Short video data protection device based on AI drive
Through the AI-driven short video data protection device, the equipment temperature is maintained by using electric screws and thermal insulation arc sheet systems, solving the frost problem caused by temperature difference between day and night in winter, and ensuring the stable operation and transmission quality of the equipment.
Patent Information
- Application Number
- CN202510522847.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing video data transmission equipment is prone to frost when the temperature difference between day and night in winter is large, resulting in increased fragility of fiber optic cables, affecting transmission quality and increasing the risk of interruption of short video data transmission.
The short video data protection device based on AI is adopted, and the semi-circular shell cover device is driven by an electric screw, combined with the water storage and thermal insulation arc sheet system, the equipment is self-heating and water diversion source to maintain the temperature of the equipment, prevent frost, and prevent dew corrosion and low-temperature interference through anti-blocking and anti-interference devices.
Effectively prevent frost on the surface of the equipment, maintain transmission quality, prevent the increase in the fragility of fiber optic cables, ensure the stable operation of the equipment in a low-temperature environment, avoid transmission interruption, and reduce dew corrosion and difficulty in starting at low temperatures.
Smart Images

Figure CN120499481A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of short video data protection technology, and specifically to an AI-driven short video data protection device. Background Art
[0002] In today's information age, video surveillance equipment and video data transmission equipment have been installed on major roads in urban and rural areas. The internal components of this type of equipment are sophisticated. Once the outer shell is damaged, the internal circuits or components are prone to malfunction, which can easily cause data loss.
[0003] Patent publication number CN213638018U discloses a protective device for public security video data transmission equipment, comprising a protective cover fixing frame, a rotating and folding protective cover, a monitoring and adjustment device, and a video monitoring device. The protective cover fixing frame is mounted on the monitoring and adjustment device, the rotating and folding protective cover is mounted on the protective cover fixing frame, and the video monitoring device is mounted on the monitoring and adjustment device. This patent belongs to the technical field of video transmission equipment protection devices, specifically referring to a protective device for public security video data transmission equipment. This patent uses a foldable protective cover to protect the video monitor from rain erosion and sun exposure, and uses a fixing frame to fix the protective cover to a steel frame. This effectively solves the problem that video data transmission equipment currently on the market is prone to rust due to long-term rain erosion and sun exposure, and even fails to provide effective protection for internal components.
[0004] However, the device still has shortcomings: it can protect data transmission equipment from rain erosion and sun exposure, but in winter, due to the large temperature difference between day and night, frost is prone to form on the surface of the data transmission equipment. As low temperatures invade smart devices, the optical fiber cables connected to the devices are easily vulnerable, thereby reducing transmission quality. At this time, the possibility of interruption of short video data transmission of AI-driven smart devices is easily increased. Summary of the Invention
[0005] In response to the shortcomings of the existing technology, the present invention provides an AI-driven short video data protection device that solves the problems raised in the above background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a short video data protection device based on AI drive, comprising a supporting bracket, an intelligent device is arranged on the top of the supporting bracket, and the intelligent device realizes automatic transmission of short video data through the AI module, an electric screw is rotatably installed on the top of the right end of the supporting bracket, a semicircular shell is penetrated and movably installed on the outer wall of the electric screw, two limit rods are symmetrically and fixedly installed on the top of the left end of the supporting bracket, a water storage mechanism is fixedly installed inside the top of the semicircular shell, a spiral hose is fixedly installed on the bottom of the water storage mechanism, a water guide mechanism is fixedly installed on the bottom of the spiral hose, an insulation arc sheet is fixedly installed on the bottom of the water guide mechanism, an anti-blocking device is arranged on the periphery of the insulation arc sheet to prevent ice debris from affecting the descent of the semicircular shell, and an anti-interference device is arranged around the electric screw to prevent low temperature from affecting its operation.
