Photoelectric separation batten lamp capable of being rapidly installed

Photoelectric separation is achieved through quick-release snap-fit ​​components and plug components, which solves the problems of low production and assembly efficiency and inconvenient maintenance of strip lights, thereby improving assembly efficiency and reducing maintenance costs.

CN224261552UActive Publication Date: 2026-05-19TOP LIGHTING (HUIZHOU) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TOP LIGHTING (HUIZHOU) CO LTD
Filing Date
2025-09-30
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

The existing design of the photoelectric components of the strip lights is integrated with the lamp body housing, resulting in low production and assembly efficiency, inconvenient maintenance, and high maintenance costs.

Method used

Photoelectric separation is achieved by using quick-release snap-fit ​​components and plug components. The light-emitting module is detachably connected to the bottom shell, and the electrical module is set independently. Quick assembly and disassembly are achieved through snap-fit ​​connection.

Benefits of technology

It simplifies the production process, improves assembly efficiency, reduces maintenance costs, and facilitates the replacement and debugging of optoelectronic components.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a photoelectric separation batten lamp capable of being rapidly installed. The photoelectric separation batten lamp capable of being rapidly installed comprises a bottom shell, a light-emitting module, an electrical module, a plurality of rapid buckle assemblies and two plug assemblies. The bottom shell comprises a bottom wall and two side walls, the side walls are provided with buckle notches and the abutting flanges, and the buckle notches of the two side walls directly face each other one by one; the light-emitting module comprises a PC extrusion cover, a PCB-LED board and an optical component, the PC extrusion cover is provided with a mounting groove and a clamping sliding groove, and the PCB-LED board and the optical component are arranged at the corresponding positions respectively; the electrical module is arranged on the bottom wall and is electrically connected with the PCB-LED board; the quick buckle assembly is inserted and right opposite to the buckle notch, and the clamping sliding groove is connected with the quick buckle assembly in a sliding and clamping mode. The plug assembly comprises an upper plug and a lower plug, the upper plug covers the PC extrusion cover end, the lower plug covers the bottom shell and abuts against the flange, and the upper plug is inserted into the lower plug. Photoelectric separation is achieved, production and assembly are simplified, efficiency is improved, later maintenance is facilitated, and cost is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of LED lighting technology, specifically, to a quick-installation photoelectric separation strip light. Background Technology

[0002] In indoor lighting scenarios, strip lights are widely used in spaces such as corridors, kitchens, office areas, and supermarket shelves due to their narrow and elongated lamp body structure and uniform linear illumination effect. They are mainly used to provide basic lighting and ambient lighting. Stable light emission is achieved through the synergistic effect of the lamp body shell and photoelectric components. The ease of assembly of the lamp body shell and the connection method between the photoelectric components and the lamp body shell directly affect the production assembly efficiency, the convenience of later maintenance, and the flexibility of debugging.

[0003] However, most conventional strip lights on the market currently adopt an integrated design structure for the photoelectric components and the lamp housing. This design requires the photoelectric components and the lamp housing to be assembled simultaneously during the production process, which not only increases the complexity of the production process and leads to low assembly efficiency, making it difficult to meet the needs of mass production, but also brings many inconveniences to later use. For example, when the photoelectric components malfunction and need to be replaced or maintained, since the two are inseparable from the lamp housing, the operator must remove the entire strip light from its installation position and then disassemble and repair it as a whole. This not only consumes a lot of time and manpower, but also damages the lamp housing or installation structure during the disassembly process, greatly increasing maintenance and debugging costs. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides a quick-installation photoelectric detachable strip light to solve the problems of non-detachable photoelectric components and inconvenience in subsequent replacement, maintenance, and debugging.

[0005] This utility model discloses a quick-installation photoelectric split strip light, comprising: a base shell, a light-emitting module, an electrical module, multiple quick-release buckle assemblies, and two end cap assemblies; the base shell includes a bottom wall and two side walls, the side walls being fixed to the same surface of the bottom wall, each side wall having multiple buckle slots spaced apart, and each side wall having an inwardly extending abutment flange at its top along its length, wherein the buckle slots on one side wall are directly opposite to the buckle slots on the other side wall; the light-emitting module includes a PC extrusion cover, a PCB-LED board, and optical components, the interior of the PC extrusion cover having an installation groove along its length, for installation... The bottom of the mounting slot is provided with a snap-fit ​​groove along its length. The PCB-LED board is placed in the mounting slot. The optical component is placed at one end of the PC extrusion cover and is electrically connected to the PCB-LED board. The electrical module is placed on the bottom wall and is electrically connected to the PCB-LED board. At least two quick-release buckle assemblies are respectively inserted into the corresponding buckle slots on the two side walls. The snap-fit ​​groove and the at least two quick-release buckle assemblies are slidably snap-fitted together. Each plug assembly includes an upper plug and a lower plug. The upper plug is placed at one end of the PC extrusion cover, and the lower plug is placed on the bottom shell and abuts against the abutment flange. The upper plug is inserted into the lower plug.

