A solar-powered mosquito killer

CN224627443UActive Publication Date: 2026-08-14SHENZHEN ANDELIAN TECH CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-28
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0003]本申请实施例提供一种太阳能灭蚊装置,能够解决相关技术中的太阳能灭蚊装置因其自身结构设计的原因,灭蚊范围较小,导致灭蚊效果不佳的问题

Benefits of technology

[0005]基于本申请实施例的太阳能灭蚊装置,通过设计安装结构和多个灭蚊模组,安装结构将多个灭蚊模组组装成一个整体,可有效增大该太阳能灭蚊装置的灭蚊范围;通过设计太阳能模组,太阳能模组适用于将太阳能转化成电能以向灭蚊模组提供工作时所需要的电能,太阳能属于绿色能源,可节约资源、降低污染;多个灭蚊模组之间相互独立,用户可根据实际环境选择所需要开启的灭蚊模组的数量,可进一步减少资源浪费。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224627443U_ABST
    Figure CN224627443U_ABST
Patent Text Reader

Abstract

This application discloses a solar-powered mosquito-killing device, which includes a mosquito-killing module, a solar module, and an installation structure. Multiple mosquito-killing modules are present, and the solar modules are electrically connected to the mosquito-killing modules to supply power. The installation structure is used to assemble multiple mosquito-killing modules into a single unit.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of outdoor mosquito-killing lamp technology, and more particularly to a solar-powered mosquito-killing device. Background Technology

[0002] Solar-powered mosquito killers are devices specifically designed to capture, kill, or repel mosquitoes. They are widely used in homes, public places (such as parks, restaurants, and hospitals), and outdoor environments to reduce mosquito populations and improve living comfort. However, due to their inherent structural design, these solar-powered mosquito killers have a limited killing range, resulting in poor effectiveness. Therefore, effectively expanding the killing range of solar-powered mosquito killers to improve their effectiveness has become a pressing issue. Utility Model Content

[0003] This application provides a solar-powered mosquito-killing device that solves the problem that solar-powered mosquito-killing devices in the related art have a small mosquito-killing range due to their own structural design, resulting in poor mosquito-killing effect.

[0004] This application provides a solar-powered mosquito killer device. The solar-powered mosquito killer device includes a mosquito killer module, a solar module, and an installation structure. There are multiple mosquito killer modules. The solar module is electrically connected to the mosquito killer module to supply power to the mosquito killer module. The installation structure is used to assemble multiple mosquito killer modules into one unit.

[0005] The solar-powered mosquito-killing device based on the embodiments of this application, through the design of an installation structure and multiple mosquito-killing modules, assembles multiple mosquito-killing modules into a whole, which can effectively increase the mosquito-killing range of the solar-powered mosquito-killing device; through the design of the solar modules, the solar modules are suitable for converting solar energy into electrical energy to provide the power required for the mosquito-killing modules to work. Solar energy is a green energy source, which can save resources and reduce pollution; the multiple mosquito-killing modules are independent of each other, and users can select the number of mosquito-killing modules to be turned on according to the actual environment, which can further reduce resource waste. Attached Figure Description

[0006] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0007] Figure 1 This is a three-dimensional representation of the solar-powered mosquito-killing device provided in Embodiment 1 of this application. Figure 1 ;

[0008] Figure 2yes Figure 1 An exploded view of the solar-powered mosquito-killing device in the image;

[0009] Figure 3 This is an exploded view of the mosquito-killing module in Embodiment 1 of this application;

[0010] Figure 4 yes Figure 1 A three-dimensional view of the mounting components;

[0011] Figure 5 This is a three-dimensional representation of the solar-powered mosquito-killing device provided in Embodiment 1 of this application. Figure 2 ;

[0012] Figure 6 yes Figure 5 An exploded view of the solar-powered mosquito-killing device in the image;

[0013] Figure 7 yes Figure 5 A three-dimensional view of the mounting components;

[0014] Figure 8 This is a three-dimensional representation of the solar-powered mosquito-killing device provided in Embodiment 1 of this application. Figure 3 ;

[0015] Figure 9 yes Figure 8 An exploded view of the solar-powered mosquito-killing device in the image;

[0016] Figure 10 yes Figure 8 A three-dimensional view of the mounting components;

[0017] Figure 11 This is a partial exploded view of the solar-powered mosquito-killing device provided in Embodiment 1 of this application;

[0018] Figure 12 This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment 2 of this application in its unfolded state;

[0019] Figure 13 yes Figure 12 Enlarged view of point A in the middle;

[0020] Figure 14 yes Figure 12 An exploded view of the solar-powered mosquito-killing device in an overlay configuration;

[0021] Figure 15 This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment 3 of this application;

[0022] Figure 16 This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment 4 of this application;

[0023] Figure 17This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment 5 of this application in its unfolded state;

[0024] Figure 18 yes Figure 17 Enlarged view of point B in the middle;

[0025] Figure 19 yes Figure 17 An exploded view of the solar-powered mosquito-killing device in an overlay configuration;

[0026] Figure 20 This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment Six of this application in its unfolded state;

[0027] Figure 21 yes Figure 20 An exploded view of the solar-powered mosquito-killing device in an overlay configuration;

[0028] Figure 22 This is a perspective view of the solar-powered mosquito-killing device provided in Embodiment 7 of this application in its unfolded state;

[0029] Figure 23 yes Figure 22 A three-dimensional view of the mounting components;

[0030] Figure 24 yes Figure 22 An exploded view of the solar-powered mosquito-killing device in an overlay configuration. Detailed Implementation

