Computer case heat dissipation structure
By using a water-cooling circulation and auxiliary cleaning mechanism, combined with a rotating opening and automatic winding mechanism, the problems of poor heat dissipation and dust accumulation in computer cases are solved, achieving efficient heat dissipation and cleaning, and protecting equipment safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-18
- Publication Date
- 2026-04-07
AI Technical Summary
Traditional computer cases have poor heat dissipation, are prone to dust accumulation, and water buildup can damage the equipment.
It adopts a water-cooled circulation mechanism and an auxiliary cleaning mechanism, combined with a rotating opening mechanism and an automatic winding mechanism to achieve efficient heat dissipation and dust cleaning.
It improves the heat dissipation efficiency of the chassis, prevents dust and water stains from accumulating, and protects the equipment.
Smart Images

Figure CN121807121A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computer heat dissipation technology, and in particular to a computer chassis heat dissipation structure. Background Technology
[0002] Computer applications are becoming increasingly widespread in China. Since the reform and opening up, the number of computer users in China has been rising continuously, and the level of application has been constantly improving. In particular, applications in the fields of the Internet, communications, and multimedia have achieved remarkable results. During prolonged use, the various hardware devices inside a computer generate a lot of heat. Excessive heat can damage the hardware devices and affect the computer's use and processing speed. The computer case mainly serves to protect the computer hardware devices, so the computer case is in a nearly enclosed state, which makes it difficult for the heat inside the case to dissipate quickly, resulting in slow heat dissipation efficiency. Traditional case cooling mainly relies on fan cooling, which has poor heat dissipation effect, and during the cooling process, a lot of dust will accumulate inside the case. If not cleaned in time, it will also cause certain damage to the equipment. Summary of the Invention
[0003] In view of this, the present invention provides a computer chassis heat dissipation structure, which includes a water cooling circulation mechanism, in which the coolant inside the device can circulate and absorb heat to assist in cooling the chassis; an auxiliary liquid cleaning mechanism, which can help clean water stains on the surface of the heat conduction plate to prevent excessive water accumulation from damaging the equipment; a rotating opening mechanism and an automatic winding mechanism, in which the protective plate can provide auxiliary protection for the equipment inside the chassis when it is closed, and can effectively improve the airflow inside the chassis and improve the heat dissipation effect when it is open; and a dust cleaning mechanism, which cleans the dust filter surface.
[0004] This invention provides a computer chassis heat dissipation structure, specifically including: a chassis main body component, an automatic winding mechanism, a rotating opening mechanism, a dust cleaning mechanism, a water cooling circulation mechanism, and an auxiliary cleaning liquid mechanism;
[0005] The main chassis assembly is a square frame structure; one end of the automatic winding mechanism is inserted into the main chassis assembly; the rotating opening mechanism is installed inside the automatic winding mechanism; the upper and lower ends of the dust cleaning mechanism are fixedly installed on the surface of the automatic winding mechanism, and one end of the dust cleaning mechanism is in contact with the rotating opening mechanism; one end of the water cooling circulation mechanism is inserted into the main chassis assembly; and one end of the auxiliary cleaning mechanism is connected to the water cooling circulation mechanism.
[0006] Optionally, the main chassis component includes: an outer shell and a fixed connecting baffle; the outer shell is a square frame structure; the fixed connecting baffle is set to two sets, and the fixed connecting baffle is fixedly installed inside the outer shell.
[0007] Optionally, the automatic winding mechanism includes: a connecting plate, an outer column, a winding rod, a fixed support plate, a support rod, a spring, and a driving toothed plate A; the connecting plate is a square frame structure with a groove inside, and is fastened to the fixed connecting baffle by screws; the outer column is a hollow cylindrical structure and is fixedly installed inside the connecting plate; a gear is fixedly installed on the top surface of the winding rod, and the top of the winding rod is rotated and inserted into the groove of the connecting plate, so that the winding rod can wind up the dust filter; the fixed support plate is fixedly installed inside the groove of the connecting plate; the left and right ends of the support rod are fixedly connected to two sets of fixed support plates; the spring is installed on the surface of the support rod, and the spring can provide elastic support for the driving toothed plate A; the driving toothed plate A is slidably installed on the surface of the support rod, and one end of the driving toothed plate A is engaged with the gear at the bottom of the winding rod, so that the sliding of the driving toothed plate A can control the rotation of the winding rod.
