Software development server heat dissipation cabinet with temperature control mechanism and temperature control method
Through the design of the temperature control mechanism, the use of motor to drive the fan and filter cleaning components, the problems of temperature control and dust entry in the internal heat dissipation cabinet are solved, effective temperature control and air circulation are achieved, and stable operation of the equipment is ensured.
Patent Information
- Application Number
- CN202510774411.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2025-08-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During use, the internal temperature of the existing heat dissipation cabinet cannot be controlled within a constant range, and dust enters when the air is circulating and affects the operation of the equipment.
By setting up a temperature control mechanism, the main fan and auxiliary fan are driven by the motor to achieve active air transportation and circulation, and combined with the filtering component and the cleaning component, air filtration and cleaning are realized to prevent dust from entering.
It realizes effective control of the internal temperature of the cabinet and circulation of air, avoids dust blockage, and ensures the normal operation of the equipment.
Smart Images

Figure CN120568697A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of heat dissipation cabinets, and in particular to a heat dissipation cabinet for a software development server with a temperature control mechanism and a temperature control method. Background Art
[0002] Heat dissipation cabinets are key facilities to ensure the stable operation of electronic equipment. Their design must comprehensively consider factors such as heat dissipation efficiency, energy consumption, space utilization and maintenance costs. They are generally made of cold-rolled steel plates or alloys. They can provide waterproof, dustproof, and electromagnetic interference-proof protection for stored equipment. They are generally divided into server cabinets, network cabinets, console cabinets, etc.
[0003] The patent application with announcement number CN222564106U discloses an existing modular cabinet. The modular cabinet includes: a base plate; a cabinet, the cabinet being fixedly connected to the top of the base plate, movable slots being provided at the top of the cabinet near both sides, and lifting plates being provided inside the two movable slots, a row of threaded holes being provided on the front and back of the lifting plates, two rows of limiting holes being provided on the opposite sides of the two lifting plates, and a top plate being fixedly connected to the top of the two lifting plates. The modular cabinet provided by the utility model can, through this structure, release the restriction on the lifting plates by pulling the movable plates by using two sets of support springs as needed, and then adjust the height of the lifting plates as needed. After the adjustment is completed, it is only necessary to re-insert the fixing bolts into the limiting holes, and seal the front and back of the two lifting plates with sealing plates and bolts to increase the internal space of the cabinet, thereby improving the applicability of the cabinet.
[0004] During the use of existing heat dissipation cabinets, the temperature inside the cabinet will affect the operating status of the equipment installed therein, so a cooling fan is generally installed inside the cabinet to control the temperature inside the cabinet. However, the existing cooling fan can only ensure that the temperature drops. Since the equipment requires a constant temperature for operation, and during the use of existing cabinets, the air inside the cabinet needs to circulate during the heat dissipation process to ensure that the air can be smoothly inhaled and discharged. Since there is a lot of dust in the natural air, a large amount of dust-containing air entering will cause the air inlet to be blocked and affect the operation of the internal equipment.
[0005] Therefore, it is necessary to invent a software development server heat dissipation cabinet with a temperature control mechanism and a temperature control method to solve the above problems. Summary of the Invention
[0006] The purpose of the present invention is to provide a software development server heat dissipation cabinet with a temperature control mechanism and a temperature control method, which actively transports external air into the cabinet and improves the efficiency of the transport, thereby achieving the effect of controlling the temperature inside the cabinet. The air can be filtered during the circulation process to prevent impurities from entering the cabinet and affecting its normal operation, so as to solve the problem in the prior art that the temperature inside the cabinet cannot be controlled within a constant range when in use.
[0007] To achieve the above-mentioned object, the present invention provides the following technical solution: a software development server heat dissipation cabinet with a temperature control mechanism, comprising a cabinet body, grille frames symmetrically installed on both sides of the cabinet body, and both sets of grille frames are connected to the interior of the cabinet body, and a cabinet door is rotatably connected to one side of the cabinet body;
[0008] The air suction filter assembly provided on the top of the cabinet includes an air inlet frame, which is installed on the top of the cabinet, and air inlets are symmetrically opened on the inner wall of the air inlet frame. Annular slide rails are symmetrically installed on the outer side of the air inlet frame, and the annular slide rails are arranged at the edges of the corresponding air inlets;
[0009] The driving assembly provided in the air inlet frame includes a connecting shaft, which is symmetrically connected to the air inlet frame in turn, and the connecting shaft is provided through the corresponding air inlet. An auxiliary fan is sleeved and fixed on the connecting shaft, and the auxiliary fan is provided in the air inlet.
