Light control device and system based on environment self-adaption

Through the environmentally adaptive lighting control device, multiple sensors and data processing modules are used to realize multi-dimensional perception and intelligent adjustment of environmental parameters, solving the problem that the existing lighting control system cannot fully perceive the environmental atmosphere, and improving the intelligent and automated effect of lighting control.

CN120282341APending Publication Date: 2025-07-08JIANGXI INST OF FASHION TECH
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Patent Information

Application Number
CN202510701417.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

The existing lighting control system cannot fully and accurately perceive changes in the environmental atmosphere and automatically make corresponding lighting adjustments. It mostly relies on a single environmental parameter to achieve switching control or simple dimming.

Method used

The light control device based on environmental adaptability is adopted, and through light sensors, clock structures, human body sensors, temperature sensors, humidity sensors and data processing modules, combined with the control module and the luminous module, multi-dimensional perception and intelligent adjustment of environmental parameters, including dynamic adjustment of luminous color and brightness.

Benefits of technology

It has achieved diversified adjustments based on the environmental atmosphere, improved the intelligence and automation of lighting control, met the lighting needs of different scenarios, and improved the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to the technical field of intelligent lighting, and discloses a light control device and system.The light control device based on environment self-adaptation comprises a light emitting module, a control module and an adjusting module.The adjusting module is arranged, an interaction module in the adjusting module can be in communication connection with the control module, and therefore the light emitting module can emit light; meanwhile, the interaction module is also in communication connection with the electronic equipment in the space, so that after the motor equipment is started, the interaction module can transmit a starting signal of the electronic equipment to the control module, and at the moment, the control module proves that the atmosphere in the space is changed according to starting of the electronic equipment; the light emitting color and the light brightness of the light emitting module are adjusted according to the type of the electronic equipment, so that the light control device based on environment self-adaption can adjust the light emitting parameters of the light emitting module according to the environment atmosphere in the space; therefore, the technical effect that the light control device based on environment self-adaption can adjust the diversification of the light emitting parameters is achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of intelligent lighting, and particularly to a lighting control device and system based on environmental adaptability. Background Art

[0002] With the development of technology and the improvement of people's requirements for the quality of life, indoor lighting control is gradually developing towards intelligence and automation.

[0003] Currently, most lighting control systems on the market rely on a single environmental parameter to achieve switch control or simple dimming, that is, only adjust the brightness of the light according to the ambient light, and cannot comprehensively and accurately perceive the change of the environmental atmosphere and automatically make corresponding lighting adjustments. Therefore, there is an urgent need for a new system that can adaptively adjust indoor lighting according to the environmental atmosphere. Summary of the Invention

[0004] In view of this, the present invention provides a lighting control device and system based on environmental adaptability to solve the problem that most lighting control systems on the market rely on a single environmental parameter to achieve switch control or simple dimming, that is, only adjust the brightness of the light according to the ambient light, and cannot comprehensively and accurately perceive the change of the environmental atmosphere and automatically make corresponding lighting adjustments.

[0005] In a first aspect, the present invention provides a lighting control device based on environmental adaptability, which is arranged in a space and includes:

[0006] A light-emitting module;

[0007] A control module, communicatively connected to the light-emitting module, for adjusting the light-emitting parameters of the light-emitting module, and the light-emitting parameters include the light-emitting color and the brightness of the light;

[0008] An adjustment module, including an interaction structure, the interaction structure is communicatively connected to both the electronic device in the space and the control module, and after the electronic device is turned on, the interaction structure transmits the signal formed by the turn-on of the electronic device to the control module, so as to adjust the light-emitting parameters of the light-emitting module through the control module according to the type of the electronic device.

[0009] Beneficial effects: By providing an adjustment module, the interaction module in the adjustment module can be communicatively connected to the control module. At the same time, the interaction module is also communicatively connected to the electronic devices in the space. After the motor device is turned on, the interaction module can transmit the signal of turning on the electronic device to the control module. At this time, the control module determines that the atmosphere in the space has changed based on the turning on of the electronic device, and adjusts the light emission color and the brightness of the light of the light-emitting module according to the type of the electronic device, so that the environment-adaptive lighting control device of this embodiment can adjust the light emission parameters of the light-emitting module according to the environmental atmosphere in the space, thereby achieving the technical effect of enhancing the diversification of the adjustment of the light emission parameters of the environment-adaptive lighting control device.

