Induction control assembly, lamp holder and luminaire
By introducing a sensor control component into the lighting fixture, and utilizing a combination of circuit boards, touch sensors, and light intensity sensors, the problems of limited functionality and poor reliability in the lighting fixture switch control structure are solved. This enables flexible control of brightness adjustment and switching, and improves reliability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN SHUYE INNOVATION TECH CO LTD
- Filing Date
- 2025-07-21
- Publication Date
- 2026-07-21
AI Technical Summary
The existing switch control structure of lighting fixtures has a single function and poor reliability. The buttons are prone to collapse and failure after long-term use.
The system employs a sensing control component, including a circuit board, a touch sensor, an elastic element, and a light intensity sensor. The touch sensor is reset via the elastic element, and the working state of the lighting equipment is controlled by combining the touch signal and the light intensity signal, thereby achieving brightness adjustment and on/off switching.
This improves the lifespan of the touch sensor and the versatility of its control functions, thereby enhancing the reliability and control flexibility of the lighting fixtures.
Smart Images

Figure CN224534214U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lighting equipment technology, and in particular to a sensor control component, lamp holder and lamp. Background Technology
[0002] Most common lighting fixtures have a switch control mechanism, allowing users to turn the light on or off by pressing a button. However, these switch control mechanisms typically only enable on / off control and do not allow for brightness adjustment. This limited functionality, coupled with prolonged use, can cause the button to collapse and malfunction due to repeated button presses, affecting the reliability of normal operation. Utility Model Content
[0003] In view of this, the present invention provides a sensing control component, a lamp holder, and a lamp fixture to solve the problems of the existing lamp switch control structure having a single function and poor reliability.
[0004] To solve the above problems, the technical solution of this utility model is implemented as follows:
[0005] A sensing control component includes: a circuit board electrically connected to the lighting device; a touch sensor electrically connected to the circuit board and disposed on one side of the circuit board, the touch sensor being used to generate a touch signal; an elastic element disposed on the side of the circuit board opposite to the touch sensor and connected to the lighting device, the elastic element being used at least to drive the touch sensor to reset; and a light intensity sensor electrically connected to the circuit board, the light intensity sensor being used to detect light intensity and generate a light intensity signal; wherein the circuit board controls the lighting device to switch operating states based on the touch signal and the light intensity signal.
[0006] In some embodiments, the circuit board includes: a first plate body electrically connected to the lighting device, wherein the touch sensor and the elastic element are respectively connected to opposite sides of the first plate body; a second plate body disposed on any side of the first plate body and electrically connected to the first plate body; wherein the light intensity sensor is disposed on the second plate body.
[0007] In some embodiments, the second plate and the first plate form a rounded corner or an angle so that one side of the second plate faces the elastic member; wherein the light intensity sensor is disposed on the side of the second plate away from the elastic member.
[0008] In some embodiments, a first protrusion is formed on the side of the first plate facing the elastic member, and a second protrusion is formed on the side of the second plate facing the elastic member; wherein both the first protrusion and the second protrusion abut against the elastic member.
[0009] In some embodiments, the circuit board further includes a third board body disposed on any side of the first board body, the first board body being electrically connected to the lighting device through the third board body; wherein, the sensing control component further includes a driver, the driver being electrically connected to the third board body, and the circuit board controlling the lighting device to switch operating states through the driver.
[0010] In some embodiments, the third plate and the second plate are both disposed on the side of the first plate away from the touch sensor, and the third plate and the second plate are spaced apart from each other; wherein, the first plate, the second plate, the third plate and the portion of the lighting device connected to the elastic member enclose a mounting space, and the elastic member is disposed within the mounting space.
[0011] In some embodiments, the sensing control assembly further includes an extension member, one end of which is connected to the elastic member, and the other end of which extends out of the mounting space and in a direction parallel to the third plate, the extension member being used to separate the third plate from the conductive cable connected to the lighting device.
[0012] In some embodiments, the sensing control component further includes: an indicator light for illuminating a switch button on the lighting device, the indicator light being electrically connected to the first board, and the indicator light and the touch sensor being located on the same side of the first board.
[0013] In some embodiments, the circuit board controls the indicator light to switch between on and off according to the operating state of the lighting device.
