Assembled lamp
By designing modular lighting fixtures and utilizing the detachable structure of the splicing and connecting parts, the problem of monotonous lighting fixture shapes is solved, enabling flexible and varied shapes and lighting effects, reducing transportation and packaging costs, and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGZHOU JIANYU ART CO LTD
- Filing Date
- 2025-07-30
- Publication Date
- 2026-05-26
AI Technical Summary
Existing lighting fixtures have traditional structural designs, lacking novelty and flexibility. They cannot be changed in shape according to needs, resulting in monotonous visual effects, large space occupation, and high transportation and packaging costs.
Design a modular lighting fixture that can be detachably connected via splicing parts and splicing connectors, allowing for free assembly and combination of the fixture. Combined with the flexible use of translucent materials and mounting bases, it can achieve various shapes and lighting effects.
It enables diversity in lamp shapes and lighting effects, reduces transportation and packaging costs, improves visual comfort and ease of use, and adapts to different spatial layout needs.
Smart Images

Figure CN224284440U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lighting fixtures, specifically to an assembled lighting fixture. Background Technology
[0002] As people's living standards and aesthetic standards continue to rise, lighting fixtures are no longer limited to providing ordinary illumination; they also need to offer a certain level of visual appeal. However, traditional lighting fixture designs lack innovation, featuring simple and fixed shapes that are inflexible and cannot be easily adapted to individual needs or preferences. This results in a monotonous and dull visual experience after prolonged use, causing eye strain. Furthermore, the fixed shapes of these fixtures occupy a large amount of space, making them inconvenient to transport and package, leading to high transportation and packaging costs. Utility Model Content
[0003] To address the technical problems existing in the prior art, the purpose of this utility model is to provide a modular lighting fixture that can be freely assembled or disassembled according to individual needs, and is a flexible and versatile branch-shaped modular lighting fixture.
[0004] The objective of this utility model is achieved through the following technical solution: a modular lighting fixture, comprising a lamp frame and a lamp body. The lamp frame includes at least two splicing components and at least one assembly connector. Adjacent splicing components are detachably connected to each other via the assembly connector. The assembly connector includes a body and an external component. The external component is disposed on the surface of the body to increase the friction between the splicing components and the connecting components. The lamp body is disposed on the splicing components and / or the assembly connector. The lamp frame can be freely assembled using the splicing components and the assembly connector, satisfying consumers' artistic and personalized needs for non-specific lamp shapes.
[0005] Furthermore, the surface of the splicing component is provided with at least one splicing surface, the splicing surface is provided with a groove, the grooves of the interconnected splicing components are interconnected, and the assembly connector connects the splicing components by connecting the grooves.
[0006] Specifically, the groove is a dovetail groove, the body of the assembly connector is a double dovetail block with two opposing inner folded surfaces, and the external component is disposed on the inner folded surface.
[0007] Preferably, the assembly connector has a cavity within its body, which houses the lamp body and a first power supply, the first power supply providing power to the lamp body. Preferably, the lamp body is a PCB board, and the first power supply is a wireless rechargeable power supply, comprising an electrically connected battery and a charging port.
[0008] Preferably, the lamp body is disposed on the splicing component, and the lamp body is provided with a conductive terminal group at the groove. The splicing connector is provided with another conductive terminal group on its corresponding connecting surface. The conductive terminal groups are interconnected, and the conductive terminal group of the splicing connector is connected to an external power source to supply power to the lamp body. Preferably, the splicing component is provided with a cavity for accommodating the lamp body wiring.
[0009] Furthermore, the lamp body is also disposed in the assembly connector, wherein the lamp body disposed in the assembly connector is a first lamp body, and the lamp body disposed in the assembly connector is a second lamp body; the body of the assembly connector is provided with a cavity, the cavity accommodating the second lamp body, and the second lamp body is externally powered through the conductive terminal group of the assembly connector.
[0010] Furthermore, it also includes a mounting bracket for mounting the lamp holder on a wall, a base, or suspending it from the ceiling. This versatility in mounting bracket design further meets consumers' personalized needs for using the lighting fixture in various scenarios.
