A computer hardware and software temperature automatic detection device
By clamping the half-hook to fix the data line, combined with dehumidification and temperature control and electrostatic release devices, the problems of data line winding, humidity and electrostatic interference are solved, and the efficiency and accuracy of computer software and hardware temperature detection are achieved.
Patent Information
- Application Number
- CN202411355519.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2044-09-27
AI Technical Summary
In the existing computer software and hardware temperature detection devices, the data transmission line is easily wrapped and knotted, which affects the detection accuracy, and the temperature detection is inaccurate due to humidity and electrostatic interference.
The data line is fixed by clamping half-hook and elastic rod structure, combined with a dehumidification and temperature control device and an electrostatic release device, and respectively deal with humidity and electrostatic interference to ensure the accuracy of temperature detection.
By clamping the half-cuff to fix the data line, avoid wrapping and improve the temperature detection efficiency; the dehumidification and temperature control device absorbs moisture, and the electrostatic release device eliminates static interference, ensuring data transmission stability and detection accuracy.
Smart Images

Figure CN119225487B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of computer technology, and particularly to an automatic computer software and hardware temperature detection device. Background Art
[0002] During the actual use of a computer, it is prone to heat up, and real-time detection is required. An automatic computer software and hardware temperature detection device is a device that performs real-time detection on the internal software and hardware of a computer to provide efficient protection. It consists of temperature sensors such as thermocouples or thermistors, a microcontroller for data processing and control, and a display for displaying temperature information. During the use of existing temperature detectors, the internal data transmission lines are prone to tangling and knotting, seriously affecting the detection accuracy.
[0003] The patent with the patent number CN210605687U discloses a computer software and hardware security monitoring device. In the main housing of this patent, there is an L-shaped detection tube. There is a low-boiling solvent in the L-shaped detection tube. One end of the L-shaped detection tube is fixedly connected to the bottom side wall of the main housing. There is a piston plate in the L-shaped detection tube. A piston rod is fixedly connected to the side wall of the piston plate. The end of the piston rod away from the piston plate penetrates through the side wall of the L-shaped detection tube and extends outward and is fixedly connected to a sliding plate. There is a fixed block on the inner side wall of the main housing. The fixed block is on the same horizontal line as the piston rod. There is a mounting plate below the sliding plate. The two sides of the mounting plate are respectively fixedly connected to the side wall of the L-shaped detection tube and the side wall of the main housing. The structure of this patent is reasonable. It can automatically adjust heat dissipation according to the temperature in the main housing 1 and can also monitor the usage of the hardware in the main housing 1 in real time. Although this patent solves the above problems, there is still a problem that it is difficult to accurately detect the temperature of each component. Therefore, an automatic computer software and hardware temperature detection device is proposed to solve the above-mentioned problems. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide an automatic computer software and hardware temperature detection device for the deficiencies in the above-mentioned prior art.
