Adjustable solar insecticidal lamp

By combining an insecticidal lamp and an electric grid to kill mosquitoes in a solar-powered insecticidal lamp, and using an electric nozzle to spray the insecticide, the problem of low efficiency of single insecticidal methods in existing technologies is solved. This achieves dual insecticidal effects and automatic mosquito collection, improving insecticidal efficacy and ease of use.

CN223541240UActive Publication Date: 2025-11-14JIANGXI KANGTE ECOLOGICAL TECH CO LTD
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Patent Information

Application Number
CN202423151375.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-11-14
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

Existing solar-powered insecticidal lamps typically attract and electrocute pests using ultraviolet light, failing to achieve dual pest control. This results in some insects escaping unkilled, affecting the efficiency and effectiveness of pest control.

Method used

Design an adjustable solar-powered insecticidal lamp that combines an insecticidal lamp with an electric grid to kill mosquitoes and insects. At the same time, an electric nozzle sprays insecticide to kill any remaining mosquitoes, achieving dual insect control. The adjustable components ensure that the solar panel receives optimal sunlight conditions to improve the power conversion efficiency.

Benefits of technology

It achieves dual insect control of mosquitoes, improving insect control efficiency and effectiveness, preventing mosquitoes from escaping, is easy to use, and facilitates disposal by automatically collecting and cleaning up the killed mosquitoes.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223541240U_ABST
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Abstract

The utility model relates to the field of insecticidal lamps, in particular to an adjustable solar insecticidal lamp. According to the adjustable solar insecticidal lamp, insects can be killed through the insecticidal lamp, meanwhile, pesticides can be automatically sprayed to kill the insects which are not killed, double insect killing is achieved, the insect killing efficiency and effect are improved, the mosquitoes are prevented from escaping, and the adjustable solar insecticidal lamp is convenient to use. An adjustable solar insecticidal lamp comprises a connecting column, a lamp holder, a deinsectization lamp and the like, the lamp holder is connected to the right side of the upper portion of the connecting column, and the deinsectization lamp is connected to the lower side of the right portion of the lamp holder. The insect killing lamp and the power grid are used in cooperation to kill mosquitoes, meanwhile, an insect killing agent is sprayed out through the electric spray head, so that the insect killing agent falls on the mosquitoes which are not killed by the insect killing lamp to kill the mosquitoes, and therefore the insects can be killed through the insect killing lamp while the agents are automatically sprayed to kill the mosquitoes which are not killed. The mosquito killer realizes double deinsectization, improves the deinsectization efficiency and effect, prevents mosquitoes from escaping, and is convenient to use.
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Description

Technical Field

[0001] This utility model relates to the field of insecticidal lamps, and more particularly to an adjustable solar-powered insecticidal lamp. Background Technology

[0002] Solar-powered insecticidal lamps are environmentally friendly devices that use solar energy as an energy source, combined with physical or chemical methods to attract and kill pests. They typically consist of solar panels, energy storage devices (such as batteries), controllers, light sources (usually ultraviolet lamps), and insecticidal components. As a green and efficient pest management tool, solar-powered insecticidal lamps play an important role in various industries and application scenarios.

[0003] Existing solar-powered insecticidal lamps are typically installed in areas where insects need to be killed, and then used to kill mosquitoes. However, current insecticidal lamps usually attract and electrocute pests with ultraviolet light, using only one method to kill mosquitoes, which cannot achieve dual insecticidal effects. This can easily lead to some mosquitoes not being killed and flying away, thus affecting the efficiency and effectiveness of insecticidal treatment, and making them inconvenient to use.

[0004] Therefore, it is necessary to design an adjustable solar-powered insecticidal lamp that can kill insects by simultaneously spraying pesticides to kill any remaining mosquitoes, achieving dual insect control, improving the efficiency and effectiveness of insect control, preventing mosquitoes from escaping, and being easy to use. Utility Model Content

[0005] To overcome the shortcomings of current insecticidal lamps, which only use a single method to kill mosquitoes and cannot achieve dual insecticidal effects, resulting in some mosquitoes flying away without being killed, thus affecting the efficiency and effectiveness of insecticidal treatment, and are also relatively inconvenient to use, this utility model provides an adjustable solar-powered insecticidal lamp that can automatically spray an insecticide to kill any surviving mosquitoes while killing them with the insecticidal lamp, achieving dual insecticidal treatment, improving the efficiency and effectiveness of insecticidal treatment, preventing mosquitoes from escaping, and being easy to use.