[0010] In an optional implementation manner, the adjustment module includes:

[0011] A light sensor, communicatively connected to the control module, for detecting the light intensity in the space and adjusting the light emission parameters of the light-emitting module through the control module according to the light intensity;

[0012] And / or, a clock structure, communicatively connected to the control module, for displaying the time according to the clock structure and adjusting the light emission parameters of the light-emitting module through the control module according to the time;

[0013] And / or, a human body sensor, communicatively connected to the control module, for detecting the personnel activity situation in the space and adjusting the light emission parameters of the light-emitting module through the control module according to the personnel activity situation;

[0014] And / or, a temperature sensor, communicatively connected to the control module, for detecting the temperature in the space and adjusting the light emission parameters of the light-emitting module through the control module according to the temperature;

[0015] And / or, a humidity sensor, communicatively connected to the control module, for detecting the humidity in the space and adjusting the light emission parameters of the light-emitting module through the control module according to the humidity.

[0016] Beneficial effects: By providing a light sensor, the brightness of the light-emitting module can be adjusted by the control module according to the ambient light in the space. At the same time, by providing a clock structure, the clock structure can upload the time to the control module, and the control module adjusts the brightness of the light-emitting module according to the time. By providing a human body sensor, when the human body sensor detects that someone enters the space and the light in the space is dim or the time has reached the time to turn on the light, the human body sensor adjusts the brightness of the light emitted by the light-emitting module through the control module, that is, turns on the light-emitting module. That is to say, when the light in the space is dim or the time has reached the time to turn on the light, for example, when the time reaches sunset, when someone enters the space, the light-emitting module is turned on, and when no one is detected within the preset time, the control module can control the light-emitting module to turn off. For example, the preset time can be ten minutes. Of course, in other embodiments, the preset time can be adjusted according to the design of the lighting control device based on environmental adaptability.

[0017] Furthermore, by providing a temperature sensor and a humidity sensor, the temperature sensor and the humidity sensor can detect the temperature and humidity in the space, so that the light-emitting parameters of the light-emitting module can be adjusted according to the temperature and humidity of the space. For example, when the temperature in the space exceeds the preset value, the brightness of the light-emitting module can be dimmed and the light-emitting color becomes colder. When the humidity in the space exceeds the preset value, the brightness of the light-emitting module can be brightened and the light-emitting color becomes warmer. Among them, the preset values of temperature and humidity can be adjusted according to actual needs and are not limited here. At the same time, when the temperature exceeds the preset value or the humidity exceeds the preset value, the light-emitting parameters of the light-emitting module can also be adjusted according to the needs of the user.

[0018] In an alternative embodiment, the adjustment module includes a data processing module, which is communicatively connected to the light sensor, the clock structure, the human body sensor, the temperature sensor, the humidity sensor, and the control module, and is used to form data transmission between the light sensor and the control module, between the clock structure and the control module, between the human body sensor and the control module, between the temperature sensor and the control module, and between the humidity sensor and the control module.

[0019] Beneficial effects: By setting up a data processing module, which is communicatively connected to a light sensor, a clock structure, a human body sensor, a temperature sensor, a humidity sensor, and a control module, data transmission is formed between the light sensor and the control module, between the clock structure and the control module, between the human body sensor and the control module, between the temperature sensor and the control module, and between the humidity sensor and the control module. At the same time, the data processing module fuzzifies the ambient light and human activity intensity in the space into "low, medium, high" levels, generates light brightness adjustment rules and light emission color adjustment rules, learns the user's historical operation data, and predicts the light emission parameters of the preferred scene. At this time, the light emission parameters include the light emission scene. For example, when the human activity intensity is in the low-level light emission scene, the control module can lower the brightness of the light. It is also possible to automatically allocate the lighting key areas according to the personnel position density in the light emission scene of multiple people, that is, adjust the light emission parameters according to the preferred scene in the place with a large personnel density, and set according to the normal light emission parameters in the place with a small personnel density. It can also be that as long as there are people, the light emission parameters need to be adjusted according to the preferred scene.

[0020] In an alternative embodiment, the environment-adaptive lighting control module includes:

[0021] A remote controller, communicatively connected to the control module, for manually adjusting the light emission parameters of the light-emitting module through the remote controller according to the usage situation of electronic devices in the space or according to the needs of the user.

