A heat dissipation frame of a high-performance image video analysis device and a use method thereof
By introducing enhancement and auxiliary units into the image and video analysis device, and utilizing Tesla valves for liquid cooling and pipeline adjustment, the problem of poor heat dissipation of the device was solved, achieving efficient heat management and ensuring the stability and efficiency of device operation.
Patent Information
- Application Number
- CN202510855442.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2045-06-25
AI Technical Summary
The existing image and video analysis device frame has poor heat dissipation, which causes heat to accumulate inside the analysis device after long-term operation, affecting analysis efficiency and potentially causing overheating and damage to components. In addition, the existing solutions require external tools and cannot achieve the desired results.
A heat dissipation frame for a high-performance image and video analysis device was designed. It employs a reinforcement unit and an auxiliary unit, utilizes Tesla valves for liquid cooling technology, monitors temperature changes through a temperature sensor, and adjusts the pipeline distribution in conjunction with a motor and gear system to achieve timely heat removal and uniform heat dissipation.
It effectively enhances the heat dissipation of the device, removes heat in a timely manner, prevents heat accumulation, ensures smooth operation of the device, avoids overheating damage to components, and improves analysis efficiency.
Smart Images

Figure CN120379222B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the field of image and video analysis device frameworks, and particularly relates to a high-performance image and video analysis device heat dissipation framework and a use method. BACKGROUND
[0002] Image and video analysis is a technology combining image analysis and video analysis, which is mainly used for extracting and identifying specific elements in images from continuous video frames and tracking and analyzing the elements, and the framework is basic and important for the operation of the elements in the framework, and the framework can dissipate heat, support and protect, etc.
[0003] Image and video analysis not only includes analysis of a single image, but also involves identification and understanding of the behavior and dynamic changes of targets in a video sequence, in order to ensure smooth operation of the analysis device during the analysis process, the heat dissipation effect of the electronic elements in the analysis device framework needs to be strengthened, so that the dissipated heat can be carried away in time to avoid accumulation in the framework, and the heat dissipation effect of the existing analysis device framework cannot be effectively strengthened, and after normal use of the analysis equipment, only the self-heat dissipation can be relied on, so that a large amount of accumulated heat is accumulated in the internal and air vents after long-time operation, and then the analysis device analysis operation becomes slow, which affects the normal analysis efficiency, and in severe cases, the internal elements of the device are damaged by overheating, therefore, the application provides a high-performance image and video analysis device heat dissipation framework and a use method.
[0004] And we can find that the existing high-performance image and video analysis device based on edge cloud streaming media service on the market can hardly avoid the above-mentioned problems at the same time, and even if it can solve the problems, it needs to be solved by external tools, so that the desired effect cannot be achieved, therefore, the application provides a high-performance image and video analysis device heat dissipation framework and a use method. SUMMARY
[0005] The application aims to provide a high-performance image and video analysis device heat dissipation framework and a use method to solve the problems in the background.
[0006] To achieve the above-mentioned purpose, the application provides the following technical scheme: a high-performance image and video analysis device heat dissipation framework, comprising a device body, the device body comprising a machine body, a ventilation fan being embeddedly installed on one side of the machine body, a top cover being fixedly installed on the top of the machine body, and a heat dissipation strengthening mechanism being arranged on the surface of the top cover.
[0007] The heat dissipation strengthening mechanism comprises a strengthening unit, and the strengthening unit is arranged on the surface of the top cover.
[0008] The heat dissipation reinforcing mechanism further comprises auxiliary units arranged on the surface of the top cover, which are used in cooperation with the reinforcing units, and the number of the auxiliary units is two groups.
[0009] One side of the reinforcing unit is provided with uniform heat dissipation mechanisms, which are used in cooperation with the reinforcing units, and the number of the uniform heat dissipation mechanisms is two groups.
[0010] The surface of the top cover is fixedly installed with an aesthetic cover.
[0011] Preferably, the reinforcing unit comprises a liquid tank fixedly installed on the surface of the top cover, the inner wall of the liquid tank is fixedly installed with a refrigeration device, the top of the liquid tank is fixedly installed with a liquid pump, the water outlet of the liquid pump is communicated with the liquid tank, and the surface of the top cover is fixedly installed with a vertical frame.
[0012] Preferably, the top of the vertical frame is fixedly installed with a first motor, one side of the vertical frame is fixedly installed with a support plate, the inner wall of the support plate is movably installed with a rotating rod, both ends of the rotating rod are penetrated to the outside of the support plate, the surface of the rotating rod is movably connected with the inner wall of the support plate through a bearing, one end of the rotating rod is fixedly connected with one end of the output end of the first motor, the other end of the rotating rod is fixedly installed with a gear, one side of the gear is provided with a rack, the rack is engaged with the gear, one side of the rack is fixedly installed with a Tesla valve, the top of the Tesla valve is fixedly installed with a valve cover, the number of the valve cover is three, and one end of the Tesla valve is fixedly communicated with an auxiliary pipe.
[0013] Preferably, the inner wall of the top cover is fixedly installed with a back plate, the number of the back plate is two, and one side of the back plate is fixedly installed with a temperature sensor.
