Induction lamp
The induction lamp addresses the adaptability issue by enabling flexible sensor configurations and mounting options, enhancing user-friendliness and energy efficiency across different scenarios.
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Utility models
- Current Assignee / Owner
- Filing Date
- 2026-02-12
- Publication Date
- 2026-04-02
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Technical field
[0001] The present application concerns the technical field of intelligent lighting devices, specifically an induction lamp. State of the art
[0002] With the intelligent upgrade of smart homes and public lighting, induction lamps are being widely used in homes, hallways, garages, outdoor areas, and other settings due to their features such as automatic induction and energy efficiency. Different scenarios have diverse requirements: homes need soft illuminance, hallways require precise human induction, and garages need a standby function and the ability to switch between high and low brightness. Furthermore, user demands for scene changes place higher demands on adaptability and versatility.
[0003] In current technology, induction lamps are often integrated and pre-configured, with sensors supporting either only voice control or only infrared induction. Given the varying requirements of different scenarios, such as homes, hallways, or garages, they can only operate with this single induction type, preventing scenario-based adaptation. This limits the product's application range and makes it relatively impractical. Content of the present application
[0004] The aim of the present application is to provide an induction lamp in order to solve the problem of the limited practicality of induction lamps in the prior art.
[0005] Die vorliegende Anmeldung wird wie folgt realisiert: Die Induktionslampe umfasst ein Gehäuse, in dem sich ein Gehäusehohlraum befindet. Im Gehäusehohlraum sind ein Leuchtkörper und ein Sensor angeordnet; der Leuchtkörper und der Sensor sind elektrisch verbunden. Wenn der Sensor ausgelöst wird, sendet dieser ein Arbeitssignal an den Leuchtkörper.
[0006] In some embodiments, a mirror body is attached to the housing, and the light source is arranged around the circumference of the mirror body.
[0007] In einigen Ausführungsformen umfasst das Gehäuse ein Untergehäuse und ein Obergehäuse, wobei eine Seite des Untergehäuses beweglich mit einer Seite des Obergehäuses verbunden ist, und auf dem Obergehäuse der Spiegelkörper, der Leuchtkörper, und der Sensor angebracht sind.
[0008] In some embodiments, the lower housing has several receiving slots; the upper housing comprises a first upper housing and a second upper housing; wherein one side of the first upper housing is movably connected to the lower housing, and another side of the first upper housing is movably connected to the second upper housing.
[0009] In some embodiments, the housing comprises a base body and a main housing, with the mirror body, the light source, and the sensor being mounted on the main housing.
[0010] In some embodiments, the main housing is movably connected to the base body; an extension housing is movably attached to each side of the main housing, and an extension mirror body is attached to the extension housing.
[0011] In some embodiments, a connecting structure for connection to an external mounting surface is attached to the housing, wherein the connecting structure is located on the rear of the housing or on the outer circumference of the housing.
[0012] In some embodiments, the connection structure comprises a first magnetic fastening element attached to the housing and a second magnetic fastening element that interacts with the first magnetic fastening element to achieve adsorption. The second magnetic fastening element is intended to be attached to the external mounting surface. The adsorption effect between the first and second magnetic fastening elements enables quick installation and removal of the induction lamp.
[0013] In some embodiments, the connection structure includes an adhesive strip attached to the housing, which serves to glue and fasten to the external mounting surface.
[0014] In some embodiments, the light source is an LED light source.
