Circuit structure of multifunctional atmosphere lamp

CN224538376UActive Publication Date: 2026-07-21BEIJING YUEME TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING YUEME TECH CO LTD
Filing Date
2025-08-29
Publication Date
2026-07-21

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Abstract

The utility model belongs to the technical field of lamps and lanterns relates to a kind of circuit structure of multifunctional atmosphere lamp, including main control chip and the encoder board being connected with main control chip, multiple display screens, multiple lamp strip boards and multiple mover coils, multiple display screens are arranged in mover support, multiple lamp strip boards are arranged on stator support and the stator support is equipped with multiple pairs of vertically arranged N-pole magnet and S-pole magnet, multiple mover coils are arranged in the inside of mover support and between N-pole magnet and S-pole magnet, the mode switching knob of encoder board is connected with atmosphere lamp to enable main control chip to be based on mode switching knob to realize the selection of the functional mode of atmosphere lamp, and based on the setting data under the selected functional mode, the height adjustment of mover support and the functional prompt of lamp strip board and display screen under different functional mode are realized.It makes atmosphere lamp have multiple functions, while meeting illumination and improving decorative atmosphere, provide multiple functional prompts for people.
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Description

Technical Field

[0001] This utility model belongs to the field of lighting technology, and relates to an accessory for a multi-functional ambient light, and more particularly to a circuit structure for a multi-functional ambient light. Background Technology

[0002] With the rapid development of electronic technology and the continuous improvement of people's living standards, ambient lighting is being used in more and more scenarios. Various commercial ambient lights, car interior ambient lights, outdoor ambient lights, and indoor ambient lights are emerging in an endless stream. Indoor ambient lights include wall-mounted ambient lights, floor-standing ambient lights, and tabletop ambient lights.

[0003] However, the existing circuit design of ambient lights makes their functions relatively simple, unable to provide people with significant functional prompts, and makes the adjustment of ambient lights inconvenient, making it difficult to meet people's needs.

[0004] Therefore, in view of the defects existing in the above-mentioned prior art, there is an urgent need for a new type of circuit structure for multifunctional ambient lights. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model proposes a circuit structure for a multifunctional ambient light, which enables the ambient light to have multiple functions, satisfying the needs of lighting and enhancing the decorative atmosphere while providing people with a variety of functional prompts.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A circuit structure for a multifunctional ambient light includes a main control chip, characterized in that it further includes an encoder board, multiple displays, multiple light strip boards, and multiple moving coils connected to the main control chip. The multiple displays are disposed within the moving bracket of the ambient light. The multiple light strip boards are disposed on the stator bracket of the ambient light, and the stator bracket is uniformly and in pairs provided with multiple pairs of vertically arranged N-pole magnets and S-pole magnets. The multiple moving coils are disposed inside the moving bracket and located between the multiple pairs of vertically arranged N-pole magnets and S-pole magnets. The encoder board is connected to the mode switching knob of the ambient light so that the main control chip can select the functional mode of the ambient light based on the mode switching knob, and adjust the height of the moving bracket and provide functional prompts for the multiple light strip boards and multiple displays in different functional modes based on the set data of the selected functional mode.

[0008] Preferably, the system further includes a capacitive grating sensor, which includes a moving grating disposed on the moving part bracket and a stationary grating disposed on the stator bracket, the stationary grating being connected to the main control chip via a signal line.

[0009] Preferably, the system further includes multiple environmental sensors connected to the main control chip, which are used to monitor current environmental data in real time.

[0010] Preferably, the environmental sensor includes an air quality sensor, a CO2 sensor, a PM2.5 sensor, and a temperature and humidity sensor.

[0011] Preferably, it further includes a millimeter-wave radar module connected to the main control chip, the millimeter-wave radar module being used to sense the location of a person.

[0012] Preferably, it further includes a clock module connected to the main control chip, the clock module being used to provide alarm and timer functions.

[0013] Preferably, it further includes a microphone connected to the main control chip, the microphone being used to monitor ambient sound.

[0014] Preferably, it further includes a TYPE-C power interface connected to the main control chip, the TYPE-C power interface being connected to a computer or power converter to introduce power.

[0015] Preferably, the TYPE-C power interface is connected to an overvoltage protection chip, and the overvoltage protection chip is connected to a power switching switch to provide power to the multiple displays, multiple LED strip boards and multiple moving coils.