[0014] Preferably, the auxiliary unit comprises a U-shaped frame fixedly installed on the surface of the top cover, one side of the U-shaped frame is fixedly installed with an extension plate, the bottom of the extension plate is fixedly installed with a second motor, one end of the output end of the second motor is penetrated through the extension plate and fixedly installed with a winding drum, the inner wall of the winding drum is fixedly installed with an embedded pipe, the inner wall of the U-shaped frame is fixedly installed with a conversion box, the inner wall of the conversion box is fixedly installed with a sealing bearing, and the inner wall of the sealing bearing is fixedly communicated with one end of the embedded pipe.
[0015] Preferably, one end of the embedded pipe on one side is fixedly communicated with a backwater pipe, one side of the backwater pipe is provided with a first side wheel, the bottom of the first side wheel is fixedly connected with the top cover, one end of the backwater pipe is fixedly communicated with an auxiliary pipe, the top of the conversion box on the other side is fixedly communicated with an inlet tank pipe, one end of the inlet tank pipe is fixedly communicated with a liquid tank, one end of the embedded pipe on the other side is fixedly communicated with a water inlet pipe, one side of the water inlet pipe is provided with a second side wheel, the bottom of the second side wheel is fixedly connected with the top cover, one end of the water inlet pipe is fixedly communicated with a Tesla valve, the top of the conversion box on the other side is fixedly communicated with an outlet tank pipe, one end of the outlet tank pipe is fixedly communicated with a liquid pump.
[0016] Preferably, the uniform heat dissipation mechanism comprises a strip plate, the strip plate is fixedly installed on the surface of the vertical frame, the number of the strip plate is two, a threaded rod is movably installed on the inner walls of the two strip plates, the threaded rod penetrates through the outer sides of the two strip plates at both ends, the surface of the threaded rod is movably connected with the inner walls of the two strip plates through bearings, a guide rod is fixedly installed on one side of the two strip plates, and the threads on the surface of the threaded rod are two groups and the rotation directions of the two groups of threads are opposite.
[0017] Preferably, a long strip frame is sleeved on the surface of the threaded rod, the long strip frame is slidably sleeved on the surface of the guide rod, the number of the long strip frame is two and the long strip frame is threadedly connected with the two groups of threads of the threaded rod respectively, an installation plate is fixedly installed on the surface of the long strip frame, an electric push rod is fixedly installed on the inner wall of the installation plate, the electric push rod penetrates through the outer side of the installation plate at both ends, an auxiliary guide wheel is fixedly installed on one end of the output rod of the electric push rod, a trigger block is fixedly installed on the surface of one side of the long strip frame, and a trigger switch is fixedly installed on the surface of the other side of the long strip frame.
[0018] Preferably, a first bevel gear is fixedly sleeved on the surface of the rotating rod, a short rod is movably installed on the inner wall of the vertical frame, the short rod penetrates through the outer side of the vertical frame at both ends, the surface of the short rod is movably connected with the inner wall of the vertical frame through a bearing, a second bevel gear is fixedly installed on one end of the short rod, a main flywheel is fixedly sleeved on the other end of the short rod, a vice flywheel is fixedly sleeved on one end of the threaded rod, the surface of the main flywheel is sleeved with a belt, the belt is sleeved on the surfaces of the main flywheel and the vice flywheel, and the first bevel gear is engaged with the second bevel gear.
[0019] A use method of a heat dissipation frame of a high-performance image video analysis device, comprising the following steps:
[0020] S1: First, accurately insert the corresponding external wires into the various jacks on the body, then connect other required devices and turn on the power to perform operation analysis. During the analysis process, the body will generate heat when running for a long time. Under the ventilation of the ventilation fan, the heat will flow out at the top cover. However, the heat generated by long-term operation is too much, which will cause heat to accumulate at the top cover. At this time, the two temperature sensors installed inside the body will monitor the temperature changes of the components on both sides of the body in real time.
[0021] S2: At the same time, the liquid pump needs to be started through an external controller or switch. The liquid pump will send the coolant to the inside of the Tesla valve through the pipeline at a uniform speed. The coolant will flow back through the pipeline to form a cycle. At this time, because the Tesla valve is in close contact with the air outlet of the top cover, the hot gas sent out will come into contact with the copper Tesla valve. The heat will be carried away by the coolant through heat conduction. The auxiliary pipe connected to the Tesla valve can also carry away heat through heat conduction.
[0022] S3: When the component on one side overheats, the temperature sensor on one side will sense it and start the first motor and the second motor. The first motor operates by relying on the rotating rod and drives the rack to move horizontally through the gear. The rack will move the Tesla valve together and move it to the hotter side for specific and effective heat dissipation. At the same time, the two second motors run at the same time, respectively controlling the reels to adjust the pipelines. After the Tesla valve moves, the pipeline accumulation on one side requires one of the reels to reel in, and the other side requires the other reel to release the appropriate pipeline. This adjustment will always ensure that the pipelines are evenly distributed and will not be messy and affect other structures.