[0005] To solve the above technical problems, the technical solution adopted by the present invention is: a computer software and hardware temperature automatic detection device, including a chassis. A heat dissipation net is provided on the left side surface of the chassis. A transparent plate is fixedly connected to the inner surface of the front side of the chassis. A power isolation plate is fixedly connected to the bottom of the inner wall of the chassis. A main board is fixedly connected to the rear side surface of the inner wall of the chassis. A microcontroller is fixedly connected to the front side surface of the main board. A connecting member is fixedly connected to the rear side surface of the inner wall of the chassis. A rotating rod is hinged to the inner surface of the connecting member. One end of the rotating rod is fixedly connected to a sliding groove frame. A connecting plate is fixedly connected to the rear side surface of the sliding groove frame. A movable plate is slidably connected to the inner surface of the sliding groove frame. A first clamping half hoop is fixedly connected to the rear side surface of the connecting plate. A second clamping half hoop is fixedly connected to the front side surface of the movable plate. A spring rod is fixedly connected to the front side surface of the movable plate. A dehumidification and temperature control device for dehumidifying to prevent the temperature inside the chassis from being affected by humidity and changing, resulting in inaccurate detection is provided inside the chassis. An electrostatic release device for removing static electricity to prevent electromagnetic interference caused by static electricity to the temperature sensor and microcontroller and affecting the accuracy of temperature detection is provided inside the chassis. The front end of the spring rod is fixedly connected to the inner surface of the sliding groove frame. A handle is fixedly connected to the bottom end of the rotating rod. A plurality of temperature sensors are provided on the main board. When the microcontroller is turned on, the temperature data generated when each component inside the chassis operates is collected by the temperature sensors. The temperature sensors transmit the data to the microcontroller for collection and processing. The microcontroller transmits the processed data to a processing device such as a control panel set externally through a data line. At this time, the temperature of each component inside the chassis can be clearly understood through the data displayed on the control panel, and then the operating conditions of each component can be understood. Insert the data transmission line on the microcontroller between the first clamping half hoop and the second clamping half hoop, and then push the movable plate backward to fit with the connecting plate, so that the first clamping half hoop and the second clamping half hoop fit and clamp the data line. Rotate the rotating rod through the handle. The rotating rod drives the sliding groove frame to rotate. The sliding groove frame drives the connecting plate and the movable plate to rotate. The connecting plate and the movable plate drive the first clamping half hoop and the second clamping half hoop to rotate. When the first clamping half hoop and the second clamping half hoop rotate, the data line is wound up. When clamping the data line, first pull the movable plate forward. The movable plate squeezes the spring rod to compress the spring rod, and then insert the data line between the first clamping half hoop and the second clamping half hoop. At this time, release the movable plate, and the elastic reset action of the spring rod drives the movable plate to move backward and clamp the data line.
[0006] Preferably, the dehumidification and temperature control device includes a first ball screw, a synchronous belt, a second ball screw, a nut, and a movable dehumidification chamber. The first ball screw is rotatably connected to the left side inner wall of the chassis, the synchronous belt is drivingly connected to the circumferential surface of the first ball screw, the second ball screw is rotatably connected to both sides of the inner wall of the chassis, the nut is threadedly connected to the circumferential surface of the first ball screw, and the movable dehumidification chamber is fixedly connected to the circumferential surface of the nut. The dehumidification and temperature control device further includes a cover plate, a fixed ring, a compression spring, and a movable ring. The cover plate is hinged to the front side of the movable dehumidification chamber. The two fixed rings are respectively fixedly connected to both sides of the circumferential surface of the first ball screw. The compression spring is fixedly connected to the side of the fixed ring close to the movable dehumidification chamber. The movable ring is fixedly connected to the end of the compression spring close to the movable dehumidification chamber. The right end of the first ball screw is fixedly connected to a motor through an output shaft, and the motor is installed on the right side inner wall of the chassis. The circumferential surface of the second ball screw is drivingly connected to the synchronous belt, and the nut is threadedly connected to the circumferential surface of the second ball screw. The two fixed rings are fixedly connected to both sides of the circumferential surface of the second ball screw. The two movable rings are slidably connected to both sides of the circumferential surface of the first ball screw, and the two movable rings are slidably connected to both sides of the circumferential surface of the second ball screw. A solid desiccant is placed inside the movable dehumidification chamber. When the humidity inside the chassis is too high, the solid desiccant absorbs the moisture. Start the motor, and the motor drives the first ball screw to rotate. The first ball screw drives the second ball screw to rotate through the synchronous belt. When the first ball screw and the second ball screw rotate, they drive the nut to move left and right reciprocally. The nut then drives the movable dehumidification chamber to move left and right reciprocally. When the movable dehumidification chamber moves left and right reciprocally, it will hit the movable rings on both sides. The movable rings receive the impact and conduct the impact force to the compression springs. The compression springs weaken the impact force and make the movable dehumidification chamber stop more smoothly. At the same time, the solid desiccant inside the movable dehumidification chamber flips due to the impact.