[0008] Optionally, the rotating opening mechanism includes: a threaded rod A, a bevel gear assembly, a control shaft, a drive gear plate B, a drive shaft, a protective plate, and a dust filter; the left and right ends of the threaded rod A are rotatably connected to the connecting insert plate; one end of the bevel gear assembly is fixedly connected to the threaded rod A; one end of the control shaft is rotatably inserted into the connecting insert plate and fixedly connected to the other end of the bevel gear assembly; the drive gear plate B is threadedly connected to the threaded rod A, and the rotation of the threaded rod A can control the sliding of the drive gear plate B; a gear is fixedly provided on the bottom surface of the drive shaft, and the bottom of the drive shaft is rotatably inserted into the groove of the connecting insert plate, and the gear at the bottom of the drive shaft meshes with the drive gear plate B; one end of the protective plate is fixedly connected to the drive shaft; one end of the dust filter is fixedly connected to the protective plate, and the other end of the dust filter is slidably inserted into the outer column and connected to the winding rod.
[0009] Optionally, the dust cleaning mechanism includes: a support frame, an elastic telescopic rod A, and a dust-adhesive roller; the support frame is U-shaped, and its upper and lower ends are fixedly connected to the connecting plate; one end of the elastic telescopic rod A is fixedly connected to the support frame; the upper and lower ends of the dust-adhesive roller are rotatably connected to the other end of the elastic telescopic rod A, and the dust-adhesive roller can play an auxiliary role in cleaning the dust filter.
[0010] Optionally, the water-cooling circulation mechanism includes: an outer plate, a water supply pipe, a heat-conducting plate, and a cooling box; the outer plate is generally a cuboid structure, with a square groove on its surface, and one end of the outer plate is connected to a fixed connecting baffle by screws; the surface of the water supply pipe is fixedly connected to the outer plate, and cooling water flows inside the water supply pipe, which can help reduce the overall temperature inside the main chassis components; the surface of the heat-conducting plate is fixedly connected to the water supply pipe; the cooling box is generally a hollow cuboid structure, and the cooling box is fixedly installed on the surface of the outer plate, with the upper and lower ends of the cooling box fixedly connected to the upper and lower ends of the water supply pipe, and a cooling plate is installed inside the cooling box, which is used to carry the coolant.
[0011] Optionally, the water-cooling circulation mechanism further includes: a push plate, a threaded rod B, and a motor housing; the push plate has a threaded hole in the middle, and is slidably installed inside the cooling box, which can control the flow of cooling water inside the cooling box; the bottom of the threaded rod B is rotatably inserted into the cooling box, and the surface of the threaded rod B is threadedly connected to the push plate, and the rotation of the threaded rod B can control the lifting and sliding of the push plate; a motor is installed inside the motor housing, and the motor housing is fixedly installed on the top of the cooling box, and the threaded rod B is rotatably inserted into the motor housing and connected to the motor.
[0012] Optionally, the auxiliary cleaning mechanism includes: an outer casing, a threaded rotating rod C, a gear belt, an elastic telescopic rod B, an absorbent cotton tube, and a water removal component; the outer casing is a cuboid structure with a square groove on its surface, and the outer casing is fixedly installed on the surface of the outer plate; a gear is provided at the top of the threaded rotating rod C, and the bottom of the threaded rotating rod C is rotatably inserted into the square groove of the outer casing; the inner side of the gear belt meshes with the gears at the bottom of the threaded rotating rod B and the threaded rotating rod C, and the threaded rotating rod B can drive the threaded rotating rod C to rotate through the gear belt; one end of the elastic telescopic rod B is slidably inserted into the square groove of the outer casing and threadedly connected to the threaded rotating rod C, and the rotation of the threaded rotating rod C can control the lifting and sliding of the elastic telescopic rod B; one end of the absorbent cotton tube is rotatably connected to the elastic telescopic rod B, and the surface of the absorbent cotton tube is in contact with the heat-conducting plate, and the absorbent cotton tube can assist in cleaning water stains on the surface of the heat-conducting plate; the surface of the water removal component is fixedly connected to the outer plate and the heat-conducting plate.
