Magnetic type atmosphere lamp and system for hole plate
The design of magnetic ambient light strips and modular electrical connectors solves the problems of damage and cumbersome installation of ambient lights on perforated boards, enabling non-destructive and flexible installation and maintenance, as well as convenient lighting arrangement and adjustment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-04
- Publication Date
- 2026-04-03
AI Technical Summary
Existing perforated panel ambient lighting installation methods require drilling or gluing, which damages the surface and makes it difficult to move. Installation and disassembly are cumbersome and maintenance is inconvenient.
Featuring a magnetic ambient light design, the ambient light strip has magnets at both ends, allowing for non-destructive and repeatable installation via corner connectors. Combined with modular electrical connectors, it simplifies assembly and adjustment.
It enables non-destructive installation, flexible positioning, and convenient maintenance, adapts to different perforated board sizes, and improves installation convenience and location flexibility.
Smart Images

Figure CN224080175U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lighting equipment technology, and in particular to a magnetic ambient light and system for perforated panels. Background Technology
[0002] Pegboards are a common type of home storage and display board, such as IKEA's Skadis series. Users can install various items on their surface using hooks, brackets, and other methods, serving both storage and decorative purposes. With the increasing demand for personalized ambient lighting, many users want to add LED strips or light bars around the pegboard to create backlighting or ambient lighting effects.
[0003] However, in related technologies, the commonly used installation methods for ambient lights on perforated boards require the use of adhesives, clips, or screws to fix the LED light strips to or around the perforated board. These traditional installation methods have many drawbacks. For example, they require drilling holes or attaching materials to the board, which may damage the surface coating or structure of the perforated board and make it difficult to move the light strips once they are fixed. The installation and disassembly process is cumbersome, and maintenance and adjustment are also inconvenient. Utility Model Content
[0004] This invention aims to at least partially solve one of the technical problems in the related art. Therefore, the purpose of this invention is to provide a magnetic ambient light and system for perforated panels.
[0005] To achieve the above objectives, on one hand, the magnetic ambient light for perforated boards according to an embodiment of the present invention includes:
[0006] At least two ambient light strips, each of which has a first electrical connector at both ends and a magnet on it, so that the ambient light strip can be magnetically attached to the perforated board;
[0007] At least one corner connector having two mutually perpendicular connection surfaces, each of which has a second electrical connector;
[0008] Each corner connector is located between two adjacent ambient light strips, and one of the two second electrical connectors on the corner connector is plugged into the first electrical connector of one of the two adjacent ambient light strips, and the other of the two second electrical connectors on the corner connector is plugged into the first electrical connector of the other of the two adjacent ambient light strips.
[0009] The magnetic ambient light for perforated boards provided in this embodiment features a magnet inside the ambient light strip, enabling non-destructive and repeatable magnetic adsorption installation. Furthermore, the modular design of the ambient light strip and the corner connector with an electrical connector simplifies the electrical connections and physical assembly between the strips. This allows users to flexibly arrange the number and position of the strips according to their needs, adapting to perforated boards of different sizes. It also significantly improves installation convenience, positional flexibility, and ease of subsequent maintenance and adjustment.
[0010] In addition, the magnetic ambient light for perforated boards according to the above embodiments of this utility model may also have the following additional technical features:
[0011] According to one embodiment of the present invention, the ambient light strip includes:
[0012] A lamp housing extends in a predetermined direction to form a strip, and the lamp housing has a light outlet that extends in the same direction as the lamp housing.
[0013] LED light strip, wherein the LED light strip is disposed inside the lamp housing and extends along the length direction of the lamp housing;
[0014] A lampshade is provided at the light outlet to allow light from the LED light strip to be emitted.
[0015] The lamp housing is made of aluminum profile, and the two first electrical connectors are respectively located at both ends of the lamp housing and electrically connected to the LED lamp. The magnet is located inside the lamp housing so that the lamp housing can be attached to the perforated plate.
[0016] According to one embodiment of the present invention, the lamp housing includes a first sidewall and a second sidewall, wherein the first sidewall and the second sidewall are perpendicularly connected to form an L-shaped structure;
[0017] An inclined wall connects the first sidewall and the second sidewall, and the inclined wall defines a triangular space between the first sidewall and the second sidewall. The LED light strip is disposed on the inclined wall and located outside the triangular space. The lampshade is connected between the first sidewall and the second sidewall and is located in the light emission direction of the LED light strip.