[0011] Preferably, the mounting base is a clamping base, which connects to the lamp holder by clamping it. The clamping base can clamp onto the splicing component or the assembly connector. The clamping base is particularly suitable for mounting the assembled lamp of this invention onto a wall surface to form a wall lamp.
[0012] Preferably, the mounting base is connected to the assembly connector via fasteners to achieve connection with the lamp holder. The mounting base is fixedly installed on the top surface, such as the ceiling, and is secured to the assembly connector via load-bearing lines, such as metal wires. This securing method can be screws or rivets, which offer good load-bearing stability and are not easily loosened. The fastener connection method is particularly suitable for suspending the assembled lamp of this invention to form a chandelier. In this case, the corresponding assembly connector becomes the load-bearing component of the chandelier.
[0013] Preferably, the mounting base connects to the splicing component via the assembly connector, thereby connecting it to the lamp holder. The mounting base is provided with a corresponding mounting part, such as a groove, which matches and mates with the groove of the splicing component, allowing the two to be spliced together via the assembly connector. This demonstrates the flexibility of the assembly connector. The mounting base is placed on the seat surface, making the assembled lamp of this utility model a table lamp or a seat lamp.
[0014] Specifically, the splicing components are made of transparent or semi-transparent material.
[0015] Preferably, the splicing component is solid or hollow; when the splicing component is solid, the outer surface of the splicing component is provided with a textured surface; when the splicing component is hollow, the inner surface of the splicing component is provided with a textured surface and / or loaded with crystal particles to enhance the light refraction effect.
[0016] Compared with the prior art, the present invention has at least the following beneficial effects:
[0017] 1. This utility model allows for detachable insertion and combination of splicing parts and assembly connectors, enabling the style of this utility model to be arbitrarily changed, combined, or extended according to individual needs. This allows the utility model to be transformed into various shapes and sizes at any time, with flexible and varied styles, simple and reasonable structure, and is highly ornamental and user-friendly.
[0018] 2. During packaging and transportation, this utility model can be disassembled, making it convenient for transportation and packaging, and reducing packaging and transportation costs.
[0019] 3. The flexibility of this utility model is also reflected in the fact that the lamp body can be selectively set on the splicing connector or inside the splicing component. Combined with the translucent or semi-translucent materials used in the splicing component itself, the light produces a soft diffusion effect when passing through the splicing component, avoiding glare and improving visual comfort. Through flexible setting of parameters such as the surface texture and material selection of the splicing component body, different light effects can also be achieved, such as uniform diffusion, localized focusing, or pattern projection.
[0020] 4. This utility model offers flexible installation. By setting different types of mounting bases, the lamp holder structure can be flexibly used for various applications such as chandeliers, wall lamps, and table lamps, greatly improving its adaptability in spatial arrangement. Users can freely choose the installation method of the lamps according to the actual space layout and lighting needs. This not only broadens the adaptability of the lamps in different usage environments but also enhances the user experience of personalized matching and convenient modification. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the assembly structure of Example 1;
[0022] Figure 2 This is a structural schematic diagram of the assembly connector in Example 1;
[0023] Figure 3 This is a cross-sectional schematic diagram of the assembly connector in Example 1;
[0024] Figure 4 This is a schematic diagram of the assembly structure of Example 2;
[0025] Figure 5 This is a structural schematic diagram of the assembly connector in Example 2;
[0026] Figure 6 This is a schematic diagram of the LED strip distribution in one of the splicing components of Example 2;
[0027] Figure 7 This is a schematic diagram of the overall distribution of the light strips in Example 2;
[0028] Figure 8 This is a schematic diagram of the structure of Example 3;
[0029] Figure 9 This is a schematic diagram of the structure of Example 4;
[0030] Figure 10 This is a schematic diagram of the structure of Example 5.
