Auxiliary energy-saving illuminating lamp for monitoring camera
By designing elastic airbags and ventilation components in the inlay groove of the surveillance camera, combining natural wind power and artificial control, the heat dissipation problem of inlay lighting is solved, the light source performance and life are improved, and energy consumption is reduced.
Patent Information
- Application Number
- CN202510619377.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-07-08
AI Technical Summary
The inlay lighting of existing surveillance cameras has poor heat dissipation effect in low-light environments, resulting in unstable light source performance and life, and high energy consumption.
An auxiliary energy-saving lighting lamp for surveillance cameras is designed to achieve natural and artificial cooling in the inlay groove through elastic airbags and ventilation components, combine wind power to automatically dissipate heat, and use a combination of natural resources and artificial control to dissipate heat.
It improves the heat dissipation efficiency of the lighting lamp, extends the service life of the light source, reduces energy consumption, and enhances the stability and lighting effect of the lamp.
Smart Images

Figure CN120274256A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy-saving lighting devices, and more specifically, it relates to an auxiliary energy-saving lighting lamp for a surveillance camera. Background Art
[0002] A surveillance camera is a device used to monitor and record activities in a specific area. It has become an important safety guarantee device in daily life and is widely used in many fields such as security, traffic management, commercial monitoring, and smart homes. However, the effect of a surveillance camera in low-light environments is limited, and a lighting lamp can provide additional light sources in case of insufficient light. The auxiliary lighting lamp of a surveillance camera usually uses an LED lighting lamp. Using an auxiliary lighting lamp can significantly improve the monitoring effect at night or in a dark environment to ensure that the camera can capture clear images.
[0003] Surveillance cameras are usually installed between high-rise buildings in the city. The types of its auxiliary LED lighting lamps are usually inlaid and non-inlaid. For the inlaid type, it is usually installed in a sealed form. However, the sealed installation will limit the heat dissipation of the lamp. Although the high-rise buildings in the city will produce a "wind tunnel effect", the wind is accelerated between the buildings, resulting in an increase in wind speed and gusts formed between the buildings. However, this kind of wind only cools the outer surface of the lighting lamp installation shell and cannot penetrate into the inlaid groove to cool the lighting lamp. The auxiliary lighting lamp is very energy-consuming in a long-term overheated state, and the performance and lifespan of the light source are unstable. Therefore, corresponding improvements are urgently needed. Summary of the Invention
[0004] The present invention provides an auxiliary energy-saving lighting lamp for a surveillance camera, which can achieve ventilation in the inlaid groove and automatically cool the lighting lamp with the cooperation of natural resources, and can actively cool the lighting lamp when the camera is manually deflected. Through the cooperation of automatic and active cooling, the performance and service life of the lighting light source can be effectively improved, and the technical problem of difficult cooling of the inlaid lighting lamp in the prior art is solved.
[0005] The present invention provides an auxiliary energy-saving lighting lamp for a surveillance camera, including a camera body. An inlaid frame is detachably installed on the upper part of the camera body. An inlaid groove is formed on one side of the inlaid frame. A lighting lamp body is arranged in the inlaid groove. It further includes:
[0006] Ventilation assembly, the ventilation assembly includes a U-shaped frame fixedly installed on one side of the inlay frame, an elastic airbag is fixedly installed between the top wall of the inner cavity of the U-shaped frame and the inlay frame, an exhaust port is opened in the inner side wall of the inlay frame close to the U-shaped frame, one end of the exhaust port is communicated with the inner cavity of the inlay groove, the air outlet end of the elastic airbag is fixedly installed with the other end of the exhaust port, the air inlet end of the elastic airbag is communicated with the inner cavity of the U-shaped frame, a fan blade is rotatably installed in one end of the exhaust port close to the inlay groove, a cross piece is fixedly installed at one end of the fan blade close to the lighting lamp body, and a clamping assembly is arranged in the inner cavity of the inlay groove.
[0007] As a further optimized solution of the present invention, the clamping assembly includes slots uniformly opened in the inner cavity of the inlay groove, sliders are slidably installed in the inner cavities of each group of slots, telescopic springs are fixedly installed between each group of sliders and the inner cavities of the adjacent slots, balls are rotatably installed on one side of each group of sliders close to the lighting lamp body, grooves adapted to the balls are opened on the lighting lamp body, chutes are uniformly opened on each group of sliders, T-shaped rods are slidably installed in the inner cavities of each group of chutes, elastic ropes are fixedly installed at one ends of each group of T-shaped rods far from the lighting lamp body, and the other ends of each group of elastic ropes are fixedly installed with the inner cavities of the adjacent slots;
[0008] T-shaped plates are contacted and arranged on the front and back sides of the elastic airbag, both groups of T-shaped plates are slidably installed with the U-shaped frame, limiting plates are contacted and arranged on the opposite sides of the two groups of T-shaped plates, a mounting seat is movably installed at the bottom end of the camera body, and both groups of limiting plates are fixedly installed with the adjacent side of the mounting seat.
