Optoelectronic integrated tunnel lamp
By designing a photoelectric integrated tunnel lamp and automatically adjusting the lighting source using photosensitive sensors and solar panels, the problems of waste of electricity and reduced LED service life of existing tunnel lamps are solved, and the effects of energy conservation and emission reduction and LED service life are achieved.
Patent Information
- Application Number
- CN202210347468.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-04-01
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2042-04-01
AI Technical Summary
Existing tunnel lights have resulted in waste of electricity and reduced service life of LEDs during long-term use, resulting in waste of energy and increased carbon emissions.
A photoelectric integrated tunnel lamp is designed, which is electrically connected to the light receiver through the optical fiber lamp. The switching state of the power block is controlled by using a photosensitive sensor, and combined with the solar panel to store electrical energy, so as to automatically adjust the lighting source when the external light intensity changes to reduce the working intensity of the LED.
It realizes automatic adjustment of the lighting source when the external light intensity changes, reduces the working intensity of the LED, extends the service life of the LED, and achieves the effect of energy saving and emission reduction.
Smart Images

Figure CN114754321B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of lamps, and more specifically, to an optoelectronic integrated tunnel lamp. Background Art
[0002] To solve the "black hole effect" or "white hole effect" on vision caused by the sudden change in brightness when a vehicle enters or exits a tunnel, special lamps are used for tunnel lighting. Due to the good lighting effect of LED lamps, LED lamps are generally used for lighting in tunnels.
[0003] Traditional tunnel lamps use pure LED lamps for lighting. Prolonged use of LED lamps for lighting will cause a large amount of waste of electric energy and at the same time reduce the service life of LEDs, resulting in waste of energy and increased carbon emissions. Summary of the Invention
[0004] 1. Technical Problems to be Solved
[0005] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide an optoelectronic integrated tunnel lamp, which can save electric energy and extend the service life of LEDs, thereby achieving the effect of energy conservation and emission reduction.
[0006] 2. Technical Solutions
[0007] To solve the above problems, the present invention adopts the following technical solutions.
[0008] The optoelectronic integrated tunnel lamp includes a fiber optic lamp. The fiber optic lamp is electrically connected to an external daylighting device through an optical fiber. On the side of the fiber optic lamp opposite to the lighting surface, two symmetrically distributed fixing blocks are fixedly connected. A control box is provided between the two fixing blocks and is fixedly connected to the outer wall of the fiber optic lamp. A power supply block, a controller, and an alarm are installed in the control box. On the opposite sides of the two fixing blocks, a U-shaped frame I is pivotally connected. A photosensitive sensor is fixedly connected to the outer wall of the U-shaped frame I and is electrically connected to both the power supply block and the controller. U-shaped frames II are fixedly connected to both the upper and lower surfaces of the fiber optic lamp. A positioning shaft is fixedly connected to the inner wall of one end of the U-shaped frame II. A threaded shaft II penetrates through the inner wall of the other end of the U-shaped frame II and is screwed to the U-shaped frame II. An LED lamp is provided in the U-shaped frame II, and the opposite sides of the LED lamp are respectively penetrated and connected by the positioning shaft and the threaded shaft II. The LED lamp is electrically connected to the power supply block. A momentary switch is provided on the upper surface of the control box and is electrically connected to the control box. The momentary switch penetrates through the upper surface of the control box.
[0009] Furthermore, a pressing block is attached to the upper surface of the control box in a fitting manner. A spring is fixedly connected to the upper surface of the pressing block. The top end of the spring is fixedly connected to a rectangular frame. Two first connecting blocks are respectively pin-connected to the inner wall of the rectangular frame and are symmetrically distributed. A second U-shaped block is fixedly connected to the upper surface of the rectangular frame, and a supporting block is pin-connected to the inner wall of the second U-shaped block. One end of the supporting block opposite to the optical fiber lamp is fixedly connected to the first U-shaped bracket. Two symmetric first U-shaped blocks are fixedly connected to the upper surface of the control box. A second connecting block is pin-connected inside the first U-shaped block. Grooves are formed at the opposite ends of the two second connecting blocks, and the outer walls of the first connecting blocks are in limit sliding connection with the grooves.
