LED lamp with mosquito killing function

By designing the upper and lower displacement lighting mosquito control mechanism in LED lamps, and using a micro motor to drive the screw to rotate, large-area reciprocating and displacement contact of multiple holes is solved, the problem of difficulty in automatically adjusting the mosquito control flow contact area according to the number of mosquitoes in the prior art is solved, and the mosquito control effect is significantly improved.

CN119802489BActive Publication Date: 2025-05-16SHENZHEN ZHONGKE GREEN ENERGY PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202510292948.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-13
Publication Date
2025-05-16
Estimated Expiration
2045-03-13

AI Technical Summary

Technical Problem

When existing LED lamps with mosquito killing function lure mosquitoes, it is difficult to automatically adjust the mosquito flow contact area according to the number of mosquitoes, resulting in poor mosquito killing effect.

Method used

An LED lamp with an upper and lower displacement lighting mosquito-killing mechanism was designed. The screw is driven to rotate by a micro motor, and the rack and hole tube are driven to rotate counterclockwise and clockwise, achieving large-area reciprocating and displaced contact of multiple hole tubes, and automatically adjusting the mosquito-killing flow contact area according to the number of mosquitoes.

Benefits of technology

By automatically adjusting the flow contact area of ​​mosquito-killing, large-area dislocation of a large number of mosquitoes is achieved, which significantly improves the mosquito-killing effect of LED lamps.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an LED lamp with mosquito killing function, which belongs to the technical field of fixed lamps, including a groove lamp panel, a support frame, a support block and an upper position-shifting lighting mosquito killing mechanism; wherein the upper position-shifting lighting mosquito killing mechanism includes a screw, a sleeve block, a micro motor, a groove ring, a plurality of racks, an upper gear, a support shaft, a sleeve rotating block, an upper hole tube, a suction hose, a collecting tube and a fixed hole shell; and a lower position-shifting lighting mosquito killing mechanism is provided on the other side of the rack; and a quantity collection sensor component is provided on one side of the support block. The present invention has the advantages of automatically adjusting the mosquito killing flow contact area according to the amount of mosquitoes through the upper position-shifting lighting mosquito killing mechanism, realizing large-area position-shifting contact mosquito killing for a large number of mosquitoes, greatly improving the mosquito killing effect of the LED lamp, thereby solving the problem that it is difficult to automatically adjust the mosquito killing flow contact area according to the amount of mosquitoes, and the LED lamp has a poor mosquito killing effect.
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Description

Technical Field

[0001] The invention relates to the technical field of fixed lamps, and in particular to an LED lamp with a mosquito killing function. Background Art

[0002] LED lamps with mosquito repellent function are mainly installed in parks, public greenways, courtyards, villas and other outdoor mosquito repellent places. They use the sensitivity of mosquitoes to special wavelengths of light to attract mosquitoes through photocatalysis and kill them through other physical methods. This mosquito repellent method is highly efficient, does not require the use of any chemical mosquito repellent substances, is harmless to the human body and the environment, and improves the operating function of LED lamps.

[0003] In the existing public documents, the utility model patent of Chinese patent announcement number CN212510926U discloses an LED landscape lamp with mosquito killing function for parks. The device kills mosquitoes by taking advantage of their preference for light, thus reducing the harm of mosquitoes to tourists. A broadcasting device is provided at the bottom of the insect attracting layer to facilitate efficient and rapid dissemination of information in the square. The solar panels can absorb light energy and store it for use, effectively reducing the consumption of electric power resources. The hook device is easy to move and place. The device is not only practical, but also multifunctional and suitable for promotion. However, the device still has the following usage problems.

[0004] When LED lamps are used for mosquito killing, they illuminate through luring lights, thereby attracting a large number of mosquitoes to gather at a designated location, and then kill them by physical means. However, the number of mosquitoes varies during the luring process. When a large number of mosquitoes are attracted, the mosquito killing gaps of LED lamps are all fixed gaps, and the LED lamps are all in fixed positions, so that the mosquitoes inside can enter, but a large number of mosquitoes outside still gather outdoors, waiting in line to enter the LED lamps. This makes it difficult to carry out large-scale mobile mosquito killing. Therefore, it is difficult to automatically adjust the mosquito killing mobile contact area according to the number of mosquitoes. The mosquito killing effect of LED lamps is poor. For this reason, an LED lamp with mosquito killing function is needed. Summary of the invention

[0005] To this end, the present invention provides an LED lamp with a mosquito killing function, which solves the problems existing in the prior art.