[0013] Optionally, the water removal assembly further includes: a water conveying plate, a squeezing plate, and filter holes; the water conveying plate is generally L-shaped, and the surface of the water conveying plate is fixedly connected to the outer plate and the heat-conducting plate; the squeezing plate is fixedly installed inside the water conveying plate, and the squeezing plate is in contact with the absorbent cotton tube, which can squeeze out the water inside the absorbent cotton tube; the filter holes are opened on the surface of the squeezing plate.
[0014] Beneficial effects
[0015] The invention is equipped with a water-cooling circulation mechanism. The water pipes inside the water-cooling circulation mechanism can absorb heat and assist in cooling the chassis, resulting in a good cooling effect. In addition, the water-cooling circulation mechanism is also equipped with a controllable sliding push plate. During the sliding process, the push plate can control the circulation of coolant, ensuring that the coolant inside the water pipe is always in a low-temperature state, which facilitates the rapid and auxiliary cooling of the chassis.
[0016] In addition, the present invention is also equipped with an auxiliary liquid cleaning mechanism. When the coolant flows inside the water pipe and assists in cooling, the water-absorbing cotton tube inside the auxiliary liquid cleaning mechanism is automatically raised and lowered by force. The water-absorbing cotton tube can absorb and remove water stains on the surface of the heat-conducting plate, preventing excessive water stains from accumulating and damaging the equipment. When the water-absorbing cotton slides down to the bottom, it contacts the water removal component, and the water inside the water-absorbing cotton tube is squeezed out and discharged through the water conveying plate.
[0017] In addition, the invention also includes a rotating opening mechanism and an automatic winding mechanism. When the temperature inside the chassis is too high, the rotating opening mechanism is activated, and the protective plate inside the rotating opening mechanism rotates. When the protective plate is in the closed state, it can provide auxiliary protection for the equipment inside the chassis. When the protective plate is in the open state, the dust filter inside the automatic winding mechanism can slide along with the opening of the protective plate. Multiple sets of square grooves are opened on the surface of the chassis, which can effectively improve the airflow inside the chassis and improve the heat dissipation effect. At the same time, the dust filter can also prevent external dust from entering the chassis.
[0018] In addition, the present invention is provided with a dust cleaning mechanism. The dust-adhesive roller inside the dust cleaning mechanism is always in contact with the dust filter screen. When the dust filter screen slides, the dust-adhesive roller can play an auxiliary role in cleaning the dust on the surface of the dust filter screen. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.
[0020] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.
[0021] In the attached diagram:
[0022] Figure 1 A schematic diagram of the main body of the present invention is shown in the axial side view.
[0023] Figure 2 A cross-sectional structural schematic diagram of the main body of the present invention is shown;
[0024] Figure 3 A cross-sectional structural schematic diagram of the automatic winding mechanism of the present invention is shown;
[0025] Figure 4 This diagram shows a partially enlarged structural schematic of part A of the present invention;
[0026] Figure 5 A cross-sectional schematic diagram of the rotating opening mechanism of the present invention is shown;
[0027] Figure 6 This diagram shows a partially enlarged structural schematic of part B of the present invention;
[0028] Figure 7 A schematic diagram of the water-cooling circulation mechanism of the present invention is shown in disassembled form;
[0029] Figure 8 A schematic diagram of the decomposed auxiliary cleaning mechanism of the present invention is shown;
[0030] Figure 9A schematic diagram of the structure of the auxiliary cleaning mechanism of the present invention is shown.