[0031] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0032] Example 1

[0033] Please refer to Figure 1 and Figure 2As shown in the figure, Embodiment 1 of this application provides a solar-powered mosquito-killing device, which includes a mosquito-killing module 2, a solar module 1, and an installation structure 10. Multiple mosquito-killing modules 2 are included; the solar module 1 is electrically connected to the mosquito-killing modules 2 to supply power to them; the installation structure 10 is used to assemble multiple mosquito-killing modules 2 into a single unit. By designing the installation structure 10 and the multiple mosquito-killing modules 2, the installation structure 10 assembles the multiple mosquito-killing modules 2 into a whole, effectively increasing the mosquito-killing range of the solar-powered mosquito-killing device; by designing the solar module 1, the solar module 1 is suitable for converting solar energy into electrical energy to provide the electrical energy required for the mosquito-killing modules 2 to operate. Solar energy is a green energy source, which can save resources and reduce pollution; the multiple mosquito-killing modules 2 are independent of each other, and users can select the number of mosquito-killing modules 2 that need to be activated according to the actual environment, further reducing resource waste.

[0034] The number of solar modules 1 can be one or more (two or more); for example, when the number of solar modules 1 is one, the one solar module 1 is used to be electrically connected to all mosquito-killing modules 2 to supply power to all mosquito-killing modules 2; as another example, when the number of solar modules 1 is multiple, each solar module 1 is electrically connected to at least one mosquito-killing module 2 to supply power to at least one mosquito-killing module 2.

[0035] For each solar module 1, the solar module 1 includes a solar panel 11 and a connector 12. The solar panel 11 is used to convert solar energy into electrical energy, and the connector 12 is used to detachably connect the solar panel 11 to the frame assembly 21 of the mosquito-killing module 2 (described below). The number of solar panels 11 can be one or more. The angle of the solar panel 11 relative to the plane of the window of the frame assembly 21 is adjustable. This allows the angle of the solar panel 11 relative to the plane of the window of the frame assembly 21 to be adjusted according to the position of the sun at different times, so that as much of the solar panel 11's light-receiving surface as possible faces the sun, thereby improving the power generation efficiency of the solar panel 11.

[0036] Each mosquito-killing module 2 includes a frame assembly 21 and an electric grid 22 disposed within the frame assembly 21. A solar module 1 is located on one side of the mosquito-killing module 2 and connected to the frame assembly 21. The frame assembly 21 serves as the framework of the mosquito-killing module 2, providing support for components such as the electric grid 22. The electric grid 22 is used to kill mosquitoes. Mosquitoes, attracted by the mosquito-attracting lamp of the mosquito-killing module 2, fly into the frame assembly 21 and come into contact with the electric grid 22, forming a conductive loop. Current flows through this loop, electrocuting the mosquitoes.

[0037] Specifically, such as Figure 3As shown, the frame assembly 21 includes two mounting posts 211, a top beam 212, and a bottom beam 213. The two mounting posts 211 are arranged opposite each other, and the top beam 212 and the bottom beam 213 are arranged opposite each other. The two mounting posts 211, the top beam 212, and the bottom beam 213 are connected to jointly enclose and form the aforementioned window.

[0038] The tops of the two mounting posts 211 are tapered to form tapered ends 211a. A connector 12 is used to detachably connect the solar panel 11 to the tapered ends 211a of the mounting posts 211. The connector 12 is a bolt 5, which is a hand-tightening bolt. The bolt 5 includes a cap 51 and a stud 52 fixedly connected to the cap 51. The user holds the cap 51 and rotates it to rotate the stud 52, causing the stud 52 of the bolt 5 to be threadedly connected to the tapered ends 211a of the mounting posts 211. This allows the solar panel 11 to be installed between the solar panel 11 and the tapered ends 211a of the two mounting posts 211, or the stud 52 of the bolt 5 to be disengaged from the tapered ends 211a of the two mounting posts 211, thus allowing the solar panel 11 to be detached from the tapered ends 211a of the two mounting posts 211.

[0039] In this embodiment, as Figure 1 , Figure 2 and Figure 4 As shown, the mounting structure 10 includes at least one mounting member 101, and the two frame components 21 of two adjacent mosquito-killing modules 2 are fixedly connected by at least one mounting member 101. Assembly of two adjacent mosquito-killing modules 2 can be achieved using one mounting member 101, or multiple mounting members 101 can be used. By designing the mounting member 101 to facilitate the assembly of two adjacent mosquito-killing modules 2, multiple mosquito-killing modules 2 can be assembled into one unit through the mounting member 101, effectively increasing the mosquito-killing range of the solar-powered mosquito-killing device.

[0040] Each mounting component 101 includes two mounting portions 1011 spaced apart along the length direction XX' of the mosquito-killing module 2, and a connecting portion 1012 connecting the two mounting portions 1011. The two mounting portions 1011 of each mounting component 101 are used to be fixedly connected to the two frame components 21 of the two adjacent mosquito-killing modules 2 in a one-to-one correspondence.

[0041] At least one of the two mounting portions 1011 of each mounting component 101 is engaged with the frame assembly 21 of the corresponding mosquito-killing module 2. For example, one of the two mounting portions 1011 of each mounting component 101 may be engaged with the frame assembly 21 of the corresponding mosquito-killing module 2, while the other mounting portion 1011 of each mounting component 101 may be threaded or plugged into the frame assembly 21 of the corresponding mosquito-killing module 2. Alternatively, both mounting portions 1011 of each mounting component 101 may be engaged with the frame assembly 21 of the corresponding mosquito-killing module 2. By connecting at least one end of each mounting component 101 to the frame assembly 21 of the corresponding mosquito-killing module 2 through engagement, the operation is simple, facilitating the assembly of multiple mosquito-killing modules 2 into one unit, and resulting in high assembly efficiency.