[0006] In order to achieve the above-mentioned purpose, the present invention provides the following technical solutions: an LED lamp with a mosquito-killing function, comprising a groove lamp panel, a support frame and a support block, wherein the support frame is fixed on the upper surface of the groove lamp panel and close to its edge line, the support block is fixed at the center of the circle at the top of the groove lamp panel, and an upper displacement lighting mosquito-killing mechanism is arranged inside the support frame; the upper displacement lighting mosquito-killing mechanism comprises a screw rotatably connected to the inner wall of the support frame, and a sleeve block is threadedly connected to the outer wall of the screw, a micro-motor is fixedly connected to the top of the support frame, the micro-motor is used to drive the screw to rotate, and a groove ring is fixedly connected to one side of the sleeve block; a plurality of racks are fixedly connected to the lower surface of the groove ring, one side of each of the racks is meshingly connected to an upper gear, the inner wall of the upper gear is rotatably connected to a support shaft, and the plurality of support shafts are fixedly connected to the groove lamp panel, one side of each of the upper gears is fixedly connected to a sleeve rotating block, and the sleeve rotating block is rotatably connected to the support shaft;

[0007] The bottom end of the sleeve rotating block is fixedly connected with an upper hole tube, and the bottom end of the upper hole tube is fixedly connected with a suction hose, the bottom end of the suction hose is fixedly connected with a collecting cylinder, and the top end of the collecting cylinder is fixedly connected with a fixed hole shell; a lower displacement lighting mosquito-killing mechanism is provided on the other side of the rack; a quantity collection sensor component is provided on one side of the support block.

[0008] Preferably, the sleeve block is slidably connected to the support frame, and the inner wall of the support frame and the outer wall of the sleeve block are both smooth surfaces; the plurality of racks are arranged in a circular ring with equal spacing, and the groove ring is slidably connected to the support frame, the top of the inner wall of each upper hole tube is fixedly connected to an upper LED mosquito-attracting light belt, and the plurality of upper LED mosquito-attracting light belts are arranged in a circular ring with equal spacing, the other side of the sleeve block is fixedly connected to a sensing block, and a displacement distance sensor fixedly connected to the support frame is provided below the sensing block, one side of the sleeve rotating block is rotatably connected to an arc cover, and the arc cover is fixedly connected to the groove lamp panel, and the arc cover is connected to the rack. The support block is slidingly connected therebetween; a waterproof cover is fixedly installed on the top of the support block, and a fixed hanger is welded on the upper surface of the waterproof cover; a partition shell is provided inside the fixed hole shell, and both the partition shell and the fixed hole shell are fixedly connected to the groove lamp panel; a main LED mosquito attractant light belt is installed inside the partition shell, and the main LED mosquito attractant light belt is fixedly connected to the groove lamp panel; a threaded cover is threadedly connected to the outer wall of the collecting tube near its bottom end; a filter tube is fixedly connected to the top of the collecting tube and located on one side of the fixed hole shell, a negative pressure pump is fixedly installed on the bottom end of the filter tube, and a filter element is plugged into the top end of the filter tube.

[0009] When the present technical solution is in use, the micro motor starts the screw to rotate forward, the sleeve block will simultaneously drive the induction block downward, the groove ring moves downward along the support frame, and the multiple racks drive the multiple upper gears to rotate counterclockwise respectively. The upper gears rotate counterclockwise inside the arc cover, the upper gears drive the sleeve rotating block to rotate counterclockwise, the upper hole tube drives the upper LED mosquito trap to rotate counterclockwise, and the multiple upper hole tubes can rotate counterclockwise. A large number of external mosquitoes are sucked into multiple suction hoses and collected into the collection tube through multiple suction hoses. When the distance value sensed by the displacement distance sensor is the same as the displacement distance set by the wireless controller, the micro motor is started by the wireless controller to drive the screw to reverse, and at the same time the sleeve block drives the groove ring to move upward, the groove ring causes the multiple racks to move upward, the upper gear drives the sleeve rotating block to rotate clockwise on the outer wall of the support shaft, and the multiple upper hole tubes are displaced to contact the mosquitoes above the outside of the fixed hole shell.

[0010] Preferably, the lower displacement lighting mosquito-killing mechanism includes a linkage bar fixedly arranged on the other side of the rack; a displacement rack is fixedly installed on the bottom end of the linkage bar, and one side of the inner wall of the displacement rack is meshingly connected to a lower gear, one side of the lower gear is fixedly connected to a sleeve block, a support rod is provided inside the sleeve block, and the lower gear and the sleeve block are both rotatably connected to the support rod; a reinforcement frame is fixedly provided at one end of the support rod, and the reinforcement frame is fixedly connected to the fixed hole shell, a protective shell is provided on one side of the sleeve block, and the protective shell is fixedly connected to the support rod, the sleeve block and the displacement rack are both slidably connected to the protective shell, and the linkage bar is slidably connected to the protective shell;

[0011] One end of the socket block is fixedly connected to a lower hole tube, and a lower LED mosquito attractant light strip is fixedly installed on one side of the inner wall of the lower hole tube. One end of the lower hole tube is fixedly connected to a diversion hose, and the diversion hose is fixedly connected to the collecting tube. A plurality of support rods are arranged in a circular ring with equal spacing, and the vertical cross-section of the displacement rack is L-shaped.

[0012] When the technical solution is in use, when multiple racks move downward, they will drive multiple linkage bars to move downward synchronously, the linkage bars will drive the displacement racks to move downward, the lower gear drives the socket block to rotate clockwise, and the socket block drives the lower hole tube to rotate clockwise. Multiple lower hole tubes rotate clockwise synchronously, so that multiple lower hole tubes are displaced clockwise over a large area to contact the mosquito below the outside of the fixed hole shell. When multiple racks move upward, they will also drive multiple linkage bars to move upward synchronously, the displacement rack drives the lower gear to rotate counterclockwise, the lower gear rotates counterclockwise on the outer wall of the support rod, the socket block causes the lower hole tube to rotate counterclockwise, and multiple lower hole tubes can rotate counterclockwise synchronously, and multiple lower hole tubes are displaced counterclockwise over a large area to contact the mosquito below the outside of the fixed hole shell.