[0031] In the picture:
[0032] 100 - Assembly connector; 10 - First power supply; 11 - Storage battery; 12 - Charging port; 13 - PCB light board; 14 - Gasket; 15 - First conductive terminal group; 16 - Dovetail protrusion;
[0033] 200 - Splicing component; 21 - LED strip; 22 - Groove; 23 - Second conductive terminal group;
[0034] 300 - Mounting base. Detailed Implementation
[0035] To facilitate understanding of this utility model, the technical solutions and advantages of the utility model will be further described in detail below with reference to the accompanying drawings and embodiments. Any mechanisms or methods not elaborated in this utility model can be referred to in the prior art. The specific structures and features of this utility model are illustrated below by way of example and should not constitute any limitation on this utility model. Furthermore, any technical feature mentioned below (including implicit or disclosed features), as well as any technical feature directly shown or implied in the figures, can be arbitrarily combined or deleted among these technical features to form more other embodiments that may not be directly or indirectly mentioned in this utility model. The accompanying drawings show preferred embodiments of this utility model. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.
[0036] The present invention relates to an assembled lighting fixture, comprising a lamp frame and a lamp body. The lamp frame includes at least two splicing parts and at least one assembly connector. Adjacent splicing parts are detachably connected to each other through the assembly connector. The lamp body is disposed on the splicing parts and / or the assembly connector.
[0037] Example 1
[0038] like Figure 1-3As shown, the assembled lighting fixture of this embodiment 1 includes a lamp frame and a lamp body. The lamp frame includes three splicing parts 200 and two assembly connectors 100. Adjacent splicing parts 200 are detachably connected to each other through the assembly connectors 100. The lamp body is set on the assembly connectors 100 and is a PCB lamp board 13.
[0039] Specifically, the assembly connector 100 includes a body, a first power supply 10, a PCB light board 13, and external components. The body is a hollow double-dovetail block with two opposing inward folded surfaces. The body serves as the main structure of the assembly connector 100, directly contacting and essentially matching the shape of the splicing component 200. The two splicing components 200 are respectively provided with dovetail grooves on their splicing surfaces, while the body, being a double-dovetail structure, has four dovetail protrusions 16. When the two splicing components 200 are joined together, the two dovetail grooves are joined together. In this embodiment, the assembly connector 100 is simultaneously inserted into the dovetail grooves of the two splicing components 200 in a direction perpendicular to the cross-section of the double-dovetail shape to achieve the connection of the two splicing components 200. Thus, the outer contour of the body can be defined as including: two opposing surfaces in the direction of insertion into the splicing component 200, which are double-dovetail shaped; two opposing surfaces in contact with the two interconnected splicing components 200, which are inward folded surfaces; and two opposing surfaces that only contact any one of the splicing components 200.
[0040] The first power source 10 is a wireless power storage power source, which includes an electrically connected battery 11 and a charging port 12. The battery 11 is housed in the inner cavity of the main body, and the charging port 12 is embedded in the main body and connected to the outside.
[0041] The PCB lamp board 13 is housed within the inner cavity of the main body and is electrically connected to the first power supply 10, which supplies power to the PCB lamp board 13. Generally, a toggle switch for turning the lamp board on or off can also be provided on the assembly connector. The setting and working principle of the toggle switch can refer to the prior art.
[0042] An external component is used to increase the friction between the splicing connector and the splicing component. In this embodiment, preferably, the external component is a gasket 14, which is embedded in the inner folded surface of the main body. Each splicing connector 100 has at least four gaskets, corresponding to two inner folded surfaces. The gaskets 14 protrude outward and are preferably made of rubber. Through the elastic support of the gaskets 14, the splicing connector 100 and the splicing component 200 can be installed more firmly and are less likely to loosen.
[0043] In this embodiment 1, the PCB light board 13 is a common lighting module structure in the art, typically including a printed circuit board, light-emitting diodes (LEDs), and power input terminals, and is widely used in decorative lighting and modular lamps. The wireless power supply is also a conventional structure in the art, often using rechargeable lithium batteries or polymer batteries as energy storage elements, and is charged via USB or magnetic charging port 12, featuring the characteristics of no external wiring required and easy assembly and replacement.
