Dial switch and line lamp

By setting up multi-directional push buttons with an angled arrangement and a snap-locking structure on the DIP switch, the problem of the single adjustment position of the DIP switch in the lamp is solved, realizing applicability to multiple scenarios and convenient operation, and improving the use effect of the lamp.

CN224682993UActive Publication Date: 2026-08-25ジャン州立達信光電子科技有限公司
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Patent Information

Application Number
CN202521795434.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-22
Publication Date
2026-08-25
Estimated Expiration
2035-08-22

AI Technical Summary

Technical Problem

Existing lighting fixture DIP switches offer only one adjustment position, failing to adequately meet the operational and aesthetic requirements of various installation scenarios.

Method used

Design a DIP switch with at least two DIP push buttons arranged at an angle between adjacent push buttons. One push button faces the rear of the light fixture, and the other faces the inner or circumferential side to adapt to different installation methods. Stable fixation is achieved through a mounting housing and a snap-fit ​​structure.

Benefits of technology

The application scenarios of DIP switches have been expanded, the ease of use has been improved, the DIP adjustment needs of lighting fixtures in various scenarios have been met, and the quality of lighting fixtures has been enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a dial switch and a line lamp, and belongs to the technical field of lamp control components. The dial switch comprises a dial assembly and a dial cover. The dial cover comprises a cover plate and at least two dial push buttons. The cover plate is connected with the dial assembly. The dial push buttons are connected with the cover plate. Adjacent two dial push buttons are arranged at an included angle. At least one dial push button extends out of the lamp body. The dial switch provided by the application can realize dial adjustment in multiple directions through the multi-directional dial push buttons. The dial switch can adapt to different installation forms and better adapt to production test scenes. During production test, the adjustment of the dial switch is moved out of the lamp body, and the lamp does not need to be repeatedly disassembled and inspected. Therefore, the dial switch provided by the application has a wider application scene, better use convenience, and can better meet the needs of lamp dial adjustment in multiple scenes.
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Description

Technical Field

[0001] This application belongs to the technical field of lighting control components, and more specifically, relates to a DIP switch and a linear light. Background Technology

[0002] DIP switches are key components for controlling the functions of lighting fixtures, primarily including the following: 1. DIP switches can be used to select the operating mode of the lighting fixture. For example, users can select the brightness, flashing mode, or color of the light by toggling different switches. 2. In some networked lighting systems, DIP switches are used to set the addresses of devices. By setting different DIP codes, multiple devices can have unique identification addresses within the same network for individual control. 3. DIP switches can also be used to adjust the parameters of the lighting fixture. For example, users can set parameters such as delay time and sensing range by toggling switches, providing a simple and intuitive user interaction. 4. The use of DIP switches simplifies the installation and maintenance of lighting fixtures. During installation, users only need to toggle the switches as needed, without complex programming or software settings, lowering the operational threshold and improving the ease of use of the equipment.

[0003] Currently, the DIP switch design for lighting fixtures features a single, fixed position for the DIP switches, allowing users to operate and control the light fixture from only one side. When adapting to various installation scenarios, the traditional DIP switch's DIP switches cannot adequately meet the operational and aesthetic requirements of the lighting fixture. Utility Model Content

[0004] The purpose of this application is to provide a DIP switch that solves the problem that existing DIP switches for lighting fixtures have a single adjustment position and cannot adequately meet the adjustment needs of lighting fixtures.

[0005] To achieve the above objectives, the technical solution adopted in this application is as follows: In a first aspect, embodiments of this application provide a DIP switch, including: A DIP switch assembly and a DIP switch cover, the DIP switch cover including a cover plate and at least two DIP switch push buttons, the cover plate being connected to the DIP switch assembly, the DIP switch push buttons being connected to the cover plate, two adjacent DIP switch push buttons being arranged at an angle, and at least one of the DIP switch push buttons extending beyond the main body of the lamp.

[0006] Compared with the prior art, the solution shown in this application embodiment provides at least two DIP switches on the cover plate, with adjacent DIP switches arranged at an angle. This allows different DIP switches to be positioned in different orientations on the lamp body. For example, with two DIP switches, one faces the rear of the lamp body, and the other faces the inner side. For surface-mounted lamps or production testing, the DIP switch located inside the lamp body can be adjusted; for suspended lamps, the DIP switch located at the rear can be adjusted. Therefore, the DIP switch of this application, by providing multi-directional DIP switches, can achieve adjustment in multiple directions, adapting to different installation methods and better suited for production testing scenarios. During production testing, the adjustment of the DIP switch is moved outside the lamp body, eliminating the need for repeated disassembly and reassembly for inspection. Thus, the DIP switch of this application has a wider range of applications, better ease of use, and can better meet the needs of lamp DIP switch adjustment in various scenarios.