[0042] The mounting section 1011 includes a first enclosure 1011a and two second enclosures 1011b. The two second enclosures 1011b are spaced apart along the width direction YY' of the mosquito-killing module 2 and connected to the edge of the first enclosure 1011a. The two second enclosures 1011b and the first enclosure 1011a together form a clamping structure 1011c with an opening on one side. The opening of the clamping structure 1011c faces the frame assembly 21 of the corresponding mosquito-killing module 2, and the clamping structure 1011c is used to clamp the frame assembly 21 of the corresponding mosquito-killing module 2 (specifically, the mounting post 211 described above). The first enclosure 1011a and the two second enclosures 1011b can be formed as a single unit by injection molding or 3D printing, but are not limited to this method. The first enclosure 1011a and the two second enclosures 1011b together form a clamp structure 1011c with an opening on one side. When the clamp structure 1011c clamps the frame component 21 of the corresponding mosquito-killing module 2, the two second enclosures 1011b undergo elastic deformation, causing the mounting part 1011 to clamp the frame component 21 of the corresponding mosquito-killing module 2 under the action of the elastic restoring force corresponding to the elastic deformation. In this way, the engaging connection between the mounting part 1011 and the frame component 21 of the corresponding mosquito-killing module 2 can be achieved. The structure is simple and easy to implement.

[0043] The mounting part 1011 also includes a limiting flange 1011d, which is located on the side of the two second enclosures 1011b away from the first enclosure 1011a. When the clamping structure 1011c clamps the frame assembly 21 of the corresponding mosquito-killing module 2, the limiting flange 1011d abuts against the surface of the frame assembly 21 facing away from the first enclosure 1011a. The limiting flange 1011d can be integrally formed with the second enclosure 1011b by injection molding or 3D printing, but is not limited to this method. The limiting flange 1011d can be an elongated flange extending along the height direction ZZ' of the mosquito-killing module 2. By designing the limiting flange 1011d, when the clamping structure 1011c clamps the frame assembly 21 of the corresponding mosquito-killing module 2, the side surface of the frame assembly 21 facing away from the first enclosure wall 1011a plays a limiting role on the limiting flange 1011d, which can prevent the clamping structure 1011c from detaching from the frame assembly 21. This can enhance the connection stability between the mounting part 1011 and the frame assembly 21 of the corresponding mosquito-killing module 2.

[0044] The connecting portion 1012 in each mounting component 101 is used to connect two mounting portions 1011. The connecting portion 1012 can be detachably and fixedly connected to the two mounting portions 1011 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the connecting portion 1012 can be non-detachably and fixedly connected to the two mounting portions 1011 by injection molding, 3D printing, or riveting. The specific forms of the connecting portion 1012 may include, but are not limited to, the following:

[0045] In the first case, such as Figure 6 As shown, the connecting part 1012 includes a first connecting wall 1012a and a second connecting wall 1012b arranged crosswise. The first connecting wall 1012a and the second connecting part 1012b are respectively fixedly connected to the two first enclosure walls 1011a of the two mounting parts 1011 on both sides along the length direction XX' of the mosquito-killing module 2. The first connecting wall 1012a and the second connecting wall 1012b can be integrally formed with the two mounting parts 1011 by injection molding or 3D printing, but are not limited to this method. The crosswise arrangement of the first connecting wall 1012a and the second connecting wall 1012b serves to connect the two separate mounting parts 1011 into a whole, simplifying the structure of the mounting part 101 and facilitating its processing.

[0046] In the second case, such as Figures 5 to 7As shown, the connecting part 1012 includes a first connecting wall 1012a, a second connecting wall 1012b, and a reinforcing wall 1012c. The first connecting wall 1012a and the second connecting wall 1012b are arranged intersectingly. The first connecting wall 1012a and the second connecting wall 1012b are respectively fixedly connected to the two first enclosure walls 1011a of the two mounting parts 1011 on both sides along the length direction XX' of the mosquito-killing module 2. The reinforcing wall 1012c connects at least two of the first connecting wall 1012a, the second connecting wall 1012b, and the first enclosure wall 1011a. The first connecting wall 1012a, the second connecting wall 1012b, and the reinforcing wall 1012c can be integrally formed with the two mounting parts 1011 by injection molding or 3D printing, but not limited to this method. The number of reinforcing walls 1012c can be one or more. The first connecting wall 1012a and the second connecting wall 1012b, which are arranged in a cross configuration, are used to connect the two separate mounting parts 1011 into a whole, simplifying the structure of the mounting part 101 and facilitating the processing of the mounting part 101; the reinforcing wall 1012c is equivalent to a reinforcing rib and is used to enhance the overall structural strength of the mounting part 101.

[0047] In the third case, such as Figures 8 to 10 As shown, the connecting part 1012 includes a third connecting wall 1012d extending along the length direction XX' of the mosquito-killing module 2. The third connecting wall 1012d is fixedly connected to the two first enclosure walls 1011a of the two mounting parts 1011 on both sides along the length direction XX' of the mosquito-killing module 2. The third connecting wall 1012d has a hollow area 1012e, which includes a hollow hole 1012f penetrating the third connecting wall 1012d along the width direction YY' of the mosquito-killing module 2. The cross-section of the hollow hole 1012f is polygonal. The third connecting wall 1012d can be integrally formed with the two mounting parts 1011 by injection molding or 3D printing, but is not limited to this method. The third connecting wall 1012d is used to connect the two separate mounting parts 1011 into a whole, simplifying the structure of the mounting part 101 and facilitating the processing of the mounting part 101. By designing a hollow area 1012e on the third connecting wall 1012d and designing the hollow area 1012e as a hollow hole 1012f with a polygonal cross-section, the structural strength of the third connecting wall 1012d can be enhanced.

