Solar insecticidal lamp

By designing a detachable insect collector structure and a conical disc to prevent live insects from escaping, the problem of cumbersome replacement of insect collectors in traditional solar-powered insecticidal lamps is solved, improving cleaning and maintenance efficiency and equipment applicability.

CN223614090UActive Publication Date: 2025-12-02ZHEJIANG LONGHAO AGROFORESTRY TECH CO LTD
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Patent Information

Application Number
CN202423271877.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-12-02
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

The replacement of the insect collector in traditional solar-powered insecticidal lamps is cumbersome, affecting the efficiency of cleaning and maintenance, and the design of the insect collector does not prevent live insects from escaping.

Method used

Design a detachable insect collector structure that allows for easy installation and disassembly via side slots and locking positions. Combined with a conical disc to prevent live insects from escaping, and with an adjustable interface, it is suitable for insect collectors made of various materials.

Benefits of technology

It enables convenient replacement and regular cleaning of insect collectors, prevents live insects from escaping, and improves cleaning and maintenance efficiency and equipment applicability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a solar insecticidal lamp which comprises a lamp body assembly, a collecting disc, a movable connector and an insect collector which are sequentially connected from top to bottom, the collecting disc is provided with an inner cavity leading to the insect collector, the bottom of the collecting disc is fixedly connected with the movable connector, and the movable connector is provided with side clamping grooves distributed in a circumferential mode. The insect collector is detachably connected to the movable connector through a side clamping groove, and the side clamping groove is provided with a locking position used for preventing the insect collector from falling off. When the insect collector needs to be detached, the insect collector is rotated anticlockwise towards the direction of the collecting disc, so that the insect collector is rotated and separated along the side clamping groove, the movable connector serves as a universal connector, and the insect collector can be conveniently detached from the collecting disc. The device is suitable for installing insect collectors made of metal, plastic, cloth bags and the like, and meanwhile the insect collectors can be cleaned at regular intervals conveniently.
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Description

Technical Field

[0001] This utility model relates to the technical field of insecticidal lamps, and in particular to a solar-powered insecticidal lamp. Background Technology

[0002] Solar-powered insecticidal lamps are a type of electric shock insecticidal method that uses solar energy to generate electricity. By utilizing the phototaxis of insects, the lamp releases wavelengths that attract insects, luring them closer and then electrocuting them. This method causes no environmental pollution. When applied to agriculture, it can reduce the number of pesticide sprayings, directly lowering the cost of pest control, reducing pesticide residues, and improving food safety and quality, thus bringing about high economic and social benefits.

[0003] Insecticidal lamps usually have an insect collector at the bottom to collect dead insects. To prevent the spread of viruses in the dead insects, the insect collector needs to be cleaned regularly. Traditional insect collectors are usually fixed with screws, clamps and other fastening structures, which makes the replacement of the insect collector more cumbersome and affects the cleaning and maintenance efficiency of the staff. Utility Model Content

[0004] To overcome the shortcomings of the prior art, the technical solution adopted by this utility model is: a solar-powered insecticidal lamp, comprising a lamp body assembly, a collection tray, a movable interface, and an insect collector connected sequentially from top to bottom. The collection tray has an inner cavity leading to the insect collector, and the bottom of the collection tray is fixedly connected to the movable interface. The movable interface has side slots distributed in a circular pattern. The insect collector is detachably connected to the movable interface through the side slots, and the side slots have locking positions to prevent the insect collector from falling off.

[0005] Using the above technical solution, when it is necessary to remove the insect collector, rotate the insect collector counterclockwise towards the collection tray so that the insect collector rotates and disengages along the side slot. The movable interface is a universal interface that is suitable for installing insect collectors made of metal, plastic, cloth bags, etc., and also facilitates regular cleaning of the insect collector.

[0006] The present invention is further configured such that the insect collector has a circular part for fitting the movable interface, and the inner side of the circular part has a protrusion adapted to the side slot. The side slot is generally L-shaped, and the end of the side slot has a lower curved surface, and the locking position is formed by the lower curved surface.