[0007] In conjunction with the first aspect, in one possible implementation, the DIP switch further includes a mounting housing, the mounting housing having a mounting groove formed therein with an opening in a first direction, the mounting groove having a latch that engages with the DIP switch assembly to limit the displacement of the DIP switch assembly in the first direction.

[0008] In some embodiments, the opening edge of the mounting housing is provided with outwardly extending mounting ears, which can be connected to the lamp body by fasteners.

[0009] In some embodiments, the DIP switch assembly has a DIP switch tip extending along a first direction and capable of reciprocating along a second path; the cover plate is disposed perpendicular to the first direction, the cover plate covers the side of the DIP switch assembly where the DIP switch tip is disposed, and the cover plate has a fixing groove that is adapted to engage with the DIP switch tip.

[0010] In some embodiments, one of the DIP switches is located on the side of the cover plate opposite to the DIP switch assembly, the DIP switch is provided corresponding to the fixing groove, and the fixing groove extends into the corresponding DIP switch, while the remaining DIP switches are located on the edge of the cover plate.

[0011] In some embodiments, at least one of the DIP switches is located on the edge of the cover plate. The DIP switch located on the edge of the cover plate is defined as a second switch. The second switch includes a connecting plate and a switch body. The connecting plate is connected between the edge of the cover plate and the switch body, and the connecting plate extends along a third path, wherein the third path is perpendicular to the first direction and the second path.

[0012] In some embodiments, the edge of the mounting housing opening side is provided with a clearance groove, the connecting plate extends out of the clearance groove, and can move along a second path within the clearance groove.

[0013] In some embodiments, the push button body is plate-shaped, with its plate surface perpendicular to the third path. One side of the push button body is connected to the connecting plate, and the other side of the plate surface is provided with actuating ridges.

[0014] Secondly, this application also provides a linear light, characterized in that it includes a lamp body and the aforementioned DIP switch, the DIP switch being installed inside the lamp body, an adjustment through hole being provided on the rear shell of the lamp body, and at least one of the DIP switches passing through the adjustment through hole and extending out of the rear shell.

[0015] Compared with the prior art, the solution shown in this application embodiment, by adopting the above-mentioned DIP switch, has a wider range of applicable scenarios for DIP adjustment, better ease of use, and can better meet the needs of lamp DIP adjustment in multiple scenarios, thereby improving the quality of lamp use.

[0016] In conjunction with the first aspect, in one possible implementation, the rear shell is provided with a reinforcing rib, the adjustment through hole is opened on the reinforcing rib, and the dial switch assembly is installed on the inner side of the reinforcing rib. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 A three-dimensional structural diagram of the DIP switch provided in Embodiment 1 of this application. Figure 1 ; Figure 2 This is a schematic diagram of the main structure of the DIP switch provided in Embodiment 1 of this application; Figure 3 for Figure 2 AA section view; Figure 4 A three-dimensional structural diagram of the DIP switch provided in Embodiment 1 of this application. Figure 2 ; Figure 5 This is an exploded view of the DIP switch provided in Embodiment 1 of this application; Figure 6 This is a perspective view of the DIP switch component used in Embodiment 1 of this application; Figure 7 The three-dimensional mounting shell used in Embodiment 1 of this application Figure 1 ; Figure 8 The three-dimensional mounting shell used in Embodiment 1 of this application Figure 2 ; Figure 9 This is a perspective view of the dial cover used in Embodiment 2 of this application; Figure 10 This is a perspective view of the linear light provided in Embodiment 3 of this application; Figure 11 This is a schematic diagram of the assembly of the DIP switch and the back cover used in Embodiment 3 of this application; Figure 12 This is a structural diagram of the rear shell used in Embodiment 3 of this application; Figure 13 This is an assembly diagram of the DIP switch body used in Embodiment 4 of this application.

