Multi-light-source frequency oscillation type insecticidal lamp

By introducing a collection tube and a wind-driven cleaning mechanism into the frequency-vibration insecticidal lamp, the problems of fixed volume and grid cleaning are solved, achieving space saving and efficient pest control, and reducing transportation and usage costs.

CN121867172APending Publication Date: 2026-04-17ZIGUI GREEN ECO-AGRI CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZIGUI GREEN ECO-AGRI CO LTD
Filing Date
2023-11-10
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing frequency-vibration insecticidal lamps cannot be changed in size, occupy a lot of space, waste the interior space of transport vehicles and increase transportation costs, and lack effective electric grid cleaning measures, which affects the killing effect.

Method used

A multi-source frequency-vibration insecticidal lamp was designed, which includes a collection cylinder, a fixing trough, and a cleaning mechanism. The collection cylinder is used to collect the dead insects, reducing space occupation; the cleaning mechanism uses wind power to drive the cleaning brush to automatically clean the high-voltage grid, preventing the dead insects from adhering.

Benefits of technology

It achieves efficient collection of pest carcasses in the collection tube, reduces the frequency of manual cleaning, lowers transportation costs, and maintains the effectiveness of the electric grid through an automatic cleaning mechanism, avoiding additional power consumption and equipment installation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The multi-light-source frequency oscillation type insecticidal lamp comprises a connecting ring, four vertical rods are vertically and fixedly connected to the top of the connecting ring in the circumferential direction, the bottoms of the four vertical rods are jointly and fixedly connected with a top base, a supporting frame is fixedly connected to the interior of the connecting ring, and a lower mounting plate is fixedly connected to the top of the supporting frame; a high-voltage power grid is fixedly mounted at the edge of the top of the lower mounting plate, an upper mounting plate is fixedly mounted at the top of the high-voltage power grid, and a lamp post is fixedly mounted between the lower mounting plate and the upper mounting plate and located in the high-voltage power grid. The collecting barrel covers the outer side of the multi-light-source frequency vibration type insecticidal lamp, the size of the multi-light-source frequency vibration type insecticidal lamp is greatly reduced, the occupied space of the insecticidal lamp is reduced, the number of the insecticidal lamps capable of being stored in a transport vehicle is increased, and therefore the transport cost can be reduced.
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Description

Technical Field

[0001] This invention relates to the field of frequency-vibration insecticidal lamp technology, specifically a multi-source frequency-vibration insecticidal lamp. Background Technology

[0002] Frequency-vibration insecticidal lamps have a wide range of insect-killing capabilities, attracting and killing various vegetable pests such as the beet armyworm, silver-striped armyworm, tobacco budworm, flea beetle, and mole cricket. The lamp's insecticidal mechanism utilizes four methods: light, wave, color, and scent to kill pests. Light is used at close range, while waves are used at long range. The yellow casing and scent attract moths to the lamp, where they are then killed by a frequency-vibration high-voltage electric grid.

[0003] A search revealed Chinese Patent Publication No. CN214801840U, which discloses a time-controlled multi-source multi-band insecticidal lamp. The lamp includes a lamp body, a lamp cover on the upper part of the lamp body, an insect-attracting lamp below the lamp cover, a controller inside the lamp cover, an insect catcher at the lower part of the lamp body, a lamp post between the lamp cover and the insect catcher, and a high-voltage grid outside the insect-attracting lamp. The insect-attracting lamp is equipped with an insect-attracting light emitter, which consists of multiple independently emitting light sources. The controller consists of a light controller, a timing control module connected to the light controller, and a spectral drive assembly connected to the timing control module. The spectral drive assembly has multiple spectral drivers, each controlling and connecting to multiple light emitters, each emitting an insect-attracting spectrum of different wavelengths. This solution can target and kill multiple specific pests simultaneously, ensuring a high kill rate for specific pests. However, the size of the insecticidal lamp cannot be changed, so it occupies a large space, which wastes the internal space of the transport vehicle and increases transportation costs. Furthermore, it lacks cleaning measures for the electric grid. Since the insect carcasses contain mucus, they easily adhere to the electric grid. Over time, this can reduce the effectiveness of the electric grid in killing pests and affect the use of the insecticidal lamp. Summary of the Invention

[0004] (1) Technical problems to be solved

[0005] In view of the shortcomings of the prior art, the purpose of this invention is to provide a multi-light source frequency vibration insecticidal lamp, which solves the problems of existing insecticidal lamps that cannot change size, occupy a large space, waste the internal space of transport vehicles, increase transportation costs, and lack cleaning measures for the power grid, thus affecting the killing effect on pests.

