LED intelligent induction lamp for home lighting
By combining heat pipes, humidity and temperature sensors, and fan blades, the heat dissipation problem of LED smart sensor lights is solved. Furthermore, the protective cover, insect trap, and ventilation hole structure address the issues of moisture and insect infestation, achieving efficient heat dissipation and easy cleaning and maintenance of the lights.
Patent Information
- Application Number
- CN202423101852.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-16
AI Technical Summary
LED smart sensor lights are prone to aging due to the heat generated during prolonged operation or high brightness, and are also susceptible to moisture and insect infestation, leading to untimely heat dissipation and damage.
It uses heat pipes and humidity sensors in conjunction with fan blades for heat dissipation. The humidity sensor monitors temperature and humidity in real time and automatically starts the fan blades to dissipate heat. It is designed with a protective cover and magnetic structure to prevent contaminants from entering and is easy to install. It is equipped with an insect trap to capture insects and ventilation holes to maintain stable internal pressure. The filter screen blocks impurities from entering.
It effectively reduces the temperature of internal components of the sensor light, extends its service life, reduces damage caused by moisture and insect activity, keeps the light fixture clean, and reduces energy consumption and maintenance difficulty.
Smart Images

Figure CN223499500U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of sensor light technology, specifically an LED intelligent sensor light for home lighting. Background Technology
[0002] LED smart sensor lights for home lighting are a type of lighting product that combines LED technology and smart sensor technology.
[0003] LED smart sensor lights automatically control the lighting and extinguishing of the light source through a built-in sensing module. The sensing module can detect various signals such as ambient light, human movement, and sound, and trigger the lighting according to preset conditions. When a human enters the sensing range, the light will automatically turn on, and when the human leaves the sensing range, the light will automatically turn off after a period of time.
[0004] LED smart sensor lights can generate heat even after prolonged operation or at high brightness. This heat can accelerate the aging process of LEDs and cause damage to the sensor lights due to insufficient heat dissipation.
[0005] Therefore, this utility model provides an LED intelligent sensor light for home lighting. Utility Model Content
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A smart LED sensor lamp for home lighting, comprising a first lamp body, a plurality of LED beads installed in the middle of the first lamp body, a sensor installed on the top of the first lamp body, a drive cover installed on the top of the first lamp body, a second lamp body installed on the top of the first lamp body, the drive cover penetrating through the top of the second lamp body in the middle, two sets of through holes opened on the side wall of the second lamp body, two fixing rods fixedly connected to the top of the second lamp body, the two fixing rods being arranged opposite each other, the fixing rods being fixedly connected inside the second lamp body, a motor fixedly connected to the end of the fixing rod, a fan blade fixedly connected to the output end of the motor, and the drive cover in the middle... A heat-conducting pipe is fixedly connected, and two humidity and temperature sensors are installed in the middle of the heat-conducting pipe. The two humidity and temperature sensors are arranged opposite each other. Through the above structure, the heat generated during use can be quickly transferred from the inside of the sensor lamp to the outside, effectively reducing the temperature inside the first lamp body and the second lamp body. The humidity and temperature sensors monitor the temperature and humidity inside the second lamp body in real time. When the preset value is reached, the fan blades are automatically activated to dissipate heat. This not only improves the heat dissipation efficiency but also reduces unnecessary energy consumption. It can reduce the temperature of the internal components of the sensor lamp, reduce the damage caused by heat, and thus extend its service life. In addition, when the humidity is too high, the fan blades can be activated to ventilate, reducing the damage to the inside of the second lamp body caused by moisture.
[0008] Preferably, the bottom of the first lamp body has two mounting slots, and two mounting blocks are installed in the middle of the mounting slots. Protective covers are fixed to the ends of the two mounting blocks. The protective covers are transparent. This structure can effectively prevent air pollutants from entering the lamp, maintain the cleanliness of the lamp, effectively reduce damage caused by insect activity, reduce collisions and impacts of external objects on the bottom of the first lamp body, and allow for quick installation and removal of the protective covers for easy cleaning, reducing the tedious disassembly and reassembly of the lamp during cleaning.