[0015] Compared to state-of-the-art technology, the provided induction lamp offers the advantage that the sensor can be selected or combined depending on the application scenario to enable demand-based automatic switching on / off and adaptive brightness control. This not only increases user-friendliness but also reduces energy consumption and meets the usage requirements of various scenarios such as homes, hallways, or garages. Brief description of the drawings Fig. Figure 1 shows a schematic representation of the structure of an induction lamp according to the present application. Fig. Figure 2 shows a top view of the induction lamp according to the present application. Fig. Figure 3 shows the structure of a housing cavity according to the present application. Fig. Figure 4 shows a section through the housing cavity according to the present application. Fig. Figure 5 shows a cross-section of the housing cavity according to the present application. Fig. Figure 6 shows a schematic representation of the structure of the induction lamp according to the present application. Fig. Figure 7 shows a schematic representation of the structure of the induction lamp according to the present application. Fig. Figure 8 shows a schematic representation of the structure of the induction lamp according to the present application. Fig. Figure 9 shows a schematic representation of the structure of the induction lamp according to the present application. Fig. Figure 10 shows a schematic representation of the structure of the induction lamp according to the present application. Fig. Figure 11 shows a schematic representation of the structure of the induction lamp according to the present application. Detailed description of the embodiments
[0016] To more clearly illustrate the objectives, technical solutions, and advantages of the embodiments of the present application, the present application is described in further detail below with reference to the figures and embodiments. It is understood that the specific embodiments described here serve only to explain the present application and not to limit it.
[0017] The following description combines specific embodiments to describe in detail the realization of the present application.
[0018] In the illustrations of this application, identical or similar reference symbols correspond to identical or similar components. In the description of this application, terms such as "top," "bottom," "left," "right," etc., indicating direction or positional relationships, are based on the direction or positional relationship shown in the illustrations and serve only to simplify the description of this application. They do not indicate or imply that the component in question must have a specific orientation or be designed and operated in a specific orientation. Therefore, the terms used in the illustrations to describe positional relationships serve only as illustrative examples and cannot be understood as limiting the scope of this application. For a person skilled in the art, the specific meanings of the aforementioned terms can be understood depending on the context.
[0019] Referring to Fig. Figures 1-11 show some embodiments of the present application.
[0020] An induction lamp according to the present application comprises a housing 10 containing a housing cavity 40. A light source 21 and a sensor 22 are arranged in the housing cavity 40; the light source 21 and the sensor 22 are electrically connected. When the sensor 22 is triggered, it sends an operating signal to the light source 21. The device can be an induction lamp for cosmetic bags, cosmetic mirrors, inductive nightlights, or other inductive lighting devices.
[0021] The provided induction lamp allows the Sensor 22 to be selected or combined with other sensors depending on the application scenario, enabling on-demand automatic switching on / off and adaptive brightness control. This not only increases user-friendliness but also reduces energy consumption and meets the usage requirements of various scenarios such as homes, hallways, or garages.
[0022] The sensor 22 of this induction lamp comprises various types that can be selected and flexibly combined according to actual functional requirements. Specifically, it includes infrared sensors, microwave radar sensors, light sensors, sound sensors, infrared distance sensors, and temperature / humidity sensors. The respective sensors perform functions such as human detection, motion identification, brightness determination, sound recording, distance detection, and ambient temperature and humidity measurement to support the triggering logic and adaptive control of the induction lamp with data.
[0023] In some embodiments, referring to the Fig. 7-9, a mirror body 100 is mounted on the housing, and the light source 21 is arranged around the circumference of the mirror body 100. Thus, the device serves as a cosmetic mirror, in which the light source 21 is triggered by the sensor 22 to emit light, which facilitates the application of makeup.
[0024] The housing comprises a lower housing 200 and an upper housing 300, with one side of the lower housing 200 movably connected to one side of the upper housing 300. The mirror body 100, the light source 21, and the sensor 22 are mounted on the upper housing 300. The device thus serves as a cosmetic bag; the movable connection allows it to swivel. When not in use, the mirror body 100 can be swivelled to conceal and store it, preventing breakage.
[0025] Specifically, the lower housing 200 has several mounting slots 201.
[0026] Referring to Fig. Figure 9 of the upper housing 300 comprises a first upper housing 301 and a second upper housing 302, wherein one side of the first upper housing 301 is movably connected to the lower housing 200 and the other side of the first upper housing 301 is movably connected to the second upper housing 302. Thus, the device serves as a multifunctional cosmetic bag; the receiving slots 201 are used to hold items. Furthermore, the design with multiple movable connections allows for swiveling at several angles, which increases ease of use.