[0007] According to the above technical solution, two mounting brackets are symmetrically arranged at the bottom of the support bracket, and the mounting brackets are used for outdoor installation of the support bracket. The outer walls of the two limit rods are penetrated and slidably installed inside the left end of the semicircular shell. The thermal insulation arc sheet is connected to the inside of the water guide mechanism, and a drainage hole is provided at the bottom of the thermal insulation arc sheet. The inner wall of the thermal insulation arc sheet is in contact with the outer wall of the smart device. The mounting bracket is installed outdoors by bolts, and the mounting bracket installs the support bracket in a designated position outdoors. The same is true for the smart device. At this time, the smart device realizes the transmission of intelligent short video data through AI drive; and the semicircular shell shields the smart device to avoid exposure to the sun. At the same time, the semicircular shell arc surface is relied on to drain outdoor rainwater. In order to avoid the temperature difference between day and night in winter, when night falls, the electric screw is started, and the electric screw is When the top of the support bracket rotates, the spiral groove limits the built-in block of the semicircular shell, driving the semicircular shell to slide downward along its own outer wall. At this time, the limit rod limits the semicircular shell, and as the semicircular shell descends, it will gradually cover the smart device; when it rains, the falling rainwater is channeled through the arc surface on the top of the semicircular shell, and a small amount of rainwater falls into the water storage mechanism. Then the water storage mechanism is input into the water guide mechanism through the spiral hose. The water guide mechanism evenly guides the water source from both ends to the inside of the thermal insulation arc sheet. At this time, the thermal insulation arc sheet intercepts the heat emitted by the smart device and heats the water source circulating inside the thermal insulation arc sheet through heat conduction. The non-heat-generating part of the smart device is heated with the help of the circulating water source. Then the water source is discharged through the drainage hole of the thermal insulation arc sheet to take away the excess heat.
[0008] According to the above technical solution, the anti-blocking device includes a resistance plate, the top of the resistance plate is fixedly installed on the top of the inner wall of the semicircular shell, the insulation arc plate is fixedly installed with a limit frame on the side away from the electric screw, a heat conducting plate is slidably installed inside the limit frame, and the heat conducting plate is moved vertically through the limit frame, and the bottom of the support frame is hinged with an arc-shaped baffle through a torsion spring, and the arc-shaped baffle is automatically reset by the elastic force of the torsion spring.
[0009] According to the above technical solution, the bottom of the limit frame is fixedly installed at the top edge of the support bracket, the bottom of the heat conducting plate passes through the inner edge of the support bracket, the top of the heat conducting plate is fixedly installed at the bottom of the resistance plate, the arc baffle is located on the periphery of the mounting frame, and the arc surface of the outer wall of the arc baffle is located on the movement trajectory of the bottom of the heat conducting plate. When the semicircular shell moves downward, it drives the resistance plate to move synchronously. When the resistance plate moves downward, it drives the heat conducting plate to move along the inside of the limit frame toward the bottom of the support bracket. At this time, the limit frame transfers the heat emitted by the insulation arc sheet to the heat conducting plate. When the heat conducting plate moves downward, it will resist the arc surface of the outer wall of the arc baffle. At this time, the hinge axis of the arc baffle generates a rotational force, and the arc baffle moves in an arc trajectory with the hinge axis as the axis toward the mounting frame, and the heat received by the heat conducting plate itself is always radiated to the arc baffle.
[0010] According to the above technical solution, an L-shaped plate is fixedly installed on the side of the heat conducting plate away from the electric screw, a U-shaped frame is fixedly installed on the bottom of the L-shaped plate, and a friction roller is rotatably installed inside the U-shaped frame.
[0011] According to the above technical solution, the U-shaped frame is located on the outer periphery of the semicircular shell away from the electric screw, and the outer wall of the support frame is located on the movement trajectory of the outer wall surface of the friction roller. When the heat conduction plate moves downward, it drives the L-shaped plate to move synchronously, and the L-shaped plate drives the U-shaped frame to move synchronously. When the U-shaped frame moves downward, it drives the friction roller to move synchronously. When the friction roller moves downward, it contacts the outer wall of the support frame and generates friction. At this time, the friction roller rotates inside the U-shaped frame through friction to achieve uniform wiping of the outer wall of the support frame.
[0012] According to the above technical solution, the anti-interference device includes a U-shaped plate, which is fixedly installed on the outer wall of the U-shaped frame near one end of the electric screw, and two U-shaped blocks are symmetrically and fixedly installed inside the U-shaped plate. A pulley is rotatably installed on the bottom of the U-shaped block near one end of the electric screw, and two protective frames are slidably installed on the top of the right end of the supporting frame, and a trapezoidal block is fixedly installed on the side of the protective frame away from the electric screw.