[0018] According to one embodiment of the present invention, the magnet is a linear Hellbeck array magnet, which is disposed within the triangular space and extends along the length of the lamp housing.
[0019] According to one embodiment of the present invention, the magnet includes a plurality of linear Helbeck array magnets and a plurality of plastic tubes, wherein the plurality of linear Helbeck array magnets and the plurality of plastic tubes are arranged alternately along the length of the lamp housing.
[0020] According to one embodiment of the present invention, the first electrical connector includes:
[0021] An end seat has a boss and a connector. The boss is inserted into the inside of the lampshade, and the connector is inserted into the triangular space, so that the end seat is inserted and fixed to the end of the lamp housing.
[0022] A female connector, which is disposed on the end seat and located outside the end seat.
[0023] According to one embodiment of the present invention, the corner connector includes a corner shell and two circuit boards, wherein the corner shell has two vertically arranged open sides;
[0024] The two circuit boards correspond one-to-one with the two open sides, each circuit board is disposed in the corresponding open side, and each circuit board is provided with a second electrical connector, the electrical connector being a male connector adapted to be inserted into the female connector.
[0025] According to one embodiment of the present invention, the lampshade is arc-shaped, and the corner shell has an arc-shaped outer surface adapted to the lampshade.
[0026] On the other hand, the magnetic ambient lighting system for perforated panels according to an embodiment of the present invention includes:
[0027] Magnetic ambient lighting for pegboards, as described above;
[0028] A controller is connected to the magnetic ambient light and is used to control and adjust the magnetic ambient light.
[0029] According to one embodiment of the present invention, it further includes:
[0030] A radar sensor, connected to the controller, sends a trigger signal to the controller when a human body is active near the perforated panel, causing the LED light strip to automatically turn on or increase its brightness; if no human activity is detected within a preset time, the controller controls the LED light strip to automatically turn off or decrease its brightness; and / or,
[0031] An ambient light sensor is provided, which is connected to the controller. The controller is also used to automatically adjust the brightness of the LED light strip according to the ambient brightness value detected by the ambient light sensor, so as to reduce the light brightness when the environment becomes dark and increase the light brightness when the environment becomes bright.
[0032] The magnetic ambient lighting system for perforated panels provided in this embodiment of the invention features a magnetic ambient light, is quick and easy to install without damaging the perforated panel, and its modular assembly can accommodate perforated panels of different sizes, enabling flexible expansion. Furthermore, the lighting can be controlled and adjusted via a controller, providing intelligent interaction for the ambient lighting.
[0033] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0034] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0035] Figure 1 This is a structural schematic diagram of a magnetic ambient light for a perforated board according to an embodiment of this utility model;
[0036] Figure 2 This is a structural schematic diagram of the magnetic ambient light for perforated panels in an embodiment of this utility model when disassembled;
[0037] Figure 3 This is a structural diagram of the magnetic ambient light strip and the corner connector in the split state of the magnetic ambient light used in the perforated board according to an embodiment of this utility model;
[0038] Figure 4 This is a schematic diagram of the structure of the first electrical connector in the magnetic ambient light for perforated boards according to an embodiment of this utility model;
[0039] Figure 5 This is an exploded view of the ambient light strip in the magnetic ambient light for perforated panels according to an embodiment of this utility model;
[0040] Figure 6 This is a schematic diagram of the structure of the magnetic ambient light strip in the perforated panel according to an embodiment of the present invention when it is applied to the perforated panel;
[0041] Figure 7This is a block diagram illustrating the principle of a magnetic ambient lighting system for perforated panels according to an embodiment of this utility model.