[0014] This utility model embodiment also provides a lamp holder, including a mounting bracket, a light source assembly, and the aforementioned sensing control assembly. The light source assembly is connected to the mounting bracket, and the circuit board is electrically connected to the light source assembly. The mounting bracket has a receiving cavity, and at least a portion of the structure of the circuit board, the elastic element, the touch sensor, and the light intensity sensor are all disposed within the receiving cavity. The elastic element is connected to the inner wall of the mounting bracket forming the receiving cavity.
[0015] In some embodiments, the lamp holder further includes a switch button, which is movably disposed on the mounting bracket and covers the touch sensor; wherein the elastic element drives the switch button to reset.
[0016] This utility model embodiment also provides a lamp, including a lamp holder and the lamp head described above, wherein the lamp holder is connected to the mounting bracket.
[0017] This utility model provides a sensing control component, lamp holder, and lamp fixture. The sensing control component includes a circuit board, a touch sensor, an elastic element, and a light intensity sensor. By placing the elastic element on the side of the circuit board away from the touch sensor and connecting it to the lighting equipment, when the touch sensor is pressed by external force, the elastic force generated by the elastic element can drive the touch sensor to reset, thereby maintaining the stability of the touch sensor's position and meeting the needs of long-term use, thus improving reliability. Simultaneously, by electrically connecting the circuit board to the lighting equipment, and with both the touch sensor and the light intensity sensor electrically connected to the circuit board, the circuit board can control the lighting equipment to switch its operating state based on touch signals and light intensity signals. This design allows for the implementation of more control schemes, such as brightness adjustment, in addition to controlling the switching of the lighting equipment, thereby increasing the diversity of control functions. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of the sensing control component provided in this embodiment of the utility model;
[0019] Figure 2 This is a partial structural diagram of the lamp holder provided in the embodiment of the present utility model, in which part of the structure of the mounting bracket is omitted;
[0020] Figure 3 This is a schematic diagram of a second partial structure of the lamp holder provided in an embodiment of the present utility model, in which part of the structure of the mounting bracket is omitted;
[0021] Figure 4 yes Figure 3 A magnified view of a section at point A in the middle;
[0022] Figure 5 This is a schematic diagram of the structure of the lamp provided in this embodiment of the utility model.
[0023] Explanation of reference numerals in the attached figures:
[0024] 10. Sensing control component; 11. Circuit board; 111. First plate; 1111. First protrusion; 112. Second plate; 1121. Second protrusion; 113. Third plate; 1131. Connector; 114. Mounting space; 12. Touch sensor; 13. Elastic element; 14. Light intensity sensor; 15. Driver; 16. Extension; 161. Fixing part; 17. Indicator light; 20. Lamp holder; 21. Mounting bracket; 211. Receiving cavity; 22. Light source assembly; 23. Switch button; 30. Lamp holder; 100. Lamp fixture. Detailed Implementation
[0025] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0026] The specific technical features described in the specific embodiments can be combined in any suitable manner without contradiction. For example, different combinations of specific technical features can form different embodiments and technical solutions. To avoid unnecessary repetition, the various possible combinations of the specific technical features in this utility model will not be described separately.
[0027] In the following description, the terms "first," "second," etc., are used merely to distinguish different objects and do not indicate that the objects have the sameness or relationship. It should be understood that the directional descriptions "above," "below," "outside," and "inside" refer to the directions under normal use, while "left" and "right" refer to the left and right directions shown in the corresponding diagrams, which may or may not be the left and right directions under normal use.
[0028] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. "A plurality of" means two or more.
[0029] like Figure 1 As shown, this embodiment of the present invention provides a sensing control component 10, including a circuit board 11, a touch sensor 12, an elastic element 13, and a light intensity sensor 14. The circuit board 11 is used for electrical connection to a lighting device. The touch sensor 12 is electrically connected to the circuit board 11 and is disposed on one side of the circuit board 11. The touch sensor 12 can sense external touch and generate a touch signal. The elastic element 13 is disposed on the side of the circuit board 11 opposite to the touch sensor 12 and is connected to the lighting device. The elastic element 13 can at least drive the touch sensor 12 to reset. The light intensity sensor 14 is electrically connected to the circuit board 11 and is used to detect light intensity and generate a light intensity signal. The circuit board 11 controls the lighting device to switch its operating state based on the touch signal and the light intensity signal.