[0013] Preferably, the quantity collection sensor component includes a position changing motor fixedly arranged on one side of the support block; the output end of the position changing motor is fixedly connected to a rotating shaft, and a rotating bar is fixedly installed on the outer wall of the rotating shaft, a sound sensor is provided at the bottom end of the rotating bar, and a collection camera is fixedly installed on one side of the sound sensor; a wireless controller is fixedly connected to the outer wall of the support block and located on a side adjacent to the position changing motor, the vertical cross-section of the rotating bar is L-shaped, and the sound sensor and the collection camera are both fixedly connected to the rotating bar.

[0014] When the present technical solution is in use, the wireless controller starts the position-shifting motor to rotate forward 350 degrees and then reverse 350 degrees. The rotating shaft drives the rotating bar to rotate forward and backward 350 degrees. The rotating bar also drives the collection camera to rotate forward and backward 350 degrees. When the mosquito sound intensity collected by the sound sensor exceeds the sound intensity set by the wireless controller, it is known that the main LED mosquito-attracting light strip has attracted a large number of mosquitoes. When a photo is taken by the collection camera and a large flow of mosquitoes is seen in the photo, the wireless controller starts the micro motor.

[0015] The present invention has the following advantages:

[0016] 1. The present invention uses an upper displacement lighting mosquito-killing mechanism. When a large number of mosquitoes are attracted, multiple upper LED mosquito-attracting lamps are turned on to attract mosquitoes surrounding the outside. The micro-motor starts the screw to rotate forward, and the sleeve block will drive the induction block to move downward at the same time, and the sleeve block will also drive the groove ring to move downward. Multiple racks drive multiple upper gears to rotate counterclockwise respectively, and the upper gear drives the sleeve rotating block to rotate counterclockwise, and the sleeve rotating block drives the upper hole tube to rotate counterclockwise. Multiple upper hole tubes are displaced counterclockwise to contact the mosquitoes above the outside of the fixed hole shell. The micro-motor drives the screw to reverse, the rack drives the upper gear to rotate clockwise, and the sleeve rotating block drives the upper hole tube to rotate clockwise. Multiple upper hole tubes are displaced clockwise to contact the mosquitoes above the outside of the fixed hole shell. In this way, multiple upper hole tubes reciprocate and displace over a large area to contact the mosquitoes above the outside of the fixed hole shell. The mosquito-killing flow contact area can be automatically adjusted according to the amount of mosquitoes, and large-area displacement contact mosquito killing can be achieved for a large number of mosquitoes, greatly improving the mosquito killing effect of the LED lamp;

[0017] 2. The present invention uses a lower displacement lighting mosquito killing mechanism. When multiple racks move downward, they will drive multiple linkage bars to move downward synchronously. The linkage bars will drive the displacement racks downward, and the lower gear will drive the sleeve block to rotate clockwise, so that multiple lower hole tubes can be displaced clockwise over a large area to contact the mosquitoes below the outside of the fixed hole shell. When multiple racks move up, they will also drive multiple linkage bars to move up synchronously. The linkage bars will drive the displacement racks up, and the displacement racks will drive the lower gear to rotate counterclockwise. Multiple lower hole tubes can be displaced counterclockwise over a large area to contact the mosquitoes below the outside of the fixed hole shell. Multiple lower hole tubes can reciprocate over a large area to contact the mosquitoes below the outside of the fixed hole shell. The mosquito killing flow contact area can be automatically adjusted according to the amount of mosquitoes, so as to achieve large-area displacement contact mosquito killing for a large number of mosquitoes.

[0018] 3. The present invention uses a quantity collection sensor component. The wireless controller starts the position-shifting motor to rotate forward 350 degrees and then reverse 350 degrees. The output end of the position-shifting motor slowly rotates forward 350 degrees and then reverses 350 degrees. The rotating bar drives the sound sensor to rotate forward and backward 350 degrees. The rotating bar also drives the collection camera to rotate forward and backward 350 degrees. The sound sensor can collect the intensity of the mosquito sound. When the mosquito sound intensity collected by the sound sensor exceeds the sound intensity set by the wireless controller, it is known that the main LED mosquito-attracting lamp belt has attracted a large number of mosquitoes to gather outside the fixed hole shell. When the collection camera takes photos to determine that the number of mosquitoes is large, the wireless controller starts the micro-motor, which can automatically adjust the mosquito-killing flow contact area according to the number of mosquitoes, so as to achieve large-area position-shifting contact mosquito killing for a large number of mosquitoes, thereby greatly improving the mosquito-killing effect of the LED lamp.