[0006] The technical implementation scheme of this utility model is as follows: An adjustable solar-powered insecticidal lamp includes a connecting column, a lamp holder, an insecticidal lamp, an external net, an electric grid, a solar panel, a collection component, an insect-removing component, and an adjustment component. The lamp holder is connected to the upper right side of the connecting column, the insecticidal lamp is connected to the lower right side of the lamp holder, the external net is connected to the lower side of the lamp holder, the electric grid is connected to the lower right side of the lamp holder, the electric grid is located outside the insecticidal lamp, the solar panel is placed on the upper right side of the lamp holder, the collection component for collecting the killed mosquitoes is provided on the lower side of the external net, the insect-removing component for spraying insecticide to kill mosquitoes is provided on the right side of the lamp holder, and the adjustment component for adjusting the angle of the solar panel is provided on the front right side of the lamp holder.

[0007] More preferably, the collection component includes a placement frame, a storage box, and a pusher. The placement frame is connected to the lower side of the outer net, the storage box is slidably and detachably connected to the placement frame, and the pusher is connected to the front side of the storage box.

[0008] Even more preferably, the storage box has a feeding port on the right side.

[0009] More preferably, the insect control component includes a medicine box, a lid, and an electric nozzle. The medicine box is connected to the right side of the lamp holder, the lid is snapped onto the upper side of the medicine box, and the electric nozzle is connected to the right side of the medicine box and connected to the placement frame.

[0010] Even more preferable is that the medicine box is made of transparent material.

[0011] More preferably, the adjustment assembly includes a fixed shaft, a connecting shaft, and a rotating component. The right front side of the lamp holder is connected to two fixed shafts, and a connecting shaft is connected between the fixed shafts. A rotating component is connected to the connecting shaft via a damped rotational connection, and the rotating component is connected to the solar panel.

[0012] The beneficial effects of this utility model are as follows: 1. This utility model kills mosquitoes by combining an insecticidal lamp and an electric grid. At the same time, an electric nozzle sprays insecticide, which lands on the mosquitoes that were not killed by the lamp and kills them. Thus, it can kill mosquitoes by automatically spraying insecticide while killing them by the lamp, achieving dual insecticidal effect, improving the efficiency and effectiveness of insecticidal treatment, preventing mosquitoes from escaping, and making it convenient to use.

[0013] 2. This utility model allows the solar panel to be rotated by hand, causing the rotating component to rotate along the connecting shaft, so that the solar panel faces the direction of sunlight. Then, the solar panel absorbs light energy and converts it into electrical energy to power the insect-killing lamp. This allows the angle of the solar panel to be adjusted to face the direction of sunlight to absorb light energy, ensuring optimal lighting conditions and improving photoelectric conversion efficiency.

[0014] 3. In this utility model, the killed mosquitoes fall into the placement box, which can then be moved and removed by pushing and pulling the handle. The mosquitoes in the storage box can then be emptied for cleaning, thus enabling the collection of killed mosquitoes and facilitating their disposal. Attached Figure Description

[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0016] Figure 2 This is a partial three-dimensional structural diagram of the present invention.

[0017] Figure 3 This is a three-dimensional structural diagram of the collecting component of this utility model.

[0018] Figure 4This is a three-dimensional structural diagram of the insect-removing component of this utility model.

[0019] Figure 5 This is a three-dimensional structural diagram of the adjustment component of this utility model.

[0020] Explanation of reference numerals in the attached diagram: 1_connecting column, 2_lamp holder, 3_insect-killing lamp, 4_external net, 5_electric grid, 6_placement frame, 7_storage box, 8_handle, 9_solar panel, 10_medicine box, 11_box lid, 12_electric nozzle, 13_fixed shaft, 14_connecting shaft, 15_rotating component. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] An adjustable solar-powered insecticidal lamp, such as Figures 1-5 As shown, the device includes a connecting column 1, a lamp holder 2, an insecticidal lamp 3, an outer net 4, an electric grid 5, a placement frame 6, a storage box 7, a push handle 8, a solar panel 9, a medicine box 10, a box lid 11, an electric nozzle 12, a fixed shaft 13, a connecting shaft 14, and a rotating component 15. The lamp holder 2 is connected to the upper right side of the connecting column 1. The insecticidal lamp 3 is connected to the lower right side of the lamp holder 2. The outer net 4 is connected to the lower side of the lamp holder 2. The electric grid 5 is connected to the lower right side of the lamp holder 2 and is located outside the insecticidal lamp 3. The placement frame 6 is connected to the lower side of the outer net 4. The storage box 7 is slidably and detachably connected to the placement frame 6. The storage box 7 has a feeding opening on its right side. The lamp holder 2 has an opening for easy access to the medicine. A push handle 8 is connected to the front of the storage box 7. A solar panel 9 is placed on the upper right side of the lamp holder 2. A medicine box 10 is connected to the right side of the lamp holder 2. The medicine box 10 is made of transparent material to facilitate observation of the medicine usage inside. A box lid 11 is snapped onto the upper side of the medicine box 10. An electric nozzle 12 is connected to the right side of the medicine box 10. The electric nozzle 12 is connected to the placement frame 6. Two fixed shafts 13 are connected to the front right side of the lamp holder 2. A connecting shaft 14 is connected between the fixed shafts 13. A rotating component 15 is connected to the connecting shaft 14 by a damping rotation. The rotating component 15 is connected to the solar panel 9.

