Lamp and light control system

By integrating multiple wavelength light-emitting components into the luminaire, multiple lighting modes are provided, solving the problem of the luminaire's single function and realizing multifunctional light selection and personalized lighting effects.

CN224094411UActive Publication Date: 2026-04-07CHANGSHA XINNUO MEDICAL INSTR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing lighting fixtures have relatively limited functions and cannot meet the diverse needs of users.

Method used

Design a lamp that includes a mounting body and a light-emitting component. The light-emitting component can produce emitted light of multiple wavelengths. The lamp has multiple lighting modes and can achieve various physiological effects by combining different wavelengths of light, such as sunbathing, beauty enhancement, sleep aid, anti-inflammatory effects, and hair growth.

Benefits of technology

It achieves the multi-functionality of lighting fixtures, allowing users to select specific wavelengths of light according to their needs, meeting different scenarios and personalized requirements, and improving ease of use and economy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a lamp and a light control system, the lamp comprises a mounting main body and a light-emitting assembly, the light-emitting assembly is mounted on the mounting main body, the light-emitting assembly can generate emergent light with multiple wavelengths, the lamp has multiple illumination modes, each illumination mode corresponds to the emergent light with at least one wavelength, and the emergent light with at least one wavelength is emitted by the light-emitting assembly. When the lamp is in one illumination mode, the light-emitting assembly can generate emergent light with the corresponding wavelength. Therefore, a user can select different illumination modes according to different requirements so as to obtain light rays with specific wavelengths. For example, certain wavelengths may be used to improve attention and work efficiency, while other wavelengths may help relax or improve sleep quality.
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Description

Technical Field

[0001] This application relates to the field of household appliance technology, and in particular to a lamp and lighting control system. Background Technology

[0002] Lighting fixtures serve the purpose of illumination. However, the functions of lighting fixtures in related technologies are relatively limited and difficult to meet user needs. Utility Model Content

[0003] This application provides a lighting fixture and lighting control system to address the problem that existing lighting fixtures have relatively limited functions and are difficult to meet user needs.

[0004] In a first aspect, this application provides a lamp, which includes a mounting body and a light-emitting component. The light-emitting component is mounted on the mounting body and is capable of generating emitted light of multiple wavelengths. The lamp has multiple illumination modes, each illumination mode corresponding to at least one wavelength of emitted light. When the lamp is in one of the illumination modes, the light-emitting component is capable of generating emitted light of the corresponding wavelength.

[0005] In some embodiments, the multiple lighting modes include a sunbathing mode, a beauty mode, a sleep aid mode, an anti-inflammatory mode, and a hair growth mode; the light-emitting components include blue light-emitting elements, green light-emitting elements, red light-emitting elements, and infrared light-emitting elements. When the lamp is in the sunbathing mode, the blue light-emitting element can generate blue light, the green light-emitting element can generate green light, the red light-emitting element can generate red light, and the infrared light-emitting element can generate infrared light.

[0006] In some embodiments, when the lamp is in beauty mode, the red light emitter can produce red light, while the blue light emitter, the green light emitter, and the infrared light emitter do not produce light.

[0007] In some embodiments, the sleep mode includes a nighttime sleep period and a morning wake-up period. When the lamp is in the nighttime sleep period of the sleep-aid mode, the red light-emitting element can produce red light, while the blue light-emitting element, the green light-emitting element, and the infrared light-emitting element do not produce light. When the lamp is in the morning wake-up period of the sleep-aid mode, the blue light-emitting element can produce blue light, the green light-emitting element can produce green light, while the red light-emitting element and the infrared light-emitting element do not produce light.

[0008] In some embodiments, when the lamp is in anti-inflammatory mode, the blue light-emitting element can produce blue light, the red light-emitting element can produce red light, and the green light-emitting element and the infrared light-emitting element do not produce light.