[0010] Furthermore, a plurality of threaded holes are formed in both of the fixing blocks and are semicircularly distributed. Threaded shafts for connecting the threaded holes penetrate through the opposite sides of the first U-shaped bracket, and the threaded shafts are screwed with the threaded holes.
[0011] Furthermore, condenser plates are fixedly connected to both the left and right sides of the optical fiber lamp. Oblique grooves are formed on the opposite sides of the two condenser plates, and a refraction sheet is fixedly connected inside the oblique grooves. The refraction sheet is made of a reflective film.
[0012] Furthermore, lamp plates are fixedly connected to the opposite sides of the two LED lamps. The lamp plates are made of one-way glass, and the reflective surface of the one-way glass is arranged on the outer side of the LED lamp.
[0013] Furthermore, a plurality of groups of heat dissipation grooves are formed on the upper and lower surfaces of the optical fiber lamp, and the shapes of the plurality of groups of heat dissipation grooves are all rectangular.
[0014] Furthermore, a protective net is fixedly connected to the side of the optical fiber lamp opposite to the control box. The protective net is made of hard transparent plastic.
[0015] Furthermore, the power supply block is a storage battery, and the power supply block is electrically connected to an external solar panel.
[0016] Furthermore, one end of the positioning shaft penetrates through the LED lamp and is in limit rotational connection with the LED lamp. One end of the threaded shaft penetrates through the LED lamp and is screwed with the LED lamp. A partial arc contour of one end of the threaded shaft relative to the positioning shaft is a smooth surface.
[0017] Furthermore, the two first connecting blocks are flush with the surface of the control box, and the spring is in a compressed state when the first connecting blocks are flush with the surface of the control box.
[0018] 3. Advantageous Effects
[0019] Compared with the prior art, the advantages of the present invention are as follows:
[0020] (1) Through the cooperation of a power supply block, a controller, and a photosensitive sensor, this solution can achieve that when the external light is strong, the photosensitive sensor controls the power supply block to turn off according to the change in the external light flux. At this time, the LED light is in the off state, and at the same time, the sunlight collector conducts the sunlight into the fiber optic lamp through the optical fiber and makes the fiber optic lamp start to emit light for lighting. When the external light is weak, the sunlight collected by the sunlight collector is weak, resulting in a poor lighting effect of the fiber optic lamp. At this time, the photosensitive sensor controls the power supply block to turn on according to the change in the external light flux and supplies power to the LED lamp, causing the LED lamp to start emitting light for lighting. Finally, it achieves the use of sunlight to illuminate the tunnel, reducing the working intensity of the LED lamp and achieving the effect of energy conservation and emission reduction.
[0021] (2) By fixedly connecting one end of the support block to the first U-shaped frame and pin-connected to the second U-shaped block at the other end, this solution can achieve that the fiber optic lamp can freely deflect at a certain angle on the first U-shaped frame. At the same time, when the fiber optic lamp separates from the first U-shaped frame, the distance between the first U-shaped frame and the fiber optic lamp increases, causing the pressing block to disengage from the momentary switch, and finally the alarm is activated to send an alarm signal to remind the personnel to quickly find its position for convenient and rapid maintenance.
[0022] (3) With multiple threaded holes semi-circularly distributed on the fixed block, this solution can achieve that when the first U-shaped frame is already fixed, the staff can rotate the fiber optic lamp to freely change the lighting angle of the fiber optic lamp. At the same time, both opposite sides of the first U-shaped frame are penetrated and connected with a first threaded shaft for connecting the threaded holes. Subsequently, using the screwing relationship between the first threaded shaft and the threaded holes, the fiber optic lamp after deflecting the angle can be fixed.
[0023] (4) By fixedly connecting the reflective film as the material of the refraction sheet to the condenser plate, this solution can achieve enhancing the lighting effect of the fiber optic lamp during lighting.
[0024] (5) With the one-way glass having a strong light reflection effect on one side, this solution can achieve enhancing the lighting effect of the fiber optic lamp during normal lighting of the fiber optic lamp. At the same time, when the external light is weak and the fiber optic lamp cannot be used, the LED lamp can emit light normally for lighting.