[0009] Preferably, a first magnetic block is fixed to the side wall of the mounting block, and a second magnetic block is fixed to the end of the mounting groove. The first magnetic block and the second magnetic block attract each other when they are close. The above structure enables the mounting block to be quickly positioned and fixed in the mounting groove, effectively reducing the shaking and movement of the mounting block in the middle of the mounting groove. It can enhance the connection strength between the mounting block and the mounting groove, making the protective cover more firmly fixed to the bottom of the first lamp body, and less likely to fall off or loosen.
[0010] Preferably, a buckle is fixed to the side wall of the second lamp body, a fixing block is installed in the middle of the buckle, and an insect-attracting box is fixed to the end of the fixing block. The insect-attracting box is arc-shaped, with a liquid collection chamber in the middle and a liquid inlet hole at the top. The above structure can effectively attract and capture mosquitoes and flies in the home environment, reduce the damage of mosquitoes to the sensor lamp, and reduce the problem of mosquitoes colliding with the surface of the first lamp body or other components during flight, resulting in scratches and stains on the lamp cover surface, thus effectively reducing the frequency of mosquito activity around the sensor lamp.
[0011] Preferably, the inner wall of the insect trap is fixedly provided with a first baffle and a second baffle. The first baffle and the second baffle are inclined and arranged in an opposing and staggered manner. The first baffle and the second baffle are fixedly connected to the bottom of the insect trap. The above structure can change the path inside the insect trap, making it easier for mosquitoes to be trapped after entering the insect trap, reducing the problem of mosquitoes flying out again after entering the insect trap, effectively improving the efficiency of mosquito capture, reducing mosquito escape, and the quick installation and disassembly of the insect trap can facilitate its cleaning.
[0012] Preferably, the top of the second lamp body is provided with multiple vent holes, which are equidistantly distributed on the top of the second lamp body. This structure allows air to circulate freely inside and outside the second lamp body, thereby maintaining the stability of the internal pressure of the induction lamp and reducing the risk of damage to the second lamp body due to excessive internal pressure. The vent holes can also reduce the accumulation of moisture inside the second lamp body, effectively reducing the risk of short circuits or damage caused by moisture.
[0013] The beneficial effects of this utility model are as follows:
[0014] 1. The LED intelligent sensor lamp for home lighting described in this utility model can reduce the temperature of the internal components of the sensor lamp through the above structure, reduce the damage caused by heat, thereby extending its service life. In addition, when the humidity is too high, the fan blades can be activated for ventilation to reduce the damage to the inside of the second lamp body due to moisture.
[0015] 2. The LED intelligent sensor lamp for home lighting described in this utility model can effectively block air pollutants from entering the lamp through the above-mentioned structure, maintain the cleanliness of the lamp, effectively reduce damage caused by insect activity, reduce collisions and impacts of external objects on the bottom of the first lamp body, and allow for quick installation and removal of the protective cover, making it easy to clean and reducing the tedious disassembly and assembly operations when cleaning the sensor lamp. Attached Figure Description
[0016] The present invention will be further described below with reference to the accompanying drawings.
[0017] Figure 1This is a perspective view of the present invention;
[0018] Figure 2 This is a cross-sectional view of the present invention;
[0019] Figure 3 This is an exploded view of the protective cover in this utility model;
[0020] Figure 4 This is a schematic diagram of the insect-attracting box in this utility model.