[0027] In some embodiments, referring to the Fig. 10 and Fig. 11, the housing comprises a base body 400 and a main housing 500, with the mirror body 100, the light source 21, and the sensor 22 mounted on the main housing 500. Thus, the device serves as a stand-mounted cosmetic mirror for household use. The light source 21 is triggered to illuminate by the sensor 22 (which, for example, detects human movement).
[0028] Specifically, the main housing 500 is movably connected to the base body 400, and extension housings 510 are movably attached to both sides of the main housing 500, on which extension mirror bodies 101 are mounted. The design of the extension housings 510 thus increases the mirror surface area. The sensor 22 can be a light sensor. When the device is not in use, the extension housings 510 are folded down on the front of the main housing 500. When the extension housings 510 are unfolded, the sensor 22 is triggered and the light source 21 is illuminated.
[0029] For example, for a basic energy-saving scenario, a passive infrared (PIR) sensor or a combination of a PIR sensor and a light sensor can be chosen; for scenarios requiring high precision and reduced false triggering, a combination of a PIR sensor, a microwave radar sensor, and a light sensor can be used; for humidity- or temperature-adapted environments, a temperature / humidity sensor can be added to one of the above combinations; for proximity interactions or voice-activated triggering, an infrared distance sensor or a sound sensor can be integrated into the combination to meet the usage requirements in different scenarios.
[0030] Specifically, the housing cavity 40 contains a mainboard 20 on which the sensor 22 and the light source 21 are mounted. The integration of sensor 22, light source 21, and control / transmission modules on the mainboard 20 within the housing 10 enables integrated control of induction detection, signal processing, and lighting control. This not only increases signal response and control precision but also allows for flexible adaptation to various scenario requirements through pre-programmed sequences.
[0031] The housing 10 features a connection structure for attachment to an external mounting surface, with the connection structure being located on the rear of the housing 10 or on its outer circumference. This allows for flexible choice of connection between the rear or outer circumference of the housing and the external mounting surface, adapts to various mounting scenarios such as walls, ceilings, or columns, requires no additional adapter parts, increases ease of installation and scenario adaptation, and simultaneously simplifies the structural design to ensure stability and aesthetics after installation.
[0032] In some embodiments, the connection structure comprises a first magnetic fastening element 11 attached to the housing 10, and a second magnetic fastening element that interacts with the first magnetic fastening element 11 to achieve adsorption. The second magnetic fastening element is intended for attachment to the external mounting surface. The adsorption effect between the first magnetic fastening element 11 and the second magnetic fastening element enables quick and easy installation and removal of the induction lamp without the need for tools, thus significantly improving handling.
[0033] In some embodiments, the connection structure includes an adhesive strip 50 attached to the housing 10, which serves for bonding and fastening to the external mounting surface. Thus, the adhesive strip connection structure, which is directly integrated into the housing 10, can be quickly attached to the external mounting surface without additional tools, significantly increasing ease of assembly. At the same time, it adapts to various mounting scenarios such as walls or ceilings, has a simple structure and low cost, ensures a stable fastening, and provides a neat, aesthetically pleasing appearance after assembly, further enhancing the product's practicality and adaptability to different scenarios.
[0034] In some embodiments, the connection structure includes a recessed groove 12. This can be quickly clicked into place and secured with a suitable retaining element on the external mounting surface without the need for additional tools, thus increasing ease of assembly.
[0035] In some embodiments, referring to the Fig. 1-5, the outer contour of housing 10 is circular, and housing 10 is designed as a cylindrical structure overall. Housing 10, with its rounded contour and cylindrical structure, has rounded shapes without sharp edges, which not only enhances the aesthetics after assembly but also reduces the risk of injury.
