A modular multi-purpose light fixture

By setting magnets and spring pin connectors on the light panel, the problem of precise alignment and insertion of existing splicing lights into the slots is solved, realizing fast and stable light panel connection and synchronous power supply, and improving the service life of the lights and the reliability of electrical connections.

CN224301963UActive Publication Date: 2026-05-29WEIXIANG ARCHITECTURAL DESIGN (SHANGHAI) CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WEIXIANG ARCHITECTURAL DESIGN (SHANGHAI) CO LTD
Filing Date
2025-08-29
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing modular lighting fixtures require precise alignment and insertion into the slots during assembly, which is cumbersome and prone to breakage of the connecting pieces due to misoperation, resulting in poor connection reliability.

Method used

Magnets are used as connectors and are set along the length of the lamp panel connection surface. Magnetic adsorption is used to achieve quick connection, and spring pin connectors on the inclined surface ensure the stability and reliability of the electrical connection. The combination of protrusion and groove design enhances the structural stability.

Benefits of technology

It simplifies the splicing process, improves the stability of the connection and the reliability of the electrical connection, extends the service life of the lamps, and enables synchronous power supply and stable lighting for multiple lamp panels.

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Abstract

The application discloses a spliced multipurpose lamp, and relates to the technical field of lighting devices, which comprises lamp panels, lamp sources are arranged on the lamp panels, the lamp panels are multiple, connecting pieces for quickly connecting adjacent lamp panels are arranged on the multiple lamp panels, the connecting pieces are magnets, the magnets are multiple, and the multiple magnets are arranged along the length direction of the connecting surface of the adjacent two lamp panels. Through the magnetic adsorption of the magnets, the connecting pieces can be quickly connected by only approaching the adjacent lamp panels without precisely aligning and inserting the connecting pieces, and the operation is simple and fast.
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Description

Technical Field

[0001] This application relates to the technical field of lighting equipment, and in particular to a modular multi-purpose luminaire. Background Technology

[0002] In the field of lighting equipment, the functional and decorative needs of lamps are becoming increasingly diversified. Modular lamps are widely used in home decoration, commercial display, landscape lighting and other scenarios because they can be combined to achieve changes in shape and expand the lighting range.

[0003] In existing technologies, splicable lighting fixtures are usually electrically connected by connecting pieces. This requires finding the corresponding slots and inserting them for connection. Improper operation can easily cause the connecting pieces to break, resulting in poor connection reliability. Utility Model Content

[0004] In view of the above-mentioned prior art, in order to solve the problem that the operation of splicing lamps is cumbersome and prone to breakage of connecting pieces due to the need for precise alignment and insertion of the slots, this application provides a splicing multi-purpose lamp.

[0005] This application provides a modular multi-purpose lighting fixture, which adopts the following technical solution:

[0006] A modular multi-purpose lighting fixture includes a light panel, a light source is disposed within the light panel, and there are multiple light panels. Each of the multiple light panels is provided with a connector for quick connection with adjacent light panels. The connector is a magnet, and there are multiple magnets arranged along the length direction of the connection surface between two adjacent light panels.

[0007] By adopting the above technical solution, the magnetic attraction of magnets enables rapid connection between multiple light panels, eliminating the need for precise alignment and insertion into slots, thus simplifying the splicing process. Multiple magnets are positioned along the length of the connection surface, providing multi-point attraction during splicing, resulting in a more stable connection between adjacent light panels and avoiding loosening issues that may occur with single-point connections. Simultaneously, the magnetic connection method reduces wear caused by mechanical plugging and unplugging, extending the lifespan of the lighting fixtures and solving the problems of cumbersome operation and easy breakage of connecting pieces in existing technologies.

[0008] Preferably, the lamp panel is further provided with an electrical contact, which is disposed on the connection surface of two adjacent lamp panels.

[0009] By adopting the above technical solution, electrical contacts are provided on the connecting surface of the lamp panel. When adjacent lamp panels are connected together by the connector, the electrical contacts can realize the electrical connection between adjacent lamp panels, so that multiple lamp panels can be spliced ​​together to transfer power. There is no need to connect a power supply to each lamp panel separately, which simplifies the power supply method of the lamp and improves the convenience of use.

[0010] Preferably, the lamp panel is trapezoidal in shape, and the electrical contact and the magnet are both located on the inclined surface of the lamp panel. The electrical contact is a spring pin connector, which includes a spring probe and a base. When the lamp panels are spliced ​​together, the spring probe is connected to the base on the adjacent lamp panel.

[0011] By adopting the above technical solution, the trapezoidal light panel design allows for more diverse shapes when multiple light panels are spliced ​​together, meeting the decorative and lighting needs of different scenarios. Placing the electrical contacts and magnets on the inclined surface ensures that the connectors and electrical contacts function simultaneously during splicing. The spring-loaded connector design features good elasticity and conductivity. When light panels are spliced, the spring probe connects to the base of adjacent light panels, compensating for splicing errors within a certain range and ensuring the stability of the electrical connection. Simultaneously, the spring structure reduces mechanical wear during connection, extending the service life of the electrical contacts.