[0009] As a further optimized solution of the present invention, an extrusion plate is contacted and arranged on one side of the elastic airbag, a movable groove adapted to the extrusion plate is opened on the U-shaped frame, the extrusion plate is rotatably installed in the inner cavity of the movable groove, a baffle is fixedly installed at the top of the extrusion plate, air outlet ports are uniformly opened on the side of the inlay frame far from the U-shaped frame, the other ends of each group of air outlet ports are communicated with the inner cavity of the inlay groove, one-way valves are installed in the inner cavities of each group of air outlet ports, a sealing ring is fixedly installed on the side of the inner cavity of the inlay groove far from the U-shaped frame, the sealing ring is contacted and arranged with the outer wall of the lighting lamp body, an air suction port is opened at the bottom of the U-shaped frame, a cavity is opened in the inlay frame, through ports are opened on one side of each group of slots close to the cavity, both ends of each group of through ports are respectively communicated with the cavity and the inner cavity of the adjacent slot, a through hole is opened on one side of the cavity, and the other end of the through hole is communicated with the inner cavity of the exhaust port.
[0010] As a further optimization solution of the present invention, an I-shaped heat conducting plate is fixedly installed between the inner cavity of the elastic airbag and the top of the U-shaped frame. A first fin is fixedly installed on the top of the I-shaped heat conducting plate, and a second fin is fixedly installed on the bottom of the I-shaped heat conducting plate.
[0011] As a further optimization solution of the present invention, an air inlet hole is formed in the inlay frame. One end of the air inlet hole is fixedly installed with the air inlet end of the sealing ring, and the other end of the air inlet hole is communicated with the inner cavity of the adjacent air outlet.
[0012] As a further optimization solution of the present invention, a sealing block is installed between the top end of the extrusion plate and the inner cavity of the movable groove, and a filter screen is fixedly installed in the inner cavity of the air suction port.
[0013] As a further optimization solution of the present invention, impact blocks are uniformly and fixedly installed on the side of the extrusion plate away from the elastic airbag. Each group of impact blocks is in contact with the inner cavity wall of the U-shaped frame. The elastic airbag is in a compressed state in its initial state.
[0014] As a further optimization solution of the present invention, the telescopic spring is in a compressed state in its initial state, and the size of the groove is one-third of the spherical surface of the ball.
[0015] As a further optimization solution of the present invention, anti-slip patterns are provided at one ends of the groups of T-shaped rods close to the illuminating lamp body.
[0016] As a further optimization solution of the present invention, a push rod is arranged below the cross-shaped piece. The push rod is slidably installed in the inlay frame, and one side of the push rod is in contact with the illuminating lamp body.
[0017] The beneficial effects of the present invention are as follows:
[0018] 1. For the auxiliary energy-saving illuminating lamp for a monitoring camera of the present invention, the elastic airbag blows air into the inner cavity of the inlay groove, and under the cooperation of the rotation of the cross-shaped piece, the gas can be evenly diffused into the inner cavity of the inlay groove, which can effectively improve the cooling effect on the illuminating lamp body, avoid the situation that the previous wind cannot penetrate into the inlay groove to cool the illuminating lamp body, resulting in overheating of the lamp during long-term use, effectively improve the performance and service life of the light source of the illuminating lamp body, reduce energy consumption, not only can effectively utilize natural resources, but also can reduce the use cost.
[0019] 2. An auxiliary energy-saving lighting lamp for a surveillance camera according to the present invention can realize the upward inclined sliding of the T-shaped plate on the U-shaped frame and the extrusion of the elastic airbag under the cooperation of the T-shaped plate and the limiting plate by manually controlling the forward and backward deflection of the camera body. At this time, the effect of actively blowing air for heat dissipation controlled manually can be achieved in the case of no gust of wind. Through the cooperation with the automatic heat dissipation of the external gust of wind, the heat dissipation effect of the lighting lamp body can be effectively improved, thereby effectively improving the performance and service life of the light source of the lighting lamp body.
