Trap lamp with self-cleaning function
By designing a self-cleaning insect-attracting lamp, the lamp automatically cleans the insect carcasses on the electric grid and transparent acrylic plate, and uses rainwater and cleaning agents for cleaning, thus solving the self-cleaning problem of the insect-attracting lamp and improving the effectiveness and lifespan of the device.
Patent Information
- Application Number
- CN202511140099.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-14
- Publication Date
- 2025-11-28
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing insect-attracting lamps lack effective self-cleaning measures, resulting in a large number of trapped flying insects sticking and accumulating inside the lamp, blocking light and reducing the lamp's attractiveness and functionality.
An insect-attracting lamp with a self-cleaning function was designed, which includes an automatic cleaning module and a rainwater reuse module. It automatically cleans the electric grid and the transparent acrylic plate of insect carcasses, and uses rainwater and cleaning agents for cleaning.
It achieves automatic cleaning of insect carcasses after long-term use, keeping the device clean and tidy, ensuring that the insect-attracting lamp's killing effect is not affected, extending its service life, and reducing water consumption.
Smart Images

Figure CN121014599A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of insect-attracting lamp technology, and in particular to an insect-attracting lamp with a self-cleaning function. Background Technology
[0002] Insect-attracting lamps are devices that attract and kill phototactic insects using light. Their core function is in the field of agricultural pest control. These devices can be divided into two categories in terms of light source type: visible light and ultraviolet light. Black light lamps use ultraviolet light sources.
[0003] Existing insect-attracting lamps lack effective self-cleaning measures, which leads to a large number of flying insects that have been attracted and killed by the lamps sticking together and accumulating inside the lamps. This obstructs the light from the lamps, reduces their attractiveness to insects, and affects their functionality. Summary of the Invention
[0004] This invention discloses an insect-attracting lamp with a self-cleaning function, aiming to solve the technical problem in the background art that existing insect-attracting lamps lack effective self-cleaning measures.
[0005] The present invention proposes an insect-attracting lamp with a self-cleaning function, comprising: Light fixture body; The top cover is fixedly connected to the upper side of the lamp body at its bottom, and two symmetrical electric grids are fixedly connected to the inner wall of the lamp body. The rainwater collection trough has a groove on its top cover, and the inner wall of the groove is fixedly connected to the outside of the rainwater collection trough. The mounting frame is fixedly connected to the inner wall of the lamp body. The mounting frame is located between two electric grids. Multiple symmetrically distributed black light tubes are installed on the mounting frame, and two symmetrical transparent acrylic plates are fixedly connected to the outside of the mounting frame. An automatic cleaning module is installed on the main body of the lamp, located outside the mounting frame. The automatic cleaning module is used to automatically clean the insect carcasses on the electric grid and transparent acrylic plate after long-term use of the insect-attracting lamp.
[0006] In a preferred embodiment, the automatic cleaning module includes two symmetrical rectangular slots, each located on the upper side of the lamp body. Circular slots are formed on the inner walls of both sides of each rectangular slot, and a lead screw is movably connected to the bottom inner wall of each circular slot. A movable block is provided on the outside of each lead screw. A synchronous motor is fixedly connected to the top inner wall of the top cover, and the output end of each synchronous motor is fixedly connected to the upper side of the lead screw on the same side via a coupling. Two symmetrical inclined slots are formed on the outside of the lamp body, and inclined blocks are fixedly connected to the bottom inner wall of each inclined slot. Each inclined block is fixedly connected to an insect-scraping grate, which is located above the electric grid. Two movable blocks on the same side are fixedly connected to the same connecting shaft on opposite sides. Each connecting shaft has a sleeve movably connected to its exterior, and a rotating disk movably connected to its exterior. The rotating disk is fixedly connected to the side opposite the sleeve. Each movable block has a small hole, and a drive motor is fixedly connected to each small hole. The output ends of multiple drive motors are connected to gears via couplings. A gear ring is movably connected to the exterior of each connecting shaft, and the gear ring is connected to the same side... The rotating disks are fixedly connected on opposite sides, and the gears mesh with the gear rings on the same side. Three circumferentially spaced grooves are formed on the side of the rotating disk away from the movable block. Sliding rods are slidably connected within each groove. The ends of two sliding rods on the same side away from the rotating disk are fixedly connected to the same fixed rod. Multiple equidistantly spaced brushes are fixedly connected to the outside of each fixed rod. Push-pull rods are movably connected to the outside of each sliding rod. A transmission ring is slidably connected to the outside of each sleeve. The outside of the transmission ring is movably connected to the ends of the three push-pull rods on the same side away from the sliding rods. The transmission ring is movably connected to a sleeve, which is located outside the sleeve. Two symmetrical guide plates are fixedly connected to the side of the sleeve away from the transmission ring. Two symmetrical fixing rings are fixedly connected to the outside of the two connecting shafts. Two symmetrical grooves are opened on the outside of each fixing ring. The inner wall of each groove is slidably connected to the outside of the guide plate on the same side. Two symmetrical hydraulic rods are fixedly connected to the outside of each fixing ring. The output end of each hydraulic rod is fixedly connected to the outside of the sleeve on the same side. A rainwater recycling module is provided on the rainwater collection trough.