[0036] In some embodiments, referring to Fig. 6, the outer contour of the housing 10 is rectangular, and the housing 10 as a whole is designed as a cuboid structure. This adapts to narrow, long spaces or row-like mounting scenarios.
[0037] In some embodiments, a sensory light guide lens is attached to the housing 10 at the position of the sensor 22, which serves to focus light from the environment onto the sensor 22.
[0038] Referring to the Fig. 4 and Fig. In section 5, the sensory light guide lens 30 is arranged recessed or raised on the housing 10; the sensory light guide lens 30, by virtue of its recessed or raised design, focuses the ambient light onto the sensor 22, improving the light detection capability and increasing the detection sensitivity and accuracy of the sensor 22 for environmental parameters. This avoids delays or false triggers due to insufficient light detection, as can occur in prior art.
[0039] A power supply 23 is arranged in the housing cavity 40, positioned on the back of the mainboard 20. The front of the mainboard 20 carries the sensor 22 and the light source 21.
[0040] A charging port 24 and a power management chip 25 are mounted on the mainboard 20, with the charging port 24 forming a charging connection on the surface of the housing 10. The power management chip 25 optimizes the power distribution and prevents overcharging.
[0041] The sensory light guide lens 30 is a Fresnel lens.
[0042] Specifically, the luminaire 21 is an LED light source. This has the advantages of low energy consumption, a long lifespan, and a fast response time.
[0043] The descriptions above represent only some embodiments of the present application and are not suitable for limiting the present application. All amendments, equivalent replacements, and improvements made within the spirit and principles of the present application should be included in the scope of protection of the present application.
Claims
[1] An induction lamp, characterized by , that it comprises a housing (10); wherein a housing cavity (40) is located in the housing (10); a light source (21) and a sensor (22) are arranged in the housing cavity (40), and the light source (21) and the sensor (22) are electrically connected; when the sensor (22) is triggered, the sensor (22) transmits a working signal to the light source (21). [2] The induction lamp according to claim 1, wherein a mirror body (100) is attached to the housing (10) and the light source (21) is arranged around the circumference of the mirror body (100). [3] The induction lamp according to claim 2, wherein the housing (10) comprises a lower housing (200) and an upper housing (300); a side of the lower housing (200) is movably connected to a side of the upper housing (300), and the mirror body (100), the light source (21), and the sensor (22) are attached to the upper housing (300). [4] The induction lamp according to claim 2, wherein several receiving slots (201) are formed on the lower housing (200); the upper housing (300) comprises a first upper housing (301) and a second upper housing (302); one side of the first upper housing (301) is movably connected to the lower housing (200), and another side of the first upper housing (301) is movably connected to the second upper housing (302). [5] The induction lamp according to claim 2, wherein the housing (10) comprises a base body (400) and a main housing (500), and the mirror body (100), the light source (21) and the sensor (22) are attached to the main housing (500). [6] The induction lamp according to claim 5, wherein the main housing (500) is movably connected to the base body (400); an extension housing (510) is movably attached to each of the two sides of the main housing (500), and an extension mirror body (101) is attached to the extension housing (510). [7] The induction lamp according to claim 1, wherein a connection structure for connecting to an external mounting surface is attached to the housing (10); the connection structure is arranged on a rear side of the housing (10) or on the outer circumference of the housing (10). [8] The induction lamp according to claim 7, wherein the connection structure comprises a first magnetic fastening element (11) attached to the housing (10) and a second magnetic fastening element which interacts with the first magnetic fastening element (11) to achieve adsorption; wherein the second magnetic fastening element is intended to be mounted on an external mounting surface, and the induction lamp is made possible by the adsorption effect between the first magnetic fastening element (11) and the second magnetic fastening element. [9] The induction lamp according to claim 7, wherein the connection structure comprises an adhesive strip (50) attached to the housing (10); the adhesive strip (50) serves for gluing and fastening to the external mounting surface. [10] The induction lamp according to any one of claims 1 to 9, wherein the light source (21) is an LED light source.