movable plate (35), two groups of rotating rods (36), two groups of sliding blocks (37) and a sliding rod (38). The two groups of guide gears (33) are fixedly connected to the two ends of the mounting plate (4) and are rotatably connected to the inside of the frame plate (7). The limit blocks (34) are located at the bottom of the guide gears (33). The movable plate (35) is located at the bottom of the two groups of limit blocks (34). The two groups of rotating rods (36) are rotatably connected to the bottom of the movable plate (35). The sliding block (37) is rotatably connected to one end of the rotating rod (36) away from the movable plate (35). The sliding rod (38) is located inside the two groups of sliding blocks (37).

9. A high-power ATX power supply module according to claim 8, characterized in that: The internal structure size of the guide gear (33) is designed to correspond to the external structure size of the limit block (34); the movable plate (35) extends to the outside of the frame plate (7) and is fixedly connected to a pressing plate (39); the sliding block (37) and the sliding rod (38) are slidably connected; and second compression springs (40) are sleeved at both ends of the sliding rod (38) and located on the outside of the two groups of sliding blocks (37).

10. A high-power ATX power supply module according to claim 1, characterized in that: The middle of both ends of the mounting plate (4) are rotatably connected to arc-shaped rods (41), both ends of the interior of the mounting plate (4) are fixedly connected to support rods, the arc-shaped rods (41) and the support rods are slidably connected, a plurality of groups of heat sinks (42) are fixedly connected to the interior of the power source body (1), cavities are formed between the plurality of groups of heat sinks (42), and a plurality of groups of heat dissipation grooves (43) are provided on both sides of the power source body (1).

Citation Information

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