Double-control induction battery lamp
By introducing infrared sensors and touch sensors into the motion-sensor lights, multiple control methods are realized, solving the problem of the single control method of existing motion-sensor lights and improving applicability and user experience.
Patent Information
- Application Number
- CN202423218172.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-23
AI Technical Summary
The existing control methods for sensor lights are relatively simple, resulting in poor applicability and inability to meet the needs of different spaces and times.
An infrared sensor and a touch sensor are installed in the motion-sensor light. The infrared sensor controls the light's on/off state by detecting changes in human body temperature, while the touch sensor is used to adjust the color temperature and brightness, enabling multiple control methods.
The multifunctionality and applicability of the sensor light have been enhanced, allowing for control of the light's on/off state, color temperature, and brightness in multiple ways, thus improving the user experience.
Smart Images

Figure CN223537579U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lighting technology, and in particular to a dual-control induction battery lamp. Background Technology
[0002] A motion-sensor light is an intelligent lighting device that utilizes a light source and sensors to achieve automatic sensing, energy saving, environmental protection, and user-friendliness. The motion-sensor light contains a light-emitting body and a battery assembly, both housed within the same casing, thus offering excellent convenience during use.
[0003] However, most sensor lights on the market can only be controlled by one method to adjust the status of the light body, which cannot be well applied to different spaces and times, and cannot better meet different needs. Utility Model Content
[0004] The technical problem to be solved by this utility model embodiment is to provide a dual-control induction battery lamp, so as to solve the problem that the control method of the existing dual-control induction battery lamp is relatively simple, resulting in poor applicability of the dual-control induction battery lamp and failing to better meet the needs of use.
[0005] This utility model discloses a dual-control induction battery lamp, comprising: a housing, a battery, a lamp body, and a PCB board assembly. A lampshade is provided on one side of the housing; the battery is disposed within the housing; the lamp body is disposed within the housing, and the lamp body and lampshade are correspondingly arranged; the PCB board assembly is disposed within the housing and electrically connected to the battery. An infrared sensor and a touch sensor are provided on the PCB board assembly, which is electrically connected to the lamp body. The infrared sensor is located on the side of the PCB board assembly facing the lampshade and is used to turn on the lamp body when a human body is detected. The touch sensor is located between the PCB board assembly and the housing, allowing the user to control the color temperature and brightness of the lamp body by touching the touch sensor.
[0006] Optionally, the housing includes a base plate and side walls disposed on opposite sides of the base plate and arranged in the same direction. The lampshade is disposed between the two side walls. The housing also includes a first end cap and a second end cap disposed at opposite ends of the housing. The opposite ends of the lampshade are respectively connected to the first end cap and the second end cap.
[0007] Optionally, the lamp body is disposed on the side wall, the side wall is provided with a mounting groove, the opposite sides of the lampshade are respectively disposed in the mounting groove, the dual-control induction battery lamp also includes a light guide plate and a reflective paper, the reflective paper is disposed on the side of the base plate facing the lampshade, and the light guide plate is disposed on the side of the lampshade facing the base plate.
[0008] Optionally, the PCB assembly includes a first circuit board and a second circuit board, the infrared sensor is disposed on the first circuit board, the touch sensor is soldered on the second circuit board, the first circuit board and the second circuit board are respectively disposed on opposite sides of the housing, and the battery, the first circuit board, the second circuit board and the lamp body are connected in series.
[0009] Optionally, one side of the first end cap is provided with a first connecting plate and a first limiting plate that are interconnected. The first connecting plate is connected to the lampshade, and the first limiting plate is located between the first connecting plate and the base plate. The first circuit board is located between the first end cap and the first limiting plate. One side of the second end cap is provided with a second connecting plate and a second limiting plate that are interconnected. The second connecting plate is connected to the lampshade, and the second circuit board is located between the second limiting plate and the second end cap. The end of the touch sensor facing away from the second circuit board abuts against the second connecting plate.
[0010] Optionally, the PCB assembly further includes a Fresnel lens, which is disposed on the infrared sensor. The first connecting plate has a first slot corresponding to the Fresnel lens, and the Fresnel lens is exposed through the first slot.