[0019] According to the mutual influence of the above multiple functions, first, the rotating strip drives the sound sensor to rotate 350 degrees back and forth, and the sound sensor can collect the intensity of the mosquito sound. The collection camera takes photos to determine that there are a large number of mosquitoes. Secondly, multiple upper hole tubes reciprocate over a large area to contact the mosquitoes above the outside of the fixed hole shell, and at the same time, multiple lower hole tubes reciprocate over a large area to contact the mosquitoes below the outside of the fixed hole shell. Finally, the mosquito-killing flow contact area can be automatically adjusted according to the number of mosquitoes, and automatic large-area displacement contact mosquito killing can be achieved for a large number of mosquitoes, greatly improving the mosquito-killing effect of LED lighting. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] In order to more clearly illustrate the implementation methods of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for the implementation methods or the description of the prior art. Obviously, the drawings in the following description are only exemplary, and for ordinary technicians in this field, other implementation drawings can be derived from the provided drawings without creative work.

[0021] The structures, proportions, quantities, etc. illustrated in this specification are only used to match the contents disclosed in the specification so as to facilitate understanding and reading by persons familiar with the technology. They are not used to limit the conditions under which the present invention can be implemented, and therefore have no substantial technical significance. Any structural modification, change in proportion or adjustment of quantity, without affecting the effects and purposes that can be achieved by the present invention, should still fall within the scope of the technical contents disclosed by the present invention.

[0022] Figure 1 This is a schematic diagram of the main structure of the LED lamp with mosquito killing function of the present invention;

[0023] Figure 2 It is a schematic diagram of a partial structure of the connection between the groove lamp panel and the support block of the present invention;

[0024] Figure 3 This is a schematic diagram of the vertical cross-section structure of the LED lamp with mosquito killing function of the present invention;

[0025] Figure 4 It is a schematic diagram of a partial structure of a vertical section of the connection between the groove ring and the rack of the present invention;

[0026] Figure 5 It is a schematic diagram of a local structure of a vertical section of the connection between the upper hole pipe and the suction hose of the present invention;

[0027] Figure 6 This is a schematic diagram of the partial structure of the connection between the negative pressure pump and the filter tube of the present invention when viewed from above;

[0028] Figure 7 For the present invention Figure 5 The enlarged structural diagram at A in the middle;

[0029] Figure 8 It is a schematic diagram of the local structure of the vertical section of the connection between the sleeve block and the lower hole tube of the present invention;

[0030] Fig. 9 This is a schematic diagram of the cross-sectional structure of an LED lamp with mosquito killing function according to the present invention;

[0031] Fig.10 This is a schematic diagram of the partial structure of the quantity collection sensor assembly of the present invention when viewed from above;

[0032] In the figure: 1, groove lamp panel; 2, support frame; 3, support block; 4, screw; 5, sleeve block; 6, micro motor; 7, groove ring; 8, rack; 9, upper gear; 10, support shaft; 11, sleeve rotating block; 12, upper hole tube; 13, upper LED mosquito attracting lamp belt; 14, collecting tube; 15, induction block; 16, displacement distance sensor; 17, arc cover; 18, waterproof cover; 19, fixed hanger; 20, fixed hole shell; 21, spacer shell; 22, main LED mosquito attracting lamp belt; 23. Threaded cover; 24. Linkage bar; 25. Shifting rack; 26. Lower gear; 27. Support rod; 28. Reinforcement frame; 29. ​​Socket block; 30. Lower hole tube; 31. Protective shell; 32. Lower LED mosquito trap light strip; 33. Diversion hose; 34. Shifting motor; 35. Rotating shaft; 36. Rotating bar; 37. Sound sensor; 38. Collection camera; 39. Wireless controller; 40. Filter tube; 41. Negative pressure pump; 42. Filter element; 43. Suction hose. DETAILED DESCRIPTION

[0033] The following is a description of the implementation of the present invention by specific embodiments. People familiar with the art can easily understand other advantages and effects of the present invention from the contents disclosed in this specification. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0034] As attached Figure 1 -Attached Fig.10 An LED lamp with a mosquito killing function is shown. The LED lamp with a mosquito killing function is provided with an upper position-shifting lighting mosquito killing mechanism, a lower position-shifting lighting mosquito killing mechanism, and a quantity collection sensor component. The settings of each mechanism and component can automatically adjust the mosquito killing flow contact area according to the amount of mosquitoes, and realize automatic large-area position-shifting contact mosquito killing for a large number of mosquitoes, thereby greatly improving the lighting mosquito killing effect of the LED lamp. The specific structural settings of each mechanism and component are as follows.