[0006] (2) Technical solution

[0007] To address the aforementioned technical problems, this invention provides a multi-source frequency-vibration insecticidal lamp, comprising a connecting ring. Four uprights are vertically fixed to the top of the connecting ring along its circumference. A top seat is fixedly connected to the bottom of the four uprights. A support frame is fixedly connected inside the connecting ring. A lower mounting plate is fixedly connected to the top of the support frame. A high-voltage grid is fixedly installed at the top edge of the lower mounting plate. An upper mounting plate is fixedly installed on top of the high-voltage grid. A lamp post is fixedly installed between the lower and upper mounting plates, inside the high-voltage grid. Multiple sets of insect-attracting light strips are fixedly installed axially on the outer wall of the lamp post. A collection cylinder is sleeved on the outside of the connecting ring. Two symmetrical locking blocks are provided on both sides of the top end of the collection cylinder. First fixing grooves for the locking blocks to engage are symmetrically opened on both sides of the outer wall of the connecting ring. Second fixing grooves for the locking blocks to engage are symmetrically opened on both sides of the outer wall of the top seat. A cleaning mechanism is provided on the outside of the high-voltage grid.

[0008] Preferably, the first fixing groove is composed of a first entry groove, a first translation groove and a first locking groove formed on the outer wall of the connecting ring. The top end of the first entry groove is connected to one end of the first translation groove, the other end of the first translation groove is connected to the first locking groove, the bottom end of the first entry groove extends to the bottom of the connecting ring and forms a first inlet, and the top end of the first locking groove extends to the top of the connecting ring and forms an outlet.

[0009] Preferably, the second fixing groove is composed of a second inlet groove, a second translation groove and a second locking groove. The top of the second inlet groove is connected to one end of the second translation groove, the other end of the second translation groove is connected to the second locking groove, and the bottom end of the second inlet groove extends to the bottom of the top seat and forms a second inlet.

[0010] Preferably, the length of the collecting cylinder is greater than the distance between the first fixed groove and the second fixed groove.

[0011] Preferably, the cleaning mechanism includes a lead screw rotatably mounted between the top seat and the support frame. Two lead screws are symmetrically arranged on the outside of the high-voltage power grid. A cleaning sleeve is installed between the two lead screws. A threaded sleeve is fixedly installed on the cleaning sleeve at the lead screw. The threaded sleeve is threaded onto the lead screw. An installation groove is provided at the bottom of the cleaning sleeve. A cleaning brush is detachably installed in the installation groove. The cleaning brush is attached to the outside of the high-voltage power grid. Positioning parts for fixing the cleaning brush are installed on both sides of the bottom of the cleaning sleeve.

[0012] Preferably, the positioning component includes a T-shaped block with an oblong groove, a limiting nut inside the oblong groove, the limiting nut being fixedly connected to the cleaning sleeve, and a magnet corresponding to the position of the T-shaped block being embedded in the outer wall of the cleaning sleeve. The T-shaped block is made of a magnetic metal material that attracts the magnet.

[0013] Preferably, the cleaning mechanism further includes a telescopic rotating shaft rotatably connected to the center of the top seat. One end of the telescopic rotating shaft is located below the top seat and is fixedly connected to a large gear. A small gear is fixedly installed near the top of the lead screw. The large gear meshes with the small gear. The other end of the telescopic rotating shaft is fixedly connected to a fan wheel.

[0014] Preferably, the telescopic rotating shaft includes a first rotating shaft rotatably connected to the top seat, the first rotating shaft having an internal receiving groove, a second rotating shaft being movably installed in the receiving groove, a limiting groove being formed along the axial direction on the inner wall of the receiving groove, a limiting strip being provided along the axial direction on the outer wall of the second rotating shaft for insertion into the limiting groove, the bottom of the first rotating shaft being fixedly connected to a large gear, and the top of the second rotating shaft being fixedly connected to a wind turbine.