[0009] In some embodiments, when the lamp is in the light-generating mode, the red light-emitting element can generate red light, the infrared light-emitting element can generate infrared light, and the green light-emitting element and the blue light-emitting element do not generate light.

[0010] In some embodiments, the mounting body includes a first folding rod, a second folding rod, an upright rod, and a base connected in sequence. The light-emitting component is disposed at the end of the first folding rod away from the second folding rod. The first folding rod is rotatable relative to the second folding rod, and the axis of rotation of the first folding rod relative to the second folding rod is parallel to the horizontal direction.

[0011] In some embodiments, the second folding rod is rotatable relative to the upright rod, and the axis of rotation of the second folding rod relative to the upright rod is parallel to the horizontal direction.

[0012] In some embodiments, the upright pole includes multiple sub-poles, which are sequentially spliced ​​together, with two sub-poles located at the ends of the upright pole connected to the second folding pole and the base, respectively.

[0013] Secondly, this application provides a lighting control system, which includes a lamp and a client according to any of the above embodiments. The lamp further includes a circuit board, which is electrically connected to the light-emitting component; the client is electrically connected to the circuit board.

[0014] This application provides a lighting fixture and lighting control system. The lighting fixture includes a mounting body and a light-emitting component. The light-emitting component is mounted on the mounting body and can generate emitted light. The light-emitting component can generate emitted light of multiple wavelengths. The lighting fixture has multiple illumination modes, each illumination mode corresponding to at least one wavelength of emitted light from the light-emitting component. When the lighting fixture is in one of the illumination modes, the light-emitting component can generate emitted light of the corresponding wavelength. Thus, users can select different illumination modes according to different needs to obtain light of specific wavelengths. For example, some wavelengths can be used to improve concentration and work efficiency, while other wavelengths may help with relaxation or improve sleep quality. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein:

[0016] Figure 1 A schematic diagram of the structure of an embodiment of the lighting fixture provided in this application;

[0017] Figure 2 This is a schematic diagram of another embodiment of the lighting fixture provided in this application.

[0018] Explanation of icon numbers:

[0019] Light fixture 10, mounting body 100, first folding rod 110, second folding rod 120, upright rod 130, base 140, light-emitting component 200. Detailed Implementation

[0020] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0021] The following disclosure provides numerous different embodiments or examples for implementing various structures of the present invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.

[0022] Please see Figure 1 and Figure 2 This utility model provides a lamp 10, which includes a mounting body 100 and a light-emitting component 200. The light-emitting component 200 is mounted on the mounting body 100 and can generate emitted light of multiple wavelengths. The lamp 10 has multiple illumination modes, each illumination mode corresponding to at least one wavelength of emitted light. When the lamp 10 is in one of the illumination modes, the light-emitting component 200 can generate emitted light of the corresponding wavelength.

[0023] In this way, users can choose different lighting modes to obtain light of specific wavelengths according to different needs. For example, some wavelengths can be used to improve concentration and work efficiency, while other wavelengths may help relax or improve sleep quality.

[0024] Furthermore, by adjusting the working mode of the light-emitting component 200, this lamp 10 can adapt to various environments and usage scenarios, meeting the personalized needs of different users.

[0025] In some embodiments, the mounting body 100 can be any structure suitable for fixing and protecting the light-emitting component 200, such as a metal or plastic housing. To ensure good heat dissipation, the body material can be an aluminum alloy with good thermal conductivity. Furthermore, the mounting body 100 can also be designed as a modular structure for easy maintenance and upgrades.

[0026] In some embodiments, the light-emitting component 200 comprises multiple LEDs, each capable of emitting light of a specific wavelength. For example, blue LEDs (approximately 460 nm), green LEDs (approximately 530 nm), and red LEDs (approximately 630 nm). These LEDs can be mounted on a circuit board using surface mount technology (SMT) to form a multifunctional light-emitting component 200. LEDs of different wavelengths can be implemented using different semiconductor materials. For example, gallium nitride (GaN)-based materials are suitable for fabricating blue LEDs, while aluminum indium arsenide phosphide (AlInGaP)-based materials are suitable for fabricating red LEDs. By combining these LEDs of different wavelengths, the luminaire 10 can produce light of various colors and brightness levels.

