Computer heat dissipation auxiliary device

The magnet adsorption and fixing method connected by the slide rail, combined with the cooling mechanism and the blower component, can realize the rapid and effective heat dissipation of computer components, solve the problems of complex installation and low heat dissipation efficiency in the prior art, and achieve a simple and efficient temperature reduction effect.

CN223180636UActive Publication Date: 2025-08-01TAIYUAN INST OF TECH
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Patent Information

Application Number
CN202422508804.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-16
Publication Date
2025-08-01
Estimated Expiration
2034-10-16

AI Technical Summary

Technical Problem

Existing computer cooling devices are difficult to reduce temperature quickly and effectively under high load conditions, and are complex in installation and require professional knowledge.

Method used

The magnet adsorption and fixing method connected by the slide rail is adopted, combined with the cooling mechanism and the blower assembly, and the water circulation and atomization jet work together to achieve rapid cooling.

Benefits of technology

In a short time, the temperature of computer components is significantly reduced, the installation is simple, the socket space is saved, and the heat dissipation efficiency and stability are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a computer heat dissipation auxiliary device, which relates to the technical field of heat dissipation devices and comprises a sliding rail, a connecting piece, a cooling mechanism and a blowing assembly. According to the computer heat dissipation auxiliary device, water in the left box cell forms circulating backflow in the water outlet water pipe and the backflow water pipe through the rotor pump core II, the coil pipe is in contact with the outer surface of the computer component, part of heat emitted by the computer component is absorbed by water in the coil pipe, heat exchange is completed, and the water absorbing the heat flows back into the left box cell; water in the right box cell passes through the second rotor pump core and is atomized by the atomizing nozzle, water mist is sprayed on the outer surface of the computer component to form a large amount of liquid-state small water drops, and the small water drops can be vaporized and take away a large amount of heat after absorbing heat. Vaporized water vapor is discharged to the external environment through the air outlet holes, the cooling effect is achieved, and the multiple air blowing assemblies are arranged on the two sides of the cooling mechanism so that auxiliary cooling can be achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of heat dissipation devices, in particular to a computer heat dissipation auxiliary device. Background Technique

[0002] The computer heat dissipation auxiliary device is a device designed to solve the heat generated by various components of the computer during operation. It can help reduce the temperature of the computer and ensure the stability and reliability of the system. With the continuous progress of computer technology, the heat dissipation demand is also increasing day by day, so the necessity of the heat dissipation auxiliary device is becoming more and more obvious.

[0003] The heat dissipation auxiliary device that can be externally placed outside each component of the computer does not require complex tools or professional knowledge during installation. Installers can freely select and adjust the position and quantity of the heat dissipation device according to their own needs and usage scenarios.

[0004] The computer heat dissipation auxiliary device uses a variety of cooling means to work together, and can significantly reduce the temperature of computer components in a short time, especially under high load conditions, to ensure that each component of the computer is maintained within a safe temperature range. Content of the Utility Model

[0005] The utility model provides a computer heat dissipation auxiliary device, which realizes the effect of using a variety of cooling means to work together and can significantly reduce the temperature of computer components in a short time as mentioned in the above background technique.

[0006] To achieve the above object, the utility model provides the following technical solution: A computer heat dissipation auxiliary device, including a slide rail, a connecting piece, a cooling mechanism and a blowing component. A plurality of groups of connecting pieces are linearly arranged inside the slide rail. The connecting piece includes a sliding plate and a connecting plate. The sliding plate is slidably connected inside the slide rail. The connecting plate is rotatably connected to one end of the sliding plate. A chute is formed through the side surface of the connecting plate. The cooling mechanism is arranged on one side of the connecting plate. The cooling mechanism includes a pipe column, a cover and an atomizing nozzle. The pipe column is slidably connected in the chute in a fixed manner. The cover is fixed to one end of the pipe column. The atomizing nozzle is arranged inside the cover and is communicated with the pipe column. Air outlet holes are formed on the upper surface and the circumferential side surface of the cover. An outer disk is fixedly connected to the circumferential side of the open end of the cover. An installation groove is formed on the end surface of the outer disk. A coil pipe is fixedly connected inside the installation groove. A water tank is arranged at the lower end of the cover. A water supply pipe is fixedly connected to the free end of the pipe column. One end of the water supply pipe is fixedly connected to a rotor pump core one. The other end of the rotor pump core one is fixedly connected to a connecting pipe. The connecting pipe is communicated with the water tank. The coil pipe is communicated with the water tank. The coil pipe protrudes outside the installation groove. Blowing components are arranged on both sides of the cooling mechanism.

