Energy-saving LED (light-emitting diode) edgeless line lamp

Through the design of reflective components and dimming components, the problem of low pass rate and dazzling edge line lighting is solved, and high brightness and soft light output and energy-saving effect are achieved.

CN120444581AActive Publication Date: 2025-08-08JIANGMEN MAIFEITE PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202510793686.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-08-08
Estimated Expiration
2045-06-13

AI Technical Summary

Technical Problem

Existing edgeless line lamps have low light passing rate when soft light is needed, increasing voltage and current will increase energy consumption, while removing the frosted board will cause direct light to shine.

Method used

The reflective component and dimming member design are adopted to refract and gather light through the reflective cup, and the light angle is controlled by using the uniform component and anti-glare cover. The position of the scattering plate is adjusted in combination with the pumping mechanism to achieve soft light output.

Benefits of technology

Improves light utilization and brightness, avoids dazzling light, and does not require increasing voltage and current, achieving energy-saving effects.

✦ Generated by Eureka AI based on patent content.

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    Figure CN120444581A_ABST
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Abstract

The invention relates to the technical field of lamps, in particular to an energy-saving LED rimless line lamp which comprises a rimless outer frame, a rimless lamp body, a light reflecting assembly and an anti-dazzle cover, the rimless lamp body is arranged in the rimless outer frame, a substrate is arranged in the rimless lamp body, an LED lamp is arranged on the substrate, the light reflecting assembly is arranged in the rimless lamp body, a light uniformizing assembly is arranged on the light reflecting assembly, and the anti-dazzle cover is arranged on the light uniformizing assembly. Through the arrangement of the reflection cup, light rays are refracted and gathered forwards, the utilization rate of the light rays is improved, the illumination brightness is improved, through the arrangement of the dimming component, when the scattering bottom plate and the movable scattering plate are far away, the light rays are scattered for multiple times in the refraction barrel and then are irregularly emitted, illumination is soft, and when the scattering bottom plate and the movable scattering plate are attached, the light rays are not scattered. The protrusions and the grooves are filled and leveled up, the refraction and scattering effects of light are reduced, the passing rate of the light is increased, and the brightness and the energy-saving effect are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of lamps, and in particular to an energy-saving LED borderless linear lamp. Background Art

[0002] Lamps are devices that emit light through light sources (such as incandescent lamps, fluorescent lamps, LEDs, etc.) and are used to illuminate spaces or objects. They are both functional and decorative. Among them, LED borderless line lights (also known as borderless linear lights) are flexible decorative lamps that use LED light sources. They are installed in embedded or seamless ways to achieve perfect integration with walls, ceilings or cabinets.

[0003] When using the borderless line lamps in the prior art, it is often necessary to emit soft light according to the usage conditions. In this case, a frosted plate needs to be set in front of the lamp to scatter the light. However, due to the obstruction of the frosted plate, the light transmittance is low. When the brightness needs to be increased, it is necessary to increase the voltage and current. The lamps generally have a long service life. Increasing the voltage and current will increase energy consumption. If the frosted plate is removed directly, the light will be directed directly, forming a bright lighting area on the illuminated surface, which will be dazzling when reading or other work. Therefore, it is necessary to propose an energy-saving LED borderless line lamp to solve the above problems. Summary of the Invention

[0004] The object of the present invention is to provide an energy-saving LED borderless line light to solve the problems raised in the above background technology.

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] An energy-saving LED borderless linear light, comprising:

[0007] A borderless outer frame, wherein the borderless outer frame is provided with fixed side panels, and the fixed side panels are provided with mounting holes;

[0008] A borderless lamp body, the borderless lamp body is arranged in the borderless outer frame, a substrate is arranged in the borderless lamp body, and an LED lamp is arranged on the substrate;

[0009] A reflective component, the reflective component is arranged in the rimless lamp body, and a light uniforming component is arranged on the reflective component, and the reflective component is used to reflect the light irradiated on the reflective component to the light uniforming component;

[0010] An anti-glare cover is provided on the reflective assembly and is used to limit the irradiation angle of light.