[0015] Preferably, the top of the top seat has a receiving cavity, a limiting ring plate is fixedly connected to the top of the inner wall of the receiving cavity, a plurality of guide rods are fixedly connected between the bottom of the limiting ring plate and the bottom of the inner wall of the receiving cavity, a lifting plate is also provided in the receiving cavity, the lifting plate is slidably connected to the guide rods, hooks are fixedly connected to both sides of the top of the lifting plate, and the second rotating shaft is rotatably connected to the lifting plate.

[0016] (3) Beneficial effects

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0018] 1. This invention, by setting up a collection cylinder, a first fixing slot, and a second fixing slot, allows the collection cylinder to collect insect carcasses when fixed in the first fixing slot. This provides a large volume, maintains a long-lasting collection effect, reduces the frequency of insect carcass removal by workers, and decreases their workload. Furthermore, the collection cylinder is easy to remove for cleaning and replacement. When fixed in the second fixing slot, the collection cylinder covers the outside of the multi-light source frequency-vibration insecticidal lamp, significantly reducing its volume and space requirements. This increases the number of lamps that can be stored in transport vehicles, thereby reducing transportation costs.

[0019] 2. This invention utilizes a cleaning mechanism where, when the wind blows and the impeller rotates, the impeller drives a telescopic shaft to rotate. The telescopic shaft then drives a large gear to rotate, which in turn drives a small gear to rotate. This small gear, in turn, drives a lead screw to rotate. The lead screw then moves a threaded sleeve axially, which in turn moves a cleaning sleeve to the outside of the high-voltage power grid. This allows the cleaning brush to remove the dead insects adhering to the high-voltage power grid, ensuring the effectiveness of pest control. The automatic cleaning mechanism is driven by wind power, eliminating the need for additional electrical resources and corresponding power drive equipment, thus reducing manufacturing and operating costs.

[0020] 3. This invention utilizes the combined use of a telescopic rotating shaft, a limiting ring plate, a lifting plate 4, a guide rod, and a hook. When the hook is removed and the insecticidal lamp is suspended, the lifting plate slides on the guide rod, and the second rotating shaft moves with the lifting plate, protruding the impeller from the top seat, thus enabling the cleaning mechanism to be used. When the insecticidal lamp is not in use, the hook 35 is removed from the suspension point and falls into the receiving groove under the weight of the lifting plate itself. At the same time, the second rotating shaft retracts into the receiving groove of the first rotating shaft, and the impeller is also retracted into the receiving groove, effectively avoiding the risk of damage to the impeller due to its exposure to the outside. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0022] Figure 2 This is a schematic diagram of the internal structure of the present invention;

[0023] Figure 3 This is a cross-sectional view of the cleaning sleeve and cleaning brush of the present invention;

[0024] Figure 4 for Figure 3 Enlarged schematic diagram of area A structure in the image;

[0025] Figure 5 This is a schematic diagram of the collecting cylinder in its contracted state according to the present invention;

[0026] Figure 6 This is a schematic diagram of the first and second fixing grooves of the present invention;

[0027] Figure 7 This is a cross-sectional view of the collection cylinder of the present invention;

[0028] Figure 8 This is a cross-sectional view of the telescopic rotating shaft of the present invention.

[0029] The labels in the attached diagram are as follows: 1. Connecting ring; 2. Upright pole; 3. Top seat; 31. Receiving cavity; 32. Limiting ring plate; 33. Lifting plate; 34. Guide rod; 35. Hook; 4. Support frame; 5. Lower mounting plate; 6. High-voltage grid; 7. Upper mounting plate; 8. Collection cylinder; 801. Locking block; 9. First fixing groove; 901. First entry groove; 902. First translation groove; 903. First locking groove; 10. Second fixing groove; 101. Second entry groove; 102. Second translation groove; 103. Second locking groove; 11. Cleaning mechanism; 111 112. Lead screw; 113. Cleaning sleeve; 114. Mounting groove; 115. Cleaning brush; 116. Threaded sleeve; 117. Positioning component; 118. T-block; 119. Waist-shaped groove; 110. Limiting nut; 111. Magnet; 112. Telescopic shaft; 113. First shaft; 113. Receiving groove; 113. Limiting groove; 113. Second shaft; 113. Limiting strip; 114. Large gear; 115. Small gear; 116. Wind wheel; 117. Lamp post; 118. Insect-attracting light strip. Detailed Implementation