[0044] The splicing component 200 is solid and transparent or semi-transparent, and conducts light from the PCB light board 13. It includes a main trunk and at least one branch, forming a tree-like structure. The surface of the splicing component 200 has at least one splicing surface 210, and each splicing surface has a groove 22. The grooves 22 of the interconnected splicing components 200 correspond to each other and are interconnected. The splicing connector 100 connects adjacent splicing components 200 by connecting the grooves 22. Preferably, in this embodiment, the groove 22 is a dovetail groove, and the groove 22 is located at each end of the splicing component 200.
[0045] In Embodiment 1, the light strip 21 can be a continuously emitting light strip, which can be configured such that the LED light-emitting units inside the light strip are densely arranged with a small spacing to form a continuous linear light-emitting effect.
[0046] In other embodiments, the light strip can also be an intermittently emitting light strip, which can be configured such that the LEDs inside the light strip are distributed at a certain interval and connected to each other by wires; all of the above are mature conventional technologies in the field, and can be implemented as long as they meet the beneficial effects of this utility model, and will not be elaborated here.
[0047] In this embodiment 1, the PCB lamp board 13 is powered by the first power supply 10, and the adjacent splicing parts 200 are connected to each other through the splicing connector 100. The lamp holder can be freely spliced by the splicing parts 200 and the splicing connector 100, which satisfies consumers' artistic and personalized needs for the non-specific shape of the lamp.
[0048] In Embodiment 1 above, the splicing component 200 is in the shape of a tree branch. In other embodiments, the splicing component can be in the shape of a block, a sphere, etc., to meet the aesthetic needs of different consumers.
[0049] In Embodiment 1 above, the splicing component 200 is solid and has a smooth, textureless outer surface. In other embodiments, the splicing component 200 is solid, but its outer surface has a textured surface to enhance light refraction. Alternatively, in other embodiments, the splicing component 200 is hollow, which can also alter the transmission of light. Furthermore, the inner surface of the hollow splicing component 200 may have a textured surface and / or be loaded with crystal particles to enhance light refraction.
[0050] In Embodiment 1 above, the groove 22 is disposed at the end of the splicing component 200. In other embodiments, the splicing surface can be disposed at any location on the outer surface of the splicing component, and thus the groove 22 can be disposed at any location on the outer surface of the splicing component 200 to achieve a personalized connection method.
[0051] Example 2
[0052] like Figure 4-7 As shown, the assembled lamp in this embodiment 2 is similar in structure to that in embodiment 1, except that the lamp body in embodiment 2 is not set in the assembly connector 100 but in the splicing connector 200, and the lamp body is a light strip 21.
[0053] Specifically, the assembly connector 100 includes a body, a gasket 14, and a first conductive terminal group 15. The body is a double dovetail block with two opposing inward folded surfaces. The body serves as the main structure of the assembly connector 100, directly contacting and essentially matching the shape of the splicing component 200. The two splicing components 200 are respectively provided with dovetail grooves on their splicing surfaces, while the body has a double dovetail structure. When the two splicing components 200 are mated together, the two dovetail grooves mate. In this embodiment, the assembly connector 100 is simultaneously inserted into the dovetail grooves of the two splicing components 200 in a direction perpendicular to the cross-section of the double dovetail shape to achieve the connection of the two splicing components 200. Thus, the outer contour of the body can be defined as including: two opposing surfaces in the direction of insertion into the splicing component 200, which are double dovetail shapes; two opposing surfaces in contact with the two interconnected splicing components 200, which are inward folded surfaces; and two opposing surfaces that only contact any one of the splicing components 200.
[0054] The gasket 14 and the first conductive terminal group 15 are embedded in the inner folded surface of the main body. There are four gaskets 14, corresponding to two inner folded surfaces. The gaskets 14 protrude outwards and are preferably made of rubber. The elastic support of the gaskets 14 ensures a more secure installation between the assembly connector 100 and the assembly piece 200, preventing them from easily loosening. The first conductive terminal group 15 is connected to an external power source.