[0006] According to one embodiment of the present invention, each quick-release buckle assembly includes a first buckle, a second buckle, and a spring; the first buckle and the second buckle are slidably connected to the snap-fit ​​groove, and the first buckle and the second buckle are respectively inserted into buckle slots provided opposite to each other on both side walls. One side of the first buckle is provided with a slot, and the side of the second buckle opposite to the slot is provided with an insert strip that mates with the slot. The other side of the first buckle is provided with an insert strip, and the other side of the second buckle is provided with a slot that mates with the insert strip. The length of the insert strip is less than the depth of the slot. The insert strip is slidably inserted into the slot, and the spring is located between the first buckle and the second buckle.

[0007] According to one embodiment of the present invention, the first fastener has a protruding post, the second fastener has a post hole, at least part of the protruding post is inserted into the post hole, and a spring is sleeved on the outer wall of the protruding post and the post hole; one end of the spring abuts against the first fastener and the other end abuts against the second fastener.

[0008] According to one embodiment of the present invention, both the first and second fasteners are provided with a pressing part adapted to the fastener groove on the side near the side wall, and the pressing part is provided in the fastener groove.

[0009] According to one embodiment of the present invention, the top of the first buckle and the second buckle are further provided with guide slots, and the snap-fit ​​groove of the PC extrusion cover is slidably snapped into the guide slots.

[0010] According to one embodiment of the present invention, the upper plug is provided with an insertion flange on the side facing the PC extrusion cover, and one end of the PC extrusion cover is provided with an end groove that mates with the insertion flange, and the insertion flange is inserted into the end groove.

[0011] According to one embodiment of the present invention, the two sides of the insertion flange are also provided with insertion buckles, and the two sides of the end groove are also provided with end slots adapted to the insertion buckles. When the upper plug is placed on one end of the PC extrusion cover, the insertion buckle is engaged in the end slot.

[0012] According to one embodiment of the present invention, the optical component includes an optical lens, a lens mounting component, and an optical sensor; the lens mounting component is sleeved on the optical sensor, and the optical lens is embedded in the lens mounting component; a notch is also provided on one end of the PC extrusion cover, and a slot is also provided on the top of the upper plug at the same end; the optical sensor passes through the end groove; when the upper plug is placed on one end of the PC extrusion cover, one end of the optical sensor is electrically connected to the same end of the PCB-LED board, and the other end passes through the notch and is placed in the slot.

[0013] According to one embodiment of the present invention, the lower plug has two limiting grooves on the side facing the abutting flange, and two fixing grooves at the bottom of the lower plug, each fixing groove being located below a corresponding limiting groove; the bottom of the lower plug also has a positioning protrusion; one end of the bottom wall also has a positioning hole adapted to the positioning protrusion; when the lower plug is placed on the bottom shell, the two limiting grooves abut against the abutting flanges at the top of the two side walls respectively, each side wall is engaged in the fixing groove, and the positioning protrusion is engaged in the positioning hole.

[0014] According to one embodiment of the present invention, the lower plug is provided with an insertion protrusion near the top, and the outer side wall of the upper plug is provided with a slot adapted to the insertion protrusion. The slot is inserted into the insertion protrusion to fix the upper plug and the lower plug.

[0015] The beneficial effects of this application are as follows: The photoelectric separation strip lamp of this application uses the bottom shell as the basic load-bearing structure, and provides a detachable installation base for the light-emitting module through the cooperation between the snap-fit ​​slots on both side walls and the quick-release snap-fit ​​assembly; the PC extrusion cover of the light-emitting module is slidably snapped into place by the snap-fit ​​groove and the quick-release snap-fit ​​assembly, allowing the light-emitting module to be quickly disassembled and assembled independently of the bottom shell, while the electrical module is separately located on the bottom wall of the bottom shell, forming a modular structure of photoelectric separation. During production, the light-emitting module and the electrical module can be pre-assembled independently, and then the overall assembly is completed by the snap-fit ​​connection between the snap-fit ​​slots and the quick-release snap-fit ​​assembly, which greatly simplifies the production process, improves assembly efficiency, and is more suitable for mass production needs. The upper and lower plugs of the two plug assemblies respectively cover the PC extrusion cover and the bottom shell, ensuring the integrity of the overall structure without affecting the independent disassembly and assembly of each module. When maintenance or replacement of the photoelectric components is required, it is not necessary to disassemble the entire strip light from its installation position. Simply separate the two end caps and slide off the light-emitting module, or directly operate the electrical module inside the bottom housing. This avoids damage to the casing or mounting structure caused by the complete disassembly in traditional integrated designs, significantly reducing maintenance time and labor costs, and lowering the difficulty of debugging. Compared to traditional integrated strip lights, this structural design offers significant improvements in production efficiency and maintenance convenience, thus facilitating subsequent replacement, maintenance, and debugging. Attached Figure Description

[0016] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:

[0017] Figure 1 This is a three-dimensional structural diagram of the photoelectric separation strip light that can be installed quickly in the embodiment;

[0018] Figure 2 This is a cross-sectional schematic diagram of the quick-installation photoelectric separation strip light in the embodiment;

[0019] Figure 3 This is a three-dimensional structural diagram illustrating the fit between the bottom shell and the electrical module in the embodiment.