[0030] Specifically, the electrical connection between circuit board 11 and the lighting equipment means that circuit board 11 is at least electrically connected to the light source structure such as bulbs and lamps in the lighting equipment, thereby enabling circuit board 11 to control the operation of the light source structure. The touch sensor 12 can be electrically connected to circuit board 11 by means of soldering or other methods, and the touch sensor 12 is set on one side of circuit board 11. When the touch sensor 12 is subjected to external force, both the touch sensor 12 and circuit board 11 will undergo certain deformation and displacement. At the same time, the touch sensor 12 generates a touch signal, which can be transmitted to the relevant control structure on circuit board 11 so that circuit board 11 can control the light source structure of the lighting equipment to switch the working state.
[0031] The elastic element 13 is disposed on the side of the circuit board 11 opposite to the touch sensor 12, that is, the elastic element 13 and the touch sensor 12 are located on opposite sides of the circuit board 11. Furthermore, along the direction in which the elastic element 13 can apply an elastic force, one end of the elastic element 13 is connected to the lighting device, and the other end of the elastic element 13 is connected to the circuit board 11. The connection method includes at least a fixed connection, simply maintaining contact with the circuit board 11, or having a gap between the elastic element 13 and the circuit board 11 that does not affect the elastic element 13's ability to drive the touch sensor 12 and the circuit board 11 to reset, which can be eliminated under pressure to achieve mutual contact. With this configuration, the deformation and displacement of the touch sensor 12 and the circuit board 11 caused by external force can compress the elastic element 13, causing the elastic element 13 to apply an elastic force to the circuit board 11. After the external force is removed, since the touch sensor 12 is connected to the circuit board 11, the elastic element 13 can at least drive the touch sensor 12 to reset through the circuit board 11. In this way, by using the elastic element 13 to provide support for the positional restoration of the touch sensor 12 and the circuit board 11, the service life of the touch sensor 12 and the circuit board 11 can be improved, and the reliability of use is enhanced.
[0032] The structure of the elastic element 13 itself can be a solid structure that can undergo elastic deformation after being compressed; or it can be a hollow structure provided that it has reliable support strength and can generate reliable restoring force.
[0033] Specifically, the light intensity sensor 14 is electrically connected to the circuit board 11. The light intensity sensor 14 can sense the light intensity at the target location and generate a light intensity signal. This light intensity signal can be transmitted to the relevant control structure on the circuit board 11, allowing the circuit board 11 to control the switching of the light source structure of the lighting equipment. Optionally, the light intensity sensor 14 can be arranged facing the lighting direction of the lighting equipment, such that the target location detected by the light intensity sensor 14 is the same as the location illuminated by the lighting equipment, or is located within the illumination area of the lighting equipment. This arrangement allows the light intensity signal generated by the light intensity sensor 14 to more accurately reflect the current illumination brightness of the lighting equipment, reducing detection errors.
[0034] Optionally, the circuit board 11 can control the lighting device to switch between on and off based on the touch signal generated by the touch sensor 12 and the light intensity signal generated by the light intensity sensor 14. It can also control the lighting device to switch between different brightness levels when it is on. For example, when the lighting device has two preset brightness levels, the circuit board 11 can control the lighting device to cycle between a first preset brightness, a second preset brightness, and an off state, or sequentially switch in the order of first preset brightness, off, second preset brightness, and off. As another example, when the lighting device is off, the circuit board 11 can determine the current ambient brightness based on the light intensity signal, and automatically control the lighting device to turn on at a preset brightness suitable for the current environment when a touch signal is detected. When this preset brightness is the second preset brightness, the circuit board 11 controls the lighting device to repeatedly switch between the second preset brightness and the off state based on the touch signal. This control method can automatically adjust the brightness according to the environment. It is understood that the control method of the lighting device by the circuit board 11 is not limited to the control methods described above. Different control methods can be implemented using different circuit designs and can be flexibly designed according to actual needs.
[0035] The sensing control component 10 provided in this embodiment includes a circuit board 11, a touch sensor 12, an elastic element 13, and a light intensity sensor 14. The touch sensor 12 is disposed on one side of the elastic element 13. By placing the elastic element 13 on the side of the circuit board 11 away from the touch sensor 12 and connecting it to the lighting device, when the touch sensor 12 is squeezed by an external force, the elastic force applied by the elastic element 13 to the circuit board 11 can drive the touch sensor 12 to reset. This can maintain the stability of the position of the touch sensor 12, making it less prone to positional displacement, collapse, and other problems. It also improves the service life of the touch sensor 12, meets the needs of long-term use, and has better reliability. Meanwhile, by electrically connecting the circuit board 11 to the lighting equipment, and by electrically connecting both the touch sensor 12 and the light intensity sensor 14 to the circuit board 11, the circuit board 11 can control the lighting equipment to switch its working state based on the touch signal generated by the touch sensor 12 and the light intensity signal generated by the light intensity sensor 14. This design, in addition to controlling the switching of the lighting equipment, can also support the implementation of more control schemes. For example, it can realize brightness adjustment and can also automatically adapt the lighting brightness according to the ambient brightness, thereby increasing the diversity of control functions.