[0007] Preferably, the electrostatic discharge device includes a nylon sleeve shaft, an L-shaped metal conductive rod, and an electrostatic dissipation box. The nylon sleeve shaft is fixedly connected to the inner surface of the rear side of the chassis. The L-shaped metal conductive rod is slidably connected to the inner surface of the nylon sleeve shaft. The electrostatic dissipation box is fixedly connected to the rear side surface of the chassis. The electrostatic discharge device further includes a connecting rod, a nylon guiding inclined plate, a nylon transmission inclined plate, a pull ring, and a tension spring. The connecting rod is fixedly connected to one side of the movable dehumidification chamber close to the main board. The nylon guiding inclined plate is fixedly connected to one end of the connecting rod close to the main board. The nylon transmission inclined plate is fixedly connected to the left end of the L-shaped metal conductive rod. The pull ring is fixedly connected to the circumferential surface of the L-shaped metal conductive rod. The tension spring is fixedly connected to the front side surface of the pull ring. The front end of the tension spring is fixedly connected to the rear side surface of the nylon sleeve shaft. The L-shaped metal conductive rod slidably penetrates through the rear side surface of the electrostatic dissipation box. The inner wall of the electrostatic dissipation box is coated with an antistatic agent. When static electricity is generated near the microcontroller, the L-shaped metal conductive rod adsorbs the static electricity. After the L-shaped metal conductive rod absorbs the static electricity, due to the insulating isolation of the nylon sleeve shaft, the static electricity cannot be conducted to the chassis, but is introduced into the electrostatic dissipation box through the L-shaped metal conductive rod. At this time, the antistatic agent coated on the inner wall of the electrostatic dissipation box dissipates the static electricity, and the remaining small amount of static electricity is then conducted to the air outside the chassis through the L-shaped metal conductive rod and dissipated. When the movable dehumidification chamber moves to the right, it drives the connecting rod to move to the right. The connecting rod drives the nylon guiding inclined plate to move to the right. After the inclined surface of the nylon guiding inclined plate contacts the inclined surface of the nylon transmission inclined plate, the nylon transmission inclined plate is guided by the inclined surface and moves to the rear side of the chassis, thereby driving the L-shaped metal conductive rod to move backward. The L-shaped metal conductive rod drives the pull ring to move backward. The pull ring drives the tension spring to stretch. When the movable dehumidification chamber moves to the left, it drives the connecting rod and the nylon guiding inclined plate to move to the left. After the nylon transmission inclined plate loses the resistance of the nylon guiding inclined plate, the tension spring elastically contracts, thereby pulling the pull ring to move forward. The pull ring then drives the L-shaped metal conductive rod to move forward, causing the L-shaped metal conductive rod to reciprocate back and forth to enhance the friction between it and the air inside the chassis.
[0008] Adopting the above technical solutions, the present invention can bring the following beneficial effects:
[0009] 1. For the computer software and hardware temperature automatic detection device, the first clamping half hoop and the second clamping half hoop are attached and clamp the data cable to fix the data cable, avoiding the entanglement of the data cable and affecting data transmission, improving the temperature detection efficiency. When the first clamping half hoop and the second clamping half hoop rotate, they roll up the data cable, making the fixation of the data cable more stable, avoiding the relaxation of the data cable, and further improving the data transmission efficiency. The elastic deformation of the elastic rod can clamp data cables of different thicknesses, improving the clamping applicability.
[0010] 2. For the computer hardware and software temperature automatic detection device, the solid desiccant absorbs moisture, preventing moisture from affecting the temperature inside the chassis and causing the microcontroller to be unable to accurately collect the temperatures generated by the operation of each component itself, improving the detection accuracy. When the movable dehumidification chamber moves, the contact efficiency between the solid desiccant and the air inside the chassis is increased, making it easier for the solid desiccant to absorb moisture and enhancing the dehumidification effect. When the solid desiccant is impacted and flipped, while the solid desiccant is flipped, damage to the movable dehumidification chamber is avoided, further enhancing the contact efficiency between the solid desiccant and the air, and thus further promoting the dehumidification effect.