[0035] In this technical solution, as shown in the attached Figure 1 -Attached Figure 5As shown, the support frame 2 is fixed on the upper surface of the groove lamp panel 1 and close to its edge line position, the support block 3 is fixed at the center position of the top of the groove lamp panel 1, and the interior of the support frame 2 is provided with an upper displacement lighting mosquito-killing mechanism; the upper displacement lighting mosquito-killing mechanism includes a screw rod 4 rotatably connected to the inner wall of the support frame 2, and the outer wall of the screw rod 4 is threadedly connected with a sleeve block 5, the top of the support frame 2 is fixedly connected with a micro motor 6, the micro motor 6 is used to drive the screw rod 4 to rotate, and one side of the sleeve block 5 is fixedly connected with a groove ring 7; the lower surface of the groove ring 7 is fixedly connected with a plurality of racks 8, and one side of each rack 8 is meshingly connected with an upper gear 9, and the upper The inner wall of the upper gear 9 is rotatably connected with a support shaft 10, and multiple support shafts 10 are fixedly connected to the groove lamp panel 1. A sleeve rotating block 11 is fixedly connected to one side of each upper gear 9, and the sleeve rotating block 11 is rotatably connected to the support shaft 10; the bottom end of the sleeve rotating block 11 is fixedly connected to the upper hole tube 12, and the bottom end of the upper hole tube 12 is fixedly connected to a suction hose 43, the bottom end of the suction hose 43 is fixedly connected to a collecting tube 14, and the top of the collecting tube 14 is fixedly connected to a fixed hole shell 20; the other side of the rack 8 is provided with a lower displacement lighting mosquito killing mechanism; one side of the support block 3 is provided with a quantity collection sensor component.

[0036] In this technical solution, as shown in the attached Figure 1 -Attached Figure 4 As shown, the top of the inner wall of each upper hole tube 12 is fixedly connected with an upper LED mosquito attracting light strip 13, and multiple upper LED mosquito attracting light strips 13 are arranged in a circular ring with equal spacing, so that the wireless controller 39 can turn on multiple upper LED mosquito attracting light strips 13. Multiple upper LED mosquito attracting light strips 13 can be illuminated at the upper distribution position outside the fixed hole shell 20, so as to attract a large number of mosquitoes and facilitate branching to attract mosquitoes.

[0037] A sensing block 15 is fixedly connected to the other side of the sleeve block 5, and a displacement distance sensor 16 fixedly connected to the support frame 2 is provided below the sensing block 15, so that after the sensing block 15 moves downward, the distance between the displacement distance sensor 16 and the sensing block 15 is sensed by the displacement distance sensor 16. When the distance value sensed by the displacement distance sensor 16 is the same as the displacement distance set by the wireless controller 39, the micro motor 6 is started by the wireless controller 39 to drive the screw 4 to reverse, so that the forward and reverse rotation of the micro motor 6 can be switched according to the precise position.

[0038] One side of the sleeve rotating block 11 is rotatably connected with an arc cover 17, and the arc cover 17 is fixedly connected to the groove lamp panel 1, so that the upper gear 9 rotates counterclockwise inside the arc cover 17, and the arc cover 17 protects the outside of the upper gear 9. The arc cover 17 is slidably connected to the rack 8; a waterproof cover 18 is fixedly installed on the top of the support block 3, and a fixed hanging seat 19 is welded on the upper surface of the waterproof cover 18, so that the fixed hanging seat 19 is hung on the outdoor platform by the expansion bolt, and the waterproof cover 18 is supported by the fixed hanging seat 19. The waterproof cover 18 can protect and divert rainwater when used outdoors, and has high waterproofness, which is convenient for waterproof use.

[0039] In this technical solution, as shown in the attached Figure 1 -Attached Figure 6 As shown, a spacer shell 21 is provided inside the fixed hole shell 20, and the spacer shell 21 and the fixed hole shell 20 are fixedly connected to the groove lamp panel 1, and a main LED mosquito attracting lamp belt 22 is installed inside the spacer shell 21, and the main LED mosquito attracting lamp belt 22 is fixedly connected to the groove lamp panel 1; a threaded cover 23 is threadedly connected to the outer wall of the collecting tube 14 and near its bottom end; a filter tube 40 is fixedly connected to the top of the collecting tube 14 and located on one side of the fixed hole shell 20, and a negative pressure pump 4 is fixedly installed at the bottom end of the filter tube 40 1, and a filter element 42 is inserted at the top of the filter tube 40, so that after the main LED mosquito trapping light belt 22 generates light, it can be transparently irradiated outward through the partition shell 21 and the fixed hole shell 20, and outdoor mosquitoes will be attracted to the external position of the fixed hole shell 20, and the negative pressure pump 41 makes the mosquitoes entering the fixed hole shell 20 be sucked into the collection tube 14, and the air filtered by the filter element 42 is discharged along the filter tube 40, generating negative pressure to make the mosquitoes sucked into the collection tube 14, so as to collect a large number of mosquitoes.

[0040] In this technical solution, as shown in the attached Figure 4 -Attached Figure 8As shown, the lower shift lighting mosquito-killing mechanism includes a linkage bar 24 fixedly arranged on the other side of the rack 8; a shift rack 25 is fixedly installed at the bottom end of the linkage bar 24, and a lower gear 26 is meshed and driven on one side of the inner wall of the shift rack 25, and a sleeve block 29 is fixedly connected to one side of the lower gear 26, and a support rod 27 is arranged inside the sleeve block 29, and the lower gear 26 and the sleeve block 29 are both rotatably connected to the support rod 27; a reinforcement frame 28 is fixedly arranged at one end of the support rod 27, and the reinforcement frame 28 is fixedly arranged between the fixed hole shell 20. The sleeve block 29 is fixedly connected to the sleeve block 29, a protective shell 31 is provided on one side of the sleeve block 29, and the protective shell 31 is fixedly connected to the support rod 27, the sleeve block 29 and the displacement rack 25 are both slidably connected to the protective shell 31, and the linkage bar 24 is slidably connected to the protective shell 31; one end of the sleeve block 29 is fixedly connected to the lower hole tube 30, and a lower LED mosquito trapping light belt 32 is fixedly installed on one side of the inner wall of the lower hole tube 30, and one end of the lower hole tube 30 is fixedly connected to a diversion hose 33, and the diversion hose 33 is fixedly connected to the collection tube 14. Multiple support rods 27 are arranged in a circular ring with equal spacing, and the vertical cross-section of the displacement rack 25 is L-shaped.