[0012] Preferably, the number of spring probes and the number of bases are equal; the connection surface between the base and the spring probe on the adjacent lamp board is concave, and the connection surface between the spring probe and the base on the adjacent lamp board is convex, with the concave surface of the base matching the convex surface of the spring probe.

[0013] By adopting the above technical solution, the equal number of spring probes and bases ensures the correspondence and reliability of the electrical connection. The matching design of the concave and convex surfaces guides the spring probes and bases to precisely align, improving the accuracy of electrical contact connection during splicing and avoiding poor contact problems caused by misalignment. At the same time, the mating of the concave and convex surfaces increases the contact area, further enhancing the stability and conductivity of the electrical connection.

[0014] Preferably, the lamp panel has a connection hole near its tip, and the inner wall of the connection hole is provided with an electrical contact point for electrical connection with an external power supply device. The electrical contact point is electrically connected to the lamp source in the lamp panel.

[0015] By adopting the above technical solution, the connection hole provides an interface for the connection between the lamp and the external power supply device. The electrical contact point is electrically connected to the lamp source, and when the external power supply device is connected, it can supply power to the lamp source inside the lamp panel. The connection hole is set near the tip, which is a reasonable design that makes it convenient for users to connect the power supply device, while avoiding interference with the power supply connection during the splicing process.

[0016] Preferably, both the spring probe and the base are electrically connected to the electrical contact point within the connection hole.

[0017] By adopting the above technical solution, both the spring probe and the base are electrically connected to the electrical contact point in the connection hole. This allows power to be transmitted to the spring probe and the base through the electrical contact point after the external power supply device is connected to the connection hole. Then, through the connection between the spring probe and the base between adjacent light panels, power is transmitted to other light panels, realizing the synchronous power supply of multiple splicing light panels, ensuring the normal operation of the light sources on all light panels, and improving the overall power supply efficiency and stability of the lighting fixture.

[0018] Preferably, a protrusion is provided on one side of the inclined surface of the lamp panel along the length direction, and a groove is provided on the side of the inclined surface of the lamp panel away from the protrusion along the length direction, and the protrusion matches the groove.

[0019] By adopting the above technical solution, the matching design of the protrusion and groove further enhances the connection stability between adjacent lamp panels. Based on the magnetic adsorption connection, the protrusion embedded in the groove can limit the relative sliding of the lamp panels in the splicing surface direction, preventing the spliced ​​lamp panels from shifting or separating due to external forces, making the overall structure of the lamp more stable and improving the reliability of the lamp during use.

[0020] In summary, this application includes at least one of the following beneficial technical effects:

[0021] 1. Utilizing the magnetic attraction of magnets, multiple light panels can be quickly connected without the need for precise alignment and insertion into slots, simplifying the splicing process. Multiple magnets positioned along the length of the connection surface provide multi-point attraction during splicing, making the connection between adjacent light panels more secure and avoiding loosening issues that may occur with single-point connections. Simultaneously, the magnetic connection method reduces wear caused by mechanical plugging and unplugging, extending the lifespan of the light fixtures and solving the problems of cumbersome operation and easy breakage of connecting pieces in existing technologies.

[0022] 2. An equal number of spring probes and bases ensure the correspondence and reliability of the electrical connection. The matching design of the concave and convex surfaces guides the spring probes and bases to precisely align, improving the accuracy of electrical contact connections during splicing and avoiding poor contact problems caused by misalignment; at the same time, the mating of the concave and convex surfaces increases the contact area, further enhancing the stability and conductivity of the electrical connection.

[0023] 3. Both the spring probe and the base are electrically connected to the electrical contact point inside the connection hole, so that after the external power supply device is connected to the connection hole, the power can be transmitted to the spring probe and the base through the electrical contact point. Then, through the connection between the spring probe and the base between adjacent light panels, the power is transmitted to other light panels, realizing the synchronous power supply of multiple splicing light panels, ensuring the normal operation of the light source on all light panels, and improving the overall power supply efficiency and stability of the lighting fixture. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of Example 1;

[0025] Figure 2 This is an exploded view of Example 1;

[0026] Figure 3 Example 1 is a schematic diagram of the structure of the display light panel;

[0027] Figure 4 This is a schematic diagram of the overall structure of Example 2.

[0028] Reference numerals: 1. Lamp board; 2. Connector; 21. Magnet; 22. Conductive rail; 221. Suspension rope; 2211. Mounting block; 3. Electrical contact; 31. Spring pin connector; 311. Spring probe; 312. Base; 4. Connecting hole; 5. Protrusion; 6. Groove. Detailed Implementation

[0029] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0030] This application discloses a modular multi-purpose lighting fixture.