[0025] (6) By opening multiple groups of heat dissipation grooves on the upper and lower surfaces of the fiber optic lamp, this solution can achieve enhancing the heat dissipation effect of the fiber optic lamp when the upper and lower surfaces of the fiber optic lamp are fixedly connected to the second U-shaped block, thereby enhancing the service life of the fiber optic lamp.
[0026] (7) By fixedly connecting a protective net made of hard transparent plastic on the side of the fiber optic lamp opposite to the control box, this solution can achieve protecting the lighting surface of the fiber optic lamp without affecting the lighting of the fiber optic lamp, avoiding direct damage to the fiber optic lamp by foreign objects, and improving the service life of the fiber optic lamp.
[0027] (8) In this solution, the power supply block uses a storage battery and is electrically connected to an external solar panel, so as to convert the external solar energy into electrical energy for storage and use, further enhancing the energy-saving and emission-reduction effect of the tunnel light.
[0028] (9) In this solution, by setting the arc-shaped contour of one end part of the second threaded shaft relative to the positioning shaft as a smooth surface, when the second threaded shaft is rotated outwards to loosen the fixation of the LED lamp, the LED lamp can still maintain a stable connection relationship within the second U-shaped frame, improving the stability effect of the LED lamp within the second U-shaped frame.
[0029] (10) In this solution, by setting the surface of the first connecting block and the control box to be horizontal, and the spring being in a compressed state when the surface of the first connecting block and the control box is horizontal, when the fixed block and the first U-shaped frame break, resulting in the fiber optic lamp tilting, the distance between the rectangular frame and the control box becomes larger, causing the compression state of the spring to change and return to its normal state, so that the pressing block disengages from the momentary switch, and finally the alarm is activated to send an alarm signal, reminding the personnel to quickly find its location for convenient and quick maintenance. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 is a schematic structural diagram of the present invention;
[0031] Figure 2 is a schematic structural diagram of the second U-shaped frame of the present invention;
[0032] Figure 3 is a schematic structural diagram of the heat dissipation groove of the present invention;
[0033] Figure 4 is a schematic structural diagram of the control box, the first U-shaped block and the second U-shaped block of the present invention;
[0034] Figure 5 is a schematic structural diagram of the rectangular frame of the present invention;
[0035] Figure 6 is a schematic structural diagram of the LED lamp of the present invention;
[0036] Figure 7 is a schematic cross-sectional view of the structure of the control box of the present invention;
[0037] Figure 8 is a schematic structural diagram of the condenser plate of the present invention;
[0038] Figure 9 is a schematic structural diagram of the protective net of the present invention;
[0039] Figure 10 is a schematic structural diagram of the momentary switch of the present invention.
[0040] Description of reference numerals in the figure:
[0041] 1. Optical fiber lamp; 2. Control box; 3. Fixed block; 4. Threaded hole; 5. Power block; 6. Controller; 7. Heat dissipation groove; 8. Protective net; 9. Condensing plate; 10. Refraction sheet; 11. First threaded shaft; 12. Photosensitive sensor; 13. First U-shaped frame; 14. Second U-shaped frame; 15. Positioning shaft; 16. Second threaded shaft; 17. LED lamp; 18. Lamp board; 19. Support block; 20. Rectangular frame; 21. First connecting block; 22. Second connecting block; 23. First U-shaped block; 24. Spring; 25. Pressing block; 26. Momentary switch; 27. Alarm; 28. Second U-shaped block. Specific embodiments
[0042] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention; obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0043] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "top / bottom end", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0044] In the description of the present invention, it should be noted that unless otherwise clearly defined and limited, the terms "installed", "provided with", "sheathed / connected", "connected", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0045] Embodiment 1:
[0046] Please refer to Figure 1 , Figure 2 and Figure 7, The optoelectronic integrated tunnel lamp includes an optical fiber lamp 1. The optical fiber lamp 1 is electrically connected to an external daylight collector through an optical fiber. On the side of the optical fiber lamp 1 opposite to the lighting surface, two symmetrically distributed fixing blocks 3 are fixedly connected. A control box 2 is arranged between the two fixing blocks 3, and the control box 2 is fixedly connected to the outer wall of the optical fiber lamp 1. A power supply block 5, a controller 6, and an alarm 27 are installed in the control box 2. On the opposite sides of the two fixing blocks 3, a U-shaped frame 13 is pivotally connected. A photosensitive sensor 12 is fixedly connected to the outer wall of the U-shaped frame 13, and the photosensitive sensor 12 is electrically connected to both the power supply block 5 and the controller 6. U-shaped frames 14 are fixedly connected to both the upper and lower surfaces of the optical fiber lamp 1. A positioning shaft 15 is fixedly connected to the inner wall of one end of the U-shaped frame 14. A second threaded shaft 16 passes through and is screwed with the inner wall of the other end of the U-shaped frame 14. An LED lamp 17 is arranged in the U-shaped frame 14, and the opposite sides of the LED lamp 17 are respectively penetrated and connected with the positioning shaft 15 and the second threaded shaft 16. The LED lamp 17 is electrically connected to the power supply block 5. A momentary switch 26 is arranged on the upper surface of the control box 2, and the momentary switch 26 is electrically connected to the control box 2. The momentary switch 26 penetrates the upper surface of the control box 2. Through the cooperation of the power supply block 5, the controller 6, and the photosensitive sensor 12, when the external light is strong, the photosensitive sensor 12 starts to control the power supply block 5 to turn off according to the change of the external light flux. At this time, the LED lamp 17 is in the off state. At the same time, the daylight collector conducts the sunlight into the optical fiber lamp 1 through the optical fiber and makes the optical fiber lamp 1 start to emit light for illumination. When the external light is weak, the sunlight collected by the daylight collector is weak, resulting in a poor lighting effect of the optical fiber lamp 1. At this time, the photosensitive sensor 12 starts to control the power supply block 5 to turn on according to the change of the external light flux and supplies power to the LED lamp 17, making the LED lamp 17 start to emit light for illumination. Finally, the tunnel is illuminated by sunlight, reducing the working intensity of the LED lamp 17 and achieving the effect of energy conservation and emission reduction.
[0047] Please refer to Figure 3 , Figure 4 and Figure 5, a pressing block 25 is attached to the upper surface of the control box 2 in a fitting manner. A spring 24 is fixedly connected to the upper surface of the pressing block 25. The top end of the spring 24 is fixedly connected to a rectangular frame 20. Two first connecting blocks 21 are respectively pin-connected to the inner walls of the rectangular frame 20 and are symmetrically distributed. A second U-shaped block 28 is fixedly connected to the upper surface of the rectangular frame 20, and a support block 19 is pin-connected to the inner wall of the second U-shaped block 28. One end of the support block 19 opposite to the fiber optic lamp 1 is fixedly connected to the first U-shaped frame 13. Two symmetric first U-shaped blocks 23 are fixedly connected to the upper surface of the control box 2. A second connecting block 22 is pin-connected inside the first U-shaped block 23. Grooves are formed at the opposite ends of the two second connecting blocks 22, and the outer walls of the grooves are in limit sliding connection with the outer walls of the first connecting blocks 21. By fixedly connecting one end of the support block 19 to the first U-shaped frame 13 and pin-connecting the other end to the second U-shaped block 28, the fiber optic lamp 1 can freely deflect at a certain angle on the first U-shaped frame 13. At the same time, when the fiber optic lamp 1 is separated from the first U-shaped frame 13, the distance between the first U-shaped frame 13 and the fiber optic lamp 1 increases, so that the pressing block 25 is separated from the momentary switch 26, and finally the alarm 27 is activated to send an alarm signal to remind the personnel to quickly find its position for convenient and quick maintenance.