[0020] 3. An auxiliary energy-saving lighting lamp for a surveillance camera according to the present invention, while blowing air into the inner cavity of the embedding groove by the elastic airbag, will also increase the pressure in the inner cavity of the slotted cavity, enabling the gas to push the T-shaped rod to move into contact with the surface of the lighting lamp body and apply a clamping force to the lighting lamp body, further improving the clamping force on the lighting lamp body and enhancing the stability of the lighting lamp body during the air blowing process at the exhaust port, and effectively improving the auxiliary lighting effect of the lighting lamp body.
[0021] 4. An auxiliary energy-saving lighting lamp for a surveillance camera according to the present invention can effectively improve the heat dissipation efficiency of the first fin through the external wind force, thereby reducing the temperature of the gas in the elastic airbag. By constantly reducing the temperature of the gas in the elastic airbag, when the gas in the elastic airbag is discharged into the inner cavity of the embedding groove, the temperature reduction efficiency of the lighting lamp body can be effectively improved, and further the performance and life of the light source of the lighting lamp body can be effectively improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is the front overall structural schematic diagram of the present invention;
[0023] Figure 2 is the cross-sectional view of the embedding frame of the present invention;
[0024] Figure 3 is of the present invention Figure 2 enlarged view of the structure at part A in;
[0025] Figure 4 is of the present invention Figure 2 enlarged view of the structure at part B in;
[0026] Figure 5 is the side structural schematic diagram of the present invention;
[0027] Figure 6 is of the present invention Figure 5 partial structural schematic diagram in;
[0028] Figure 7 is the overall cross-section of the present invention;
[0029] Figure 8 is of the present invention Figure 7 partial structural schematic diagram in;
[0030] Figure 9 is of the present invention Figure 8 and is an enlarged view of the structure of part C in the present invention.
[0031] In the figure: 1, camera body; 2, inlay frame; 3, inlay groove; 4, lighting lamp body; 5, sealing ring; 6, U-shaped frame; 7, elastic airbag; 8, exhaust port; 9, extrusion plate; 10, impact block; 11, movable groove; 12, sealing block; 13, baffle; 14, fan blade; 15, cross piece; 16, slotted hole; 17, slider; 18, telescopic spring; 19, ball; 20, groove; 21, cavity; 22, through hole; 23, through port; 24, chute; 25, T-shaped rod; 26, elastic cord; 27, I-shaped heat conducting plate; 28, fin one; 29, fin two; 30, air inlet hole; 31, air suction port; 32, push rod; 33, air outlet; 34, T-shaped plate; 35, limiting plate; 36, mounting seat. Detailed implementation manners
[0032] Now, the subject matter described herein will be discussed with reference to exemplary embodiments. It should be understood that discussing these embodiments is only to enable those skilled in the art to better understand and thus implement the subject matter described herein. Without departing from the scope of protection of the content of this specification, changes can be made to the functions and arrangements of the elements discussed. Each example can omit, substitute, or add various processes or components as needed. Additionally, the features described relative to some examples can also be combined in other examples.
[0033] As Figures 1 to 9 shown, an auxiliary energy-saving lighting lamp for a monitoring camera according to an embodiment of the present invention includes a camera body 1. A detachable inlay frame 2 is installed on the upper part of the camera body 1. An inlay groove 3 is provided on one side of the inlay frame 2. A lighting lamp body 4 is arranged in the inlay groove 3. The auxiliary energy-saving lighting lamp further includes:
[0034] A ventilation component, the ventilation component includes a U-shaped frame 6 fixedly installed on one side of the inlay frame 2. An elastic airbag 7 is fixedly installed between the top wall of the inner cavity of the U-shaped frame 6 and the inlay frame 2. An exhaust port 8 is provided in the side wall of the inlay frame 2 close to the U-shaped frame 6. One end of the exhaust port 8 is communicated with the inner cavity of the inlay groove 3. The air outlet end of the elastic airbag 7 is fixedly installed with the other end of the exhaust port 8. The air inlet end of the elastic airbag 7 is communicated with the inner cavity of the U-shaped frame 6. A fan blade 14 is rotatably installed at one end of the exhaust port 8 close to the inlay groove 3. A cross piece 15 is fixedly installed at one end of the fan blade 14 close to the lighting lamp body 4. A clamping component is arranged in the inner cavity of the inlay groove 3.