[0042] Figure label:
[0043] 10. Ambient light strips;
[0044] 101. Lamp housing;
[0045] 1011, First sidewall;
[0046] 1012, Second sidewall;
[0047] 1013. Inclined wall;
[0048] 102. LED light strip;
[0049] 103. Lampshade;
[0050] 104. Magnetic components;
[0051] 1041. Linear Helbeck array magnets;
[0052] 1042. Plastic pipe;
[0053] 105. First electrical connector;
[0054] 1051. End seat;
[0055] 1052. Boss;
[0056] 1053. Connector;
[0057] 1054. Female connector;
[0058] 20. Corner connectors;
[0059] 201. Corner shell;
[0060] 202. Circuit board;
[0061] 203. Male electrical connector;
[0062] 30. Pegboard;
[0063] 40. Controller;
[0064] 50. Radar sensor;
[0065] 60. Ambient light sensor.
[0066] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0067] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.
[0068] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "circumferential", "radial", etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0069] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0070] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0071] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0072] The magnetic ambient light and system for a perforated board 30 according to an embodiment of the present invention will now be described in detail with reference to the accompanying drawings.
[0073] Reference Figures 1 to 6 As shown, the magnetic ambient light for the perforated board 30 provided according to the embodiment of the present utility model includes at least two ambient light strips 10 and at least one corner connector 20.
[0074] Specifically, each of the ambient light strips 10 is provided with a first electrical connector 105 at both ends, and the ambient light strip 10 is provided with a built-in magnet 104 so that the ambient light strip 10 can be magnetically attached to the perforated plate 30.
[0075] For example, the ambient light strip 10 is typically strip-shaped, and its length can be preset according to common perforated panel 30 sizes or modular requirements. At least one or more magnets 104 are provided inside each ambient light strip 10 or on the side facing away from its luminous surface. The magnets 104 are preferably permanent magnets, such as neodymium iron boron magnets, to provide sufficient magnetic force. These magnets 104 can be evenly distributed along the length of the ambient light strip 10, or at least near its ends, to ensure that the ambient light strip 10 can be stably and firmly magnetically adsorbed onto the ferromagnetic surface of the perforated panel 30. This magnetic adsorption installation method avoids the operations required by traditional installation methods, such as drilling holes in the perforated panel 30, applying adhesive, or using clips, which may damage the surface coating or structure of the perforated panel 30, achieving truly non-destructive installation. Simultaneously, due to the reversibility of magnetic adsorption, users can easily remove the ambient light strip 10 and readjust its position on the perforated panel 30, providing extremely high installation flexibility and repeatability.
[0076] The first electrical connector 105 at both ends of each of the ambient light strips 10 is used to realize power transmission and / or signal control between the ambient light strips 10. The first electrical connector 105 can be designed as a pin connector, a contact connector, or other structure that can realize a stable and reliable electrical connection.
[0077] The corner connector 20 has two mutually perpendicular connecting surfaces, each of which has a second electrical connector. Each corner connector 20 is located between two adjacent ambient light strips 10, and one of the two second electrical connectors on the corner connector 20 is inserted into the first electrical connector 105 of one of the two adjacent ambient light strips 10, while the other of the two second electrical connectors on the corner connector 20 is inserted into the first electrical connector 105 of the other of the two adjacent ambient light strips 10.
[0078] For example, each corner connector 20 typically has an L-shaped or approximately L-shaped body structure, which naturally forms two mutually perpendicular or substantially perpendicular connection surfaces. A second electrical connector is provided on each connection surface. The structure of this second electrical connector is adapted to the first electrical connector 105 on the ambient light strip 10; for example, if the first electrical connector 105 is male, the second electrical connector can be designed as female, and vice versa, to ensure reliable mating and the formation of an electrical path. The two second electrical connectors are used to connect two adjacent ambient light strips 10, respectively.
[0079] In actual assembly and use, the user first plans the layout of the ambient lights on the perforated board 30 according to their needs. Then, the required number of ambient light strips 10 are directly attached to the predetermined positions on the perforated board 30 using their magnets 104. When it is necessary to connect two ambient light strips 10 at a certain angle (usually 90 degrees) at a corner of the perforated board 30 (e.g., around the perimeter of the perforated board 30), a corner connector 20 is used. The specific connection method is as follows: place a corner connector 20 between two adjacent ambient light strips 10 to be connected. Then, insert the first electrical connector 105 at one end of one ambient light strip 10 into the second electrical connector on one connecting surface of the corner connector 20; then insert the first electrical connector 105 at one end of the other adjacent ambient light strip 10 into the second electrical connector on the other connecting surface of the corner connector 20. This plug-in connection not only achieves the corner connection of the two ambient light strips 10 in physical structure, but also realizes their electrical series or parallel connection, so that current or control signals can be smoothly transmitted from one ambient light strip 10 to the other ambient light strip 10 through the corner connector 20, thus forming a continuous light-emitting whole.