[0019] In the diagram: 100, DIP switch assembly; 110, DIP switch end; 120, control circuit board; 121, bayonet; 122, positioning socket; 130, DIP switch body; 131, DIP switch housing; 132, terminal group; 200, DIP switch cover; 210, cover plate; 211, fixing groove; 220, DIP switch push button; 221, first push button; 222, second push button; 2221, connecting plate; 2222, push button body; 2 223. Raised ridge; 300. Housing; 310. Mounting groove; 311. Clearance groove; 320. Mounting ear; 321. Mounting hole; 322. Support rib; 330. Buckle; 340. Support component; 350. Connecting post; 360. Positioning component; 370. Threaded fastener; 400. Lamp body; 410. Rear shell; 411. Adjustment through hole; 412. Reinforcing rib; 420. Light source module. Detailed Implementation

[0020] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0021] It should be noted that when an element is referred to as being "set on" another element, it can be directly on or indirectly on that other element. It should be understood that the terms "length," "width," "upper," "lower," "front," "rear," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are used only for the convenience of describing this application and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0022] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "a number" means two or more, unless otherwise explicitly specified.

[0023] Please refer to the following: Figures 1 to 12 The DIP switch provided in this application will now be described. The DIP switch includes a DIP switch assembly 100 and a DIP switch cover 200. The DIP switch cover 200 includes a cover plate 210 and at least two DIP switch push buttons 220. The cover plate 210 is connected to the DIP switch assembly 100, and the DIP switch push buttons 220 are connected to the cover plate 210. Adjacent DIP switch push buttons 220 are arranged at an angle, and at least one of the DIP switch push buttons 220 extends beyond the lamp body 400.

[0024] In this embodiment, the included angle between two adjacent DIP switches 220 can be 60°~120° (e.g., 70°, 90°, 110°) to ensure that the two adjacent DIP switches 220 face different sides of the lamp body 400, providing a basis for multi-directional adjustment. The specific angle is related to the shape of the lamp body 400 and the adjustment requirements. Figures 1 to 8 The embodiment shown has two DIP switches 220, and the included angle between the two DIP switches 220 is 90°. Figure 9 The embodiment shown has three DIP switches 220, with an angle of 90° between any two adjacent DIP switches 220 and an angle of 180° between any two opposite DIP switches 220.

[0025] In this embodiment, the cover plate 210 and the DIP switch push button 220 are integrally molded through processes such as injection molding, reducing seams and improving the overall structural strength. The materials selected for the cover plate 210 and the DIP switch push button 220 need to have good insulation and structural strength. Materials such as polyimide and polyphenylene sulfide can be selected, and will not be listed here.

[0026] Compared with the prior art, the DIP switch provided in this application has at least two DIP switches 220 on the cover plate 210, and adjacent DIP switches 220 are arranged at an angle. This allows different DIP switches 220 to be positioned in different orientations on the lamp body 400. For example, with two DIP switches 220, one DIP switch 220 faces the rear of the lamp body 400, and the other DIP switch 220 faces the inner side of the lamp body 400. During surface-mounted lighting or production testing, the DIP switch 220 located inside the lamp body 400 can be adjusted; during suspended lighting, the DIP switch 220 located at the rear can be adjusted. As can be seen, the DIP switch of this application, by setting a multi-directional DIP push button 220, can achieve the purpose of DIP adjustment in multiple directions, which can adapt to different installation forms and better adapt to production and testing scenarios. During production and testing, the adjustment of the DIP switch is moved outside the lamp body 400, eliminating the need for repeated disassembly and assembly of the lamp for inspection. Therefore, the DIP switch of this application has a wider range of applicable scenarios, better ease of use, and can better meet the needs of lamp DIP adjustment in multiple scenarios.

[0027] If two DIP switches 220 are set (e.g.) Figures 1 to 8 As shown), one of the DIP switches 220 faces the rear side of the lamp body 400, and the other DIP switch 220 faces the inner side of the lamp body 400. If no DIP switch 220 is provided on the circumferential side of the lamp body 400, it will not affect the appearance of the lamp.

[0028] If three DIP switches are set (e.g., 220) Figure 9 As shown in the diagram, one DIP switch 220 faces the rear of the lamp body 400, another DIP switch 220 faces a circumferential side wall of the lamp body 400, and the remaining one faces the interior of the lamp body 400. For surface-mounted lamps or production testing, the DIP switch 220 located inside the lamp body 400 can be adjusted; for suspended lamps, either the rear-mounted DIP switch 220 or the DIP switch 220 located on the circumferential side wall can be adjusted, providing more adjustment options.

[0029] In some embodiments, see Figures 1 to 5 The DIP switch also includes a mounting housing 300, within which a mounting groove 310 opening in a first direction is formed. A latch 330 is provided within the mounting groove 310, engaging with the DIP switch assembly 100 to limit the displacement of the DIP switch assembly 100 in the first direction. The DIP switch assembly 100 and the DIP switch cover 200 are integrated within the mounting housing 300, forming a single unit. The mounting housing 300 not only protects the DIP switch assembly 100 and the DIP switch cover 200 but also enables modular installation, resulting in higher assembly efficiency.