[0041] In this technical solution, as shown in the attached Fig. 9 -Attached Fig.10 As shown, the quantity collection sensor assembly includes a displacement motor 34 fixedly arranged on one side of the support block 3; the output end of the displacement motor 34 is fixedly connected to a rotating shaft 35, and a rotating bar 36 is fixedly installed on the outer wall of the rotating shaft 35, and a sound sensor 37 is provided at the bottom end of the rotating bar 36, and a collection camera 38 is fixedly installed on one side of the sound sensor 37; a wireless controller 39 is fixedly connected to the outer wall of the support block 3 and located on a side adjacent to the displacement motor 34. The vertical cross-section of the rotating bar 36 is L-shaped, and the sound sensor 37 and the collection camera 38 are both fixedly connected to the rotating bar 36.

[0042] The use process of the LED lamp with mosquito killing function of the present invention is as follows:

[0043] First, when the present invention performs lighting mosquito killing, the fixed hanger 19 is hoisted on the outdoor platform by expansion bolts, and the fixed hanger 19 supports the waterproof cover 18, which can protect and divert rainwater when used outdoors and has high waterproof performance. The main LED mosquito-attracting light strip 22 is turned on by the wireless controller 39, and after the main LED mosquito-attracting light strip 22 generates light, it is transparently irradiated outward through the partition shell 21 and the fixed hole shell 20, so that outdoor mosquitoes will be attracted to the external position of the fixed hole shell 20.

[0044] The negative pressure pump 41 is started by the wireless controller 39, and the negative pressure pump 41 causes the mosquitoes entering the fixed hole shell 20 to be sucked into the collection tube 14, and the air is filtered by the filter element 42 and discharged along the filter tube 40. It can not only suck in mosquitoes for mosquito killing, but also filter and purify the external air through the filter element 42. At the same time, the upper hole tube 12 generates negative pressure tension, and the upper hole tube 12 sucks the externally dispersed mosquitoes into the suction hose 43, and enters the collection tube 14 through the suction hose 43 for storage. At the same time, the lower hole tube 30 can suck the horizontal mosquitoes into the diversion hose 33, and also transport them to the collection tube 14 for storage through the diversion hose 33.

[0045] Secondly, when the present invention performs quantity collection sensing, when the main LED mosquito-attracting light strip 22 attracts a large number of mosquitoes, the support block 3 is supported by the groove lamp panel 1, and the support block 3 supports the position-shifting motor 34, so that the wireless controller 39 starts the position-shifting motor 34 to rotate forward 350 degrees and then reverse 350 degrees, and the output end of the position-shifting motor 34 slowly rotates forward 350 degrees and then reverses 350 degrees, and the rotating shaft 35 drives the rotating bar 36 to rotate forward and reverse 350 degrees, and the rotating bar 36 drives the sound sensor 37 to rotate forward and reverse 350 degrees, and the rotating bar 36 drives the collection camera 38 to rotate forward and reverse 350 degrees at the same time, so that the sound sensor 37 can collect the intensity of the mosquito sound. When the mosquito sound intensity collected by the sound sensor 37 exceeds the sound intensity set by the wireless controller 39, it is known that the main LED mosquito-attracting light strip 22 has attracted a large number of mosquitoes, and a large number of mosquitoes gather outside the fixed hole shell 20. The photo is taken by the acquisition camera 38 and then remotely transmitted to the user's backend mobile phone through the wireless controller 39. If a large number of mosquitoes are found in the picture, the wireless controller 39 is remotely started, and the wireless controller 39 starts the micro motor 6.

[0046] Then, when the present invention performs upper position displacement lighting to kill mosquitoes, the wireless controller 39 turns on multiple upper LED mosquito-attracting light strips 13, which can illuminate the upper distribution positions outside the fixed hole shell 20 to attract a large number of mosquitoes. At the same time, the wireless controller 39 also turns on multiple lower LED mosquito-attracting light strips 32, which can illuminate the lower distribution positions outside the fixed hole shell 20 to attract a large number of mosquitoes.