[0035] The clamping assembly includes slots 16 evenly formed in the inner cavity of the embedding groove 3. Sliders 17 are slidably installed in the inner cavities of each group of slots 16. Telescopic springs 18 are fixedly installed between each group of sliders 17 and the inner cavities of the adjacent slots 16. Balls 19 are rotatably installed on one side of each group of sliders 17 close to the lighting lamp body 4. Grooves 20 adapted to the balls 19 are formed on the lighting lamp body 4. Slots 24 are evenly formed in each group of sliders 17. T-shaped rods 25 are slidably installed in the inner cavities of each group of slots 24. Elastic ropes 26 are fixedly installed at one ends of each group of T-shaped rods 25 far from the lighting lamp body 4. The other ends of each group of elastic ropes 26 are fixedly installed in the inner cavities of the adjacent slots 16;
[0036] T-shaped plates 34 are in contact with both the front and rear sides of the elastic airbag 7. The two T-shaped plates 34 are slidably installed on the U-shaped frame 6. Limiting plates 35 are in contact with the opposite sides of the two T-shaped plates 34. A mounting seat 36 is movably installed at the bottom end of the camera body 1. The two limiting plates 35 are fixedly installed on the adjacent sides of the mounting seat 36.
[0037] An extrusion plate 9 is in contact with one side of the elastic airbag 7. An activity slot 11 adapted to the extrusion plate 9 is formed on the U-shaped frame 6. The extrusion plate 9 is rotatably installed in the inner cavity of the activity slot 11. A baffle 13 is fixedly installed at the top of the extrusion plate 9. Air outlet holes 33 are evenly formed on the side of the embedding frame 2 far from the U-shaped frame 6. The other ends of each group of air outlet holes 33 are communicated with the inner cavity of the embedding groove 3. One-way valves are installed in the inner cavities of each group of air outlet holes 33. A sealing ring 5 is fixedly installed on the side of the inner cavity of the embedding groove 3 far from the U-shaped frame 6. The sealing ring 5 is in contact with the outer wall of the lighting lamp body 4. An air suction port 31 is formed at the bottom of the U-shaped frame 6. A cavity 21 is formed in the embedding frame 2. Through holes 23 are formed on the sides of each group of slots 16 close to the cavity 21. The two ends of each group of through holes 23 are respectively communicated with the cavity 21 and the inner cavity of the adjacent slots 16. A through hole 22 is formed on one side of the cavity 21. The other end of the through hole 22 is communicated with the inner cavity of the exhaust port 8.
[0038] It should be noted that first, the staff uses screws to install the camera body 1 on the buildings in the city through the mounting base 36. At night, the lighting lamp body 4 will be turned on to illuminate the shooting direction of the camera body 1, so that the camera body 1 can clearly take pictures and videos. The lighting lamp body 4 will generate heat during long-term lighting operation, and heat will be generated between the lighting lamp body 4 and the inner cavity of the inlay groove 3. Due to the "wind tunnel effect" generated between adjacent buildings, the wind is accelerated and flows between the buildings, which will increase the wind speed and form gusts between the buildings. When the wind blows against the left side wall of the baffle 13, the baffle 13 will be pushed by the wind force, and the baffle 13 can drive the pressing plate 9 to deflect counterclockwise in the inner cavity of the movable groove 11. When the pressing plate 9 deflects, it will deflect in the inner cavity of the U-shaped frame 6 and squeeze the elastic airbag 7. After the elastic airbag 7 is squeezed, the gas in its inner cavity will be discharged into the exhaust port 8 through the air outlet end. The gas in the exhaust port 8 will be discharged into the inner cavity of the inlay groove 3, and the hot air in the inner cavity of the inlay groove 3 can be blown out through the air outlet 33. Through the setting of the check valve installed in the inner cavity of the air outlet 33, the outside gas can be prevented from flowing back into the air outlet 33. At the same time, when the gas in the inner cavity of the elastic airbag 7 is discharged into the inner cavity of the inlay groove 3 through the exhaust port 8, the gas in the exhaust port 8 will drive the fan blade 14 to rotate when flowing. When the fan blade 14 rotates, it will drive the cross piece 15 to rotate. At this time, the gas discharged from the exhaust port 8 can be evenly diffused into the inner cavity of the inlay groove 3 through the rotation of the cross piece 15, and the gas will be evenly diffused between the inlay groove 3 and the lighting lamp body 4. The hot gas between the inlay groove 3 and the lighting lamp body 4 will be directly discharged through the air outlet 33, and the inner cavity of the inlay groove 3 can be evenly blown to cool down. By leaving a gap between the inlay groove 3 and the lighting lamp body 4, the fluidity of the gas inside can be effectively improved, and the situation where there is no gas flow inside the conventional inlay type can be avoided. When there is no wind force, under the action of the elastic airbag 7, the elastic airbag 7 returns to its initial state. The elastic airbag 7 will suck the