[0016] Preferably, the overvoltage protection chip is connected to a DC / DC converter, which provides power to the main control chip and the sensor.

[0017] Compared with the prior art, the circuit structure of the multifunctional ambient light of this utility model has one or more of the following beneficial technical effects:

[0018] 1. The circuit structure of the multifunctional ambient light of this utility model enables the ambient light to have a function mode switching function, and can provide multiple functions.

[0019] 2. The circuit structure of the multifunctional ambient light of this utility model enables the ambient light to provide significant functional prompts.

[0020] 3. The circuit structure of this utility model's multifunctional ambient light makes the adjustment of the ambient light very convenient and can meet people's needs. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the circuit structure of the multifunctional ambient light of this utility model;

[0022] Figure 2This is a three-dimensional view of a multi-functional ambient light that uses the circuit structure of this utility model;

[0023] Figure 3 This is an exploded view of a multi-functional ambient light that uses the circuit structure of this utility model;

[0024] Figure 4 This is a top view of the main control chip of a multi-functional ambient light that uses the circuit structure of this utility model;

[0025] Figure 5 This is a schematic diagram of a multi-functional ambient light that uses the circuit structure of this utility model to illuminate different areas.

[0026] Figure 6 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in brightness adjustment mode.

[0027] Figure 7 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in alarm clock mode.

[0028] Figure 8 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in timer mode;

[0029] Figure 9 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in PM2.5 mode;

[0030] Figure 10 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in air quality mode.

[0031] Figure 11 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in temperature mode.

[0032] Figure 12 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in humidity mode.

[0033] Figure 13 This is a schematic diagram of a multi-functional ambient light using the circuit structure of this utility model in CO2 mode. Detailed Implementation

[0034] Before describing any embodiment of this invention in detail, it should be understood that the invention is not limited in its application to the details of the construction and arrangement of the components set forth in the following description or illustrated in the following figures. The invention is capable of other embodiments and can be practiced or carried out in various ways. Furthermore, it should be understood that the wording and terminology used herein are for descriptive purposes and should not be considered limiting. The use of “comprising” or “having” and variations thereof herein is intended to cover the items set forth below and their equivalents, as well as any additional items. Unless otherwise specified or limited, the terms “installation,” “connection,” “support,” and “linkage,” and variations thereof are used broadly and cover both direct and indirect installation, connection, support, and linking. Moreover, “connection” and “linkage” are not limited to physical or mechanical connections or links.

[0035] Furthermore, firstly, in the disclosure of this utility model, the terms "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the above terms should not be construed as a limitation on this utility model. Secondly, the term "a" should be understood as "at least one" or "one or more," that is, in one embodiment, the number of an element can be one, while in another embodiment, the number of the element can be multiple. The term "a" should not be construed as a limitation on the quantity.

[0036] To address the shortcomings of existing technologies, this utility model provides a circuit structure for a multifunctional ambient light, which enables the ambient light to have multiple functions, satisfying the needs of lighting and enhancing the decorative atmosphere while providing people with a variety of functional prompts.

[0037] Figure 1 The schematic diagram of the circuit structure of the multifunctional ambient light of this utility model is shown. Figure 1 As shown, the circuit structure of this multifunctional ambient light includes a main control chip. The main control chip can be an existing microprocessor unit (MCU). Figure 2 As shown, the main control chip 11 is located inside the lampshade housing 10 of the multi-functional ambient light, and the lower end of the lampshade housing 10 may be provided with a lower shell 12 to enclose the main control chip 11 within the lampshade housing 10 and the lower shell 12. The lampshade housing 10 is made of transparent material to facilitate light transmission.

[0038] The circuit structure of the multifunctional ambient light of this utility model also includes an encoder board connected to the main control chip, multiple displays, multiple light strip boards, and multiple moving coils.

[0039] like Figure 1 and Figure 2 As shown, the encoder board 02 is located at the upper end of the lampshade housing 10 and is connected to the mode switching knob 01 located at the top of the lampshade housing 10. The function mode of the ambient light can be selected by rotating the mode switching knob 01 and clicking to confirm.