[0020] Figure 4 This is a three-dimensional structural diagram of the light-emitting module in the embodiment;

[0021] Figure 5 This is a three-dimensional structural diagram of the quick-release buckle assembly in the embodiment;

[0022] Figure 6 This is a three-dimensional structural diagram of the plug assembly in the embodiment;

[0023] Figure 7 This is a side view of the upper plug in the embodiment.

[0024] Explanation of reference numerals in the attached figures

[0025] 1. Bottom shell; 11. Bottom wall; 111. Positioning hole; 12. Side wall; 121. Snap-fit ​​groove; 122. Abutment flange;

[0026] 2. Light-emitting module; 21. PC extrusion cover; 211. Mounting groove; 212. Snap-fit ​​groove; 213. End groove; 214. End bayonet; 215. Notch; 22. PCB-LED board; 23. Optical components; 231. Optical lens; 232. Lens mounting component; 233. Optical sensor;

[0027] 3. Electrical modules; 30. Terminal blocks;

[0028] 4. Quick-release buckle assembly; 401. Buckle slot; 402. Connecting strip; 403. Pressing part; 404. Guide bayonet; 41. First buckle component; 411. Protruding post; 42. Second buckle component; 421. Post hole; 43. Spring;

[0029] 5. Plug assembly; 51. Upper plug; 511. Insertion flange; 512. Plug-in buckle; 513. Groove; 514. Slot; 52. Lower plug; 521. Limiting groove; 522. Fixing slot; 523. Positioning protrusion; 524. Insertion protrusion. Detailed Implementation

[0030] The following drawings will disclose several embodiments of this utility model. For clarity, many practical details will be described in the following description. However, it should be understood that these practical details should not be used to limit this utility model. That is, in some embodiments of this utility model, these practical details are not essential. In addition, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner.

[0031] It should be noted that all directional indicators in this utility model embodiment, such as up, down, left, right, front, back, etc., are only used to explain the relative positional relationship and movement of the components in a specific posture as shown in the attached figure. If the specific posture changes, the directional indicator will also change accordingly.

[0032] Furthermore, in this utility model, the use of terms such as "first" and "second" is for descriptive purposes only and does not specifically refer to any order or sequence, nor is it intended to limit the utility model. They are merely used to distinguish items or operations described with the same technical terminology and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, such a combination should be considered non-existent and not within the scope of protection claimed by this utility model.

[0033] To further understand the utility model's content, features, and effects, the following embodiments are provided, along with detailed descriptions in conjunction with the accompanying drawings:

[0034] like Figure 1-3 As shown, Figure 1 This is a three-dimensional structural diagram of the photoelectric separation strip light that can be installed quickly in the embodiment; Figure 2 This is a cross-sectional schematic diagram of the quick-installation photoelectric separation strip light in the embodiment; Figure 3 This is a three-dimensional structural diagram illustrating the cooperation between the base shell and the electrical module in this embodiment. This embodiment provides a quick-installation photoelectric split strip light, which includes: a base shell 1, a light-emitting module 2, an electrical module 3, multiple quick-release clip assemblies 4, and two end cap assemblies 5. The base shell 1 serves as the overall supporting foundation. The electrical module 3 and the multiple quick-release clip assemblies 4 are all mounted on the base shell 1. The quick-release clip assemblies 4 connect the base shell 1 and the light-emitting module 2, allowing the light-emitting module 2 to be detachably mounted on the base shell 1. After the light-emitting module 2 is connected to the base shell 1, the two end cap assemblies 5 are respectively located at both ends of the base shell 1 to seal both ends of the base shell 1 and the light-emitting module 2.

[0035] The bottom shell 1 includes a bottom wall 11 and two side walls 12. The two side walls 12 are fixed to the same surface of the bottom wall 11, so that the entire bottom shell 1 forms an installation structure with openings at both ends and the top, and an internal air gap. Each side wall 12 is provided with a plurality of snap-fit ​​slots 121 spaced apart. The top of each side wall 12 is provided with an abutment flange 122 extending inward along its length direction, wherein the snap-fit ​​slots 121 on one side wall 12 are directly opposite to the snap-fit ​​slots 121 on the other side wall 12.

[0036] The two side walls 12 have corresponding snap-fit ​​slots 121 that provide installation positions for the quick-release snap-fit ​​assembly 4. Each side wall 12 has an inwardly extending abutting flange 122 at its top, which is used to cooperate with the end cap assembly 5 to achieve end fixation. Through the modular separation design of the bottom shell 1, the light-emitting module 2 and the electrical module 3, quick disassembly and assembly can be achieved by combining the quick-release snap-fit ​​assembly 4 and the end cap assembly 5. This can solve the problems of complex production and assembly and inconvenient maintenance caused by the traditional integrated light and electrical design of the slatted lamp.