[0007] Preferably, the coiled pipe includes a water outlet pipe and a water return pipe. Both the water outlet pipe and the water return pipe are arranged in the placement groove. The coiled pipe is formed by coiling the water outlet pipe and the water return pipe. The water outlet pipe and the water return pipe are connected and communicated. The free end of the water outlet pipe is fixedly connected to a second rotor pump core, and one end of the second rotor pump core is fixedly connected to a connecting pipe.

[0008] Preferably, a first plug wire is arranged at the other end of the first rotor pump core, and a second plug wire is arranged at the other end of the second rotor pump core.

[0009] Preferably, the water tank includes a left tank compartment and a right tank compartment. The left tank compartment is arranged at the lower end of the cover, and the right tank compartment is arranged on one side of the left tank compartment. The upper end of the left tank compartment is fixedly connected to a water outlet port. A water return port is arranged on one side of the water outlet port. The connecting pipe is fixed in the water outlet port and is connected and communicated with the water outlet port. The water return pipe is fixed in the water return port and is connected and communicated with the water return port. The upper end of the right tank compartment is fixedly connected to a water supply port. The connecting pipe is fixed in the water supply port and is connected and communicated with the water supply port.

[0010] Preferably, long pipes extending inside the bottom of the water tank are arranged at the lower ends of the water outlet port, the water return port, and the water supply port.

[0011] Preferably, side plates are fixedly connected to both ends of the water tank, and two water filling ports are arranged on one side of the water tank. The two water filling pipes are respectively connected and communicated with the left tank compartment and the right tank compartment.

[0012] Preferably, the blowing assembly includes a connecting column, a frame, a housing, and a motor. The connecting column is slidably and fixedly connected in the sliding groove of the connecting plate. The frame is fixed at one end of the connecting column. The housing is fixed on one side of the frame. The motor is fixed in the frame, and the output shaft of the motor penetrates inside the housing. A fan blade is fixedly connected to the output shaft of the motor, and a second magnet strip is fixedly connected to one side of the housing.

[0013] Preferably, a third plug wire is arranged on the motor. One end of the third plug wire is provided with a hub, and one end of the hub is provided with a main plug wire.

[0014] Preferably, an annular magnet is arranged outside the placement groove. The annular magnet is fixed on the outer disc, and a magnet sheet is fixedly connected to the other side of the water tank.

[0015] Preferably, a first magnet strip is fixedly connected to the side surface of the slide rail, and plugs are arranged at both ends of the slide rail.

[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0017] 1. The device is adsorbed and fixed on the outer surface of the computer component through the magnet bar I on the slide rail. A plurality of connecting pieces are added inside the slide rail. A cooling mechanism is arranged on one group of connecting pieces, and blowing components are arranged on the other connecting pieces on both sides of the cooling mechanism. Two fixing nuts are arranged on both the pipe column and the connecting column. After moving the cooling mechanism and the blowing components to the specified positions in the chute, the pipe column and the connecting column are clamped and fixed on the connecting plate by tightening the two fixing nuts. Rotate the connecting plate so that the annular magnet on the cover and the magnet bar II on the housing are both adsorbed on the computer component. A plurality of blowing components are arranged on both sides of the cooling mechanism to assist in cooling. The plug wires III of each motor are plugged into the hub, and the main plug wire on the hub is plugged into the socket for centralized power supply, saving the socket jack space and also playing a role in wire management. Starting the motor can drive the fan blades to rotate at high speed to cool the computer.