[0023] When using a solar-powered insecticidal lamp for pest control, this device can be used. First, ensure the connecting column 1 and the placement frame 6 are in contact with the ground. Then, remove the lid 11 and add the insecticide to the medicine box 10. Next, snap the lid 11 into the medicine box 10. Then, manually rotate the solar panel 9, causing the rotating component 15 to rotate along the connecting shaft 14, so that the solar panel 9 faces the direction of sunlight. The solar panel 9 absorbs light energy and converts it into electrical energy to power the insecticidal lamp 3. The angle of the solar panel 9 can be adjusted to face the direction of sunlight to ensure optimal lighting conditions and improve photoelectric conversion efficiency. Then, activate the insecticidal lamp 3. When mosquitoes fly into the interior from the outer mesh 4, the combined use of the insecticidal lamp 3 and the electric grid 5 kills them. The killed mosquitoes will fall to the ground. Inside the placement frame 6, simultaneously activate the electric nozzle 12 to spray the insecticide from the medicine tank 10. This allows the insecticide to enter the storage box 7 through the inlet, landing on the mosquitoes that were not killed by the insecticidal lamp 3. This achieves dual insecticidal effects, simultaneously killing insects with the insecticidal lamp 3 and automatically spraying insecticide to kill the remaining mosquitoes. This improves the efficiency and effectiveness of insecticidal treatment, prevents mosquitoes from escaping, and is easy to use. After insecticidal treatment is complete, turn off the insecticidal lamp 3 and the electric nozzle 12. Then, use the push handle 8 to pull the storage box 7 to remove it. Empty the mosquitoes from the storage box 7 for cleaning, thus collecting the killed mosquitoes for easy disposal. After cleaning, place the storage box 7 back into the placement frame 6 and then push the storage box 7 to install it.

[0024] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. An adjustable solar-powered insecticidal lamp, characterized in that, It includes a connecting column (1), a lamp holder (2), an insecticidal lamp (3), an external net (4), an electric grid (5), a solar panel (9), a collection component, an insecticidal component, and an adjustment component. The lamp holder (2) is connected to the upper right side of the connecting column (1). The insecticidal lamp (3) is connected to the lower right side of the lamp holder (2). The external net (4) is connected to the lower side of the lamp holder (2). The electric grid (5) is connected to the lower right side of the lamp holder (2). The electric grid (5) is located outside the insecticidal lamp (3). The solar panel (9) is placed on the upper right side of the lamp holder (2). The collection component for collecting the killed mosquitoes is provided on the lower side of the external net (4). The insecticidal component for spraying insecticide to kill mosquitoes is provided on the right side of the lamp holder (2). The adjustment component for adjusting the angle of the solar panel (9) is provided on the front right side of the lamp holder (2).

2. An adjustable solar-powered insecticidal lamp as described in claim 1, characterized in that, The collection components include a placement frame (6), a storage box (7), and a pusher (8). The placement frame (6) is connected to the lower side of the outer net (4), and the storage box (7) is detachably connected to the placement frame (6). The pusher (8) is connected to the front side of the storage box (7).

3. An adjustable solar-powered insecticidal lamp as described in claim 2, characterized in that, The storage box (7) has a feeding port on the right side.

4. An adjustable solar-powered insecticidal lamp as described in claim 3, characterized in that, The insect control assembly includes a medicine box (10), a box cover (11), and an electric nozzle (12). The medicine box (10) is connected to the right side of the lamp holder (2). The box cover (11) is snapped onto the upper side of the medicine box (10). The electric nozzle (12) is connected to the right side of the medicine box (10) and is connected to the placement frame (6).

5. An adjustable solar-powered insecticidal lamp as described in claim 4, characterized in that, The medicine box (10) is made of transparent material.

6. An adjustable solar-powered insecticidal lamp as described in claim 5, characterized in that, The adjustment assembly includes a fixed shaft (13), a connecting shaft (14), and a rotating component (15). The right front side of the lamp holder (2) is connected to two fixed shafts (13), and the fixed shafts (13) are connected to each other. The connecting shaft (14) is connected to the connecting shaft (14) by a damped rotational connection, and the rotating component (15) is connected to the solar panel (9).