[0040] The lampshade housing 10 has a stator bracket 08 inside. Multiple LED strip panels are mounted on the stator bracket 08. Multiple display screens are disposed within a movable bracket 19 of the ambient light, and the movable bracket 19 is fitted over the outside of the lampshade housing 10. The movable bracket 19 is also made of transparent material. A vertical opening is provided on one side of the lampshade housing 10 to facilitate the engagement of the movable bracket 19 with the stator bracket 08 located within the lampshade housing 10.

[0041] Preferably, the plurality of light strip boards include RGB light strip board 1 (05), RGB light strip board 2 (04), and RGB light strip board 3 (03). Furthermore, RGB light strip board 1 (05), RGB light strip board 2 (04), and RGB light strip board 3 (03) are respectively disposed on the three sides of the stator bracket 08 that are not opposite to the mover bracket 19, so as to achieve regional lighting. Each light strip board has multiple LEDs, and each LED can be lit individually.

[0042] More preferably, the plurality of displays includes a first display 16, a second display 17, and a third display 18 evenly arranged around a circumference. Furthermore, as... Figure 5 As shown, display screen 16, display screen 2 17 and display screen 3 18 are all curved display screens with an arc of 115°, which enables segmented display.

[0043] In this invention, the stator support 08 is uniformly and in pairs provided with multiple pairs of vertically arranged N-pole magnets 06 and S-pole magnets 07. The multiple moving coils, for example, moving coil 13, moving coil 14, and moving coil 15, are disposed inside the moving support 19 and located between the multiple pairs of vertically arranged N-pole magnets 06 and S-pole magnets 07. The moving support 19 is provided with a moving plate 20. Moving coils 13, 14, and 15 are all electrically connected to the moving plate 20. The moving plate 20 is electrically connected to the main control chip 11. Therefore, the main control chip 11 can realize the electrical control of the first moving coil 13, the second moving coil 14 and the third moving coil 15, and realize the automatic sliding of the moving bracket 19 relative to the stator bracket 08 through the electrical control of the first moving coil 13, the second moving coil 14 and the third moving coil 15.

[0044] This invention utilizes the working principle of a U-shaped linear motor to achieve automatic sliding of the moving bracket 19 relative to the stator bracket 08. This allows the main control chip 11 to adjust the height of the moving bracket 19 and provide functional prompts for the multiple LED strips and multiple displays in different functional modes based on the set data of the selected function mode.

[0045] like Figure 1 As shown, the circuit structure of the multifunctional ambient light of this utility model further includes a capacitive grid sensor. The capacitive grid sensor includes a moving grid disposed on the moving bracket 19 and a stationary grid disposed on the stator bracket 08, and the stationary grid is connected to the main control chip 11 through a signal line.

[0046] Preferably, a reading head 21 is provided on the moving plate 20, and the moving plate 20 is electrically connected to the reading head 21. An adapter plate 09 is also provided on the stator support 08. The moving grid is disposed on the reading head 21, and the stationary grid is disposed on the adapter plate 09.

[0047] Therefore, the main control chip 11 can determine the position of the moving bracket 19 relative to the stator bracket 08, that is, the height of the moving bracket 19, by the relative position of the moving gate and the stationary gate. At the same time, similar to the principle of an electronic vernier caliper, the reading head 21 can also display the height of the moving bracket 19 in real time, so as to facilitate manual adjustment of the height of the moving bracket 19.

[0048] Furthermore, in this invention, the mover support 19 is provided with a spring 22 that constantly presses against the adapter plate 09. Therefore, when the first mover coil 13, the second mover coil 14, and the third mover coil 15 are not energized, that is, when the mover support 19 is not moving, the elastic force of the spring 22 ensures that the mover support 19 can be suspended at any position on the stator support 08.

[0049] The main control chip 11 can connect to a π-type matching network via Bluetooth signal, thereby enabling the main control chip 11 to receive control signals sent by a mobile APP wirelessly.