[0011] Optionally, the first circuit board is provided with a switch and a charging interface, the first end cover is provided with a second slot corresponding to the switch and a third slot corresponding to the charging interface, the switch is exposed through the second slot, and the charging interface is corresponding through the third slot, wherein the switch has multiple positions.
[0012] Optionally, the base plate is provided with a receiving groove, the receiving groove is provided with a magnetic element, and the side of the magnetic element facing the lampshade is provided with a protective pad.
[0013] Optionally, the first circuit board is provided with a first mounting hole, and the first connecting plate is provided with a corresponding first connecting post on the side facing the base plate. The first mounting hole is installed to the first connecting post through a first connector. The second circuit board is provided with a second mounting hole, and the second connecting plate is provided with a corresponding second connecting post on the side facing the base plate. The second mounting hole is installed to the second connecting post through a second connector.
[0014] Optionally, an indicator light is provided on the first circuit board, and the indicator light is electrically connected to the charging interface to display the charging status of the battery. The charging interface is a Type-C interface.
[0015] Compared with existing technologies, the beneficial effects of the dual-control sensor battery lamp provided in this embodiment are as follows: A lampshade with a certain degree of light transmittance is provided on one side of the housing, allowing the lamp to provide normal illumination. An infrared sensor and a touch sensor are provided on the PCB board assembly. The infrared sensor can control the lamp to turn on by detecting changes in ambient temperature, and the user can adjust the color temperature and brightness of the lamp by actively pressing or touching the touch sensor area. In actual use, when the user is within the sensing range of the infrared sensor, the infrared sensor can capture the difference between the human body temperature and the external environment, and control the lamp to turn on based on this temperature information for user convenience. On the other hand, the user can control the color temperature and brightness of the lamp by touching and pressing the touch sensor. The dual-control sensor battery lamp can control the lamp's on / off state, color temperature, and brightness through the above-mentioned multiple methods, which enhances the multi-functionality of the dual-control sensor battery lamp, makes it convenient for users during use, improves the applicability of the dual-control sensor battery lamp, and can better meet user needs. Attached Figure Description
[0016] The technical solution of this utility model will be further described in detail below with reference to the accompanying drawings and embodiments. In the accompanying drawings:
[0017] Figure 1 This is a schematic diagram of a dual-control induction battery lamp provided in an embodiment of the present invention;
[0018] Figure 2 This is an exploded view of the dual-control induction battery lamp provided in this embodiment of the utility model.
[0019] The labels for the attached figures are as follows:
[0020] 1000. Dual-control induction battery lamp; 100. Housing; 101. Base plate; 1011. Receiving groove; 102. Side wall; 1021. Mounting groove; 103. First end cap; 1031. First connecting plate; 10311. First slot; 1032. First limiting plate; 1033. Second slot; 1034. Third slot; 104. Second end cap; 1041. Second connecting plate; 1042. Second limiting plate; 105. Lampshade; 200. Battery; 30 0. Lamp body; 400. PCB board assembly; 401. First circuit board; 4011. Infrared sensor; 4012. Switch; 4013. Charging interface; 4014. First mounting hole; 4015. First connector; 402. Second circuit board; 4021. Touch sensor; 4022. Second mounting hole; 4023. Second connector; 403. Fresnel lens; 500. Light guide plate; 600. Reflective paper; 700. Magnetic component; 800. Protective pad. Detailed Implementation
[0021] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The preferred embodiments of this utility model will now be described in detail with reference to the accompanying drawings.
[0022] This utility model embodiment provides a dual-control induction battery lamp 1000, such as... Figure 1-2 The dual-control induction battery lamp 1000 includes: a housing 100, a battery 200, a lamp body 300, and a PCB board assembly 400. A lampshade 105 is provided on one side of the housing 100; the battery 200 is located inside the housing 100; the lamp body 300 is located inside the housing 100, and the lamp body 300 is correspondingly arranged with the lampshade 105; the PCB board assembly 400 is located inside the housing 100 and is electrically connected to the battery 200. An infrared sensor 4011 and a touch sensor 4021 are provided on the PCB board assembly 400. The PCB board assembly 400 is electrically connected to the lamp body 300. The infrared sensor 4011 is located on the side of the PCB board assembly 400 facing the lampshade 105 and is used to turn on the lamp body 300 when a human body is detected. The touch sensor 4021 is located between the PCB board assembly 400 and the housing 100, and the user can control the color temperature and brightness of the lamp body 300 by touching the touch sensor 4021.