[0007] Furthermore, the collecting tray has circumferentially distributed studs at the bottom hole of the inner cavity, and the movable interface has a mounting part corresponding to the studs.

[0008] Using the above technical solution, the protrusion has a cylindrical structure, which facilitates movement on the side slot. When the protrusion enters the locking position, gravity causes the protrusion to be tangent to the lower curved surface, preventing the insect collector from falling off naturally.

[0009] The present invention is further configured such that the collecting tray is provided with a conical disc for preventing live insects from escaping, and the collecting tray is provided with a stepped portion, with the conical disc inverted between the collecting tray and the insect collector via the stepped portion.

[0010] Furthermore, the top of the conical disk is provided with a serrated edge.

[0011] By adopting the above technical solution, the cone disc makes the outlet of the insect collector form a negative angle structure with serrations, which effectively prevents most live insects from crawling out of the insect collector.

[0012] The present invention is further configured such that the lamp body assembly includes a solar panel, a lamp cap, a column, an insect-attracting lamp, and an electric grid. The top of the lamp cap is connected to an inclined solar panel, the bottom of the lamp cap is connected to a collection tray through the column, and an insect-attracting lamp is provided between the lamp cap and the collection tray, as well as an electric grid provided around the insect-attracting lamp.

[0013] Furthermore, the power grid includes a main conductive grid and a secondary conductive grid distributed in parallel. The main conductive grid has a main conductive section distributed in a straight line, and the secondary conductive grid has a bent section and a secondary conductive section distributed in a straight line. The secondary conductive section is distributed alternately with the main conductive section through the bent section.

[0014] Using the above technical solution, the main conductive grid and the secondary conductive grid are connected to the positive and negative terminals of the power supply, respectively. When a flying insect approaches the insect-attracting lamp, it will randomly touch the adjacent main conductive part and the secondary conductive part, thereby achieving an electric shock to the flying insect that approaches the insect-attracting lamp.

[0015] The present invention is further configured such that a support assembly is provided on one side of the lamp cap, the support assembly including a Y-shaped telescopic rod, a support rod and a locking nut, one end of the Y-shaped telescopic rod is provided with a connecting hole for connecting the lamp cap, the other end is slidably connected to the support rod, and the support rod is threadedly connected to a locking nut for locking the Y-shaped telescopic rod.

[0016] Using the above technical solution, the Y-shaped telescopic rod has a hollow structure. The power grid is connected to the mains power through the Y-shaped telescopic rod. By stretching the Y-shaped telescopic rod and fixing it with locking screws, the height of the lamp assembly can be controlled, thereby controlling its ability to disinfect flying insects at different heights and making it applicable to different usage environments.

[0017] Compared with the prior art, the beneficial effects of this utility model are:

[0018] When the insect collector needs to be removed, rotate it counterclockwise towards the collection tray to allow it to rotate and detach along the side slot. The movable interface is a universal interface suitable for installing insect collectors made of metal, plastic, cloth bags, etc., and also facilitates regular cleaning of the insect collector.

[0019] The embodiments of this utility model will be further described below with reference to the accompanying drawings. Attached Figure Description

[0020] Figure 1 This is a perspective view of the present utility model;

[0021] Figure 2 This is an exploded view of the structure of this utility model;

[0022] Figure 3 This is a perspective view of the active interface of this utility model;

[0023] Figure 4 This is a cross-sectional view of the collection tray of this utility model;

[0024] Figure 5 This is a perspective view of the insect collector of this utility model;

[0025] Figure 6 This is a perspective view of the conical disk of this utility model;

[0026] Figure 7 This is a bottom view of the lamp body assembly of this utility model;

[0027] Figure 8 This is a schematic diagram of the power grid structure of this utility model;

[0028] The components are: 1-lamp body assembly, 2-collection tray, 3-movable interface, 4-insect collector, 5-conical disc, 6-support assembly, 11-solar panel, 12-lamp cap, 13-post, 14-insect attracting lamp, 15-electric grid, 16-main electric grid, 161-main conductive part, 17-secondary conductive grid, 171-bending part, 172-secondary conductive part, 21-inner cavity, 22-stud, 23-step part, 31-side slot, 32-locking position, 33-lower curved surface, 34-mounting part, 41-ring part, 42-protrusion, 51-serrated edge, 61-Y-shaped telescopic rod, 62-support rod, 63-locking screw sleeve; Detailed Implementation