[0031] Reference Figure 1 , Figure 2 and Figure 3 A modular multi-purpose lighting fixture includes a lamp panel 1 and connectors 2. There are multiple lamp panels 1, which are quickly spliced ​​together by connectors 2. The lamp panel 1 is trapezoidal, and the connectors 2 are located on two inclined surfaces of the lamp panel 1. Multiple lamp panels 1 are spliced ​​together into a rectangular shape by connectors 2 on the inclined surfaces.

[0032] Specifically, the connector 2 is a magnet 21, and there are four magnets 21. All four magnets 21 are set on the two inclined surfaces of the lamp panel 1 and are arranged along the length of the inclined surfaces of the lamp panel 1. When multiple lamp panels 1 are spliced ​​together, since each lamp panel 1 has two magnets 21 on its two inclined surfaces, the two magnets 21 on one lamp panel 1 and the corresponding two magnets 21 on the adjacent lamp panel 1 generate magnetic attraction due to their opposite poles, realizing multi-point synchronous adsorption and positioning, ensuring a stable splicing and tight joints.

[0033] Furthermore, electrical contacts 3 are provided on the inclined surfaces of both sides of the lamp panel 1, and the electrical contacts 3 are located between the two magnets 21 on the two inclined surfaces of the lamp panel 1. The electrical contacts 3 are spring pin connectors 31, which include spring probes 311 and bases 312; the base 312 is connected to the spring probes 311 on the adjacent lamp panel 1, and the spring probes 311 are connected to the bases 312 on the adjacent lamp panel 1. The connection surface between the base 312 and the spring probes 311 on the adjacent lamp panel 1 is concave, and the connection surface between the spring probes 311 and the bases 312 on the adjacent lamp panel 1 is convex, with the concave surface of the base 312 and the convex surface of the spring probes 311 matching.

[0034] A connection hole 4 is provided near the tip of the lamp panel 1. The inner wall of the connection hole 4 has electrical contact points for electrical connection to an external power supply device. Both the spring probe 311 and the base 312 are electrically connected to the electrical contact points in the connection hole 4. The lamp panel 1 is equipped with a light source, and the electrical contact points in the connection hole 4 are electrically connected to the light source. In use, first, the connector of the external power supply device is inserted into the connection hole 4 of any lamp panel 1, ensuring tight coupling between the electrodes of the plug and the electrical contact points on the inner wall of the connection hole 4. Then, the inclined surfaces of adjacent lamp panels 1 are brought close together and aligned. At this time, the magnet 21 automatically attracts and physically assembles the lamp panels 1. Simultaneously, the convex surface of the spring probe 311 precisely embeds into the concave surface of the base 312 of the adjacent lamp panel 1, forming an electrical path. Current flows from the external power supply device through the electrical contact points of the connection hole 4, sequentially through the spring pin connector 31, and cascades between the lamp panels 1, ultimately illuminating the light sources on all the assembled lamp panels 1, achieving synchronous power supply to all lamp panels 1.

[0035] Multiple trapezoidal lamp panels 1 are joined together by magnets 21 on their inclined surfaces, ultimately forming a complete rectangular lamp unit. After assembly, the pointed ends of the lamp panels 1 converge at the center, forming a through rectangular hole. This central rectangular hole provides versatility for fixing and application of the lamp, allowing it to be secured to various brackets such as table lamp stands, wall mounts, and floor lamp stands. For example, the support rod of a table lamp stand can pass through the rectangular hole in the center of the lamp. The top of the support rod is designed with a flange or snap-fit ​​structure, which is larger than the rectangular hole. When the support rod passes through the rectangular hole, the flange or snap-fit ​​will lock onto the upper surface of the lamp, while the base at the bottom of the support rod will be stably placed on the table. The weight of the lamp itself or a simple locking mechanism can securely fix the lamp to the support rod, forming a complete table lamp.

[0036] A protrusion 5 is provided on one side of the inclined surface of the light panel 1 along its length, and a groove 6 is provided on the side of the inclined surface of the light panel 1 away from the protrusion 5 along its length. The protrusion 5 and the groove 6 are matched. When adjacent light panels 1 are spliced ​​together, the protrusion 5 on the inclined surface of one light panel 1 will precisely embed into the groove 6 on the inclined surface of the adjacent light panel 1, and the two fit perfectly. The cooperation between the protrusion 5 and the groove 6, based on the attraction and fixation of the magnet 21, further restricts the relative sliding of the light panels 1 along the length of the inclined surface, so that the spliced ​​light panels 1 can maintain a stable relative position when subjected to external force pulling or vibration, which greatly improves the stability of the overall structure.