[0023] A lampshade 105 is provided on one side of the housing 100. The lampshade 105 has a certain degree of light transmittance, enabling the lamp body 300 to provide normal illumination. An infrared sensor 4011 and a touch sensor 4021 are provided on the PCB board assembly 400. The infrared sensor 4011 can control the lamp body 300 to turn on when it detects a human body. Simultaneously, the color temperature and brightness of the lamp body 300 can be adjusted by the user actively pressing or touching the area of the touch sensor 4021. In actual use, when a user is within the sensing range of the infrared sensor 4011, the infrared sensor 4011 can detect the difference between the human body temperature and the external environment. The infrared sensor 4011 uses this temperature information to control the lamp body 300 to turn on for user convenience. On the other hand, the user can control the color temperature and brightness changes of the lamp body 300 by touching and pressing the touch sensor 4021. The dual-control induction battery lamp 1000 can control the lamp body 300's on / off state, color temperature, brightness, and other states through the above-mentioned multiple methods. This enhances the multi-functionality of the dual-control induction battery lamp 1000, makes it more convenient for users to use, improves the applicability of the dual-control induction battery lamp 1000, and can better meet user needs.
[0024] The dual-control induction battery lamp 1000 is equipped with an infrared sensor 4011, enabling intelligent control of the lamp body 300. During use, the lamp 1000 can be controlled by sensing the user's heat, providing convenient control. For example, if the infrared sensor 4011 detects a human body within a certain range, it can control the lamp body 300 to remain on for 30 seconds or 3 minutes, greatly simplifying user operation.
[0025] On the other hand, users can control the state of the lamp body 300 by touching or pressing the touch sensor 4021. For example, by tapping, users can control the lamp body 300 to switch between three color temperature modes: warm light, white light, and cool light. By long-pressing the touch sensor, users can control the lamp body 300 to adjust the brightness steplessly (maximum 100%, minimum 15%). This enhances the multifunctionality of the dual-control sensor battery lamp 1000 and improves the user experience.
[0026] Specifically, the lamp body 300 and the lamp shade 105 are set in a corresponding manner to ensure the uniformity and softness of the light and provide a comfortable lighting environment.
[0027] It should be noted that in this embodiment, the lampshade 105 is a semi-transparent plastic cover. On the other hand, the infrared sensor 4011 is an infrared pyroelectric sensor, which is a sensor capable of detecting the heat of surrounding objects and converting it into an electrical signal. This type of sensor utilizes the infrared radiation emitted by objects to detect their presence, as most objects emit infrared radiation. When an object enters the sensor's detection range, the object's heat causes a change in the pyroelectric material inside the sensor, thereby generating an electrical signal.
[0028] The touch sensor 4021 is a sensor used to detect, measure, and record the amount of pressure applied to its surface by an object. The touch sensor 4021 can convert physical pressure into an electrical signal, thereby enabling pressure monitoring and control.
[0029] refer to Figure 1 and Figure 2 The housing 100 includes a base plate 101 and side walls 102 disposed on opposite sides of the base plate 101 and arranged in the same direction. The lampshade 105 is disposed between the two side walls 102. The housing 100 also includes a first end cap 103 and a second end cap 104 disposed at opposite ends of the housing 100, and the opposite ends of the lampshade 105 are respectively connected to the first end cap 103 and the second end cap 104.
[0030] The base plate 101 has side walls 102 facing the same direction on both sides, and the lampshade 105 is located between the two side walls 102, which can effectively enhance the structural stability of the housing 100. This can reduce the shaking and deformation of the dual-control induction battery lamp 1000 during use and ensure the stability of the dual-control induction battery lamp 1000 during long-term use.
[0031] Specifically, the lampshade 105 is located between the two side walls 102 and connected to the first end cap 103 and the second end cap 104. The lampshade 105 can be limited and fixed by the two side walls 102, the first end cap 103 and the second end cap 104, so that the connection between the lampshade 105 and the housing 100 is tighter, ensuring the stability of the housing 100.