[0055] The splicing component 200 is a hollow, transparent or semi-transparent tubular shape, with the light strip 21 housed within it. The splicing component 200 includes a main trunk and at least one branch, forming a tree-like structure, and the main trunk and branches are interconnected. The surface of the splicing component 200 has at least one splicing surface 210, and each splicing surface has a groove 22. The grooves 22 of the interconnected splicing components 200 correspond to and are interconnected. The splicing connector 100 connects adjacent splicing components 200 by connecting the grooves 22. Preferably, in this embodiment, the groove 22 is a dovetail groove, and the groove 22 is located at each end of the splicing component 200.
[0056] The light strip 21 is installed inside the splicing component 200 and extends to the groove 22. The light strip 21 has a second conductive terminal group 23 at the groove 22. The second conductive terminal group 23 is connected to the first conductive terminal group and is powered by an external power supply.
[0057] In this embodiment 2, the light strip 21 inside the splicing piece 200 emits light, and the adjacent splicing pieces 200 are connected to each other through the splicing connector 100. The lamp holder can be freely spliced by the splicing piece 200 and the splicing connector 100, which satisfies consumers' artistic and personalized needs for the non-specific shape of the lamp.
[0058] In embodiment 2 above, only the LED strip 21 within the splicing component 200 emits light. In other embodiments, both the splicing component 200 and the assembly connector 100 are equipped with lamp bodies; specifically, the lamp body of the splicing component 200 is a first lamp body, and the lamp body of the assembly connector 100 is a second lamp body. Preferably, the lamp body of the splicing component 200 is an LED strip, and the second lamp body within the assembly connector is a PCB lamp board. The LED strip is connected to an external power supply via a conductive terminal group, while the PCB lamp board is also connected to an external power supply via a conductive terminal group.
[0059] Example 3
[0060] like Figure 8 As shown, the assembled lighting fixture in this embodiment 3 is basically the same as that in embodiment 1, except that the assembled lighting fixture in embodiment 3 also includes a mounting base 300.
[0061] When the assembled light fixture of Embodiment 3 is used as a wall lamp and installed on a wall, the mounting base 300 is a clamping base, which is detachably installed on the wall and detachably clamps the lamp holder. Furthermore, the mounting base 300 and the assembly connector 100 are fixedly connected using fasteners. The clamping base can clamp onto the assembly member 200 or the assembly connector 100. This embodiment is particularly suitable for wall lamps installed on a wall.
[0062] Example 4
[0063] like Figure 9 As shown, the assembled lighting fixture in this embodiment 4 is basically the same as that in embodiment 1, except that the assembled lighting fixture in embodiment 3 also includes a mounting base 300.
[0064] When the assembled light fixture of Example 4 is used as a chandelier and fixed to a ceiling via the mounting base 300, the mounting base 300 and the assembly connector 100 are connected by fasteners or other fixing methods, including but not limited to fixing the mounting base 300 and the assembly connector 100 via load-bearing lines such as stainless steel strips or steel wires. These fixing methods can be screws or rivets, which have good load-bearing stability and are not easy to loosen.
[0065] At this point, the corresponding assembly connector 100 becomes the load-bearing component of the chandelier. The assembly connector 100 serving as a load-bearing component of the chandelier refers to its role as the connection point for the load-bearing line. For example, fixing caps can be provided on both ends of the assembly connector 100. These fixing caps further reinforce the connection between the assembly connector 100 and the splicing component 200, and also serve as the load-bearing points for connection to the load-bearing line.
[0066] Example 5
[0067] like Figure 10 As shown, the assembled lighting fixture in this embodiment 5 is basically the same as that in embodiment 1, except that the assembled lighting fixture in embodiment 3 also includes a mounting base 300.