[0010] The power assembly provided in the air inlet frame includes auxiliary ventilation slots, which are symmetrically arranged on the lower side of the inner wall of the air inlet frame and are connected to the interior of the cabinet. An auxiliary fan is rotatably connected to each group of the auxiliary ventilation slots, and a bevel gear rod is installed above the auxiliary fan in each group of the auxiliary ventilation slots.
[0011] The exhaust cleaning assembly arranged in the cabinet includes a reciprocating screw, which is installed on the inner wall of the cabinet. A guide rod is installed on the inner wall of the cabinet on the same side as the reciprocating screw, and the reciprocating screw and the guide rod are also arranged on the other side of the inner wall of the cabinet.
[0012] As a preferred solution of the present invention, the air suction filter assembly further includes a fixing ring, a positioning ring is sleeved and fixed on the fixing ring, and the positioning ring is slidably connected to the corresponding annular slide rail.
[0013] As a preferred solution of the present invention, a connecting tube is provided at the inner center position of each group of the fixed rings, and multiple groups of connecting rods are installed in a ring-shaped distribution between the outer side of the connecting tube and the inner wall of the fixed ring. A cleaning cotton strip is installed on one side of each group of connecting rods, and a filter plate is installed in the air inlet, and one side of the filter plate is in contact with the cleaning cotton strip.
[0014] As a preferred solution of the present invention, the drive assembly also includes a circular gear 1, which is fixed on the connecting shaft in a sleeve manner, and one side of the filter plate is rotatably connected to multiple groups of circular gears 2 in a ring-shaped distribution, and each group of circular gears 2 is engaged with the circular gear 1, and a gear ring is fixedly connected to the inner wall of the connecting cylinder, and the gear ring is engaged with each group of circular gears 2, and the connecting shaft is arranged through the inside of the connecting cylinder, and two groups of bevel gears 1 are sequentially sleeved and fixed on the connecting shaft, and one group of bevel gears 1 is engaged with the corresponding bevel gear rod.
[0015] As a preferred solution of the present invention, the power component also includes a main ventilation slot, which is opened below the inner wall of the air inlet frame and is located at the center of each group of auxiliary ventilation slots. A main fan is installed in the main ventilation slot, and a motor is installed on the top of the air inlet frame, and the output end of the motor is connected to the main fan shaft, and the control of the motor is electrically connected to the background temperature monitoring system.
[0016] As a preferred solution of the present invention, a bevel gear 2 is sleeved and fixed at the shaft connection between the motor and the main fan, a transmission shaft is symmetrically connected to the inner wall of the air inlet frame, and bevel gear 3 is sleeved and fixed on the two groups of transmission shafts in sequence, and the corresponding bevel gears 3 on the two groups of transmission shafts are engaged with bevel gear 2, and the other group of bevel gears 3 is engaged with the corresponding bevel gear 1.
[0017] As a preferred solution of the present invention, the exhaust cleaning assembly also includes a cleaning brush plate, an internal thread block is installed on one side of the cleaning brush plate, and the internal thread block is threadedly connected to the reciprocating screw, and the other side of the cleaning brush plate is fitted with the grille frame, and a guide block is installed on one side of the cleaning brush plate, and the guide block is slidably connected to the guide rod.
[0018] As a preferred solution of the present invention, a sprocket 1 is connected to the upper shaft of the reciprocating screw, a sprocket 2 is connected to the lower shaft of the auxiliary fan in a group of auxiliary ventilation slots, and a chain is installed between the sprocket 1 and the sprocket 2.