[0036] In some embodiments, such as Figure 1 As shown, the circuit board 11 includes a first plate 111 and a second plate 112. The first plate 111 is electrically connected to the lighting device, and the touch sensor 12 and the elastic element 13 are respectively connected to opposite sides of the first plate 111. The second plate 112 is disposed on any side of the first plate 111 and is electrically connected to the first plate 111, and the light intensity sensor 14 is disposed on the second plate 112. Specifically, the first plate 111 has a rectangular cross-sectional shape in the vertical direction, with two opposite long sides and two opposite short sides. Moreover, each of the two long sides and the two short sides has a sidewall, and the touch sensor 12 and the elastic element 13 are respectively fixedly connected to the sidewalls of the two long sides. The second plate 112 can be disposed on any one of the four sidewalls of the first plate 111 and is electrically connected to the first plate 111 to realize the transmission of electrical energy and electrical signals between the two.
[0037] The first plate 111 and the second plate 112 are usually separate and independent structures, which can be connected and fixed by means of welding or other methods. Conductive traces are usually provided on the first plate 111 and the second plate 112, which can electrically connect the relevant circuit components provided on the first plate 111 and the second plate 112 to form a complete circuit structure.
[0038] Optionally, the first plate 111 can be a rigid plate, meaning the substrate of the first plate 111 is made of materials such as epoxy resin or ceramic, possessing high hardness and rigidity to stably support the touch sensor 12 and effectively transmit the elastic force applied by the elastic element 13 to the touch sensor 12, causing the touch sensor 12 to reset. The second plate 112 can be a flexible plate, meaning the substrate of the second plate 112 is made of flexible materials such as polyimide or polyester film, possessing good flexibility and being able to be bent to facilitate adjustment of the position of the light intensity sensor 14 and to adjust the shape of the circuit board 11 to better fit the space available for mounting the circuit board 11 on the lighting equipment.
[0039] The above embodiment connects the touch sensor 12 to the first board 111 and the light intensity sensor 14 to the second board 112. That is, the touch sensor 12 and the light intensity sensor 14 are connected to different positions on the circuit board 11. This can reduce signal interference between the touch sensor 12 and the light intensity sensor 14. Moreover, the relative positions of the first board 111 and the second board 112 can be designed according to actual needs, which is highly flexible. By adjusting the relative positions of the first board 111 and the second board 112, the touch sensor 12 and the light intensity sensor 14 can be set in appropriate working positions, thereby improving the accuracy of detection.
[0040] In some embodiments, such as Figure 1 As shown, a rounded corner or included angle is formed between the second plate 112 and the first plate 111 so that one side of the second plate 112 faces the elastic member 13, and the light intensity sensor 14 is disposed on the side of the second plate 112 away from the elastic member 13.
[0041] Specifically, the second plate 112 is folded at a certain angle to the first plate 111. The connection between the second plate 112 and the first plate 111 can form a smooth rounded corner or a sharp angle. The angle between the second plate 112 and the first plate 111 can be adjusted according to actual conditions. For example... Figure 1 The angle between the second plate 112 and the first plate 111 shown is 90°, while in other designs, this angle may be greater than or less than 90°.
[0042] When the second plate 112 and the first plate 111 are set at a certain angle, one side of the second plate 112 faces the elastic member 13. That is, both the first plate 111 and the second plate 112 have a surface facing the elastic member 13. This arrangement allows the elastic member 13 to be placed within the area enclosed by the first plate 111 and the second plate 112. For example... Figure 1The elastic element 13 shown is located in the area to the right of the first plate 111 and above the second plate 112. This arrangement saves space occupied by the elastic element 13 and also supports the first plate 111 and the second plate 112 to maintain a stable relative position between them. Meanwhile, the light intensity sensor 14 is positioned on the side of the second plate 112 opposite to the elastic element 13, for example... Figure 1 The light intensity sensor 14 shown is disposed on the lower side of the second plate 112, which can avoid the elastic member 13 from blocking the detection of the light intensity sensor 14 and meet the requirements for detecting light intensity.