[0013] When the U-shaped frame moves downward, it drives the U-shaped plate to move synchronously. When the U-shaped plate moves downward, it drives the U-shaped block to move synchronously. When the U-shaped block moves downward, it drives the pulley to move synchronously. During the downward movement of the pulley, it contacts and resists the inclined surface of the trapezoidal block. With the pressure of the U-shaped block, the pulley starts to rotate by the resistance force and presses the inclined surface of the trapezoidal block to generate a force for horizontal movement. The trapezoidal block drives the protective frame to slide along the support frame toward the direction close to the electric screw. After the protective frames on both sides are closed together, they wrap the driving part at the bottom of the electric screw.
[0014] According to the above technical solution, an I-shaped roller is rotatably installed inside the protective frame, a sliding plate is movably installed through the outer wall of the reciprocating spiral groove of the I-shaped roller, and a water-absorbing cotton block is fixedly installed on one side of the protective frame near the trapezoidal block.
[0015] According to the above technical solution, the I-shaped roller is designed to be thick at both ends and thin at the middle end. The two ends of the I-shaped roller are in contact with the top of the support frame, and a reciprocating spiral groove begins to be formed at the middle end of the I-shaped roller. The two ends of the sliding plate are slidably installed on the inner wall of the protective frame, and the outer wall of the absorbent cotton block is located on the movement trajectory of the sliding plate. When the protective frame moves horizontally, it drives the I-shaped roller to move synchronously. The friction between the two ends of the I-shaped roller and the top of the support frame causes itself to rotate inside the protective frame. When the I-shaped roller rotates, the reciprocating spiral groove on the outer wall drives the sliding plate to slide and reset along the inner wall of the protective frame. When the sliding plate slides toward the trapezoidal block, it will resist the absorbent cotton block and cause deformation, and the protective frame will drive the absorbent cotton block to move synchronously.
[0016] The present invention provides an AI-driven short video data protection device with the following beneficial effects: (1) The present invention uses the electric screw, semicircular shell, limit rod, water storage mechanism, spiral hose, water guide mechanism, heat insulation arc sheet, anti-blocking device, contact plate, limit frame and heat conduction plate to cover the smart device with the semicircular shell, thereby achieving a certain degree of isolation from the external cold air. At the same time, with the help of the self-heating generated by the operation of the smart device, the internal temperature of the semicircular shell is increased, thereby reducing heat loss and ensuring that the smart device can still operate smoothly in a low-temperature environment; the water source guided by the water guide mechanism ensures that the smart device as a whole can be evenly heated at low temperatures at night, and the heat carried by the discharged water source ensures that the smart device is always at a suitable operating temperature, avoiding frost on the surface of the smart device due to the temperature difference between day and night, preventing the optical fiber cable connected to the smart device from increasing in fragility and thus reducing transmission quality, and avoiding interruption of short video data transmission.
[0017] (2) The present invention sets an anti-blocking device, and cooperates with a semicircular shell, a contact plate, a limit frame, a heat conduction plate, an arc baffle, an L-shaped plate, a U-shaped frame and a friction roller. The heat conduction causes the arc baffle to generate a certain amount of self-heating to avoid freezing, so that it can automatically reset itself through the elastic force of the torsion spring. The arc baffle guides the dew dripping around the mounting frame due to the temperature difference downward through its own arc surface, thereby preventing the mounting frame from being eroded by long-term dew and causing aggravated oxidation, and preventing the mounting frame from loosening and increasing the risk of the smart device falling from a high altitude. The friction roller wipes the outer wall of the supporting frame by self-rotation, effectively improving the effect of the friction roller on removing dew adhered to the outer wall of the supporting frame, thereby preventing the semicircular shell from covering the supporting frame and causing freezing between the semicircular shell and the semicircular shell due to dew, thereby increasing the wear of the semicircular shell when it is opened.