[0048] Please refer to Figure 2 , a plurality of threaded holes 4 are formed in both of the two fixing blocks 3, and the plurality of threaded holes 4 are semicircularly distributed. A first threaded shaft 11 for connecting the threaded holes 4 penetrates through the opposite sides of the first U-shaped frame 13, and the first threaded shaft 11 is screwed with the threaded holes 4. By the semicircular distribution of the plurality of threaded holes 4 on the fixing blocks 3, when the first U-shaped frame 13 is already fixed, the staff can rotate the fiber optic lamp 1 to freely change the illumination angle of the fiber optic lamp 1. At the same time, the first threaded shafts 11 for connecting the threaded holes 4 penetrate through the opposite sides of the first U-shaped frame 13, and then, by using the screwing relationship between the first threaded shafts 11 and the threaded holes 4, the fiber optic lamp 1 after deflecting the angle can be fixed.
[0049] Please refer to Figure 8 , condenser plates 9 are fixedly connected to the left and right sides of the fiber optic lamp 1. Oblique grooves are formed on the opposite sides of the two condenser plates 9, and a refraction sheet 10 is fixedly connected in the oblique grooves. The refraction sheet 10 is made of a reflective film. By using the reflective film as the material of the refraction sheet 10 and fixedly connecting it to the condenser plates 9, the illumination effect of the fiber optic lamp 1 during illumination can be enhanced.
[0050] Please refer to Figure 6, on both opposite sides of the two LED lights 17, there are fixedly connected lamp boards 18. The lamp boards 18 are made of one-way glass, and the reflective surface of the one-way glass is arranged on the outer side of the LED lights 17. Through the strong light reflection effect on one side of the one-way glass, when the optical fiber lamp 1 is normally illuminated, the lighting effect of the optical fiber lamp 1 can be improved. At the same time, when the external light is weak and the optical fiber lamp 1 cannot be used, the LED lights 17 can emit light normally for illumination.
[0051] Please refer to Figure 3 , on the upper and lower surfaces of the optical fiber lamp 1, there are provided multiple groups of heat dissipation grooves 7. The shapes of the multiple groups of heat dissipation grooves 7 are all rectangular. By providing multiple groups of heat dissipation grooves 7 on the upper and lower surfaces of the optical fiber lamp 1, when the upper and lower surfaces of the optical fiber lamp 1 are fixedly connected to the U-shaped bracket two 14, the heat dissipation effect of the optical fiber lamp 1 can be improved, and further the service life of the optical fiber lamp 1 can be enhanced.
[0052] Please refer to Figure 9 , on the side of the optical fiber lamp 1 opposite to the control box 2, there is fixedly connected a protective net 8. The protective net 8 is made of hard transparent plastic. By fixedly connecting a protective net 8 made of hard transparent plastic on the side of the optical fiber lamp 1 opposite to the control box 2, the lighting surface of the optical fiber lamp 1 can be protected without affecting the illumination of the optical fiber lamp 1, avoiding direct damage to the optical fiber lamp 1 by foreign objects, and improving the service life of the optical fiber lamp 1.
[0053] Please refer to Figure 7 , the power supply block 5 is a storage battery, and the power supply block 5 is electrically connected to an external solar panel. By using a storage battery for the power supply block 5 and electrically connecting it to an external solar panel, the external solar energy can be converted into electrical energy for storage and use, further enhancing the energy-saving and emission-reduction effect of the tunnel lamp.
[0054] Please refer to Figure 2 , the positioning shaft 15 passes through one end of the LED lamp 17 and is rotationally connected to the LED lamp 17 in a limited way. The threaded shaft two 16 passes through one end of the LED lamp 17 and is screwed to the LED lamp 17. One end part of the threaded shaft two 16 relative to the positioning shaft 15 has a smooth arc contour. By setting one end part of the threaded shaft two 16 relative to the positioning shaft 15 to have a smooth arc contour, when the threaded shaft two 16 is rotated outwards and the fixation of the LED lamp 17 is released, the LED lamp 17 can still maintain a stable connection relationship within the U-shaped bracket two 14, improving the stability effect of the LED lamp 17 within the U-shaped bracket two 14.