[0030] In some specific embodiments of the DIP switch component 100, see [link to relevant documentation]. Figures 1 to 3 , Figure 5 and Figure 6 The DIP switch assembly 100 includes a control circuit board 120 and a DIP switch body 130. The DIP switch body 130 is fixed to the control circuit board 120 by means of bonding, welding, etc., and is electrically connected to the control circuit board 120. The DIP switch body 130 is provided with DIP switch terminals 110. The area of ​​the DIP switch body 130 is smaller than the area of ​​the control circuit board 120. The latches 330 in the mounting groove 310 engage with the edge of the control circuit board 120, thereby fixing the DIP switch assembly 100.

[0031] Optional, see below Figure 2 , Figures 5 to 8 The control circuit board 120 has a corresponding notch 121 on its edge, which corresponds to the latch 330. After installation, the gap between the edge of the control circuit board 120 and the side wall of the mounting groove 310 is no more than 0.3mm. This ensures the stability of the DIP switch assembly 100 in a direction perpendicular to the first direction. Based on this, the notch 121 is provided to allow the latching end of the latch 330 to pass through and achieve a latching engagement. More specifically, the latch 330 and the corresponding side wall of the mounting groove 310 are spaced apart to provide sufficient swing space during latching. Simultaneously, the edge of the notch 121 extends to the edge of the control circuit board 120, forming a notch.

[0032] Optionally, the fixing groove 211 is provided with two sets of latches 330, which are respectively located on opposite sides of the mounting groove 310. Each set of latches 330 has multiple latches 330 extending along the edge line of the corresponding side to achieve multi-point engagement of the control circuit board 120. The engaging end of the latch 330 contacts the side of the control circuit board 120 facing the opening of the mounting groove 310 to achieve engagement. Based on this, the mounting groove 310 is also provided with multiple support groups, which are respectively located on different sides of the mounting groove 310. Each support group includes at least one support member 340, which can contact the side of the control circuit board 120 facing the opening of the mounting groove 310, and then cooperate with the engaging end of the latch 330 to fix the position of the control circuit board 120 in the first direction.

[0033] Optionally, each support group includes multiple support members 340, which extend along the edge line of the corresponding side. Figure 6 and Figure 7 An exemplary embodiment of a support assembly having two support members 340 is shown.

[0034] It should be noted that if the mounting groove 310 is an elongated groove, the two sets of latches 330 are respectively located on the two long sides of the mounting groove 310, and the four sets of supports are respectively located on the four sides of the mounting groove 310, thereby providing a more uniform supporting force to the control circuit board 120.

[0035] Optional, see below Figure 5 , Figure 6 and Figure 8 The mounting groove 310 also includes a positioning element 360. The top of the positioning element 360 forms a positioning boss, the raised area of ​​which can be inserted into the positioning socket 122 on the edge of the control circuit board 120. The stepped surface of the positioning boss is at the same height as the support element 340, and this stepped surface contacts the side of the control circuit board 120 facing the opening of the mounting groove 310. The positioning boss, in conjunction with the positioning socket 122, provides positioning in a direction parallel to the surface of the control circuit board 120. The stepped surface further increases the number of support points, and its cooperation with the buckle 330 and the support element 340 further enhances the positional stability of the control circuit board 120, facilitating final locking of the control circuit board 120.

[0036] In some specific embodiments of the DIP switch body 130, the DIP switch body 130 has a DIP switch housing 131, terminal groups 132, and code chips. The DIP switch housing 131 is fixedly connected to the control circuit board 120. The DIP switch end 110 is movably disposed on the DIP switch housing 131 along a second path and extends out of the DIP switch housing 131. Multiple terminal groups 132 are provided, and the multiple terminal groups 132 are distributed along the second path. Each terminal group 132 has two oppositely arranged terminals. The terminals in each terminal group penetrate the DIP switch housing 131 and extend out of the housing. The terminal is electrically connected to the control circuit board 120 by soldering; the code chip is located at one end of the DIP switch terminal 110 that extends into the DIP switch housing 131. When the DIP switch terminal 110 moves along the second path, the code chip on the DIP switch terminal 110 contacts different terminal groups 132. The code chip can contact two terminals in the terminal group 132 at the same time, thereby realizing the conduction of the circuit corresponding to the terminal group 132. By contacting different terminal groups 132, the different conduction modes on the control circuit board 120 are switched, thereby realizing the switching of the working mode.