[0032] refer to Figure 1 and Figure 2 The lamp body 300 is mounted on the side wall 102, and the side wall 102 is provided with a mounting groove 1021. The opposite sides of the lamp cover 105 are respectively located in the mounting groove 1021. The dual-control induction battery lamp 1000 also includes a light guide plate 500 and a reflective paper 600. The reflective paper 600 is located on the side of the base plate 101 facing the lamp cover 105, and the light guide plate 500 is located on the side of the lamp cover 105 facing the base plate 101.
[0033] The lampshade 105 has mounting grooves 1021 on its opposite sides and on the two side walls 102, which ensures the stable installation of the lampshade 105 and prevents it from shaking or falling off, thereby improving the lighting effect and stability of the dual-control induction battery lamp 1000. A reflective paper 600 is located on the side of the base plate 101 facing the lampshade 105. The light guide plate 500 and the reflective paper 600 can effectively guide and reflect light, improving light transmission efficiency and enhancing the brightness and uniformity of the dual-control induction battery lamp 1000.
[0034] Specifically, by setting up the light guide plate 500 and the reflective paper 600, the projection angle and direction of the light can be controlled, so that the light is projected more concentratedly and evenly onto the area that needs to be illuminated, thus optimizing the lighting effect.
[0035] The well-designed layout of the light guide plate 500 and reflective paper 600 not only enhances the functionality of the dual-control induction battery lamp 1000 but also improves its aesthetics, making the overall appearance more attractive. This also improves the lighting effect and light transmission efficiency of the lamp body 300, thereby increasing its energy utilization efficiency.
[0036] refer to Figure 1 and Figure 2The PCB assembly 400 includes a first circuit board 401 and a second circuit board 402. An infrared sensor 4011 is disposed on the first circuit board 401, and a touch sensor 4021 is soldered on the second circuit board 402. The first circuit board 401 and the second circuit board 402 are respectively disposed on opposite sides of the housing 100. The battery 200, the first circuit board 401, the second circuit board 402 and the lamp body 300 are connected in series.
[0037] The PCB assembly 400 includes a first circuit board 401 and a second circuit board 402. An infrared sensor 4011 is mounted on the first circuit board 401. The infrared sensor 4011 can sense changes in the ambient temperature and control the lamp body 300 to adjust its color temperature, brightness, or status using the temperature signal. A touch sensor 4021 is soldered to the second circuit board 402 and is held in a pressed state between the second circuit board 402 and the housing 100. Therefore, when a user touches or presses the area of the touch sensor 4021, the external force applied to the touch sensor 4021 can adjust the color temperature and brightness of the lamp body 300. These designs can work together to achieve multi-mode control of the dual-control sensor-operated battery lamp 1000, thereby improving the intelligence and convenience of the dual-control sensor-operated battery lamp 1000.
[0038] Specifically, the first circuit board 401 and the second circuit board 402 are respectively located on opposite sides of the housing 100. This layout can effectively utilize space and avoid mutual interference between the infrared sensor 4011 and the touch sensor 4021, which is beneficial to the stability and reliability of the dual-control induction battery lamp 1000.
[0039] Specifically, the battery 200, the first circuit board 401, the second circuit board 402 and the lamp body 300 are connected in series. This series connection method can simplify the circuit structure of the dual-control induction battery lamp 1000, reduce energy loss, improve energy utilization efficiency, and also facilitate maintenance and management.
[0040] By combining the two control methods of infrared sensor 4011 and touch sensor 4021, the intelligent sensing function of the dual-control induction battery light 1000 can be realized, thereby improving the intelligence level of the dual-control induction battery light 1000 and enhancing the user experience.
[0041] refer to Figure 1 and Figure 2The first end cap 103 has a first connecting plate 1031 and a first limiting plate 1032 connected to each other on one side. The first connecting plate 1031 is connected to the lampshade 105. The first limiting plate 1032 is located between the first connecting plate 1031 and the base plate 101. The first circuit board 401 is located between the first end cap 103 and the first limiting plate 1032. The second end cap 104 has a second connecting plate 1041 and a second limiting plate 1042 connected to each other on one side. The second connecting plate 1041 is connected to the lampshade 105. The second circuit board 402 is located between the second limiting plate 1042 and the second end cap 104. The touch sensor 4021 abuts against the second connecting plate 1041 at a point away from the second circuit board 402.