[0007] In a preferred embodiment, the rainwater reuse module includes two symmetrical rain shields, both of which are fixedly connected to the opposite side of the rainwater collection trough. Two partition plates are fixedly connected to the inner wall of the rainwater collection trough, and a protrusion is fixedly connected to one side of the top cover, with a tank inserted into the protrusion. A small hole is formed at the bottom of the protrusion, and a liquid guide pipe is fixedly connected to the inner wall of the small hole. A valve is installed on the liquid guide pipe. A circular opening is formed on the outside of the rainwater collection trough, and a water supply pipe is fixedly connected to the inner wall of the circular opening. The ends of the water supply pipe and the liquid guide pipe away from the protrusion and the rainwater collection trough are fixedly connected to the same collection box. A slot is formed at the bottom of the collection box, and a T-shaped pipe is fixedly connected to the slot. Both ends of the T-shaped pipe away from the collection box pass through the outside of the lamp body and enter the lamp body, located between the power grid and the lead screw. Multiple evenly spaced nozzles are arranged on the outside of the T-shaped pipe. A pump is fixedly connected to the bottom of the collection box, and the output end of the pump is connected to the T-shaped pipe via a conduit.
[0008] As can be seen from the above, the insect-attracting lamp with self-cleaning function provided by the present invention can automatically clean the insect carcasses on the electric grid and transparent acrylic plate after long-term use, thereby ensuring cleanliness and avoiding the accumulation of insect carcasses on the electric grid and transparent acrylic plate, which would reduce the attraction and killing effect of the device on insects, ensuring that the use effect of the insect-attracting lamp is not affected and improving the service life of the insect-attracting lamp. Attached Figure Description
[0009] Figure 1 This is a schematic diagram of the overall structure of an insect-attracting lamp with self-cleaning function proposed in this invention. Figure 2 This is a cross-sectional structural diagram of an insect-attracting lamp with self-cleaning function proposed in this invention; Figure 3 This is a schematic diagram of the automatic cleaning module structure of an insect-attracting lamp with self-cleaning function proposed in this invention; Figure 4 This is a schematic diagram of the rotating disk structure of an insect-attracting lamp with self-cleaning function proposed in this invention. Figure 5 This is a schematic diagram of the connecting shaft structure of an insect-attracting lamp with self-cleaning function proposed in this invention; Figure 6 This is a schematic diagram of the rotating ring structure of an insect-attracting lamp with self-cleaning function proposed in this invention; Figure 7 This is a schematic diagram of a rainwater reuse module for an insect-attracting lamp with self-cleaning function proposed in this invention. Figure 8 This is a schematic diagram of the collection box structure of an insect-attracting lamp with self-cleaning function proposed in this invention.
[0010] In the diagram: 1. Light fixture body; 2. Top cover; 3. Electric grid; 4. Rain collection trough; 5. Mounting frame; 6. Black light tube; 7. Transparent acrylic sheet; 8. Automatic cleaning module; 801. Rectangular groove; 802. Round groove; 803. Synchronous motor; 804. Lead screw; 805. Movable block; 806. Inclined groove; 807. Inclined block; 808. Insect scraper; 809. Connecting shaft; 810. Rotating disk; 811. Sleeve; 812. Drive motor; 813. Gear ring; 814. Gear; 815. Slide rod; 816. Fixed rod; 817. Brush; 818. Groove; 819. Drive ring; 820. Push-pull rod; 821. Collar; 822. Guide plate; 823. Fixed ring; 824. Hydraulic rod; 9. Rainwater reuse module; 901. Rain shield; 902. Isolation plate; 903. Boss; 904. Tank; 905. Liquid guide pipe; 906. Valve; 907. Water supply pipe; 908. Collection box; 909. T-pipe; 910. Sprinkler head; 911. Pump. Detailed Implementation
[0011] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0012] The insect-attracting lamp disclosed in this invention has a self-cleaning function and is mainly used in scenarios where existing insect-attracting lamps lack effective self-cleaning measures.