[0027] The luminaire 10 has a built-in microcontroller that defines multiple lighting modes through software programming. Each mode corresponds to a specific application scenario or function, such as "reading mode," "relaxation mode," and "focus mode." Users can switch between operating modes via physical buttons, remote control, or a mobile application. Each mode is preset with different LED combinations and their corresponding brightness and color.

[0028] When the luminaire 10 is in a specific lighting mode, the microcontroller selects the appropriate LED combination and adjusts its brightness according to preset parameters to produce the required wavelength and light intensity. This precise light intensity control can be achieved through PWM (Pulse Width Modulation) technology. For example, in "reading mode," the microcontroller selects a high-brightness white LED; while in "relaxation mode," it selects a low-brightness warm-colored LED.

[0029] In some embodiments, the multiple light modes include a sunbathing mode, a beauty mode, a sleep aid mode, an anti-inflammatory mode, and a hair growth mode; the light-emitting component 200 includes a blue light-emitting element, a green light-emitting element, a red light-emitting element, and an infrared light-emitting element. When the lamp 10 is in the sunbathing mode, the blue light-emitting element can generate blue light, the green light-emitting element can generate green light, the red light-emitting element can generate red light, and the infrared light-emitting element can generate infrared light. By combining blue light, green light, red light, and infrared light, various physiological effects can be achieved, such as promoting blood circulation, relieving muscle pain, and improving skin condition.

[0030] Furthermore, integrating multiple wavelength light sources into one device reduces the need for users to purchase and maintain multiple devices, improving ease of use and cost-effectiveness.

[0031] Blue light emitters can be blue LEDs (approximately 470nm), which are commonly used for sterilization and anti-inflammation. Their operating current and voltage can be precisely controlled by a microcontroller to ensure a stable and safe blue light intensity output. For example, the blue light intensity can be set to a lower level to avoid skin irritation. Green light emitters can be green LEDs (approximately 525nm), which help soothe the skin and reduce inflammation. Red light emitters are red LEDs (approximately 650nm), which can be used to promote cell regeneration and repair, helping to reduce wrinkles and improve skin texture. Red light emitters can use high-power LEDs to ensure sufficient light intensity and penetration depth.

[0032] Infrared light emitters can be infrared LEDs (approximately 850nm), which are primarily used for deep tissue heating and promoting blood circulation. Due to the longer wavelength of infrared light, it can penetrate deep into skin tissue to produce a warming effect.

[0033] The lamp 10 incorporates a microcontroller that is programmed to define a "sunbathing mode." In this mode, the microcontroller activates blue, green, red, and infrared light-emitting elements in a predetermined sequence and time interval. For example, in the morning sunbathing setting, the four light-emitting elements are driven with a gradual brightening mode, transitioning from 0% brightness to 100% brightness within the first 5 minutes. The microcontroller activates the "sunbathing mode" at a set time in the morning according to a preset schedule. PWM technology is used to gradually increase the brightness of each LED, ensuring a gradual increase in light and avoiding sudden bursts of intense light that could irritate the eyes and skin.

[0034] In some embodiments, when the lamp 10 is in beauty mode, the red light-emitting element can generate red light. Thus, when the lamp 10 is in beauty mode, it uses the red light-emitting element to provide specialized skin care and beauty effects.