[0019] A method for controlling the temperature of a software development server heat dissipation cabinet includes the software development server heat dissipation cabinet having a temperature control mechanism as described above, and the specific processing steps are as follows:
[0020] S1: The motor drives the main fan to rotate, causing bevel gear 2 to drive bevel gear 3 to rotate, thereby rotating the transmission shaft. At the same time, bevel gear 3 can drive bevel gear 1 to rotate, thereby rotating each set of auxiliary fans, so that the outside air can be transported from the outside of the cabinet to the inside;
[0021] S2: When the auxiliary fan in the air inlet is driven to rotate by the connecting shaft, the circular gear 1 is driven to rotate, and the circular gear 2 is driven to rotate the gear ring, so that the connecting cylinder drives each group of cleaning cotton strips through the connecting rod to clean the surface of the filter plate;
[0022] S3: During the rotation of the auxiliary fan in the auxiliary ventilation slot, the sprocket 2 drives the sprocket 1 to rotate through the chain, thereby rotating the reciprocating screw and causing the cleaning brush plate to clean the grille frame.
[0023] In the above technical solution, compared with the prior art, the technical effects and advantages provided by the present invention are as follows:
[0024] By driving the main fan and the auxiliary fan to rotate at the same time through the motor, the outside air is actively taken into the cabinet, and the air inside the cabinet is discharged along the grille frame, so that the air circulation inside the cabinet can be realized, and the circulation speed can be adjusted in real time according to the data of the temperature monitoring system, so as to achieve the effect of temperature control. In this process, the cleaning cotton strips can be moved along the surface of the filter plate, which can not only effectively ensure the filtration of the air when it enters, but also avoid the clogging of the filter plate. The cleaning brush plate can also move up and down during this process to avoid the clogging of the grille frame when exhausting, thereby effectively improving the temperature control effect inside the cabinet. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments described in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.
[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0027] Figure 2 This is a schematic diagram of the cabinet structure of the present invention;
[0028] Figure 3 This is a schematic diagram of the sliced structure of the air inlet frame of the present invention;
[0029] Figure 4 This is a schematic diagram of the cabinet sliced structure of the present invention;
[0030] Figure 5 This is a schematic diagram of the planed structure of the connecting tube of the present invention;
[0031] Figure 6 For the present invention Figure 2 A in the middle is an enlarged structural diagram;
[0032] Figure 7 For the present invention Figure 3 The enlarged structural diagram at B in the middle;
[0033] Figure 8 For the present invention Figure 5 Enlarged structural diagram at point C in the middle.
[0034] Description of reference numerals:
[0035] 001, cabinet body; 101, grille frame; 102, cabinet door; 002, air suction filter assembly; 201, air inlet frame; 202, air inlet; 203, annular slide rail; 204, fixing ring; 205, positioning ring; 206, connecting cylinder; 207, connecting rod; 208, cleaning cotton strip; 209, filter plate; 003, drive assembly; 301, connecting shaft; 302, circular gear 1; 303, circular gear 2; 304, gear ring; 305, auxiliary fan; 30 6. Bevel gear one; 004. Power assembly; 401. Auxiliary ventilation slot; 402. Bevel gear rod; 403. Main ventilation slot; 404. Main fan; 405. Motor; 406. Bevel gear two; 407. Drive shaft; 408. Bevel gear three; 005. Exhaust cleaning assembly; 501. Reciprocating screw; 502. Guide rod; 503. Cleaning brush plate; 504. Internal thread block; 505. Guide block; 506. Sprocket one; 507. Sprocket two; 508. Chain. DETAILED DESCRIPTION
[0036] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0037] The present invention provides Figure 1-8 The software development server heat dissipation cabinet with a temperature control mechanism shown includes a cabinet body 001, with grille frames 101 symmetrically installed on both sides of the cabinet body 001, and both sets of grille frames 101 are connected to the interior of the cabinet body 001, and a cabinet door 102 is rotatably connected to one side of the cabinet body 001;
[0038] The air suction filter assembly 002 provided on the top of the cabinet 001 includes an air inlet frame 201, which is installed on the top of the cabinet 001. Air inlets 202 are symmetrically opened on the inner wall of the air inlet frame 201. Annular slide rails 203 are symmetrically installed on the outer side of the air inlet frame 201, and the annular slide rails 203 are arranged at the edges of the corresponding air inlets 202.
[0039] The air inlet frame 201 can be connected to the outside world through the air inlet 202, so that the outside air can enter the inside of the air inlet frame 201.