[0011] 3. For the computer hardware and software temperature automatic detection device, the L-shaped metal conductive rod adsorbs static electricity, preventing static electricity from being conducted to the microcontroller and causing electromagnetic interference that affects the accuracy of its data processing. The L-shaped metal conductive rod moves back and forth, enhancing the friction between it and the air inside the chassis, and thus more easily attracting static electricity, further preventing static electricity from coming into contact with the microcontroller and the temperature sensor and causing electromagnetic interference. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 is a schematic perspective overall structure diagram of the present invention;
[0013] Figure 2 is a schematic perspective sectional structure diagram of the front side of the present invention;
[0014] Figure 3 is a schematic perspective sectional structure diagram of the front side of the chassis of the present invention;
[0015] Figure 4 is of the present invention Figure 3 is an enlarged structure diagram of A in the present invention;
[0016] Figure 5 is a schematic perspective sectional structure diagram of the front side of the dehumidification and temperature control device of the present invention;
[0017] Figure 6 is a schematic perspective sectional structure diagram of the front side of the static electricity release device of the present invention;
[0018] Figure 7 is a schematic perspective sectional structure diagram of the rear side of the static electricity release device of the present invention.
[0019] In the figure: 1, chassis; 2, heat dissipation net; 3, transparent plate; 4, power isolation plate; 5, main board; 6, microcontroller; 7, connecting plate; 71, first clamping half hoop; 72, movable plate; 73, second clamping half hoop; 74, elastic rod; 75, chute frame; 76, rotating rod; 77, connecting piece; 8, dehumidification and temperature control device; 81, first ball screw; 82, synchronous belt; 83, second ball screw; 84, nut; 85, movable dehumidification chamber; 86, cover plate; 87, fixed ring; 88, compression spring; 89, movable ring; 9, static electricity release device; 91, nylon sleeve shaft; 92, L-shaped metal conductive rod; 93, static electricity dissipation box; 94, connecting rod; 95, nylon guiding inclined plate; 96, nylon driving inclined plate; 97, pull ring; 98, tension spring. Detailed implementation manner
[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0021] Please refer to Figures 1 - 7, an embodiment of the present invention is: a computer hardware and software temperature automatic detection device, including a chassis 1, a heat dissipation net 2 is provided on the left side surface of the chassis 1, a transparent plate 3 is fixedly connected to the inner surface of the front side of the chassis 1, a power isolation plate 4 is fixedly connected to the bottom of the inner wall of the chassis 1, a main board 5 is fixedly connected to the rear side surface of the inner wall of the chassis 1, a microcontroller 6 is fixedly connected to the front side surface of the main board 5, a connecting member 77 is fixedly connected to the rear side surface of the inner wall of the chassis 1, a rotating rod 76 is hinged to the inner surface of the connecting member 77, one end of the rotating rod 76 is fixedly connected to a chute frame 75, a connecting plate 7 is fixedly connected to the rear side surface of the chute frame 75, a movable plate 72 is slidably connected to the inner surface of the chute frame 75, a first clamping semi-hoop 71 is fixedly connected to the rear side surface of the connecting plate 7, a second clamping semi-hoop 73 is fixedly connected to the front side surface of the movable plate 72, a spring rod 74 is fixedly connected to the front side surface of the movable plate 72, the first clamping semi-hoop 71 and the second clamping semi-hoop 73 are attached to each other and clamp the data cable, so that the data cable is fixed, avoiding the data cable entanglement affecting data transmission, improving the temperature detection efficiency. A dehumidification and temperature control device 8 for dehumidifying to prevent the temperature inside the chassis 1 from being affected by humidity and changing, resulting in inaccurate detection is provided inside the chassis 1. An electrostatic release device 9 for removing static electricity to prevent static electricity from causing electromagnetic interference to the temperature sensor and the microcontroller 6 and affecting the accuracy of temperature detection is provided inside the chassis 1. The front end of the spring rod 74 is fixedly connected to the inner surface of the chute frame 75, the bottom end of the rotating rod 76 is fixedly connected to a handle. Multiple temperature sensors are provided on the main board 5. When the first clamping semi-hoop 71 and the second clamping semi-hoop 73 rotate, the data cable is rolled up, making the fixation of the data cable more stable, avoiding the data cable from becoming loose, and further improving the data transmission efficiency. Through the elastic deformation of the spring rod 74, data cables of different thicknesses can be clamped, improving the clamping applicability.