[0018] 2. The water tank can be adsorbed to the computer component through the magnet sheet. The water in the left tank forms a circulating reflux in the outlet water pipe and the return water pipe through the rotor pump core II. The coil pipe is in contact with the outer surface of the computer component. The coiled coil pipe increases the contact area between the coil pipe and the computer component. A part of the heat dissipated from the computer component is absorbed by the water in the coil pipe to complete the heat exchange. The water absorbing the heat flows back to the left tank through the return water port, converges with the large amount of water in the left tank, reduces the temperature of the return water, and then is pumped out to the outlet water pipe by the rotor pump core II again, continuously circulating to cool the computer component. At the same time, due to the large contact area between the water tank and the external atmospheric environment, the heat of the water in the water tank is also continuously diffused to the external environment, enabling the water in the water tank to maintain a low temperature state. Start the rotor pump core I to pump the water flow from the right tank into the pipe column, and atomize it through the atomizing nozzle. The water mist is sprayed on the outer surface of the computer component to form a large number of liquid small water droplets. After absorbing the heat, the liquid small water droplets will vaporize and take away a large amount of heat, and the vaporized water vapor is discharged to the external environment through the air outlet to play a role in cooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic structural diagram of the computer heat dissipation auxiliary device of the present utility model;

[0020] Figure 2 is a schematic structural diagram of the back of the computer heat dissipation auxiliary device of the present utility model;

[0021] Figure 3 is a side view of the computer heat dissipation auxiliary device of the present utility model;

[0022] Figure 4 is a schematic structural diagram of the coil pipe of the present utility model;

[0023] Figure 5 Internal sectional view of the cooling mechanism of the present utility model;

[0024] Figure 6 Bottom view of the cover of the present utility model;

[0025] Figure 7 Schematic structural diagram of the blowing component of the present utility model;

[0026] Figure 8 Internal sectional view of the water tank of the present utility model.

[0027] Reference numerals in the figure: 1, slide rail; 11, first magnet strip; 12, plug; 2, connecting piece; 21, sliding plate; 22, connecting plate; 221, chute; 3, cooling mechanism; 31, pipe column; 32, cover; 321, outer disc; 3211, placement groove; 3212, annular magnet; 322, air outlet; 33, atomizing nozzle; 34, water supply pipe; 341, first rotor pump core; 342, connecting pipe; 343, first plug wire; 4, coil pipe; 41, water outlet pipe; 411, second rotor pump core; 412, communicating pipe; 413, second plug wire; 42, water return pipe; 5, water tank; 51, left tank; 511, water outlet; 512, water return port; 52, right tank; 521, water supply port; 53, magnet sheet; 54, side plate; 55, water filling port; 6, blowing component; 61, connecting column; 62, frame; 63, housing; 631, second magnet strip; 64, motor; 641, fan blade; 642, third plug wire; 7, hub; 71, main plug wire. Detailed implementation manners