[0042] The first connecting plate 1031 and the first limiting plate 1032 of the first end cap 103 can jointly limit and fix the first circuit board 401. The end of the first connecting plate 1031 is connected to one end of the lampshade 105, and the other end is connected to the first limiting plate 1032. The first limiting plate 1032 is disposed between the first connecting plate 1031 and the base plate 101 to support the first connecting plate 1031. Similarly, the second connecting plate 1041 and the second limiting plate 1042 of the second end cap 104 can jointly limit and fix the second circuit board 402. The end of the second connecting plate 1041 is connected to the other end of the lampshade 105, and the second limiting plate 1042 is disposed between the second connecting plate 1041 and the base plate 101 to support the second connecting plate 1041.
[0043] The first connecting plate 1031 and the base plate 101 limit the first circuit board 401 in the vertical direction, while the first end cap 103 and the first limiting plate 1032 limit the first circuit board 401 in the horizontal direction. The second connecting plate 1041 and the base plate 101 limit the second circuit board 402 in the vertical direction, while the second limiting plate 1042 and the second end cap 104 limit the second circuit board 402 in the horizontal direction. This configuration ensures that the first circuit board 401 and the second circuit board 402 remain stable and secure within the housing 100, preventing any shaking or displacement of the first circuit board 401 and the second circuit board 402.
[0044] Specifically, the two ends of the touch sensor 4021 respectively abut against the second connecting plate 1041 and the second circuit board 402. This layout can effectively ensure the connection stability between the touch sensor 4021 and related components, and improve the reliability and sensitivity of the touch sensing function of the dual-control induction battery lamp 1000.
[0045] refer to Figure 1 and Figure 2The PCB board assembly 400 also includes a Fresnel lens 403, which is mounted on the infrared sensor 4011. The first connecting plate 1031 has a first slot 10311 corresponding to the Fresnel lens 403, through which the Fresnel lens 403 is exposed.
[0046] A Fresnel lens 403 is provided on the infrared sensor 4011 on the first circuit board 401. The Fresnel lens 403 can optimize the optical performance of the infrared sensor 4011 and diffract the infrared light emitted by the infrared sensor 4011, so that the infrared light emitted by the infrared sensor 4011 can have a larger illumination range, thereby enabling the infrared sensor 4011 to monitor a larger area and detect changes in ambient temperature more accurately and timely.
[0047] In this embodiment, the Fresnel lens 403 is a specially designed lens, typically composed of many annular lens elements, each with a specific curved surface shape. Its surface is divided into a series of concentric rings, each with a specific curvature, enabling the entire Fresnel lens 403 to achieve a focusing effect similar to that of a conventional lens. Compared to conventional lenses, the Fresnel lens 403 is thinner and lighter, and in this embodiment, it can also disperse infrared light.
[0048] The Fresnel lens 403 is exposed through the first slot 10311, which facilitates its installation and adjustment. The integration of the Fresnel lens 403 into the infrared sensor 4011 enhances its sensing effect, improves the accuracy and sensitivity of the intelligent sensing function, and makes the dual-control induction battery lamp 1000 more intelligent and convenient.
[0049] refer to Figure 1 and Figure 2 The first circuit board 401 is provided with a switch 4012 and a charging interface 4013. The first end cover 103 is provided with a second slot 1033 corresponding to the switch 4012 and a third slot 1034 corresponding to the charging interface 4013. The switch 4012 is exposed through the second slot 1033 and the charging interface 4013 is corresponding through the third slot 1034. The switch 4012 has multiple positions.
[0050] A switch 4012 is provided on the first circuit board 401. Users can control the lamp body 300 within the dual-control induction battery lamp 1000 by controlling the state of switch 4012. This allows control over the color temperature, brightness, and status of the lamp body 300. Switch 4012 makes operation of the dual-control induction battery lamp 1000 more convenient and intuitive. Switch 4012 is exposed through the second slot 1033, making it easy for users to operate and improving the user experience.
[0051] On the other hand, the charging interface 4013 is located on the first circuit board 401. Users can charge the dual-control induction battery lamp 1000 through the charging interface 4013 without disassembling the dual-control induction battery lamp 1000 or replacing the battery 200, which improves the convenience and flexibility of charging.