[0023] S4: When the rotating rod rotates, the first bevel gear installed on its surface will drive the second bevel gear to rotate, which will cause the short rod to drive the main flywheel to rotate. The rotation of the main flywheel will drive the auxiliary flywheel to rotate through the belt, which will also cause the threaded rod to rotate. Because the two sets of threads on the surface of the threaded rod have opposite rotation directions, and there are two sets of threads in this mechanism, and the threads on the surfaces of the two threaded rods 302 are arranged in opposite rotation directions, each of the two long racks will be driven to move in the opposite or relative directions. When the oppositely moving side moves, the electric push rod on this side will drive the auxiliary guide wheel away from the pipeline, so as to make room for the moving Tesla valve. The relatively moving side and the oppositely moving side are carried out simultaneously. The two long racks on this side move relative to each other. After the relatively moving side completes the movement, the trigger block and the trigger switch are in contact, and the electric push rod on this side will drive the auxiliary guide wheel close to the pipeline and push the pipeline to deform it, so that it can replace the removed Tesla valve to ensure that heat will not accumulate here.
[0024] S5: the telescopic of the electric push rod is controlled by the trigger block and trigger switch installed on the long rack, when two long racks on one side move relatively, the trigger block presses the trigger switch, the elongation of the electric push rod is completed, on the contrary, the trigger block leaves the trigger switch, the recovery of the electric push rod is completed.
[0025] Compared with the prior art, the present application has the beneficial effects that:
[0026] 1、The present application can achieve the purpose of strengthening heat dissipation by setting the strengthening unit and the auxiliary unit, using the liquid cooling technology of the Tesla valve, the valve body contacts hot gas, when the cooling liquid flows through the valve, the heat is taken away, at the same time, the valve body can be moved to the side with higher temperature in time according to the temperature change on both sides, this strengthening mode can effectively enhance the heat dissipation effect of the device, can take away the large amount of hot gas accumulated in the venting outlet in time, avoid the accumulation of hot gas to cause the heat to continuously rise and affect the smoothness of the device operation, also can prevent internal overheating from causing damage to the elements.
[0027] 2、The present application can achieve the purpose of auxiliary strengthening heat dissipation by setting the uniform heat dissipation mechanism, through a series of adjustment structures cooperate after the Tesla valve is removed, the pipe left is adjusted, the distribution shape is changed, the element heat at this place can be effectively suppressed, the element at this place is prevented from being surrounded by hot gas again, the heat dissipation effect is further improved. DRAWINGS
[0028] Figure 1 It is a schematic diagram of the overall structure of the present application;
[0029] Figure 2 It is a schematic diagram of the overall structure of the present application;
[0030] Figure 3 It is a schematic diagram of the heat dissipation strengthening mechanism of the present application;
[0031] Figure 4 It is a schematic diagram of the local structure of the strengthening unit of the present application;
[0032] Figure 5 It is a schematic diagram of the structure of the strengthening unit of the present application;
[0033] Figure 6 It is an enlarged view of A in the present application; Figure 5
[0034] Figure 7 It is an enlarged view of B in the present application; Figure 5
[0035] Figure 8 It is a schematic diagram of the local structure of the strengthening unit of the present application;
[0036] Figure 9 Structure diagram of auxiliary unit of the application;
[0037] Figure 10 Structure section diagram of uniform heat radiation mechanism of the application;
[0038] Figure 11 Structure diagram of uniform heat radiation mechanism of the application;
[0039] Figure 12 Structure section diagram of uniform heat radiation mechanism of the application;
[0040] Figure 13 Enlarged view of C in the application Figure 12
[0041] Figure 14 Enlarged view of D in the application Figure 12
[0042] Figure 15 Structure section diagram of uniform heat radiation mechanism of the application.
[0043] In the figure: 1, device body; 11, machine body; 12, air fan; 13, top cover; 14, aesthetic cover; 2, heat radiation reinforcing mechanism; 21, reinforcing unit; 2101, liquid tank; 2102, refrigerating device; 2103, liquid pump; 2104, vertical frame; 2105, first motor; 2106, rotating rod; 2107, support plate; 2108, wide gear; 2109, rack; 2110, Tesla valve; 2111, valve cover; 2112, auxiliary pipe; 2113, back plate; 2114, temperature sensor; 22, auxiliary unit; 2201, U-shaped frame; 2202, extension plate; 2203, second motor; 2204, winding drum; 2205, embedded pipe; 2206, conversion box; 2207, sealing bearing; 2208, backwater pipe; 2209, tank inlet pipe; 2210, tank outlet pipe; 2211, water inlet pipe; 2212, first side wheel; 2213, second side wheel; 3, uniform heat radiation mechanism; 301, strip plate; 302, threaded rod; 303, guide rod; 304, first bevel gear; 305, short rod; 306, second bevel gear; 307, main flywheel; 308, auxiliary flywheel; 309, belt; 310, long strip frame; 311, mounting plate; 312, electric push rod; 313, auxiliary guide wheel; 314, trigger block; 315, trigger switch. DETAILED DESCRIPTION
[0044] Clearly, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0045] Embodiment 1: see Figures 1-15 The present application provides a technical solution: a heat dissipation frame of a high-performance image video analysis device, comprising a device body 1, the device body 1 comprising a machine body 11, a ventilation fan 12 being embeddedly installed on one side of the machine body 11, a top cover 13 being fixedly installed on the top of the machine body 11, and a heat dissipation strengthening mechanism 2 being arranged on the surface of the top cover 13.
[0046] The heat dissipation strengthening mechanism 2 comprises a strengthening unit 21 arranged on the surface of the top cover 13.