[0068] When the assembled lamp of Embodiment 5 is used as a table lamp and installed on a flat surface such as a desktop, cabinet, or floor, the mounting base 300 and the splicing component 200 are assembled and fixed together by the splicing connector 100. The mounting base 300 is used to support the lamp holder. The mounting base 300 is provided with a mounting part, such as a groove, which matches and mates with the groove of the splicing component. The splicing of the two is achieved by the splicing connector, which demonstrates the flexibility of the splicing connector. The mounting base is placed on the seat surface, making the assembled lamp of this utility model a table lamp or a seat lamp.
[0069] Those skilled in the art will recognize that the assembled lighting fixtures of Embodiment 2 are also applicable to the installation of the aforementioned wall lamps, pendant lamps, and table lamps.
[0070] Compared with existing technologies, the modular lighting fixture of this utility model can be detachably plugged in and combined with splicing parts and splicing connectors, so that the style of the modular lighting fixture can be arbitrarily changed and combined or extended according to personalized needs. This allows the modular lighting fixture to be transformed into various shapes and sizes at any time, with flexible and varied styles, simple and reasonable structure, and high aesthetic appeal and user-friendliness. Moreover, during packaging and transportation, the modular lighting fixture can be disassembled, making it convenient for transportation and packaging, and reducing packaging and transportation costs.
[0071] The above embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of protection of the present utility model. For those skilled in the art, it will be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. A modular lighting fixture, characterized in that, The lamp includes a lamp holder and a lamp body. The lamp holder includes at least two splicing parts and at least one assembly connector. Adjacent splicing parts are detachably connected to each other through the assembly connector. The assembly connector includes a body and an external component. The external component is disposed on the surface of the body to increase the friction between the assembly connector and the splicing parts. The lamp body is disposed on the splicing parts and / or the assembly connector.
2. The assembled lighting fixture as described in claim 1, characterized in that, The surface of the splicing component is provided with at least one splicing surface, and the splicing surface is provided with a groove. The grooves of the splicing components that are connected to each other are interconnected. The splicing connector connects the splicing components by connecting the grooves.
3. The assembled lighting fixture as described in claim 2, characterized in that, The groove is a dovetail groove, and the body of the assembly connector is a double dovetail block with two opposing inner folded surfaces. The external component is disposed on the inner folded surface.
4. The assembled lighting fixture as described in any one of claims 1-3, characterized in that, The assembly connector has a cavity inside its body, which houses the lamp body and a first power supply, the first power supply providing power to the lamp body.
5. The assembled lighting fixture as described in claim 2 or 3, characterized in that, The lamp body is disposed on the splicing component. The lamp body is provided with a conductive terminal group at the groove. The splicing connector is provided with another conductive terminal group on its corresponding connecting surface. The conductive terminal groups are connected to each other. The conductive terminal group of the splicing connector is connected to an external power source to supply power to the lamp body.
6. The assembled lighting fixture as described in claim 5, characterized in that, The lamp body is also disposed on the assembly connector, wherein the lamp body disposed on the assembly connector is a first lamp body and the lamp body disposed on the assembly connector is a second lamp body; the body of the assembly connector is provided with a cavity, the cavity accommodating the second lamp body, and the second lamp body is externally powered through the conductive terminal group of the assembly connector.
7. The assembled lighting fixture as described in claim 1, characterized in that, It also includes a mounting base for mounting the lamp holder on a wall, a seat, or suspending it from the ceiling.
8. The assembled lighting fixture as described in claim 7, characterized in that, The mounting base is a clamping base, which connects to the lamp holder by clamping it; or, the mounting base connects to the assembly connector via fasteners to achieve the connection to the lamp holder; or, the mounting base connects to the splicing component via the assembly connector to achieve the connection to the lamp holder.
9. The assembled lighting fixture as described in claim 1, characterized in that, The splicing components are made of transparent or semi-transparent material.
10. The assembled lighting fixture as described in claim 9, characterized in that, The splicing component can be solid or hollow; when the splicing component is solid, its outer surface has a textured surface; when the splicing component is hollow, its inner surface has a textured surface and / or is loaded with crystal particles.