[0055] Please refer to Figure 4, the two connecting blocks 21 are flush with the surface of the control box 2. The spring 24 is in a compressed state when the connecting block 21 is flush with the surface of the control box 2. By setting the connecting block 21 to be flush with the surface of the control box 2 and the spring 24 being in a compressed state when the connecting block 21 is flush with the surface of the control box 2, when the fixed block 3 and the U-shaped frame 13 break, causing the fiber optic lamp 1 to tilt, the distance between the rectangular frame 20 and the control box 2 increases, causing the compression state of the spring 24 to change and return to its normal state, causing the pressing block 25 to disengage from the momentary switch 26, and finally the alarm 27 is activated to send an alarm signal to remind the personnel to quickly locate its position, facilitating quick maintenance.
[0056] Working principle: Through the cooperation of the power supply block 5, the controller 6, and the photosensitive sensor 12, when the external light is strong, the photosensitive sensor 12 controls the power supply block 5 to turn off according to the change in the external light flux. At this time, the LED lamp 17 is in the off state, and at the same time, the daylighting device conducts sunlight into the fiber optic lamp 1 through the optical fiber and causes the fiber optic lamp 1 to start emitting light to illuminate the tunnel. When the external light is weak, the sunlight collected by the daylighting device starts to weaken, causing the lighting effect of the fiber optic lamp 1 to deteriorate. At this time, the photosensitive sensor 12 controls the power supply block 5 to turn on according to the change in the external light flux and supplies power to the LED lamp 17, causing the LED lamp 17 to start emitting light for illumination. Finally, it achieves the effect of using sunlight to illuminate the tunnel, reducing the working intensity of the LED lamp 17 and achieving the effect of energy conservation and emission reduction.
[0057] By using a storage battery for the power supply block 5 and electrically connecting it to an external solar panel, it achieves the conversion of external solar energy into electrical energy for storage and use, further enhancing the energy conservation and emission reduction effect of the tunnel lamp.
[0058] Meanwhile, by setting the connecting block 21 to be flush with the surface of the control box 2 and the spring 24 being in a compressed state when the connecting block 21 is flush with the surface of the control box 2, when the fixed block 3 and the U-shaped frame 13 break, causing the fiber optic lamp 1 to tilt, the distance between the rectangular frame 20 and the control box 2 increases, causing the compression state of the spring 24 to change and return to its normal state, causing the pressing block 25 to disengage from the momentary switch 26, and finally the alarm 27 is activated to send an alarm signal to remind the personnel to quickly locate its position, achieving the effect of facilitating quick maintenance of the fiber optic lamp 1.
[0059] One end of the support block 19 is fixedly connected to the first U-shaped frame 13, and the other end is pin-connected to the second U-shaped block 28. At the same time, a plurality of threaded holes 4 are semicircularly distributed on the fixed block 3. When the first U-shaped frame 13 is already fixed, the staff can rotate the optical fiber lamp 1 to freely change the illumination angle of the optical fiber lamp 1. Both opposite sides of the first U-shaped frame 13 are penetrated and connected with a first threaded shaft 11 for connecting the threaded hole 4. Subsequently, by using the screwing relationship between the first threaded shaft 11 and the threaded hole 4, the optical fiber lamp 1 after deflection can be fixed. By setting the partial arc profile of one end of the second threaded shaft 16 relative to the positioning shaft 15 as a smooth surface, when the second threaded shaft 16 is rotated outwards to loosen the fixation of the LED lamp 17, the LED lamp 17 can still maintain a stable connection relationship within the second U-shaped frame 14, improving the stability effect of the LED lamp 17 within the second U-shaped frame 14. At the same time, it is convenient for the LED lamp 17 to deflect at a certain angle within the second U-shaped frame 14, further enhancing the illumination effect of the tunnel lamp.