[0050] In this invention, the function mode of the ambient light can be selected by rotating and clicking the mode switching knob 01. For example, by rotating and clicking the mode switching knob 01, the ambient light's function mode is selected as brightness adjustment mode. At this time, the user can manually adjust the height of the moving bracket 19, and the main control chip 11 can determine the brightness level of the ambient light based on the height of the moving bracket 19 (obtained through the capacitive grating sensor). Alternatively, the brightness level of the ambient light can be manually set via a mobile app and sent to the main control chip 11 via a wireless network, allowing the main control chip 11 to determine the height of the moving bracket 19 based on the brightness level of the ambient light. For example, as... Figure 6 As shown, brightness adjustment can be achieved in levels 0-100. The brightness level is 100 when the moving bracket 19 is at the top of the stator bracket 08, 0 when it is at the bottom, and 50 when it is in the middle position. Furthermore, during the adjustment of the ambient light's brightness level, the main control chip 11 controls several displays (e.g., only display 18 facing the user) or the entire display (display 16, display 2, and display 3) to display the ambient light's brightness level in real time. Figure 6 In this display, the ambient light brightness level shown on the screen is 55. Furthermore, the main control chip 11 controls the LEDs of the multiple LED strip boards located below the horizontal level of the moving bracket 19 to light up either partially (e.g., only the RGB LED strip board 03 opposite the user) or entirely (RGB LED strip board 05, RGB LED strip board 04, and RGB LED strip board 03) according to the ambient light brightness level.

[0051] Preferably, such as Figure 1 and Figure 3 As shown, the circuit structure of the multifunctional ambient light of this utility model can further include a millimeter-wave radar module 112 connected to the main control chip 11. When a person approaches the ambient light, the millimeter-wave radar module 112 can sense the person's location. The main control chip 11 can control the corresponding display screen and light strip board as the main display based on the person's location, and other display screens and light strip boards as secondary displays. For example, in Figure 5 In the example shown, if the millimeter-wave radar module 112 senses that the person's location is in area 1, then the display screen 16 and the RGB light strip board 03 corresponding to area 1 will be used as the main display, while the display screen 17, the display screen 18, the RGB light strip board 05, and the RGB light strip board 04 will be used as secondary displays. This allows for targeted intelligent display.

[0052] More preferably, such as Figure 1 and Figure 3 As shown, the circuit structure of the multifunctional ambient light of this invention can further include a microphone 113 connected to the main control chip 11. The microphone 113 can monitor ambient sounds (e.g., user voice commands). This allows the main control chip 11 to control the multiple light strip boards and multiple displays based on ambient sounds (e.g., user voice commands), or to set the functional modes of the ambient light.

[0053] like Figure 1 As shown, the circuit structure of the multifunctional ambient light of this utility model may further include a clock module connected to the main control chip, the clock module being used to provide alarm and timer functions.

[0054] For example, by rotating the mode switching knob 01 and clicking to confirm, the ambient light's function mode can be selected as alarm clock mode. At this time, the user can manually adjust the height of the moving bracket 19, and the mainboard chip 11 can set the alarm time based on the height of the moving bracket 19. Alternatively, the user can manually set the alarm time via a mobile app and send it to the main control chip 11 via wireless network, allowing the main control chip 11 to determine the height of the moving bracket 19 based on the alarm time. For example, as... Figure 7 As shown, setting the alarm time to 7:00 AM can wake the lights 30 minutes in advance. After setting the alarm time, the main control chip 11 can control the multiple displays to partially or entirely display the set alarm time in real time and control all the LED beads on the multiple LED strip boards to turn off. At a certain time after the set alarm time, for example, 30 minutes later, the main control chip 11 controls the moving bracket 19 to automatically move to the bottom of the stator bracket 08 and slowly move upwards over time. During the slow upward movement of the moving bracket 19, the main control chip 11 can control the LED beads on the multiple LED strip boards located below the horizontal level of the moving bracket 19 to light up partially or entirely. Furthermore, during the slow upward movement of the moving bracket 19, the main control chip 11 can control the multiple displays to partially or entirely display the current time in real time. For example, as... Figure 7 As shown, at 6:30, the main control chip 11 controls the moving bracket 19 to automatically move to the bottom of the stator bracket 08. And... Figure 7 The display shows the situation at 6:45. The alarm time is reached when the mover bracket 19 moves to the top of the stator bracket 08, that is, Figure 7 As shown in the diagram, at 7:00, the main control chip 11 controls all the LED beads on the multiple LED strip boards to light up for an alarm clock reminder.