[0021] In the diagram: 1. First lamp body; 10. Lamp bead; 11. Sensor; 12. Drive cover; 13. Second lamp body; 14. Through hole; 15. Fixing rod; 16. Motor; 17. Fan blade; 18. Heat pipe; 19. Humidity and temperature sensor; 2. Protective cover; 21. Mounting groove; 22. Mounting block; 3. First magnetic block; 31. Second magnetic block; 4. Buckle; 41. Fixing block; 42. Insect trap; 43. Liquid collection chamber; 44. Liquid inlet; 5. First baffle; 51. Second baffle; 6. Vent hole; 7. Filter screen. Detailed Implementation
[0022] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0023] like Figures 1 to 3As shown in the figure, an LED intelligent sensor lamp for home lighting according to an embodiment of the present invention includes a first lamp body 1, a plurality of LED beads 10 installed in the middle of the first lamp body 1, a sensor 11 installed on the top of the first lamp body 1, a driver cover 12 installed on the top of the first lamp body 1, a second lamp body 13 installed on the top of the first lamp body 1, the middle of the driver cover 12 penetrating through the top of the second lamp body 13, two sets of through holes 14 opened on the side wall of the second lamp body 13, and two fixing rods 15 fixedly connected to the top of the second lamp body 13, the two fixing rods 15 being arranged opposite each other. A fixing rod 15 is fixed inside the second lamp body 13. A motor 16 is fixed to the end of the fixing rod 15, and a fan blade 17 is fixed to the output end of the motor 16. A heat conduction pipe 18 is fixed to the middle of the drive cover 12. Two humidity and temperature sensors 19 are installed in the middle of the heat conduction pipe 18. The two humidity and temperature sensors 19 are arranged opposite each other. When working, the first lamp body 1 is installed in a designated position. When someone passes by or the environment changes, the sensor 11 causes multiple lamp beads 10 to light up, illuminating the surrounding environment through the bottom of the first lamp body 1. The sensor lamp is in use. During the process, the heat pipe 18 transfers the heat generated in the middle of the drive cover 12 to the inside of the second lamp body 13. The heat generated during the use of the sensor lamp is monitored by the humidity and temperature sensor 19. When the heat exceeds the preset value, the control system turns on the motor 16, causing the output of the motor 16 to drive the fan blade 17 to rotate. During the rotation of the fan blade 17, the heat conducted by the heat pipe 18 is discharged through multiple through holes 14, thereby dissipating heat from the sensor lamp. Through the above structure, the heat generated during use can be quickly transferred from the inside of the sensor lamp to the outside, effectively reducing the temperature inside the first lamp body 1 and the second lamp body 13. The humidity and temperature sensor 19 monitors the temperature and humidity inside the second lamp body 13 in real time. When the preset value is reached, the fan blade 17 is automatically activated to dissipate heat. This not only improves the heat dissipation efficiency but also reduces unnecessary energy consumption. It can reduce the temperature of the internal components of the sensor lamp, reduce heat-related damage, and thus extend its service life. Furthermore, when the humidity is too high, the fan blade 17 can be activated for ventilation, reducing damage to the inside of the second lamp body 13 due to moisture.
[0024] like Figures 1 to 3As shown, the bottom of the first lamp body 1 has two mounting slots 21. Two mounting blocks 22 are installed in the middle of the mounting slots 21. Protective covers 2 are fixed to the ends of the two mounting blocks 22. The protective covers 2 are transparent. During operation, the two mounting blocks 22 in the middle of the protective cover 2 are aligned with one end of the mounting slot 21. After inserting the mounting blocks 22 into one end of the mounting slot 21, the protective cover 2 is rotated so that the mounting blocks 22 enter the other end of the mounting slot 21. The mounting blocks 22 are locked in the middle of the mounting slot 21, thus fixing the protective cover 2 to the bottom of the first lamp body 1 for protection. The above structure can effectively prevent pollutants in the air from entering the interior of the sensor lamp, maintain the cleanliness of the lamp, effectively reduce damage caused by insect activity, reduce collisions and impacts of external objects on the bottom of the first lamp body 1, and allow for quick installation and removal of the protective cover 2 for easy cleaning, reducing the tedious operation of disassembling and assembling the sensor lamp during cleaning.
[0025] like Figure 3 As shown, a first magnetic block 3 is fixed to the side wall of the mounting block 22, and a second magnetic block 31 is fixed to the end of the mounting groove 21. The first magnetic block 3 and the second magnetic block 31 attract each other when they are close. During operation, when the mounting block 22 enters one end of the mounting groove 21 for fixing, the first magnetic block 3 continuously approaches the second magnetic block 31. When the first magnetic block 3 and the second magnetic block 31 approach each other, they are tightly attached by magnetic attraction, thereby stably fixing the mounting block 22. The above structure enables the mounting block 22 to be quickly positioned and fixed in the mounting groove 21, effectively reducing the shaking and movement of the mounting block 22 in the middle of the mounting groove 21, enhancing the connection strength between the mounting block 22 and the mounting groove 21, and making the protective cover 2 more firmly fixed to the bottom of the first lamp body 1, making it less likely to fall off or loosen.