[0080] Using this assembly method, users can freely choose the required number of ambient light strips 10 and corner connectors 20 to combine according to the actual size and shape of the perforated board 30, so as to adapt to perforated boards 30 of different sizes and flexibly build various backlight or ambient light layouts such as surround, L-shaped, and U-shaped.
[0081] According to the embodiment of this utility model, a magnetic ambient light for a perforated board 30 is provided, in which a magnet 104 is provided inside the ambient light strip 10, realizing non-destructive and repeatable magnetic adsorption installation of the ambient light strip 10 on the perforated board 30. At the same time, through the modular design of the ambient light strip 10 and the corner connector 20 with an electrical connector, not only is the electrical connection and physical assembly between the ambient light strips 10 simplified, but users can also flexibly arrange the number of ambient light strips 10 and adjust their positions according to their needs, adapting to perforated boards 30 of different sizes, which also greatly improves the convenience of installation, the flexibility of position, and the ease of subsequent maintenance and adjustment.
[0082] Reference Figure 5 As shown, in one embodiment of the present invention, the ambient light strip 10 includes a lamp housing 101, an LED light strip 102, and a lampshade 103. The lamp housing 101 extends along a predetermined direction (i.e., its length direction) to form a strip shape, and the lamp housing 101 has a light outlet. The light outlet extends in the same direction as the lamp housing 101 and is consistent with the strip shape of the lamp housing 101, ensuring that the light can be emitted evenly along the length direction of the ambient light strip 10.
[0083] LED light strip 102 is disposed within the lamp housing 101 and extends along the length of the lamp housing 101. Lampshade 103 is disposed at the light outlet to allow light from the LED light strip 102 to be emitted. The LED light strip 102 is typically a flexible or rigid substrate on which multiple LED chips are soldered. The LED light strip 102 is installed inside the lamp housing 101, for example, close to the inner wall of the lamp housing 101, and extends along the length of the lamp housing 101 (i.e., the first direction). The light from the LED light strip 102 is emitted outward through the light outlet on the lamp housing 101. Lampshade 103 protects the internal LED light strip 102 from damage by dust, moisture, or physical impact, while also controlling the light emitted by the LED light strip 102. Lampshade 103 is typically made of a light-transmitting material, such as polycarbonate (PC) or acrylic (PMMA). It can be transparent to achieve maximum luminous flux, or it can be a translucent or milky-white diffuser to soften the light, make the illumination more uniform, reduce glare, and thus create a more comfortable and aesthetically pleasing ambient lighting effect. The lampshade 103 can be fixed to the light outlet of the lamp housing 101 by means of clips, embedding, or adhesive.
[0084] The lamp housing 101 is made of aluminum profile. Aluminum profile not only has good thermal conductivity, which helps to dissipate the heat generated by the LED light strip 102 when it is working and extend the LED life, but it is also easy to process and form. A cavity with a predetermined cross-sectional shape can be designed to accommodate the LED light strip 102 and the magnet 104.
[0085] Two first electrical connectors 105 are respectively located at both ends of the lamp housing 101 and are electrically connected to the LED light strip 102. That is, the two first electrical connectors 105 are electrically connected to the LED light strip 102 inside the lamp housing 101, usually by leading out the power input / output terminals of the LED light strip 102 through wires and connecting them to the corresponding pins or contacts of the first electrical connectors 105. When the first electrical connectors 105 are plugged into the second electrical connector of the corner connector 20, they can provide the LED light strip 102 with the electrical energy, control signals, etc. required for operation.
[0086] A magnet 104 is disposed within the lamp housing 101, allowing the lamp housing 101 to adhere to the perforated plate 30. This built-in design not only makes the ambient light strip 10 more aesthetically pleasing and avoids the risk of scratches or detachment that may occur with exposed magnets, but also protects the magnet 104 itself. The magnetic force generated by the magnet 104 can penetrate the lamp housing 101 and act on the external ferromagnetic perforated plate 30, thereby allowing the entire lamp housing 101, along with its internal LED light strip 102 and lampshade 103, to be firmly adhered to the perforated plate 30.