[0037] Please refer to the following: Figure 4 As shown, Figure 4 This is a three-dimensional structural diagram of the light-emitting module in the embodiment. The light-emitting module 2 includes a PC extrusion cover 21, a PCB-LED board 22, and an optical component 23. The PC extrusion cover 21 has a mounting groove 211 along its length inside, and a snap-fit ​​sliding groove 212 along its length is provided at the bottom of the mounting groove 211. The PCB-LED board 22 is disposed in the mounting groove 211, and the optical component 23 is disposed at one end of the PC extrusion cover 21 and is electrically connected to the PCB-LED board 22.

[0038] The PC extrusion cover 21 is made of high-transmittance PC material through an extrusion process. It has a through mounting groove 211 along its length. The bottom of the mounting groove 211 has an inwardly recessed snap-fit ​​groove 212 along its length. The PCB-LED board 22 is installed in the mounting groove 211 by means of thermally conductive adhesive or screws. The light-emitting surface of the PCB-LED board 22 faces the light-transmitting direction of the PC extrusion cover 21. Meanwhile, the optical component 23 is located at one end of the PC extrusion cover 21, and the optical component 23 can be electrically connected to the PCB-LED board 22 through wires.

[0039] For further details, please review. Figure 3 The electrical module 3 is mounted on the bottom wall 11 and is electrically connected to the PCB-LED board 22. The electrical module 3 is fixedly installed on the bottom wall 11 of the base shell 1. It can be connected to the bottom wall 11 by screws or clips. Its position is between the two side walls 12, and the output end of the electrical module 3 has a pre-installed terminal block 30 for electrical connection with the light-emitting module 2.

[0040] Please refer to the following: Figure 5 As shown, Figure 5This is a three-dimensional structural diagram of the quick-release buckle assembly in the embodiment. At least two quick-release buckle assemblies 4 are respectively inserted into the corresponding buckle slots 121 on the two side walls 12; the snap-fit ​​groove 212 is slidably snapped into the at least two quick-release buckle assemblies 4. The light-emitting module 2 is slidably snapped into the at least two quick-release buckle assemblies 4 via the snap-fit ​​groove 212 at the bottom of the PC extrusion cover 21, thus enabling a detachable connection between the light-emitting module 2 and the bottom shell 1. After the light-emitting module 2 and the bottom shell 1 are assembled, the PCB-LED board 22 is connected to the wiring terminals of the electrical module 3 to achieve an electrical connection between the two.

[0041] For further details, please review. Figure 1 Each plug assembly 5 includes an upper plug 51 and a lower plug 52. The upper plug 51 covers one end of the PC extrusion cover 21, and the lower plug 52 covers the bottom shell 1 and abuts against the abutment flange 122. The upper plug 51 is inserted into the lower plug 52. The upper plug 51 covers one end of the PC extrusion cover 21 to close the end opening of the PC extrusion cover 21. The lower plug 52 covers one end of the bottom shell 1, and the top of the lower plug 52 abuts against the abutment flange 122 of the side wall 12 of the bottom shell 1, which can fix the lower plug 52 to the bottom shell 1. At the same time, the end of the upper plug 51 away from the PC extrusion cover 21 is inserted into the lower plug 52, so that the upper plug 51 and the lower plug 52 are connected, thereby further fixing the end of the light-emitting module 2 to the bottom shell 1.

[0042] For further details, please review. Figure 5 Each quick-release buckle assembly 4 includes a first buckle 41, a second buckle 42, and a spring 43; the first buckle 41 and the second buckle 42 are slidably connected to the snap-fit ​​groove 212; and the first buckle 41 and the second buckle 42 are respectively inserted into the buckle slots 121 that are directly opposite each other on the two side walls 12, and the first buckle 41 and the second buckle 42 are arranged opposite each other; the side of the first buckle 41 facing the second buckle 42 is provided with a slot 401 extending vertically, and the second buckle 42 is connected to the slot 401. On one side opposite to the first buckle 41, there is a connecting strip 402 that matches the shape of the slot 401; at the same time, on the other side of the first buckle 41 away from the second buckle 42, there is a connecting strip 402, and on the other side of the second buckle 42 away from the first buckle 41, there is a slot 401 that matches the connecting strip 402; the connecting strip 402 can be slidably inserted into the corresponding slot 401, and the length of the connecting strip 402 is less than the depth of the slot 401; a spring 43 is disposed between the first buckle 41 and the second buckle 42. When the spring 43 is in its natural state, it can push the first buckle 41 and the second buckle 42 to both sides, so that they are respectively partially locked in the corresponding buckle slots (121).