[0011] Preferably, the borderless lamp body and the borderless outer frame are connected by a snap buckle, and the snap buckle includes a fixed snap buckle and a hook snap buckle. The fixed snap buckle is arranged on the borderless lamp body and passes through the borderless outer frame. The hook snap buckle includes a snap buckle shell, a hook groove arranged in the snap buckle shell, and a movable hook block symmetrically arranged in the hook groove. The fixed snap buckle is used to be inserted between the movable hook blocks so that the movable hook block hooks the fixed snap buckle, so that the movable hook block presses against the borderless outer frame, thereby connecting the borderless lamp body and the borderless outer frame.

[0012] Preferably, the borderless lamp body is provided with a power supply line passing through the borderless outer frame, and a driver is provided on the power supply line.

[0013] Preferably, an anti-pull buckle is provided on the borderless outer frame, the anti-pull buckle is fixed by a wire pressing block, a locking wire is provided on the anti-pull buckle, and a pig gallbladder buckle is provided on the locking wire.

[0014] Preferably, the reflective assembly includes a reflective base arranged in the borderless lamp body, a reflective cup arranged on the reflective base, a positioning baffle arranged at the opening of the reflective cup, and a slot opened on the reflective base. A hook plate is provided on the anti-glare cover, and the hook plate is used to be inserted into the slot to connect the anti-glare cover and the reflective base.

[0015] Preferably, the light homogenizing assembly includes a frosted sheet arranged at the opening of the reflective cup and a positioning flange arranged on the frosted sheet, and the positioning flange is used to be inserted into the gap between the positioning baffles to limit the position of the frosted sheet.

[0016] Preferably, the light homogenization component includes an adjustment component arranged on the borderless outer frame, a dimming component arranged at the opening of the reflective cup and in the positioning baffle, and the adjustment component includes an air pumping mechanism arranged on the borderless outer frame and a ventilation pipe arranged in the borderless lamp body.

[0017] Preferably, the air pumping mechanism includes a power component arranged on the borderless outer frame and a switch component connected to the power component, the power component includes a power box arranged on the borderless outer frame, a micro air pump arranged in the power box, a bracket arranged in the power box, a filter cartridge arranged on the bracket, and a filter element arranged in the filter cartridge; the switch component includes a switch tube connected to the micro air pump, a sealing ring and a fixing ring arranged in the switch tube, a moving rod inserted in the fixing ring, a sealing block arranged on the moving rod, and an electric push rod connected to the moving rod.

[0018] Preferably, the dimming component includes a refractive cylinder arranged at the opening of the reflective cup, a scattering base plate arranged in the refractive cylinder, an annular scattering groove arranged on the scattering base plate, an arc groove arranged on the bottom wall of the annular scattering groove, a piston arranged in the refractive cylinder, a movable scattering plate arranged in the piston, an annular protrusion arranged on the movable scattering plate, an arc protrusion arranged on the annular protrusion, and an air duct opened on the scattering base plate, and the air pipe includes a main pipe connected to the switch pipe, and a branch pipe arranged on the main pipe and connected to the air duct.

[0019] Preferably, when the micro air pump starts to pump air to the switch tube, the electric push rod pushes open the sealing block, allowing the gas to enter the refractive cylinder, pushing the piston to move, driving the annular protrusion and the arc protrusion away from the annular scattering groove and the arc groove, so that the light is scattered when passing through the annular scattering groove and the arc groove and the annular protrusion and the arc protrusion; when the micro air pump starts to inhale air to the switch tube, the electric push rod pulls the sealing block to move, allowing the gas to enter the refractive cylinder and be sucked out, driving the piston to move toward the scattering bottom plate, driving the annular protrusion and the arc protrusion to be inserted into the annular scattering groove and the arc groove, and the movable scattering plate fits against the scattering bottom plate to improve the light transmission rate.