[0031] List of reference numerals
[0032] 1. Main chassis assembly; 101. Outer shell; 102. Fixed connecting baffle; 2. Automatic winding mechanism; 201. Connecting insert plate; 202. Outer column; 203. Winding rod; 204. Fixed support plate; 205. Support rod; 206. Spring; 207. Drive gear plate A; 3. Rotary opening mechanism; 301. Threaded rotating rod A; 302. Bevel gear assembly; 303. Control shaft; 304. Drive gear plate B; 305. Drive shaft; 306. Protective plate; 307. Dust filter; 4. Dust cleaning mechanism; 401. 402. Support frame; 403. Elastic telescopic rod A; 404. Dust-collecting roller; 5. Water-cooling circulation mechanism; 505. Outer plate; 506. Water supply pipe; 507. Heat-conducting plate; 508. Cooling box; 509. Push plate; 5000. Threaded rotating rod B; 5001. Motor box; 601. Auxiliary cleaning mechanism; 602. Outer box; 603. Threaded rotating rod C; 604. Gear belt; 605. Elastic telescopic rod B; 606. Water-absorbing cotton tube; 607. Water removal assembly; 6061. Water supply plate; 6062. Extrusion plate; 6063. Filter hole. Detailed Implementation
[0033] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples.
[0034] Example: Please refer to Figures 1 to 9 :
[0035] This invention proposes a computer chassis heat dissipation structure, including: chassis main body component 1, automatic winding mechanism 2, rotating opening mechanism 3, dust cleaning mechanism 4, water cooling circulation mechanism 5, and auxiliary cleaning liquid mechanism 6;
[0036] The main chassis component 1 has a square frame structure; one end of the automatic winding mechanism 2 is inserted into the main chassis component 1; the rotating opening mechanism 3 is installed inside the automatic winding mechanism 2; the dust cleaning mechanism 4 is fixedly installed on the surface of the automatic winding mechanism 2 at both ends, and one end of the dust cleaning mechanism 4 is in contact with the rotating opening mechanism 3; one end of the water cooling circulation mechanism 5 is inserted into the main chassis component 1; and one end of the auxiliary cleaning mechanism 6 is connected to the water cooling circulation mechanism 5.
[0037] like Figure 2 As shown, the main chassis component 1 includes: a shell 101 and a fixed connection baffle 102; the shell 101 is generally a square frame structure; the number of fixed connection baffles 102 is set to two sets, and the fixed connection baffles 102 are fixedly installed inside the shell 101.
[0038] like Figure 3As shown, the automatic winding mechanism 2 includes: a connecting plate 201, an outer column 202, a winding rod 203, a fixed support plate 204, a support rod 205, a spring 206, and a driving toothed plate A207; the connecting plate 201 is a square frame structure with a groove inside, and is fastened to the fixed connecting baffle 102 by screws; the outer column 202 is a hollow cylindrical structure and is fixedly installed inside the connecting plate 201; a gear is fixedly installed on the top surface of the winding rod 203, and the top of the winding rod 203 is rotatably inserted into the connecting plate. Inside the groove 201, the winding rod 203 can wind up the dust filter 307; the fixed support plate 204 is fixedly installed inside the groove of the connecting plate 201; the left and right ends of the support rod 205 are fixedly connected to the two sets of fixed support plates 204; the spring 206 is installed on the surface of the support rod 205, and the spring 206 can provide elastic support to drive the toothed plate A207; the toothed plate A207 is slidably installed on the surface of the support rod 205, and one end of the toothed plate A207 is engaged with the gear at the bottom of the winding rod 203, and the sliding of the toothed plate A207 can control the rotation of the winding rod 203.