[0022] Working principle: When the microcontroller 6 is turned on, the temperature data generated during the operation of each component in the chassis 1 is collected by the temperature sensor. The temperature sensor transmits the data to the microcontroller 6 for collection and processing. The microcontroller 6 transmits the processed data to a processing device such as an externally set control panel through a data line. At this time, the temperature of each component in the chassis 1 can be clearly understood through the data displayed on the control panel, and then the operating conditions of each component can be understood. Insert the data transmission line on the microcontroller 6 between the first clamping half-hoop 71 and the second clamping half-hoop 73, and then push the movable plate 72 backward to fit with the connecting plate 7, so that the first clamping half-hoop 71 and the second clamping half-hoop 73 fit together and clamp the data line, fixing the data line to prevent the data line from being entangled and affecting data transmission, improving the temperature detection efficiency. By rotating the rotating rod 76 with the handle, the rotating rod 76 drives the sliding groove frame 75 to rotate. The sliding groove frame 75 drives the connecting plate 7 and the movable plate 72 to rotate. The connecting plate 7 and the movable plate 72 then drive the first clamping half-hoop 71 and the second clamping half-hoop 73 to rotate. When the first clamping half-hoop 71 and the second clamping half-hoop 73 rotate, the data line is rolled up, making the fixation of the data line more stable and preventing the data line from becoming loose, further improving the data transmission efficiency. When clamping the data line, first pull the movable plate 72 forward. The movable plate 72 squeezes the elastic rod 74 to compress the elastic rod 74. Then insert the data line between the first clamping half-hoop 71 and the second clamping half-hoop 73. At this time, release the movable plate 72. The elastic reset function of the elastic rod 74 drives the movable plate 72 to move backward and clamp the data line. Moreover, the elastic deformation of the elastic rod 74 can clamp data lines of different thicknesses, improving the clamping applicability.
[0023] Please refer to Figures 1 - 7, on the basis of the above embodiments, in another embodiment of the present invention, the dehumidification and temperature control device 8 includes a first ball screw 81, a synchronous belt 82, a second ball screw 83, a nut 84, and a movable dehumidification chamber 85. The first ball screw 81 is rotatably connected to the left side inner wall of the chassis 1, the synchronous belt 82 is drivingly connected to the circumferential surface of the first ball screw 81, the second ball screw 83 is rotatably connected to both sides of the inner wall of the chassis 1, the nut 84 is threadedly connected to the circumferential surface of the first ball screw 81, and the movable dehumidification chamber 85 is fixedly connected to the circumferential surface of the nut 84. The solid desiccant absorbs moisture, preventing the moisture from affecting the temperature inside the chassis 1 and causing the microcontroller 6 to be unable to accurately collect the temperatures generated by the operation of each component itself, thus improving the detection accuracy. When the movable dehumidification chamber 85 moves, the contact efficiency between the solid desiccant and the air inside the chassis 1 is increased, making it easier for the solid desiccant to absorb moisture and enhancing the dehumidification effect. The dehumidification and temperature control device 8 further includes a cover plate 86, a fixed ring 87, a compression spring 88, and a movable ring 89. The cover plate 86 is hinged to the front side of the movable dehumidification chamber 85. Two fixed rings 87 are respectively fixedly connected to both sides of the circumferential surface of the first ball screw 81. The compression spring 88 is fixedly connected to the side of the fixed ring 87 close to the movable dehumidification chamber 85. The movable ring 89 is fixedly connected to the end of the compression spring 88 close to the movable dehumidification chamber 85. The right end of the first ball screw 81 is fixedly connected to a motor through an output shaft, and the motor is installed on the right side inner wall of the chassis 1. The circumferential surface of the second ball screw 83 is drivingly connected to the synchronous belt 82. The nut 84 is threadedly connected to the circumferential surface of the second ball screw 83. Two fixed rings 87 are fixedly connected to both sides of the circumferential surface of the second ball screw 83. Two movable rings 89 are slidably connected to both sides of the circumferential surface of the first ball screw 81. Two movable rings 89 are slidably connected to both sides of the circumferential surface of the second ball screw 83. Solid desiccant is placed inside the movable dehumidification chamber 85. The solid desiccant is flipped due to being impacted, avoiding damage to the movable dehumidification chamber 85 while the solid desiccant is flipped, further improving the contact efficiency between the solid desiccant and the air, and thus further promoting the dehumidification effect.
