Computer network communication cabinet

By introducing reciprocating components and monitoring components into the computer network communication cabinet, multi-position heat dissipation control of the cooling fan is realized, solving the problem of insufficient heat dissipation in a single position, and improving the heat dissipation efficiency and management convenience of the equipment.

CN120264672APending Publication Date: 2025-07-04周涛
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Patent Information

Application Number
CN202510174686.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-18
Publication Date
2025-07-04

AI Technical Summary

Technical Problem

In the existing computer network communication cabinet, the cooling fan can only dissipate heat from a single location, resulting in some devices being unable to completely dissipate heat, reducing the heat dissipation effect.

Method used

The reciprocating components and monitoring components are used to drive the cooling fan back and forth through a dual-axis motor to move up and down, and the temperature sensor is used to detect the equipment temperature, control the fan to stop at a high temperature position for heat dissipation, and combine the adjustment components to ensure that the fan stops accurately in the equipment position.

Benefits of technology

It improves the heat dissipation effect of the network communication cabinet, ensures that all equipment can effectively dissipate heat, prevent dust from entering, extends the service life of electrical components, and improves the practicality of equipment management.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a computer network communication cabinet, and belongs to the technical field of communication cabinets, the computer network communication cabinet comprises a cabinet body, a rack is fixedly connected in the cabinet body, a plurality of uniformly distributed placing plates are arranged in the rack, cooling fans are arranged on both sides of the outer surface of the cabinet body, and a cabinet door is hinged to the other side of the outer surface of the cabinet body. A reciprocating assembly is arranged between the cabinet body and the cooling fan, the reciprocating assembly comprises first through grooves formed in the two sides of the outer surface of the cabinet body, the cooling fan is slidably connected with the interior of the first through grooves, first sliding grooves are formed in the two sides of the inner wall of each first through groove, and sliding rods are slidably connected into the first sliding grooves. By arranging the reciprocating assembly, the first double-shaft motor is firstly started to drive the two rotating shafts to rotate, so that the cooling fans on the two sides are driven to reciprocate up and down at the same time, the cooling range of the cooling fans on the two sides is increased, and the cooling effect of the network communication cabinet on internal network equipment is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of communication cabinets, and more specifically, to a computer network communication cabinet. Background Art

[0002] A computer network communication cabinet, also known as a network cabinet, is a device specifically used to store, protect, and manage network devices. It is usually made of metal with a certain mechanical strength, protection, and sealing to ensure the safety and ease of use of the devices. The structure of the network cabinet mainly includes two parts: the cabinet and the rack. The cabinet refers to the entire outer shell, which usually has some fixed devices inside, such as power sockets, data line management slots, fans, etc., to support the installation and management of the devices. The rack refers to the adjustable support frame inside the cabinet, which usually has the characteristics of being movable back and forth, adjustable in height, and variable in depth. By using the rack, devices of different sizes can be neatly arranged inside the cabinet, thus achieving a more unified, beautiful, and convenient management effect.

[0003] The computer network communication cabinet is a device for storing, protecting, and managing network devices. When the network devices stored inside are working, they will emit a large amount of heat, which will affect the normal use of the network devices inside. Therefore, a cooling fan is set on one side of the cabinet to dissipate heat from the internal network devices, thus ensuring the normal use of the network devices. However, the existing cooling fans in the network communication cabinet can only dissipate heat from a single position to the network devices stored in the network communication cabinet. Since there are many network devices placed inside the network communication cabinet, when dissipating heat from a single position to the network devices, some network devices cannot be fully cooled, reducing the heat dissipation effect of the network communication cabinet. Summary of the Invention

[0004] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide a computer network communication cabinet.

[0005] To solve the above problems, the present invention adopts the following technical solutions.

[0006] A computer network communication cabinet, including a cabinet body, a rack is fixedly connected inside the cabinet body, a plurality of uniformly distributed placement plates are arranged inside the rack, cooling fans are arranged on both sides of the outer surface of the cabinet body, a cabinet door is hinged on the other side of the outer surface of the cabinet body, and a reciprocating component is arranged between the cabinet body and the cooling fans;

[0007] The reciprocating component includes first through grooves opened on both sides of the outer surface of the cabinet body, and the cooling fans are slidably connected to the inside of the first through grooves. First sliding grooves are opened on both sides of the inner wall of the first through grooves, sliding rods are slidably connected to the inside of the first sliding grooves, and the sliding rods are fixedly connected to both sides of the cooling fans. Reciprocating lead screws are rotatably connected to the inside of the first sliding grooves, and the reciprocating lead screws penetrate through the sliding rods and are threadedly connected to the sliding rods.

[0008] Further, two heat dissipation fans are provided. Both sides of the upper surface of the cabinet body are fixedly connected with fixing plates, and the two fixing plates are respectively located directly above the two heat dissipation fans. A first cavity is provided in the middle position of each of the two fixing plates. A first double-shaft motor is fixedly connected to the middle position of the upper surface of the cabinet body. Output ends of the first double-shaft motor are fixedly connected with rotating shafts, and one ends of the two rotating shafts respectively penetrate through the two first cavities. First bevel gears are fixedly connected to the outer circumferential surfaces of the two rotating shafts inside the first cavities. Second cavities are provided on both sides of the first cavities inside the two fixing plates. Second bevel gears are meshed and connected to both sides of the outer circumferential surfaces of the two first bevel gears. A first straight rod is fixedly connected to one side of the outer surface of each of the four second bevel gears, and one ends of the four first straight rods respectively penetrate through the second cavities. Third bevel gears are fixedly connected to the outer circumferential surfaces of the four first straight rods inside the second cavities. Upper ends of the four reciprocating lead screws extend into the second cavities and are fixedly connected with fourth bevel gears, and the four third bevel gears are respectively meshed and connected with the four fourth bevel gears.

[0009] Further, telescopic curtains are fixedly connected to the upper and lower surfaces of the two heat dissipation fans. The other ends of the four telescopic curtains are respectively fixedly connected to the upper and lower ends of the inner walls of the two first through grooves, and both sides of the four telescopic curtains extend into the first sliding grooves.