[0030] This specific implementation method is a multi-light source frequency vibration insecticidal lamp, such as... Figures 1-8 As shown, the multi-source frequency-vibration insecticidal lamp includes a connecting ring 1. Four uprights 2 are vertically fixed to the top of the connecting ring 1 along its circumference. A top seat 3 is fixedly connected to the bottom of the four uprights 2. A support frame 4 is fixedly connected inside the connecting ring 1. The support frame 4 has a cross-shaped structure. A lower mounting plate 5 is fixedly connected to the top of the support frame 4. A high-voltage grid 6, which has a cylindrical structure, is fixedly installed at the top edge of the lower mounting plate 5. An upper mounting plate 7 is fixedly installed on the top of the high-voltage grid 6. The lower mounting plate 5 and the upper mounting plate 7 are connected... Furthermore, a lamp post 12 is fixedly installed inside the high-voltage power grid 6. Multiple sets of insect-attracting lamp strips 13 are fixedly installed along the axial direction on the outer wall of the lamp post 12. A collection tube 8 is sleeved on the outside of the connecting ring 1. The two sides of the top of the collection tube 8 are symmetrically provided with locking blocks 801. The locking blocks 801 are integrally formed with the collection tube 8. The two sides of the outer wall of the connecting ring 1 are symmetrically provided with first fixing grooves 9 for the locking blocks 801 to be inserted. The two sides of the outer wall of the top seat 3 are symmetrically provided with second fixing grooves 10 for the locking blocks 801 to be inserted. A cleaning mechanism 11 is provided on the outside of the high-voltage power grid 6.

[0031] Specifically, the insect-attracting light strip 13 lures pests close to the multi-light source frequency-vibration insecticidal lamp, and the high-voltage grid 6 kills the approaching pests. The dead pests fall into the collection cylinder 8 for centralized collection and processing. When the collection cylinder 8 is fixed in the first fixing slot 9, it is used to collect dead pests. Its large volume ensures long-term collection effectiveness, reducing the frequency of cleaning dead pests and the workload of staff. Furthermore, the collection cylinder 8 is easy to remove for cleaning and replacement. When the collection cylinder 8 is fixed in the second fixing slot 10, it will... The outer cover of the multi-source frequency vibration insecticidal lamp greatly reduces its volume, thereby reducing the space occupied by the lamp and increasing the number of lamps that can be stored in the transport vehicle, thus reducing transportation costs. The collection cylinder 8 protects the lamp and prevents damage to the high-voltage grid 6 and the insect-attracting lamp during transportation. The cleaning mechanism 11 automatically cleans the high-voltage grid 6, removing the dead insects adhering to it and preventing them from sticking to the grid and affecting the pest control effect.

[0032] In this embodiment, multiple sets of insect-attracting light strips 13 can emit insect-attracting spectra of different wavelengths. The light wavelength emitted by the insect-attracting light strips 13 is 320-580nm, which can kill phototactic pests in general; the light wavelength emitted by the insect-attracting light strips 13 is 320-365nm, which can focus on killing pests such as wheat moth, rice stem borer, and saltwort moth; the light wavelength emitted by the insect-attracting light strips 13 is 365-395nm, which can focus on killing pests such as citrus psyllid, black spiny whitefly, red flour beetle, and rice grasshopper; the light wavelength emitted by the insect-attracting light strips 13 is 395-450nm, which can focus on killing pests such as white-backed planthopper, brown planthopper, tardigrade fungus gnat, grossmouth weevil, and Asian corn borer; the light wavelength emitted by the insect-attracting light strips 13 is 450-580nm, which can focus on killing pests such as diamondback moth, black-tailed leafhopper, tobacco whitefly, fruit fly, and western flower thrips, so as to improve the effect of pest control.

[0033] In this embodiment, as Figure 5 As shown, the length of the collecting cylinder 8 is greater than the distance between the first fixing groove 9 and the second fixing groove 10, so that the collecting cylinder 8 can completely cover the exposed part of the insect-attracting lamp, thereby effectively protecting the high-voltage grid 6 and the insect-attracting lamp. The collecting cylinder 8 is made of acrylic sheet, which has high impact resistance, weather resistance and acid and alkali resistance, and long service life. Of course, in other embodiments, the collecting cylinder 8 can also be made of other materials with excellent properties.