[0040] The driving assembly 003 disposed in the air inlet frame 201 includes a connecting shaft 301, which is symmetrically rotated and connected in the air inlet frame 201, and the connecting shaft 301 is arranged to penetrate the corresponding air inlet 202. An auxiliary fan 305 is sleeved and fixed on the connecting shaft 301, and the auxiliary fan 305 is arranged in the air inlet 202;
[0041] Through the rotation of the auxiliary fan 305 , external air can be actively transported into the air inlet frame 201 through the air inlet 202 .
[0042] The power assembly 004 disposed in the air inlet frame 201 includes auxiliary ventilation slots 401, which are symmetrically arranged on the lower inner wall of the air inlet frame 201 and are connected to the interior of the cabinet 001. An auxiliary fan 305 is rotatably connected to each group of auxiliary ventilation slots 401, and a bevel gear rod 402 is installed above the auxiliary fan 305 in each group of auxiliary ventilation slots 401.
[0043] The air inlet frame 201 can be connected to the interior of the cabinet 001 through the auxiliary ventilation slots 401 , and the auxiliary fan 305 can actively transport the air inside the air inlet frame 201 to the cabinet 001 .
[0044] The exhaust cleaning assembly 005 arranged in the cabinet 001 includes a reciprocating screw 501, which is installed on the inner wall of the cabinet 001. A guide rod 502 is installed on the inner wall of the cabinet 001 on the same side as the reciprocating screw 501, and the reciprocating screw 501 and the guide rod 502 are also arranged on the other side of the inner wall of the cabinet 001.
[0045] Furthermore, in the above structure, the air suction filter assembly 002 also includes a fixing ring 204 , on which a positioning ring 205 is sleeved and fixed, and the positioning ring 205 is slidably connected to the corresponding annular slide rail 203 .
[0046] Through the sliding connection between the positioning ring 205 and the annular slide rail 203 , the fixing ring 204 can rotate at a fixed point in the annular slide rail 203 .
[0047] Furthermore, in the above structure, a connecting tube 206 is provided at the inner center position of each group of fixing rings 204, and multiple groups of connecting rods 207 are installed in a ring-shaped distribution between the outer side of the connecting tube 206 and the inner wall of the fixing ring 204. A cleaning cotton strip 208 is installed on one side of each group of connecting rods 207, and a filter plate 209 is installed in the air inlet 202, and one side of the filter plate 209 is in contact with the cleaning cotton strip 208.
[0048] The connecting rod 207 can make the connecting tube 206 and the fixed ring 204 rotate synchronously, and drive the cleaning cotton strip 208 on one side of the connecting rod 207 to move along the filter plate 209, thereby avoiding the filter plate 209 from being blocked, and the filter plate 209 can effectively filter impurities in the outside air to avoid entering the cabinet 001 and affecting the operation of the equipment.
[0049] Furthermore, in the above structure, the driving component 003 also includes a circular gear 1 302, which is sleeved and fixed on the connecting shaft 301, and one side of the filter plate 209 is rotatably connected to multiple groups of circular gears 2 303 in a ring-shaped distribution, and each group of circular gears 2 303 is engaged with the circular gear 1 302, and a gear ring 304 is fixedly connected to the inner wall of the connecting cylinder 206, and the gear ring 304 is engaged with each group of circular gears 2 303, and the connecting shaft 301 is penetrated by the inside of the connecting cylinder 206, and two groups of bevel gears 1 306 are sleeved and fixed on the connecting shaft 301 in sequence, and one group of bevel gears 1 306 is engaged with the corresponding bevel gear rod 402.
[0050] The connecting shaft 301 can drive the circular gear 1 302 to rotate, so that the circular gear 1 302 can simultaneously drive multiple groups of circular gear 2 303 to rotate, and the circular gear 2 303 drives the gear ring 304 to rotate, thereby achieving the effect of the connecting cylinder 206 driving the cleaning cotton strip 208 to rotate, and through the engagement of the bevel gear 1 306 and the bevel gear rod 402, the connecting shaft 301 can drive each group of auxiliary fans 305 to rotate simultaneously during the rotation process.
[0051] Furthermore, in the above structure, the power component 004 also includes a main ventilation slot 403, which is opened below the inner wall of the air inlet frame 201, and the main ventilation slot 403 is located at the center of each group of auxiliary ventilation slots 401. A main fan 404 is installed in the main ventilation slot 403, and a motor 405 is installed on the top of the air inlet frame 201, and the output end of the motor 405 is connected to the shaft of the main fan 404, and the control of the motor 405 is electrically connected to the background temperature monitoring system.