[0087] By employing the aforementioned ambient light strip 10, firstly, the aluminum profile housing not only ensures the structural stability and lightweight nature of the light strip, but more importantly, it provides excellent heat dissipation, effectively extending the lifespan of the LED strip 102 and ensuring stability during long-term operation. Secondly, the combined use of the LED strip 102 and the lampshade 103 provides ample illumination while the lampshade 103 softens and diffuses the light, creating a more uniform, comfortable, and atmospheric lighting effect, thus enhancing the user experience. Furthermore, by placing the first electrical connector 105 at both ends of the aluminum profile lamp housing 101 and electrically connecting it to the internal LED strip 102, and by embedding the magnet 104 within the lamp housing 101, the entire ambient light strip 10 achieves a compact structure, high integration, and a cleaner appearance, while also enhancing the reliability of the connection and the stability and aesthetics of the magnetic installation.
[0088] Reference Figure 5 As shown, in one embodiment of the present invention, the lamp housing 101 includes a first sidewall 1011 and a second sidewall 1012, wherein the first sidewall 1011 and the second sidewall 1012 are vertically connected to form an L-shaped structure.
[0089] An inclined wall 1013 is connected between the first sidewall 1011 and the second sidewall 1012. The inclined wall 1013 defines a triangular space between itself, the first sidewall 1011, and the second sidewall 1012. The LED light strip 102 is disposed on the inclined wall 1013 and located outside the triangular space. The lampshade 103 is connected between the first sidewall 1011 and the second sidewall 1012 and is located in the light emission direction of the LED light strip 102.
[0090] In other words, the inclined wall 1013 is connected in such a way that one side of its width direction is connected to the inner surface of the first side wall 1011, and the other side of its width direction is connected to the inner surface of the second side wall 1012. Since the inclined wall 1013 is set at an inclined angle, it, together with a part of the first side wall 1011 and a part of the second side wall 1012, encloses and defines a roughly triangular space.
[0091] The LED light strip 102 is disposed on the surface of the inclined wall 1013, and its position is outside the triangular space. In other words, the LED light strip 102 is mounted on the surface of the inclined wall 1013 facing the opening of the L-shaped structure. This arrangement allows the light-emitting surface of the LED light strip 102 to face the light emission direction of the lamp housing 101. The inclined wall 1013 itself can serve as a direct mounting substrate for the LED light strip 102, or it can have a structure for fixing the LED light strip 102 thereon.
[0092] The lampshade 103 is mounted at the edge of the L-shaped opening, completely covering the light path of the LED strip 102. The lampshade 103 closes the opening of the light cavity formed by the first sidewall 1011, the second sidewall 1012, and the inclined wall 1013 containing the LED strip 102. Light emitted from the LED strip 102 mounted on the inclined wall 1013 passes through the lampshade 103 and is projected outwards.
[0093] By employing the aforementioned lamp housing 101 structure, on the one hand, the LED light strip 102 is mounted on the inclined wall 1013, so that the light emission direction of the LED is no longer simply perpendicular or parallel to the main side wall of the lamp housing 101, but has a preset tilt angle. This design enables beam angle control, creating a better wall-washing effect when used as background light. On the other hand, the inclined mounting surface, combined with the lampshade 103, reduces the possibility of users directly seeing the glare of the LED chip from certain angles, thereby improving visual comfort and achieving an anti-glare effect. Furthermore, the inclined wall 1013 forms a triangular support structure within the L-shaped structure, which helps to enhance the structural rigidity and stability of the entire lamp housing 101. At the same time, the lamp housing 101 is made of aluminum profile with good thermal conductivity, and the inclined wall 1013, as the direct bearing surface of the LED light strip 102, can effectively conduct the heat generated by the LED to the entire structure of the lamp housing 101, utilizing a larger surface area for heat dissipation, thereby helping to maintain a good operating temperature for the LED and extend its service life.