gas in the inner cavity of the U-shaped frame 6 through the air intake end, and the inner cavity of the U-shaped frame 6 will suck the outside gas through the air intake port 31. At the same time, the elastic airbag 7 will push the pressing plate 9 and drive the baffle 13 to deflect to the initial position. At this time, the gust can realize reciprocally pushing the baffle 13 to drive the pressing plate 9 to deflect and squeeze the elastic airbag 7, and the elastic airbag 7 will reciprocally blow the inner cavity of the inlay groove 3, playing a role of reciprocally ventilating, which can effectively improve the cooling effect on the lighting lamp body 4, and can avoid the situation where the wind force cannot penetrate into the inlay groove 3 to cool the lighting lamp body 4, resulting in overheating of the lamp during long-term use. It can effectively improve the performance and service life of the light source of the lighting lamp body 4, not only can effectively utilize natural resources, but also can reduce the use cost;
[0039] The camera body 1 is movably installed on the mounting base 36. The camera body 1 can deflect forward and backward on the mounting base 36 under manual control (this is the prior art and will not be elaborated here). In summer, when the weather is hot and there is no gust of wind, the staff controls the camera body 1 to deflect on the mounting base 36. When the camera body 1 deflects backward, it will drive the U-shaped frame 6 to move synchronously through the inlay frame 2. The U-shaped frame 6 will drive the T-shaped plate 34 on the front side away from the front side limiting plate 35. At this time, the rear side limiting plate 35 will abut against the rear side T-shaped plate 34 and slide obliquely upward on the U-shaped frame 6 and squeeze the elastic airbag 7, so that the elastic airbag 7 can blow air into the inlay groove 3 through the exhaust port 8. When the camera body 1 deflects to the initial position, the elastic airbag 7 returns to the initial state and will automatically push the T-shaped plate 34 to move to the initial position. The same principle applies when the camera body 1 deflects forward. At this time, the effect of actively blowing air for heat dissipation under manual control can be achieved in the absence of gusts of wind. Through the cooperation with automatic heat dissipation by external gusts of wind, the heat dissipation effect of the lighting body 4 can be effectively improved, thereby effectively improving the performance and service life of the light source of the lighting body 4;
[0040] During the installation of the control lighting lamp body 4, the lighting lamp body 4 is inserted into the inner cavity of the embedding groove 3 through the sealing ring 5. Through the setting of the sealing ring 5, a seal can be formed between the inner cavity of the embedding groove 3 and the lighting lamp body 4, preventing external impurities from entering the inner cavity of the embedding groove 3. When one side of the lighting lamp body 4 contacts the ball 19, the lighting lamp body 4 will push the slider 17 to slide in the inner cavity of the slot 16 and compress the telescopic spring 18 through the ball 19. At this time, when the lighting lamp body 4 slides in the inner cavity of the embedding groove 3, the ball 19 will slide on the outer wall of the lighting lamp body 4. When the ball 19 moves to the position of the groove 20, under the action of the telescopic spring 18, the telescopic spring 18 will return to its initial state and push the ball 19 into the groove 20 through the slider 17. At this time, the telescopic spring 18 is in its initial state. Then, the lighting lamp body 4 is completely pushed into the inner cavity of the embedding groove 3 to complete the installation of the lighting lamp body 4. While the elastic airbag 7 blows air into the exhaust port 8, the gas in the exhaust port 8 will also be discharged into the cavity 21 through the through hole 22. The gas in the inner cavity of the cavity 21 will be discharged into the inner cavity of the slot 16 through the through port 23, which can increase the pressure in the inner cavity of the slot 16. At the same time, the increased pressure in the inner cavity of the slot 16 will be applied to the inner cavity of the chute 24, which can push the T-shaped rod 25 to move in the inner cavity of the chute 24 towards the direction of the lighting lamp body 4. While the T-shaped rod 25 moves, it will stretch the elastic rope 26. At this time, it can be realized that the T-shaped rod 25 contacts the surface of the lighting lamp body 4 and applies a clamping force to the lighting lamp body 4, further improving the clamping force on the lighting lamp body 4, effectively improving the stability of the lighting lamp body 4 during the air blowing process of the exhaust port 8, thereby effectively improving the auxiliary lighting effect of the lighting lamp body 4, and further effectively improving the cooling effect of the lighting lamp body 4. When the exhaust port 8 stops blowing air, at this time, under the action of the elastic rope 26, the elastic rope 26 will return to its initial state and pull the T-shaped rod 25 away from the lighting lamp body 4 and move to the initial position, realizing that every time the exhaust port 8 blows air, the T-shaped rod 25 will apply a clamping force to the lighting lamp body 4.