[0013] Reference Figures 1-8 An insect-attracting lamp with self-cleaning function, comprising: Light fixture body 1; The top cover 2 is bolted to the top side of the lamp body 1, and the inner wall of the lamp body 1 is bolted to have two symmetrical electric grids 3. The rainwater collection trough 4 has a groove on its top cover 2, and the inner wall of the groove is connected to the outside of the rainwater collection trough 4 by bolts. Mounting frame 5, the outside of mounting frame 5 is connected to the inner wall of lamp body 1 by bolts, mounting frame 5 is located between two electric grids 3, multiple symmetrically distributed black light tubes 6 are provided on mounting frame 5, and two symmetrical transparent acrylic plates 7 are connected to the outside of mounting frame 5 by bolts. Automatic cleaning module 8 is installed on the main body 1 of the lamp and located outside the mounting frame 5. Automatic cleaning module 8 is used to automatically clean the insect carcasses on the electric grid 3 and the transparent acrylic plate 7 after long-term use of the insect-attracting lamp.
[0014] The device utilizes an automatic cleaning module 8 to automatically clean the insect carcasses on the electric grid 3 and the transparent acrylic plate 7 after long-term use of the insect-attracting lamp. This ensures that 3 and 7 are clean and tidy, preventing the accumulation of insect carcasses on the electric grid 3 and the transparent acrylic plate 7, which would reduce the device's ability to attract and kill insects. This ensures that the insect-attracting lamp's effectiveness is not affected and extends its service life.
[0015] Reference Figure 3 , Figure 4 , Figure 5 and Figure 6In a preferred embodiment, the automatic cleaning module 8 includes two symmetrical rectangular grooves 801, both of which are located on the upper side of the lamp body 1. Circular grooves 802 are formed on the inner walls of both sides of the rectangular grooves 801. A lead screw 804 is rotatably connected to the bottom inner wall of each circular groove 802 via bearings. Movable blocks 805 are provided on the outside of each lead screw 804. A synchronous motor 803 is bolted to the top inner wall of the top cover 2. The output end of the synchronous motor 803 is bolted to the upper side of the lead screw 804 on the same side via a coupling. Two symmetrical inclined grooves 806 are formed on the outside of the lamp body 1. Inclined blocks 807 are bolted to the bottom inner wall of each inclined groove 806. The outer side of the inclined blocks 807... All are bolted to the insect scraper 808, which is located above the power grid 3. Two movable blocks 805 on the same side are bolted to the same connecting shaft 809. The outside of the connecting shaft 809 is rotatably connected to a sleeve 811 via bearings. A rotating disk 810 is rotatably connected to the outside of the connecting shaft 809 via bearings. The rotating disk 810 and the sleeve 811 are bolted to each other on the opposite side. Each movable block 805 has a small hole, and a drive motor 812 is bolted into each small hole. The output ends of multiple drive motors 812 are connected to gears 814 via couplings. A gear ring 813 is rotatably connected to the outside of the connecting shaft 809 via bearings. The gear ring 813 and the same side... The rotating disk 810 is bolted to opposite sides. Gears 814 mesh with gear rings 813 on the same side. Three circumferentially spaced grooves 818 are formed on the side of the rotating disk 810 away from the movable block 805. Sliding rods 815 are slidably connected within each groove 818. The ends of two sliding rods 815 on the same side away from the rotating disk 810 are bolted to the same fixed rod 816. Multiple equidistant brushes 817 are bolted to the outside of the fixed rod 816. Push-pull rods 820 are rotatably connected to the outside of the multiple sliding rods 815 via bearings. A transmission ring 819 is slidably connected to the outside of the sleeve 811. The outside of the transmission ring 819 is connected to the three push-pull rods 820 on the same side away from the sliding rods 815. One end of each is rotatably connected by a bearing, and the outside of the transmission ring 819 is rotatably connected by a collar 821 via a bearing. The collar 821 is located outside the sleeve 811. On the side of the collar 821 away from the transmission ring 819, two symmetrical guide plates 822 are bolted together. The outside of each of the two connecting shafts 809 is bolted together with two symmetrical fixing rings 823. The outside of each fixing ring 823 has two symmetrical grooves. The inner wall of each groove is slidably connected to the outside of the guide plate 822 on the same side. The outside of each fixing ring 823 is bolted together with two symmetrical hydraulic rods 824. The output end of each hydraulic rod 824 is bolted together to the outside of the collar 821 on the same side. A rainwater reuse module 9 is provided on the rainwater collection trough 4.