[0018] (3) The present invention provides an anti-interference device, and cooperates with a U-shaped frame, a U-shaped plate, a U-shaped block, a pulley, a protective frame, a trapezoidal block, an I-shaped roller, a sliding plate and a water-absorbing cotton block. The protective frame provides good protection for the electric screw drive part, thereby preventing the electric screw drive part from increasing the difficulty of secondary starting due to low temperature, thereby preventing interference with the overall operation effect of the equipment and ensuring that the electric screw can operate for a long time; the water vapor around the electric screw is removed by horizontal wiping with the water-absorbing cotton block, and the extrusion deformation of the sliding plate enables the water-absorbing cotton block to disperse the water vapor into itself in a timely and rapid manner, thereby accelerating the drying rate of the water vapor, and preventing the residual water vapor from corroding the electric screw and causing overall equipment operation failure, affecting data transmission. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A schematic diagram of the present invention as a whole; Figure 2 It is a right side cross-sectional schematic diagram of the present invention as a whole; Figure 3 This is a schematic diagram of the peripheral structure of the semicircular shell of the present invention; Figure 4 This is a schematic cross-sectional view of the semicircular shell of the present invention from the right side perspective; Figure 5 Schematic diagram of the anti-blocking device of the present invention; Figure 6 This is a schematic diagram of the anti-blocking device of the present invention from the right side perspective; Figure 7 Schematic diagram of the anti-interference device of the present invention; Figure 8 It is a schematic cross-sectional view of the left side of the anti-interference device of the present invention.
[0020] In the figure: 1. Support frame; 2. Mounting frame; 3. Intelligent device; 4. Electric screw; 5. Semicircular shell; 6. Limit rod; 7. Water storage mechanism; 8. Spiral hose; 9. Water guide mechanism; 10. Insulation arc plate; 11. Anti-blocking device; 111. Resistance plate; 112. Limit frame; 113. Heat conduction plate; 114. Arc baffle; 115. L-shaped plate; 116. U-shaped frame; 117. Friction roller; 12. Anti-interference device; 121. U-shaped plate; 122. U-shaped block; 123. Pulley; 124. Protective frame; 125. Trapezoidal block; 126. I-shaped roller; 127. Sliding plate; 128. Water-absorbing cotton block. DETAILED DESCRIPTION
[0021] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0022] See also Figures 1-8One embodiment of the present invention is: a short video data protection device based on AI drive, comprising a supporting frame 1, a smart device 3 is arranged on the top of the supporting frame 1, and the smart device 3 realizes automatic transmission of short video data through the AI module, an electric screw 4 is rotatably installed on the top of the right end of the supporting frame 1, and a semicircular shell 5 is movably installed through the outer wall of the electric screw 4, and two limit rods 6 are symmetrically and fixedly installed on the top of the left end of the supporting frame 1, a water storage mechanism 7 is fixedly installed inside the top of the semicircular shell 5, a spiral hose 8 is fixedly installed at the bottom of the water storage mechanism 7, a water guide mechanism 9 is fixedly installed at the bottom of the spiral hose 8, and an insulation arc sheet 10 is fixedly installed at the bottom of the water guide mechanism 9, and an anti-blocking device 11 is arranged on the periphery of the insulation arc sheet 10 to prevent ice debris from affecting the descent of the semicircular shell 5, and an anti-interference device 12 is arranged around the electric screw 4 to prevent low temperature from affecting its operation.
[0023] Two mounting brackets 2 are symmetrically arranged at the bottom of the support bracket 1. The mounting brackets 2 are used for outdoor installation of the support bracket 1. The outer walls of the two limit rods 6 are penetrated and slidably installed inside the left end of the semicircular shell 5. The insulation arc sheet 10 is connected to the inside of the water guide mechanism 9, and a drainage hole is provided at the bottom of the insulation arc sheet 10. The inner wall of the insulation arc sheet 10 is in contact with the outer wall of the smart device 3.
[0024] According to the above embodiment, the smart device 3 is covered by the semicircular shell 5 to achieve a certain degree of isolation from the external cold air. At the same time, the self-heating generated by the smart device 3 during operation is used to increase the internal temperature of the semicircular shell 5, thereby reducing heat loss and ensuring that the smart device 3 can still operate smoothly in a low-temperature environment; the water source guided by the water guide mechanism 9 ensures that the smart device 3 as a whole can be evenly heated at low temperatures at night, and the heat carried by the discharged water ensures that the smart device 3 is always at a suitable operating temperature, avoiding frost on the surface of the smart device 3 due to the temperature difference between day and night, preventing the optical fiber cable connected to the smart device 3 from increasing in fragility and thus reducing the transmission quality, and avoiding interruption of short video data transmission.