[0043] The above embodiment employs a rounded corner or angle between the second plate 112 and the first plate 111, that is, the second plate 112 and the first plate 111 are folded at an angle, so that one side of the second plate 112 faces the elastic member 13. This allows the elastic member 13 to be placed in the area enclosed by the first plate 111 and the second plate 112, saving the space occupied by the elastic member 13 and improving the compactness of the overall structure.
[0044] In some embodiments, such as Figure 1 As shown, a first protrusion 1111 is formed on the side of the first plate 111 facing the elastic member 13, and a second protrusion 1121 is formed on the side of the second plate 112 facing the elastic member 13. Both the first protrusion 1111 and the second protrusion 1121 abut against the elastic member 13.
[0045] In the above embodiment, the first plate 111 abuts against the elastic member 13 through the first protrusion 1111, making the contact between the elastic member 13 and the first plate 111 more sufficient. The first plate 111 can accurately transmit the elastic force applied by the elastic member 13 to drive the touch sensor 12 to reset. Furthermore, the second protrusion 1121 of the second plate 112 abuts against the elastic member 13, filling any gaps that may exist between the second plate 112 and the elastic member 13, making the installation position of the elastic member 13 more stable and less prone to loosening, further improving the reliability of the structure.
[0046] In some embodiments, such as Figure 1 As shown, the circuit board 11 also includes a third board 113, which is disposed on either side of the first board 111. The first board 111 is electrically connected to the lighting device through the third board 113. The sensing control assembly 10 also includes a driver 15, which is electrically connected to the third board 113. The circuit board 11 controls the lighting device to switch its operating state through the driver 15.
[0047] Specifically, the driver 15 is used at least to control the light source structure of the lighting equipment. For example, the driver 15 typically has functions such as converting AC power to DC power, adjusting current and voltage, and controlling the on / off state of the circuit, thereby controlling the switching on and off of the lighting equipment and adjusting the brightness of the lighting. The driver 15 is electrically connected to the third plate 113 and can be electrically connected to the touch sensor 12 disposed on the first plate 111 and the light intensity sensor 14 disposed on the second plate 112 via the conductive traces of the third plate 113, thereby being able to receive touch signals and light intensity signals. At the same time, by electrically connecting the third plate 113 to the lighting equipment, the driver 15 is also electrically connected to the lighting equipment, and can control the switching of the working state of the lighting equipment according to the touch signals and light intensity signals.
[0048] It is understandable that the specific arrangement of the third board 113 and the driver 15 can be flexibly designed according to the actual situation, as long as the driver 15 is electrically connected to the third board 113 and the third board 113 is electrically connected to the lighting equipment. For example, in one embodiment, such as Figure 2 As shown, the third plate 113 is provided with a connector 1131 for electrical connection with a lighting device, and the lighting device is provided with a corresponding interface. The third plate 113 can extend toward the interface on the lighting device, so that the connector 1131 on the third plate 113 is close to the interface, thereby facilitating the connection between the connector 1131 and the interface and realizing the electrical connection between the third plate 113 and the lighting device. Optionally, the third plate 113 can be made of a flexible plate, so that the third plate 113 can be bent, which facilitates the adjustment of the shape of the third plate 113 and the position of the adjustment driver 15, providing high adjustment flexibility and better structural flexibility of the third plate 113.
[0049] In the above embodiment, a third plate 113 is disposed on one side of the first plate 111. The position of the third plate 113 only needs to be designed according to the interface location of the lighting device to facilitate electrical connection between the third plate 113 and the lighting device. This allows the first plate 111 to be electrically connected to the lighting device via the third plate 113. This arrangement eliminates the need for significant adjustments to the position of the first plate 111, simplifying the structural design. Simultaneously, by using a driver 15 electrically connected to the third plate 113, the driver 15 forms electrical connections with the touch sensor 12, the light intensity sensor 14, and the lighting device, thereby enabling control of the lighting device based on touch signals and light intensity signals.
[0050] In some embodiments, such as Figure 1As shown, the third plate body 113 and the second plate body 112 are both arranged on the side of the first plate body 111 away from the touch sensor 12, and the third plate body 113 and the second plate body 112 are arranged at intervals. The first plate body 111, the second plate body 112, the third plate body 113 and the part of the lighting device connected to the elastic member 13 enclose an installation space 114, and the elastic member 13 is arranged in the installation space 114.