[0048] In this embodiment, as Figure 11As shown, the solar-powered mosquito killer device also includes a support module 3, which is used to connect with the mosquito killer module 2 to provide support for the mosquito killer module 2. The support module 3 includes multiple inserts 31, the ends of which are connected one-to-one with multiple mounting holes 210 of the frame assembly 21 of the mosquito killer module 2. Each insert 31 includes a support column 310 whose top is connected to the mounting hole 210 and a grounding insert 311 located at the bottom of the support column 310. The insert 31 can be connected to the mounting hole 210 by means of screws or snap-fit, thus achieving the connection between the insert 31 and the frame assembly 21, facilitating the installation and removal of the insert 31 and the frame assembly 21.

[0049] Example 2

[0050] Please see Figures 12 to 14 This application provides a solar-powered mosquito killer device in Embodiment 2. It should be noted that the solar-powered mosquito killer device in Embodiment 2 is structurally similar to the solar-powered mosquito killer device in Embodiment 1 of this application (and can be referred to the description in Embodiment 1 above). The following description focuses only on the differences between the solar-powered mosquito killer device in Embodiment 2 and the solar-powered mosquito killer device in Embodiment 1.

[0051] In this embodiment, as Figures 12 to 14 As shown, the mounting structure 10 includes at least one adapter 102, through which the two frame components 21 of two adjacent mosquito-killing modules 2 are rotatably connected. Assembly between two adjacent mosquito-killing modules 2 can be achieved using one adapter 102 or multiple adapters 102. By designing the adapter 102 to facilitate the assembly between two adjacent mosquito-killing modules 2, and allowing multiple mosquito-killing modules 2 to be assembled into one unit via the adapter 102, the mosquito-killing range of the solar-powered mosquito-killing device can be effectively increased.

[0052] Each adapter 102 includes two adapter portions 1021 arranged along the height direction ZZ' of the mosquito killing module 2, and a rotating shaft 1022 rotatably connected to the two adapter portions 1021. The two adapter portions 1021 of each adapter 102 are used to be fixedly connected to the frame components 21 of two adjacent mosquito killing modules 2 in a one-to-one correspondence.

[0053] The adapter 1021 includes an adapter sleeve 1021a and at least one adapter wall 1021b. The adapter sleeve 1021a is rotatably connected to the rotating shaft 1022. One end of the at least one adapter wall 1021b is fixedly connected to the outer surface of the adapter sleeve 1021a, and the other end of the at least one adapter wall 1021b is fixedly connected to the frame assembly 21 of the corresponding mosquito-killing module 2 (specifically, the mounting post 211 described above). The adapter sleeve 1021a and the adapter wall 1021b can be integrally formed, but are not limited to, by injection molding or 3D printing. The adapter wall 1021b can be detachably and fixedly connected to the frame assembly 21 of the corresponding mosquito-killing module 2, but are not limited to, by screwing, snap-fitting, or plugging. Alternatively, the adapter wall 1021b can be non-detachably and fixedly connected to the frame assembly 21 of the corresponding mosquito-killing module 2, but are not limited to, by riveting, welding, or gluing.

[0054] It should be noted that the adapter 102 can also adjust the angle between two adjacent mosquito-killing modules 2, allowing the solar-powered mosquito-killing device to have both an unfolded and a stacked state. In the unfolded state, multiple mosquito-killing modules 2 can be arranged in a row horizontally or enclosed to form a circle. In the stacked state, two adjacent mosquito-killing modules 2 rotate to stack together along the width direction YY' of the mosquito-killing modules 2. During normal use, the solar-powered mosquito-killing device is in the unfolded state, ensuring that the multiple mosquito-killing modules 2 do not obstruct each other and guaranteeing the mosquito-killing range of the solar-powered mosquito-killing device. During transportation, the solar-powered mosquito-killing device is in the stacked state, allowing the multiple mosquito-killing modules 2 to rotate to stack together along the width direction YY' of the mosquito-killing modules 2, reducing the space occupancy rate of the solar-powered mosquito-killing device.

[0055] Example 3

[0056] Please see Figure 15 This application provides a solar-powered mosquito killer device in Embodiment 3. It should be noted that the solar-powered mosquito killer device in Embodiment 3 is structurally similar to the solar-powered mosquito killer device in Embodiment 1 of this application (and can be referred to the description in Embodiment 1 above). The following description focuses only on the differences between the solar-powered mosquito killer device in Embodiment 3 and the solar-powered mosquito killer device in Embodiment 1.

[0057] In this embodiment, as Figure 15As shown, the mounting structure 10 includes a mounting frame 103, located on the side of the mosquito-killing module 2 away from the solar module 1. The mounting frame 103 is connected to the frame assemblies 21 of all mosquito-killing modules 2 to provide support for all mosquito-killing modules 2. The frame assemblies 21 of each mosquito-killing module 2 can be detachably and fixedly connected to the mounting frame 103 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the frame assemblies 21 of each mosquito-killing module 2 can be non-detachably and fixedly connected to the mounting frame 103 by riveting or welding, but not limited to this method. By designing the mounting frame 103, it serves two purposes: firstly, to assemble all mosquito-killing modules 2 together; and secondly, to act as support legs (similar to the support module 3 in the first embodiment) to provide support for all mosquito-killing modules 2.

[0058] The mounting bracket 103 includes a mounting body 1031 and mounting feet 1032 connected to the mounting body 1031. All frame components 21 of the mosquito-killing modules 2 are fixedly connected to the mounting body 1031. The mounting body 1031 can be a rod-shaped structure or a plate-shaped structure. The specific connection method between the mounting feet 1032 and the mounting body 1031 is not limited here; designers can design it reasonably according to actual needs. For example, the mounting feet 1032 can be detachably fixedly connected to the mounting body 1031 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the mounting feet 1032 can be non-detachably fixedly connected to the mounting body 1031 by riveting or welding, but not limited to this method.