[0025] When in use, the mounting bracket 2 is installed outdoors by means of bolts, and the mounting bracket 2 installs the supporting bracket 1 in a designated position outdoors. The same is true for the smart device 3. At this time, the smart device 3 realizes the transmission of intelligent short video data through AI drive; and the semicircular shell 5 shields the smart device 3 to avoid exposure to the sun. At the same time, the arc surface of the semicircular shell 5 is relied on to guide the outdoor rain. In order to avoid the temperature difference between day and night in winter, when night falls, the electric screw 4 is started. When the electric screw 4 rotates on the top of the supporting bracket 1, the spiral groove restricts the built-in block of the semicircular shell 5, driving the semicircular shell 5 to slide downward along its own outer wall. At this time, the limit rod 6 limits the semicircular shell 5. The descent of the semicircular shell 5 will gradually cover the smart device 3; when it rains, the falling rainwater is guided through the arc surface at the top of the semicircular shell 5, and a small amount of rainwater falls into the water storage mechanism 7. Then the water storage mechanism 7 is input into the water guide mechanism 9 through the spiral hose 8. The water guide mechanism 9 guides the water source evenly from both ends to the inside of the thermal insulation arc sheet 10. At this time, the thermal insulation arc sheet 10 intercepts the heat emitted by the smart device 3 and heats the water source circulating inside the thermal insulation arc sheet 10 through heat conduction. The non-heat-generating part of the smart device 3 is heated by the circulating water source, and then the water source is discharged through the drainage hole of the thermal insulation arc sheet 10 to take away the excess heat.
[0026] According to the above embodiment, the smart device 3 is covered by the semicircular shell 5 to achieve a certain degree of isolation from the external cold air. At the same time, the self-heating generated by the smart device 3 during operation is used to increase the internal temperature of the semicircular shell 5, thereby reducing heat loss and ensuring that the smart device 3 can still operate smoothly in a low-temperature environment; the water source guided by the water guide mechanism 9 ensures that the smart device 3 as a whole can be evenly heated at low temperatures at night, and the heat carried by the discharged water ensures that the smart device 3 is always at a suitable operating temperature, avoiding frost on the surface of the smart device 3 due to the temperature difference between day and night, preventing the optical fiber cable connected to the smart device 3 from increasing in fragility and thus reducing the transmission quality, and avoiding interruption of short video data transmission.
[0027] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes an anti-blocking device 11; The anti-blocking device 11 includes a resistance plate 111, the top of the resistance plate 111 is fixedly installed on the top of the inner wall of the semicircular shell 5, and a limit frame 112 is fixedly installed on the side of the insulation arc plate 10 away from the electric screw 4. A heat conducting plate 113 is slidably installed inside the limit frame 112, and the heat conducting plate 113 is moved vertically through the limit frame 112. The bottom of the support frame 1 is hinged with an arc baffle 114 through a torsion spring, and the arc baffle 114 is automatically reset by the elastic force of the torsion spring.
[0028] The bottom of the limit frame 112 is fixedly installed at the top edge of the support bracket 1, the bottom of the heat conducting plate 113 passes through the inner edge of the support bracket 1, the top of the heat conducting plate 113 is fixedly installed at the bottom of the resistance plate 111, and the arc baffle 114 is located on the periphery of the mounting frame 2, and the arc surface of the outer wall of the arc baffle 114 is located on the movement trajectory of the bottom of the heat conducting plate 113.
[0029] An L-shaped plate 115 is fixedly mounted on the side of the heat conducting plate 113 away from the electric screw 4 , a U-shaped frame 116 is fixedly mounted on the bottom of the L-shaped plate 115 , and a friction roller 117 is rotatably mounted inside the U-shaped frame 116 .
[0030] The U-shaped frame 116 is located at the periphery of the semicircular shell 5 away from the electric screw 4, and the outer wall of the support frame 1 is located on the movement track of the outer wall surface of the friction roller 117.