[0041] As Figure 1 , Figure 2 , Figure 7 and Figure 8 shown, a T-shaped heat conducting plate 27 is fixedly installed between the inner cavity of the elastic airbag 7 and the top of the U-shaped frame 6. A fin one 28 is fixedly installed at the top of the T-shaped heat conducting plate 27, and a fin two 29 is fixedly installed at the bottom of the T-shaped heat conducting plate 27.
[0042] It should be noted that by arranging the second fin 29, the heat of the gas inside the elastic airbag 7 can be absorbed, conducted through the I-shaped heat conduction plate 27 to the first fin 28, and then dissipated through the first fin 28. The external wind can effectively improve the heat dissipation efficiency of the first fin 28, thereby reducing the temperature of the gas inside the elastic airbag 7. By continuously reducing the temperature of the gas inside the elastic airbag 7, when the gas inside the elastic airbag 7 is discharged into the inner cavity of the embedding groove 3, the cooling efficiency of the lighting body 4 can be effectively improved, and further, the performance and lifespan of the light source of the lighting body 4 can be effectively improved;
[0043] During the process of the T-shaped plate 34 sliding obliquely upward and the extrusion plate 9 deflecting to extrude the elastic airbag 7, it will not touch the second fin 29.
[0044] As Figure 1 、 Figure 3 and Figure 9 shown, an air inlet hole 30 is formed in the embedding frame 2. One end of the air inlet hole 30 is fixedly installed with the air inlet end of the sealing ring 5, and the other end of the air inlet hole 30 is communicated with the inner cavity of the adjacent air outlet 33.
[0045] It should be noted that when the elastic airbag 7 blows air into the inner cavity of the embedding groove 3 through the exhaust port 8, the heat between the embedding groove 3 and the lighting body 4 will be blown into the air outlet 33 and discharged. While part of the gas will be discharged into the air inlet hole 30 when the hot gas is discharged through the air outlet 33. The hot gas in the air inlet hole 30 will be discharged into the inner cavity of the sealing ring 5 through the air inlet end of the sealing ring 5. At this time, the pressure inside the sealing ring 5 can be increased, and the sealing performance between the embedding groove 3 and the lighting body 4 can be effectively improved, avoiding the situation that external impurities enter the inner cavity of the embedding groove 3 along with the wind, thereby affecting the operation of the lighting body 4, and effectively improving the use effect. A one-way valve is installed at the air inlet end of the sealing ring 5, and at the same time, the gas inside the inner cavity of the sealing ring 5 cannot be discharged. When the gas inside the inner cavity of the sealing ring 5 reaches the maximum, the air inlet hole 30 can no longer supply gas to the sealing ring 5. By supplying gas to the sealing ring 5 through the air inlet hole 30, the situation that the sealing performance of the sealing ring 5 is reduced due to the long-term loss of gas inside the inner cavity of the sealing ring 5 can be avoided.
[0046] As Figure 2 and Figure 8 shown, a sealing block 12 is installed between the top end of the extrusion plate 9 and the inner cavity of the movable groove 11, and a filter screen is fixedly installed in the inner cavity of the air suction port 31.
[0047] Impact blocks 10 are uniformly and fixedly installed on the side of the extrusion plate 9 away from the elastic airbag 7. Each group of impact blocks 10 is in contact with the inner cavity wall of the U-shaped frame 6. The elastic airbag 7 is in a compressed state in its initial state.
[0048] It should be noted that through the setting of the sealing block 12, the top end of the extrusion plate 9 can be sealed when it deflects in the inner cavity of the movable groove 11. Through the setting of the filter net, when the intake end of the elastic airbag 7 sucks external gas through the inner cavity of the U-shaped frame 6 using the suction port 31, these gases are filtered, and the filtered impurities will adhere to the bottom of the filter net. Since the elastic airbag 7 is in a compressed state in its initial state, the impact block 10 can be made to closely adhere to the inner cavity wall of the U-shaped frame 6. During the process of the baffle 13 driving the extrusion plate 9 to deflect and compress the elastic airbag 7, the extrusion plate 9 will drive the impact block 10 away from the inner cavity of the U-shaped frame 6. When the elastic airbag 7 returns to its initial state and pushes the extrusion plate 9 to deflect and move back to the initial position, the elastic airbag 7 will push the extrusion plate 9 to make the impact block 10 impact the inner wall of the U-shaped frame 6, which can cause vibration to the U-shaped frame 6. The shock wave will be transmitted to the filter net, which can vibrate the filter net and reduce the adhesion force of the impurities at the bottom of the filter net, and can shake off the impurities on the filter net. At the same time, each time air is inhaled through the suction port 31, a vibration will be generated, which can effectively improve the cleaning effect of the filter net and prevent the filter net from being blocked.