[0034] In this embodiment, as Figure 6As shown, the first fixing groove 9 consists of a first entry groove 901, a first translation groove 902, and a first locking groove 903 formed on the outer wall of the connecting ring 1. The top end of the first entry groove 901 is connected to one end of the first translation groove 902, and the other end of the first translation groove 902 is connected to the first locking groove 903. The bottom end of the first entry groove 901 extends to the bottom of the connecting ring 1 and forms a first inlet. The top end of the first locking groove 903 extends to the top of the connecting ring 1 and forms an outlet. When the collecting cylinder 8 is fixed in the first fixing groove 9, the locking block 801 on the collecting cylinder 8 enters from the first inlet of the first entry groove 901. Then, the collecting cylinder 8 is rotated so that the locking block 801 enters from the first translation groove 902 into the first locking groove 903. Under the action of the weight of the collecting cylinder 8 itself, the locking block 801 is locked into the first locking groove 903, thereby fixing the collecting cylinder 8 in the first fixing groove 9 for collecting insect corpses.

[0035] In this embodiment, as Figure 6 As shown, the second fixing groove 10 consists of a second entry groove 101, a second translation groove 102, and a second locking groove 103. The top of the second entry groove 101 is connected to one end of the second translation groove 102, and the other end of the second translation groove 102 is connected to the second locking groove 103. The bottom end of the second entry groove 101 extends to the bottom of the top seat 3 and forms a second inlet. When the collecting cylinder 8 is fixed in the second fixing groove 10, the locking block 801 on the collecting cylinder 8 comes out from the outlet of the first locking groove 903, separating the collecting cylinder 8 from the connecting ring 1. Then, the locking block 801 enters from the second inlet of the second entry groove 101. Then, the collecting cylinder 8 is rotated so that the locking block 801 enters from the second translation groove 102 into the second locking groove 103. Under the action of the weight of the collecting cylinder 8 itself, the locking block 801 is locked into the second locking groove 103, thereby achieving protection of the high-voltage power grid 6 and the insect-attracting lamp, and reducing the volume for easy storage and transportation.

[0036] In this embodiment, as Figure 2 and Figure 3As shown, the cleaning mechanism 11 includes a lead screw 111 rotatably mounted between the top seat 3 and the support frame 4. The lead screw 111 is a reciprocating lead screw used to drive the cleaning sleeve 112 to move up and down reciprocally. Two lead screws 111 are symmetrically arranged on the outside of the high-voltage grid 6. The cleaning sleeve 112 is installed between the two lead screws 111. A threaded sleeve 1123 is fixedly installed on the cleaning sleeve 112 at the lead screw 111. The threaded sleeve 1123 is threaded onto the lead screw 111. An installation groove 1121 is opened at the bottom of the cleaning sleeve 112. A cleaning brush 1122 is detachably installed in the installation groove 1121. The cleaning brush 1122 is attached to the outside of the high-voltage grid 6. The rotation of the lead screw 111 drives the threaded sleeve 1123 to move along its axial direction. Thus, the threaded sleeve 1123 drives the cleaning sleeve 112 to move on the outside of the high-voltage grid 6, so that the cleaning brush 1122 can clean the insect carcasses adhering to the high-voltage grid 6, ensuring the effectiveness of the high-voltage grid 6 in killing pests.

[0037] In this embodiment, as Figure 2 As shown, the cleaning mechanism 11 also includes a telescopic rotating shaft 113 rotatably connected to the center of the top seat 3. One end of the telescopic rotating shaft 113 is located below the top seat 3 and is fixedly connected to a large gear 114. A small gear 115 is fixedly installed near the top of the lead screw 111. The large gear 114 meshes with the small gear 115. The other end of the telescopic rotating shaft 113 is fixedly connected to a fan wheel 116. When the wind blows the fan wheel 116 to rotate, the fan wheel 116 drives the telescopic rotating shaft 113 to rotate. The telescopic rotating shaft 113 drives the large gear 114 to rotate. The large gear 114 drives the small gear 115 to rotate. Thus, the small gear 115 drives the lead screw 111 to rotate, thereby realizing the automatic movement and cleaning operation of the cleaning sleeve 112 and the cleaning brush 1122. The operation of the automatic cleaning mechanism is driven by wind power, without the use of additional power resources and without the need to install corresponding electric drive equipment, thus reducing manufacturing and usage costs.