[0020] Compared with the prior art, the present invention has the following beneficial effects:

[0021] The present invention refracts and focuses light forward through the provision of a reflective cup, thereby improving light utilization and increasing light brightness. Through the provision of a dimming component, when the scattering base plate and the movable scattering plate are separated from each other, the light is scattered multiple times in the refraction cylinder and then emitted irregularly, making the light soft and avoiding glare when reading or other activities. When the scattering base plate and the movable scattering plate are attached, the protrusions and grooves thereon are filled, reducing the refraction and scattering effects of the light and improving the light transmittance. At this time, the brightness of the lamp is improved, and there is no need to increase the voltage and current of the LED lamp, making the lamp more energy-efficient. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic structural diagram of an embodiment of the present invention;

[0023] Figure 2 This is a rear structural schematic diagram of the first embodiment of the present invention;

[0024] Figure 3 This is a schematic diagram of the rear view structure after the borderless outer frame is hidden according to the first embodiment of the present invention;

[0025] Figure 4 Schematic diagram of the structure of the reflective assembly, the light homogenizing assembly and the anti-glare cover in the first embodiment of the present invention;

[0026] Figure 5 Schematic diagram of the structure of the reflective assembly and the light uniforming assembly in the first embodiment of the present invention;

[0027] Figure 6 Schematic diagram of the structure of the reflective assembly in embodiment 1 of the present invention;

[0028] Figure 7 This is a structural diagram of the hook buckle of the present invention;

[0029] Figure 8 This is a schematic structural diagram of the power supply line of the present invention;

[0030] Figure 9 This is a structural diagram of embodiment 2 of the present invention;

[0031] Figure 10 This is a schematic diagram of the structure of the second embodiment of the present invention after the anti-glare cover is hidden;

[0032] Figure 11 This is a schematic structural diagram of a power box according to a second embodiment of the present invention;

[0033] Figure 12 This is a schematic cross-sectional view of the power box according to the second embodiment of the present invention;

[0034] Figure 13 Schematic diagram of the cross-sectional structure of the switch tube according to the second embodiment of the present invention;

[0035] Figure 14 Schematic diagram of the structure of the light uniformity component of the second embodiment of the present invention;

[0036] Figure 15 Schematic diagram of the structure of the dimming component of the second embodiment of the present invention;

[0037] Figure 16 Schematic diagram of the cross-sectional structure of the dimming component according to the second embodiment of the present invention;

[0038] Figure 17 This is a schematic structural diagram of a scattering base plate according to a second embodiment of the present invention;

[0039] Figure 18 Schematic diagram of the cross-sectional structure of the scattering base plate according to the second embodiment of the present invention;

[0040] Figure 19 This is a schematic structural diagram of a movable scattering plate according to a second embodiment of the present invention;

[0041] Figure 20 Schematic diagram of the cross-sectional structure of the annular scattering groove and the arc groove on the scattering base plate of the second embodiment of the present invention;

[0042] Figure 21Schematic diagram of the cross-sectional structure of the annular protrusion and the arc protrusion on the movable scattering plate according to the second embodiment of the present invention.

[0043] In the figure: 1. Borderless outer frame; 2. Fixed side panel; 3. Mounting hole; 4. Borderless lamp body; 5. Base plate; 6. LED lamp; 7. Anti-glare cover; 8. Fixed buckle; 9. Buckle shell; 10. Hooking slot; 11. Movable hook block; 12. Power supply line; 13. Driver; 14. Anti-pull buckle; 15. Wire pressing block; 16. Locking wire; 17. Pig gallbladder buckle; 18. Reflective base; 19. Reflective cup; 20. Positioning baffle; 21. Slot; 22. Hook plate; 23. Frosted sheet; 24. Fixed Position flange; 25. Power box; 26. Micro air pump; 27. Bracket; 28. Filter cartridge; 29. Filter element; 30. Switch tube; 31. Sealing ring; 32. Fixing ring; 33. Moving rod; 34. Sealing block; 35. Electric push rod; 36. Refraction cylinder; 37. Scattering bottom plate; 38. Annular scattering groove; 39. Arc groove; 40. Piston; 41. Movable scattering plate; 42. Annular protrusion; 43. Arc protrusion; 44. Air duct; 45. Main pipeline; 46. Branch pipeline. DETAILED DESCRIPTION

[0044] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0045] See also Figures 1 to 21 , the present invention provides a technical solution:

[0046] Embodiment 1: An energy-saving LED borderless line light, comprising:

[0047] A borderless outer frame 1 is provided with a fixed side panel 2, which is fixedly connected to the borderless outer frame 1 by integral molding or the like. The fixed side panel 2 is provided with a mounting hole 3, which is used to insert fasteners such as bolts to mount the borderless outer frame 1 on a work surface.