[0031] According to the above embodiment, the arc-shaped baffle 114 is prompted to generate a certain amount of self-heating through heat conduction to avoid freezing, so that it can automatically reset itself through the elastic force of the torsion spring, and the arc-shaped baffle 114 guides the dew dripping around the mounting frame 2 due to the temperature difference downward through its own arc surface, thereby avoiding the mounting frame 2 from being eroded by long-term dew and causing aggravated oxidation, and preventing the mounting frame 2 from loosening and increasing the risk of the smart device 3 falling from a high altitude; the friction roller 117 wipes the outer wall of the supporting frame 1 through self-rotation, effectively improving the effect of the friction roller 117 on removing dew adhered to the outer wall of the supporting frame 1, thereby avoiding the semi-circular shell 5 covering the supporting frame 1 and causing freezing between itself and the semi-circular shell 5 due to dew, thereby increasing the wear of the semi-circular shell 5 when it is opened.
[0032] When in use, the semicircular shell 5 moves downward and drives the contact plate 111 to move synchronously. When the contact plate 111 moves downward, it drives the heat conducting plate 113 to move along the inner side of the limit frame 112 toward the bottom of the support frame 1. At this time, the limit frame 112 transfers the heat emitted by the heat insulation arc sheet 10 to the heat conducting plate 113. When the heat conducting plate 113 moves downward, it will resist the outer wall arc surface of the arc baffle 114. At this time, the hinge axis of the arc baffle 114 generates a rotational force, and the arc baffle 114 is axially centered and moves toward the mounting frame 2. The arc surface moves, and the heat received by the heat conducting plate 113 itself is always radiated to the arc baffle 114; when the heat conducting plate 113 moves downward, it drives the L-shaped plate 115 to move synchronously, and the L-shaped plate 115 drives the U-shaped frame 116 to move synchronously, and when the U-shaped frame 116 moves downward, it drives the friction roller 117 to move synchronously, and when the friction roller 117 moves downward, it contacts the outer wall of the support frame 1 and generates friction. At this time, the friction roller 117 rotates inside the U-shaped frame 116 through friction to achieve uniform wiping of the outer wall of the support frame 1.
[0033] According to the above embodiment, the arc-shaped baffle 114 is prompted to generate a certain amount of self-heating through heat conduction to avoid freezing, so that it can automatically reset itself through the elastic force of the torsion spring, and the arc-shaped baffle 114 guides the dew dripping around the mounting frame 2 due to the temperature difference downward through its own arc surface, thereby avoiding the mounting frame 2 from being eroded by long-term dew and causing aggravated oxidation, and preventing the mounting frame 2 from loosening and increasing the risk of the smart device 3 falling from a high altitude; the friction roller 117 wipes the outer wall of the supporting frame 1 through self-rotation, effectively improving the effect of the friction roller 117 on removing dew adhered to the outer wall of the supporting frame 1, thereby avoiding the semi-circular shell 5 covering the supporting frame 1 and causing freezing between itself and the semi-circular shell 5 due to dew, thereby increasing the wear of the semi-circular shell 5 when it is opened.
[0034] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes an anti-interference device 12; The anti-interference device 12 includes a U-shaped plate 121, which is fixedly installed on the outer wall of the U-shaped frame 116 near one end of the electric screw 4. Two U-shaped blocks 122 are symmetrically and fixedly installed inside the U-shaped plate 121. A pulley 123 is rotatably installed at the bottom of the U-shaped block 122 near one end of the electric screw 4. Two protective frames 124 are slidably installed on the top of the right end of the supporting frame 1, and a trapezoidal block 125 is fixedly installed on the side of the protective frame 124 away from the electric screw 4.
[0035] The interior of the protection frame 124 is hollowed out, and a spring is provided between the bottom of the protection frame 124 and the top of the support frame 1 . The protection frame 124 is reset after movement by the spring force, and the inclined surface of the trapezoidal block 125 contacts the outer wall of the pulley 123 .
[0036] An I-shaped roller 126 is rotatably installed inside the protection frame 124 , and a sliding plate 127 is movably installed through the outer wall of the reciprocating spiral groove of the I-shaped roller 126 . A water-absorbing cotton block 128 is fixedly installed on one side of the protection frame 124 near the trapezoidal block 125 .