[0043] When the first latch 41 and the second latch 42 are pressed, the spring 43 is compressed, the connector 402 moves into the slot 401, and the first latch 41 and the second latch 42 can slide towards each other in the horizontal direction, shortening the distance between them. The first latch 41 and the second latch 42 disengage from the two opposing latch slots 121, allowing the bottom shell 1 and the light-emitting module 2 to slide relative to each other, ultimately separating them and achieving disassembly of the bottom shell 1 and the light-emitting module 2. When assembly is required, pressing the first latch 41 and the second latch 42 compresses the spring 43, and the connector 402 moves into the slot 401, allowing the first latch 41 and the second latch 42 to slide towards each other in the horizontal direction, shortening the distance between them. The two fasteners 42 can slide towards each other in the horizontal direction, shortening the distance between the first fastener 41 and the second fastener 42. Then, the first fastener 41 and the second fastener 42 are released. Under the action of the spring 43, the first fastener 41 and the second fastener 42 move in opposite directions and then snap into the two oppositely arranged snap-fit ​​slots 121. The end of the light-emitting module 2 is then aligned with the end of the bottom shell 1, so that the light-emitting module 2 and the bottom shell 1 slide relative to each other. During the sliding process, the tops of the first fastener 41 and the second fastener 42 slide into the snap-fit ​​groove 212, and the first fastener 41 and the second fastener 42 are connected to the snap-fit ​​groove 212, so that the light-emitting module 2 and the bottom shell 1 are assembled.

[0044] Furthermore, the first fastener 41 is provided with a protrusion 411, and the second fastener 42 is provided with a post hole 421. The protrusion 411 is at least partially inserted into the post hole 421, and the spring 43 is sleeved on the outer wall of the protrusion 411 and the post hole 421. One end of the spring 43 abuts against the first fastener 41, and the other end abuts against the second fastener 42.

[0045] The first fastener 41 has a protruding post 411 at the center of the side facing the second fastener 42, and the protruding post 411 extends horizontally. The second fastener 42 has a post hole 421 at the position opposite to the protruding post 411, and the inner diameter of the post hole 421 is adapted to the outer diameter of the protruding post 411. At least one end of the protruding post 411 away from the first fastener 41 is inserted into the post hole 421, so that the relative sliding between the first fastener 41 and the second fastener 42 is more stable. The spring 43 is sleeved on the outer wall of the protruding post 411 and the post hole 421, and one end of the spring 43 abuts against the inner wall of the first fastener 41 and the other end abuts against the inner wall of the second fastener 42. Through the cooperation of the protruding post 411 and the post hole 421, the spring 43 can be prevented from shifting during compression or extension.

[0046] Furthermore, both the first buckle 41 and the second buckle 42 are provided with a pressing part 403 that is adapted to the buckle slot 121 on the side near the side wall 12, and the pressing part 403 is provided in the buckle slot 121.

[0047] The first latching member 41 and the second latching member 42 are each provided with a pressing part 403 on the side near the side wall 12. The pressing part 403 is a strip structure that protrudes outward and is located in the latching groove 121, with part of it extending outward from the latching groove 121. When it is necessary to disassemble the light-emitting module 2, pressing the pressing parts 403 on both sides inward can push the first latching member 41 and the second latching member 42 closer to each other, compressing the spring 43, so that the first latching member 41 and the second latching member 42 disengage from the latching groove 212. The pressing part 403 is pressed out of the latching groove 121, and the light-emitting module 2 can be pulled out along the latching groove 212.

[0048] Furthermore, the tops of the first snap fastener 41 and the second snap fastener 42 are also provided with guide slots 404, and the snap-fit ​​groove 212 of the PC extrusion cover 21 is slidably snapped into the guide slots 404. The guide slots 404 of the first snap fastener 41 and the second snap fastener 42 are arranged opposite to each other, forming a snap-fit ​​space adapted to the snap-fit ​​groove 212; the snap-fit ​​groove 212 of the PC extrusion cover 21 is slidably snapped into the guide slots 404, and the guidance of the guide slots 404 makes the sliding installation of the snap-fit ​​groove 212 smoother, avoiding jamming.

[0049] For further details, please review. Figure 4 And refer to them together Figure 6-7 As shown, Figure 6 This is a three-dimensional structural diagram of the plug assembly in the embodiment; Figure 7 This is a side view of the upper plug in the embodiment. The upper plug 51 has an insertion flange 511 on the side facing the PC extrusion cover 21. One end of the PC extrusion cover 21 has an end groove 213 that mates with the insertion flange 511, and the insertion flange 511 is inserted into the end groove 213. When installing the upper plug 51, the insertion flange 511 is aligned with the end groove 213 and inserted, so that the upper plug 51 fits tightly against the end of the PC extrusion cover 21.

[0050] Furthermore, the two sides of the insertion flange 511 are provided with insertion buckles 512, and the two sides of the end groove 213 are provided with end slots 214 that are adapted to the insertion buckles 512. When the upper plug 51 is placed on one end of the PC extrusion cover 21, the insertion buckles 512 are engaged in the end slots 214.