[0024] Working principle: Place the solid desiccant in the movable dehumidification chamber 85. When the humidity inside the chassis 1 is too high, the solid desiccant absorbs the moisture, preventing the moisture from affecting the temperature inside the chassis 1 and causing the microcontroller 6 to be unable to accurately collect the temperatures generated by the operation of each component itself, thus improving the detection accuracy. Start the motor, and the motor drives the first ball screw 81 to rotate. The first ball screw 81 drives the second ball screw 83 to rotate through the synchronous belt 82. When the first ball screw 81 and the second ball screw 83 rotate, they drive the nut 84 to move left and right reciprocally. The nut 84 then drives the movable dehumidification chamber 85 to move left and right reciprocally. When the movable dehumidification chamber 85 moves, it improves the contact efficiency between the solid desiccant and the air inside the chassis 1, making it easier for the solid desiccant to absorb the moisture and enhancing the dehumidification effect. When the movable dehumidification chamber 85 moves left and right reciprocally, it will hit the movable rings 89 on both sides. The movable rings 89 transmit the impact force to the compression springs 88 when being hit. After the compression springs 88 weaken the impact force, the movable dehumidification chamber 85 stops more smoothly. At the same time, the solid desiccant inside the movable dehumidification chamber 85 flips due to the impact, enabling the solid desiccant to flip while preventing the movable dehumidification chamber 85 from being damaged, further improving the contact efficiency between the solid desiccant and the air, and thus further promoting the dehumidification effect. When it is necessary to replace the solid desiccant, open the cover plate 86 and tilt the chassis 1 to pour out the old solid desiccant for replacement, improving the usability.
[0025] Please refer to Figures 1 - 7 , on the basis of the above embodiments, in another embodiment of the present invention, the electrostatic discharge device 9 includes a nylon sleeve shaft 91, an L-shaped metal conductive rod 92, and an electrostatic dissipation box 93. The nylon sleeve shaft 91 is fixedly connected to the inner surface of the rear side of the chassis 1. The L-shaped metal conductive rod 92 is slidably connected to the inner surface of the nylon sleeve shaft 91. The electrostatic dissipation box 93 is fixedly connected to the rear side surface of the chassis 1. The L-shaped metal conductive rod 92 adsorbs the static electricity, preventing the static electricity from being conducted to the microcontroller 6 and causing electromagnetic interference to affect the accuracy of its data processing. The electrostatic discharge device 9 further includes a connecting rod 94, a nylon guiding inclined plate 95, a nylon transmission inclined plate 96, a pull ring 97, and a tension spring 98. The connecting rod 94 is fixedly connected to the side of the movable dehumidification chamber 85 close to the main board 5. The nylon guiding inclined plate 95 is fixedly connected to the end of the connecting rod 94 close to the main board 5. The nylon transmission inclined plate 96 is fixedly connected to the left end of the L-shaped metal conductive rod 92. The pull ring 97 is fixedly connected to the circumferential surface of the L-shaped metal conductive rod 92. The tension spring 98 is fixedly connected to the front side surface of the pull ring 97. The front end of the tension spring 98 is fixedly connected to the rear side surface of the nylon sleeve shaft 91. The L-shaped metal conductive rod 92 slidably penetrates through the rear side surface of the electrostatic dissipation box 93. The inner wall of the electrostatic dissipation box 93 is coated with an antistatic agent. The L-shaped metal conductive rod 92 moves back and forth to enhance the friction between it and the air inside the chassis 1, and thus attracts the static electricity more easily, further preventing the static electricity from coming into contact with the microcontroller 6 and the temperature sensor and causing electromagnetic interference.