[0059] like Figure 15 As shown, the mounting body 1031 includes a mounting rod 1031a, and the mounting feet 1032 include multiple T-shaped support rods 1032a. The multiple T-shaped support rods 1032a are spaced apart along the length direction XX' of the mounting rod 1031a and are fixedly connected to the mounting rod 1031a. The frame components 21 of all mosquito-killing modules 2 are fixedly connected to the mounting rod 1031a. All mosquito-killing modules 2 are spaced apart along the length direction XX' of the mounting rod 1031a, and the length direction XX' of all mosquito-killing modules 2 is coplanar and parallel to the length direction XX' of the mounting rod 1031a. All mosquito-killing modules 2 are arranged in a row along the length direction XX' of the mounting rod 1031a, ensuring that the multiple mosquito-killing modules 2 do not obstruct each other and guaranteeing the mosquito-killing range of the solar module 1.

[0060] It should be noted that in Embodiment 3 of this application, the solar-powered mosquito-killing device does not include the support module 3 in Embodiment 1 above. The mounting bracket 103 is equivalent to the support module 3 described above, which is used to provide support for all mosquito-killing modules 2. The T-shaped support rod 1032a is different from the ground plug 311 of the support module 3 in Embodiment 1 above. The T-shaped support rod 1032a does not have a spike and does not need to be inserted below the cement surface. The T-shaped support rod 1032a only needs to be placed on the cement surface to effectively support the mosquito-killing module 2.

[0061] Example 4

[0062] Please see Figure 16 This application provides a solar-powered mosquito killer device in its fourth embodiment. It should be noted that the solar-powered mosquito killer device in the fourth embodiment is structurally similar to the solar-powered mosquito killer device in the first embodiment of this application (and can be referred to the description in the first embodiment). The following description focuses on the differences between the solar-powered mosquito killer device in the fourth embodiment and the solar-powered mosquito killer device in the first embodiment.

[0063] In this embodiment, as Figure 16 As shown, the mounting structure 10 includes a mounting frame 103, located on the side of the mosquito-killing module 2 away from the solar module 1. The mounting frame 103 is connected to the frame assemblies 21 of all mosquito-killing modules 2 to provide support for all mosquito-killing modules 2. The frame assemblies 21 of each mosquito-killing module 2 can be detachably and fixedly connected to the mounting frame 103 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the frame assemblies 21 of each mosquito-killing module 2 can be non-detachably and fixedly connected to the mounting frame 103 by riveting or welding, but not limited to this method. By designing the mounting frame 103, it serves two purposes: firstly, to assemble all mosquito-killing modules 2 together; and secondly, to act as support legs (similar to the support module 3 in the first embodiment) to provide support for all mosquito-killing modules 2.

[0064] The mounting bracket 103 includes a mounting body 1031 and mounting feet 1032 connected to the mounting body 1031. All frame components 21 of the mosquito-killing modules 2 are fixedly connected to the mounting body 1031. The mounting body 1031 can be a rod-shaped structure or a plate-shaped structure. The specific connection method between the mounting feet 1032 and the mounting body 1031 is not limited here; designers can design it reasonably according to actual needs. For example, the mounting feet 1032 can be detachably fixedly connected to the mounting body 1031 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the mounting feet 1032 can be non-detachably fixedly connected to the mounting body 1031 by riveting or welding, but not limited to this method.

[0065] like Figure 16 As shown, the mounting body 1031 includes multiple rotatably connected mounting rods 1031b, and the mounting feet 1032 include multiple T-shaped rods 1032a. The ends of the multiple T-shaped rods 1032a are fixedly connected to the ends of the multiple mounting rods 1031b. The frame assembly 21 of each mosquito-killing module 2 is fixedly connected to one mounting rod 1031b, and the length direction XX' of each mosquito-killing module 2 is coplanar and parallel to the length direction XX' of the corresponding mounting rod 1031b. By designing multiple rotatably connected mounting rods 1031b, multiple mosquito-killing modules 2 can be assembled into one unit through multiple rotatably connected mounting rods 1031b, which can effectively improve the mosquito-killing range of the solar-powered mosquito-killing device.

[0066] It should be noted that in Embodiment 4 of this application, the solar-powered mosquito-killing device does not include the support module 3 in Embodiment 1 above. The mounting bracket 103 is equivalent to the support module 3 described above, which is used to provide support for all mosquito-killing modules 2. The T-shaped support rod 1032a is different from the ground plug 311 of the support module 3 in Embodiment 1 above. The T-shaped support rod 1032a does not have a spike and does not need to be inserted below the cement surface. The T-shaped support rod 1032a only needs to be placed on the cement surface to effectively support the mosquito-killing module 2.

[0067] It should be noted that the rotating mounting rod 1031b can also adjust the angle between two adjacent mosquito-killing modules 2, allowing the solar-powered mosquito-killing device to have both an unfolded and a stacked state. In the unfolded state, multiple mosquito-killing modules 2 can be arranged in a row horizontally or enclosed to form a circle. In the stacked state, two adjacent mosquito-killing modules 2 rotate to stack together along the width direction YY' of the mosquito-killing modules 2. During normal use, the solar-powered mosquito-killing device is in the unfolded state, ensuring that the multiple mosquito-killing modules 2 do not obstruct each other and guaranteeing the mosquito-killing range of the solar-powered mosquito-killing device. During transportation, the solar-powered mosquito-killing device is in the stacked state, allowing the multiple mosquito-killing modules 2 to rotate to stack together along the width direction YY' of the mosquito-killing modules 2, reducing the space occupied by the solar-powered mosquito-killing device.

