Novel fly and mosquito killer adopting trapping and killing sticking trapping mode
By designing trapping and killing components and cleaning components, the problems of frequent electric grid replacement and inconvenient cleaning of filter debris in fly and mosquito killers have been solved, achieving the effect of reducing workload and improving killing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 钦州市疾病预防控制中心
- Filing Date
- 2025-06-10
- Publication Date
- 2026-05-22
AI Technical Summary
In existing fly and mosquito killers, the sticky traps need to be replaced frequently, and the filter screens are difficult to clean, increasing the workload of staff and reducing the killing effect.
The design incorporates trapping and killing components as well as cleaning components. The grid design reduces the frequency of grid replacement, and the cleaning components automatically clean the filter screen to remove debris, thereby improving the killing efficiency.
It effectively reduces the frequency of power grid replacement, reduces the workload of staff, automatically cleans filter debris, and improves the mosquito and fly killing effect.
Smart Images

Figure CN224265488U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mosquito and fly killing technology, and in particular relates to a new type of fly and mosquito killer using a trapping and sticky trapping method. Background Technology
[0002] Mosquitoes and flies are widespread disease vectors in nature, primarily harming humans by transmitting numerous pathogens that can cause corresponding illnesses. Mosquitoes can transmit pathogens such as Japanese encephalitis virus, dengue virus, yellow fever virus, malaria parasites, filariasis, and West Nile virus. Flies can carry over 100 types of bacteria, over 30 types of protozoa, and over 20 types of viruses, spreading various digestive tract diseases such as dysentery, cholera, and typhoid fever through mechanical and biological transmission. The main purpose of controlling mosquitoes and flies is to prevent the occurrence and spread of infectious diseases by protecting the environment, and fly and mosquito killers are devices used to capture and eliminate flies and mosquitoes.
[0003] A search revealed a novel fly and mosquito killer using a trapping and sticky method in patent publication number CN214482929U. This patented device primarily consists of an L-shaped mounting frame. A trapping groove is welded to the top outer wall of the frame, and three guide openings are provided on the outer circumference of the groove. Filters are installed on the inner bottom walls of each of the three guide openings. A top cover is rotatably connected to the top inner wall of the groove, and a fixing mechanism for securing the fly and mosquito sticky plate is provided on the inner bottom wall of the top cover. A collection groove is threadedly connected to the bottom outer wall of the groove, and an adsorption mechanism is provided on the inner bottom wall of the collection groove. The device uses a trapping lamp to attract flies and mosquitoes through the trapping groove, then the fixing mechanism secures the fly and mosquito sticky plate. Rotating the top cover causes the sticky plate to rotate around the trapping lamp, actively capturing flies and mosquitoes. The adsorption mechanism captures any escaped flies and mosquitoes, directing them into the collection groove, effectively improving the fly and mosquito capture capability.
[0004] The aforementioned novel fly and mosquito killer using a sticky trap design has a fixing mechanism on the inner wall of the bottom of its top cover for securing the sticky fly and mosquito trap. This mechanism includes a clamping frame, a handle, two clamping plates, two springs, and two inclined plates. The handle allows for easy removal of the clamping frame. The two inclined plates are then separated, and one end of the sticky fly and mosquito trap is secured between them. The two springs then firmly hold the trap in place. The interlocking toothed racks on opposite sides of the clamping plates enhance the trap's hold and prevent it from falling off. Finally, the clamping frame is installed in the mounting opening on the top cover. However, as the number of flies and mosquitoes on the trap increases, the fly-killing effect is directly affected. The effectiveness of mosquito and fly traps depends on the number of dead mosquitoes and flies, requiring frequent replacement to maintain their effectiveness. The trap's bottom inner wall has three suction ports near the three guide openings, each with a circular cover on its top outer wall. A trapping lamp is fixed to the center of the bottom inner wall of the trap with screws. While the trap has three guide openings with filters, allowing flies and mosquitoes to pass through, it's difficult to automatically clean debris from the filters, which can even prevent flies and mosquitoes from entering the trap, reducing the effectiveness and increasing cleaning workload.
[0005] Therefore, this new patent provides a novel fly and mosquito killer that uses a trapping and sticky trapping method to solve the above-mentioned problems. Summary of the Invention
[0006] The purpose of this utility model is to provide a drainage structure for mine ecological restoration. By setting up a trapping and killing component, the frequency of grid replacement is effectively reduced, thus reducing the workload of staff. In addition, a cleaning component is set up to facilitate automatic cleaning of debris on the filter and grid, thereby better trapping and killing mosquitoes and flies, and reducing the cleaning workload of staff. This solves the technical problems mentioned in the background art of the novel fly and mosquito killer using a trapping and killing method.