[0048] The borderless lamp body 4 is arranged in the borderless outer frame 1, and a cavity is arranged in the borderless lamp body 4. The borderless lamp body 4 and the borderless outer frame 1 are connected by a snap buckle, and the snap buckle includes a fixed snap buckle 8 and a hook snap buckle. The fixed snap buckle 8 is arranged on the borderless lamp body 4 and passes through the borderless outer frame 1. The hook snap buckle includes a snap buckle shell 9, a hook groove 10 and a movable hook block 11. The hook groove 10 is arranged in the snap buckle shell 9. The movable hook block 11 is symmetrically arranged in the hook groove 10. The movable hook block 11 is fixedly connected to the snap buckle shell 9 by integral molding or the like. The movable hook block 11 can be made of elastic material so that the movable hook block 11 can be moved so that the fixed snap buckle 8 can be inserted between the movable hook blocks 11, so that the movable hook block 11 hooks the fixed snap buckle 8, and the movable hook block 11 is against the borderless outer frame 1, thereby connecting the borderless lamp body 4 and the borderless outer frame 1.

[0049] A substrate 5 is provided in the borderless lamp body 4, and the substrate 5 is fixedly connected to the bottom wall of the inner cavity of the borderless lamp body 4 by setting screws or the like. An LED lamp 6 is provided on the substrate 5, and the LED lamp 6 is fixedly connected to the substrate 5 by soldering or the like. A power supply line 12 is provided on the borderless lamp body 4 and passes through the borderless outer frame. The power supply line 12 is a 2*0.5 square red and black wire wrapped with glue, the outer black glue at both ends is peeled 13mm, the red and black wire at one end is 2mm tinned, and the red and black wire at the other end is peeled 4mm tinned. The power supply line 12 is fixedly connected to the substrate 5 by soldering or the like. The power supply line 12 is used to supply power to the LED lamp 6. A driver 13 is provided on the power supply line 12. The driver 13 is used to provide stable and safe power conversion and control for the LED lamp 6 to ensure its efficient and reliable operation.

[0050] An anti-pull buckle 14 is provided on the borderless outer frame 1, and the anti-pull buckle 14 is fixed by a wire pressing block 15. The anti-pull buckle 14 and the wire pressing block 15 are fixed to the borderless outer frame 1 by setting screws passing through the anti-pull buckle 14 and the wire pressing block 15. A locking wire 16 is provided on the anti-pull buckle 14, and a metal ring is provided at the end of the locking wire 16. The locking wire 16 is fixedly connected to the anti-pull buckle 14 by setting screws or the like. A pig gall buckle 17 is provided on the other end of the locking wire 16, and the pig gall buckle 17 is fixedly connected to the locking wire 16 by welding or the like.

[0051] The reflective component is arranged in the borderless lamp body 4, and a uniform light component is arranged on the reflective component. The reflective component includes a reflective base 18, a reflective cup 19, a positioning baffle 20 and a card slot 21. The reflective base 18 is arranged in the borderless lamp body 4, and the reflective base 18 is fixedly connected to the borderless lamp body 4 by setting screws or the like. The reflective cup 19 is arranged on the reflective base 18, and the reflective cup 19 is fixedly connected to the reflective base 18 by gluing or integral molding or the like. The positioning baffle 20 is arranged at the opening of the reflective cup 19, and the positioning baffle 20 is fixedly connected to the reflective base 18 by integral molding or the like. The positioning baffle 20 is a circular protrusion 42 with a notch surrounding the opening of the reflective cup 19, and the card slot 21 is opened on the reflective base 18.

[0052] The anti-glare cover 7 is arranged on the reflective component to limit the irradiation angle of light. A hook plate 22 is provided on the anti-glare cover 7. The hook plate 22 is fixedly connected to the anti-glare cover 7 by means of integral molding or the like. The hook plate 22 is used to be inserted into the card slot 21 so that the hook plate 22 hooks the bottom wall of the anti-glare cover 7 to connect the anti-glare cover 7 and the reflective base 18.