[0051] Optionally, as Figure 1 shown, the third plate body 113 and the second plate body 112 can be perpendicular to the first plate body 111, so that the overall shape of the circuit board 11 is roughly in the shape of a "匚", and at the same time, the whole circuit board 11 and the part of the lighting device connected to the elastic member 13 enclose an installation space 114 similar to a rectangle. Of course, the angles formed by the third plate body 113 and the second plate body 112 with the first plate body 111 can be other angles, and the third plate body 113 and the second plate body 112 can be non-parallel to each other, as long as an installation space 114 that can accommodate the elastic member 13 can be formed.
[0052] In the above embodiment, by enclosing the first plate body 111, the second plate body 112, the third plate body 113 and the part of the lighting device connected to the elastic member 13 to form an installation space 114, and arranging the elastic member 13 in the installation space 114, the gap between the circuit board 11 and the lighting device is cleverly utilized to install the elastic member 13, which can effectively reduce the space occupied by the elastic member 13 and improve the overall structural compactness of the induction control component 10.
[0053] In some embodiments, as Figure 1 and Figure 2 shown, the induction control component 10 further includes an extension member 16. One end of the extension member 16 is connected to the elastic member 13, and the other end extends out of the installation space 114 and extends in a direction parallel to the third plate body 113. The extension member 16 can separate the third plate body 113 from the wire cable connecting the lighting device.
[0054] It can be understood that the lighting device usually has a wire cable, and the wire cable can electrically connect the light source structure of the lighting device to the power supply to supply power to the light source structure. And conductive traces are usually arranged on the third plate body 113, and the conductive traces can electrically connect the relevant circuit devices on the circuit board 11. When the conductive traces contact the wire cable of the lighting device, it will cause interference to the circuit and pose a safety hazard. Therefore, in this embodiment, the extension member 16 is used to separate the third plate body 113 from the wire cable. The extension member 16 is usually made of an insulating material to prevent the extension member 16 from conducting electricity between the conductive traces on the third plate body 113 and the wire cable. Optionally, the extension member 16 and the elastic member 13 can be integrally formed or connected by assembly, and the setting method of the extension member 16 is not specifically limited.
[0055] The above embodiment uses an extension 16 to separate the third plate 113 from the conductive cable connecting the lighting device, which can effectively prevent circuit interference caused by contact between the conductive cable and the third plate 113, and improve the safety of the circuit structure.
[0056] Optionally, such as Figure 1 and Figure 2 As shown, the end of the extension member 16 away from the elastic member 13 may also be provided with a fixing part 161. The fixing part 161 extends toward the conductive cable of the lighting equipment and is used to fix the conductive cable. The fixing method can be adhesive, snap-fit, or other methods. By fixing the conductive cable with the fixing part 161, the position of the conductive cable can be kept stable, and the reliability of the electrical connection of the conductive cable can be improved.
[0057] In some embodiments, such as Figure 1 As shown, the sensing control component 10 also includes a switch button for controlling the lighting equipment (see reference). Figure 2 The indicator light 17 is used to illuminate the switch button 23 shown. The indicator light 17 is electrically connected to the first plate 111, and the indicator light 17 and the touch sensor 12 are located on the same side of the first plate 111.
[0058] Specifically, the switch button on the lighting equipment is usually adjacent to and abuts against the touch sensor 12. When the user presses the switch button, the pressure is transmitted to the touch sensor 12 through the switch button. Therefore, by using an indicator light 17 electrically connected to the first plate 111 and placing the indicator light 17 and the touch sensor 12 on the same side of the first plate 111, the indicator light 17 is constantly lit after being powered on, which can illuminate the switch button and make it easier for the user to determine the location of the switch button. For example, in a dark environment, the user can quickly determine the location of the switch button by referring to the illumination of the indicator light 17 and turn on the lighting equipment by pressing the switch button.
[0059] Optionally, one or more indicator lights 17 can be provided. The position of the indicator lights 17 only needs to be on the same side of the first plate 111 as the touch sensor 12, which allows for a relatively flexible design. As an example, Figure 1 There are two indicator lights 17 shown. The two indicator lights 17 are located at the left and right ends of the touch sensor 12, respectively, to improve the brightness and uniformity of the light emission at the switch button position, and the overall structure is aesthetically pleasing.