[0037] The implementation principle of this application embodiment is as follows: using a trapezoidal light panel 1 as the basic unit, and with the help of four magnets 21 (two on each inclined surface) on its inclined surface, the opposite poles attract to achieve multi-point automatic adsorption of adjacent light panels 1, completing rapid physical splicing. At the same time, the protrusions 5 and grooves 6 on the inclined surface are interlocked to further restrict the sliding of the light panel 1 to enhance the structural stability. The spring pin connector 31 located between the magnets 21 forms an electrical path at the same time as the physical splicing through the precise matching of the convex spring probe 311 and the concave base 312. When an external power supply device is connected to the connection hole 4 of any light panel 1, the current is cascaded and conducted between each light panel 1 through the electrical contact point in the connection hole 4 and the spring pin connector 31, finally realizing the synchronous power supply and lighting of all spliced ​​light panels 1. The whole process does not require complicated operation, which simplifies the splicing steps and ensures the stability and reliability of the connection through the cooperation of multiple structures, effectively solving the problems of cumbersome operation and easy damage to connection components in the prior art.

[0038] Example 2

[0039] The difference between Embodiment 2 and Embodiment 1 lies in the connector, as shown below. Figure 4The connector 2 is a conductive rail 22. Multiple light panels 1 are spaced apart on the same horizontal plane, and the connection holes 4 on the multiple light panels 1 correspond one-to-one. The conductive rail 22 passes through the connection holes 4 on the multiple light panels. Suspension ropes 221 are provided at both ends of the conductive rail 22 along its length. A mounting block 2211 is provided at the end of the suspension rope 221 closest to the conductive rail 22. The mounting block 2211 has a mounting hole, which is fitted onto the end of the conductive rail 22. The mounting block 2211 is made of rubber. The end of the suspension rope 221 furthest from the conductive rail 22 is fixedly connected to the wall. When in use, the conductive rail 22 is sequentially inserted into the connection holes 4 of multiple lamp panels 1, so that the conductive rail 22 directly contacts the electrical contact point in the connection hole of each lamp panel 1 and forms a stable electrical connection. Then, the whole assembly is suspended and fixed to the external wall or ceiling by the suspension ropes 221 at both ends of the conductive rail 22. After the external power supply device is connected to the conductive rail 22, the current is directly transmitted through the conductive rail 22 to the electrical contact point of each lamp panel 1, thereby lighting up the light source in each lamp panel 1. This method realizes independent power supply for each lamp panel through the conductive rail 22, which simplifies the alignment requirements during splicing and allows for flexible adjustment of the lamp panel spacing to create different lighting layers.

[0040] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A modular multi-purpose light fixture, characterized by, The device includes a lamp panel (1), which contains a light source. There are multiple lamp panels (1), and each of the multiple lamp panels (1) is provided with a connector (2) for quick connection with an adjacent lamp panel (1). The connector (2) is a magnet (21), and there are multiple magnets (21). The multiple magnets (21) are arranged along the length direction of the connecting surface of two adjacent lamp panels (1).

2. The modular multi-purpose lighting fixture according to claim 1, characterized in that, The lamp panel (1) is also provided with an electrical contact (3), which is provided on the connection surface of two adjacent lamp panels (1).

3. A modular multi-purpose lighting fixture according to claim 2, characterized in that, The lamp panel (1) is trapezoidal in shape. The electrical contact (3) and the magnet (21) are both located on the inclined surface of the lamp panel (1). The electrical contact (3) is a spring pin connector (31). The spring pin connector (31) includes a spring probe (311) and a base (312). When the lamp panels (1) are spliced ​​together, the spring probe (311) is connected to the base (312) on the adjacent lamp panel (1).

4. A modular multi-purpose lighting fixture according to claim 3, characterized in that, The number of spring probes (311) and bases (312) are equal; the connecting surface of the base (312) and the spring probe (311) on the adjacent lamp plate (1) is concave, and the connecting surface of the spring probe (311) and the base (312) on the adjacent lamp plate (1) is convex. The concave surface of the base (312) matches the convex surface of the spring probe (311).

5. A modular multi-purpose lighting fixture according to claim 4, characterized in that, The lamp plate (1) has a connection hole (4) near its tip. The inner wall of the connection hole (4) is provided with an electrical contact point for electrical connection with an external power supply device. The electrical contact point is electrically connected to the lamp source in the lamp plate (1).

6. A modular multi-purpose lighting fixture according to claim 5, characterized in that, Both the spring probe (311) and the base (312) are electrically connected to the electrical contact point in the connection hole (4).

7. A modular multi-purpose lighting fixture according to claim 3, characterized in that, The lamp plate (1) has a protrusion (5) on one side of its inclined surface along the length direction, and a groove (6) is provided on the side of its inclined surface away from the protrusion (5) along the length direction, and the protrusion (5) matches the groove (6).