[0035] In some implementations, the luminaire 10 incorporates a microcontroller that is programmed to define a beauty mode. In this mode, the microcontroller activates the red light emitter and automatically controls its on / off state according to a preset time period. For example, the morning beauty setting is configured to automatically activate red light (650nm) illumination at a specific time in the morning; the morning beauty setting is a gradual brightening mode, where the LED beads transition from 0% brightness to 100% brightness within the first 5 minutes. The microcontroller activates the "beauty mode" at a set time in the morning based on the user-defined schedule. The brightness of the red LED is gradually increased using PWM technology, ensuring a gradual increase in light intensity and avoiding sudden bursts of strong light that could irritate the eyes and skin.

[0036] In some embodiments, the sleep mode includes a nighttime sleep period and a morning wake-up period. When the lamp 10 is in the nighttime sleep period of the sleep-aid mode, the red light-emitting element emits red light, while the blue light-emitting element, the green light-emitting element, and the infrared light-emitting element do not emit light. When the lamp 10 is in the morning wake-up period of the sleep-aid mode, the blue light-emitting element emits blue light, the green light-emitting element emits green light, and the red light-emitting element and the infrared light-emitting element do not emit light. Thus, the sleep-aid mode further expands the functionality of the lamp 10, making it suitable not only for general lighting needs but also for specific sleep assistance and relaxation applications.

[0037] Understandably, blue light (approximately 470nm) and green light (approximately 525nm) can help regulate the body's circadian rhythm, inhibit melatonin secretion, and make it easier for people to wake up and stay alert in the morning (early morning wake-up time). By using blue and green light at appropriate times, users can effectively help themselves be more alert in the morning, and by using red light (650nm) at night (nighttime sleep time) to promote melatonin secretion, overall sleep quality can be improved.

[0038] In sleep aid mode, lamp 10 uses blue and green light emitters to provide specific light exposure, helping users wake up more easily in the morning and fall asleep better at night. Blue LEDs (approximately 470nm) are typically used to suppress melatonin secretion, making people more alert. Green LEDs (approximately 525nm) help soothe the skin and reduce inflammation, while also helping to regulate circadian rhythms.

[0039] In some embodiments, when the luminaire 10 is in anti-inflammatory mode, the blue light-emitting element can produce blue light, and the red light-emitting element can produce red light. Thus, the anti-inflammatory mode further expands the functionality of the luminaire 10, making it suitable not only for general lighting needs but also for specific skin care and health applications.

[0040] In anti-inflammatory mode, the lamp 10 uses blue and red light emitters to provide specific light illumination, helping users relieve skin inflammation and promote wound healing. The blue LED (approximately 470nm) is typically used for sterilization and anti-inflammation; its operating current and voltage can be precisely controlled by a microcontroller to ensure a stable and safe blue light intensity. The red LED (approximately 650nm) is often used to promote cell regeneration and repair, helping to reduce inflammation and accelerate wound healing. The red light emitter can use high-power LEDs to ensure sufficient light intensity and penetration depth. The microcontroller can automatically control the red light irradiation time according to preset time and intensity parameters.

[0041] In some embodiments, when the luminaire 10 is in hair growth mode, the red light-emitting element can generate red light, and the infrared light-emitting element can generate infrared light. Thus, the hair growth mode further expands the functionality of the luminaire 10, making it suitable not only for general lighting needs but also for specific hair care and health applications.

[0042] In hair growth mode, lamp 10 uses red and infrared light emitters to provide specific light exposure, helping users promote hair growth and health. Red LEDs (approximately 650nm) are commonly used to promote cell regeneration and repair, helping to reduce inflammation, accelerate wound healing, and stimulate hair follicles, thus promoting hair growth. Infrared LEDs (approximately 850nm) are primarily used for deep tissue heating and promoting blood circulation. They can penetrate the skin surface, reach deep into the hair follicles, and promote the metabolism and regeneration of hair follicle cells, thereby promoting hair growth.