[0052] The motor 405 can drive the main fan 404 to rotate in the main ventilation slot 403, thereby delivering the air in the air inlet frame 201 to the cabinet 001, and the power of the motor 405 can be adjusted in real time according to the background temperature monitoring system, thereby controlling its rotation speed and keeping the temperature inside the cabinet 001 constant.
[0053] Furthermore, in the above structure, a bevel gear 2 406 is sleeved and fixed at the shaft connection between the motor 405 and the main fan 404, and a transmission shaft 407 is symmetrically connected to the inner wall of the air inlet frame 201 for rotation. Bevel gear 3 408 is sleeved and fixed on the two sets of transmission shafts 407 in sequence, and the corresponding bevel gear 3 408 on the two sets of transmission shafts 407 is engaged with the bevel gear 2 406, and the other set of bevel gear 3 408 is engaged with the corresponding bevel gear 1 306.
[0054] Through the meshing of bevel gear 2 406 and bevel gear 3 408, the power of motor 405 can be transmitted to two sets of transmission shafts 407, thereby driving both to rotate simultaneously, and the meshing of one set of bevel gear 3 408 and bevel gear 1 306 can transmit the power of transmission shaft 407 to connecting shaft 301.
[0055] Furthermore, in the above structure, the exhaust cleaning assembly 005 also includes a cleaning brush plate 503, an internal thread block 504 is installed on one side of the cleaning brush plate 503, and the internal thread block 504 is screwed to the reciprocating screw 501, and the other side of the cleaning brush plate 503 is fitted with the grille frame 101, and a guide block 505 is installed on one side of the cleaning brush plate 503, and the guide block 505 is slidably connected to the guide rod 502.
[0056] The rotation of the reciprocating screw 501 can make the internal thread block 504 drive the cleaning brush plate 503 to move back and forth on one side of the grille frame 101 for cleaning, and the cooperation of the guide block 505 and the guide rod 502 can make the cleaning brush plate 503 run more smoothly.
[0057] Furthermore, in the above structure, a sprocket 1 506 is connected to the upper shaft of the reciprocating screw 501 , a sprocket 2 507 is connected to the lower shaft of the auxiliary fan 305 in a group of auxiliary ventilation slots 401 , and a chain 508 is installed between the sprocket 1 506 and the sprocket 2 507 .
[0058] The chain 508 allows the sprocket 2 507 to smoothly transmit power to the sprocket 1 506 , thereby allowing the auxiliary fan 305 in the auxiliary ventilation slot 401 to transmit power to the reciprocating screw 501 .
[0059] A method for controlling the temperature of a software development server heat dissipation cabinet includes the software development server heat dissipation cabinet having a temperature control mechanism as described above, and the specific processing steps are as follows:
[0060] S1: The motor 405 drives the main fan 404 to rotate, causing the bevel gear 2 406 to drive the bevel gear 3 408 to rotate, thereby rotating the transmission shaft 407. At the same time, the bevel gear 3 408 can drive the bevel gear 1 306 to rotate, thereby rotating the auxiliary fans 305, so that the outside air can be transported from the outside of the cabinet 001 to the inside;
[0061] S2: When the auxiliary fan 305 in the air inlet 202 is driven to rotate by the connecting shaft 301, the circular gear 1 302 is driven to rotate, and the circular gear 2 303 drives the gear ring 304 to rotate, so that the connecting cylinder 206 drives each group of cleaning cotton strips 208 through the connecting rod 207 to clean the surface of the filter plate 209;
[0062] S3: During the rotation of the auxiliary fan 305 in the auxiliary ventilation slot 401 , the sprocket 2 507 drives the sprocket 1 506 to rotate via the chain 508 , thereby rotating the reciprocating screw 501 and causing the cleaning brush plate 503 to clean the grille frame 101 .