[0022] Beneficial effects: The remote controller can adjust the environmental state in the space, that is, the light emission scene. For example, although the computer is not turned on, the user can operate the remote controller to adjust the light emission scene to the working state through the control module. Or, according to the actual needs of the user, adjust the light emission parameters.

[0023] In an alternative embodiment, a battery is provided inside the remote controller, and the battery is used to supply power to the remote controller.

[0024] Beneficial effects: By setting the battery, the remote controller can be directly powered, and even in a location without a socket, the remote controller can be used, making the operation of the remote controller simpler, reducing the usage difficulty and usage limitations of the remote controller, and thus achieving the technical effect of improving the usability of the environment-adaptive lighting control device.

[0025] In an alternative embodiment, the battery is a rechargeable battery, and a charging port is provided on the end face of the remote controller; the environment-adaptive lighting control module includes:

[0026] The charging base has a charging socket at one end, and the charging socket is inserted and connected to the charging port for electrically connecting to the charging port to charge the battery. The other end of the charging base is provided with a charging cable with a charging plug.

[0027] Advantageous effects: By inserting the charging port of the battery into the charging socket of the charging base, and the charging cable of the charging socket is inserted into the power supply in the space through the charging plug, so that the current charges the battery through the charging plug, the charging cable and the charging socket. That is, through the charging base, not only can the remote control be charged, but also the charging base can support and fix the remote control, which is convenient for the user to store the remote control, thus achieving the technical effect of improving the simplicity of storing the remote control.

[0028] In an optional embodiment, the charging base is further provided with a wire storage groove for accommodating the charging cable.

[0029] Advantageous effects: By providing the wire storage groove, the charging cable can be accommodated, avoiding the charging cables from being entangled with each other and getting messy, thus achieving the technical effect of improving the neatness of the lighting control device based on environmental adaptability.

[0030] In an optional embodiment, a winding post is provided in the wire storage groove for accommodating the wound charging cable.

[0031] Advantageous effects: The charging cable can be wound around the winding post. Based on this, the stability of the charging cable arranged in the wire storage groove can be improved, thus achieving the technical effect of improving the position reliability after the charging cable is wound.

[0032] In a second aspect, the present invention further provides a lighting control system based on environmental adaptability, including:

[0033] The lighting control device based on environmental adaptability as described above;

[0034] A host computer, which is communicatively connected to the control module, and the host computer is used to remotely adjust the light-emitting parameters of the light-emitting module through the control module.

[0035] Advantageous effects: By providing the host computer, the user can remotely control the light-emitting module through the built-in software of the host computer. For example, the light-emitting module can be turned on in advance before going home, which is convenient to enter the home. At the same time, the light-emitting parameters of the light-emitting module under different light-emitting scenarios can be customized through the host computer, thus achieving the technical effect of improving the simplicity of using the lighting control system based on environmental adaptability. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0037] Figure 1 The connection block diagram of a lighting control system based on environment adaptability according to this embodiment;

[0038] Figure 2 The connection block diagram between the remote control and the charging base in the lighting control device based on environment adaptability according to this embodiment;

[0039] Figure 3 The structural schematic diagram of the connection between the remote control and the charging base in the lighting control device based on environment adaptability according to this embodiment;

[0040] Figure 4 is Figure 3 the cross-sectional view of.

[0041] Explanation of reference numerals:

[0042] 1. Light-emitting module; 2. Control module;

[0043] 3. Adjustment module; 301. Interaction structure; 302. Light sensor; 303. Clock structure; 304. Human body sensor; 305. Temperature sensor; 306. Humidity sensor; 307. Data processing module;

[0044] 4. Remote control; 401. Battery; 402. Charging port;

[0045] 5. Charging base; 501. Charging plug; 502. Charging cable; 503. Cable storage groove; 504. Cable winding post;

[0046] 6. Host computer. Specific embodiments

[0047] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.

[0048] The following will describe the embodiments of the present invention in conjunction with Figures 1 to 4 , to describe the embodiments of the present invention.

[0049] According to an embodiment of the present invention, on the one hand, a lighting control device based on environmental adaptability is provided, which is arranged in a space and includes:

[0050] Light-emitting module 1;

[0051] A control module 2, communicatively connected to the light-emitting module 1, for adjusting the light-emitting parameters of the light-emitting module 1, where the light-emitting parameters include the light-emitting color and the brightness of the light;

[0052] An adjustment module 3, including an interaction structure 301, where the interaction structure 301 is communicatively connected to both the electronic devices in the space and the control module 2. After the electronic devices are turned on, the interaction structure 301 transmits the signal formed by the turn-on of the electronic devices to the control module 2, so as to adjust the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the types of the electronic devices.