[0049] As Figures 1 to 9 shown, the inner cavity size of the groove 20 is one-third of the circular surface of the ball 19.
[0050] Anti-slip patterns are provided at one end of each group of T-shaped rods 25 close to the lighting lamp body 4.
[0051] A push rod 32 is provided below the cross-shaped piece 15. The push rod 32 is slidably installed with the inlay frame 2, and one side of the push rod 32 is in contact with the lighting lamp body 4.
[0052] It should be noted that through the anti-slip patterns provided at one end of the T-shaped rod 25 close to the lighting lamp body 4, when the T-shaped rod 25 contacts the surface of the lighting lamp body 4 for clamping, the friction between the T-shaped rod 25 and the surface of the lighting lamp body 4 can be increased, and the clamping stability of the T-shaped rod 25 on the surface of the lighting lamp body 4 can be effectively improved. When it is necessary to take out the lighting lamp body 4 from the inner cavity of the inlay groove 3, the staff pushes the push rod 32 in the direction of the lighting lamp body 4. Since the inner cavity size of the groove 20 is one-third of the circular surface of the ball 19, when the push rod 32 pushes the lighting lamp body 4 to move outward, it is convenient for the ball 19 to move out of the inner cavity of the groove 20, so that the lighting lamp body 4 can be taken out.
[0053] Working principle: First, the staff inserts the lighting lamp body 4 into the inlay groove 3. Through the setting of the telescopic spring 18, it is convenient for the ball 19 to be stuck into the groove 20 to install the lighting lamp body 4. Subsequently, the staff fixedly installs the camera body 1 on the buildings in the city. Through the cooperation of the first fin 28 and the second fin 29, the temperature of the gas in the inner cavity of the elastic airbag 7 can be reduced. When there is a gust of wind blowing towards the baffle 13, the baffle 13 will drive the extrusion plate 9 to deflect and extrude the elastic airbag 7. In the case of hot summer without gusts of wind, by manually controlling the deflection of the camera body 1, the T-shaped plate 34 will actively extrude the elastic airbag 7. The gas blown out by the elastic airbag 7 through the exhaust port 8 will be evenly diffused in the inner cavity of the inlay groove 3, and the hot gas in the inlay groove 3 will be discharged through the air outlet 33. When the gas is discharged through the air outlet 33, part of the hot gas will be discharged into the sealing ring 5 and increase the internal pressure thereof, and maintain the sealing property. At the same time as the exhaust port 8 exhausts, it will also supply air to the inner cavity of the slot 16, so that the T-shaped rod 25 further applies a clamping force to the lighting lamp body 4. When the elastic airbag 7 inhales the outside through the air inlet 31, the impurities in the air will be filtered on the filter screen in the air inlet 31. Each time the elastic airbag 7 returns to its initial state, it will cause the extrusion plate 9 to drive the impact block 10 to impact the U-shaped frame 6, and the impurities on the filter screen can be shaken off. When it is necessary to take out the lighting lamp body 4, push it in the direction of the lighting lamp body 4 through the push rod 32, and the lighting lamp body 4 can be taken out of the inlay groove 3.
[0054] The embodiments of the present invention have been described above, but these embodiments are not limited to the above specific implementation manners. The above specific implementation manners are merely illustrative and not restrictive. Under the inspiration of this embodiment, those of ordinary skill in the art can also make many forms, all of which fall within the protection scope of this embodiment.
Claims
1. An auxiliary energy-saving lighting lamp for a surveillance camera, comprising a camera body (1), an inlay frame (2) is detachably installed on the upper part of the camera body (1), an inlay groove (3) is formed on one side of the inlay frame (2), and a lighting lamp body (4) is arranged in the inlay groove (3), characterized in that, Further included are: A ventilation component, the ventilation component includes a U-shaped frame (6) fixedly installed on one side of the inlay frame (2), an elastic airbag (7) is fixedly installed between the top wall of the inner cavity of the U-shaped frame (6) and the inlay frame (2), an exhaust port (8) is opened in the side wall of the inlay frame (2) close to the U-shaped frame (6), one end of the exhaust port (8) is communicated with the inner cavity of the inlay groove (3), the air outlet end of the elastic airbag (7) is fixedly installed with the other end of the exhaust port (8), the air inlet end of the elastic airbag (7) is communicated with the inner cavity of the U-shaped frame (6), a fan blade (14) is rotatably installed in one end of the exhaust port (8) close to the inlay groove (3), a cross-shaped piece (15) is fixedly installed at one end of the fan blade (14) close to the lighting lamp body (4), and a clamping component is arranged in the inner cavity of the inlay groove (3).