[0047] The heat dissipation strengthening mechanism 2 further comprises an auxiliary unit 22 arranged on the surface of the top cover 13, the auxiliary unit 22 being used in cooperation with the strengthening unit 21, and the number of the auxiliary unit 22 being two groups.
[0048] One side of the strengthening unit 21 is provided with an even heat dissipation mechanism 3, the even heat dissipation mechanism 3 being used in cooperation with the strengthening unit 21, and the number of the even heat dissipation mechanism 3 being two groups.
[0049] The surface of the top cover 13 is fixedly installed with an aesthetic cover 14.
[0050] As a further limitation of the present application, the strengthening unit 21 comprises a liquid tank 2101 fixedly installed on the surface of the top cover 13, a refrigerating device 2102 being fixedly installed on the inner wall of the liquid tank 2101, a liquid pump 2103 being fixedly installed on the top of the liquid tank 2101, the water delivery end of the liquid pump 2103 being communicated with the liquid tank 2101, and a vertical frame 2104 being fixedly installed on the surface of the top cover 13.
[0051] The top of the vertical frame 2104 is fixedly installed with a first motor 2105, one side of the vertical frame 2104 is fixedly installed with a support plate 2107, the inner wall of the support plate 2107 is movably installed with a rotating rod 2106, both ends of the rotating rod 2106 penetrate to the outer side of the support plate 2107, the surface of the rotating rod 2106 is movably connected with the inner wall of the support plate 2107 through a bearing, one end of the rotating rod 2106 is fixedly connected with one end of the output end of the first motor 2105, the other end of the rotating rod 2106 is fixedly installed with a wide gear 2108, one side of the wide gear 2108 is provided with a rack 2109, the rack 2109 is engaged with the wide gear 2108, one side of the rack 2109 is fixedly installed with a Tesla valve 2110, the top of the Tesla valve 2110 is fixedly installed with a valve cover 2111, the number of the valve cover 2111 is three, one end of the Tesla valve 2110 is fixedly communicated with an auxiliary pipe 2112.
[0052] The inner wall of the top cover 13 is fixedly installed with a back plate 2113, the number of the back plate 2113 is two, one side of the back plate 2113 is fixedly installed with a temperature sensor 2114, by arranging the temperature sensor 2114, the temperature change inside the machine body 11 can be monitored in real time, when the temperature on one side exceeds the set value, the temperature sensor 2114 will start the strengthening unit 21 in time to strengthen heat dissipation.
[0053] The auxiliary unit 22 comprises a U-shaped frame 2201, the U-shaped frame 2201 is fixedly installed on the surface of the top cover 13, one side of the U-shaped frame 2201 is fixedly installed with an extension plate 2202, the bottom of the extension plate 2202 is fixedly installed with a second motor 2203, one end of the output end of the second motor 2203 penetrates through the extension plate 2202 and is fixedly installed with a winding drum 2204, the inner wall of the winding drum 2204 is fixedly installed with an embedded pipe 2205, the inner wall of the U-shaped frame 2201 is fixedly installed with a conversion box 2206, the inner wall of the conversion box 2206 is fixedly installed with a sealing bearing 2207, the inner wall of the sealing bearing 2207 is fixedly communicated with one end of the embedded pipe 2205, by arranging the sealing bearing 2207, in the use process, the normal water passage of the pipeline can not be affected when the winding drum 2204 winds the pipe, at the same time, good sealing property is achieved and liquid leakage does not occur, which is beneficial to the arrangement of the pipeline and prevents the pipeline from being disorderly and affecting the operation of other structures.
[0054] One end of the one side embedded pipe 2205 is fixedly communicated with a backwater pipe 2208, one side of the backwater pipe 2208 is provided with a first side wheel 2212, the bottom of the first side wheel 2212 is fixedly connected with the top cover 13, one end of the backwater pipe 2208 is fixedly communicated with the auxiliary pipe 2112, the top of the one side conversion box 2206 is fixedly communicated with an inlet tank pipe 2209, one end of the inlet tank pipe 2209 is fixedly communicated with the liquid tank 2101, one end of the other side embedded pipe 2205 is fixedly communicated with a water inlet pipe 2211, one side of the water inlet pipe 2211 is provided with a second side wheel 2213, the bottom of the second side wheel 2213 is fixedly connected with the top cover 13, one end of the water inlet pipe 2211 is fixedly communicated with the Tesla valve 2110, the top of the other side conversion box 2206 is fixedly communicated with an outlet tank pipe 2210, one end of the outlet tank pipe 2210 is fixedly communicated with the liquid pump 2103.
[0055] By setting the reinforcing unit 21 and the auxiliary unit 22, the purpose of reinforcing heat dissipation can be achieved, the liquid cooling technology is used by the Tesla valve 2110, the valve body is in contact with hot gas, when the cooling liquid flows through the valve, the heat can be taken away, at the same time, the valve body can be moved to the side with higher temperature in time according to the need of temperature change of two sides, this kind of reinforcing mode can effectively enhance the heat dissipation effect of the device, can take away the large amount of hot gas accumulated in the venting outlet in time, avoid the influence of the smoothness of the device operation caused by the heat rising caused by the hot gas accumulation, also can prevent the internal overheating from causing the damage of the element.