[0010] Further, stabilizing blocks are fixedly connected between the first double-shaft motor and the two fixing plates on the upper surface of the cabinet body. The two rotating shafts respectively penetrate through the two stabilizing blocks, and the rotating shafts are rotatably connected with the stabilizing blocks.

[0011] Further, a monitoring component is arranged inside the cabinet body. The monitoring component includes a single-chip microcomputer fixedly connected to one side of the lower end of the inner wall of the cabinet body close to the frame, a controller fixedly connected to one side of the lower end of the inner wall of the cabinet body close to the single-chip microcomputer, and the controller is electrically connected with the first double-shaft motor and the single-chip microcomputer. Temperature sensors are fixedly connected to the upper surfaces of the placing plates.

[0012] Further, a first installation groove is formed on one side of the inner wall of the cabinet close to the single-chip microcomputer, and the first installation groove communicates with the first sliding groove on one side. A fixing block is fixedly connected to the middle position on the outer surface of one side of the sliding rod, and the fixing block is slidably connected to the first installation groove. A plurality of first installation blocks are arranged inside the first installation groove, and the number of the first installation blocks corresponds to the number of temperature sensors. A second installation groove is formed at one end of the outer surface of the first installation block close to the fixing block. A first sliding plate is slidably connected to the inside of the second installation groove. A conical block is fixedly connected to one side of the outer surface of the first sliding plate close to the fixing block. An electric positive pole is fixedly connected to one side of the outer surface of the first sliding plate away from the conical block. An electric negative pole is arranged on one side of the inner wall of the second installation groove away from the first sliding plate, and both the electric positive pole and the electric negative pole are electrically connected to the single-chip microcomputer. A spring is arranged on one side of the outer surface of the first sliding plate away from the conical block.

[0013] Further, a conversion component is arranged on the outer surface of the first sliding plate. Second sliding grooves are formed on both the upper and lower ends of the inner wall of the second installation groove close to the first sliding plate. First round rods are fixedly connected to both the upper and lower surfaces of the first sliding plate, and the two first round rods are respectively slidably connected to the two second sliding grooves. A first installation plate is fixedly connected to one side of the outer surface of the first installation block close to the two second sliding grooves. Third sliding grooves are formed on one side of the inner walls of the two second sliding grooves, and both the two third sliding grooves extend into the first installation plate. Second sliding plates are slidably connected to the inside of the two third sliding grooves. A first connection groove is formed at a position away from the first round rod between the two third sliding grooves, and a first connection plate is slidably connected to the inside of the first connection groove. Both ends of the first connection plate are fixedly connected to the two second sliding plates.

[0014] Further, a moving component is arranged at a position away from the first sliding plate inside the second installation groove. The moving component includes a third sliding plate slidably connected to a position inside the second installation groove away from the first sliding plate. The electric negative pole is fixedly connected to one side of the outer surface of the third sliding plate close to the first sliding plate, and the spring is located between the first sliding plate and the third sliding plate. Fourth sliding grooves are formed on both the upper and lower ends of the inner wall of the second installation groove close to the third sliding plate. Third round rods are fixedly connected to both the upper and lower surfaces of the third sliding plate, and the third round rods slide inside the fourth sliding grooves. A second installation plate is fixedly connected to one side of the outer surface of the first installation block close to the two fourth sliding grooves. Fifth sliding grooves are formed on one side of the inner walls of the two fourth sliding grooves, and both the two fifth sliding grooves extend into the second installation plate. Fourth sliding plates are slidably connected to the inside of the two fifth sliding grooves. A second connection groove is formed at a position away from the third round rod between the two fifth sliding grooves. A second connection plate is slidably connected to the inside of the second connection groove. Both ends of the second connection plate are respectively fixedly connected to the two fourth sliding plates.

[0015] Furthermore, a second through groove is formed on one side of the outer surface of the first connecting plate, and a third through groove is formed on one side of the outer surface of the second connecting plate. A second double-shaft motor is fixedly connected between the first mounting plate and the second mounting plate. The output ends of the second double-shaft motor respectively extend into the first connecting groove and the second connecting groove, and are fixedly connected with turntables. On the outer surfaces of the two turntables, second round rods are fixedly connected to the sides far away from the second double-shaft motor, and the positions of the two second round rods are away from each other. The two second round rods are respectively slidably connected to the interiors of the second through groove and the third through groove.

[0016] Furthermore, an adjusting assembly is arranged between the first mounting block and the first mounting groove. The adjusting assembly includes two sliding rods fixedly connected to the interior of the first mounting groove, and both of the two sliding rods penetrate through the first mounting block and are slidably connected with the first mounting block. On the sides of the outer circular surfaces of the two sliding rods close to each other, tooth grooves are formed. Inside the first mounting block, a third mounting groove is formed between the two sliding rods. A circular rotating block is rotatably connected to the interior of the third mounting groove. On one side of the outer surface of the circular rotating block, two fourth through grooves are formed. On both sides of the inner wall of the third mounting groove close to the tooth grooves, sixth sliding grooves are formed. Tooth plates are slidably connected to the interiors of the two sixth sliding grooves. U-shaped rods are slidably connected to the interiors of the two fourth through grooves, and both ends of the two U-shaped rods extend into the sixth sliding grooves and are fixedly connected with the tooth plates. A knob penetrating through the first mounting block is fixedly connected to the central position of one side of the outer surface of the circular rotating block.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0018] (1) In this solution, by arranging the reciprocating assembly, first, the first double-shaft motor is started to drive the two rotating shafts to rotate, thereby driving the heat dissipation fans on both sides to move up and down reciprocally at the same time, further increasing the heat dissipation range of the heat dissipation fans on both sides, improving the heat dissipation effect of the network communication cabinet on the internal network devices, and through the telescopic curtain, dust and sundries can be prevented from entering the cabinet body through the first through groove, affecting the normal use of the network devices in the cabinet body, and ensuring the use effect of the network communication cabinet.