[0016] Specifically, when the device needs to clean the insect remains on the electric grid 3 and the transparent acrylic plate 7, the drive motor 812 is started. The drive motor 812 drives the gear 814 meshing with the gear ring 813 to rotate, thereby causing the rotating disk 810 to rotate. The synchronous motor 803 is started, and the synchronous motor 803 drives the lead screw 804 to rotate, causing the movable block 805 to clean the insect remains on the electric grid 3 and the transparent acrylic plate 7 from top to bottom. When the insect remains are tightly stuck together, the hydraulic rod 824 is started. The hydraulic rod 824 pushes the collar 821 and the drive ring 819 in the collar 821 closer to the rotating disk 810, and the guide plate 82... Under the constraint of 2, the transmission ring 819 slides on the sleeve 811 while rotating with the rotating disk 810 and pushes the push-pull rod 820 to push the slide rod 815 to the outside of the rotating disk 810, so that the brush 817 is closer to the electric grid 3 and the transparent acrylic plate 7, increasing the cleaning force and depth of the brush 817 on the electric grid 3 and the transparent acrylic plate 7. After cleaning, the movable block 805 returns from the bottom to the top, keeping the transmission motor 812 circular, so that the brush 817 contacts the insect scraper 808, combs out the insect corpses stuck on the brush 817 and discharges them from the inclined groove 806.
[0017] In specific application scenarios, the automatic cleaning module 8 is mainly used in the automatic cleaning process. That is, the automatic cleaning module 8 uses the movable block 805 and the rotating disk 810 to clean the insect corpses accumulated on the device from top to bottom, improving the cleaning efficiency. By using the transmission ring 819 and the push-pull rod 820 to push the slide rod 815, the brush 817 can increase the cleaning effect of the brush 817 on the insect corpses according to the state of the insect corpses adhering to the electric grid 3 and the transparent acrylic plate 7.
[0018] Reference Figure 7 and Figure 8In a preferred embodiment, the rainwater reuse module 9 includes two symmetrical rain shields 901. Both rain shields 901 are bolted to the opposite side of the rainwater collection trough 4. Two partition plates 902 are bolted to the inner wall of the rainwater collection trough 4. A boss 903 is bolted to one side of the top cover 2, and a tank 904 is inserted into the boss 903. A small hole is formed at the bottom of the boss 903, and a liquid guide pipe 905 is bolted to the inner wall of the small hole. A valve 906 is installed on the liquid guide pipe 905. A circular opening is formed on the outer side of the rainwater collection trough 4, and a water delivery pipe 907 is bolted to the inner wall of the circular opening. The ends of the water supply pipe 907 and the liquid guide pipe 905 away from the boss 903 and the rainwater collection trough 4 are bolted to the same collection box 908. The bottom of the collection box 908 has a slot, and a three-way pipe 909 is bolted into the slot. The two ends of the three-way pipe 909 away from the collection box 908 pass through the outside of the lamp body 1 and enter the lamp body 1, located between the power grid 3 and the lead screw 804. Multiple equally spaced nozzles 910 are provided on the outside of the three-way pipe 909. The bottom of the collection box 908 is bolted to the pump 911, and the output end of the pump 911 is connected to the three-way pipe 909 through a conduit.
[0019] Specifically, in rainy conditions, the rainwater collection tank 4 collects and stores rainwater. Impurities in the water settle to the bottom of the rainwater collection tank 4 and are isolated by the isolation plate 902. Clean rainwater enters the collection tank 908 through the water supply pipe 907. When the valve 906 is opened, the cleaning agent in the tank 904 enters the collection tank 908 through the liquid guide pipe 905 and mixes with the rainwater. The pump 911 is started, and the pump 911 sprays the mixed liquid out through the nozzle 910 on the three-way pipe 909, so that the mixed liquid is evenly distributed on the electric grid 3 and the transparent acrylic plate 7.