[0068] Example 5

[0069] Please see Figures 17 to 19 This application provides a solar-powered mosquito killer device in Embodiment 5. It should be noted that the solar-powered mosquito killer device in Embodiment 5 is structurally similar to the solar-powered mosquito killer device in Embodiment 1 of this application (and can be referred to the description in Embodiment 1 above). The following description focuses only on the differences between the solar-powered mosquito killer device in Embodiment 5 and the solar-powered mosquito killer device in Embodiment 1.

[0070] In this embodiment, as Figures 17 to 19As shown, multiple mosquito-killing modules 2 are used to form at least one mosquito-killing unit 2a. Each mosquito-killing unit 2a includes a first mosquito-killing module 2b and a second mosquito-killing module 2c. A solar module 1 is located on one side of the first mosquito-killing module 2b and is connected to the frame assembly 21 of the first mosquito-killing module 2b. The mounting structure 10 includes a mounting bracket 103 and at least one adapter 102. The frame assembly 21 of the first mosquito-killing module 2b is fixedly connected to the mounting bracket 103. The second mosquito-killing module 2c is located on the side of the first mosquito-killing module 2b away from the solar module 1. The frame assembly 21 of the second mosquito-killing module 2c is rotatably connected to the frame assembly 21 of the first mosquito-killing module 2b through at least one adapter 102. The frame assembly 21 of the first mosquito-killing module 2b can be detachably and fixedly connected to the mounting bracket 103 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the frame assembly 21 of the first mosquito-killing module 2b can be non-detachably and fixedly connected to the mounting bracket 103 by riveting or welding. The mounting bracket 103 is designed to assemble the first mosquito-killing module 2b and the second mosquito-killing module 2c in at least one mosquito-killing unit 2a. It also serves as a support leg (similar to the support module 3 in the first embodiment) to provide support for the first mosquito-killing module 2b and the second mosquito-killing module 2c in at least one mosquito-killing unit 2a. The adapter 102 is designed to facilitate the assembly of the second mosquito-killing module 2c with the first mosquito-killing module 2b in each mosquito-killing unit 2a, allowing the second mosquito-killing module 2c to be assembled with the first mosquito-killing module 2b through the adapter 102, effectively increasing the mosquito-killing range of the solar-powered mosquito-killing device.

[0071] The mounting bracket 103 includes a mounting body 1031 and mounting feet 1032 connected to the mounting body 1031. The frame assembly 21 of the first mosquito-killing module 2b is fixedly connected to the mounting body 1031. The mounting body 1031 can be a rod-shaped structure or a plate-shaped structure. The specific connection method between the mounting feet 1032 and the mounting body 1031 is not limited here; designers can design it reasonably according to actual needs. For example, the mounting feet 1032 can be detachably fixedly connected to the mounting body 1031 by at least one of the following methods: screwing, snap-fitting, or plugging. Alternatively, the mounting feet 1032 can be non-detachably fixedly connected to the mounting body 1031 by riveting or welding, but not limited to this method.

[0072] like Figures 17 to 19As shown, the mounting body 1031 includes a mounting rod 1031a, and the mounting feet 1032 include multiple U-shaped ground plugs 1032b. The multiple U-shaped ground plugs 1032b are arranged at intervals along the length direction XX' of the mounting rod 1031a and are fixedly connected to the mounting rod 1031a. The frame assembly 21 of the first mosquito-killing module 2b is fixedly connected to the mounting rod 1031a, and the length direction XX' of the first mosquito-killing module 2b is coplanar and parallel to the length direction XX' of the mounting rod 1031a. For each mosquito-killing unit 2a, the first mosquito-killing module 2b and the second mosquito-killing module 2c are designed in a vertically distributed manner to prevent mutual obstruction between the first mosquito-killing module 2b and the second mosquito-killing module 2c, thus ensuring the mosquito-killing range of the solar module 1.

[0073] It should be noted that in Embodiment 5 of this application, the solar-powered mosquito killing device does not include the support module 3 in Embodiment 1 above. The mounting bracket 103 is equivalent to the support module 3 described above, which is used to provide support for the first mosquito killing module 2b and the second mosquito killing module 2c of the mosquito killing unit 2a. The U-shaped ground plug 1032b has a spiked part, which can be inserted into the cement surface or below the sand surface.

[0074] like Figures 17 to 19 As shown, each adapter 102 includes two adapter portions 1021 arranged along the length direction XX' of the first mosquito-killing module 2b, and a rotating shaft 1022 rotatably connected to the two adapter portions 1021. The two adapter portions 1021 of each adapter 102 are used to be fixedly connected to the frame assembly 21 of the first mosquito-killing module 2b and the frame assembly 21 of the second mosquito-killing module 2c in a one-to-one correspondence.

[0075] The adapter 1021 includes an adapter sleeve 1021a and at least one adapter wall 1021b. The adapter sleeve 1021a is rotatably connected to the rotating shaft 1022. One end of the at least one adapter wall 1021b is fixedly connected to the outer surface of the adapter sleeve 1021a, and the other end of the at least one adapter wall 1021b is fixedly connected to the frame assembly 21 (specifically the bottom beam 213 described above) of the corresponding first mosquito-killing module 2b / second mosquito-killing module 2c. The adapter sleeve 1021a and the adapter wall 1021b can be integrally formed by injection molding or 3D printing, but are not limited to this method. The adapter wall 1021b can be detachably and fixedly connected to the frame assembly 21 of the corresponding first mosquito-killing module 2b / second mosquito-killing module 2c by means of screwing, snap-fitting or plugging. The adapter wall 1021b can also be non-detachably and fixedly connected to the frame assembly 21 of the corresponding first mosquito-killing module 2b / second mosquito-killing module 2c by means of riveting, welding or gluing.