[0019] (2) In this solution, by arranging the monitoring assembly, the heat emitted by the network devices placed on the placement plate is detected by the temperature sensors. When the temperature detected by a certain temperature sensor is much higher than the temperatures detected by other temperature sensors, then the first mounting block corresponding to this temperature sensor is started, and then the fixing block is driven to slide in the first mounting groove through the sliding rod. When the fixing block moves to the position of the corresponding first mounting block, it will drive the positive electrode and the negative electrode to contact each other, thereby stopping the heat dissipation fan at the position of the network device with a higher temperature and dissipating heat from the network device at this position, improving the heat dissipation effect of the reciprocating assembly on the position with a higher temperature, and thus improving the overall heat dissipation effect of the reciprocating assembly.

[0020] (3) In this solution, by setting the adjustment component, turning the knob to the right drives the two ratchet plates to move away from the ratchet grooves simultaneously, separating the ratchet plates from the ratchet grooves, releasing the fixed connection between the first mounting block and the two sliding rods, and then manually driving the first mounting block to slide on the two sliding rods to adjust the position of the first mounting block, so that the first mounting block can be adjusted according to the position where the placement plate moves. Then, turning the knob to the left drives the two ratchet plates to snap into the ratchet grooves, fixing the first mounting block to the two sliding rods, so that the cooling fan can be accurately stopped at the position of the network device above the corresponding placement plate, improving the heat dissipation effect of the cooling fan on the network devices on the placement plates at different positions, and thus improving the practicality of the monitoring component. Description of the Drawings

[0021] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0022] Figure 2 It is a schematic diagram of the overall unfolded structure of the present invention;

[0023] Figure 3 It is a schematic cross-sectional structure diagram of the reciprocating component of the present invention;

[0024] Figure 4 It is of the present invention Figure 3 The enlarged structure diagram of A in it;

[0025] Figure 5 It is a schematic diagram of the monitoring component structure of the present invention;

[0026] Figure 6 It is a schematic cross-sectional structure diagram of the monitoring component of the present invention;

[0027] Figure 7 It is of the present invention Figure 6 The enlarged structure diagram of B in it;

[0028] Figure 8 It is a schematic cross-sectional structure diagram of the conversion component of the present invention;

[0029] Figure 9 It is a schematic cross-sectional structure diagram of the moving component of the present invention;

[0030] Figure 10 It is a schematic cross-sectional structure diagram of the adjustment component of the present invention;

[0031] Figure 11 It is of the present invention Figure 10 The enlarged structure diagram of C in it.

[0032] Explanation of the reference numerals in the drawings:

[0033] 1, cabinet body; 2, cabinet door; 3, cooling fan;

[0034] 4. Reciprocating component; 41. First through groove; 42. First sliding groove; 43. Sliding rod; 44. Reciprocating lead screw; 45. Telescopic curtain; 46. Fixed plate; 47. First double-shaft motor; 48. First cavity; 49. Rotating shaft; 410. First bevel gear; 411. Second cavity; 412. Second bevel gear; 413. First straight rod; 414. Third bevel gear; 415. Fourth bevel gear; 416. Stabilizing block;

[0035] 5. Monitoring component; 51. Temperature sensor; 52. Single-chip microcomputer; 53. Controller; 54. First installation groove; 55. First installation block; 56. Fixed block; 57. Second installation groove; 58. First sliding plate; 59. Tapered block; 510. Electric positive pole; 511. Electric negative pole; 512. Spring;

[0036] 6. Conversion component; 61. Second sliding groove; 62. First round rod; 63. First installation plate; 64. Third sliding groove; 65. Second sliding plate; 66. First connection groove; 67. First connecting plate; 68. Second through groove; 69. Second double-shaft motor; 610. Turntable; 611. Second round rod;

[0037] 7. Moving component; 71. Third sliding plate; 72. Fourth sliding groove; 73. Third round rod; 74. Second installation plate; 75. Fifth sliding groove; 76. Fourth sliding plate; 77. Second connection groove; 78. Second connecting plate; 79. Third through groove;

[0038] 8. Adjusting component; 81. Slide bar; 82. Tooth slot; 83. Third installation groove; 84. Sixth sliding groove; 85. Tooth plate; 86. U-shaped rod; 87. Circular rotating block; 88. Fourth through groove; 89. Knob;

[0039] 9. Frame; 10. Placing plate. Detailed implementation manners

[0040] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention; obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0041] Please refer to Figures 1 to 11 , a computer network communication cabinet, including a cabinet body 1, a frame 9 is fixedly connected inside the cabinet body 1, a plurality of uniformly distributed placing plates 10 are arranged inside the frame 9, heat dissipation fans 3 are arranged on both sides of the outer surface of the cabinet body 1, a cabinet door 2 is hinged on the other side of the outer surface of the cabinet body 1, and a reciprocating component 4 is arranged between the cabinet body 1 and the heat dissipation fans 3;

[0042] The reciprocating component 4 includes a first through groove 41 opened on both sides of the outer surface of the cabinet body 1, and the heat dissipation fan 3 is slidably connected to the inside of the first through groove 41. Both sides of the inner wall of the first through groove 41 are provided with first sliding grooves 42. Sliding rods 43 are slidably connected to the inside of the first sliding grooves 42, and the sliding rods 43 are fixedly connected to both sides of the heat dissipation fan 3. Reciprocating lead screws 44 are rotatably connected to the inside of the first sliding grooves 42, and the reciprocating lead screws 44 penetrate through the sliding rods 43 and are threadedly connected to the sliding rods 43.

[0043] As Figure 2 、 Figure 3 、 Figure 4 As shown in the figure, two heat dissipation fans 3 are provided. Fixed plates 46 are fixedly connected to both sides of the upper surface of the cabinet body 1, and the two fixed plates 46 are respectively located directly above the two heat dissipation fans 3. First cavities 48 are opened at the middle positions inside the two fixed plates 46. A first double-shaft motor 47 is fixedly connected to the middle position of the upper surface of the cabinet body 1. Output ends of the first double-shaft motor 47 are fixedly connected with rotating shafts 49, and one ends of the two rotating shafts 49 respectively penetrate through the two first cavities 48. First bevel gears 410 are fixedly connected to the outer circumferential surfaces of the two rotating shafts 49 inside the first cavities 48. Second cavities 411 are opened on both sides of the first cavities 48 inside the two fixed plates 46. Second bevel gears 412 are meshed and connected to both sides of the outer circumferential surfaces of the two first bevel gears 410. First straight rods 413 are fixedly connected to one sides of the outer surfaces of the four second bevel gears 412, and one ends of the four first straight rods 413 respectively penetrate through the second cavities 411. Third bevel gears 414 are fixedly connected to the outer circumferential surfaces of the four first straight rods 413 inside the second cavities 411. Upper ends of the four reciprocating lead screws 44 extend into the second cavities 411 and are fixedly connected with fourth bevel gears 415, and the four third bevel gears 414 are respectively meshed and connected to the four fourth bevel gears 415.