[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0029] The present utility model provides a computer heat dissipation auxiliary device, as Figure 1As shown, it includes a slide rail 1, a connecting piece 2, a cooling mechanism 3 and a blowing assembly 6. A first magnet strip 11 is fixedly connected to the side of the slide rail 1. Plug heads 12 are arranged at both ends of the slide rail 1. A plurality of groups of connecting pieces 2 are linearly arranged inside the slide rail 1. The connecting piece 2 includes a sliding plate 21 and a connecting plate 22. The sliding plate 21 is slidably connected inside the slide rail 1. The connecting plate 22 is rotatably connected to one end of the sliding plate 21. A chute 221 is formed through the side of the connecting plate 22. The cooling mechanism 3 is arranged on one side of the connecting plate 22. The cooling mechanism 3 includes a pipe column 31, a cover 32 and an atomizing nozzle 33. The pipe column 31 is slidably connected in the chute 221 in a fixed manner, as Figure 5 and Figure 6 shown. The cover 32 is fixed to one end of the pipe column 31. The atomizing nozzle 33 is arranged inside the cover 32 and is communicated with the pipe column 31. Air outlet holes 322 are formed on the upper surface and the peripheral side surface of the cover 32. An outer disc 321 is fixedly connected to the peripheral side of the open end of the cover 32. An installation groove 3211 is formed on the end surface of the outer disc 321, as Figure 2 shown. A coil pipe 4 is fixedly connected inside the installation groove 3211. A water tank 5 is arranged at the lower end of the cover 32. A water supply pipe 34 is fixedly connected to the free end of the pipe column 31. A first rotor pump core 341 is fixedly connected to one end of the water supply pipe 34. A connecting pipe 342 is fixedly connected to the other end of the first rotor pump core 341. The connecting pipe 34 is communicated with the water tank 5. Starting the first rotor pump core 341 pumps water flow from the right tank grid 52 into the pipe column 31 and atomizes it through the atomizing nozzle 33. The water mist sprays on the outer surface of the computer component to form a large number of liquid small water droplets. After absorbing heat, the liquid small water droplets will vaporize and take away a large amount of heat. The vaporized water vapor is discharged to the external environment through the air outlet holes 322, playing a role in cooling.

[0030] The computer component can be components such as a computer case and a display.

[0031] As Figure 4As shown, the coil pipe 4 is connected to the water tank 5. The coil pipe 4 protrudes outside the placement groove 3211. The coil pipe 4 includes a water outlet pipe 41 and a water return pipe 42. Both the water outlet pipe 41 and the water return pipe 42 are arranged in the placement groove 3211. The coil pipe 4 is formed by coiling the water outlet pipe 41 and the water return pipe 42. The water outlet pipe 41 and the water return pipe 42 are connected. The free end of the water outlet pipe 41 is fixedly connected to a second rotor pump core 411, and one end of the second rotor pump core 411 is fixedly connected to a connecting pipe 412. The left tank 51 is connected to the coil pipe 4 through a water outlet port 511 and a water return port 512. The water outlet port 511 is connected to the water outlet pipe 41, and the water return port 512 is connected to the water return pipe 42. The water in the left tank 51 forms a circulating return in the water outlet pipe 41 and the water return pipe 42 through the second rotor pump core 411. The coil pipe 4 is in contact with the outer surface of the computer component. The coiled coil pipe 4 increases the contact area between the coil pipe 4 and the computer component. A part of the heat dissipated from the computer component is absorbed by the water in the coil pipe 4 to complete the heat exchange. The water absorbed with heat flows back to the left tank 51 through the water return port 512, converges with a large amount of water in the left tank 51, reduces the temperature of the returned water, and then is pumped out to the water outlet pipe 41 through the second rotor pump core 411. In this way, the computer component is continuously cooled by circulating. At the same time, because the water tank 5 has a relatively large contact area with the external atmospheric environment, the heat of the water in the water tank 5 is also continuously diffused into the external environment, so that the water in the water tank 5 can maintain a low temperature state.

[0032] As Figure 2 and Figure 8As shown, the water tank 5 includes a left tank compartment 51 and a right tank compartment 52. The left tank compartment 51 is arranged at the lower end of the cover 32, and the right tank compartment 52 is arranged on one side of the left tank compartment 51. An outflow pipe orifice 511 is fixedly connected to the upper end of the left tank compartment 51. A return flow pipe orifice 512 is arranged on one side of the outflow pipe orifice 511. The connecting pipe 412 is fixed in the outflow pipe orifice 511 and is in communication with the outflow pipe orifice 511. The return water pipe 42 is fixed in the return flow pipe orifice 512 and is in communication with the return flow pipe orifice 512. A water supply pipe orifice 521 is fixedly connected to the upper end of the right tank compartment 52. The connecting pipe 342 is fixed in the water supply pipe orifice 521 and is in communication with the water supply pipe 34. Side plates 54 are fixedly connected to both ends of the water tank 5. Two water filling pipe orifices 55 are arranged on one side of the water tank 5. The two water filling pipes are respectively in communication with the left tank compartment 51 and the right tank compartment 52. Long pipes extending inside the bottom of the water tank 5 are arranged at the lower ends of the outflow pipe orifice 511, the return flow pipe orifice 512, and the water supply pipe orifice 521. The water tank 5 can be adsorbed to computer components through the magnet sheet 53, and can also be fixed to the computer chassis by inserting screws into the heat dissipation holes on the computer chassis through the side plates 54. The water tank 5 is separated into two parts, the left tank compartment 51 and the right tank compartment 52, by a partition. Removable sealing plugs are arranged on the water filling pipe orifices 55. Water can be added to the left tank compartment 51 and the right tank compartment 52 respectively through the water filling pipe orifices 55. The long pipes extending inside the bottom of the water tank 5 can ensure that the rotor pump core one 341 and the rotor pump core two 411 can draw water from the bottom of the water tank 5.