[0076] It should be noted that the adapter 102 can also adjust the angle of the second mosquito-killing module 2c in the mosquito-killing unit 2a relative to the first mosquito-killing module 2b, so that the solar mosquito-killing device has an unfolded state and a stacked state; in the unfolded state, the first mosquito-killing module 2b and the second mosquito-killing module 2c in the mosquito-killing unit 2a are arranged vertically; in the stacked state, the second mosquito-killing module 2c in the mosquito-killing unit 2a is rotated relative to the first mosquito-killing module 2b and stacked together in the width direction YY' of the first mosquito-killing module 2b. When in normal use, the solar-powered mosquito killer is in the unfolded state described above, ensuring that the first mosquito-killing module 2b and the second mosquito-killing module 2c in the mosquito-killing unit 2a do not block each other, thus guaranteeing the mosquito-killing range of the solar-powered mosquito killer. During transportation, the solar-powered mosquito killer is in the stacked state described above, so that the second mosquito-killing module 2c in the mosquito-killing unit 2a rotates relative to the first mosquito-killing module 2b and stacks together in the width direction YY' of the first mosquito-killing module 2b, thereby reducing the space occupancy rate of the solar-powered mosquito killer.

[0077] Example 6

[0078] Please see Figures 20 to 21 This application provides a solar-powered mosquito killer device in its sixth embodiment. It should be noted that the solar-powered mosquito killer device in this application is structurally similar to the solar-powered mosquito killer device in the first embodiment of this application (and can be referred to the description in the first embodiment above). The following description focuses only on the differences between the solar-powered mosquito killer device in the first embodiment and the one in the first embodiment above.

[0079] In this embodiment, as Figures 20 to 21 As shown, the mounting structure 10 includes at least one adapter 102, through which the two frame components 21 of two adjacent mosquito-killing modules 2 are rotatably connected. Assembly between two adjacent mosquito-killing modules 2 can be achieved using one adapter 102 or multiple adapters 102. By designing the adapter 102 to facilitate the assembly between two adjacent mosquito-killing modules 2, and allowing multiple mosquito-killing modules 2 to be assembled into one unit via the adapter 102, the mosquito-killing range of the solar-powered mosquito-killing device can be effectively increased.

[0080] Each adapter 102 includes a hinge 1023, which is used to fix and connect to the frame assembly 21 (specifically the mounting post 211 described above) of two adjacent mosquito killing modules 2 by means of screws.

[0081] It should be noted that hinge 1023 can also adjust the angle between two adjacent mosquito-killing modules 2, allowing the solar-powered mosquito-killing device to have both an unfolded and a folded state. In the unfolded state, multiple mosquito-killing modules 2 can be arranged in a row horizontally or enclosed to form a circle. In the folded state, two adjacent mosquito-killing modules 2 rotate to overlap together along the width direction YY' of the mosquito-killing modules 2. During normal use, the solar-powered mosquito-killing device is in the unfolded state, ensuring that the multiple mosquito-killing modules 2 do not obstruct each other and guaranteeing the mosquito-killing range of the solar-powered mosquito-killing device. During transportation, the solar-powered mosquito-killing device is in the folded state, allowing the multiple mosquito-killing modules 2 to rotate to overlap together along the width direction YY' of the mosquito-killing modules 2, reducing the space occupied by the solar-powered mosquito-killing device.

[0082] Example 7

[0083] Please see Figures 22 to 24 This application provides a solar-powered mosquito killer device in Embodiment 7. It should be noted that the solar-powered mosquito killer device in Embodiment 7 is structurally similar to the solar-powered mosquito killer device in Embodiment 1 of this application (and can be referred to the description in Embodiment 1 above). The following description focuses only on the differences between the solar-powered mosquito killer device in Embodiment 7 and the solar-powered mosquito killer device in Embodiment 1 above.

[0084] In this embodiment, as Figures 22 to 24 As shown, the mounting structure 10 includes at least one mounting member 101, and the two frame components 21 of two adjacent mosquito-killing modules 2 are fixedly connected by at least one mounting member 101. Assembly of two adjacent mosquito-killing modules 2 can be achieved using one mounting member 101, or multiple mounting members 101 can be used. By designing the mounting member 101 to facilitate the assembly of two adjacent mosquito-killing modules 2, multiple mosquito-killing modules 2 can be assembled into one unit through the mounting member 101, effectively increasing the mosquito-killing range of the solar-powered mosquito-killing device.

[0085] Each mounting component 101 includes two mounting portions 1011 spaced XX' along the length direction of the mosquito-killing module 2, and another hinge 1013 connected to the two mounting portions 1011. The two mounting portions 1011 of each mounting component 101 are used to be fixedly connected to the two frame components 21 of two adjacent mosquito-killing modules 2 in a one-to-one correspondence. The two ends of the other hinge 1013 are fixedly connected to the two mounting portions 1011 by means of screws. It should be noted that the specific structure of the mounting portion 1011 in this embodiment can refer to the mounting portion 1011 in Embodiment 1, and will not be described again here.

[0086] It should be noted that the other hinge 1013, connecting the two mounting parts 1011 together, also enables angle adjustment between adjacent mosquito-killing modules 2, allowing the solar-powered mosquito-killing device to have both an unfolded and a folded state. In the unfolded state, multiple mosquito-killing modules 2 can be arranged in a row horizontally or enclosed to form a circle. In the folded state, adjacent mosquito-killing modules 2 rotate to overlap together along the width direction YY' of the mosquito-killing modules 2. During normal use, the solar-powered mosquito-killing device is in the unfolded state, ensuring that the multiple mosquito-killing modules 2 do not obstruct each other, thus guaranteeing the mosquito-killing range of the solar-powered mosquito-killing device. During transportation, the solar-powered mosquito-killing device is in the folded state, allowing the multiple mosquito-killing modules 2 to rotate to overlap together along the width direction YY' of the mosquito-killing modules 2, reducing the space occupancy rate of the solar-powered mosquito-killing device.