[0051] The insertion flange 511 has outwardly protruding snap fasteners 512 on both sides, which are elastic hook structures. The PC extrusion cover 21 end groove 213 also has end slots 214 on both sides that are adapted to the snap fasteners 512. The end slots 214 are through holes penetrating the bottom wall of the PC extrusion cover 21. When the insertion flange 511 is inserted into the end groove 213, the snap fasteners 512, under elastic action, engage with the end slots 214, thus fixing the upper plug 51 to the PC extrusion cover 21 and preventing the upper plug 51 from accidentally falling off. When disassembly is required, the snap fasteners 512 are pressed inward to disengage from the end slots 214, and then the upper plug 51 is pulled outward, allowing the insertion flange 511 to be removed from the end groove 213, thereby completing the disassembly of the upper plug 51 from one end of the PC extrusion cover 21.

[0052] Furthermore, the optical component 23 includes an optical lens 231, a lens mounting component 232, and an optical sensor 233; the lens mounting component 232 is sleeved on the optical sensor 233, and the optical lens 231 is embedded in the lens mounting component 232; a notch 215 is also provided on one end of the PC extrusion cover 21, and a slot 513 is also provided on the top of the upper plug 51 at the same end; the optical sensor 233 passes through the end groove 213; when the upper plug 51 covers one end of the PC extrusion cover 21, one end of the optical sensor 233 is electrically connected to the same end of the PCB-LED board 22, and the other end passes through the notch 215 and is located in the slot 513.

[0053] The lens mounting component 232 is made of plastic and has an internal mounting hole. The optical sensor 233 is fitted into the mounting hole of the lens mounting component 232. The optical lens 231 is embedded in one end of the lens mounting component 232, and the optical lens 231 is opposite to the sensing end of the optical sensor 233. A notch 215 is also provided on one end of the PC extrusion cover 21, and a groove 513 is provided on the top of the plug 51 at the same end of the notch 215. The groove 513 has a circular structure. One end of the optical sensor 233 passes through the end of the PC extrusion cover 21. When the optical component 23 is assembled with the PCB-LED board 22, the terminal of the optical sensor 233 is electrically connected to the same end of the PCB-LED board 22 within the groove 213. When the upper plug 51 is placed over one end of the PC extrusion cover 21, the end of the optical sensor 233 away from the PCB-LED board 22 passes through the notch 215 of the PC extrusion cover 21 and is placed in the groove 513 of the upper plug 51, so that the sensing end of the optical sensor 233 is exposed in the lens mounting component 232, which facilitates the reception of the optical signal corresponding to the PCB-LED board 22.

[0054] For further details, please refer to Figure 6The lower plug 52 has two limiting grooves 521 on the side facing the abutting flange 122, and two fixing grooves 522 at the bottom of the lower plug 52, each fixing groove 522 being located below a corresponding limiting groove 521; the bottom of the lower plug 52 also has a positioning protrusion 523; one end of the bottom wall 11 also has a positioning hole 111 that matches the positioning protrusion 523; when the lower plug 52 is placed on the bottom shell 1, the two limiting grooves 521 abut against the abutting flanges 122 at the top of the two side walls 12 respectively, each side wall 12 is engaged in the fixing groove 522, and the positioning protrusion 523 is engaged in the positioning hole 111.

[0055] The lower plug 52 has two limiting grooves 521 on the side facing the bottom shell 1 and abutting the flange 122. The two limiting grooves 521 correspond to the positions of the abutting flanges 122 on the two side walls 12, and the width of the limiting grooves 521 is adapted to the width of the abutting flanges 122. The bottom of the lower plug 52 has two fixing slots 522, each fixed slot 522 is located below a corresponding limiting groove 521, and the shape of the fixing slot 522 is adapted to the cross-sectional shape of the side wall 12. The bottom of the lower plug 52 also has a positioning protrusion 523 near the edge. The positioning protrusion 523 is sloping; one end of the bottom wall 11 of the bottom shell 1 is provided with a positioning hole 111 that matches the positioning protrusion 523. The positioning hole 111 is a square through hole. When the lower plug 52 is installed, the two limiting grooves 521 are aligned with the abutting flanges 122 of the two side walls 12 respectively, so that the abutting flanges 122 are embedded in the limiting grooves 521. At the same time, the ends of the two side walls 12 are inserted into the corresponding fixing grooves 522, and the positioning protrusion 523 is inserted into the positioning hole 111 of the bottom wall 11, so as to achieve precise positioning and fixation of the lower plug 52 and the bottom shell 1.

[0056] For further details, please refer to Figure 7 The lower plug 52 is also provided with an insertion protrusion 524 near the top, and the outer side wall of the upper plug 51 is provided with a slot 514 that is adapted to the insertion protrusion 524. The slot 514 is inserted into the insertion protrusion 524 to fix the upper plug 51 and the lower plug 52.