[0037] In a specific embodiment of the first type of DIP switch assembly 100 distribution, the DIP switch cover 200 is integrally formed. Based on this, a DIP switch body 130 is provided, which has a DIP switch end 110. After the DIP switch cover 200 is connected to the DIP switch end 110, turning one of the DIP switch push buttons 220 causes the other DIP switch push buttons 220 to move synchronously, thereby adjusting the DIP switch body 130. Figures 1 to 6 and Figure 9 As shown.

[0038] In a specific embodiment of the second type of DIP switch assembly 100 distribution, the cover plate 210 includes multiple separately arranged cover plate parts, each of which is connected to a DIP switch push button 220. The DIP switch push buttons 220 on different cover plate parts are respectively arranged at an angle. Based on this, multiple DIP switch bodies 130 are provided, with each DIP switch assembly 100 corresponding to one of the cover plate parts. Each DIP switch body 130 has a DIP switch end 110 formed on it. Each cover plate part is connected to its corresponding DIP switch end 110. Moving one of the DIP switch push buttons 220 will only move its corresponding DIP switch end 110, while the other DIP switch push buttons 220 and their corresponding DIP switch ends remain stationary. By setting multiple sets of mutually independent DIP switch bodies 130, not only is it convenient to adjust, but more scene control modes can also be realized, making it more convenient to use.

[0039] Optionally, the extension direction of the DIP switch push button 220 can be the same as the extension direction of the corresponding DIP switch end 110, or the extension direction of the DIP switch push button 220 can be set at an angle to the extension direction of the corresponding DIP switch end 110 (e.g., perpendicular to each other), as long as the adjustment requirements are met.

[0040] More specifically, control circuits for different DIP switch bodies 130 can be set on the control circuit board 120 to realize the layout of multiple DIP switch bodies 130 corresponding to one control circuit board 120, making the structure of the DIP switch assembly 100 simpler and easier to assemble and control.

[0041] In a specific embodiment of the distribution of the third type of DIP switch component 100, see [reference]. Figure 13 Without a DIP switch cover 200, multiple DIP switch bodies 130 are provided, each with a DIP switch end 110 formed on it. Adjacent DIP switch ends 110 are arranged at an angle (the specific arrangement can be referred to the distribution of the DIP switch push knobs 220 in the first type of specific implementation). When one DIP switch end 110 is moved, the other DIP switch ends 110 remain stationary, thereby achieving independent adjustment of each DIP switch body 130. Figure 13 An exemplary embodiment of a DIP switch assembly 100 comprising two DIP switch bodies 130 is shown, the two DIP switch bodies 130 sharing a single DIP switch housing 131.

[0042] In some embodiments, to achieve final fixation of the control circuit board 120, see [reference]. Figure 3 , Figures 6 to 8 A connecting post 350 is provided at the bottom of the mounting groove 310. A screw hole is provided in the connecting post 350, and a through hole is provided on the control circuit board 120. The height of the connecting post 350 is the same as the height of the support member 340. After the control circuit board 120 is snapped in, the connecting post 350 contacts the control circuit board 120, and the threaded fastener 370 passes through the through hole and connects with the screw hole on the connecting post 350, thereby locking the control circuit board 120.

[0043] In some embodiments, see Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 7 and Figure 8 The mounting housing 300 has outwardly extending mounting ears 320 at its opening edge, which can be connected to the lamp body 400 via fasteners. The mounting ears 320 shift the mounting point of the mounting housing 300 outwards, avoiding interference with the installation of the internal DIP switch assembly 100 and DIP switch cover 200. Simultaneously, due to the flexible design of the mounting ears 320, they can be configured to fit the corresponding area of ​​the lamp body 400, achieving a snug fit and improving the assembly stability of both.

[0044] Based on the above embodiments, see Figure 1 and Figure 2 Two mounting ears 320 are provided, positioned opposite each other on both sides of the mounting housing 300 along the second path. One mounting ear 320 has an elongated oval mounting hole 321, the long axis of which is parallel to the second path. The other mounting ear 320 has a circular mounting hole 321. The elongated oval mounting hole 321 can absorb assembly errors with the lamp body 400 during installation. Optionally, each mounting ear 320 is perpendicular to the outer side wall of the mounting housing 300 to accommodate a close fit with the rear side wall of the lamp body 400. A supporting rib 322 is provided between the mounting ear 320 and the mounting housing 300. The supporting rib 322 strengthens the mounting ear 320 and prevents the mounting housing 300 from failing due to breakage of the mounting ear 320 during installation and use.