[0043] In some embodiments, the mounting body 100 includes a first folding rod 110, a second folding rod 120, an upright rod 130, and a base 140 connected in sequence. The light-emitting component 200 is disposed at the end of the first folding rod 110 away from the second folding rod 120. The first folding rod 110 is rotatable relative to the second folding rod 120, and the axis of rotation of the first folding rod 110 relative to the second folding rod 120 is parallel to the horizontal direction. Thus, users can change the illumination direction of the lamp 10 by adjusting the angles of the first folding rod 110 and the second folding rod 120 to meet the needs of different scenarios, such as bedside illumination or desktop use. This design allows the lamp 10 to adapt to various usage environments, easily achieving both horizontal and vertical illumination. Moreover, users can quickly adjust the height and angle of the lamp 10 as needed without complicated tools or steps, improving ease of use and user experience.

[0044] In some embodiments, the first folding rod 110 and the second folding rod 120 are connected by a horizontal pivot, allowing the first folding rod 110 to rotate freely relative to the second folding rod 120 in the horizontal direction. The pivot is made of high-quality stainless steel to ensure durability and smoothness. An integrated damper within the pivot ensures that the first folding rod 110 remains stable at any angle and does not slip unnecessarily. A locking button is located near the pivot, allowing the user to unlock or lock the angle of the first folding rod 110 for easy adjustment and fixation.

[0045] In some embodiments, the second folding rod 120 is rotatable relative to the upright rod 130, and the axis of rotation of the second folding rod 120 relative to the upright rod 130 is parallel to the horizontal direction. Thus, the user can change the overall illumination direction of the lamp 10 by adjusting the angle of the second folding rod 120, not limited to vertical or horizontal directions, but also achieving illumination at any angle. This design allows the lamp 10 to adapt to more usage environments and needs, easily achieving either bedside placement for localized illumination or desktop use for large-area lighting. Users can quickly adjust the height and angle of the lamp 10 as needed, without complicated tools or steps, improving ease of use and user experience.

[0046] The second folding rod 120 can rotate freely in the horizontal direction relative to the upright rod 130, providing a wider range of illumination angle adjustment. The second folding rod 120 is connected to the upright rod 130 via a horizontal pivot, allowing the second folding rod 120 to rotate freely in the horizontal direction relative to the upright rod 130. The pivot is made of high-quality stainless steel to ensure durability and smooth operation. An integrated damper within the pivot ensures that the second folding rod 120 remains stable at any angle and does not slip. A locking button is located near the pivot, allowing the user to unlock or lock the angle of the second folding rod 120 for easy adjustment and fixation.

[0047] In some embodiments, the upright pole 130 includes multiple sub-poles, which are sequentially spliced ​​together. Two sub-poles located at the ends of the upright pole 130 are respectively connected to the second folding rod 120 and the base 140. By designing the upright pole 130 as a series of sequentially spliced ​​sub-poles, the height of the lamp 10 can be flexibly adjusted. Users can adjust the height of the lamp 10 according to actual needs, adapting to different usage scenarios and space requirements. The modular design makes the lamp 10 smaller in size after disassembly, facilitating transportation and storage. Each sub-poles can be added or removed as needed, providing more configuration options to meet the personalized needs of different users.

[0048] In some embodiments, the upright pole 130 is composed of multiple sub-poles, which are sequentially spliced ​​together by threaded connections or other methods. Two sub-poles located at the ends of the upright pole 130 are respectively connected to the second folding pole 120 and the base 140. The connections between the sub-poles are threaded to ensure sufficient stability and safety of the spliced ​​upright pole 130. Each sub-pole segment has an external thread at one end and an internal thread at the other end, and the segments are connected together by tightening.

[0049] This utility model embodiment also proposes a lighting control system, which includes a lamp 10 and a controller according to any of the above embodiments. The lamp 10 also includes a circuit board, which is electrically connected to the light-emitting component 200; the controller is electrically connected to the circuit board.

[0050] In this way, users can remotely control various functions of the lamp 10 through the client, such as switching on and off, adjusting brightness, and switching modes.