[0053] The light uniforming component includes a frosted sheet 23 and a positioning flange 24. The frosted sheet 23 is arranged at the opening of the reflective cup 19, and the frosted sheet 23 is snapped into the positioning baffle 20. The positioning flange 24 is arranged on the frosted sheet 23, and the positioning flange 24 is snapped into the notch of the positioning baffle 20 to limit the position of the frosted sheet 23. The reflective cup 19 is used to reflect light onto the frosted sheet 23, and the frosted sheet 23 is used to scatter light to the surroundings to make the light soft.

[0054] Embodiment 2: The only difference between Embodiment 2 and Embodiment 1 is that the light uniformity component includes an adjusting component and a dimming component.

[0055] The light homogenization assembly includes an adjustment member arranged on the borderless outer frame 1, a dimming member arranged at the opening of the reflective cup 19 and arranged in the positioning baffle 20, and the adjustment member includes an air pump mechanism arranged on the borderless outer frame 1 and a vent pipe arranged in the borderless lamp body 4.

[0056] The air pump mechanism includes a power component arranged on the borderless outer frame 1 and a switch component connected to the power component. The power component includes a power box 25, a micro air pump 26, a bracket 27, a filter cartridge 28 and a filter element 29. The switch component includes a switch tube 30, a sealing ring 31, a fixing ring 32, a moving rod 33, a sealing block 34 and an electric push rod 35. The power box 25 is arranged on the borderless outer frame 1. The power box 25 is fixedly connected to the borderless outer frame 1 by setting screws or the like. An air inlet hole is opened on the wall of the power box 25, and the inner wall of the power box 25 can be set Sound-absorbing cotton is used to reduce noise. A micro air pump 26 is arranged in the power box 25. The micro air pump 26 is fixedly connected to the inner wall of the power box 25 by setting screws or the like. A bracket 27 is arranged in the power box 25. The bracket 27 is fixedly connected to the inner wall of the power box 25 by setting screws or the like. A filter cartridge 28 is arranged on the bracket 27. The filter cartridge 28 is fixedly connected to the bracket 27 by gluing or the like. A filter element 29 is arranged in the filter cartridge 28. The filter element 29 can be made of materials such as polyurethane sponge and air filter membrane to filter dust in the air.

[0057] The switch component includes a switch tube 30, a sealing ring 31, a fixing ring 32, a moving rod 33, a sealing block 34 and an electric push rod 35. The switch tube 30 is connected to the micro air pump 26 and is fixedly connected to the micro air pump 26 by gluing and setting a pipeline. The sealing ring 31 and the fixing ring 32 are respectively arranged in the switch tube 30. The sealing ring 31 and the fixing ring 32 are respectively fixedly connected to the inner wall of the switch tube 30 by welding. The moving rod 33 is inserted into the fixing ring 32 and is movably connected to the fixing ring 32. The sealing block 34 is arranged on the moving rod 33 and is fixedly connected to the moving rod 33 by setting screws. The electric push rod 35 is connected to the moving rod 33. The electric push rod 35 is fixedly connected to the switch tube 30 by setting a fixing frame and welding. The electric push rod 35 is fixedly connected to the moving rod 33 by setting screws.