[0056] The specific implementation of the embodiment is: first, the corresponding lead is accurately inserted into each jack on the body 11, then the other devices that need to be matched are connected, and the power supply is turned on to run and analyze. During the analysis process, the body 11 will generate heat during long-term operation. Under the ventilation effect of the ventilation fan 12, the heat will flow out at the top cover 13. However, the heat generated by long-term operation is relatively large, which will cause the heat to accumulate at the top cover 13. At this time, the two temperature sensors 2114 installed inside the body 11 will monitor the temperature changes of the elements on both sides of the body 11 in real time. At the same time, the liquid pump 2103 needs to be started through the external controller or switch. The liquid pump 2103 will extract the cooling liquid from the liquid tank 2101 at a uniform speed and send it to the Tesla valve 2110 through the pipeline. After the cooling liquid passes through the tank outlet pipe 2210, the water inlet pipe 2211, the Tesla valve 2110, the tank inlet pipe 2209 and the return water pipe 2208, it flows back to form a cooling liquid circulation flow. At the same time, the refrigerator 2102 is started to continuously control the temperature of the cooling liquid in the liquid tank 2101. At this time, because the Tesla valve 2110 is attached to the air outlet of the top cover 13, the heat gas sent out will contact the copper Tesla valve 2110, and the heat will be taken away by the cooling liquid through heat conduction. The auxiliary pipe 2112 connected with the Tesla valve 2110 can also take away heat through heat conduction. When the elements on one side of the body 11 are overheated, the temperature sensor 2114 on one side will sense and start the first motor 2105 and the second motor 2203. The first motor 2105 runs by relying on the rotating rod 2106 and drives the rack 2109 to move horizontally through the wide gear 2108. The rack 2109 will move the Tesla valve 2110 to the side with higher temperature for specific and effective heat dissipation. The two second motors 2203 run simultaneously and control the pipe adjustment by the winding drum 2204. After the Tesla valve 2110 moves, one of the winding drums 2204 needs to wind the auxiliary pipe 2112 accumulated on the other side, and the other winding drum 2204 needs to release appropriate auxiliary pipe 2112 on the other side to maintain uniformity. Such adjustment will always ensure the uniform distribution of the auxiliary pipe 2112 and will not be messy to affect other structures.
[0057] Embodiment 2: see Figures 1-15 The present application provides a technical solution: a heat dissipation frame for a high-performance image and video analysis device.
[0058] As a further limitation of the application, the uniform heat dissipation mechanism 3 comprises a strip plate 301 fixedly installed on the surface of the vertical frame 2104, the number of the strip plate 301 is two, the inner walls of the two strip plates 301 are movably connected with a threaded rod 302, both ends of the threaded rod 302 penetrate to the outside of the two strip plates 301, the surface of the threaded rod 302 is movably connected with the inner walls of the two strip plates 301 through bearings, one side of the two strip plates 301 is movably connected with a guide rod 303, and the threads on the surface of the threaded rod 302 are two groups and the rotation directions of the two groups of threads are opposite.
[0059] The surface of the threaded rod 302 is threadedly connected with a long strip frame 310, the long strip frame 310 is movably sleeved on the surface of the guide rod 303, the number of the long strip frame 310 is two and the long strip frame 310 is threadedly connected with the threaded rod 302 with the two groups of threads, the surface of the long strip frame 310 is fixedly connected with a mounting plate 311, the inner wall of the mounting plate 311 is fixedly connected with an electric push rod 312, both ends of the electric push rod 312 penetrate to the outside of the mounting plate 311, one end of the output rod of the electric push rod 312 is fixedly connected with an auxiliary guide wheel 313, the surface of one side of the long strip frame 310 is fixedly connected with a trigger block 314, and the surface of the other side of the long strip frame 310 is fixedly connected with a trigger switch 315. Through the arrangement of the trigger block 314 and the trigger switch 315, the electric push rod 312 can be accurately controlled during use, the auxiliary pipe 2112 can be conveniently adjusted, the shape of the auxiliary pipe 2112 is changed, the heat dissipation effect of the device is effectively improved, and the elements on one side are prevented from being continuously heated again after the Tesla valve 2110 moves to the other side.
[0060] The surface of the rotating rod 2106 is fixedly sleeved with a first bevel gear 304, the inner wall of the vertical frame 2104 is movably connected with a short rod 305, both ends of the short rod 305 penetrate to the outside of the vertical frame 2104, the surface of the short rod 305 is movably connected with the inner wall of the vertical frame 2104 through a bearing, one end of the short rod 305 is fixedly connected with a second bevel gear 306, the other end of the short rod 305 is fixedly sleeved with a main flywheel 307, one end of the threaded rod 302 is fixedly sleeved with a secondary flywheel 308, the surface of the main flywheel 307 is sleeved with a belt 309, the belt 309 is sleeved on the surfaces of the main flywheel 307 and the secondary flywheel 308, and the first bevel gear 304 is engaged with the second bevel gear 306.
[0061] Through the arrangement of the uniform heat dissipation mechanism 3, the purpose of auxiliary heat dissipation enhancement can be achieved, the pipe left after the Tesla valve 2110 moves away is adjusted through a series of adjustment structures, the distribution shape is changed, the heat of the elements at this position can be effectively suppressed, the elements at this position are prevented from being surrounded by hot air again, and the heat dissipation effect is further improved.