[0026] like Figures 1 to 4 As shown, a buckle 4 is fixedly connected to the side wall of the second lamp body 13. A fixing block 41 is installed in the middle of the buckle 4, and an insect-attracting box 42 is fixedly connected to the end of the fixing block 41. The insect-attracting box 42 is arc-shaped, and a liquid collection chamber 43 is provided in the middle of the insect-attracting box 42. A liquid inlet hole 44 is opened at the top of the insect-attracting box 42. During operation, the insect-attracting box 42 is inserted into the middle of the buckle 4 through the fixing block 41, and the insect-attracting box 42 is fixed on both sides of the second lamp body 13. Sugar water is placed in the middle of the liquid collection chamber 43 through the liquid inlet hole 44 for storage. After the sensor lamp is used... During the process, mosquitoes are attracted to the light and trapped inside the insect trap 42 by the sugar water in the collection chamber 43. The insect trap 42 can be quickly installed, disassembled and cleaned during use. The above structure can effectively attract and capture mosquitoes and flies in the home environment, reduce the damage of mosquitoes to the sensor lamp, and reduce the problem of mosquitoes colliding with the first lamp body 1 or other parts during flight, resulting in scratches and stains on the lamp cover surface, effectively reducing the frequency of mosquito activity around the sensor lamp.
[0027] like Figure 4As shown, a first baffle 5 and a second baffle 51 are fixedly connected to the inner wall of the insect trap 42. The first baffle 5 and the second baffle 51 are inclined and arranged in an opposing and staggered manner. The first baffle 5 and the second baffle 51 are fixed to the bottom of the insect trap 42. When working, when mosquitoes enter the insect trap 42, they first pass between the first baffle 5 and the second baffle 51. The first baffle 5 and the second baffle 51 prevent mosquitoes that have entered the middle of the insect trap 42 from flying out from the bottom of the insect trap 42. The above structure can change the path inside the insect trap 42, making it easier for mosquitoes to be trapped after entering the insect trap 42, reducing the problem of mosquitoes flying out again after entering the insect trap 42, effectively improving the efficiency of mosquito capture, reducing mosquito escape, and the quick installation and disassembly of the insect trap 42 makes it easy to clean.
[0028] like Figure 1 As shown, the top of the second lamp body 13 has multiple vent holes 6, which are equidistantly distributed on the top of the second lamp body 13. During operation, the vent holes 6 allow air to circulate between the inside of the second lamp body 13 and the outside air. This structure allows air to circulate freely inside and outside the second lamp body 13, thereby maintaining the stability of the internal pressure of the sensor lamp and reducing the risk of damage to the second lamp body 13 due to excessive internal pressure. The vent holes 6 can also reduce the accumulation of moisture inside the second lamp body 13, effectively reducing the risk of short circuits or damage caused by moisture.
[0029] like Figure 1 and Figure 2 As shown, a filter 7 is fixedly connected to the middle of the through hole 14 and the middle of the vent hole 6. During operation, the filter 7 intercepts dust and impurities in the outside air, preventing them from entering the interior of the second lamp body 13. The above structure effectively prevents dust, insects, and debris from entering the sensor lamp, thereby protecting the internal components. The filter 7 can effectively prevent debris from entering the interior of the second lamp body 13, reducing the frequency and difficulty of cleaning the interior of the sensor lamp, thereby reducing maintenance costs.