[0020] In specific application scenarios, the rainwater reuse module 9 is mainly used in the rainwater reuse process. Specifically, the rainwater reuse module 9 uses the isolation plate 902 to isolate impurities in the water, preventing impurities from entering the collection box 908 through the water pipe 907 and causing the nozzles 910 to become clogged, thus ensuring the spraying effect of the nozzles 910. The rainwater collection trough 4 and the tank 904 allow rainwater and cleaning agents to mix, enhancing the cleaning effect of the device, reducing dependence on water sources, reducing water consumption, and lowering costs.
[0021] Working principle: When the device needs to clean the insect remains on the electric grid 3 and the transparent acrylic plate 7, the drive motor 812 is started. The drive motor 812 drives the gear 814 meshing with the gear ring 813 to rotate, thereby rotating the rotating disk 810. The synchronous motor 803 is started, and the synchronous motor 803 drives the lead screw 804 to rotate, causing the movable block 805 to clean the insect remains on the electric grid 3 and the transparent acrylic plate 7 from top to bottom. When the insect remains are tightly stuck together, the hydraulic rod 824 is started. The hydraulic rod 824 pushes the collar 821 and the drive ring 819 in the collar 821 closer to the rotating disk 810. Under the restriction of the guide plate 822, the drive ring 819 slides on the sleeve 811 while rotating with the rotating disk 810, and pushes the push-pull rod 820 to push the slide rod 815 to the outside of the rotating disk 810, thereby bringing the brush 817 closer to the electric grid 3 and the transparent acrylic plate 7, increasing the brush 817's contact with the electric grid 3 and the transparent acrylic plate 7. The cleaning force and depth of the insect carcasses on the mesh 3 and transparent acrylic plate 7 are adjusted. After cleaning, the movable block 805 returns from the bottom to the top, maintaining the circular shape of the drive motor 812, so that the brush 817 contacts the insect scraper 808, combing out the insect carcasses adhering to the brush 817 and discharging them from the inclined groove 806. In case of rain, the rainwater collection trough 4 collects and stores the rainwater. Impurities in the water will settle to the bottom of the rainwater collection trough 4 and be isolated by the isolation plate 902. The clean rainwater will enter the collection box 908 through the water supply pipe 907. The valve 906 is opened, and the cleaning agent in the tank 904 enters the collection box 908 through the liquid guide pipe 905 and mixes with the rainwater. The pump 911 is started, and the pump 911 sprays the mixed liquid out through the nozzle 910 on the three-way pipe 909, so that the mixed liquid is evenly distributed on the mesh 3 and transparent acrylic plate 7, allowing the device to clean the solidified insect glue.
[0022] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An insect-attracting lamp with a self-cleaning function, characterized in that, include: Light fixture body (1); Top cover (2), the bottom of the top cover (2) is fixedly connected to the upper side of the lamp body (1), and two symmetrical electric grids (3) are fixedly connected to the inner wall of the lamp body (1). Rain collection trough (4), the top cover (2) has a groove, and the inner wall of the groove is fixedly connected to the outside of the rain collection trough (4); Mounting frame (5), the outside of which is fixedly connected to the inner wall of the lamp body (1), the mounting frame (5) is located between two electric grids (3), a plurality of symmetrically distributed black light tubes (6) are provided on the mounting frame (5), and two symmetrical transparent acrylic plates (7) are fixedly connected to the outside of the mounting frame (5). Automatic cleaning module (8) is set on the lamp body (1) and located outside the mounting frame (5). The automatic cleaning module (8) is used to automatically clean the insect carcasses on the electric grid (3) and the transparent acrylic plate (7) after the insect-attracting lamp has been used for a long time.
2. The insect-attracting lamp with self-cleaning function according to claim 1, characterized in that, The automatic cleaning module (8) includes two symmetrical rectangular slots (801). The rectangular slots (801) are both located on the upper side of the lamp body (1). The inner walls of both sides of the rectangular slots (801) are provided with round slots (802). The bottom inner wall of the round slots (802) is movably connected with a lead screw (804). The outside of the lead screw (804) is provided with a movable block (805). The top inner wall of the top cover (2) is fixedly connected with a synchronous motor (803). The output end of the synchronous motor (803) is fixedly connected to the upper side of the lead screw (804) on the same side through a coupling.