[0062] The specific implementation of the embodiment is that: after the position of the Tesla valve 2110 is adjusted to enhance the heat dissipation effect through the monitoring control of the temperature sensor 2114, the heat dissipation on the side where the Tesla valve 2110 moves away still needs to continue, so the first bevel gear 304 mounted on the surface of the rotating rod 2106 will drive the second bevel gear 306 to rotate, which will drive the short rod 305 to drive the main flywheel 307 to rotate, and the rotation of the main flywheel 307 will drive the auxiliary flywheel 308 to rotate through the belt 309, which will drive the two long strip frames 310 on the opposite side to move oppositely, and the electric push rod 312 on the side moving oppositely will drive the auxiliary guide wheel 313 to move away from the pipeline, so as to provide space for the moving Tesla valve 2110, the two long strip frames 310 on the opposite side move oppositely, and the trigger block 314 and the trigger switch 315 are in contact after the movement of the opposite side is completed, the electric push rod 312 on the opposite side will drive the auxiliary guide wheel 313 to move close to the pipeline and push the pipeline to deform, so as to replace the removed Tesla valve 2110 and ensure that heat is not accumulated here. The extension and retraction of the electric push rod 312 are controlled by the trigger block 314 and the trigger switch 315 mounted on the long strip frame 310, when the two long strip frames 310 on one side move oppositely, the trigger block 314 will press the trigger switch 315 to complete the extension of the electric push rod 312, and vice versa.
[0063] A method for using a heat dissipation frame of a high-performance image video analysis device, comprising the following steps:
[0064] S1: First, accurately insert the corresponding external wires into each jack on the machine body 11, then connect other devices that need to be matched, and then connect the power supply to run the analysis. During the analysis process, the machine body 11 will generate heat during long-time operation, and the heat will flow out at the top cover 13 under the ventilation of the ventilation fan 12, but the heat generated during long-time operation is relatively large, which will cause the heat to accumulate at the top cover 13. At this time, the two temperature sensors 2114 installed inside the machine body 11 will monitor the temperature changes of the elements on both sides of the machine body 11 in real time.
[0065] S2: At the same time, the liquid pump 2103 needs to be started through the external controller or switch, and the liquid pump 2103 will send the cooling liquid at a constant speed through the pipeline to the inside of the Tesla valve 2110. The cooling liquid forms a cycle by flowing back through the pipeline. At this time, because the Tesla valve 2110 is attached to the air outlet of the top cover 13, the heat gas sent out will contact the copper Tesla valve 2110, and the heat will be taken away by the cooling liquid through the heat conduction effect. The auxiliary pipe 2112 connected with the Tesla valve 2110 can also take away heat through the heat conduction effect.
[0066] S3: When one side of the element is overheated, the temperature sensor 2114 on one side will sense and start the first motor 2105 and the second motor 2203. The first motor 2105 operates by relying on the rotating rod 2106 and drives the rack 2109 to move horizontally through the wide gear 2108. The rack 2109 will move the Tesla valve 2110 to the side that is relatively hot, and effectively dissipate heat. At the same time, the two second motors 2203 operate simultaneously to control the winding drum 2204 to adjust the pipeline. After the Tesla valve 2110 moves, one side of the pipeline needs to be wound by one of the winding drums 2204, and the other side needs to release appropriate pipeline by the other winding drum 2204. This adjustment will always ensure that the pipeline is evenly distributed and will not be messy to affect other structures.
[0067] S4: While the rotating rod 2106 rotates, the first bevel gear 304 mounted on its surface will drive the second bevel gear 306 to rotate. This will make the short rod 305 drive the main flywheel 307 to rotate, and the rotation of the main flywheel 307 will drive the auxiliary flywheel 308 to rotate through the belt 309. This will drive the two long racks 310 to move in opposite directions or relative to each other. The electric push rod 312 on the side moving in the opposite direction will drive the auxiliary guide wheel 313 away from the pipeline while moving, thus providing space for the moving Tesla valve 2110. The side moving in the opposite direction and the side moving in the opposite direction move at the same time. The two long racks 310 on the side moving in the opposite direction move relative to each other. After the side moving in the opposite direction moves, the trigger block 314 and the trigger switch 315 have contacted. The electric push rod 312 on this side will drive the auxiliary guide wheel 313 to approach the pipeline and push the pipeline to deform. This can replace the removed Tesla valve 2110 and ensure that there is no accumulation of heat here.
[0068] S5: the telescoping of the electric push rod 312 is controlled by the trigger block 314 and the trigger switch 315 installed on the long rack 310, when the two long racks 310 on one side move relative to each other, the trigger block 314 will press the trigger switch 315, and the extension of the electric push rod 312 is completed, and vice versa, the trigger block 314 will leave the trigger switch 315, and the retraction of the electric push rod 312 is completed.
[0069] It should be noted that the relational terms herein such as first and second and the like are used solely to distinguish one from another entity or action without necessarily requiring or implying that there is any such relationship or order between such entities or actions. Also, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can also include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0070] Although embodiments of the present application have been shown and described, it is to be understood that various modifications, substitutions, alternatives, and variations can be made in the embodiments without departing from the spirit and scope of the present application as defined by the appended claims and their equivalents.