[0060] The above is only a preferred specific embodiment of the present invention; however, the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and its improvement concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. The optoelectronic integrated tunnel lamp includes an optical fiber lamp (1), and the optical fiber lamp (1) is electrically connected to an external daylighting device through an optical fiber. It is characterized in that: On the side of the optical fiber lamp (1) opposite to the lighting surface, two symmetrically distributed fixing blocks (3) are fixedly connected. A control box (2) is arranged between the two fixing blocks (3), and the control box (2) is fixedly connected to the outer wall of the optical fiber lamp (1). A power supply block (5), a controller (6) and an alarm (27) are installed in the control box (2). On the opposite sides of the two fixing blocks (3), a U-shaped frame one (13) is pivotally connected. A photosensitive sensor (12) is fixedly connected to the outer wall of the U-shaped frame one (13), and the photosensitive sensor (12) is electrically connected to both the power supply block (5) and the controller (6). U-shaped frames two (14) are fixedly connected to both the upper and lower surfaces of the optical fiber lamp (1). A positioning shaft (15) is fixedly connected to the inner wall of one end of the U-shaped frame two (14). A threaded shaft two (16) penetrates and is connected to the inner wall of the other end of the U-shaped frame two (14), and the threaded shaft two (16) is screwed with the U-shaped frame two (14). An LED lamp (17) is arranged in the U-shaped frame two (14), and the opposite sides of the LED lamp (17) are respectively penetrated and connected to the positioning shaft (15) and the threaded shaft two (16). The LED lamp (17) is electrically connected to the power supply block (5). A momentary switch (26) is arranged on the upper surface of the control box (2), and the momentary switch (26) is electrically connected to the control box (2). The momentary switch (26) penetrates the upper surface of the control box (2); A pressing block (25) is attached to the upper surface of the control box (2). A spring (24) is fixedly connected to the upper surface of the pressing block (25). The top end of the spring (24) is fixedly connected to a rectangular frame (20). Two connecting blocks one (21) are pivotally connected to the inner wall of the rectangular frame (20), and the two connecting blocks one (21) are symmetrically distributed. A U-shaped block two (28) is fixedly connected to the upper surface of the rectangular frame (20), and a support block (19) is pivotally connected to the inner wall of the U-shaped block two (28). The end of the support block (19) opposite to the optical fiber lamp (1) is fixedly connected to the U-shaped frame one (13). Two symmetric U-shaped blocks one (23) are fixedly connected to the upper surface of the control box (2). A connecting block two (22) is pivotally connected to the U-shaped block one (23). Grooves are formed at the opposite ends of the two connecting blocks two (22), and the grooves are in limit sliding connection with the outer wall of the connecting block one (21); A plurality of threaded holes (4) are formed in both of the two fixing blocks (3), and the plurality of threaded holes (4) are semicircularly distributed. Threaded shafts one (11) for connecting the threaded holes (4) penetrate and are connected to the opposite sides of the U-shaped frame one (13), and the threaded shafts one (11) are screwed with the threaded holes (4).
2. The optoelectronic integrated tunnel lamp according to claim 1, It is characterized in that: Both the left and right sides of the optical fiber lamp (1) are fixedly connected with condenser plates (9). Oblique grooves are formed on the opposite sides of the two condenser plates (9), and a refraction sheet (10) is fixedly connected in the oblique grooves. The refraction sheet (10) is made of a reflective film.
3. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: Both the opposite sides of the two LED lamps (17) are fixedly connected with lamp boards (18). The lamp boards (18) are made of one-way glass, and the reflective surface of the one-way glass is arranged on the outer side of the LED lamps (17).
4. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: Multiple groups of heat dissipation grooves (7) are formed on the upper and lower surfaces of the optical fiber lamp (1). The shapes of the multiple groups of heat dissipation grooves (7) are all rectangular.
5. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: A protective net (8) is fixedly connected to the side of the optical fiber lamp (1) opposite to the control box (2). The protective net (8) is made of hard transparent plastic.
6. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: The power supply block (5) is a storage battery, and the power supply block (5) is electrically connected to an external solar panel.
7. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: One end of the positioning shaft (15) penetrates through the LED lamp (17) and is in limit rotational connection with the LED lamp (17). One end of the second threaded shaft (16) penetrates through the LED lamp (17) and is in threaded connection with the LED lamp (17). A partial arc contour of one end of the second threaded shaft (16) relative to the positioning shaft (15) is a smooth surface.
8. The optoelectronic integrated tunnel lamp according to claim 1, characterized in that: Both the two connecting blocks one (21) are flush with the surface of the control box (2). The spring (24) is in a compressed state when the connecting blocks one (21) are flush with the surface of the control box (2).
Citation Information
Patent Citations
Photoelectric integrated tunnel lamp
CN217302656U