[0029] like Figure 1-3 As shown, this embodiment provides a solar-powered insecticidal lamp, including a lamp body assembly 1, a collection tray 2, a movable interface 3, and an insect collector 4 connected sequentially from top to bottom. The collection tray 2 has an inner cavity 21 leading to the insect collector 4. The bottom of the collection tray 2 is fixedly connected to the movable interface 3. The movable interface 3 has circumferentially distributed side slots 31. The insect collector 4 is detachably connected to the movable interface 3 through the side slots 31, and the side slots 31 have locking positions 32 to prevent the insect collector 4 from falling off.

[0030] Combination Figure 4 , 5As shown, in this embodiment, the insect collector 4 is provided with a circular part 41 for fitting the movable interface 3, and the inner side of the circular part 41 is provided with a protrusion 42 that matches the side groove 31. The side groove 31 is generally L-shaped, and the end of the side groove 31 is provided with a lower curved surface 33, and a locking position 32 is formed by the lower curved surface 33. The collecting tray 2 is provided with studs 22 distributed in a circular pattern at the bottom hole of the inner cavity 21. The movable interface 3 is provided with a mounting part 34 corresponding to the stud 22, and is threaded to the stud 22 by a screw passing through the mounting part 34. The protrusion 42 is a cylindrical structure, which facilitates movement on the side groove 31. When the protrusion 42 enters the locking position 32, the protrusion 42 is tangent to the lower curved surface 33 by gravity, preventing the insect collector 4 from falling off naturally.

[0031] Combination Figure 6 As shown, in this embodiment, the collection tray 2 is provided with a cone-shaped plate 5 to prevent live insects from escaping. The collection tray 2 is provided with a step portion 23. The cone-shaped plate 5 is inverted between the collection tray 2 and the insect collector 4 through the step portion 23. The top of the cone-shaped plate 5 is provided with a serrated edge 51. The cone-shaped plate 5 makes the outlet of the insect collector 4 form a negative angle structure with serrations, effectively preventing most live insects from crawling out of the insect collector 4.

[0032] like Figure 2 , 7 As shown, in this embodiment, the lamp body assembly 1 includes a solar panel 11, a lamp cap 12, a column 13, an insect-attracting lamp 14, and an electric grid 15. The top of the lamp cap 12 is connected to the inclined solar panel 11, and the bottom of the lamp cap 12 is connected to the collection tray 2 through the column 13. The insect-attracting lamp 14 is provided between the lamp cap 12 and the collection tray 2, and the electric grid 15 is provided around the insect-attracting lamp 14. The lamp cap 12 is provided with a triangularly distributed column 13, and the two ends of the column 13 are connected to the lamp cap 12 and the collection tray 2 by screws.

[0033] Combination Figure 8 As shown, in this embodiment, four sets of electric grids 15 are distributed in a circle around the insect-attracting lamp 14. The electric grid 15 includes a main electric grid 16 and a secondary electric grid 17 distributed in parallel. The main electric grid 16 is provided with a main conductive part 161 distributed in a straight line. The secondary electric grid 17 is provided with a bent part 171 and a secondary conductive part 172 distributed in a straight line. The secondary conductive part 172 is distributed alternately with the main conductive part 161 through the bent part 171. The main electric grid 16 and the secondary electric grid 17 are respectively connected to the positive and negative terminals of the power supply. When a flying insect approaches the insect-attracting lamp 14, it will randomly touch the adjacent main conductive part 161 and secondary conductive part 172, thereby achieving an electric shock to the flying insect approaching the insect-attracting lamp 14.