[0037] The I-shaped roller 126 is designed to be thick at both ends and thin in the middle. The two ends of the I-shaped roller 126 are in contact with the top of the support frame 1, and a reciprocating spiral groove begins to be formed at the middle end of the I-shaped roller 126. The two ends of the sliding plate 127 are slidably installed on the inner wall of the protective frame 124, and the outer wall of the absorbent cotton block 128 is located on the movement trajectory of the sliding plate 127.
[0038] According to the above embodiment, the protective frame 124 is used to well protect the driving part of the electric screw 4, so as to avoid the driving part of the electric screw 4 from increasing the difficulty of secondary starting due to low temperature, thereby preventing the overall operation effect of the equipment from interfering, and ensuring that the electric screw 4 can operate for a long time; the water vapor around the electric screw 4 is removed by horizontal wiping of the absorbent cotton block 128, and the extrusion deformation of the sliding plate 127 enables the absorbent cotton block 128 to disperse the water vapor into itself in a timely and rapid manner, thereby accelerating the drying rate of the water vapor, and avoiding the residual water vapor from corroding the electric screw 4, causing the overall operation failure of the equipment and affecting data transmission.
[0039] When in use, when the U-shaped frame 116 moves downward, it drives the U-shaped plate 121 to move synchronously. When the U-shaped plate 121 moves downward, it drives the U-shaped block 122 to move synchronously. When the U-shaped block 122 moves downward, it drives the pulley 123 to move synchronously. In the process of the pulley 123 moving downward, it contacts and resists the inclined surface of the trapezoidal block 125. With the pressure of the U-shaped block 122, the pulley 123 is prompted to start rotating by the resistance force and press the inclined surface of the trapezoidal block 125 to generate a horizontal movement force. The trapezoidal block 125 drives the protective frame 124 to slide along the support frame 1 toward the direction close to the electric screw rod 4. After the protective frames 124 are closed together, they wrap the driving part at the bottom of the electric screw 4; when the protective frame 124 moves horizontally, it drives the I-shaped roller 126 to move synchronously, and the friction between the two ends of the I-shaped roller 126 and the top of the support frame 1 causes itself to rotate inside the protective frame 124. When the I-shaped roller 126 rotates, the reciprocating spiral groove on the outer wall drives the sliding plate 127 to slide along the inner wall of the protective frame 124 and reset. When the sliding plate 127 slides toward the trapezoidal block 125, it will resist the absorbent cotton block 128 and deform, and the protective frame 124 will drive the absorbent cotton block 128 to move synchronously.
[0040] According to the above embodiment, the protective frame 124 is used to well protect the driving part of the electric screw 4, so as to avoid the driving part of the electric screw 4 from increasing the difficulty of secondary starting due to low temperature, thereby preventing the overall operation effect of the equipment from interfering, and ensuring that the electric screw 4 can operate for a long time; the water vapor around the electric screw 4 is removed by horizontal wiping of the absorbent cotton block 128, and the extrusion deformation of the sliding plate 127 enables the absorbent cotton block 128 to disperse the water vapor into itself in a timely and rapid manner, thereby accelerating the drying rate of the water vapor, and avoiding the residual water vapor from corroding the electric screw 4, causing the overall operation failure of the equipment and affecting data transmission.
[0041] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A short video data protection device based on AI drive, comprising a support frame (1), characterized in that: The support frame (1) is provided with an intelligent device (3) on the top, and the intelligent device (3) realizes automatic transmission of short video data through an AI module. An electric screw (4) is rotatably installed on the top of the right end of the support frame (1), and a semicircular shell (5) is movably installed through the outer wall of the electric screw (4). Two limit rods (6) are symmetrically and fixedly installed on the top of the left end of the support frame (1). A water storage mechanism (7) is fixedly installed inside the top of the semicircular shell (5). A spiral hose (8) is fixedly installed on the bottom of the water storage mechanism (7). A water guide mechanism (9) is fixedly installed on the bottom of the spiral hose (8). An insulation arc sheet (10) is fixedly installed on the bottom of the water guide mechanism (9). An anti-blocking device (11) is provided on the periphery of the insulation arc sheet (10) to prevent ice debris from affecting the descent of the semicircular shell (5). An anti-interference device (12) is provided around the electric screw (4) to prevent low temperature from affecting its operation.