[0053] In the lighting control device based on environmental adaptability of this embodiment, by setting the adjustment module 3, the interaction module in the adjustment module 3 can be communicatively connected to the control module 2, and at the same time the interaction module is also communicatively connected to the electronic devices in the space. After the motor devices are turned on, the interaction module can transmit the signal of the turn-on of the electronic devices to the control module 2. At this time, the control module 2 proves that the atmosphere in the space has changed according to the turn-on of the electronic devices, and adjusts the light-emitting color and the brightness of the light of the light-emitting module 1 according to the types of the electronic devices, so that the lighting control device based on environmental adaptability of this embodiment can adjust the light-emitting parameters of the light-emitting module 1 according to the environmental atmosphere in the space, thereby achieving the technical effect of improving the diversification of the adjustment of the light-emitting parameters of the lighting control device based on environmental adaptability.

[0054] Among them, in this embodiment, the space can be the interior of a room, the light-emitting module 1 is a lamp, the control module 2 is a chip, and the interaction module is a data algorithm model. The interaction module communicates with the electronic devices in the space through the Internet of Things.

[0055] Specifically, when the electronic device is a computer, it proves that the environmental state is a working state at this time. The control module 2 adjusts the light-emitting color of the light-emitting module 1 to a cold color tone and brightens the brightness of the light. When the electronic device is audio-visual, such as a TV, it proves that the state is a leisure state at this time. The control module 2 adjusts the light-emitting color of the light-emitting module 1 to a warm color tone and dims the brightness of the light for immersive viewing.

[0056] Of course, in other embodiments, depending on the design of the lighting control device based on environmental adaptability, the definition of the space is adjusted. For example, if the space is outdoors, the specific types of the light-emitting module 1, the control module 2, and the interaction module can also be adjusted. Or, the light-emitting parameters of the light-emitting module 1 corresponding to the type of electronic device are adjusted. For example, when the electronic device is a computer, it proves that the environmental state is the working state at this time, and the control module 2 adjusts the light-emitting color of the light-emitting module 1 to a warm color tone and dims the brightness of the light.

[0057] In addition, as shown in Figure 1 , the adjustment module 3 includes:

[0058] A light sensor 302, communicatively connected to the control module 2, for detecting the light intensity in the space and adjusting the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the light intensity;

[0059] A clock structure 303, communicatively connected to the control module 2, for displaying the time according to the clock structure 303 and adjusting the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the time;

[0060] A human body sensor 304, communicatively connected to the control module 2, for detecting the personnel activities in the space and adjusting the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the personnel activities;

[0061] A temperature sensor 305, communicatively connected to the control module 2, for detecting the temperature in the space and adjusting the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the temperature;

[0062] A humidity sensor 306, communicatively connected to the control module 2, for detecting the humidity in the space and adjusting the light-emitting parameters of the light-emitting module 1 through the control module 2 according to the humidity.

[0063] By setting up a light sensor 302, the brightness of the light-emitting module 1 can be adjusted by the control module 2 according to the ambient light in the space. At the same time, by setting up a clock structure 303, the clock structure 303 can upload the time to the control module 2, and the control module 2 adjusts the brightness of the light-emitting module 1 according to the time. By setting up a human body sensor 304, when the human body sensor 304 detects that someone enters the space, and the light in the space is relatively dim or the time has reached the time when the lights should be turned on, the human body sensor 304 adjusts the brightness of the light emitted by the light-emitting module 1 through the control module 2, that is, turns on the light-emitting module 1. That is to say, when the light in the space is relatively dim or the time has reached the time when the lights should be turned on, for example, when the time reaches sunset, when someone enters the space, the light-emitting module 1 is turned on, and when no one is detected within the preset time, the control module 2 can control the light-emitting module 1 to turn off. For example, the preset time can be 10 minutes. Of course, in other embodiments, the preset time can be adjusted according to the design of the lighting control device based on environmental adaptability.