3. The insect-attracting lamp with self-cleaning function according to claim 2, characterized in that, The main body (1) of the lamp has two symmetrical inclined grooves (806) on its outside. Inclined blocks (807) are fixedly connected to the bottom inner wall of each inclined groove (806). Insect scrapers (808) are fixedly connected to the outside of each inclined block (807). The insect scrapers (808) are located above the electric grid (3). The same connecting shaft (809) is fixedly connected to the opposite side of two movable blocks (805) on the same side. A sleeve (811) is movably connected to the outside of each connecting shaft (809). A rotating disk (810) is movably connected to the outside of each connecting shaft (809). The rotating disk (810) is fixedly connected to the opposite side of the sleeve (811). A small hole is opened on each movable block (805), and a drive motor (812) is fixedly connected in each small hole.
4. The insect-attracting lamp with self-cleaning function according to claim 3, characterized in that, The output ends of the multiple drive motors (812) are connected to gears (814) via couplings. The external of the connecting shaft (809) is movably connected to a gear ring (813). The gear ring (813) is fixedly connected to the side opposite to the rotating disk (810) on the same side. The gear (814) meshes with the gear ring (813) on the same side. The side of the rotating disk (810) away from the movable block (805) is provided with three circumferentially distributed grooves (818). The grooves (818) are slidably connected to slide rods (815). The ends of the two slide rods (815) on the same side away from the rotating disk (810) are fixedly connected to the same fixed rod (816). The external of the fixed rod (816) is fixedly connected to multiple equidistantly distributed brushes (817).
5. An insect-attracting lamp with self-cleaning function according to claim 4, characterized in that, Push-pull rods (820) are movably connected to the outside of each of the multiple slide rods (815), and transmission rings (819) are slidably connected to the outside of each sleeve (811). The outside of the transmission ring (819) is movably connected to the end of the three push-pull rods (820) on the same side away from the slide rods (815), and a collar (821) is movably connected to the outside of the transmission ring (819). The collar (821) is located outside the sleeve (811), and two symmetrical guide plates (822) are fixedly connected to the side of the collar (821) away from the transmission ring (819).
6. An insect-attracting lamp with self-cleaning function according to claim 3, characterized in that, Two symmetrical fixing rings (823) are fixedly connected to the outside of the two connecting shafts (809). Two symmetrical grooves are opened on the outside of the fixing rings (823). The inner wall of the grooves is slidably connected to the outside of the guide plate (822) on the same side. Two symmetrical hydraulic rods (824) are fixedly connected to the outside of the fixing rings (823). The output end of the hydraulic rods (824) is fixedly connected to the outside of the collar (821) on the same side. A rainwater reuse module (9) is provided on the rainwater collection trough (4).
7. An insect-attracting lamp with self-cleaning function according to claim 6, characterized in that, The rainwater reuse module (9) includes two symmetrical rain shields (901). The two rain shields (901) are fixedly connected to the opposite side of the outside of the rain collection trough (4). The inner wall of the rain collection trough (4) is fixedly connected to two isolation plates (902), and a boss (903) is fixedly connected to one side of the top cover (2). A tank (904) is inserted into the boss (903).
8. An insect-attracting lamp with self-cleaning function according to claim 7, characterized in that, The bottom of the protrusion (903) is provided with a fine hole, and a liquid guide pipe (905) is fixedly connected to the inner wall of the fine hole. A valve (906) is provided on the liquid guide pipe (905). The outside of the rain collection trough (4) is provided with a round opening, and a water supply pipe (907) is fixedly connected to the inner wall of the round opening. The ends of the water supply pipe (907) and the liquid guide pipe (905) away from the protrusion (903) and the rain collection trough (4) are fixedly connected to the same collection box (908). The bottom of the collection box (908) is provided with a slot, and a three-way pipe (909) is fixedly connected in the slot.
9. An insect-attracting lamp with self-cleaning function according to claim 8, characterized in that, The two ends of the three-way pipe (909) away from the collection box (908) pass through the outside of the lamp body (1) and enter the lamp body (1), located between the power grid (3) and the lead screw (804), and multiple equally spaced nozzles (910) are provided on the outside of the three-way pipe (909).
10. An insect-attracting lamp with self-cleaning function according to claim 9, characterized in that, A pump (911) is fixedly connected to the bottom of the collection box (908), and the output end of the pump (911) is connected to a three-way pipe (909) through a conduit.