[0045] In some embodiments, see Figure 3 , Figure 5 and Figure 6 The DIP switch assembly 100 has a DIP switch end 110 extending along a first direction and capable of reciprocating along a second path. A cover plate 210 is disposed perpendicular to the first direction, covering the side of the DIP switch assembly 100 where the DIP switch end 110 is located, and the cover plate 210 has a fixing groove 211 that engages with the DIP switch end 110. The DIP switch end 110 extends along the first direction to correspond to the opening area of ​​the mounting groove 310, thereby facilitating the installation of the DIP switch cover 200. The DIP switch end 110 adjusts its operating mode by reciprocating along the second path. In this embodiment, the cover plate 210 is slotted to achieve a snap-fit ​​assembly with the DIP switch end 110. The assembly method is simple and the connection is reliable, reducing the likelihood of the cover plate 210 falling off during adjustment.

[0046] In specific implementation, the snap-fit ​​adaptation method between the fixing groove 211 and the DIP switch end 110 is exemplified as follows: the DIP switch end 110 is interference-fitted into the fixing groove 211; or, the inner side wall of the fixing groove 211 is provided with a snap-fit ​​notch, and the outer peripheral side wall of the DIP switch end 110 is provided with a protrusion buckle. The fixing groove 211 and the DIP switch end 110 are clearance-fitted. After the DIP switch end 110 is inserted into the fixing groove 211, the protrusion buckle is snapped into the snap-fit ​​notch to achieve snap-fit ​​positioning.

[0047] In some embodiments, see Figures 1 to 3 , Figure 5 and Figure 9 One of the DIP switches 220 is located on the side of the cover plate 210 opposite to the DIP switch assembly 100. This DIP switch 220 is defined as the first switch 221. The DIP switch 220 is positioned corresponding to the fixing groove 211, and the fixing groove 211 extends into the corresponding DIP switch 220. The remaining DIP switches 220 are located on the edge of the cover plate 210. This embodiment makes full use of the space on one side of the cover plate 210 to set the DIP switches 220. By combining the positions of the DIP switches 220 with the fixing groove 211, it not only achieves assembly with the DIP switch end 110, but also further reduces the thickness of the cover plate 210, improving the compactness of the structure. In addition, the space on the edge of the cover plate 210 is utilized to make full use of the outer space of the cover plate 210, improving the flexibility of the orientation design of the DIP switches 220.

[0048] In other embodiments, see Figures 1 to 9 At least one DIP switch 220 is disposed on the edge of the cover plate 210. The DIP switch 220 disposed on the edge of the cover plate 210 is defined as the second switch 222. The second switch 222 includes a connecting plate 2221 and a switch body 2222. The connecting plate 2221 is connected between the edge of the cover plate 210 and the switch body 2222, and the connecting plate 2221 extends along a third path, wherein the third path is perpendicular to the first direction and the second path. In this embodiment, the DIP switch 220 is disposed in the space of the edge of the cover plate 210. The switch body 2222 serves as the toggle structure that is in direct contact with the human hand, and the connecting plate 2221 realizes its connection with the cover plate 210. By reasonably setting the width of the connecting plate 2221 (for example, the width of the connecting plate 2221 is smaller than the width of the switch body), interference with the DIP switch assembly 100 can be avoided. In addition, the width of the switch body 2222 can be set to be larger, thereby facilitating the human hand to contact and apply force.

[0049] Based on the above embodiments, see Figure 1 , Figure 2 , Figure 5 , Figure 7 and Figure 8An offset groove 311 is provided on the edge of the opening side of the mounting housing 300. The connecting plate 2221 extends out of the offset groove 311 and can move along the second path within the offset groove 311. The offset groove 311 enables the second push button 222 to be recessed relative to the mounting housing 300, thereby placing the DIP switch cover 200 inside the mounting housing 300. This reduces the space occupied by the DIP switch cover 200 on the outside of the opening side of the mounting housing 300, further improving the structural compactness of the DIP switch in the first direction.