[0033] As Figure 2 shown, a plug wire one 343 is arranged at the other end of the rotor pump core one 341, and a plug wire two 413 is arranged at the other end of the rotor pump core two 411. By plugging the plug wire one 343 and the plug wire two 413 into a socket board, power can be supplied to the rotor pump core one 341 and the rotor pump core two 411. Starting the rotor pump core one 341 can draw the water in the right tank compartment 52 into the water supply pipe 34, and starting the rotor pump core two 411 can draw the water in the left tank compartment 51 into the outflow water pipe 41.

[0034] As Figure 1 and Figure 7 shown, blowing components 6 are arranged on both sides of the cooling mechanism 3. The blowing component 6 includes a connecting column 61, a frame 62, a housing 63, and a motor 64. The connecting column 61 is slidably and fixedly connected in the chute 221 of the connecting plate 22. The frame 62 is fixed at one end of the connecting column 61. The housing 63 is fixed on one side of the frame 62. The motor 64 is fixed in the frame 62, and the output shaft of the motor 64 penetrates inside the housing 63. A fan blade 641 is fixedly connected to the output shaft of the motor 64. As Figure 3As shown in the figure, a plug wire three 642 is provided on the motor 64. One end of the plug wire three 642 is provided with a hub 7, and one end of the hub 7 is provided with a main plug wire 71. A plurality of blowing components 6 are arranged on both sides of the cooling mechanism 3 to assist in cooling. The plug wire three 642 on each motor 64 is plugged into the hub 7, and the main plug wire 71 on the hub 7 is plugged into a socket for centralized power supply, saving the socket jack space and also playing a role in wire management. Starting the motor 64 can drive the fan blade 641 to rotate at a high speed to cool the computer components.

[0035] As Figure 2 shown, a ring magnet 3212 is arranged outside the placement groove 3211. The ring magnet 3212 is fixed on the outer disc 321. A magnet sheet 53 is fixedly connected to the other side of the water tank 5, and a magnet bar two 631 is fixedly connected to one side of the housing 63. The device is adsorbed and fixed on the outer surface of the computer component by the magnet bar one 11 on the slide rail 1. A plurality of connecting pieces 2 are added inside the slide rail 1. A cooling mechanism 3 is arranged on one group of the connecting pieces 2, and blowing components 6 are arranged on the other connecting pieces 2 on both sides of the cooling mechanism 3. Two fixing nuts are arranged on both the pipe column 31 and the connecting column 61. After moving the cooling mechanism 3 and the blowing component 6 to the designated position in the sliding groove 221, the pipe column 31 and the connecting column 61 are clamped and fixed on the connecting plate 22 by tightening the two fixing nuts. Rotating the connecting plate 22 makes the ring magnet 3212 on the cover 32 and the magnet bar two 631 on the housing 63 both adsorbed on the computer component. Multiple magnets are used for fixing at the same time, increasing the stability of the device adsorbed on the computer component.