[0047] Then the micro motor 6 starts the screw 4 to rotate forward, and the screw 4 drives the sleeve block 5 to move downward under the action of the thread transmission force. The sleeve block 5 will simultaneously drive the induction block 15 to move downward, and the sleeve block 5 will also drive the groove ring 7 to move downward, and the groove ring 7 moves downward along the support frame 2, and the groove ring 7 drives the multiple racks 8 to move downward. The multiple racks 8 respectively drive the multiple upper gears 9 to rotate counterclockwise, and the upper gears 9 rotate counterclockwise on the outer wall of the support shaft 10. At the same time, the upper gears 9 rotate counterclockwise inside the arc cover 17, and the arc cover 17 protects the outside of the upper gears 9, the upper gears 9 drive the sleeve rotating block 11 to rotate counterclockwise, the sleeve rotating block 11 drives the upper hole tube 12 to rotate counterclockwise, and the upper hole tube 12 drives the upper LED mosquito trap light belt 13 to rotate counterclockwise, and the multiple upper hole tubes 12 can all rotate counterclockwise, so that the multiple upper hole tubes 12 are displaced to contact the mosquitoes above the outside of the fixed hole shell 20. A large number of external mosquitoes are sucked into the multiple suction hoses 43 and collected in the collection tube 14 through the multiple suction hoses 43.

[0048] When the sensing block 15 moves downward, the displacement distance sensor 16 senses the distance between the displacement distance sensor 16 and the sensing block 15. When the distance value sensed by the displacement distance sensor 16 is the same as the displacement distance set by the wireless controller 39, the wireless controller 39 starts the micro motor 6 to drive the screw 4 to reverse, and the screw 4 drives the sleeve block 5 to move upward under the action of the thread transmission force. At the same time, the sleeve block 5 drives the groove ring 7 to move upward, the groove ring 7 makes the multiple racks 8 move upward, the racks 8 drive the upper gear 9 to rotate clockwise, the upper gear 9 drives the sleeve rotating block 11 to rotate clockwise on the outer wall of the support shaft 10, the sleeve rotating block 11 drives the upper hole tube 12 to rotate clockwise, and the multiple upper hole tubes 12 are displaced to contact the mosquito on the upper part of the fixed hole shell 20. As the micro motor 6 continuously rotates the screw 4 back and forth, the multiple upper hole tubes 12 are reciprocated over a large area to contact the mosquitoes above the outside of the fixed hole shell 20, and a large number of mosquitoes are quickly collected into the collection tube 14 for mosquito killing.

[0049] At the same time, when the present invention performs upper displacement lighting mosquito killing, when multiple racks 8 move downward, they will drive multiple linkage bars 24 to move downward synchronously, and the linkage bars 24 move downward along the outer wall of the protective shell 31, and the protective shell 31 protects the outside of the lower gear 26. At the same time, the fixed hole shell 20 supports the reinforcement frame 28, and the reinforcement frame 28 supports multiple support rods 27. The linkage bar 24 will drive the displacement rack 25 to move downward, and the displacement rack 25 drives the lower gear 26 to rotate clockwise, and the lower gear 26 drives the socket block 29 to rotate clockwise. The lower gear 26 and the socket block 29 both rotate clockwise on the outer wall of the support rod 27, and the socket block 29 drives the lower hole tube 30 to rotate clockwise. The multiple lower hole tubes 30 rotate clockwise synchronously, so that the multiple lower hole tubes 30 are displaced clockwise over a large area to contact the mosquitoes below the outside of the fixed hole shell 20. The mosquitoes enter the collection tube 14 through the multiple diversion hoses 33 to gather and kill mosquitoes. At the same time, mosquito repellent tablets can be placed inside the collection tube 14 to kill mosquitoes.

[0050] When multiple racks 8 move up, they will also drive multiple linkage bars 24 to move up synchronously. The linkage bars 24 drive the displacement racks 25 to move up. The displacement racks 25 drive the lower gear 26 to rotate counterclockwise. The lower gear 26 rotates counterclockwise on the outer wall of the support rod 27. The lower gear 26 drives the socket block 29 to rotate counterclockwise. The socket block 29 makes the lower hole tube 30 rotate counterclockwise. The lower hole tube 30 drives the lower LED mosquito trap belt 32 to rotate counterclockwise. Multiple lower hole tubes 30 can rotate counterclockwise synchronously. Multiple lower hole tubes 30 are displaced counterclockwise over a large area to contact the mosquitoes below the outside of the fixed hole shell 20. The mosquitoes follow the diversion hose 33 into the collection tube 14 to be killed and stored. Later, when it is daytime, the threaded cover 23 can be rotated, and the threaded cover 23 and the collection tube 14 are separated, so that the mosquitoes inside the collection tube 14 are discharged downward. In this way, a large number of mosquitoes can be automatically detected, and the mosquitoes above the outside of the fixed hole shell 20 can be killed by large-area displacement contact. At the same time, the mosquitoes below the outside of the fixed hole shell 20 can also be killed by large-area displacement contact. Automatic large-area lighting killing can be achieved according to the number of mosquitoes, and the lighting mosquito killing effect is better.

[0051] The contents not described in detail in the specification belong to the prior art known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited, and conventional equipment can be used. In this technical solution, the electrical control components not mentioned are not shown in the figure because they belong to the prior art and will not be described here.

[0052] The present invention has been described in detail above by general description and specific embodiments, but it is obvious to those skilled in the art that some modifications or improvements can be made on the basis of the present invention. Therefore, these modifications or improvements made on the basis of not departing from the spirit of the present invention all belong to the scope of protection claimed by the present invention.