[0058] The dimming component includes a refractive cylinder 36, a scattering base 37, an annular scattering groove 38, an arc groove 39, a piston 40, a movable scattering plate 41, an annular protrusion 42, an arc protrusion 43 and an air duct 44. The refractive cylinder 36 is arranged at the opening of the reflective cup 19. The outer wall of the refractive cylinder 36 is also provided with a protrusion that is inserted into the notch of the positioning baffle 20. The refractive cylinder 36 is fixedly connected to the reflective base 18 by gluing or the like. The scattering base 37 is arranged in the refractive cylinder 36. The scattering base 37 is fixedly connected to the refractive cylinder 36 by gluing or the like. The annular scattering groove 38 is arranged on the scattering base 37. The cross-section of the annular scattering groove 38 is an inverted trapezoid. The arc groove 39 is arranged on the bottom wall of the annular scattering groove 38. The piston 40 is arranged in the refractive cylinder 36. The piston 40 is movably connected to the refractive cylinder 36. The movable scattering plate 41 is arranged in the piston 40. The movable scattering plate 41 is fixedly connected to the reflective base 18 by gluing or the like. The scattering bottom plate 37 and the movable scattering plate 41 are fixedly connected to the piston 40 by means of gluing, etc. The material of the scattering bottom plate 37 and the movable scattering plate 41 can be selected from transparent materials such as acrylic or glass. The annular protrusion 42 is provided on the movable scattering plate 41. The cross-sectional shape of the annular protrusion 42 is trapezoidal. The shape of the annular protrusion 42 coincides with the shape of the annular scattering groove 38. The arc protrusion 43 is provided on the annular protrusion 42. The shape of the arc protrusion 43 coincides with the shape of the arc groove 39. The air duct 44 is opened on the scattering bottom plate 37. The air duct includes a main pipe 45 and a branch pipe 46. The main pipe 45 is communicated with the switch pipe 30. The main pipe 45 is fixedly connected to the switch pipe 30 by means of gluing, etc. The branch pipe 46 is provided on the main pipe 45 and communicates with the air duct 44. The branch pipe 46 is fixedly connected to the main pipe 45 by means of gluing, etc., and the branch pipe 46 is fixedly connected to the inner wall of the air duct 44 by means of gluing, etc. Figure 16 The positions of the middle scattering base plate 37 and the movable scattering plate 41 can be swapped so that the scattering base plate 37 is closer to the light outlet of the refractive cylinder 36. At this time, when the movable scattering plate 41 is away from the scattering base plate 37, the light is scattered by the movable scattering plate 41, so that the light is reflected multiple times on the inner wall of the refractive cylinder 36 and then scattered out of the refractive cylinder 36 from the fixed scattering plate 41, making the light softer. The farther the distance between the movable scattering plate 41 and the scattering base plate 37, the softer the light. When the movable scattering plate 41 is in contact with the scattering base plate 37, the light can pass through the movable scattering plate 41 and the scattering base plate 37 relatively directly, reducing the scattering angle and the number of refractions, thereby improving the brightness of the lamp.

[0059] Working principle: During use, when the micro air pump 26 starts to pump air to the switch tube 30, the electric push rod 35 pushes open the sealing block 34, allowing the gas to enter the refractive cylinder 36, pushing the piston 40 to move, driving the annular protrusion 42 and the arc protrusion 43 away from the annular scattering groove 38 and the arc groove 39, so that the light is scattered when passing through the annular scattering groove 38 and the arc groove 39 and the annular protrusion 42 and the arc protrusion 43, making the light soft. When the micro air pump 26 starts to inhale air to the switch tube 30, the electric push rod 35 pulls the sealing block 34 to move, so that the gas enters the refractive cylinder 36 and is sucked out, driving the piston 40 to move toward the scattering bottom plate 37, driving the annular protrusion 42 and the arc protrusion 43 to be inserted into the annular scattering groove 38 and the arc groove 39, and the movable scattering plate 41 fits the scattering bottom plate 37, reducing the scattering angle and the number of refractions, thereby improving the light transmittance and the brightness of the light.

[0060] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An energy-saving LED borderless line light, characterized in that: include: A borderless outer frame, wherein the borderless outer frame is provided with fixed side panels, and the fixed side panels are provided with mounting holes; A borderless lamp body, the borderless lamp body is arranged in the borderless outer frame, a substrate is arranged in the borderless lamp body, and an LED lamp is arranged on the substrate; A reflective component, the reflective component is arranged in the rimless lamp body, and a light uniforming component is arranged on the reflective component, and the reflective component is used to reflect the light irradiated on the reflective component to the light uniforming component; An anti-glare cover is provided on the reflective assembly and is used to limit the irradiation angle of light.