[0026] Working principle: When static electricity is generated near the microcontroller 6, the L-shaped metal conductive rod 92 adsorbs the static electricity, preventing the static electricity from being conducted to the microcontroller 6 and causing electromagnetic interference to affect the accuracy of its data processing. After the L-shaped metal conductive rod 92 absorbs the static electricity, due to the insulation isolation of the nylon sleeve shaft 91, the static electricity cannot be conducted to the chassis 1, but is introduced into the static electricity dissipation box 93 through the L-shaped metal conductive rod 92. At this time, the antistatic agent coated on the inner wall of the static electricity dissipation box 93 reduces the static electricity, and the remaining small amount of static electricity is then conducted to the air outside the chassis 1 through the L-shaped metal conductive rod 92 and dissipated. When the movable dehumidification chamber 85 moves to the right, it drives the connecting rod 94 to move to the right. The connecting rod 94 drives the nylon guide inclined plate 95 to move to the right. After the inclined surface of the nylon guide inclined plate 95 contacts the inclined surface of the nylon transmission inclined plate 96, the nylon transmission inclined plate 96 is guided by the inclined surface and moves to the rear side of the chassis 1, thereby driving the L-shaped metal conductive rod 92 to move backward. The L-shaped metal conductive rod 92 drives the pull ring 97 to move backward, and the pull ring 97 drives the tension spring 98 to stretch. When the movable dehumidification chamber 85 moves to the left, it drives the connecting rod 94 and the nylon guide inclined plate 95 to move to the left. After the nylon transmission inclined plate 96 loses the contact of the nylon guide inclined plate 95, the tension spring 98 elastically contracts, thereby pulling the pull ring 97 to move forward. The pull ring 97 then drives the L-shaped metal conductive rod 92 to move forward, causing the L-shaped metal conductive rod 92 to reciprocate back and forth, enhancing the friction between it and the air inside the chassis 1, and thus attracting static electricity more easily, further preventing static electricity from contacting the microcontroller 6 and the temperature sensor and causing electromagnetic interference.
[0027] The present invention provides a computer software and hardware temperature automatic detection device. There are many methods and ways to specifically implement this technical solution. The above description is only the preferred embodiment of the present invention. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention. Each component not clearly defined in this embodiment can be implemented by using the prior art.