[0039] like Figure 5 As shown, the rotating opening mechanism 3 includes: a threaded rotating rod A301, a bevel gear assembly 302, a control shaft 303, a drive gear plate B304, a drive shaft 305, a protective plate 306, and a dust filter 307; the left and right ends of the threaded rotating rod A301 are rotatably connected to the connecting insert plate 201; one end of the bevel gear assembly 302 is fixedly connected to the threaded rotating rod A301; one end of the control shaft 303 is rotatably inserted into the connecting insert plate 201 and fixedly connected to the other end of the bevel gear assembly 302; the drive gear plate B304 and the threaded rotating rod A301 are rotatably connected to the connecting insert plate 201; one end of the drive gear assembly 302 is fixedly connected to the threaded rotating rod A301; the drive gear plate B304 and the drive shaft 305 are rotatably inserted into the connecting insert plate 201 and fixedly connected to the other end of the bevel gear assembly 302; the drive gear plate B304 and the drive shaft 305 are rotatably connected to the connecting insert plate 201; the drive gear plate B304 and the drive shaft 306 are rotatably connected to the connecting insert plate 201; the drive gear plate B304 and the drive shaft 305 ... 01. Threaded connection: The rotation of the threaded rod A301 can control the sliding of the toothed plate B304; a gear is fixedly installed on the bottom surface of the drive shaft 305; the bottom of the drive shaft 305 rotates and inserts into the groove of the connecting plate 201; the gear at the bottom of the drive shaft 305 meshes with the drive toothed plate B304; one end of the protective plate 306 is fixedly connected to the drive shaft 305; one end of the dust filter 307 is fixedly connected to the protective plate 306; the other end of the dust filter 307 slides into the outer column 202 and connects to the winding rod 203.
[0040] like Figure 5 As shown, the dust cleaning mechanism 4 includes: a support frame 401, an elastic telescopic rod A402, and a dust-adhesive roller 403; the support frame 401 has an overall U-shaped structure, and the upper and lower ends of the support frame 401 are fixedly connected to the connecting plate 201; one end of the elastic telescopic rod A402 is fixedly connected to the support frame 401; the upper and lower ends of the dust-adhesive roller 403 are rotatably connected to the other end of the elastic telescopic rod A402, and the dust-adhesive roller 403 can play the role of assisting in cleaning the dust filter screen 307.
[0041] like Figure 7 As shown, the water-cooling circulation mechanism 5 includes: an outer plate 501, a water supply pipe 502, a heat-conducting plate 503, and a cooling box 504; the outer plate 501 is a rectangular parallelepiped structure with a square groove on its surface, and one end of the outer plate 501 is connected to the fixed connection baffle 102 by screws; the surface of the water supply pipe 502 is fixedly connected to the outer plate 501, and cooling water flows inside the water supply pipe 502, which can help reduce the overall internal temperature of the main chassis component 1; the surface of the heat-conducting plate 503 is fixedly connected to the water supply pipe 502; the cooling box 504 is a hollow rectangular parallelepiped structure, and the cooling box 504 is fixedly installed on the surface of the outer plate 501. The upper and lower ends of the cooling box 504 are fixedly connected to the upper and lower ends of the water supply pipe 502, and a cooling plate is provided inside the cooling box 504, which is used to carry the coolant.
[0042] like Figure 7 As shown, the water-cooling circulation mechanism 5 also includes: a push plate 505, a threaded rotating rod B506, and a motor housing 507; the push plate 505 has a threaded hole in the middle, and the push plate 505 is slidably installed inside the cooling tank 504, and the push plate 505 can control the flow of cooling water inside the cooling tank 504; the bottom of the threaded rotating rod B506 is rotatably inserted into the cooling tank 504, and the surface of the threaded rotating rod B506 is threadedly connected to the push plate 505, and the rotation of the threaded rotating rod B506 can control the lifting and sliding of the push plate 505; a motor is installed inside the motor housing 507, and the motor housing 507 is fixedly installed on the top of the cooling tank 504, and the threaded rotating rod B506 is rotatably inserted into the motor housing 507 and connected to the motor.