2. The energy-saving LED borderless line light according to claim 1, characterized in that: The borderless lamp body and the borderless outer frame are connected by a snap buckle, which includes a fixed snap buckle and a hooking snap buckle. The fixed snap buckle is arranged on the borderless lamp body and passes through the borderless outer frame. The hooking snap buckle includes a snap buckle shell, a hooking groove arranged in the snap buckle shell, and a movable hook block symmetrically arranged in the hooking groove. The fixed snap buckle is used to be inserted between the movable hook blocks so that the movable hook block hooks the fixed snap buckle, so that the movable hook block presses against the borderless outer frame, thereby connecting the borderless lamp body and the borderless outer frame.

3. The energy-saving LED borderless line light according to claim 1, characterized in that: The borderless lamp body is provided with a power supply line passing through the borderless outer frame, and a driver is provided on the power supply line.

4. The energy-saving LED borderless line light according to claim 1, characterized in that: The borderless outer frame is provided with an anti-pull buckle, the anti-pull buckle is fixed by a wire pressing block, the anti-pull buckle is provided with a locking wire, and the locking wire is provided with a pig gallbladder buckle.

5. The energy-saving LED borderless line light according to claim 1, characterized in that: The reflective assembly includes a reflective base arranged in the borderless lamp body, a reflective cup arranged on the reflective base, a positioning baffle arranged at the opening of the reflective cup, and a card slot opened on the reflective base. A hook plate is provided on the anti-glare cover, and the hook plate is used to be inserted into the card slot to connect the anti-glare cover and the reflective base.

6. The energy-saving LED borderless line light according to claim 5, characterized in that: The light homogenizing assembly includes a frosted sheet arranged at the opening of the reflective cup and a positioning flange arranged on the frosted sheet. The positioning flange is used to be inserted into the gap between the positioning baffles to limit the position of the frosted sheet.

7. The energy-saving LED borderless line light according to claim 5, characterized in that: The light homogenization component includes an adjustment component arranged on the borderless outer frame, a dimming component arranged at the opening of the reflective cup and arranged in the positioning baffle, and the adjustment component includes an air pump mechanism arranged on the borderless outer frame and a vent pipe arranged in the borderless lamp body.

8. The energy-saving LED borderless line light according to claim 7, characterized in that: The air pumping mechanism includes a power component arranged on the borderless outer frame and a switch component connected to the power component. The power component includes a power box arranged on the borderless outer frame, a micro air pump arranged in the power box, a bracket arranged in the power box, a filter cartridge arranged on the bracket, and a filter element arranged in the filter cartridge. The switch component includes a switch tube connected to the micro air pump, a sealing ring and a fixing ring arranged in the switch tube, a moving rod inserted in the fixing ring, a sealing block arranged on the moving rod, and an electric push rod connected to the moving rod.

9. The energy-saving LED borderless line light according to claim 8, characterized in that: The dimming component includes a refractive cylinder arranged at the opening of the reflective cup, a scattering base plate arranged in the refractive cylinder, an annular scattering groove arranged on the scattering base plate, an arc groove arranged on the bottom wall of the annular scattering groove, a piston arranged in the refractive cylinder, a movable scattering plate arranged in the piston, an annular protrusion arranged on the movable scattering plate, an arc protrusion arranged on the annular protrusion, and an air passage opened on the scattering base plate. The air pipe includes a main pipe connected to the switch pipe and a branch pipe arranged on the main pipe and connected to the air passage.

10. The energy-saving LED borderless line light according to claim 9, characterized in that: When the micro air pump starts to pump air to the switch tube, the electric push rod pushes open the sealing block, allowing the gas to enter the refractive cylinder, pushing the piston to move, driving the annular protrusion and the arc protrusion away from the annular scattering groove and the arc groove, so that the light is scattered when passing through the annular scattering groove and the arc groove and the annular protrusion and the arc protrusion; when the micro air pump starts to inhale air to the switch tube, the electric push rod pulls the sealing block to move, allowing the gas to enter the refractive cylinder and be sucked out, driving the piston to move toward the scattering base plate, driving the annular protrusion and the arc protrusion to be inserted into the annular scattering groove and the arc groove, and the movable scattering plate fits against the scattering base plate to improve the light transmission rate.

Citation Information

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