[0087] In the accompanying drawings of this embodiment, the same or similar reference numerals correspond to the same or similar components. In the description of this application, it should be understood that if terms such as "upper," "lower," "left," and "right" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, they are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the terms used to describe positional relationships in the accompanying drawings are only for illustrative purposes and should not be construed as limiting this patent. For those skilled in the art, the specific meaning of the above terms can be understood according to the specific circumstances.

[0088] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A solar-powered mosquito-killing device, characterized in that, include: Multiple mosquito-killing modules, each of the mosquito-killing modules including a frame assembly and an electrical grid disposed in the frame assembly, and a solar module located on one side of the mosquito-killing module and connected to the frame assembly; A solar module is electrically connected to the mosquito-killing module to supply power to the mosquito-killing module. The mounting structure is used to assemble the multiple mosquito-killing modules into one unit, specifically: The mounting structure includes at least one mounting component, and the two frame components of two adjacent mosquito-killing modules are fixedly connected by at least one mounting component; or... The mounting structure includes at least one adapter, through which the two frame components of two adjacent mosquito-killing modules are rotatably connected; or... The mounting structure includes a mounting frame located on the side of the mosquito-killing module away from the solar module. The mounting frame is fixedly connected to the frame assembly of all the mosquito-killing modules to provide support for all the mosquito-killing modules.

2. The solar-powered mosquito-killing device as described in claim 1, characterized in that, When the mounting structure includes at least one of the mounting components. Each of the mounting components includes two mounting portions spaced apart along the length of the mosquito-killing module, and a connecting portion connecting the two mounting portions. The two mounting portions of each mounting component are used to be fixedly connected to the two frame components of two adjacent mosquito-killing modules in a one-to-one correspondence.

3. The solar-powered mosquito-killing device as described in claim 2, characterized in that, At least one of the two mounting portions of each mounting component is engaged with the frame assembly of the corresponding mosquito-killing module; The mounting part includes a first enclosure and two second enclosures. The two second enclosures are arranged opposite each other along the width direction of the mosquito-killing module and are connected to the edge of the first enclosure. The two second enclosures and the first enclosure together form a clamp structure with an opening on one side. The opening of the clamp structure is arranged facing the frame assembly of the corresponding mosquito-killing module, and the clamp structure is used to clamp the frame assembly of the corresponding mosquito-killing module.

4. The solar-powered mosquito-killing device as described in claim 3, characterized in that, The mounting part also includes a limiting flange, which is located on the side of the two second enclosures away from the first enclosure. When the clamping structure clamps the frame assembly of the corresponding mosquito-killing module, the limiting flange abuts against the surface of the frame assembly facing away from the first enclosure.

5. The solar-powered mosquito-killing device as described in claim 4, characterized in that, The connecting part includes a first connecting wall and a second connecting wall that are arranged in a cross manner. The first connecting wall and the second connecting wall are fixedly connected to the two first enclosure walls of the two mounting parts respectively along the length direction of the mosquito killing module.

6. The solar-powered mosquito-killing device as described in claim 4, characterized in that, The connecting part includes a first connecting wall and a second connecting wall that are arranged in a cross manner. The first connecting wall and the second connecting wall are respectively fixedly connected to the two first enclosure walls of the two mounting parts on both sides along the length direction of the mosquito killing module. The connecting part also includes a reinforcing wall, which connects at least two of the first connecting wall, the second connecting wall and the first enclosure wall.

7. The solar-powered mosquito-killing device as described in claim 4, characterized in that, The connecting part includes a third connecting wall extending along the length direction of the mosquito-killing module. The third connecting wall is fixedly connected to the two first enclosure walls of the two mounting parts on both sides along the length direction of the mosquito-killing module. The third connecting wall is provided with a hollow area, which includes a hollow hole penetrating the third connecting wall along the width direction of the mosquito-killing module. The cross-section of the hollow hole is polygonal.

8. The solar-powered mosquito-killing device as described in claim 1, characterized in that, When the mounting structure includes at least one of the adapters. Each of the adapters includes two adapter portions arranged along the height direction of the mosquito-killing module, and a rotating shaft rotatably connected to the two adapter portions. The two adapter portions of each adapter are used to be fixedly connected to the frame components of two adjacent mosquito-killing modules in a one-to-one correspondence. The adapter includes an adapter sleeve and at least one adapter wall. The adapter sleeve is rotatably connected to the rotating shaft. One end of the at least one adapter wall is fixedly connected to the outer surface of the adapter sleeve, and the other end of the at least one adapter wall is fixedly connected to the frame assembly of the corresponding mosquito-killing module.

9. The solar-powered mosquito-killing device as described in claim 1, characterized in that, When the mounting structure includes the mounting bracket. The mounting bracket includes a mounting body and mounting feet connected to the mounting body, and the frame components of all the mosquito-killing modules are fixedly connected to the mounting body.

10. The solar-powered mosquito-killing device as described in claim 9, characterized in that, The mounting body includes a mounting rod, and the mounting feet include multiple T-shaped supports. The multiple T-shaped supports are spaced apart along the length of the mounting rod and fixedly connected to it. The frame assemblies of all the mosquito-killing modules are fixedly connected to the mounting rod. All the mosquito-killing modules are spaced apart along the length of the mounting rod, and the length directions of all the mosquito-killing modules are coplanar and parallel to the length direction of the mounting rod; or... The mounting body includes multiple rotatably connected mounting rods, and the mounting feet include multiple T-shaped rods. The multiple T-shaped rods are fixedly connected to the ends of the multiple mounting rods. The frame assembly of each mosquito-killing module is fixedly connected to one of the mounting rods, and the length direction of each mosquito-killing module is coplanar and parallel to the length direction of the corresponding mounting rod.