[0043] like Figure 8 As shown, the auxiliary cleaning mechanism 6 includes: an outer casing 601, a threaded rotating rod C602, a gear belt 603, an elastic telescopic rod B604, a water-absorbing cotton tube 605, and a water-removing assembly 606; the outer casing 601 is a cuboid structure with a square groove on its surface, and the outer casing 601 is fixedly installed on the surface of the outer plate 501; a gear is provided at the top of the threaded rotating rod C602, and the bottom of the threaded rotating rod C602 is rotatably inserted into the square groove of the outer casing 601; the inner side of the gear belt 603 meshes with the gears at the bottom of the threaded rotating rod B606 and the threaded rotating rod C602, and the threaded rotating rod B606 can be connected to the gears. The belt 603 drives the threaded rotating rod C602 to rotate; one end of the elastic telescopic rod B604 is slidably inserted into the square groove of the outer box 601 and threadedly connected to the threaded rotating rod C602. The rotation of the threaded rotating rod C602 can control the lifting and sliding of the elastic telescopic rod B604; one end of the water-absorbing cotton tube 605 is rotatably connected to the elastic telescopic rod B604, and the surface of the water-absorbing cotton tube 605 is in contact with the heat-conducting plate 503. The water-absorbing cotton tube 605 can assist in cleaning water stains on the surface of the heat-conducting plate 503; the surface of the water removal component 606 is fixedly connected to the outer plate 501 and the heat-conducting plate 503.
[0044] like Figure 9 As shown, the water removal assembly 606 also includes: a water conveying plate 6061, a squeezing plate 6062, and a water filter hole 6063; the water conveying plate 6061 has an overall L-shaped structure, and the surface of the water conveying plate 6061 is fixedly connected to the outer plate 501 and the heat-conducting plate 503; the squeezing plate 6062 is fixedly installed inside the water conveying plate 6061, and the squeezing plate 6062 is in contact with the water-absorbing cotton cylinder 605, which can squeeze and remove the water inside the water-absorbing cotton cylinder 605; the water filter hole 6063 is opened on the surface of the squeezing plate 6062.
[0045] The specific usage and function of this embodiment: When the internal temperature of the equipment in the main chassis component 1 rises, the user can start the motor box 507. The motor inside the motor box 507 rotates, and the motor box 507 controls the rotation of the threaded rod B506. The threads on the surface of the threaded rod B506 can control the sliding of the push plate 505. The push plate 505 slides inside the cooling tank 504, and the cooled liquid is pushed from inside the cooling tank 504 into the water supply pipe 502. The heated coolant in the water supply pipe 502 is automatically pushed into the cooling tank 504. The water supply pipe 502 can cool down the temperature inside the main chassis component 1, and the cooling water circulates. The cooling effect is good. When the threaded rod B506 rotates and controls the flow of coolant, the top of the threaded rod B506 controls the rotation of the threaded rod C602 via the gear belt 603. The threads on the surface of the threaded rod C602 push the elastic telescopic rod B604 to slide up and down simultaneously. The water-absorbing cotton tube 605 at the other end of the elastic telescopic rod B604 slides on the surface of the heat-conducting plate 503, which can absorb and clean the water stains generated on the surface of the heat-conducting plate 503. When the water-absorbing cotton tube 605 slides to the extrusion plate 6062, the elastic telescopic rod B604 elastically extends, and the water-absorbing cotton tube 605 rolls into the extrusion plate 6062. 2. The water inside the absorbent cotton cylinder 605 can be squeezed out, and excess water will be discharged from the main body assembly 1 of the chassis through the water conveying plate 6061. When the heat inside the main body assembly 1 of the chassis is too high, the user can rotate the control shaft 303. One end of the control shaft 303 controls the rotation of the threaded rod A301 through the bevel gear assembly 302. The thread on the surface of the threaded rod A301 drives the toothed plate B304 to slide. The toothed plate B304 controls the rotation of the drive shaft 305. During the rotation of the drive shaft 305, the protective plate 306 will deflect. During the deflection of the protective plate 306, the dust filter 307 will be pulled. The dust filter 307 slides and contacts the dust-adhesive roller 403. The dust-adhesive roller 403 can assist in cleaning the surface of the dust filter 307. The winding rod 203 is pulled by the dust filter 307 and rotates, causing the toothed plate A207 to slide and the spring 206 at one end of the toothed plate A207 to retract. At this time, the protective plates 306 on the surface of the connecting plate 201 rotate and open, which can facilitate the entry and exit of external air into and out of the main body component 1 of the chassis and improve heat dissipation. After heat dissipation is completed, the protective plate 306 is controlled to rotate back, the spring 206 rebounds, the winding rod 203 retracts the dust filter 307, and the protective plate 306 rotates to its original position to form a sealing protection.