[0044] As Figure 2 、 Figure 3 As shown in the figure, telescopic shielding curtains 45 are fixedly connected to the upper surfaces and lower surfaces of the two heat dissipation fans 3. The other ends of the four telescopic shielding curtains 45 are respectively fixedly connected to the upper ends and lower ends of the inner walls of the two first through grooves 41, and both sides of the four telescopic shielding curtains 45 extend into the first sliding grooves 42.

[0045] As Figure 3 As shown in the figure, stabilizing blocks 416 are fixedly connected between the first double-shaft motor 47 and the two fixed plates 46 on the upper surface of the cabinet body 1. The two rotating shafts 49 respectively penetrate through the two stabilizing blocks 416, and the rotating shafts 49 are rotatably connected to the stabilizing blocks 416.

[0046] In use, first open the cabinet door 2 through the handle groove, then place the network device on the placement board 10 inside the cabinet body 1, and the placement board 10 can move within the rack 9, so that the distance between the placement boards 10 can be adjusted according to the height of the network device, so that the network communication cabinet can better place various network devices. Then, use the cooling fan 3 to cool the network devices operating in the network communication cabinet.

[0047] However, the cooling fan 3 cools the network devices from one position, and some network devices cannot be fully cooled, reducing the cooling effect of the network communication cabinet. Therefore, a reciprocating component 4 is set up. First, start the first double-shaft motor 47 to drive the two rotating shafts 49 to rotate, and at the same time drive the first bevel gear 410 to rotate in the first cavity 48, thereby driving the two second bevel gears 412 to rotate. Then, drive the third bevel gear 414 to rotate in the second cavity 411 through the first straight rod 413, thereby driving the fourth bevel gear 415 to rotate, and at the same time drive the reciprocating lead screw 44 to rotate, thereby driving the sliding rod 43 to reciprocate up and down in the first chute 42, and then drive the cooling fan 3 to reciprocate up and down in the first through groove 41, so that the cooling fans 3 on both sides move up and down reciprocally at the same time, thereby increasing the cooling range of the cooling fans 3 on both sides and improving the cooling effect of the network communication cabinet on the internal network devices. Then, through the telescopic curtain 45, it expands and contracts as the cooling fan 3 moves up and down, thereby blocking the position in the first through groove 41 except for the cooling fan 3, preventing dust and sundries from entering the cabinet body 1 through the first through groove 41 and affecting the normal use of the network devices in the cabinet body 1, ensuring the use effect of the network communication cabinet. And the two rotating shafts 49 respectively penetrate through the two stabilizing blocks 416 and rotate in the stabilizing blocks 416, improving the rotation stability of the rotating shafts 49, thereby improving the operation stability of the reciprocating component 4.

[0048] As Figure 3 、 Figure 5 、 Figure 6 、 Figure 7 As shown in the figures, a monitoring component 5 is arranged inside the cabinet body 1. The monitoring component 5 includes a single-chip microcomputer 52 fixedly connected to one side of the lower end of the inner wall of the cabinet body 1 close to the rack 9, and a controller 53 fixedly connected to one side of the lower end of the inner wall of the cabinet body 1 close to the single-chip microcomputer 52. And the controller 53 is electrically connected to the first double-shaft motor 47 and the single-chip microcomputer 52. Temperature sensors 51 are fixedly connected to the upper surfaces of the placement boards 10.

[0049] As Figure 6 、 Figure 7As shown in the figure, a first installation groove 54 is opened on one side of the inner wall of the cabinet body 1 near the single-chip microcomputer 52, and the first installation groove 54 communicates with the first sliding groove 42 on one side. A fixing block 56 is fixedly connected to the middle position on the outer surface of one side of the sliding rod 43, and the fixing block 56 is slidably connected to the first installation groove 54. A plurality of first installation blocks 55 are arranged inside the first installation groove 54, and the number of the first installation blocks 55 corresponds to the number of temperature sensors 51. A second installation groove 57 is opened at one end of the outer surface of the first installation block 55 close to the fixing block 56. A first sliding plate 58 is slidably connected to the inside of the second installation groove 57. A conical block 59 is fixedly connected to one side of the outer surface of the first sliding plate 58 close to the fixing block 56. An electrical positive pole 510 is fixedly connected to one side of the outer surface of the first sliding plate 58 far from the conical block 59. An electrical negative pole 511 is arranged on one side of the inner wall of the second installation groove 57 far from the first sliding plate 58, and both the electrical positive pole 510 and the electrical negative pole 511 are electrically connected to the single-chip microcomputer 52. A spring 512 is arranged on one side of the outer surface of the first sliding plate 58 far from the conical block 59.