[0064] Furthermore, by setting up a temperature sensor 305 and a humidity sensor 306, the temperature sensor 305 and the humidity sensor 306 can detect the temperature and humidity in the space, so that the light-emitting parameters of the light-emitting module 1 can be adjusted according to the temperature and humidity of the space. For example, when the temperature in the space exceeds the preset value, the brightness of the light-emitting module 1 can be dimmed and the light-emitting color becomes colder. When the humidity in the space exceeds the preset value, the brightness of the light-emitting module 1 can be brightened and the light-emitting color becomes warmer. Among them, the preset values of temperature and humidity can be adjusted according to actual needs and will not be limited too much here. At the same time, when the temperature exceeds the preset value or the humidity exceeds the preset value, the light-emitting parameters of the light-emitting module 1 can also be adjusted according to the needs of the user.

[0065] Among them, the light sensor 302 can be an illuminance sensor. The clock structure 303 can be connected to the wireless local area network in the space, communicate with the network time protocol server through the wireless local area network, automatically calibrate the time and synchronize the time zone, as well as the sunrise and sunset times of this time zone. This is a mature technology and will not be elaborated too much here. The human body sensor 304 is an infrared sensor, and the temperature sensor 305 and the humidity sensor 306 are mature technologies and will not be elaborated too much here.

[0066] Of course, in other embodiments, according to the different designs of the lighting control device based on environmental adaptability, the specific types of the light sensor 302, the clock structure 303, and the human body sensor 304 are adjusted. Or, the human body sensor 304, the temperature sensor 305, and the humidity sensor 306 cooperate together to detect whether there is anyone in the space. Or, it is defined that the adjustment module 3 includes a combination of one or more structures of the light sensor 302, the clock structure 303, the human body sensor 304, the temperature sensor 305, and the humidity sensor 306. Or, the sunset time can be not set as one of the conditions for turning on the light, and custom adjustments can be made according to the needs of the user.

[0067] In addition, in this embodiment, the adjustment module 3 includes a data processing module 307, which is communicatively connected to the light sensor 302, the clock structure 303, the human body sensor 304, the temperature sensor 305, the humidity sensor 306, and the control module 2, and is used to form data transmission between the light sensor 302 and the control module 2, between the clock structure 303 and the control module 2, between the human body sensor 304 and the control module 2, between the temperature sensor 305 and the control module 2, and between the humidity sensor 306 and the control module 2. At the same time, the data processing module 307 fuzzifies the environmental light and human activity intensity in the space into "low, medium, high" levels, generates a light brightness adjustment rule and a light emission color adjustment rule, learns the historical operation data of the user, and predicts the light emission parameters of the preferred scene. At this time, the light emission parameters include the light emission scene. For example, when the human activity intensity is in the low-level light emission scene, the control module 2 can lower the brightness of the light. It is also possible to automatically allocate the lighting key areas according to the personnel position density in the multi-person light emission scene, that is, the areas with large personnel density are adjusted according to the preferred scene for light emission parameters, and the areas with small personnel density are set according to the normal light emission parameters. Or, as long as there are people, the light emission parameters need to be adjusted according to the preferred scene.

[0068] As a transformable implementation manner, it can also be that the adjustment module 3 does not include the data processing module 307. At this time, a data processing structure needs to be additionally provided in the light sensor 302, the clock structure 303, the human body sensor 304, the temperature sensor 305, and the humidity sensor 306. In this embodiment, by setting the data processing module 307, there is no need to provide a data processing structure in the light sensor 302, the clock structure 303, the human body sensor 304, the temperature sensor 305, and the humidity sensor 306, which reduces the requirements for each structure, thereby achieving the technical effect of improving the simplicity of the data processing module 307 without the need for the light sensor 302, the clock structure 303, the human body sensor 304, the temperature sensor 305, and the humidity sensor 306.

[0069] In addition, in combination with Figures 1 to 4As shown in the figure, in this embodiment, the environment-adaptive lighting control device includes:

[0070] A remote controller 4, which is communicatively connected to the control module 2 and is used to manually adjust the lighting parameters of the lighting module 1 according to the usage of electronic devices in the space or according to the needs of the user through the remote controller 4.

[0071] Among them, the remote controller 4 can adjust the environmental state in the space, that is, the lighting scene. For example, although the computer is not turned on, the user can operate the remote controller 4 to adjust the lighting scene to the working state through the control module 2. Or, the lighting parameters can be adjusted according to the actual needs of the user.

[0072] As a variable implementation manner, it can also be that the environment-adaptive lighting control device does not include the remote controller 4.