[0055] Alternatively, by rotating the mode switching knob 01 and clicking to confirm, the ambient light's function mode can be selected as timer mode. In this mode, the user can manually adjust the height of the moving bracket 19, and the main control chip 11 can determine the timer based on the height of the moving bracket 19. Alternatively, the timer can be manually set via a mobile app and sent to the main control chip 11 via a wireless network, allowing the main control chip 11 to determine the height of the moving bracket 19 based on the timer. For example... Figure 8 As shown, the timer can be set to 120 minutes to achieve a timer range of 0-120 minutes. During the timer setting process, the main control chip 11 controls the multiple display screens to partially or entirely display the timer in real time. Furthermore, the main control chip 11 controls the LEDs on the multiple LED strip boards located below the horizontal level of the moving bracket 19 to light up partially or entirely. For example, as... Figure 8 As shown, the timer is set to 120 minutes. At the start of the timer, the main control chip 11 controls the moving bracket 19 to move to the top of the stator bracket 08 and controls the multiple displays to partially or entirely display the timer as 120 minutes in real time. Figure 8 In the scenario described, when the timer has 65 minutes remaining, the main control chip 11 controls the multiple displays to show the timer as 65 minutes in real time and controls the LEDs below the horizontal level of the moving bracket 19 to light up. Furthermore, as time progresses, the main control chip 11 controls the moving bracket 19 to gradually slide down and controls the multiple displays to show the remaining time in real time. When the timer reaches 0, it slides to the bottom of the stator bracket 08. At this time, all the LEDs on the multiple LED strip boards are turned off to provide a timeout reminder.

[0056] like Figure 1 and Figure 3 As shown, the circuit structure of the multifunctional ambient light of this invention can further include multiple environmental sensors connected to the main control chip 11. These environmental sensors are used to monitor current environmental data in real time. For example, the environmental sensors include an air quality sensor (TVOC sensor) 111, a CO2 sensor 114, a PM2.5 sensor 115, and a temperature and humidity sensor 116. Therefore, the functional modes of this invention can include an air quality mode (TVOC mode), a CO2 mode, a PM2.5 mode, a temperature mode, and a humidity mode.

[0057] For example, by rotating the mode switching knob 01 and clicking to confirm, the ambient light function mode can be selected as PM2.5 mode. At this time, as... Figure 9As shown, the main control chip 11 can automatically move the moving bracket 10 to the height corresponding to the PM2.5 value measured by the PM2.5 sensor 115. The main control chip 11 controls the multiple displays to partially or entirely display the PM2.5 value in real time, for example, 350 ug / m³. 3 The system controls the illumination of individual or all of the LED beads located below the horizontal level of the moving bracket 19 on the multiple LED strip panels. This provides an indication of PM2.5 levels in the air. In this invention, PM2.5 levels can be detected from 0 to 500 μg / m³. 3 PM2.5 alert.

[0058] Alternatively, by rotating the mode switching knob 01 and clicking to confirm, the ambient light's function mode can be selected as air quality mode. At this time, as... Figure 10 As shown, the main control chip 11 can automatically move the moving bracket 10 to the height corresponding to the TVOC value measured by the TVOC sensor 111. Furthermore, the main control chip 11 controls the multiple displays to partially or entirely display the TVOC value in real time, for example, 6.66 mg / m³. 3 The system controls the illumination of individual or all LED beads located below the horizontal level of the moving bracket 19 on the multiple LED strip panels. This provides an indication of TVOC levels in the air. In this invention, levels ranging from 0.01 to 9.99 mg / m³ can be achieved. 3 TVOC warning.

[0059] Alternatively, by rotating the mode switching knob 01 and clicking to confirm, the ambient light's function mode can be selected as temperature mode. At this time, as... Figure 11 As shown, the main control chip 11 can automatically move the movable bracket 10 to the height corresponding to the temperature value measured by the temperature and humidity sensor 116. Furthermore, the main control chip 11 can control the multiple displays to partially or entirely display the temperature value in real time, for example, 32℃, and control the LEDs of the multiple LED strips located below the horizontal height of the movable bracket 19 to light up partially or entirely. This achieves temperature indication. In this invention, a temperature indication range of -10 to 60℃ can be achieved.

[0060] Furthermore, by rotating the mode switching knob 01 and clicking to confirm, the ambient light's function mode can be selected as humidity mode. At this time, as... Figure 12As shown, the main control chip 11 can automatically move the movable bracket 10 to the height corresponding to the humidity value measured by the temperature and humidity sensor 116. Furthermore, the main control chip 11 can control the multiple displays to partially or entirely display the humidity value in real time, for example, 65%, and control the LEDs of the multiple LED strips located below the horizontal height of the movable bracket 19 to light up partially or entirely. This achieves humidity indication. In this invention, humidity indication from -0% to 95% RH can be achieved.