[0050] In the above embodiments, by starting the first dual-axis motor 47 to drive the two rotating shafts 49 to rotate, the heat dissipation fan 3 is driven to move up and down reciprocally, increasing the heat dissipation range of the heat dissipation fan 3 and improving the heat dissipation effect of the network communication cabinet on the internal network devices. However, due to the different types of network devices, the heat dissipated by various network devices during operation is different, resulting in a poor heat dissipation effect of the reciprocating assembly 4 on the network devices at some positions and reducing the overall heat dissipation effect of the reciprocating assembly 4. Therefore, the monitoring assembly 5 is provided. Through the temperature sensors 51 on each placement board 10, the heat dissipated by the network devices placed on the placement board 10 is detected, and then the detection signal is transmitted into the single-chip microcomputer 52 for processing the detection signal, and then the processed signal is transmitted to the controller 53. When the temperature detected by a certain temperature sensor 51 is much higher than the temperatures detected by other temperature sensors 51, the first mounting block 55 corresponding to this temperature sensor 51 is started. While the heat dissipation fan 3 is driven to move up and down by the sliding rod 43 on one side, the fixed block 56 is driven to slide in the first mounting groove 54. When the fixed block 56 moves to the position of the corresponding first mounting block 55, it will push the tapered block 59 to move into the second mounting groove 57, and at the same time push the first slide plate 58 to move, thereby pushing the electrical positive electrode 510 towards the electrical negative electrode 511, making the electrical positive electrode 510 contact the electrical negative electrode 511. Then the contact signal is transmitted into the single-chip microcomputer 52 for processing the detection signal, and then the processed signal is transmitted to the controller 53. Then, the controller 53 controls the first dual-axis motor 47 to stop, so that the heat dissipation fan 3 stops at the position of the network device with a higher temperature to dissipate heat from the network device at this position, improving the heat dissipation effect of the reciprocating assembly 4 on the position with a higher temperature, thereby improving the overall heat dissipation effect of the reciprocating assembly 4. And the spring 512 can facilitate the separation of the electrical positive electrode 510 and the electrical negative electrode 511.

[0051] Such as Figure 7 , Figure 8 , Figure 9As shown, a conversion component 6 is provided on the outer surface of the first skateboard 58. At both upper and lower ends of the inner wall of the second installation groove 57, second sliding grooves 61 are provided on one side close to the first skateboard 58. First round rods 62 are fixedly connected to both the upper surface and the lower surface of the first skateboard 58, and the two first round rods 62 are respectively slidably connected to the two second sliding grooves 61. On one side of the outer surface of the first installation block 55 close to the two second sliding grooves 61, a first installation plate 63 is fixedly connected. On one side of the inner wall of each of the two second sliding grooves 61, a third sliding groove 64 is provided, and both of the two third sliding grooves 64 extend into the first installation plate 63. Second skateboards 65 are slidably connected inside the two third sliding grooves 64. A first connection groove 66 is jointly provided between the two third sliding grooves 64 at a position far from the first round rod 62, and a first connection plate 67 is slidably connected inside the first connection groove 66, and both ends of the first connection plate 67 are fixedly connected to the two second skateboards 65.

[0052] As Figure 7 , Figure 8 , Figure 9 As shown, a moving component 7 is provided at a position in the second installation groove 57 far from the first skateboard 58. The moving component 7 includes a third skateboard 71 slidably connected to a position in the second installation groove 57 far from the first skateboard 58. The negative electrode 511 is fixedly connected to one side of the outer surface of the third skateboard 71 close to the first skateboard 58, and the spring 512 is located between the first skateboard 58 and the third skateboard 71. At both upper and lower ends of the inner wall of the second installation groove 57, fourth sliding grooves 72 are provided on one side close to the third skateboard 71. Third round rods 73 are fixedly connected to both the upper surface and the lower surface of the third skateboard 71, and the third round rods 73 slide inside the fourth sliding grooves 72. On one side of the outer surface of the first installation block 55 close to the two fourth sliding grooves 72, a second installation plate 74 is fixedly connected. On one side of the inner wall of each of the two fourth sliding grooves 72, a fifth sliding groove 75 is provided, and both of the two fifth sliding grooves 75 extend into the second installation plate 74. Fourth skateboards 76 are slidably connected inside the two fifth sliding grooves 75. A second connection groove 77 is jointly provided between the two fifth sliding grooves 75 at a position far from the third round rod 73. A second connection plate 78 is slidably connected inside the second connection groove 77, and both ends of the second connection plate 78 are fixedly connected to the two fourth skateboards 76.

[0053] As Figure 7 , Figure 8 , Figure 9As shown, a second through groove 68 is formed on one side of the outer surface of the first connecting plate 67, and a third through groove 79 is formed on one side of the outer surface of the second connecting plate 78. A second double-shaft motor 69 is fixedly connected between the first mounting plate 63 and the second mounting plate 74. The output ends of the second double-shaft motor 69 respectively extend into the first connecting groove 66 and the second connecting groove 77 and are fixedly connected with turntables 610. On the outer sides of the outer surfaces of the two turntables 610 away from the second double-shaft motor 69, second round rods 611 are fixedly connected, and the positions of the two second round rods 611 are away from each other. The two second round rods 611 are respectively slidably connected with the inside of the second through groove 68 and the third through groove 79.

[0054] In the above embodiment, the heat emitted by the network device placed on the placing plate 10 is detected by the temperature sensor 51, and then the first mounting block 55 corresponding to the temperature sensor 51 is started. The sliding rod 43 drives the fixing block 56 to slide in the first mounting groove 54, so as to drive the electric positive electrode 510 to move towards the electric negative electrode 511, so that the electric positive electrode 510 is in contact with the electric negative electrode 511. The cooling fan 3 is placed at the position of the network device with a higher temperature to dissipate heat from the network device at this position, improving the heat dissipation effect of the reciprocating assembly 4 on the position with a higher temperature, and thus improving the overall heat dissipation effect of the reciprocating assembly 4. However, when the sliding rod 43 drives the fixing block 56 to slide, it often drives the electric positive electrode 510 and the electric negative electrode 511 in all the first mounting blocks 55 to be in contact, which will not only affect the stopping position of the cooling fan 3, resulting in the cooling fan 3 being unable to stop at the accurate position, reducing the use effect of the monitoring assembly 5, but also the frequent contact between the electric positive electrode 510 and the electric negative electrode 511 will reduce the service life of the electric positive electrode 510 and the electric negative electrode 511.