[0050] In some more specific embodiments, see Figures 1 to 5 and Figure 9 The push button body 2222 is plate-shaped, with its surface perpendicular to the third path. One side of the push button body 2222 is connected to the connecting plate 2221, and the other side has a toggle ridge 2223. The plate-shaped push button body 2222 provides a larger adjustment contact area, facilitating adjustment force, and further compresses the space of the DIP switch on the third path, further improving structural compactness. Furthermore, the toggle ridge 2223 increases the friction of hand contact, further facilitating force application and optimizing adjustment reliability. Optionally, the toggle ridge 2223 can be raised dots, wavy stripes, or straight stripes (e.g.,...). Figure 1 , Figure 4 , Figure 5 and Figure 9 (As shown in the image), the remaining examples will not be listed here.

[0051] In specific embodiments of the distribution of some DIP switches 220, one DIP switch 220 is located on the side of the cover plate 210 away from the DIP switch assembly 100, and this DIP switch 220 is defined as the first switch 221. The remaining DIP switches 220 are located on the edge of the cover plate 210, and the DIP switches 220 located on the edge of the cover plate 210 are defined as the second switches 222. 1) If there is one second switch 222, the second switch 222 is oriented towards the interior of the lamp body 400, such as... Figure 1 and Figure 11 As shown, the extension direction of the second push button 222 is parallel to the third path, so as to drive the cover to reciprocate along the second path. 2) If there is one second push button 222, the second push button 222 is set towards one circumferential side wall of the lamp body 400 (not shown in the figure), and the extension direction of the second push button 222 is parallel to the third path, so as to drive the cover to reciprocate along the second path. 3) If there are multiple second push buttons 222, the multiple second push buttons 222 are respectively set on different sides of the cover plate 210 along the circumference of the cover plate 210. Figure 9The image shows an embodiment in which two second push buttons 222 are arranged opposite each other, which facilitates adjustment along the second path. One second push button 222 is located inside the lamp body 400, and the other second push button 222 is located on the circumferential side wall of the lamp body 400. The extension direction of the second push button 222 is parallel to the third path, so as to drive the cover to move back and forth along the second path.

[0052] In other specific embodiments of the distribution of the DIP switches 220, each DIP switch 220 is located on the outer periphery of the cover plate 210, without occupying the space on one side of the cover plate 210. The specific design can be found in [reference needed]. Figure 9 The design of the two second push buttons 222 in the lamp body 400 is such that one second push button 222 is located inside the lamp body 400, and the other second push button 222 is located on a circumferential side wall of the lamp body 400.

[0053] The DIP switch of this application, if the DIP switch push button 220 is only retained on the rear side and inside the lamp body 400, can avoid the problem of the DIP switch push button 220 being exposed on the exterior surface. When the DIP switch position at the rear of the lamp body 400 is blocked, the DIP switch push button 220 can be installed inside the lamp body 400. The retained rear DIP switch push button 220 improves production efficiency during production testing, ensures normal use of the DIP switch during hoisting, and allows for pre-setting of the DIP switch before surface mounting. The DIP switch of this application has a wider range of applicable scenarios, better ease of use, and can better meet the needs of lamp DIP switch adjustment in various scenarios.

[0054] Based on the same inventive concept, this application also provides a linear light, see reference. Figures 10 to 12 The linear light includes a lamp body 400 and the aforementioned DIP switch. The DIP switch is installed inside the lamp body 400. An adjustment through hole 411 is provided on the rear shell 410 of the lamp body 400. In the DIP switch, at least one DIP push button 220 passes through the adjustment through hole 411 and extends out of the rear shell 410.

[0055] Compared with the prior art, the DIP switch provided in this application has a wider range of applicable scenarios and better ease of use. It can better meet the needs of lamp DIP adjustment in multiple scenarios, thereby improving the quality of lamp use.

[0056] In some embodiments of this invention, the lamp body 400 includes a light source module 420 and a rear shell 410. The rear shell 410 covers the rear side of the light source module 420, and the two together form a mounting cavity. A DIP switch is located in the mounting cavity and is fitted and connected to the rear shell 410. Components such as a driver can also be installed in the mounting cavity, which will not be listed here. If the DIP switch 220 located inside the lamp body 400 (i.e., the DIP switch 220 located in the mounting cavity) needs to be used, the rear shell 410 can be removed.

[0057] In other embodiments using a DIP switch 220 located within the lamp body 400, the light source module 420 includes a light source heat sink bracket, a light-emitting element (e.g., an LED light source), and a panel assembly. The light-emitting element is attached to the front of the light source heat sink bracket, a rear cover 410 is snapped onto the rear side of the light source heat sink bracket, and the panel assembly covers the front of the light source heat sink bracket. An adjustment through-hole 411 is provided on the light source heat sink bracket, and the DIP switch 220 extends through the adjustment through-hole 411 to the front of the light source heat sink bracket. Adjustment can be made by disassembling the panel assembly.