[0060] In some embodiments, the circuit board 11 can also control the indicator light 17 to switch between on and off according to the operating status of the lighting equipment. For example, the control structure on the circuit board 11 can control the indicator light 17 to turn off when the lighting equipment is on, and control the indicator light 17 to turn on when the lighting equipment is off. This design allows the indicator light 17 to function as a lighting switch button when the lighting equipment is off, making it easy to quickly locate the switch button in low-light conditions. When the lighting equipment is on, the surrounding environment is bright due to the illumination effect of the lighting equipment, so there is no need to illuminate the switch button through the indicator light 17. At this time, the indicator light 17 can be turned off to save energy. Moreover, with the above design, the indicator light 17 does not need to be manually switched by the user, making it more convenient to use.
[0061] like Figures 2 to 4 As shown, this embodiment of the present invention also provides a lamp holder 20, including a mounting bracket 21, a light source assembly 22, and the aforementioned sensing control assembly 10. The light source assembly 22 is connected to the mounting bracket 21, and the circuit board 11 is electrically connected to the light source assembly 22. A receiving cavity 211 is formed on the mounting bracket 21. At least a portion of the structure of the circuit board 11, the elastic element 13, the touch sensor 12, and the light intensity sensor 14 are all disposed within the receiving cavity 211. The elastic element 13 is connected to the inner wall of the receiving cavity 211 formed by the mounting bracket 21.
[0062] Specifically, when the circuit board 11 includes a first plate 111, a second plate 112 and a third plate 113, the first plate 111 and the second plate 112 can be disposed in the receiving cavity 211, while the third plate 113 can extend out of the receiving cavity 211 so that the connector 1131 disposed on the third plate 113 is close to the interface of the light source assembly 22, which facilitates the electrical connection between the third plate 113 and the light source assembly 22.
[0063] Optionally, the mounting bracket 21 may have through holes on the side wall of the receiving cavity 211. The positions of the through holes correspond to the positions of the touch sensor 12 and the light intensity sensor 14, so that the touch sensor 12 and the light intensity sensor 14 are exposed to the mounting bracket 21 through the through holes, thereby facilitating user access to the touch sensor 12 and enabling the light intensity sensor 14 to detect the ambient light intensity. Of course, in the above solution, the through hole corresponding to the position of the light intensity sensor 14 can also be replaced with a transparent window structure, or a transparent component can be provided to cover the through hole, thereby protecting the light intensity sensor 14 inside the receiving cavity 211 while allowing light to pass through, and preventing external dust and other debris from entering.
[0064] The lamp holder 20 provided in this embodiment includes a mounting bracket 21, a light source assembly 22, and the aforementioned sensing control component 10. The sensing control component 10 controls the operating state of the light source assembly 22. The elastic element 13 ensures the stability of the touch sensor 12, improving long-term reliability. Furthermore, the light intensity sensor 14 generates a light intensity signal, allowing the circuit board 11 to implement more control schemes and increasing the diversity of control functions. Additionally, the receiving cavity 211 formed by the mounting bracket 21 can accommodate at least a portion of the circuit board 11's structure, the elastic element 13, the touch sensor 12, and the light intensity sensor 14, thereby improving the compactness of the structural layout.
[0065] In some embodiments, such as Figure 2 As shown, the lamp holder 20 also includes a switch button 23, which is movably mounted on the mounting bracket 21 and covers the touch sensor 12 (see reference). Figure 1 As shown, the elastic element 13 is configured to drive the switch button 23 to reset. Specifically, the elastic element 13 drives the touch sensor 12 to reset, causing the touch sensor 12 to drive the switch button 23 to reset. The switch button 23 can be pressed by the user to move the touch sensor 12 and generate a touch signal.
[0066] Optionally, when the mounting bracket 21 forms a through hole on the side wall of the receiving cavity 211 corresponding to the touch sensor 12, the switch button 23 can be located at the through hole and can extend and retract within the through hole when pressed. Additionally, when an indicator light 17 (see reference) is provided on the first plate 111... Figure 1 When the indicator light 17 illuminates the switch button 23, it allows the user to quickly determine the position of the switch button 23.
[0067] The above embodiment, through the provided switch button 23, can cover and protect the touch sensor 12 under normal use conditions, which can improve the aesthetics of the structure and prevent external dust and other debris from entering the receiving cavity 211 to a certain extent, thereby reducing the impact of external factors on the touch sensor 12 and other structures and improving the reliability of the structure.