[0055] Therefore, a conversion component 6 is provided. When the monitoring component 5 is not in use, the turntable 610 on one side is driven to rotate by starting the second double-shaft motor 69, thereby driving the second round rod 611 on one side to rotate around the output shaft of the second double-shaft motor 69. And the second round rod 611 on one side slides in the second through groove 68, thereby driving the first connecting plate 67 to move towards the first mounting block 55 in the first connecting groove 66. At the same time, two second sliding plates 65 are driven to move towards the first round rod 62 in the third sliding groove 64, thereby pushing the first round rod 62 to move in the second sliding groove 61, and further driving the first sliding plate 58 to move into the second mounting groove 57, so that the tapered block 59 moves into the second mounting groove 57. When the monitoring component 5 is started, the second double-shaft motor 69 on the first mounting block 55 at the corresponding position is started, and then through the above steps, the two second sliding plates 65 are driven by the first connecting plate 67 to move away from the first round rod 62, and then the first sliding plate 58 and the tapered block 59 are pushed by the spring 512 to move outside the second mounting groove 57, thereby starting the first mounting block 55 at the corresponding position, and further enabling the monitoring component 5 to stop the cooling fan 3 at an accurate position, improving the use effect of the monitoring component 5. At the same time, it can prevent the electrical positive electrode 510 from contacting the electrical negative electrode 511 frequently, and improves the service life of the electrical positive electrode 510 and the electrical negative electrode 511.

[0056] In the above embodiment, when the monitoring component 5 is not in use, the tapered block 59 in all the first mounting blocks 55 is moved into the second mounting groove 57 through the conversion component 6. When the monitoring component 5 is started, the conversion component 6 on the first mounting block 55 at the corresponding position is started, so that the tapered block 59 in the first mounting block 55 at the corresponding position moves outside the second mounting groove 57, thereby enabling the monitoring component 5 to stop the cooling fan 3 at an accurate position. However, when the tapered block 59 moves into the second mounting groove 57, the electrical positive electrode 510 will contact the electrical negative electrode 511, which will cause the monitoring component 5 to start accidentally and reduce the use effect of the conversion component 6.

[0057] Therefore, a moving component 7 is provided. When the second double-shaft motor 69 drives the conical block 59 to move into the second installation groove 57, it simultaneously drives the turntable 610 on the other side to rotate, thereby driving the second round rod 611 on the other side to rotate. Moreover, the second round rod 611 on the other side slides in the third through groove 79, thereby driving the second connecting plate 78 to move away from the first mounting block 55 in the second connecting groove 77. At the same time, it drives the two fourth slide plates 76 to move away from the third round rod 73 in the fifth slide groove 75. Then, it drives the third slide plate 71 to move away from the first slide plate 58 through the spring 512, thereby driving the electrical negative pole 511 to move, so that the electrical positive pole 510 is separated from the electrical negative pole 511, further preventing the monitoring component 5 from being accidentally activated and improving the use effect of the conversion component 6. When the second double-shaft motor 69 drives the conical block 59 to move outside the second installation groove 57, through the above steps, it drives the two fourth slide plates 76 to move towards the third round rod 73, thereby pushing the third round rod 73 to move towards the first slide plate 58 in the fourth slide groove 72, and further driving the third slide plate 71 to move towards the first slide plate 58. At the same time, it drives the electrical negative pole 511 to move towards the electrical positive pole 510, thereby resetting the electrical positive pole 510 and the electrical negative pole 511, facilitating the normal use of the monitoring component 5.

[0058] As Figure 10 , Figure 11 shown, an adjusting component 8 is provided between the first mounting block 55 and the first installation groove 54. The adjusting component 8 includes two slide rods 81 fixedly connected to the inside of the first installation groove 54. Both slide rods 81 penetrate through the first mounting block 55 and are slidably connected to the first mounting block 55. Tooth grooves 82 are provided on the outer circumferential surfaces of the two slide rods 81 on the side close to each other. A third installation groove 83 is provided inside the first mounting block 55 between the two slide rods 81. A circular rotating block 87 is rotatably connected to the inside of the third installation groove 83. Two fourth through grooves 88 are provided on one side of the outer surface of the circular rotating block 87. Sixth slide grooves 84 are provided on both sides of the inner wall of the third installation groove 83 close to the tooth grooves 82. Tooth plates 85 are slidably connected to the inside of the two sixth slide grooves 84. U-shaped rods 86 are slidably connected to the inside of the two fourth through grooves 88. Both ends of the two U-shaped rods 86 extend into the sixth slide grooves 84 and are fixedly connected to the tooth plates 85. A knob 89 penetrating through the first mounting block 55 is fixedly connected to the central position on one side of the outer surface of the circular rotating block 87.

[0059] In the above embodiments, by monitoring the cooperation between multiple groups of temperature sensors 51 and the first mounting blocks 55 in the monitoring component 5, the heat dissipated by the network devices placed on multiple placement plates 10 is detected simultaneously. When the temperature detected by a certain temperature sensor 51 is much higher than the temperatures detected by other temperature sensors 51, through the conversion component 6 and the moving component 7, the first mounting block 55 corresponding to this temperature sensor 51 is activated, and the cooling fan 3 is stopped at the position of the first mounting block 55, so that the cooling fan 3 is stopped at the position of the network device with a higher temperature, and the network device at this position is cooled, improving the heat dissipation effect of the reciprocating component 4 on the position with a higher temperature, and thus improving the overall heat dissipation effect of the reciprocating component 4.

[0060] However, since the distances between multiple placement plates 10 in the rack 9 can be adjusted according to the height of the network devices, the distances between the network devices on multiple placement plates 10 can be adjusted. And the distances between multiple first mounting blocks 55 arranged inside the first mounting slots 54 are fixed, resulting in the position where the cooling fan 3 stops, making the cooling fan 3 unable to stop at the position of the network device on the corresponding placement plate 10, reducing the heat dissipation effect of the cooling fan 3 on the network devices on different-positioned placement plates 10, and thus reducing the practicality of the monitoring component 5. Therefore, an adjusting component 8 is provided. First, manually rotate the knob 89 to the right to drive the circular rotating block 87 to rotate to the right, and the two U-shaped rods 86 slide in the two fourth through slots 88 respectively, thereby driving the two U-shaped rods 86 to move simultaneously towards the middle of the third mounting slot 83. At the same time, drive the two toothed plates 85 to move towards the third mounting slot 83 in the two sixth sliding slots 84 respectively, so that the two toothed plates 85 move away from the toothed grooves 82 simultaneously, separating the toothed plates 85 from the toothed grooves 82, thereby releasing the fixed connection between the first mounting block 55 and the two sliding rods 81. Then manually drive the first mounting block 55 to slide on the two sliding rods 81, so that the position of the first mounting block 55 can be adjusted. Furthermore, multiple first mounting blocks 55 can be respectively moved to the positions of the corresponding placement plates 10. Then manually rotate the knob 89 to the left to drive the circular rotating block 87 to rotate to the left, thereby driving the two U-shaped rods 86 to move towards the sixth sliding slots 84 simultaneously, and further pushing the two toothed plates 85 to move outwards of the sixth sliding slots 84 simultaneously, so that the two toothed plates 85 are respectively engaged in the two toothed grooves 82, thereby fixing the first mounting block 55 and the two sliding rods 81, making the first mounting block 55 fixed at the position of the corresponding placement plate 10, so that the cooling fan 3 can accurately stop at the position of the network device above the corresponding placement plate 10, and then cool the network device on the corresponding placement plate 10, improving the heat dissipation effect of the cooling fan 3 on the network devices on different-positioned placement plates 10, and thus improving the practicality of the monitoring component 5.