Claims
1. A heat dissipation frame of a high-performance image video analysis device, comprising a device body (1), characterized in that: The device body (1) includes a machine body (11), one side of the machine body (11) is embeddedly installed with a ventilation fan (12), the top of the machine body (11) is fixedly installed with a top cover (13), and the surface of the top cover (13) is provided with a heat dissipation strengthening mechanism (2). The heat dissipation strengthening mechanism (2) comprises a strengthening unit (21), which is arranged on the surface of the top cover (13). The surface of the top cover (13) is fixedly installed with a vertical frame (2104). The top of the vertical frame (2104) is fixedly installed with a first motor (2105). One side of the vertical frame (2104) is fixedly installed with a support plate (2107). The inner wall of the support plate (2107) is movably installed with a rotating rod (2106). Both ends of the rotating rod (2106) penetrate the outer side of the support plate (2107). The surface of the rotating rod (2106) is movably connected with the inner wall of the support plate (2107) through a bearing. One end of the rotating rod (2106) is fixedly connected with one end of the output end of the first motor (2105). The other end of the rotating rod (2106) is fixedly installed with a wide gear (2108). One side of the wide gear (2108) is provided with a rack (2109). The rack (2109) is engaged with the wide gear (2108). One side of the rack (2109) is fixedly installed with a Tesla valve (2110). One end of the Tesla valve (2110) is fixedly communicated with an auxiliary pipe (2112). The rack (2109) will move the Tesla valve (2110) to the side with higher temperature for heat dissipation. The heat dissipation strengthening mechanism (2) further comprises an auxiliary unit (22), which is arranged on the surface of the top cover (13). The auxiliary unit (22) is used in cooperation with the strengthening unit (21). The number of the auxiliary unit (22) is two. One side of the strengthening unit (21) is provided with an even heat dissipation mechanism (3), which is used in cooperation with the strengthening unit (21). The number of the even heat dissipation mechanism (3) is two.
2. The heat dissipation frame of a high-performance graph video analysis device according to claim 1, wherein: The strengthening unit (21) comprises a liquid tank (2101), which is fixedly installed on the surface of the top cover (13). The inner wall of the liquid tank (2101) is fixedly installed with a refrigerator (2102). The top of the liquid tank (2101) is fixedly installed with a liquid pump (2103). The water delivery end of the liquid pump (2103) is communicated with the liquid tank (2101). The surface of the top cover (13) is fixedly installed with an aesthetic cover (14).
3. The heat dissipation frame of a high-performance graph video analysis device according to claim 1, wherein, The top of the Tesla valve (2110) is fixedly installed with a valve cover (2111). The number of the valve cover (2111) is three.
4. The heat dissipation frame of a high-performance graph video analysis device according to claim 2, characterized in that: The inner wall of the top cover (13) is fixedly installed with a back plate (2113). The number of the back plate (2113) is two. One side of the back plate (2113) is fixedly installed with a temperature sensor (2114).
5. The heat dissipation frame of a high-performance graph video analysis device according to claim 3, characterized in that: The auxiliary unit (22) comprises a U-shaped frame (2201) fixedly installed on the surface of the top cover (13), one side of the U-shaped frame (2201) is fixedly installed with an extension plate (2202), the bottom of the extension plate (2202) is fixedly installed with a second motor (2203), one end of the output end of the second motor (2203) penetrates through the extension plate (2202) and is fixedly installed with a winding drum (2204), the inner wall of the winding drum (2204) is fixedly installed with an embedded pipe (2205), the inner wall of the U-shaped frame (2201) is fixedly installed with a conversion box (2206), the inner wall of the conversion box (2206) is fixedly installed with a sealing bearing (2207), and the inner wall of the sealing bearing (2207) is fixedly communicated with one end of the embedded pipe (2205).
6. The heat dissipation frame of a high-performance graph video analysis device according to claim 5, characterized in that: One end of the embedded pipe (2205) is fixedly communicated with a return water pipe (2208), one side of the return water pipe (2208) is provided with a first side wheel (2212), the bottom of the first side wheel (2212) is fixedly connected with the top cover (13), one end of the return water pipe (2208) is fixedly communicated with an auxiliary pipe (2112), one end of the embedded pipe (2205) is fixedly communicated with a water inlet pipe (2211), one side of the water inlet pipe (2211) is provided with a second side wheel (2213), the bottom of the second side wheel (2213) is fixedly connected with the top cover (13), one end of the water inlet pipe (2211) is fixedly communicated with a Tesla valve (2110), and one end of the embedded pipe (2205) is fixedly communicated with an outlet pipe (2210).
7. The heat dissipation frame of a high-performance graph video analysis device according to claim 3, characterized in that: The uniform heat dissipation mechanism (3) comprises a strip plate (301) fixedly installed on the surface of the vertical frame (2104), the number of the strip plate (301) is two, a threaded rod (302) is movably installed on the inner walls of the two strip plates (301), both ends of the threaded rod (302) penetrate to the outer sides of the two strip plates (301), the surface of the threaded rod (302) is movably connected with the inner walls of the two strip plates (301) through bearings, a guide rod (303) is fixedly installed on one side of the two strip plates (301), the threads on the surface of the threaded rod (302) are two groups and the rotation directions of the two groups of threads are opposite, and the threads on the surfaces of the two threaded rods (302) are oppositely arranged.