[0063] like Figure 1-8 As shown, the operation of the motor 405 is controlled by the temperature monitoring system in the background, and the rotation speed of the motor 405 is controlled according to the real-time temperature data, so that the motor 405 can drive the main fan 404 to rotate, and at the same time drive the groups of connecting shafts 301 to rotate, so that the auxiliary fans 305 of each group can rotate, so that the air can be transported into the air inlet frame 201 along the air inlet 202, and enter the cabinet 001 through the main ventilation slot 403 and the groups of auxiliary ventilation slots 401, and finally the original air inside the cabinet 001 is discharged along the grille frame 101, so as to realize the internal air circulation, thereby reducing the operating temperature of the internal equipment, and in this process the filter plate 209 will filter the incoming air to prevent impurities from entering and affecting the operation of the equipment, and the circular gear 1 302 drives the circular gear 2 303 to rotate, so that the gear ring 304 can drive the connecting cylinder 206 to rotate, so that the cleaning cotton strips 2 of each group can be cleaned. 08 Clean the filter plate 209 to avoid clogging of the filter plate 209 and affecting the cleaning of the air intake, and in this process, the cleaning brush plate 503 can move up and down reciprocatingly with the cooperation of the reciprocating screw 501 and the internal thread block 504, so as to realize the cleaning of the grille frame 101, and avoid blockage of air discharge and dust accumulation inside the grille frame 101. Through this structure, air circulation inside the cabinet 001 can be realized, and the circulation speed can be adjusted in real time according to the data of the temperature monitoring system, so as to achieve the effect of temperature control, and in this process, the cleaning cotton strip 208 can move along the surface of the filter plate 209, which can not only effectively ensure the filtration of air when entering, but also avoid clogging of the filter plate 209, and the cleaning brush plate 503 can also move up and down during this process to avoid blockage of the grille frame 101 when exhausting, thereby effectively improving the temperature control effect inside the cabinet 001.
[0064] The above description is merely illustrative of certain exemplary embodiments of the present invention. It goes without saying that those skilled in the art will be able to modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims.
Claims
1. A software development server heat dissipation cabinet with a temperature control mechanism, comprising a cabinet body (001), characterized in that: Grille frames (101) are symmetrically mounted on both sides of the cabinet (001), and both sets of grille frames (101) are connected to the interior of the cabinet (001). A cabinet door (102) is rotatably connected to one side of the cabinet (001); The air suction filter assembly (002) arranged on the top of the cabinet (001) includes an air inlet frame (201), the air inlet frame (201) is installed on the top of the cabinet (001), the air inlet openings (202) are symmetrically opened on the inner wall of the air inlet frame (201), and annular slide rails (203) are symmetrically installed on the outer side of the air inlet frame (201), and the annular slide rails (203) are arranged at the edges of the corresponding air inlets (202); The driving assembly (003) disposed in the air inlet frame (201) includes a connecting shaft (301), the connecting shaft (301) is symmetrically rotated and connected in the air inlet frame (201), and the connecting shaft (301) and the corresponding air inlet (202) are arranged to penetrate each other, an auxiliary fan (305) is sleeved and fixed on the connecting shaft (301), and the auxiliary fan (305) is arranged in the air inlet (202). The power assembly (004) disposed in the air inlet frame (201) includes auxiliary ventilation slots (401), the auxiliary ventilation slots (401) being symmetrically arranged below the inner wall of the air inlet frame (201), and the auxiliary ventilation slots (401) being connected to the interior of the cabinet (001), each group of the auxiliary ventilation slots (401) being rotatably connected to an auxiliary fan (305), and a bevel gear rod (402) being installed above the auxiliary fan (305) in each group of the auxiliary ventilation slots (401); The exhaust cleaning assembly (005) arranged in the cabinet (001) includes a reciprocating screw (501), the reciprocating screw (501) is installed on the inner wall of the cabinet (001), a guide rod (502) is installed on the inner wall of the cabinet (001) on the same side as the reciprocating screw (501), and the reciprocating screw (501) and the guide rod (502) are also arranged on the other side of the inner wall of the cabinet (001).
2. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 1, characterized in that: The air suction filter assembly (002) further comprises a fixing ring (204), a positioning ring (205) being sleeved and fixed on the fixing ring (204), and the positioning ring (205) is slidably connected to the corresponding annular slide rail (203).
3. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 2, characterized in that: A connecting tube (206) is provided at the inner center position of each group of the fixing rings (204), and multiple groups of connecting rods (207) are installed in a circular arrangement between the outer side of the connecting tube (206) and the inner wall of the fixing ring (204), and a cleaning cotton strip (208) is installed on one side of each group of the connecting rods (207). A filter plate (209) is installed in the air inlet (202), and one side of the filter plate (209) is in contact with the cleaning cotton strip (208).
4. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 3, characterized in that: The driving assembly (003) further comprises a circular gear 1 (302), wherein the circular gear 1 (302) is sleeved and fixed on the connecting shaft (301), and one side of the filter plate (209) is rotatably connected to a plurality of groups of circular gear 2 (303) in an annular distribution, and each group of circular gear 2 (303) is meshed with the circular gear 1 (302), and a gear ring (304) is fixedly connected to the inner wall of the connecting cylinder (206), and the gear ring (304) is meshed with each group of circular gear 2 (303), and the connecting shaft (301) is provided through the interior of the connecting cylinder (206), and two groups of bevel gear 1 (306) are sleeved and fixed on the connecting shaft (301) in sequence, and one group of bevel gear 1 (306) is meshed with the corresponding bevel gear rod (402).
5. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 1, characterized in that: The power assembly (004) further comprises a main ventilation slot (403), the main ventilation slot (403) being provided below the inner wall of the air inlet frame (201), and the main ventilation slot (403) being located at the center of each group of auxiliary ventilation slots (401), a main fan (404) being installed in the main ventilation slot (403), a motor (405) being installed on the top of the air inlet frame (201), and an output end of the motor (405) being connected to a shaft of the main fan (404), and a control of the motor (405) being electrically connected to a temperature monitoring system in a background.
6. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 5, characterized in that: A bevel gear 2 (406) is sleeved and fixed at the shaft connection between the motor (405) and the main fan (404), and a transmission shaft (407) is symmetrically connected to the inner wall of the air inlet frame (201). Bevel gear 3 (408) is sleeved and fixed on the two groups of transmission shafts (407) in sequence, and the corresponding bevel gear 3 (408) on the two groups of transmission shafts (407) is meshed with the bevel gear 2 (406), and the other group of bevel gear 3 (408) is meshed with the corresponding bevel gear 1 (306).
7. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 1, characterized in that: The exhaust cleaning assembly (005) further comprises a cleaning brush plate (503), one side of the cleaning brush plate (503) is provided with an internal thread block (504), and the internal thread block (504) is screwed to the reciprocating screw (501), and the other side of the cleaning brush plate (503) is fitted to the grille frame (101), one side of the cleaning brush plate (503) is provided with a guide block (505), and the guide block (505) is slidably connected to the guide rod (502).
8. The software development server heat dissipation cabinet with a temperature control mechanism according to claim 1, characterized in that: A sprocket wheel 1 (506) is connected to the upper shaft of the reciprocating screw (501), a sprocket wheel 2 (507) is connected to the lower shaft of the auxiliary fan (305) in the auxiliary ventilation slot (401), and a chain (508) is installed between the sprocket wheel 1 (506) and the sprocket wheel 2 (507).
9. A method for controlling the temperature of a software development server heat dissipation cabinet, comprising the software development server heat dissipation cabinet having a temperature control mechanism according to any one of claims 1 to 8, characterized in that: The processing steps are as follows: S1: The main fan (404) is driven to rotate by the motor (405), so that the bevel gear 2 (406) drives the bevel gear 3 (408) to rotate, thereby rotating the transmission shaft (407). At the same time, the bevel gear 3 (408) can drive the bevel gear 1 (306) to rotate, thereby rotating each group of auxiliary fans (305), so that the outside air can be transported from the outside of the cabinet (001) to the inside thereof; S2: When the auxiliary fan (305) in the air inlet (202) is driven to rotate by the connecting shaft (301), the circular gear 1 (302) is driven to rotate, and the gear ring (304) is driven to rotate by the circular gear 2 (303), so that the connecting cylinder (206) drives each group of cleaning cotton strips (208) to clean the surface of the filter plate (209) through the connecting rod (207); S3: During the rotation of the auxiliary fan (305) in the auxiliary ventilation slot (401), the sprocket 2 (507) drives the sprocket 1 (506) to rotate via the chain (508), thereby rotating the reciprocating screw (501) and causing the cleaning brush plate (503) to clean the grille frame (101).
Citation Information
Patent Citations
Modularized cabinet
CN222564106U
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