Claims

1. An LED lamp with mosquito killing function, comprising a groove lamp panel, a support frame and a support block, wherein the support frame is fixed on the upper surface of the groove lamp panel and close to its edge line, and the support block is fixed at the center of the top of the groove lamp panel, characterized in that: The interior of the support frame is provided with an upper position-changing lighting and mosquito-killing mechanism; The upper position-changing lighting mosquito-killing mechanism comprises a screw rod rotatably connected to the inner wall of the support frame, and the outer wall of the screw rod is threadedly connected with a sleeve block, the top of the support frame is fixedly connected with a micro motor, the micro motor is used to drive the screw rod to rotate, and one side of the sleeve block is fixedly connected with a groove ring; the lower surface of the groove ring is fixedly connected with a plurality of racks, one side of each rack is meshingly connected with an upper gear, the inner wall of the upper gear is rotatably connected with a support shaft, the plurality of support shafts are fixedly connected with the groove lamp panel, one side of each upper gear is fixedly connected with a sleeve rotating block, and the sleeve rotating block and the support shaft are connected. The upper hole tube is fixedly connected to the bottom end of the sleeve rotating block, and the upper LED mosquito attracting light belt is fixedly connected to the top of the inner wall of each upper hole tube, and the bottom end of the upper hole tube is fixedly connected to a suction hose, and the bottom end of the suction hose is fixedly connected to a collecting cylinder, and the top of the collecting cylinder is fixedly connected to a fixed hole shell, and a spacer shell is provided inside the fixed hole shell, and the spacer shell and the fixed hole shell are fixedly connected to the groove lamp panel, and the main LED mosquito attracting light belt is installed inside the spacer shell, and the main LED mosquito attracting light belt is fixedly connected to the groove lamp panel, and the collecting cylinder is fixedly connected to the inner wall of the collecting cylinder. A filter tube is fixedly connected to the top and located at one side of the fixed hole shell, and a negative pressure pump is fixedly installed at the bottom of the filter tube; a lower position-shifting lighting mosquito-killing mechanism is provided on the other side of the rack, and the lower position-shifting lighting mosquito-killing mechanism includes a linkage bar fixedly arranged on the other side of the rack; a position-shifting rack is fixedly installed at the bottom end of the linkage bar, and a lower gear is meshingly connected to the inner wall of the position-shifting rack on one side, and a socket block is fixedly connected to one side of the lower gear, and a support rod is provided inside the socket block, and the lower gear and the socket block are both rotatably connected to the support rod; one side of the support rod is connected to the lower gear and the socket block ... A reinforcement frame is fixedly provided at the end, and the reinforcement frame is fixedly connected to the fixed hole shell, a protective shell is provided on one side of the sleeve block, and the protective shell is fixedly connected to the support rod, the sleeve block and the displacement rack are slidably connected to the protective shell, and the linkage bar is slidably connected to the protective shell; one end of the sleeve block is fixedly connected to the lower hole tube, a lower LED mosquito attractant light strip is fixedly installed on one side of the inner wall of the lower hole tube, one end of the lower hole tube is fixedly connected to a diversion hose, and the diversion hose is fixedly connected to the collecting tube; a quantity collection sensor component is provided on one side of the support block.

2. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: The sleeve block is slidably connected to the support frame, and the inner wall of the support frame and the outer wall of the sleeve block are both smooth surfaces; The plurality of racks are arranged in a circular ring with equal spacing, and the groove ring is slidably connected to the support frame.

3. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: The plurality of upper LED mosquito attractant light strips are arranged in a circular shape and are equidistantly distributed.

4. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: The other side of the sleeve block is fixedly connected with a sensing block, and a displacement distance sensor fixedly connected with the support frame is provided below the sensing block.

5. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: One side of the sleeve rotating block is rotatably connected with an arc cover, and the arc cover is fixedly connected to the groove lamp panel, and the arc cover is slidably connected to the rack; A waterproof cover is fixedly installed on the top of the support block, and a fixed hanging seat is welded on the upper surface of the waterproof cover.

6. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: A threaded cover is threadedly connected to the outer wall of the collecting tube near the bottom end thereof, and a filter element is inserted at the top end of the filter tube.

7. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: The plurality of support rods are arranged in a circular ring with equal spacing, and the vertical cross-section of the displacement rack is L-shaped.

8. The LED lamp with mosquito killing function as claimed in claim 1, characterized in that: The quantity collection sensor assembly includes a position changing motor fixedly arranged on one side of the support block; The output end of the position changing motor is fixedly connected to a rotating shaft, and a rotating bar is fixedly installed on the outer wall of the rotating shaft, a sound sensor is provided at the bottom end of the rotating bar, and a collection camera is fixedly installed on one side of the sound sensor; The outer wall of the support block is fixedly connected with a wireless controller at one side adjacent to the position changing motor.

9. The LED lamp with mosquito killing function as claimed in claim 8, characterized in that: The vertical cross-section of the rotating bar is L-shaped, and the sound sensor and the acquisition camera are both fixedly connected to the rotating bar.

Citation Information

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