8. The heat dissipation frame of a high-performance graph video analysis device according to claim 7, characterized in that: The surface of the threaded rod (302) is sleeved with a long strip frame (310), the long strip frame (310) is sleeved on the surface of the guide rod (303), the number of the long strip frame (310) is two and is threadedly connected with the threaded rod (302) with two groups of threads respectively, the surface of the long strip frame (310) is fixedly installed with a mounting plate (311), the inner wall of the mounting plate (311) is fixedly installed with an electric push rod (312), both ends of the electric push rod (312) penetrate to the outside of the mounting plate (311), one end of the output rod of the electric push rod (312) is fixedly installed with an auxiliary guide wheel (313), the surface of one side of the long strip frame (310) is fixedly installed with a trigger block (314), and the surface of the other side of the long strip frame (310) is fixedly installed with a trigger switch (315).
9. The heat dissipation frame of a high-performance graph video analysis device according to claim 7, characterized in that: The surface of the rotating rod (2106) is fixedly sleeved with a first bevel gear (304), the inner wall of the vertical frame (2104) is movably installed with a short rod (305), both ends of the short rod (305) penetrate to the outside of the vertical frame (2104), the surface of the short rod (305) is movably connected with the inner wall of the vertical frame (2104) through a bearing, one end of the short rod (305) is fixedly installed with a second bevel gear (306), the other end of the short rod (305) is fixedly sleeved with a main flywheel (307), one end of the threaded rod (302) is fixedly sleeved with a secondary flywheel (308), the surface of the main flywheel (307) is sleeved with a belt (309), the belt (309) is sleeved on the surfaces of the main flywheel (307) and the secondary flywheel (308), and the first bevel gear (304) is engaged with the second bevel gear (306).
10. The method of using a heat dissipation frame for a high-performance graphics video analysis device according to claim 9, wherein, The method comprises the following steps: S1: First, accurately insert the corresponding external lead into each jack on the machine body (11), then connect other devices that need to be matched, and then connect the power supply to run the analysis. During the analysis process, the machine body (11) will generate heat during long-time operation. Under the ventilation effect of the ventilation fan (12), the heat will flow out at the top cover (13). However, the heat generated by long-time operation is relatively large, which will cause the heat to accumulate at the top cover (13). At this time, the two temperature sensors (2114) installed inside the machine body (11) will monitor the temperature changes of the elements on both sides of the machine body (11) in real time; S2: At the same time, the liquid pump (2103) needs to be started through the external controller or switch. The liquid pump (2103) will uniformly send the cooling liquid to the inside of the Tesla valve (2110) through the pipeline. The cooling liquid forms a cycle by flowing back through the pipeline. At this time, because the Tesla valve (2110) is attached to the air outlet of the top cover (13), the heat gas sent out will contact the copper Tesla valve (2110), and the heat will be taken away by the cooling liquid through the heat conduction effect. The auxiliary pipe (2112) communicating with the Tesla valve (2110) can also take away the heat through the heat conduction effect. S3: When one side of the element overheats, the temperature sensor (2114) on one side will sense and start the first motor (2105) and the second motor (2203), the first motor (2105) runs through the rotating rod (2106) and moves the rack (2109) transversely through the wide gear (2108), the rack (2109) will move the Tesla valve (2110) to the hot side for heat dissipation, while the two second motors (2203) operate simultaneously to control the reel (2204) to adjust the pipeline, after the movement of the Tesla valve (2110), one of the reels (2204) is needed to wind the pipeline accumulated on the other side, and the other reel (2204) is needed to release the appropriate pipeline, so the adjustment will always ensure the uniform distribution of the pipeline; S4: While the rotating rod (2106) rotates, the first bevel gear (304) installed on its surface will drive the second bevel gear (306) to rotate, which will make the short rod (305) drive the main flywheel (307) to rotate, and the main flywheel (307) will drive the auxiliary flywheel (308) to rotate through the belt (309), which will drive the screw rod (302) to rotate, because the two groups of threads on the surface of the screw rod (302) are opposite in direction, and because the mechanism has two groups, the threads on the surface of the two screw rods (302) are opposite in direction, so every two strip shelves (310) will move in opposite or opposite directions, while moving, the electric push rod (312) on the side moving in the opposite direction will drive the auxiliary guide wheel (313) away from the pipeline, which will make room for the moving Tesla valve (2110), the side moving in the opposite direction and the side moving in the opposite direction are moving at the same time, the two strip shelves (310) on the side moving in the opposite direction move in opposite directions, after the side moving in the opposite direction moves, the trigger block (314) and the trigger switch (315) have contacted, the electric push rod (312) on the side will drive the auxiliary guide wheel (313) to approach the pipeline and push the pipeline to deform, which can replace the removed Tesla valve (2110); S5: The extension and retraction of the electric push rod (312) is controlled by the trigger block (314) and the trigger switch (315) installed on the strip shelf (310), when the two strip shelves (310) on one side move in opposite directions, the trigger block (314) will press the trigger switch (315), and the extension of the electric push rod (312) will be completed, on the contrary, the trigger block (314) will leave the trigger switch (315), and the retraction of the electric push rod (312) will be completed.
Citation Information
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