[0038] In this embodiment, as Figure 4As shown, positioning members 1124 for fixing the cleaning brush 1122 are installed on both sides of the bottom of the cleaning sleeve 112. The positioning member 1124 includes a T-shaped block 11241 with a waist-shaped groove 11242. A limiting nut 11243 is provided in the waist-shaped groove 11242. The limiting nut 11243 is fixedly connected to the cleaning sleeve 112. The limiting nut 11243 is used to connect the T-shaped block 11241 to the cleaning sleeve 112, restrict the position of the T-shaped block 11241, prevent it from falling off, and does not affect the movement of the T-shaped block 11241. A magnet 11244 corresponding to the position of the T-shaped block 11241 is embedded in the outer wall of the cleaning sleeve 112. Using a magnetic metal material that attracts magnet 11244, the T-shaped block 11241 is firmly attached to the cleaning sleeve 112 by the action of magnet 11244. One end of the T-shaped block 11241 is placed at the bottom of the cleaning brush 1122, limiting and blocking the cleaning brush 1122 to prevent it from separating from the cleaning sleeve 112. By moving the T-shaped block 11241 away from the cleaning sleeve 112, there is no contact between the T-shaped block 11241 and the cleaning brush 1122, making it easy to remove and replace the cleaning brush 1122 from the mounting slot 1121 of the cleaning sleeve 112. This greatly improves the convenience and efficiency of replacing the cleaning brush 1122 and ensures the cleaning effect on the high-voltage power grid 6.

[0039] In this embodiment, as Figure 4 As shown, the top of the top seat 3 has a receiving cavity 31. A limiting ring plate 32 is fixedly connected to the top of the inner wall of the receiving cavity 31. Multiple guide rods 34 are fixedly connected between the bottom of the limiting ring plate 32 and the bottom of the inner wall of the receiving cavity 31. A lifting plate 33 is also provided inside the receiving cavity 31. The lifting plate 33 is slidably connected to the guide rods 34. Hooks 35 are fixedly connected to both sides of the top of the lifting plate 33. The hooks 35 make it easy to hang the insecticidal lamp in the area of ​​use, which is convenient for use.

[0040] Furthermore, in this embodiment, as Figure 2 , Figure 5 and Figure 8As shown, the telescopic rotating shaft 113 includes a first rotating shaft 1131 rotatably connected to the top seat 3. The first rotating shaft 1131 has an internal receiving groove 11311, within which a second rotating shaft 1132 is movably installed. A limiting groove 11312 is axially formed on the inner wall of the receiving groove 11311, and a limiting strip 11321 is axially formed on the outer wall of the second rotating shaft 1132, which is inserted into the limiting groove 11312. The bottom of the first rotating shaft 1131 is fixedly connected to a large gear 114, and the top of the second rotating shaft 1132 is fixedly connected to a windmill 116. The second rotating shaft 1132 is rotatably connected to a lifting plate 33. This structural design allows for adjustable length between the second rotating shaft 1132 and the first rotating shaft 1131, and the limiting strip 11321 is rotatably connected to the lifting plate 33. The groove 11312 and the limiting bar 11321 allow the second rotating shaft 1132 to rotate synchronously with the first rotating shaft 1131. When the hook 35 is removed and the insecticidal lamp is suspended, the lifting plate 33 slides on the guide rod 34, and the second rotating shaft 1132 moves together with the lifting plate 33, protruding the impeller 116 from the top seat 3, thereby enabling the use of the cleaning mechanism 11. When the insecticidal lamp is not in use, the hook 35 is removed from the suspension point and falls into the receiving groove 11311 under the weight of the lifting plate 33. At the same time, the second rotating shaft 1132 retracts into the receiving groove 11311 of the first rotating shaft 1131, and the impeller 116 is also retracted into the receiving groove 11311, effectively avoiding the risk of damage caused by the impeller 116 being exposed to the outside.