[0094] Reference Figure 5 As shown, in one embodiment of this utility model, the magnet 104 is a linear Helbeck array magnet 1041, which is disposed within the triangular space and extends along the length of the lamp housing 101. A Helbeck array is a special arrangement of permanent magnets, its core feature being the ability to significantly enhance the magnetic field on one side of the array while substantially weakening the magnetic field on the other side.
[0095] The triangular space provides a stable environment for the linear Helbeck array magnet 1041. More importantly, the side of the linear Helbeck array magnet 1041 that generates a strong magnetic field faces outwards from the lamp housing 101, i.e., towards the surface of the perforated plate 30 to be attracted. Furthermore, the linear Helbeck array magnet 1041 extends along the length of the lamp housing 101, thereby ensuring that the ambient light strip 10 provides a uniform and sufficiently strong magnetic attraction along its entire length to securely adhere to the perforated plate 30.
[0096] In this embodiment, a linear Hellbeck array magnet 1041 is used, which can concentrate the magnetic lines of force on the side facing the perforated plate 30, thereby significantly improving the attraction force on the perforated plate 30 without increasing the total volume or weight of the magnet. The ambient light strip 10 can be more firmly fixed on the perforated plate 30.
[0097] In one embodiment of the present invention, the magnet 104 includes a plurality of linear Hellbeck array magnets 1041 and a plurality of plastic tubes 1042, wherein the plurality of linear Hellbeck array magnets 1041 and the plurality of plastic tubes 1042 are arranged alternately along the length of the lamp housing 101.
[0098] In this embodiment, the plastic tube 1042 is used to separate the multiple Helbeck array magnets into straight lines, which helps to distribute the magnetic adsorption points more evenly along the entire length of the lamp housing 101, thereby improving the overall stability of the lamp strip adsorption.
[0099] Reference Figures 3 to 4 As shown, in one embodiment of this utility model, the first electrical connector 105 includes an end base 1051 and a female connector 1054. The end base 1051 has a boss 1052 and a plug body 1053. The boss 1052 is inserted into the inner side of the lamp cover 103, and the plug body 1053 is inserted into the triangular space, so that the end base 1051 is inserted and fixed to the end of the lamp housing 101. The female connector 1054 is disposed on the end base 1051 and located outside the end base 1051.
[0100] By inserting the boss 1052 into the inside of the lampshade 103 and the connector 1053 into the triangular space inside the lamp housing 101, the entire end bracket 1051 can be firmly and precisely inserted into and fixed to the end of the lamp housing 101. This fixing method usually does not require additional screws or other fasteners, simplifying the assembly process.
[0101] After the end bracket 1051 is installed onto the end of the lamp housing 101, the insertion interface of the female connector 1054 is exposed, facilitating external connections. The female connector 1054 has corresponding conductive terminals internally, which achieve a reliable electrical connection with the LED strip 102 inside the lamp housing 101 via internal wiring. As a female connector, it mates with the second electrical connector (typically designed as a male) on the corner connector 20 or other compatible power input connectors to transmit electrical power and control signals.
[0102] Reference Figure 2 As shown, in one embodiment of this utility model, the corner connector 20 includes a corner shell 201 and two circuit boards 202. The corner shell 201 has two vertically arranged open sides. Exemplarily, the overall shape of the corner shell 201 is typically designed as a quarter-hemisphere, ensuring two perpendicularly intersecting facets to naturally adapt to and form a 90-degree angle between the two ambient light strips 10. The two mutually perpendicular or substantially mutually perpendicular open sides are located on the two facets, respectively, for accommodating the two circuit boards 202. The corner shell 201 can be made of engineering plastics or aluminum profiles, etc., to ensure electrical safety and structural strength.
[0103] Two circuit boards 202 correspond one-to-one with the two open sides. Each circuit board 202 is located in the corresponding open side, and each circuit board 202 is provided with a second electrical connector, which is a male connector 203 adapted to be inserted into the female connector 1054.