[0068] like Figure 5 As shown, this embodiment of the utility model also provides a lamp 100, including a lamp holder 30 and the aforementioned lamp head 20, with the lamp holder 30 connected to a mounting bracket 21. The lamp 100 can specifically take various forms such as a table lamp, bedside lamp, or floor lamp, and has a wide range of applications.
[0069] The lamp 100 provided in this embodiment of the present invention, by applying the aforementioned lamp head 20, and the lamp head 20 having a sensing control component 10, enables the lamp 100 to meet the needs of long-term use and to achieve switching between various lighting brightness levels, providing high control flexibility and a better user experience. Furthermore, the support height of the lamp holder 30 is adjustable, thereby allowing adjustment of the lighting height of the lamp head 20 to meet the needs of different lighting ranges and enhance the user experience of the lamp 100.
[0070] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A sensing control component for controlling lighting equipment, characterized in that, include: The circuit board is electrically connected to the lighting device; A touch sensor is electrically connected to the circuit board and is disposed on one side of the circuit board. The touch sensor is used to generate touch signals. An elastic element is disposed on the side of the circuit board opposite to the touch sensor and connected to the lighting device. The elastic element is used at least to drive the touch sensor to reset. A light intensity sensor is electrically connected to the circuit board. The light intensity sensor is used to detect light intensity and generate a light intensity signal. The circuit board controls the lighting device to switch its working state based on the touch signal and the light intensity signal.
2. The sensing control component as described in claim 1, characterized in that, The circuit board includes: The first plate is electrically connected to the lighting device, and the touch sensor and the elastic element are respectively connected to opposite sides of the first plate; The second plate is disposed on any side of the first plate and is electrically connected to the first plate. The light intensity sensor is disposed on the second plate.
3. The sensing control component as described in claim 2, characterized in that, The second plate and the first plate form a rounded corner or an included angle so that one side of the second plate faces the elastic member; The light intensity sensor is located on the side of the second plate opposite to the elastic element.
4. The sensing control component as described in claim 3, characterized in that, The first plate has a first protrusion on the side facing the elastic member, and the second plate has a second protrusion on the side facing the elastic member. Both the first protrusion and the second protrusion abut against the elastic element.
5. The sensing control component as described in claim 2, characterized in that, The circuit board also includes: The third plate is disposed on either side of the first plate, and the first plate is electrically connected to the lighting device through the third plate. The sensing control component further includes a driver, which is electrically connected to the third board. The circuit board controls the lighting device to switch its working state through the driver.
6. The sensing control component as described in claim 5, characterized in that, The third plate and the second plate are both disposed on the side of the first plate away from the touch sensor, and the third plate and the second plate are spaced apart from each other. The first plate, the second plate, the third plate, and the portion of the lighting equipment to which the elastic element is connected enclose a mounting space, and the elastic element is disposed within the mounting space.
7. The sensing control component as described in claim 6, characterized in that, The sensing control component also includes: An extension member, one end of which is connected to the elastic member, and the other end of which extends out of the mounting space and in a direction parallel to the third plate, is used to separate the third plate from the conductive cable connected to the lighting device.
8. The sensing control component as described in claim 2, characterized in that, The sensing control component also includes: An indicator light is used to illuminate the switch button on the lighting device. The indicator light is electrically connected to the first board. The indicator light and the touch sensor are located on the same side of the first board.
9. The sensing control component as described in claim 8, characterized in that, The circuit board controls the indicator light to switch between on and off according to the working status of the lighting device.
10. A lamp holder, characterized in that, The system includes a mounting bracket, a light source assembly, and a sensing control assembly as described in any one of claims 1-9, wherein the light source assembly is connected to the mounting bracket, and the circuit board is electrically connected to the light source assembly. The mounting bracket has a receiving cavity, and at least a portion of the circuit board structure, the elastic element, the touch sensor, and the light intensity sensor are all disposed within the receiving cavity. The elastic element is connected to the inner wall of the mounting bracket that forms the receiving cavity.
11. A lamp holder as described in claim 10, characterized in that, The lamp head also includes a switch button, which is movably mounted on the mounting bracket and covers the touch sensor. The elastic element drives the reset of the switch button.
12. A lamp, characterized in that, It includes a lamp holder and a lamp head as described in claim 10 or 11, wherein the lamp holder is connected to the mounting bracket.