[0046] The above description is merely an exemplary embodiment of the present invention and is not intended to limit the scope of protection of the present invention, which is determined by the appended claims.
Claims
1. A computer chassis heat dissipation structure, characterized in that, include: The main chassis components include (1), automatic winding mechanism (2), rotating opening mechanism (3), dust cleaning mechanism (4), water cooling circulation mechanism (5), and auxiliary cleaning mechanism (6). The main chassis assembly (1) is a square frame structure; one end of the automatic winding mechanism (2) is inserted into the main chassis assembly (1); the rotating opening mechanism (3) is installed inside the automatic winding mechanism (2); the dust cleaning mechanism (4) is fixedly installed on the surface of the automatic winding mechanism (2) at both ends, and one end of the dust cleaning mechanism (4) is in contact with the rotating opening mechanism (3); one end of the water cooling circulation mechanism (5) is inserted into the main chassis assembly (1); one end of the auxiliary cleaning mechanism (6) is connected to the water cooling circulation mechanism (5).
2. The computer chassis heat dissipation structure according to claim 1, characterized in that: The main chassis component (1) includes: a shell (101) and a fixed connection baffle (102); the shell (101) is a square frame structure; the fixed connection baffle (102) is fixedly installed inside the shell (101).
3. The computer chassis heat dissipation structure according to claim 2, characterized in that: The automatic winding mechanism (2) includes: a connecting plate (201), an outer column (202), a winding rod (203), a fixed support plate (204), a support rod (205), a spring (206), and a driving toothed plate A (207); the connecting plate (201) has a groove inside, and the connecting plate (201) is fastened to the fixed connecting baffle (102) by screws; the outer column (202) is fixedly installed inside the connecting plate (201); the top surface of the winding rod (203) is fixedly provided with... The top of the take-up rod (203) is rotated and inserted into the groove of the connecting plate (201); the fixed support plate (204) is fixedly installed inside the groove of the connecting plate (201); the left and right ends of the support rod (205) are fixedly connected to the two sets of fixed support plates (204); the spring (206) is installed on the surface of the support rod (205); the toothed plate A (207) is slidably installed on the surface of the support rod (205), and one end of the toothed plate A (207) is engaged with the gear at the bottom of the take-up rod (203).
4. The computer chassis heat dissipation structure according to claim 3, characterized in that: The rotating opening mechanism (3) includes: a threaded rod A (301), a bevel gear assembly (302), a control shaft (303), a drive gear plate B (304), a drive shaft (305), a protective plate (306), and a dust filter (307); the left and right ends of the threaded rod A (301) are rotatably connected to the connecting insert plate (201); one end of the bevel gear assembly (302) is fixedly connected to the threaded rod A (301); one end of the control shaft (303) is rotatably inserted into the connecting insert plate (201) and fixedly connected to the other end of the bevel gear assembly (302); the drive shaft (305) is rotatably inserted into the connecting insert plate (201) and fixedly connected to the other end of the bevel gear assembly (302); the drive shaft (306 ...), and the drive shaft (307) is rotatably inserted into the connecting insert plate (201). The toothed plate B (304) is threadedly connected to the threaded rotating rod A (301); a gear is fixedly installed on the bottom surface of the drive shaft (305), and the bottom of the drive shaft (305) is rotated and inserted into the groove of the connecting plate (201), and the gear at the bottom of the drive shaft (305) meshes with the drive toothed plate B (304); one end of the protective plate (306) is fixedly connected to the drive shaft (305); one end of the dust filter (307) is fixedly connected to the protective plate (306), and the other end of the dust filter (307) is slidably inserted into the outer column (202) and connected to the winding rod (203).