[0104] During assembly, each circuit board 202 is fixed within the corresponding open side of the corner housing 201. For example, the circuit board 202 can be securely mounted inside the corner housing 201 by means of slots, screws, or adhesive. Each circuit board 202 is provided with a second electrical connector. The two second electrical connectors are interfaces for the corner connector 20 to connect with the first electrical connectors 105 on the two adjacent ambient light strips 10. In this embodiment, the two second electrical connectors are correspondingly designed as male connectors 203. The male connectors 203 can achieve a precise and reliable plug-in electrical connection with the female connectors 1054 on the end caps 1051 of the ambient light strip 10.
[0105] In this embodiment, the corner connector 20 with the above-described structure provides physical support and effective protection for the internal circuit board 202 and connectors through the corner shell 201, improving the durability and safety of the corner connector 20. By setting a standard male connector 203 on the circuit board 202 as a second electrical connector, a matching plug-in pair is formed with the female connector 1054 on the ambient light strip 10, ensuring the standardization, convenience, and high reliability of the electrical connection. In addition, the corner shell 201 has two vertically arranged open sides, naturally guiding the two connected ambient light strips 10 to form a 90-degree corner, making the lighting layout more regular.
[0106] Preferably, the lampshade 103 is arc-shaped, and the corner shell 201 has an arc-shaped outer surface that matches the lampshade 103. This arc-shaped lampshade 103 design not only makes the appearance of the ambient light strip 10 itself softer and more streamlined, but also has a better effect on the diffuse reflection and diffusion of light, making the emitted light more uniform and full. When two ambient light strips 10 are connected at the corner by the corner connector 20, since the lampshade 103 of each ambient light strip 10 is arc-shaped, and the corner shell 201 of the corner connector 20 also has a corresponding arc-shaped outer surface, the outer contour of the entire corner transition area, from the lampshade 103 of one ambient light strip 10 to the corner shell 201 and then to the lampshade 103 of another ambient light strip 10, can maintain a visual continuity and harmony, avoiding the abruptness or disharmony caused by abrupt changes in shape.
[0107] Reference Figure 7As shown in the figure, this utility model embodiment also provides a magnetic ambient lighting system for a perforated board 30, including a magnetic ambient light for the perforated board 30 as described in the above embodiment, and a controller 40. The controller 40 is connected to the magnetic ambient light and is used to control and adjust the magnetic ambient light.
[0108] In some embodiments of this utility model, the magnetic ambient lighting system further includes a radar sensor 50 and / or an ambient light sensor 60. The radar sensor 50 is connected to the controller 40 and is a millimeter-wave radar sensor. When a human body moves near the perforated panel 30, the radar sensor 50 sends a trigger signal to the controller 40 to automatically turn on or increase the brightness of the LED light strip 102; when no human activity is detected within a preset time, the controller 40 controls the LED light strip 102 to automatically turn off or decrease its brightness. This automatic control mechanism based on human body sensing not only improves user convenience (lights turn on when someone is present and off / dimmed when someone leaves) but also effectively saves energy.
[0109] An ambient light sensor is connected to the controller 40, which is also used to automatically adjust the brightness of the LED light strip 102 based on the ambient brightness value detected by the ambient light sensor 60, so as to reduce the light brightness when the environment darkens and increase the light brightness when the environment brightens. This automatic brightness adjustment function based on ambient light sensing enables the ambient light to better adapt to environmental changes and provide a more comfortable and intelligent lighting experience.
[0110] The magnetic ambient lighting system for perforated panels 30 provided in this embodiment combines a magnetic ambient light with non-destructive magnetic installation and flexible modular assembly with a controller 40, a radar sensor 50, and an ambient light sensor 60. This not only inherits the advantages of quick and convenient installation, no damage to the perforated panel 30, and flexible expansion to adapt to different sizes of perforated panels 30, but also endows the system with intelligent interactive capabilities. Users can perform diverse lighting control adjustments through the controller 40, achieve automated scene switching (lights on when people are present, lights off when people leave) through radar sensing, and achieve intelligent adaptation of light brightness to environmental changes through ambient light sensing. This significantly improves the product's ease of use, comfort, energy efficiency, and overall intelligence, meeting the higher demands of modern users for ambient lighting in homes, gaming / leisure spaces, or workspaces.
[0111] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0112] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the inventive concept of the present utility model using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.