[0036] Using the present utility model, as Figure 1 and Figure 2As shown, the device is adsorbed and fixed on the outer surface of the computer component through the magnet bar 11 on the slide rail 1. A plurality of connecting members 2 are added inside the slide rail 1. A cooling mechanism 3 is provided on one group of the connecting members 2, and blowing assemblies 6 are provided on the other connecting members 2 on both sides of the cooling mechanism 3. Two fixing nuts are provided on both the pipe column 31 and the connecting column 61. After moving the cooling mechanism 3 and the blowing assembly 6 to the designated position in the sliding groove 221, the pipe column 31 and the connecting column 61 are clamped and fixed on the connecting plate 22 by tightening the two fixing nuts. Rotate the connecting plate 22 so that the annular magnet 3212 on the cover 32 and the magnet bar 631 on the housing 63 are both adsorbed on the computer component. A plurality of blowing assemblies 6 are provided on both sides of the cooling mechanism 3 for auxiliary cooling. The plug wires 642 of each motor 64 are plugged into the hub 7, and the main wire 71 on the hub 7 is plugged into the socket for centralized power supply, which can save the socket jack space and also play a role in wire management. Starting the motor 64 can drive the fan blade 641 to rotate at a high speed to cool the computer component. The water tank 5 can be adsorbed to the computer component through the magnet sheet 53. The water in the left tank 51 forms a circulating reflux in the outlet water pipe 41 and the return water pipe 42 through the rotor pump core 411. The coil pipe 4 is in contact with the outer surface of the computer component. The coiled coil pipe 4 increases the contact area between the coil pipe 4 and the computer component. A part of the heat dissipated from the computer component is absorbed by the water in the coil pipe 4 to complete the heat exchange. The water absorbing the heat flows back to the left tank 51 through the return water port 512, converges with the large amount of water in the left tank 51, reduces the temperature of the return water, and then is pumped out to the outlet water pipe 41 by the rotor pump core 411 again, continuously circulating to cool the computer component. At the same time, because the water tank 5 has a large contact area with the external atmospheric environment, the heat of the water in the water tank 5 is also continuously diffused into the external environment, so that the water in the water tank 5 can maintain a low temperature state. Start the rotor pump core 341 to pump the water flow from the right tank 52 into the pipe column 31, atomize it through the atomizing nozzle 33, and the water mist is sprayed on the outer surface of the computer component to form a large number of liquid small water droplets. After absorbing the heat, the liquid small water droplets will vaporize and take away a large amount of heat, and the vaporized water vapor is discharged to the external environment through the air outlet 322, playing a role in cooling.

[0037] Although the embodiments of the present invention have been disclosed as above, it is not limited to the applications listed in the specification and embodiments. It can be fully applied to various fields suitable for the present invention. For those familiar with the field, additional modifications can be easily achieved. Therefore, without departing from the general concept defined by the claims and the equivalent scope, the present invention is not limited to the specific details and the illustrated and described examples here.

Claims

1. A computer heat dissipation assisting device, characterized in that, It includes a slide rail (1), a connecting member (2), a cooling mechanism (3) and a blowing assembly (6). A plurality of groups of connecting members (2) are linearly arranged inside the slide rail (1). The connecting member (2) includes a sliding plate (21) and a connecting plate (22). The sliding plate (21) is slidably connected inside the slide rail (1). The connecting plate (22) is rotatably connected to one end of the sliding plate (21). A chute (221) is formed through the side surface of the connecting plate (22). The cooling mechanism (3) is arranged on one side of the connecting plate (22). The cooling mechanism (3) includes a pipe column (31), a cover (32) and an atomizing nozzle (33). The pipe column (31) is slidably connected in the chute (221) in a fixed manner. The cover (32) is fixed to one end of the pipe column (31). The atomizing nozzle (33) is arranged inside the cover (32) and is communicated with the pipe column (31). Air outlet holes (322) are formed on the upper surface and the peripheral side surface of the cover (32). An outer disc (321) is fixedly connected to the peripheral side of the open end of the cover (32). An installation groove (3211) is formed on the end surface of the outer disc (321). A coil pipe (4) is fixedly connected inside the installation groove (3211). A water tank (5) is arranged at the lower end of the cover (32). The free end of the pipe column (31) is fixedly connected to a water supply pipe (34). One end of the water supply pipe (34) is fixedly connected to a first rotor pump core (341). The other end of the first rotor pump core (341) is fixedly connected to a connecting pipe (342). The connecting pipe (342) is communicated with the water tank (5). The coil pipe (4) is communicated with the water tank (5). The coil pipe (4) protrudes outside the installation groove (3211). Blowing assemblies (6) are arranged on both sides of the cooling mechanism (3).