[0061] Usage method: First, open the cabinet door 2, then place the network devices on each placement board 10. Then start the adjustment component 8 to adjust the positions of multiple first mounting blocks 55 so that the positions of the multiple first mounting blocks 55 correspond to the positions of each placement board 10. Then close the cabinet door 2, start the cooling fan 3 to dissipate heat from the network devices in the cabinet body 1, and then start the reciprocating component 4. Drive the cooling fans 3 on both sides to move up and down reciprocally simultaneously by the first double-shaft motor 47. At the same time, through the temperature sensor 51 in the monitoring component 5, monitor the heat dissipated by the network devices on multiple placement boards 10 during operation. When the temperature detected by a certain temperature sensor 51 is much higher than the temperatures detected by other temperature sensors 51, then control the conversion component 6 to start through the monitoring component 5. Drive the two second sliding plates 65 to move away from the first round rod 62 by the second double-shaft motor 69. Then push the first sliding plate 58 and the conical block 59 to move outside the second installation groove 57 through the spring 512. At the same time, start the moving component 7. Drive the two fourth sliding plates 76 to move towards the third round rod 73 by the second double-shaft motor 69. Then push the third round rod 73 to drive the third sliding plate 71 to move towards the first sliding plate 58, thereby starting the corresponding single first mounting block 55. Then when the sliding rod 43 drives the fixed block 56 to move to the position of the started first mounting block 55, drive the electrical positive electrode 510 to contact the electrical negative electrode 511, and then stop the cooling fan 3 at the position of the network device with a higher temperature to dissipate heat from the network device with a higher temperature at this position.

[0062] The above is only the preferred specific implementation manner of the present invention; however, the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its improved concept, makes equivalent replacements or changes, and all should be covered within the protection scope of the present invention.

Claims

1. A computer network communication cabinet, comprising a cabinet body (1), a rack (9) is fixedly connected inside the cabinet body (1), a plurality of evenly distributed placement plates (10) are arranged inside the rack (9), heat dissipation fans (3) are arranged on both sides of the outer surface of the cabinet body (1), and a cabinet door (2) is hinged on the other side of the outer surface of the cabinet body (1), characterized in that: A reciprocating component (4) is arranged between the cabinet body (1) and the cooling fan (3); The reciprocating component (4) includes a first through groove (41) opened on both sides of the outer surface of the cabinet body (1), and the cooling fan (3) is slidably connected to the inside of the first through groove (41). Both sides of the inner wall of the first through groove (41) are provided with first sliding grooves (42). Sliding rods (43) are slidably connected to the inside of the first sliding grooves (42), and the sliding rods (43) are fixedly connected to both sides of the cooling fan (3). Reciprocating lead screws (44) are rotatably connected to the inside of the first sliding grooves (42), and the reciprocating lead screws (44) penetrate through the sliding rods (43) and are threadedly connected to the sliding rods (43).

2. The computer network communication cabinet according to claim 1, characterized in that: There are two cooling fans (3). Fixed plates (46) are fixedly connected to both sides of the upper surface of the cabinet body (1), and the two fixed plates (46) are respectively located directly above the two cooling fans (3). First cavities (48) are opened at the middle positions inside the two fixed plates (46). A first double-shaft motor (47) is fixedly connected to the middle position of the upper surface of the cabinet body (1). Output ends of the first double-shaft motor (47) are fixedly connected with rotating shafts (49), and one ends of the two rotating shafts (49) respectively penetrate through the two first cavities (48). First bevel gears (410) are fixedly connected to the outer circumferential surfaces of the two rotating shafts (49) inside the first cavities (48). Second cavities (411) are opened on both sides of the first cavities (48) inside the two fixed plates (46). Second bevel gears (412) are meshed and connected to both sides of the outer circumferential surfaces of the two first bevel gears (410). First straight rods (413) are fixedly connected to one sides of the outer surfaces of the four second bevel gears (412), and one ends of the four first straight rods (413) respectively penetrate through the second cavities (411). Third bevel gears (414) are fixedly connected to the outer circumferential surfaces of the four first straight rods (413) inside the second cavities (411). Upper ends of the four reciprocating lead screws (44) extend into the second cavities (411) and are fixedly connected with fourth bevel gears (415), and the four third bevel gears (414) are respectively meshed and connected with the four fourth bevel gears (415).

3. A computer network communication cabinet according to claim 1, characterized in that: Expansion curtains (45) are fixedly connected to the upper and lower surfaces of the two cooling fans (3). The other ends of the four expansion curtains (45) are respectively fixedly connected to the upper and lower ends of the inner walls of the two first through grooves (41), and both sides of the four expansion curtains (45) extend into the first sliding grooves (42).

4. A computer network communication cabinet according to claim 2, characterized in that: Stabilizing blocks (416) are fixedly connected between the first double-shaft motor (47) and the two fixed plates (46) on the upper surface of the cabinet body (1). The two rotating shafts (49) respectively penetrate through the two stabilizing blocks (416), and the rotating shafts (49) are rotatably connected to the stabilizing blocks (416).