[0058] In some embodiments, see Figures 10 to 12 The rear housing 410 is provided with a reinforcing rib 412, and an adjustment through hole 411 is formed on the reinforcing rib 412. The DIP switch assembly 100 is installed on the inner side of the reinforcing rib 412. The "inner side of the reinforcing rib 412" refers to the side of the reinforcing rib 412 facing the inner cavity of the lamp body 400. The reinforcing rib 412 enhances the structural strength of the solid area. By installing the DIP switch on the reinforcing rib 412, the reinforcing rib 412 can better withstand the assembly force of the DIP switch, preventing deformation of the rear housing 410 in this area during assembly. Furthermore, during the toggle of the DIP switch push button 220, a force parallel to the second path is generated. By providing the reinforcing rib 412, the lateral load-bearing capacity is improved, preventing deformation of the rear housing 410 during the toggle of the DIP switch push button 220.

[0059] Specifically, the mounting ear 320 is directly connected to the reinforcing rib 412 via threaded fastener 370, thereby ensuring assembly strength.

[0060] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A DIP switch, characterized in that, include: The luminaire assembly (100) and the luminaire cover (200) include a cover plate (210) and at least two luminaire push buttons (220). The cover plate (210) is connected to the luminaire assembly (100), and the luminaire push buttons (220) are connected to the cover plate (210). Two adjacent luminaire push buttons (220) are arranged at an angle, and at least one of the luminaire push buttons (220) extends beyond the luminaire body (400).

2. The DIP switch as described in claim 1, characterized in that, The DIP switch also includes a mounting housing (300) with a mounting groove (310) opening in a first direction. A snap fastener (330) is provided in the mounting groove (310) and engages with the DIP switch assembly (100) to limit the displacement of the DIP switch assembly (100) in the first direction.

3. The DIP switch as described in claim 2, characterized in that, The mounting housing (300) has outwardly extending mounting ears (320) at the opening edge, which can be connected to the lamp body (400) by fasteners.

4. The DIP switch as described in claim 2, characterized in that, The DIP switch assembly (100) has a DIP switch end (110) extending along a first direction and capable of reciprocating along a second path; the cover plate (210) is arranged perpendicular to the first direction, the cover plate (210) covers the side of the DIP switch assembly (100) where the DIP switch end (110) is located, and the cover plate (210) has a fixing groove (211) that is adapted to engage with the DIP switch end (110).

5. The DIP switch as described in claim 4, characterized in that, One of the DIP switches (220) is located on the cover plate (210) on the side opposite to the DIP switch assembly (100). The DIP switch (220) is located corresponding to the fixing groove (211), and the fixing groove (211) extends into the corresponding DIP switch (220). The remaining DIP switches (220) are located on the edge of the cover plate (210).

6. The DIP switch as described in claim 4 or 5, characterized in that, At least one of the DIP switches (220) is disposed on the edge of the cover plate (210). The DIP switch (220) disposed on the edge of the cover plate (210) is defined as a second push button (222). The second push button (222) includes a connecting plate (2221) and a push button body (2222). The connecting plate (2221) is connected between the edge of the cover plate (210) and the push button body (2222). The connecting plate (2221) extends along a third path, wherein the third path is perpendicular to the first direction and the second path.

7. The DIP switch as described in claim 6, characterized in that, The edge of the mounting housing (300) on the opening side is provided with a clearance groove (311), the connecting plate (2221) extends out of the clearance groove (311) and can move along the second path in the clearance groove (311).

8. The DIP switch as described in claim 6, characterized in that, The push button body (2222) is plate-shaped, with its plate surface perpendicular to the third path. One side of the push button body (2222) is connected to the connecting plate (2221), and the other side of the plate surface is provided with actuating ridges (2223).

9. A linear light, characterized in that, The lamp includes a lamp body (400) and a DIP switch as described in any one of claims 1-8, wherein the DIP switch is installed inside the lamp body (400), and an adjustment through hole (411) is provided on the rear shell (410) of the lamp body (400), wherein at least one of the DIP push buttons (220) passes through the adjustment through hole (411) and extends out of the rear shell (410) in the DIP switch.

10. The linear light as described in claim 9, characterized in that, The rear shell (410) is provided with a reinforcing rib (412), the adjustment through hole (411) is opened on the reinforcing rib (412), and the dial component (100) is installed on the inner side of the reinforcing rib (412).