[0052] It should be noted that the switch 4012 has multiple settings; in this embodiment, it has four settings. Setting one is always on, setting two is always off, setting three is always on for 30 seconds, and setting four is always on for three minutes. When the switch 4012 is in setting three or four, after the infrared sensor 4011 detects a human body within a certain range, the first circuit board 401 can control the lamp body 300 to remain on for 30 seconds or 3 minutes.
[0053] refer to Figure 1 and Figure 2 The base plate 101 is provided with a receiving groove 1011, and a magnetic component 700 is provided in the receiving groove 1011. A protective pad 800 is provided on the side of the magnetic component 700 facing the lamp cover 105.
[0054] A magnetic component 700 is provided in the receiving groove 1011 on the base plate 101. The magnetic component 700 is used to help the dual-control induction battery light 1000 be magnetically attracted to the magnetic area. This connection method makes the dual-control induction battery light 1000 easy to remove and connect to the external environment, which facilitates the use of the dual-control induction battery light 1000 and enhances its applicability.
[0055] Specifically, by setting a receiving groove 1011 on the floor, the stability of the magnetic component 700 within the receiving groove 1011 can be ensured, and the magnetic component 700 can be prevented from shifting or falling off on the base plate 101.
[0056] Among them, a protective pad 800 is provided on the side of the magnetic component facing the lamp cover 105. The protective pad 800 can prevent the internal components of the dual-control induction battery lamp 1000 from directly contacting the magnetic component 700, avoid interference and damage to the internal components, reduce wear and damage to the dual-control induction battery lamp 1000, and extend the service life of the dual-control induction battery lamp 1000.
[0057] It should be noted that the protective pad 800 is a silicone pad, and the top and bottom of the silicone pad have a grid pattern for anti-slip.
[0058] refer to Figure 1 and Figure 2The first circuit board 401 is provided with a first mounting hole 4014, and the first connecting plate 1031 is provided with a corresponding first connecting post on the side facing the base plate 101. The first mounting hole 4014 is installed to the first connecting post through the first connector 4015. The second circuit board 402 is provided with a second mounting hole 4022, and the second connecting plate 1041 is provided with a corresponding second connecting post on the side facing the base plate 101. The second mounting hole 4022 is installed to the second connecting post through the second connector 4023.
[0059] The first circuit board 401 has a first mounting hole 4014, and the first connecting plate 1031 has a first connecting post corresponding to the first mounting hole 4014. The first mounting hole 4014 is connected to the first connecting post through a first connector 4015, so that the first circuit board 401 and the first connecting plate 1031 maintain a stable connection. Similarly, the second circuit board 402 has a third connecting hole, and the second connecting plate 1041 has a fourth connecting hole on the side facing the base plate 101. The third connecting hole is connected to the fourth connecting hole through a second connector 4023, so that the second circuit board 402 and the second connecting plate 1041 maintain a stable connection, thereby improving the overall stability and reliability of the dual-control induction battery lamp 1000.
[0060] Specifically, the first circuit board 401 and the housing 100 are connected by the first connector 4015, and the second circuit board 402 and the housing 100 are connected by the second connector 4023, which makes the assembly and disassembly process simpler and more convenient, reduces the complexity of installation, and improves the ease of use of the dual-control induction battery lamp 1000.
[0061] It should be noted that the first connector 4015 and the second connector 4023 can be screws, bolts, or other types of connectors. The connecting hole on the first connecting post is connected to the first mounting hole 4014, and the connecting hole on the second connecting post is connected to the second mounting hole 4022, or the connecting holes can be directly provided on the first connecting plate 1031 and the second connecting plate 1041.
[0062] In an optional embodiment of this utility model, an indicator light is provided on the first circuit board 401. The indicator light is electrically connected to the charging interface 4013 to display the charging status of the battery 200. The charging interface 4013 is a type-c interface.
[0063] The indicator light connects to the charging port 4013 and can display the charging status of battery 200 in real time. Users can observe the status of the indicator light to understand the charging progress of battery 200, making it easy to monitor the usage of battery 200. This design improves the convenience of the product, allowing users to directly understand the usage and charging status of battery 200 through the indicator light status.