5. A computer network communication cabinet according to claim 2, characterized in that: Inside the cabinet body (1), a monitoring component (5) is provided. The monitoring component (5) includes a single-chip microcomputer (52) fixedly connected to one side of the lower end of the inner wall of the cabinet body (1) close to the frame (9). A controller (53) is fixedly connected to one side of the lower end of the inner wall of the cabinet body (1) close to the single-chip microcomputer (52), and the controller (53) is electrically connected to the first double-shaft motor (47) and the single-chip microcomputer (52). Temperature sensors (51) are fixedly connected to the upper surface of the placement plate (10).

6. A computer network communication cabinet according to claim 5, characterized in that: On one side of the inner wall of the cabinet body (1) close to the single-chip microcomputer (52), a first installation groove (54) is opened, and the first installation groove (54) communicates with the first sliding groove (42) on one side. A fixed block (56) is fixedly connected to the middle position on the outer surface of one side of the sliding rod (43), and the fixed block (56) is slidably connected to the first installation groove (54). A plurality of first installation blocks (55) are arranged inside the first installation groove (54), and the number of the first installation blocks (55) corresponds to the number of the temperature sensors (51). A second installation groove (57) is opened at one end of the outer surface of the first installation block (55) close to the fixed block (56). A first sliding plate (58) is slidably connected to the inside of the second installation groove (57). A conical block (59) is fixedly connected to one side of the outer surface of the first sliding plate (58) close to the fixed block (56). An electric positive pole (510) is fixedly connected to one side of the outer surface of the first sliding plate (58) away from the conical block (59). An electric negative pole (511) is arranged on one side of the inner wall of the second installation groove (57) away from the first sliding plate (58), and both the electric positive pole (510) and the electric negative pole (511) are electrically connected to the single-chip microcomputer (52). A spring (512) is arranged on one side of the outer surface of the first sliding plate (58) away from the conical block (59).

7. A computer network communication cabinet according to claim 6, characterized in that: A conversion component (6) is arranged on the outer surface of the first sliding plate (58). Second sliding grooves (61) are opened on both the upper and lower ends of the inner wall of the second installation groove (57) close to the first sliding plate (58). First round rods (62) are fixedly connected to both the upper and lower surfaces of the first sliding plate (58), and the two first round rods (62) are respectively slidably connected to the two second sliding grooves (61). A first installation plate (63) is fixedly connected to one side of the outer surface of the first installation block (55) close to the two second sliding grooves (61). Third sliding grooves (64) are opened on one side of the inner walls of the two second sliding grooves (61), and both the two third sliding grooves (64) extend into the first installation plate (63). Second sliding plates (65) are slidably connected to the inside of the two third sliding grooves (64). A first connection groove (66) is jointly opened at a position away from the first round rod (62) between the two third sliding grooves (64), and a first connection plate (67) is slidably connected to the inside of the first connection groove (66), and both ends of the first connection plate (67) are fixedly connected to the two second sliding plates (65).

8. A computer network communication cabinet according to claim 7, characterized in that: A moving component (7) is arranged at a position inside the second mounting groove (57) far from the first sliding plate (58). The moving component (7) includes a third sliding plate (71) slidably connected to a position inside the second mounting groove (57) far from the first sliding plate (58). The negative electrode (511) is fixedly connected to one side of the outer surface of the third sliding plate (71) close to the first sliding plate (58), and the spring (512) is located between the first sliding plate (58) and the third sliding plate (71). At one side of the upper and lower ends of the inner wall of the second mounting groove (57) close to the third sliding plate (71), fourth sliding grooves (72) are respectively formed. Third round rods (73) are fixedly connected to the upper surface and the lower surface of the third sliding plate (71), and the third round rods (73) slide inside the fourth sliding grooves (72). A second mounting plate (74) is fixedly connected to one side of the outer surface of the first mounting block (55) close to the two fourth sliding grooves (72). Fifth sliding grooves (75) are respectively formed on one side of the inner walls of the two fourth sliding grooves (72), and the two fifth sliding grooves (75) extend into the second mounting plate (74). Fourth sliding plates (76) are respectively slidably connected to the two fifth sliding grooves (75). A second connecting groove (77) is formed between the two fifth sliding grooves (75) far from the third round rods (73). A second connecting plate (78) is slidably connected to the second connecting groove (77). The two ends of the second connecting plate (78) are respectively fixedly connected to the two fourth sliding plates (76).

9. A computer network communication cabinet according to claim 8, characterized in that: A second through groove (68) is formed on one side of the outer surface of the first connecting plate (67). A third through groove (79) is formed on one side of the outer surface of the second connecting plate (78). A second double-shaft motor (69) is fixedly connected between the first mounting plate (63) and the second mounting plate (74). The output ends of the second double-shaft motor (69) respectively extend into the first connecting groove (66) and the second connecting groove (77) and are fixedly connected with turntables (610). Second round rods (611) are fixedly connected to the outer sides of the outer surfaces of the two turntables (610) far from the second double-shaft motor (69), and the positions of the two second round rods (611) are away from each other. The two second round rods (611) are respectively slidably connected to the second through groove (68) and the third through groove (79).

10. A computer network communication cabinet according to claim 9, characterized in that: An adjustment component (8) is provided between the first mounting block (55) and the first mounting groove (54). The adjustment component (8) includes two sliding rods (81) fixedly connected to the inside of the first mounting groove (54), and both of the two sliding rods (81) penetrate through the first mounting block (55) and are slidably connected to the first mounting block (55). Tooth grooves (82) are formed on the side of the outer circumferential surfaces of the two sliding rods (81) close to each other. A third mounting groove (83) is formed inside the first mounting block (55) between the two sliding rods (81). A circular rotating block (87) is rotatably connected to the inside of the third mounting groove (83). Two fourth through grooves (88) are formed on one side of the outer surface of the circular rotating block (87). Sixth sliding grooves (84) are formed on both sides of the inner wall of the third mounting groove (83) close to the tooth grooves (82). Tooth plates (85) are slidably connected to the inside of the two sixth sliding grooves (84). U-shaped rods (86) are slidably connected to the inside of the two fourth through grooves (88), and both ends of the two U-shaped rods (86) extend into the sixth sliding grooves (84) and are fixedly connected to the tooth plates (85). A knob (89) penetrating through the first mounting block (55) is fixedly connected to the center position of one side of the outer surface of the circular rotating block (87).