2. The AI-driven short video data protection device according to claim 1, characterized in that: Two mounting frames (2) are symmetrically arranged at the bottom of the support frame (1), and the mounting frames (2) are used for outdoor installation of the support frame (1). The outer walls of the two limit rods (6) are both penetrated and slidably mounted inside the left end of the semicircular shell (5). The thermal insulation arc sheet (10) is connected to the inside of the water guide mechanism (9), and a drainage hole is provided at the bottom of the thermal insulation arc sheet (10). The inner wall of the thermal insulation arc sheet (10) is in contact with the outer wall of the smart device (3).
3. The AI-driven short video data protection device according to claim 2, characterized in that: The anti-blocking device (11) includes a contact plate (111), the top of the contact plate (111) is fixedly mounted on the top of the inner wall of the semicircular shell (5), a limit frame (112) is fixedly mounted on the side of the heat-insulating arc sheet (10) away from the electric screw rod (4), a heat-conducting plate (113) is slidably mounted inside the limit frame (112), and the heat-conducting plate (113) is moved in the vertical direction through the limit frame (112), and an arc baffle (114) is hinged to the bottom of the support frame (1) through a torsion spring, and the arc baffle (114) is automatically reset by the elastic force of the torsion spring.
4. The AI-driven short video data protection device according to claim 3, characterized in that: The bottom of the limit frame (112) is fixedly mounted on the top edge of the support frame (1), the bottom of the heat conducting plate (113) passes through the inner edge of the support frame (1), the top of the heat conducting plate (113) is fixedly mounted on the bottom of the resistance plate (111), the arc baffle (114) is located on the periphery of the mounting frame (2), and the arc surface of the outer wall of the arc baffle (114) is located on the movement trajectory of the bottom of the heat conducting plate (113).
5. The AI-driven short video data protection device according to claim 4, characterized in that: An L-shaped plate (115) is fixedly mounted on the side of the heat conducting plate (113) away from the electric screw rod (4), a U-shaped frame (116) is fixedly mounted on the bottom of the L-shaped plate (115), and a friction roller (117) is rotatably mounted inside the U-shaped frame (116).
6. The AI-driven short video data protection device according to claim 5, characterized in that: The U-shaped frame (116) is located at the periphery of the semicircular shell (5) away from the electric screw (4), and the outer wall of the support frame (1) is located on the motion trajectory of the outer wall surface of the friction roller (117).
7. The AI-driven short video data protection device according to claim 6, characterized in that: The anti-interference device (12) includes a U-shaped plate (121), wherein the U-shaped plate (121) is fixedly mounted on the outer wall of the U-shaped frame (116) at one end close to the electric screw (4), and two U-shaped blocks (122) are symmetrically and fixedly mounted inside the U-shaped plate (121). A pulley (123) is rotatably mounted on the bottom of the U-shaped block (122) at one end close to the electric screw (4). Two protective frames (124) are slidably mounted on the top of the right end of the support frame (1), and a trapezoidal block (125) is fixedly mounted on the side of the protective frame (124) away from the electric screw (4).
8. The AI-driven short video data protection device according to claim 7, characterized in that: The interior of the protection frame (124) is hollowed out, a spring is provided between the bottom of the protection frame (124) and the top of the support frame (1), and the protection frame (124) is reset after movement by the spring force, and the inclined surface of the trapezoidal block (125) contacts the outer wall of the pulley (123).
9. The AI-driven short video data protection device according to claim 8, characterized in that: An I-shaped roller (126) is rotatably mounted inside the protection frame (124), a sliding plate (127) is movably mounted through the outer wall of the reciprocating spiral groove of the I-shaped roller (126), and a water-absorbing cotton block (128) is fixedly mounted on one side of the protection frame (124) near the trapezoidal block (125).
10. The AI-driven short video data protection device according to claim 8, characterized in that: The I-shaped roller (126) is designed to be thick at both ends and thin at the middle end. The two ends of the I-shaped roller (126) are in contact with the top of the support frame (1), and a reciprocating spiral groove begins at the middle end of the I-shaped roller (126). The two ends of the sliding plate (127) are slidably mounted on the inner wall of the protective frame (124), and the outer wall of the absorbent cotton block (128) is located on the movement trajectory of the sliding plate (127).
Citation Information
Patent Citations
Protection device for public security video data transmission equipment
CN213638018U