[0041] Working principle: In use, the multi-light source frequency vibration insecticidal lamp is suspended in the area of ​​use via hook 35. At this time, the lifting plate 33 slides on the guide rod 34, and the second rotating shaft 1132 moves together with the lifting plate 33, causing the impeller 116 to protrude from the top seat 3. Then, the locking block 801 on the collection cylinder 8 enters through the first inlet of the first inlet groove 901. The collection cylinder 8 is then rotated, causing the locking block 801 to enter the first slot 903 from the first translation groove 902. Under the action of the collection cylinder 8's own weight, the locking block 801 is locked into the first slot 903, which is used to fix the collection cylinder 8 in the first fixing groove 9. Then, the insect-attracting lamp strip 13 works. The system lures pests close to the multi-light source frequency-vibration insecticidal lamp, which then kills the approaching pests via the high-voltage grid 6. The dead pests fall into the collection cylinder 8 for centralized collection and processing. When the wind blows, the impeller 116 rotates, which in turn drives the telescopic shaft 113 to rotate. The telescopic shaft 113 drives the large gear 114 to rotate, which in turn drives the small gear 115 to rotate. This, in turn, drives the lead screw 111 to rotate, which in turn drives the threaded sleeve 1123 to move axially. This, in turn, drives the cleaning sleeve 112 to move outside the high-voltage grid 6, allowing the cleaning brush 1122 to clean the dead pests adhering to the high-voltage grid 6. The body is cleaned to ensure the effectiveness of the high-voltage power grid 6 in killing pests. The dead pests fall into the collection cylinder 8 for centralized collection and treatment. The large volume of the collection cylinder 8 can maintain a long-term collection effect, reducing the frequency of cleaning dead pests and reducing the workload of the staff. When the multi-light source frequency vibration insecticidal lamp is not in use, the hook 35 is removed from the hanging position and falls into the receiving groove 11311 under the weight of the lifting plate 33. At the same time, the second rotating shaft 1132 retracts into the receiving groove 11311 of the first rotating shaft 1131, and the impeller 116 is also taken into the receiving groove 11311, effectively preventing the impeller 116 from being exposed to the outside and thus damaged. To prevent damage, the locking block 801 is then inserted into the second inlet of the second entry slot 101. The collecting cylinder 8 is then rotated, causing the locking block 801 to move from the second translation slot 102 into the second locking slot 103. Under the weight of the collecting cylinder 8 itself, the locking block 801 is locked into the second locking slot 103. The collecting cylinder 8 covers the outside of the multi-source frequency vibration insecticidal lamp, greatly reducing its volume and space occupation, and increasing the number of insecticidal lamps that can be stored in the transport vehicle, thereby reducing transportation costs. Furthermore, the collecting cylinder 8 can protect the insecticidal lamp, preventing damage to the high-voltage power grid 6 and the insect-attracting lamp during transportation.

[0042] All technical features in this embodiment can be freely combined according to actual needs.

[0043] The above embodiments are preferred implementations of the present invention. In addition, the present invention can be implemented in other ways. Any obvious substitutions without departing from the concept of the present technical solution are within the protection scope of the present invention.

Claims

1. A multi-light source oscillating insecticidal lamp, characterized in that: The device includes a connecting ring (1), four uprights (2) are vertically fixed to the top of the connecting ring (1) along the circumferential direction, and a top seat (3) is fixedly fixed to the bottom of the four uprights (2). A support frame (4) is fixedly connected inside the connecting ring (1), and a lower mounting plate (5) is fixedly connected to the top of the support frame (4). A high-voltage grid (6) is fixedly installed at the top edge of the lower mounting plate (5), and an upper mounting plate (7) is fixedly installed on the top of the high-voltage grid (6). The lower mounting plate (5) and the upper mounting plate (7) are located between the high-voltage grid (6). The lamp post (12) is fixedly installed inside the lamp post (12). Multiple sets of insect-attracting lamp strips (13) are fixedly installed on the outer wall of the lamp post (13) along the axial direction. A collection tube (8) is sleeved on the outside of the connecting ring (1). A locking block (801) is symmetrically provided on both sides of the top end of the collection tube (8). A first fixing groove (9) for the locking block (801) to be inserted is symmetrically opened on both sides of the outer wall of the connecting ring (1). A second fixing groove (10) for the locking block (801) to be inserted is symmetrically opened on both sides of the outer wall of the top seat (3). A cleaning mechanism (11) is provided on the outside of the high-voltage grid (6).