[0057] The lower plug 52 is provided with an insertion protrusion 524 near the top, and the insertion protrusion 524 is rectangular. The outer side wall of the upper plug 51 is provided with a slot 514 that matches the insertion protrusion 524. The slot 514 is a rectangular groove. When assembling the plug assembly 5, the slot 514 of the upper plug 51 is aligned with the insertion protrusion 524 of the lower plug 52 and inserted, so that the upper plug 51 and the lower plug 52 are fixedly connected, thereby forming an integral closed structure between the light-emitting module 2 and the end of the bottom shell 1.

[0058] When maintenance or component replacement is required for the photoelectric separation strip light, first pull down the lower plugs 52 at both ends, causing the positioning protrusions 523 on the lower plugs 52 to disengage from the positioning holes 111 at both ends of the bottom shell 1. Simultaneously, allow the insertion protrusions 524 on the lower plugs 52 to slide out of the slots 514 of the upper plugs 51. The ends of the side walls 12 of the bottom shell 1 disengage from the fixing slots 522, and the abutting flanges 122 disengage from the limiting grooves 521, thus removing the lower plugs 52 that are fixed to the bottom shell 1 and the upper plugs 51. Next, press the insertion buckles 512 inward to disengage them from the end latches 214 at both ends of the PC extrusion cover 21. Then, pull the upper plugs 51 outward to remove the insertion flanges 511 from the end grooves 213, thereby completing the separation of the upper plugs 51 from one end of the PC extrusion cover 21, and finally achieving the separation of the upper plugs 51 and the lower plugs 52. Then, after removing the upper plug 51 and the lower plug 52, press the pressing part 403 on the quick-release buckle assembly 4 to disengage it from the buckle slots 121 on the two side walls 12, and release the snap-fit ​​state between the guide slot 404 on the quick-release buckle assembly 4 and the snap-fit ​​slide 212. Then, let the bottom shell 1 slide relative to the light-emitting module 2, and at the same time disconnect the connection between the PCB-LED board 22 and the wiring terminal 30 of the electrical module 3, thereby realizing the photoelectric separation between the light-emitting module 2 and the electrical module 3 in the bottom shell 1. Finally, maintain and replace the light-emitting module 2 and the electrical module 3 respectively. In addition, when maintaining the optical component 23, after disconnecting the upper plug 51 and the lower plug 52, disconnect the electrical connection between the optical sensor 233 and the PCB-LED board 22, and remove the optical component 23 from the end groove 213 and the notch 215. If it is necessary to disassemble the internal structure of the optical component 23, the optical lens 231 can be removed from the lens mounting part 232, or the optical sensor 233 can be removed. If it is necessary to disassemble the internal components of the light-emitting module 2 separately, the optical component 23 can be directly separated from the PCB-LED board 22, or the PCB-LED board 22 can be removed from the mounting groove 211 for maintenance and replacement.

[0059] In summary, conventional strip lights suffer from low production and assembly efficiency and high maintenance and debugging costs due to the integrated design of the photoelectric components and the lamp housing. The quick-installation photoelectric separation strip light of this embodiment achieves rapid disassembly and assembly of the light-emitting module 2 and the electrical module 3 inside the base shell 1 through the quick-release buckle assembly 4. Combined with the convenient installation of the end cap assembly 5, this achieves a photoelectric separation structure, simplifying the production and assembly process and eliminating the need for simultaneous assembly of the photoelectric components and the lamp housing. Furthermore, during later maintenance, there is no need to disassemble the entire strip light; simply press the quick-release buckle assembly 4 and then remove the end cap assembly 5 to separate the light-emitting module 2 from the base shell 1, allowing for the replacement and maintenance of either the light-emitting module 2 or the electrical module 3. This significantly reduces maintenance and debugging costs and improves the practicality and economy of the strip light.

[0060] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.

Claims

1. A quick-installation photoelectric split strip light, characterized in that, include: The bottom shell (1), the light-emitting module (2), the electrical module (3), multiple quick-release buckle assemblies (4), and two end cap assemblies (5) are provided. The bottom shell (1) includes a bottom wall (11) and two side walls (12). The two side walls (12) are fixed to the same surface of the bottom wall (11). Each side wall (12) is provided with multiple buckle slots (121) spaced apart. The top of each side wall (12) is provided with an abutment flange (12) extending inward along its length direction. 2), where the snap-fit ​​slots (121) on one of the sidewalls (12) are directly opposite to the snap-fit ​​slots (121) on the other sidewall (12); the light-emitting module (2) includes a PC extrusion cover (21), a PCB-LED board (22), and an optical component (23). The PC extrusion cover (21) has an installation groove (211) along its length inside, and a snap-fit ​​sliding groove (212) along its length is provided at the bottom of the installation groove (211). The PCB-LED board (22) is located in the installation groove (211), and the optical component (23) is located at one end of the PC extrusion cover (21) and is electrically connected to the PCB-LED board (22); the electrical module (3) is located on the bottom wall (11) and is electrically connected to the PCB-LED board (22); at least two quick-release snap-fit ​​components (4) are respectively inserted into the two sidewalls (12) opposite to each other. The snap-fit ​​groove (121) is located inside the snap-fit ​​slot; the snap-fit ​​groove (212) is slidably snapped into at least two of the quick snap-fit ​​assemblies (4); each of the plug assemblies (5) includes an upper plug (51) and a lower plug (52), the upper plug (51) is covered at one end of the PC extrusion cover (21), the lower plug (52) is covered on the bottom shell (1) and abuts against the abutment flange (122), and the upper plug (51) is inserted into the lower plug (52).