[0061] Finally, by rotating the mode switching knob 01 and clicking to confirm, the ambient light function mode can be selected as CO2 mode. At this time, as... Figure 13 As shown, the main control chip 11 can automatically move the moving bracket 10 to the height corresponding to the CO2 value measured by the CO2 sensor 114. Furthermore, the main control chip 11 can control the multiple displays to partially or entirely display the CO2 value in real time, for example, 2500 ppm, and control the LEDs of the multiple LED strips located below the horizontal height of the moving bracket 19 to light up partially or entirely. This achieves CO2 indication. In this invention, CO2 levels of 400–5000 ppm can be indicated.

[0062] In this utility model, the motherboard 11 may be equipped with a TYPE-C power interface. For example... Figure 1 As shown, the TYPE-C power interface can be connected to a computer or power converter to introduce power. Furthermore, the TYPE-C power interface can connect to an OVP (Overvoltage Protection Chip), and through the OVP, a power switching switch can be connected to provide power to the multiple displays, multiple LED strip boards, and the moving part board 20, and through the moving part board 20, power to the multiple moving part coils. The OVP can also connect to a DC / DC converter to provide power to the main control chip 11 and various sensors. Simultaneously, the OVP can also connect to a charging IC, through which the battery can be charged. The charged battery can then provide power to the ambient light.

[0063] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of this utility model, and are not intended to limit the scope of protection of this utility model. Those skilled in the art can modify or make equivalent substitutions to the technical solution of this utility model based on the concept of this utility model, without departing from the essence and scope of the technical solution of this utility model.

Claims

1. A circuit structure for a multi-functional ambient light, comprising a main control chip, characterized in that, It also includes an encoder board connected to the main control chip, multiple displays, multiple light strip boards, and multiple moving coils. The multiple displays are disposed within the moving bracket of the ambient light. The multiple light strip boards are disposed on the stator bracket of the ambient light, and the stator bracket is uniformly and in pairs provided with multiple pairs of vertically arranged N-pole magnets and S-pole magnets. The multiple moving coils are disposed inside the moving bracket and located between the multiple pairs of vertically arranged N-pole magnets and S-pole magnets. The encoder board is connected to the mode switching knob of the ambient light so that the main control chip can select the function mode of the ambient light based on the mode switching knob, and adjust the height of the moving bracket and provide functional prompts for the multiple light strip boards and multiple displays in different function modes based on the set data of the selected function mode.

2. The circuit structure of the multifunctional ambient light according to claim 1, characterized in that, The system further includes a capacitive grating sensor, which comprises a moving grating disposed on the moving part bracket and a stationary grating disposed on the stator bracket, wherein the stationary grating is connected to the main control chip via a signal line.

3. The circuit structure of the multifunctional ambient light according to claim 1, characterized in that, It further includes multiple environmental sensors connected to the main control chip, which are used to monitor current environmental data in real time.

4. The circuit structure of the multifunctional ambient light according to claim 3, characterized in that, The environmental sensors include an air quality sensor, a CO2 sensor, a PM2.5 sensor, and a temperature and humidity sensor.

5. The circuit structure of the multifunctional ambient light according to claim 1, characterized in that, It further includes a millimeter-wave radar module connected to the main control chip, the millimeter-wave radar module being used to sense the location of a person.

6. The circuit structure of the multifunctional ambient light according to claim 1, characterized in that, It further includes a clock module connected to the main control chip, the clock module being used to provide alarm and timer functions.

7. The circuit structure of the multifunctional ambient light according to claim 1, characterized in that, It further includes a microphone connected to the main control chip, which monitors ambient sound.

8. The circuit structure of the multifunctional ambient light according to any one of claims 1-7, characterized in that, It further includes a TYPE-C power interface connected to the main control chip, which is connected to a computer or power converter to introduce power.

9. The circuit structure of the multifunctional ambient light according to claim 8, characterized in that, The TYPE-C power interface is connected to an overvoltage protection chip, and the overvoltage protection chip is connected to a power switching switch to provide power to the multiple displays, multiple LED strip boards and multiple moving coils.

10. The circuit structure of the multifunctional ambient light according to claim 9, characterized in that, The overvoltage protection chip is connected to a DC / DC converter, which provides power to the main control chip and the sensor.