Claims
1. An automatic computer hardware and software temperature detection device, including a chassis, characterized in that: A heat dissipation net is provided on the left side of the chassis. A transparent plate is fixedly connected to the inner surface of the front side of the chassis. A power isolation plate is fixedly connected to the bottom of the inner wall of the chassis. A main board is fixedly connected to the rear side inner wall of the chassis. A microcontroller is fixedly connected to the front side of the main board. A connecting piece is fixedly connected to the rear side inner wall of the chassis. A rotating rod is hinged to the inner surface of the connecting piece. One end of the rotating rod is fixedly connected to a chute frame. A connecting plate is fixedly connected to the rear side of the chute frame. A movable plate is slidably connected to the inner surface of the chute frame. A first clamping half hoop is fixedly connected to the rear side of the connecting plate. A second clamping half hoop is fixedly connected to the front side of the movable plate. A spring rod is fixedly connected to the front side of the movable plate; A dehumidification and temperature control device for dehumidifying to prevent the temperature inside the chassis from being affected by humidity and causing inaccurate detection is provided inside the chassis. The dehumidification and temperature control device includes a first ball screw, a synchronous belt, a second ball screw, a nut, and a movable dehumidification chamber. The first ball screw is rotatably connected to the left side inner wall of the chassis. The synchronous belt is drivingly connected to the circumferential surface of the first ball screw. The second ball screw is rotatably connected to both sides of the inner wall of the chassis. The nut is threadedly connected to the circumferential surface of the first ball screw. The movable dehumidification chamber is fixedly connected to the circumferential surface of the nut. The dehumidification and temperature control device further includes a cover plate, a fixed ring, a compression spring, and a movable ring. The cover plate is hinged to the front side of the movable dehumidification chamber. The two fixed rings are respectively fixedly connected to both sides of the circumferential surface of the first ball screw. The compression spring is fixedly connected to the side of the fixed ring close to the movable dehumidification chamber. The movable ring is fixedly connected to the end of the compression spring close to the movable dehumidification chamber. An electrostatic discharge device for removing static electricity to prevent static electricity from causing electromagnetic interference to the temperature sensor and the microcontroller and affecting the accuracy of temperature detection is provided inside the chassis.
2. The automatic computer software and hardware temperature detection device according to claim 1, characterized in that: The front end of the spring rod is fixedly connected to the inner surface of the chute frame. A handle is fixedly connected to the bottom end of the rotating rod. A plurality of temperature sensors are provided on the main board.
3. The automatic computer software and hardware temperature detection device according to claim 2, characterized in that: The right end of the first ball screw is fixedly connected to a motor through an output shaft, and the motor is installed on the right side inner wall of the chassis. The circumferential surface of the second ball screw is drivingly connected to the synchronous belt. The nut is threadedly connected to the circumferential surface of the second ball screw. The two fixed rings are fixedly connected to both sides of the circumferential surface of the second ball screw. The two movable rings are slidably connected to both sides of the circumferential surface of the first ball screw. The two movable rings are slidably connected to both sides of the circumferential surface of the second ball screw. A solid dehumidifying agent is placed inside the movable dehumidification chamber.
4. An automatic computer software and hardware temperature detection device according to claim 3, characterized in that: The electrostatic discharge device includes a nylon sleeve shaft, an L-shaped metal conductive rod, and an electrostatic dissipation box. The nylon sleeve shaft is fixedly connected to the inner surface of the rear side of the chassis. The L-shaped metal conductive rod is slidably connected to the inner surface of the nylon sleeve shaft. The electrostatic dissipation box is fixedly connected to the rear side of the chassis.
5. The automatic computer software and hardware temperature detection device according to claim 4, characterized in that: The electrostatic discharge device further includes a connecting rod, a nylon guiding inclined plate, a nylon driving inclined plate, a pull ring, and a tension spring. The connecting rod is fixedly connected to one side of the movable dehumidification chamber close to the main board. The nylon guiding inclined plate is fixedly connected to one end of the connecting rod close to the main board. The nylon driving inclined plate is fixedly connected to the left end of the L-shaped metal conductive rod. The pull ring is fixedly connected to the circumferential surface of the L-shaped metal conductive rod. The tension spring is fixedly connected to the front side of the pull ring.
6. An automatic computer software and hardware temperature detection device according to claim 5, characterized in that: The front end of the tension spring is fixedly connected to the rear side of the nylon sleeve shaft. The L-shaped metal conductive rod slidably penetrates through the rear side of the electrostatic dissipation box. The inner wall of the electrostatic dissipation box is coated with an antistatic agent.
Citation Information
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