Claims
1. A magnetic ambient light for perforated boards, characterized in that, The application relates to a hole hole plate, which comprises at least two atmosphere light strips, at least one corner connecting piece, and a hole hole plate body. The two ends of each atmosphere light strip are respectively provided with a first electric connector, and a magnet piece is arranged on the atmosphere light strip so that the atmosphere light strip can be magnetically attached to the hole hole plate. The corner connecting piece has two mutually perpendicular connecting surfaces, and each connecting surface is provided with a second electric connector. Each corner connecting piece is located between two adjacent atmosphere light strips, one of the two second electric connectors of the corner connecting piece is inserted into the first electric connector of one of the two adjacent atmosphere light strips, and the other second electric connector of the corner connecting piece is inserted into the first electric connector of the other of the two adjacent atmosphere light strips.
2. The magnetic atmosphere lamp for pinball machine according to claim 1, wherein, The atmosphere light strip comprises a lamp shell, an LED light strip, and a lampshade. The lamp shell extends in a predetermined direction to form a strip shape, and the lamp shell is provided with a light outlet which extends in the same direction as the lamp shell. The LED light strip is arranged in the lamp shell and extends along the length direction of the lamp shell. The lampshade is arranged at the light outlet and is used for allowing the light of the LED light strip to be emitted. The lamp shell is made of aluminum profile material, two first electric connectors are arranged at the two ends of the lamp shell and are electrically connected with the LED light strip, and the magnet piece is arranged in the lamp shell so that the lamp shell can be attached to the hole hole plate.
3. The magnetic atmosphere lamp for pinball machine according to claim 2, wherein, The lamp shell comprises a first side wall and a second side wall which are perpendicularly connected to form an L-shaped structure. An inclined wall is connected between the first side wall and the second side wall, and the inclined wall, the first side wall and the second side wall define a triangular space.
4. The magnetic atmosphere lamp for pinball machine according to claim 3, wherein, The LED light strip is arranged on the inclined wall and is located outside the triangular space.
5. The magnetic atmosphere lamp for pinball machine according to claim 4, wherein, The lampshade is connected between the first side wall and the second side wall and is located in the light emission direction of the LED light strip.
6. The magnetic atmosphere lamp for pinball machine according to claim 3, wherein The magnet piece is a linear Halbach array magnet which is arranged in the triangular space and extends along the length direction of the lamp shell. The magnet piece comprises a plurality of linear Halbach array magnets and a plurality of plastic tubes which are alternately arranged along the length direction of the lamp shell. The first electric connector comprises a terminal seat, a female connector and a plug connector.
7. The magnetic atmosphere lamp for pinball machine according to claim 6, wherein, The terminal seat is provided with a boss and a plug body, the boss is inserted into the inner side of the lampshade, and the plug body is inserted into the triangular space so that the terminal seat is inserted and fixed at the end of the lamp shell. The female connector is arranged on the terminal seat and is located outside the terminal seat.
8. The magnetic atmosphere lamp for pinball machine according to claim 7, wherein, The corner connecting piece comprises a corner shell and two circuit boards.
9. A magnetic ambient lighting system for perforated panels, characterized in that, The two circuit boards correspond to the two open sides one by one, each circuit board is arranged in the corresponding open side, each circuit board is provided with a second electric connector, and the electric connector is a plug connector which is adapted to be inserted into the female connector. The lampshade is in the shape of a circular arc, and the corner shell has an arc-shaped outer surface which is matched with the lampshade. The application further relates to a hole hole plate. The magnetic atmosphere lamp for a pinball machine according to any one of claims 1-8; A controller connected with the magnetic atmosphere lamp for controlling and adjusting the magnetic atmosphere lamp.
10. The magnetic atmosphere light system for pinball games as recited in claim 9, wherein, Further comprising: A radar sensor connected with the controller, which sends a trigger signal to the controller when a human body is moving near the pinball machine, so that the LED light strip is automatically turned on or the brightness is increased; when no human body is detected within a preset time, the controller controls the LED light strip to be automatically turned off or the brightness to be decreased; and / or, An ambient light sensor connected with the controller, which is further used for automatically adjusting the brightness of the LED light strip according to the ambient brightness value detected by the ambient light sensor, so that the light brightness is decreased when the environment becomes dark and the light brightness is increased when the environment becomes bright.