2. The multiple light source oscillating insecticidal lamp of claim 1, wherein: The first fixing groove (9) is composed of a first entry groove (901), a first translation groove (902) and a first locking groove (903) formed on the outer wall of the connecting ring (1). The top end of the first entry groove (901) is connected to one end of the first translation groove (902), and the other end of the first translation groove (902) is connected to the first locking groove (903). The bottom end of the first entry groove (901) extends to the bottom of the connecting ring (1) and forms a first inlet. The top end of the first locking groove (903) extends to the top of the connecting ring (1) and forms an outlet.

3. The multiple light source oscillating insecticide lamp of claim 1, wherein: The second fixing groove (10) is composed of a second entry groove (101), a second translation groove (102) and a second locking groove (103). The top of the second entry groove (101) is connected to one end of the second translation groove (102), and the other end of the second translation groove (102) is connected to the second locking groove (103). The bottom end of the second entry groove (101) extends to the bottom of the top seat (3) and forms a second inlet.

4. The multi-source frequency-vibration insecticidal lamp according to claim 1, characterized in that: The length of the collecting cylinder (8) is greater than the distance between the first fixed groove (9) and the second fixed groove (10).

5. The multi-source frequency-vibration insecticidal lamp according to claim 1, characterized in that: The cleaning mechanism (11) includes a lead screw (111) rotatably mounted between the top seat (3) and the support frame (4). Two lead screws (111) are symmetrically arranged on the outside of the high-voltage power grid (6). A cleaning sleeve (112) is installed between the two lead screws (111). A threaded sleeve (1123) is fixedly installed on the cleaning sleeve (112) at the lead screw (111). The threaded sleeve (1123) is threaded onto the lead screw (111). An installation groove (1121) is provided at the bottom of the cleaning sleeve (112). A cleaning brush (1122) is detachably installed in the installation groove (1121). The cleaning brush (1122) is attached to the outside of the high-voltage power grid (6). Positioning parts (1124) for fixing the cleaning brush (1122) are installed on both sides of the bottom of the cleaning sleeve (112).

6. The multi-source frequency-vibration insecticidal lamp according to claim 5, characterized in that: The positioning component (1124) includes a T-shaped block (11241), on which a waist-shaped groove (11242) is provided. A limiting nut (11243) is provided in the waist-shaped groove (11242). The limiting nut (11243) is fixedly connected to the cleaning sleeve (112). A magnet (11244) corresponding to the position of the T-shaped block (11241) is embedded in the outer wall of the cleaning sleeve (112). The T-shaped block (11241) is made of a magnetic metal material that attracts the magnet (11244).

7. The multi-source frequency-vibration insecticidal lamp according to claim 5, characterized in that: The cleaning mechanism (11) also includes a telescopic rotating shaft (113) rotatably connected to the center of the top seat (3). One end of the telescopic rotating shaft (113) is located below the top seat (3) and is fixedly connected to a large gear (114). A small gear (115) is fixedly installed near the top of the lead screw (111). The large gear (114) meshes with the small gear (115). The other end of the telescopic rotating shaft (113) is fixedly connected to a fan wheel (116).

8. The multi-source frequency-vibration insecticidal lamp according to claim 7, characterized in that: The telescopic rotating shaft (113) includes a first rotating shaft (1131) rotatably connected to the top seat (3). The first rotating shaft (1131) has a receiving groove (11311) inside. A second rotating shaft (1132) is movably installed in the receiving groove (11311). A limiting groove (11312) is provided axially on the inner wall of the receiving groove (11311). A limiting strip (11321) is provided axially on the outer wall of the second rotating shaft (1132) and inserted into the limiting groove (11312). The bottom of the first rotating shaft (1131) is fixedly connected to the large gear (114), and the top of the second rotating shaft (1132) is fixedly connected to the wind turbine (116).

9. The multi-source frequency-vibration insecticidal lamp according to claim 8, characterized in that: The top of the top seat (3) has a receiving cavity (31). A limiting ring plate (32) is fixedly connected to the top of the inner wall of the receiving cavity (31). A plurality of guide rods (34) are fixedly connected between the bottom of the limiting ring plate (32) and the bottom of the inner wall of the receiving cavity (31). A lifting plate (33) is also provided in the receiving cavity (31). The lifting plate (33) is slidably connected to the guide rods (34). Hooks (35) are fixedly connected to both sides of the top of the lifting plate (33). The second rotating shaft (1132) is rotatably connected to the lifting plate (33).

Citation Information

Patent Citations

  • Time-controlled multi-light-source multiband insecticidal lamp

    CN214801840U