[0064] In this embodiment, the charging interface 4013 is a Type-C interface. The Type-C interface is highly versatile and provides convenient and fast charging. Besides the above configuration, other types of interfaces can also be selected for the charging interface.
[0065] It should be understood that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Those skilled in the art can modify the technical solutions described in the above embodiments, or make equivalent substitutions for some of the technical features; and all such modifications and substitutions should fall within the protection scope of the appended claims of this utility model.
Claims
1. A dual-control induction battery lamp, characterized in that, include: A housing, wherein a lampshade is provided on one side of the housing; A battery, wherein the battery is disposed within the housing; The lamp body is disposed inside the housing, and the lamp body and the lamp cover are correspondingly arranged; A PCB board assembly is disposed within the housing and electrically connected to the battery. The PCB board assembly is equipped with an infrared sensor and a touch sensor. The PCB board assembly is electrically connected to the lamp body. The infrared sensor is located on the side of the PCB board assembly facing the lampshade and is used to turn on the lamp body when a human body is detected. The touch sensor is located between the PCB board assembly and the housing, allowing the user to control the color temperature and brightness of the lamp body by touching the touch sensor.
2. The dual-control induction battery lamp according to claim 1, characterized in that, The housing includes a base plate and side walls disposed on opposite sides of the base plate and arranged in the same direction. The lampshade is disposed between the two side walls. The housing also includes a first end cap and a second end cap disposed at opposite ends of the housing. The opposite ends of the lampshade are respectively connected to the first end cap and the second end cap.
3. The dual-control induction battery lamp according to claim 2, characterized in that, The lamp body is mounted on the side wall, and the side wall is provided with a mounting groove. The opposite sides of the lampshade are respectively located in the mounting groove. The dual-control induction battery lamp also includes a light guide plate and a reflective paper. The reflective paper is located on the side of the base plate facing the lampshade, and the light guide plate is located on the side of the lampshade facing the base plate.
4. The dual-control induction battery lamp according to claim 2, characterized in that, The PCB assembly includes a first circuit board and a second circuit board. The infrared sensor is disposed on the first circuit board, and the touch sensor is soldered on the second circuit board. The first circuit board and the second circuit board are respectively disposed on opposite sides of the housing. The battery, the first circuit board, the second circuit board and the lamp body are connected in series.
5. The dual-control induction battery lamp according to claim 4, characterized in that, The first end cap has a first connecting plate and a first limiting plate connected to each other on one side. The first connecting plate is connected to the lampshade. The first limiting plate is located between the first connecting plate and the base plate. The first circuit board is located between the first end cap and the first limiting plate. The second end cap has a second connecting plate and a second limiting plate connected to each other on one side. The second connecting plate is connected to the lampshade. The second circuit board is located between the second limiting plate and the second end cap. The end of the touch sensor facing away from the second circuit board abuts against the second connecting plate.
6. The dual-control induction battery lamp according to claim 5, characterized in that, The PCB board assembly also includes a Fresnel lens, which is disposed on the infrared sensor. The first connecting board has a first slot corresponding to the Fresnel lens, and the Fresnel lens is exposed through the first slot.
7. The dual-control induction battery lamp according to claim 4, characterized in that, The first circuit board is provided with a switch and a charging interface. The first end cover is provided with a second slot corresponding to the switch and a third slot corresponding to the charging interface. The switch is exposed through the second slot and the charging interface is corresponding through the third slot. The switch has multiple positions.
8. The dual-control induction battery lamp according to claim 2, characterized in that, The base plate is provided with a receiving groove, and a magnetic component is provided in the receiving groove. A protective pad is provided on the side of the magnetic component facing the lampshade.
9. The dual-control induction battery lamp according to claim 5, characterized in that, The first circuit board has a first mounting hole, and the first connecting plate has a corresponding first connecting post on the side facing the base plate. The first mounting hole is installed to the first connecting post through a first connector. The second circuit board has a second mounting hole, and the second connecting plate has a corresponding second connecting post on the side facing the base plate. The second mounting hole is installed to the second connecting post through a second connector.
10. The dual-control induction battery lamp according to claim 7, characterized in that, The first circuit board is equipped with an indicator light, which is electrically connected to the charging interface to display the charging status of the battery. The charging interface is a Type-C interface.