2. The quick-installation photoelectric separation strip light according to claim 1, characterized in that, Each of the aforementioned quick-release buckle components (4) includes a first buckle (41), a second buckle (42), and a spring (43); the first buckle (41) and the second buckle (42) are slidably connected to the snap-fit ​​groove (212), and the first buckle (41) and the second buckle (42) are respectively inserted into the buckle slots (121) that are directly opposite each other on the two side walls (12). One side of the first buckle (41) is provided with a slot (401), and the second buckle (42) is on the opposite side of the slot (401). A connector strip (402) is provided to cooperate with the slot (401). The first fastener (41) has a connector strip (402) on the other side, and the second fastener (42) has a slot (401) on the opposite side to cooperate with the connector strip (402). The length of the connector strip (402) is less than the depth of the slot (401). The connector strip (402) is slidably inserted into the slot (401), and the spring (43) is located between the first fastener (41) and the second fastener (42).

3. The quick-installation photoelectric separation strip light according to claim 2, characterized in that, The first fastener (41) has a protruding post (411), and the second fastener (42) has a post hole (421). The protruding post (411) is at least partially inserted into the post hole (421), and the spring (43) is sleeved on the outer wall of the protruding post (411) and the post hole (421). One end of the spring (43) abuts against the first fastener (41), and the other end abuts against the second fastener (42).

4. The quick-installation photoelectric separation strip light according to claim 2, characterized in that, Both the first buckle (41) and the second buckle (42) have a pressing part (403) on the side of the side wall (12) that is adapted to the buckle slot (121), and the pressing part (403) is located in the buckle slot (121).

5. The quick-installation photoelectric separation strip light according to claim 4, characterized in that, The top of the first snap fastener (41) and the second snap fastener (42) are also provided with guide slots (404), and the snap-fit ​​groove (212) of the PC extrusion cover (21) is slidably snapped into the guide slots (404).

6. The quick-installation photoelectric separation strip light according to claim 1, characterized in that, The upper plug (51) has an insertion flange (511) on the side facing the PC extrusion cover (21), and one end of the PC extrusion cover (21) has an end groove (213) that mates with the insertion flange (511), and the insertion flange (511) is inserted into the end groove (213).

7. The quick-installation photoelectric separation strip light according to claim 6, characterized in that, The insertion flange (511) is provided with insertion buckles (512) on both sides, and the end groove (213) is provided with end slots (214) that are adapted to the insertion buckles (512) on both sides. When the upper plug (51) is placed on one end of the PC extrusion cover (21), the insertion buckle (512) is engaged in the end slot (214).

8. The quick-installation photoelectric separation strip light according to any one of claims 6-7, characterized in that, The optical component (23) includes an optical lens (231), a lens mounting component (232), and an optical sensor (233). The lens mounting component (232) is sleeved on the optical sensor (233), and the optical lens (231) is embedded in the lens mounting component (232). A notch (215) is also provided on one end of the PC extrusion cover (21), and a slot (513) is also provided on the top of the upper plug (51) at the same end. The optical sensor (233) passes through the end groove (213). When the upper plug (51) covers one end of the PC extrusion cover (21), one end of the optical sensor (233) is electrically connected to the same end of the PCB-LED board (22), and the other end passes through the notch (215) and is located in the slot (513).

9. The quick-installation photoelectric separation strip light according to claim 1, characterized in that, The lower plug (52) has two limiting grooves (521) on the side facing the abutting flange (122), and two fixing slots (522) are provided at the bottom of the lower plug (52), each fixing slot (522) being located below a corresponding limiting groove (521); the bottom of the lower plug (52) is also provided with a positioning protrusion (523); one end of the bottom wall (11) is also provided with a positioning hole (111) adapted to the positioning protrusion (523); when the lower plug (52) is placed on the bottom shell (1), the two limiting grooves (521) abut against the abutting flanges (122) at the top of the two side walls (12), each side wall (12) is inserted into the fixing slot (522), and the positioning protrusion (523) is inserted into the positioning hole (111).

10. The quick-installation photoelectric separation strip light according to claim 9, characterized in that, The lower plug (52) is provided with an insertion protrusion (524) near the top, and the outer side wall of the upper plug (51) is provided with a slot (514) that is adapted to the insertion protrusion (524). The slot (514) is inserted into the insertion protrusion (524) to fix the upper plug (51) and the lower plug (52).