5. The computer chassis heat dissipation structure according to claim 3, characterized in that: The dust cleaning mechanism (4) includes: a support frame (401), an elastic telescopic rod A (402), and a dust-adhesive roller (403); the upper and lower ends of the support frame (401) are fixedly connected to the connecting plate (201); one end of the elastic telescopic rod A (402) is fixedly connected to the support frame (401); the upper and lower ends of the dust-adhesive roller (403) are rotatably connected to the other end of the elastic telescopic rod A (402).
6. The computer chassis heat dissipation structure according to claim 2, characterized in that: The water-cooled circulation mechanism (5) includes: an outer plate (501), a water pipe (502), a heat-conducting plate (503), and a cooling box (504); the outer plate (501) is a rectangular parallelepiped structure, and a square groove is provided on the surface of the outer plate (501). One end of the outer plate (501) is connected to the fixed connection baffle (102) by screws; the surface of the water pipe (502) is fixedly connected to the outer plate (501), and cooling water flows inside the water pipe (502); the surface of the heat-conducting plate (503) is fixedly connected to the water pipe (502); the cooling box (504) is fixedly installed on the surface of the outer plate (501), and the upper and lower ends of the cooling box (504) are fixedly connected to the upper and lower ends of the water pipe (502). A cooling plate is provided inside the cooling box (504).
7. The computer chassis heat dissipation structure according to claim 6, characterized in that: The water cooling circulation mechanism (5) further includes: a push plate (505), a threaded rod B (506), and a motor housing (507); the push plate (505) has a threaded hole in the middle and is slidably installed inside the cooling box (504); the bottom of the threaded rod B (506) is rotatably inserted into the cooling box (504) and the surface of the threaded rod B (506) is threadedly connected to the push plate (505); a motor is installed inside the motor housing (507) and the motor housing (507) is fixedly installed on the top of the cooling box (504); the threaded rod B (506) is rotatably inserted into the motor housing (507) and connected to the motor.
8. The computer chassis heat dissipation structure according to claim 7, characterized in that: The auxiliary cleaning mechanism (6) includes: an outer casing (601), a threaded rotating rod C (602), a gear belt (603), an elastic telescopic rod B (604), an absorbent cotton tube (605), and a water removal assembly (606); the outer casing (601) is a cuboid structure with a square groove on its surface, and the outer casing (601) is fixedly installed on the surface of the outer plate (501); a gear is provided at the top of the threaded rotating rod C (602), and the bottom of the threaded rotating rod C (602) is rotatably inserted into the square groove of the outer casing (601); the gear belt (603) The inner side is engaged with the gears at the bottom of the threaded rotating rod B (506) and the threaded rotating rod C (602); one end of the elastic telescopic rod B (604) is slidably inserted into the square groove of the outer box (601) and threadedly connected to the threaded rotating rod C (602); one end of the water-absorbing cotton tube (605) is rotatably connected to the elastic telescopic rod B (604), and the surface of the water-absorbing cotton tube (605) is in contact with the heat-conducting plate (503); the surface of the water-removing component (606) is fixedly connected to the outer plate (501) and the heat-conducting plate (503).
9. The computer chassis heat dissipation structure according to claim 8, characterized in that: The water removal assembly (606) further includes: a water conveying plate (6061), an extrusion plate (6062), and a water filter hole (6063); the water conveying plate (6061) is generally L-shaped, and the surface of the water conveying plate (6061) is fixedly connected to the outer plate (501) and the heat-conducting plate (503); the extrusion plate (6062) is fixedly installed inside the water conveying plate (6061); the water filter hole (6063) is opened on the surface of the extrusion plate (6062).