[0073] In addition, in this embodiment, a battery 401 is provided in the remote controller 4, and the battery 401 is used to supply power to the remote controller 4. Based on this, the power supply of the remote controller 4 can be realized through the battery 401. Of course, in other embodiments, according to the different designs of the environment-adaptive lighting control device, the remote controller 4 may not be provided with the battery 401 and can be directly plugged in for use. Compared with other embodiments, the battery 401 in this embodiment can directly supply power to the remote controller 4, and even in a location without a socket, the use of the remote controller 4 can be realized, making the operation of the remote controller 4 simpler, reducing the usage difficulty and usage limitations of the remote controller 4, and thus achieving the technical effect of improving the usability of the environment-adaptive lighting control device.

[0074] Furthermore, preferably, the battery 401 is a rechargeable battery, and a charging port 402 is provided on the end face of the remote controller 4; the environment-adaptive lighting control device includes:

[0075] A charging base 5, one end of which is provided with a charging socket, and the charging socket is inserted and connected to the charging port 402 for electrically connecting to the charging port 402 to charge the battery 401. The other end of the charging base 5 is provided with a charging wire 502 with a charging plug 501.

[0076] Specifically, a receiving groove can be provided on the charging base 5, and a charging socket is provided in the receiving groove, so that the remote controller 4 can be received and installed through the receiving groove, thereby achieving the technical effect of improving the reliability of fixing the position of the remote controller 4.

[0077] Of course, in other embodiments, the battery 401 can also be a dry battery 401. Compared with other embodiments, in this embodiment, by defining the battery 401 as a rechargeable battery, when the battery 401 has low power or runs out of power, it can be charged without the need to replace the battery 401 additionally. This not only saves costs but also reduces the use of dry batteries 401, thereby achieving the technical effect of enhancing the environmental protection of the lighting control device based on environmental adaptability. Specifically, in this embodiment, the charging port 402 of the battery 401 is inserted into the charging socket of the charging base 5, and the charging wire 502 of the charging socket is inserted into the power supply in the space through the charging plug 501, so that the current charges the battery 401 through the charging plug 501, the charging wire 502, and the charging socket. That is, through the charging base 5, not only can the remote controller 4 be charged, but the charging base 5 can also support and fix the remote controller 4, facilitating the user to store the remote controller 4, thereby achieving the technical effect of enhancing the simplicity of storing the remote controller 4.

[0078] As an alternative implementation, it can also be that there is no need to set up a base, and the charging wire 502 is directly pluggably electrically connected to the charging port 402.

[0079] In addition, combined with Figure 4 As shown, in this embodiment, a wire storage groove 503 is further provided on the charging base 5, and the wire storage groove 503 is used to accommodate the charging wire 502. By providing the wire storage groove 503, the charging wire 502 can be accommodated, preventing the charging wires 502 from being entangled with each other and getting messy, thereby achieving the technical effect of enhancing the neatness of the lighting control device based on environmental adaptability.

[0080] As an alternative implementation, it can also be that the wire storage groove 503 is not provided on the charging base 5. Or, the way of accommodating the charging wire 502 is adjusted.

[0081] In addition, combined with Figure 4 As shown, in this embodiment, a wire winding post 504 is provided in the wire storage groove 503, and the wire winding post 504 is used to accommodate the wound charging wire 502. Specifically, the charging wire 502 can be wound around the wire winding post 504. Based on this, the stability of the charging wire 502 arranged in the wire storage groove 503 can be enhanced, thereby achieving the technical effect of enhancing the position reliability of the wound charging wire 502. At the same time, the length of the charging wire 502 wound around the wire winding post 504 can also be adjusted as needed, thereby achieving the technical effect of enhancing the simplicity of use of the lighting control device based on environmental adaptability.

[0082] As a transformable embodiment, it is also possible that the wire winding posts 504 are not provided in the wire storage groove 503. Or, the fixing method is adjusted. For example, clips are provided in the wire storage groove 503, and the wound charging wire 502 is clamped and fixed by the clips, which can also achieve the technical effect of improving the position stability of the wound charging wire 502.

[0083] Preferably, the communication connection is a mature technology and will not be elaborated here.

[0084] According to an embodiment of the present invention, on the other hand, a lighting control system based on environment adaption is provided, including:

[0085] The above-mentioned lighting control device based on environment adaption;

[0086] A host computer 6, communicatively connected to the control module 2, and the host computer 6 is used to remotely adjust the light-emitting parameters of the light-emitting module 1 through the control module 2.