[0030] During operation, the first lamp body 1 is installed in a designated position. When someone passes by or the environment changes, the sensor 11 activates multiple LED beads 10, illuminating the surrounding environment through the bottom of the first lamp body 1. During use, the heat pipe 18 transfers the heat generated in the middle of the drive cover 12 to the inside of the second lamp body 13. The humidity and temperature sensor 19 monitors the heat generated during use. When the heat exceeds a preset value, the control system turns on the motor 16, causing the output of the motor 16 to drive the fan blade 17 to rotate. During the rotation of the fan blade 17, the heat conducted by the heat pipe 18 is discharged through multiple through holes 14, thereby dissipating heat from the lamp. The two mounting blocks 22 in the middle of the protective cover 2 are first aligned with one end of the mounting groove 21. After inserting the mounting blocks 22 into one end of the mounting groove 21, the protective cover 2 is rotated so that the mounting blocks 22 enter the other end of the mounting groove 21. The mounting blocks 22 are locked in the middle of the mounting groove 21, fixing the protective cover 2 to the bottom of the first lamp body 1 for protection. When the mounting blocks 22 enter one end of the mounting groove 21 for fixation... During the process, the first magnetic block 3 continuously approaches the second magnetic block 31. When the first magnetic block 3 and the second magnetic block 31 approach each other, they are magnetically attracted to fit tightly together, thereby stably fixing the mounting block 22. The insect-attracting box 42 is inserted into the middle of the buckle 4 through the fixing block 41, fixing the insect-attracting box 42 to both sides of the second lamp body 13. Sugar water is placed in the middle of the collection chamber 43 through the liquid inlet hole 44 for storage. During the use of the sensor lamp, mosquitoes are attracted to the light and are trapped by the sugar water in the collection chamber 43, entering the insect-attracting box 42. During use, the insect trap 42 can be quickly installed, disassembled and cleaned. When mosquitoes enter the insect trap 42, they first pass between the first baffle 5 and the second baffle 51. The first baffle 5 and the second baffle 51 prevent the mosquitoes that have entered the middle of the insect trap 42 from flying out from the bottom of the insect trap 42. During the use of the sensor light, the air inside the second lamp body 13 is circulated with the outside air through the vent 6. The filter 7 intercepts dust and impurities in the outside air, preventing dust and impurities from entering the interior of the second lamp body 13.
[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A smart LED sensor lamp for home lighting, comprising a first lamp body (1), characterized in that: A number of LED beads (10) are installed in the middle of the first lamp body (1). A sensor (11) is installed on the top of the first lamp body (1). A drive cover (12) is installed on the top of the first lamp body (1). A second lamp body (13) is installed on the top of the first lamp body (1). The drive cover (12) passes through the top of the second lamp body (13) in the middle. Two sets of through holes (14) are opened on the side wall of the second lamp body (13). Two fixing rods (15) are fixed to the top of the second lamp body (13). The two fixing rods (15) are arranged opposite to each other. The fixing rods (15) are fixed inside the second lamp body (13). A motor (16) is fixed to the end of the fixing rod (15). A fan blade (17) is fixed to the output end of the motor (16). A heat pipe (18) is fixed to the middle of the drive cover (12). Two humidity and temperature sensors (19) are installed in the middle of the heat pipe (18). The two humidity and temperature sensors (19) are arranged opposite to each other.
2. The LED intelligent sensor lamp for home lighting according to claim 1, characterized in that: The first lamp body (1) has two mounting slots (21) at the bottom. Two mounting blocks (22) are installed in the middle of the mounting slots (21). Protective covers (2) are fixed to the ends of the two mounting blocks (22). The protective covers (2) are transparent.
3. The LED intelligent sensor lamp for home lighting according to claim 2, characterized in that: The mounting block (22) has a first magnetic block (3) fixed to its side wall, and the mounting groove (21) has a second magnetic block (31) fixed to its end. The first magnetic block (3) and the second magnetic block (31) attract each other when they are close together.
4. The LED intelligent sensor lamp for home lighting according to claim 1, characterized in that: The second lamp body (13) has a buckle (4) fixed to its side wall. A fixing block (41) is installed in the middle of the buckle (4). An insect-attracting box (42) is fixed to the end of the fixing block (41). The insect-attracting box (42) is arc-shaped. A liquid collection chamber (43) is provided in the middle of the insect-attracting box (42). An inlet hole (44) is opened at the top of the insect-attracting box (42).
5. The LED intelligent sensor lamp for home lighting according to claim 4, characterized in that: The insect-attracting box (42) has a first baffle (5) and a second baffle (51) fixedly connected to its inner sidewall. The first baffle (5) and the second baffle (51) are inclined and are arranged in opposite and staggered positions. The first baffle (5) and the second baffle (51) are fixedly connected to the bottom of the insect-attracting box (42).
6. The LED intelligent sensor lamp for home lighting according to claim 1, characterized in that: The second lamp body (13) has multiple ventilation holes (6) on its top, and the multiple ventilation holes (6) are equidistantly distributed on the top of the second lamp body (13).
7. The LED intelligent sensor lamp for home lighting according to claim 6, characterized in that: A filter screen (7) is fixedly connected to the middle of the through hole (14), and a filter screen (7) is fixedly connected to the middle of the vent hole (6).