2. The computer heat dissipation assisting device according to claim 1, characterized in that, The coil pipe (4) includes a water outlet pipe (41) and a water return pipe (42). The water outlet pipe (41) and the water return pipe (42) are both arranged in the installation groove (3211). The coil pipe (4) is formed by winding the water outlet pipe (41) and the water return pipe (42). The water outlet pipe (41) and the water return pipe (42) are communicated. The free end of the water outlet pipe (41) is fixedly connected to a second rotor pump core (411). One end of the second rotor pump core (411) is fixedly connected to a communicating pipe (412).

3. An auxiliary computer heat dissipation device according to claim 2, characterized in that, A first plug wire (x343) is arranged at the other end of the first rotor pump core (341). A second plug wire (413) is arranged at the other end of the second rotor pump core (411).

4. The computer heat dissipation assisting device according to claim 2, characterized in that, The water tank (5) includes a left tank compartment (51) and a right tank compartment (52). The left tank compartment (51) is arranged at the lower end of the cover (32), and the right tank compartment (52) is arranged on one side of the left tank compartment (51). The upper end of the left tank compartment (51) is fixedly connected with an outflow pipe orifice (511), and a return flow pipe orifice (512) is arranged on one side of the outflow pipe orifice (511). The connecting pipe (412) is fixed in the outflow pipe orifice (511) and is in communication with the outflow pipe orifice (511). The return water pipe (42) is fixed in the return flow pipe orifice (512) and is in communication with the return flow pipe orifice (512). The upper end of the right tank compartment (52) is fixedly connected with a water supply pipe orifice (521), and the connecting pipe (342) is fixed in the water supply pipe orifice (521) and is in communication with the water supply pipe (34) orifice.

5. The computer heat dissipation assisting device according to claim 4, wherein Long pipes extending inside the bottom of the water tank (5) are arranged at the lower ends of the outflow pipe orifice (511), the return flow pipe orifice (512), and the water supply pipe orifice (521).

6. The computer heat dissipation auxiliary device according to claim 5, wherein Side plates (54) are fixedly connected to both ends of the water tank (5), and two water filling pipe orifices (55) are arranged on one side of the water tank (5). The two water filling pipes are respectively in communication with the left tank compartment (51) and the right tank compartment (52).

7. The computer heat dissipation auxiliary device according to claim 1, characterized in that, The blowing assembly (6) includes a connecting column (61), a frame (62), a housing (63), and a motor (64). The connecting column (61) is slidably and fixedly connected in the chute (221) of the connecting plate (22). The frame (62) is fixed at one end of the connecting column (61). The housing (63) is fixed on one side of the frame (62). The motor (64) is fixed in the frame (62), and the output shaft of the motor (64) penetrates inside the housing (63). A fan blade (641) is fixedly connected to the output shaft of the motor (64), and a second magnet bar (631) is fixedly connected to one side of the housing (63).

8. An auxiliary computer heat dissipation device according to claim 7, characterized in that, A plug wire three (642) is arranged on the motor (64). One end of the plug wire three (642) is provided with a hub (7), and one end of the hub (7) is provided with a main plug wire (71).

9. A computer heat dissipation assisting device according to claim 1, wherein, An annular magnet (3212) is arranged outside the placement groove (3211). The annular magnet (3212) is fixed on the outer disc (321), and a magnet sheet (53) is fixedly connected to the other side of the water tank (5).

10. The computer heat dissipation assisting device according to claim 1, wherein, A first magnet bar (11) is fixedly connected to the side surface of the slide rail (1), and plugs (12) are arranged at both ends of the slide rail (1).