[0087] Among them, the host computer 6 can be a mobile phone or other electronic devices. The host computer 6 is provided with built-in software and can remotely control the lighting control device based on environment adaption. Among them, remote control is a mature technology and will not be elaborated here.

[0088] By providing the host computer 6, the user can remotely control the light-emitting module 1 through the built-in software of the host computer 6. For example, the light-emitting module 1 can be turned on in advance before going home to facilitate entering the home. At the same time, the light-emitting parameters of the light-emitting module 1 can be customized through the host computer 6 under different lighting scenarios, so as to achieve the technical effect of improving the simplicity of use of the lighting control system based on environment adaption.

[0089] Although the embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations fall within the scope defined by the appended claims.

Claims

1. An environment-adaptive lighting control device is provided in a space, characterized in that, Comprising: A light-emitting module (1); A control module (2), communicatively connected to the light-emitting module (1), for adjusting the light-emitting parameters of the light-emitting module (1), the light-emitting parameters including the light-emitting color and the brightness of the light; An adjustment module (3), including an interaction structure (301), the interaction structure (301) being communicatively connected to both the electronic device in the space and the control module (2), for after the electronic device is turned on, the interaction structure (301) transmitting the signal formed by the turning on of the electronic device to the control module (2), so as to adjust the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the type of the electronic device.

2. The lighting control device based on environment adaption according to claim 1, wherein The adjustment module (3) includes: A light sensor (302), communicatively connected to the control module (2), the light sensor (302) being used for detecting the light intensity in the space and adjusting the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the light intensity; And / or, a clock structure (303), communicatively connected to the control module (2), for adjusting the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the time displayed by the clock structure (303); And / or, a human body sensor (304), communicatively connected to the control module (2), for detecting the human activity situation in the space and adjusting the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the human activity situation; And / or, a temperature sensor (305), communicatively connected to the control module (2), for detecting the temperature in the space and adjusting the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the temperature; And / or, a humidity sensor (306), communicatively connected to the control module (2), for detecting the humidity in the space and adjusting the light-emitting parameters of the light-emitting module (1) through the control module (2) according to the humidity.

3. The lighting control device based on environment adaptation according to claim 2, wherein The adjustment module (3) includes a data processing module (307), communicatively connected to the light sensor (302), the clock structure (303), the human body sensor (304), the temperature sensor (305), the humidity sensor (306) and the control module (2), for forming data transmission between the light sensor (302) and the control module (2), between the clock structure (303) and the control module (2), between the human body sensor (304) and the control module (2), between the temperature sensor (305) and the control module (2), and between the humidity sensor (306) and the control module (2).

4. The lighting control device based on environment adaption according to any one of claims 1-3, characterized in that, The environment-adaptive lighting control module (2) includes: A remote controller (4), communicatively connected to the control module (2), for manually adjusting the light-emitting parameters of the light-emitting module (1) through the remote controller (4) according to the usage situation of the electronic device in the space or according to the needs of the user.

5. The lighting control device based on environment adaptation according to claim 4, characterized in that The remote controller (4) is provided with a battery (401) inside, and the battery (401) is used to supply power to the remote controller (4).

6. The lighting control device based on environment adaption according to claim 5, wherein The battery (401) is a rechargeable battery, and a charging port (402) is provided on the end face of the remote controller (4); the environment-adaptive lighting control module (2) includes: A charging base (5), one end of which is provided with a charging socket, and the charging socket is inserted and connected to the charging port (402) for electrically connecting with the charging port (402) to charge the battery (401). The other end of the charging base (5) is provided with a charging wire (502) with a charging plug (501).

7. The lighting control device based on environment adaptation according to claim 6, wherein, A wire storage groove (503) is further provided on the charging base (5), and the wire storage groove (503) is used to accommodate the charging wire (502).

8. The lighting control device based on environment adaption according to claim 7, wherein A wire winding column (504) is provided in the wire storage groove (503), and the wire winding column (504) is used to accommodate the wound charging wire (502).

9. An environment-adaptive lighting control system, characterized in that, Including: The environment-adaptive lighting control device according to any one of claims 1-8; A host computer (6) is communicatively connected to the control module (2), and the host computer (6) is used to remotely adjust the light-emitting parameters of the light-emitting module (1) through the control module (2).