[0034] like Figure 2As shown, in this embodiment, a support assembly 6 is provided on one side of the lamp cap 12. The support assembly 6 includes a Y-shaped telescopic rod 61, a support rod 62, and a locking sleeving 63. One end of the Y-shaped telescopic rod 61 is provided with a connecting hole for connecting the lamp cap 12, and the other end is slidably connected to the support rod 62. The support rod 62 is threadedly connected to the locking sleeving 63 for locking the Y-shaped telescopic rod 61. By stretching the Y-shaped telescopic rod 61 and fixing it with the locking sleeving 63, the height of the lamp body assembly 1 can be controlled, thereby controlling its elimination of flying insects at different heights and making it applicable to different usage environments.

[0035] The working principle of this utility model is as follows: a storage battery is installed inside the lamp cap 12. The electrical energy generated by the solar panel 11 is stored in the storage battery to provide power for the insect-attracting lamp 14. Utilizing the strong phototaxis, wave-taxis, color-taxis, and tactile characteristics of insects, flying insects are attracted to the insect-attracting lamp 14. The flying insects will touch the electric grid 15 and be shocked, causing them to fall to the collection tray 2 and be collected in the insect collector 4 through the inner cavity 21. When the insect collector 4 needs to be replaced, push the insect collector 4 slightly upward toward the collection tray 2, rotate the insect collector 4 and make the protrusion 42 disengage from the collection tray 2 along the side slot 31 to complete the disassembly. The operation is simple and quick.

[0036] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A solar-powered insecticidal lamp, characterized in that, The device includes a lamp body assembly (1), a collection tray (2), a movable interface (3), and an insect collector (4) connected sequentially from top to bottom. The collection tray (2) has an inner cavity (21) leading to the insect collector (4). The bottom of the collection tray (2) is fixedly connected to the movable interface (3). The movable interface (3) has side slots (31) distributed in a circular pattern. The insect collector (4) is detachably connected to the movable interface (3) through the side slots (31). The side slots (31) have locking positions (32) to prevent the insect collector (4) from falling off.

2. The solar-powered insecticidal lamp according to claim 1, characterized in that: The insect collector (4) is provided with a ring portion (41) for fitting the movable interface (3), and the inner side of the ring portion (41) is provided with a protrusion (42) that matches the side slot (31).

3. A solar-powered insecticidal lamp according to claim 2, characterized in that: The collecting tray (2) has circumferentially distributed studs (22) at the bottom hole of the inner cavity (21), and the movable interface (3) has a mounting part (34) corresponding to the studs (22).

4. A solar-powered insecticidal lamp according to claim 1, characterized in that: The collection tray (2) is provided with a cone-shaped disc (5) to prevent live insects from escaping. The collection tray (2) is provided with a stepped part (23). The cone-shaped disc (5) is inverted between the collection tray (2) and the insect collector (4) through the stepped part (23).

5. A solar-powered insecticidal lamp according to claim 4, characterized in that: The top of the cone disk (5) is provided with a serrated edge (51).

6. A solar-powered insecticidal lamp according to claim 1, characterized in that: The lamp assembly (1) includes a solar panel (11), a lamp cap (12), a column (13), an insect-attracting lamp (14), and an electric grid (15). The top of the lamp cap (12) is connected to the inclined solar panel (11), and the bottom of the lamp cap (12) is connected to the collection tray (2) through the column (13). The insect-attracting lamp (14) is provided between the lamp cap (12) and the collection tray (2), and the electric grid (15) is provided around the insect-attracting lamp (14).

7. A solar-powered insecticidal lamp according to claim 6, characterized in that: The power grid (15) includes a main power grid (16) and a secondary power grid (17) distributed in parallel. The main power grid (16) has a main conductive part (161) distributed in a straight line. The secondary power grid (17) has a bent part (171) and a secondary conductive part (172) distributed in a straight line. The secondary conductive part (172) is distributed alternately with the main conductive part (161) through the bent part (171).

8. A solar-powered insecticidal lamp according to claim 6, characterized in that: The lamp cap (12) has a support assembly (6) on one side. The support assembly (6) includes a Y-shaped telescopic rod (61), a support rod (62) and a locking nut (63). One end of the Y-shaped telescopic rod (61) is provided with a connecting hole for connecting the lamp cap (12), and the other end is slidably connected to the support rod (62). The support rod (62) is threadedly connected to the locking nut (63) for locking the Y-shaped telescopic rod (61).