[0051] The client is the interface between the user and the lamp 10, which can be a smartphone app, tablet application, or desktop application. Users can select different lighting modes through the client, such as sunbathing mode, beauty mode, sleep aid mode, anti-inflammatory mode, and hair growth mode. In each mode, the client sends corresponding instructions to the circuit board, which then drives the corresponding LED beads to operate.

[0052] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs.

[0053] It should be understood that the terminology used herein is for the purpose of describing particular exemplary embodiments only and is not intended to be limiting. Unless the context clearly indicates otherwise, the singular forms “a,” “an,” and “” used herein may also mean including the plural forms. The terms “comprising,” “including,” “containing,” and “having” are inclusive and therefore indicate the presence of the stated features, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, elements, components, and / or combinations thereof.

[0054] The above are merely specific embodiments of this utility model, enabling those skilled in the art to understand or implement it. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this utility model. Therefore, this utility model is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.

Claims

1. A lamp, characterized in that, include: Installation main body; as well as The light-emitting component is mounted on the mounting body and is capable of generating emitted light of multiple wavelengths. The lamp has multiple illumination modes, each illumination mode corresponding to at least one wavelength of emitted light. When the lamp is in one of the illumination modes, the light-emitting component is capable of generating emitted light of the corresponding wavelength.

2. The lamp according to claim 1, characterized in that, The multiple lighting modes include a sunbathing mode, a beauty mode, a sleep aid mode, an anti-inflammatory mode, and a hair growth mode; the light-emitting components include blue light-emitting components, green light-emitting components, red light-emitting components, and infrared light-emitting components. When the lamp is in the sunbathing mode, the blue light-emitting component can generate blue light, the green light-emitting component can generate green light, the red light-emitting component can generate red light, and the infrared light-emitting component can generate infrared light.

3. The lamp according to claim 2, characterized in that, When the lamp is in beauty mode, the red light-emitting element can produce red light, while the blue light-emitting element, the green light-emitting element, and the infrared light-emitting element do not produce light.

4. The lamp according to claim 2, characterized in that, The sleep mode includes a nighttime sleep period and a morning wake-up period. When the lamp is in the nighttime sleep period of the sleep-aid mode, the red light-emitting element can produce red light, while the blue light-emitting element, the green light-emitting element, and the infrared light-emitting element do not produce light. When the lamp is in the morning wake-up period of the sleep-aid mode, the blue light-emitting element can produce blue light, the green light-emitting element can produce green light, while the red light-emitting element and the infrared light-emitting element do not produce light.

5. The lamp according to claim 2, characterized in that, When the lamp is in anti-inflammatory mode, the blue light-emitting element can produce blue light, the red light-emitting element can produce red light, and the green light-emitting element and the infrared light-emitting element do not produce light.

6. The lamp according to claim 2, characterized in that, When the lamp is in the light-generating mode, the red light-emitting element can generate red light, the infrared light-emitting element can generate infrared light, and the green light-emitting element and the blue light-emitting element do not generate light.

7. The lamp according to claim 1, characterized in that, The mounting body includes a first folding rod, a second folding rod, an upright rod, and a base connected in sequence. The light-emitting component is disposed at the end of the first folding rod away from the second folding rod. The first folding rod is rotatable relative to the second folding rod, and the axis of rotation of the first folding rod relative to the second folding rod is parallel to the horizontal direction.

8. The lamp according to claim 7, characterized in that, The second folding rod is rotatable relative to the upright rod, and the axis of rotation of the second folding rod relative to the upright rod is parallel to the horizontal direction.

9. The lamp according to claim 7, characterized in that, The upright pole includes multiple sub-poles, which are sequentially spliced ​​together. Two sub-poles located at the ends of the upright pole are respectively connected to the second folding pole and the base.

10. A lighting control system, characterized in that, include: The luminaire according to any one of claims 1 to 9 further includes a circuit board electrically connected to the light-emitting component; as well as The client is electrically connected to the circuit board.