2. The auxiliary energy-saving lighting lamp for a monitoring camera according to claim 1, wherein: The clamping component includes slots (16) uniformly opened in the inner cavity of the inlay groove (3), sliders (17) are slidably installed in the inner cavities of the groups of slots (16), telescopic springs (18) are fixedly installed between the sliders (17) of each group and the inner cavities of the adjacent slots (16), balls (19) are rotatably installed on one side of the sliders (17) of each group close to the lighting lamp body (4), grooves (20) adapted to the balls (19) are opened on the lighting lamp body (4), chutes (24) are uniformly opened on the sliders (17) of each group, T-shaped rods (25) are slidably installed in the inner cavities of the groups of chutes (24), elastic ropes (26) are fixedly installed at one ends of the T-shaped rods (25) away from the lighting lamp body (4), and the other ends of the elastic ropes (26) of each group are fixedly installed with the inner cavities of the adjacent slots (16); T-shaped plates (34) are in contact with both the front and back sides of the elastic airbag (7), the two T-shaped plates (34) are slidably installed with the U-shaped frame (6), limiting plates (35) are in contact with the opposite sides of the two T-shaped plates (34), a mounting seat (36) is movably installed at the bottom end of the camera body (1), and the two limiting plates (35) are fixedly installed with the adjacent sides of the mounting seat (36).
3. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 2, characterized in that: One side of the elastic airbag (7) is in contact with an extrusion plate (9). An activity groove (11) adapted to the extrusion plate (9) is formed in the U-shaped frame (6). The extrusion plate (9) is rotatably installed in the inner cavity of the activity groove (11). A baffle (13) is fixedly installed at the top of the extrusion plate (9). The side of the inlay frame (2) away from the U-shaped frame (6) is evenly provided with air outlets (33). The other ends of the air outlets (33) are communicated with the inner cavity of the inlay groove (3). One-way valves are installed in the inner cavities of the air outlets (33). A sealing ring (5) is fixedly installed on the side of the inner cavity of the inlay groove (3) away from the U-shaped frame (6). The sealing ring (5) is in contact with the outer wall of the lighting body (4). An air suction port (31) is formed at the bottom of the U-shaped frame (6). A cavity (21) is formed in the inlay frame (2). Through holes (23) are formed on the sides of the slots (16) close to the cavity (21). The two ends of each through hole (23) are respectively communicated with the cavity (21) and the inner cavity of the adjacent slot (16). A through hole (22) is formed on one side of the cavity (21). The other end of the through hole (22) is communicated with the inner cavity of the exhaust port (8).
4. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 1, characterized in that: An I-shaped heat conduction plate (27) is fixedly installed between the inner cavity of the elastic airbag (7) and the top of the U-shaped frame (6). A first fin (28) is fixedly installed at the top of the I-shaped heat conduction plate (27). A second fin (29) is fixedly installed at the bottom of the I-shaped heat conduction plate (27).
5. The auxiliary energy-saving lighting lamp for a monitoring camera according to claim 3, wherein: An air inlet hole (30) is formed in the inlay frame (2). One end of the air inlet hole (30) is fixedly installed with the air inlet end of the sealing ring (5). The other end of the air inlet hole (30) is communicated with the inner cavity of the adjacent air outlet (33).
6. The auxiliary energy-saving lighting lamp for a monitoring camera according to claim 3, wherein: A sealing block (12) is installed between the top end of the extrusion plate (9) and the inner cavity of the activity groove (11). A filter screen is fixedly installed in the inner cavity of the air suction port (31).
7. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 3, wherein: Impact blocks (10) are evenly and fixedly installed on the side of the extrusion plate (9) away from the elastic airbag (7). Each impact block (10) is in contact with the inner cavity wall of the U-shaped frame (6). The elastic airbag (7) is in a compressed state in its initial state.
8. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 2, characterized in that: The telescopic spring (18) is in a compressed state in its initial state. The size of the groove (20) is one-third of the circular surface of the ball (19).
9. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 2, characterized in that: Anti-slip patterns are provided at the ends of the T-shaped rods (25) close to the lighting body (4).
10. The auxiliary energy-saving lighting lamp for a surveillance camera according to claim 1, characterized in that: A push rod (32) is arranged below the cross-shaped piece (15). The push rod (32) is slidably installed in the inlay frame (2). One side of the push rod (32) is in contact with the lighting body (4).