[0007] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0008] This utility model relates to a novel fly and mosquito killer using a trapping and sticky method, comprising a cleaning component, a trapping cylinder, and a trapping lamp. The trapping and killing component is disposed on the lower surface of the trapping cylinder, and includes a lower screw cap threaded to the lower surface of the trapping cylinder. The trapping lamp, connected to the upper surface of the lower screw cap, is located inside the trapping cylinder. An electric grid is disposed on the upper surface of the lower screw cap, and the electric grid is sleeved around the periphery of the trapping lamp. The cleaning component is disposed on the upper surface of the trapping cylinder and includes an upper screw cap threaded to the upper surface of the trapping cylinder. A rotating shaft is rotatably connected to the center of the upper screw cap, and the lower end of the rotating shaft extends into the interior of the trapping cylinder. Upper cleaning brushes are arranged in a circular array on the side of the rotating shaft. The end of a connecting rod connected to the side wall of the upper cleaning brush is connected to the periphery of the rotating shaft. A Z-shaped connecting seat is connected to the lower surface of the upper cleaning brush, and a lower cleaning brush connected to the lower surface of the connecting seat is in contact with the electric grid.
[0009] The present invention is further configured such that the periphery of the trapping tube has through grooves arranged in a ring array, and a filter screen is embedded inside the through grooves, the filter screen being in contact with the upper cleaning brush.
[0010] The present invention is further configured such that a battery slot is formed on the lower surface of the lower screw cap, a cover plate is hinged to the inside of the battery slot, an ear seat is connected to the side wall of the cover plate, a notch is formed on the lower surface of the lower screw cap, and the ear seat is locked to the inside of the notch by a screw.
[0011] The present invention is further configured such that the lower surface of the lower screw cap has supports arranged in a ring array, the upper surface of the lower screw cap has through holes arranged in a ring array, the through holes are connected to the battery slot, and a rubber ring is provided on the inner peripheral sidewall of the through holes.
[0012] The present invention is further configured such that a screw ring is connected to the lower surface of the power grid, and an internal thread groove is formed on the upper surface of the lower screw cap, and the screw ring is threadedly connected to the inside of the internal thread groove.
[0013] The present invention is further configured such that the mounting plate connected to the upper surface of the power grid is circular, and a handle is connected to the upper surface of the mounting plate.
[0014] The present invention is further configured such that a motor is connected to the upper end of the rotating shaft, and a protective cover is provided on the outer side wall of the motor.
[0015] The present invention is further configured such that the mounting bracket connected to the upper surface of the protective cover is U-shaped, the mounting bracket is connected to the upper surface of the upper screw cap, and a lifting ring is connected to the upper surface of the mounting bracket.
[0016] This utility model has the following beneficial effects:
[0017] I. This utility model, by setting up a trapping and killing component, turns on the trapping lamp and the electric grid to lure mosquitoes and flies into the inside of the trapping tube. When the mosquitoes and flies come into contact with the electric grid, they are killed, and their bodies fall onto the lower screw cover. The electric grid does not reduce its effectiveness in killing mosquitoes and flies due to a large number of mosquitoes and flies, thus reducing the frequency of electric grid replacement and the workload of staff.
[0018] Second, this utility model, by setting up a cleaning component, starts the motor, and rotates the shaft, which drives the upper cleaning brush to rotate and clean the debris on the filter screen, and drives the lower cleaning brush to rotate and clean the debris on the electric grid, thereby better luring mosquitoes and flies into the trap for extermination, and effectively reducing the cleaning workload of staff in the later stage.
[0019] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0021] Figure 1 A three-dimensional schematic diagram of a novel fly and mosquito killer using a trap-and-stick method. Figure 1 ;
[0022] Figure 2 A three-dimensional schematic diagram of a novel fly and mosquito killer using a trap-and-stick method. Figure 2 ;
[0023] Figure 3 This is a schematic diagram of the lower screw cap structure;
[0024] Figure 4 This is a schematic diagram of the trapping and extermination component.
[0025] Figure 5 This is a schematic diagram of the cleaning component.
[0026] The attached diagram lists the components represented by each number as follows:
[0027] 1-Catching tube, 101-Through groove, 102-Filter screen, 2-Catching and killing assembly, 201-Lower screw cap, 201a-Battery slot, 201b-Support, 201c-Notched groove, 201d-Through hole, 201e-Rubber ring, 202-Cover plate, 202a-Hinge, 202b-Ear seat, 202c-Screw, 203-Electric grid, 203a-Hosting plate, 203b-Handle, 203c-Threaded ring, 204-Internal threaded groove, 205-Catching lamp tube, 3-Cleaning assembly, 301-Upper screw cap, 302-Hosting frame, 302a-Hanging ring, 303-Protective cover, 303a-Motor, 303b-Shaft, 304-Upper cleaning brush, 304a-Connecting rod, 304b-Connecting seat, 304c-Lower cleaning brush. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0029] Example 1
[0030] Please see Figure 1 and Figure 2 This utility model is a novel fly and mosquito killer using a trapping and sticky trapping method, including a trapping cylinder 1, a through groove 101 and a filter screen 102. The filter screen 102 effectively prevents large flying objects from entering the interior of the trapping cylinder 1 and protects the internal components of the trapping cylinder 1.
[0031] Specifically, a through groove 101 is provided on the peripheral side wall of the trapping tube 1, and a filter screen 102 is embedded inside the through groove 101;
[0032] Furthermore, the three through slots 101 are arranged in a ring array;
[0033] The operation process in this embodiment is as follows: mosquitoes and flies pass through the filter 102 and enter the interior of the trapping tube 1.
[0034] Example 2
[0035] Please see Figure 1 , Figure 2 , Figure 3 and Figure 4Based on the first specific embodiment, a trapping and killing component 2 is provided. The trapping and killing component 2 includes a lower screw cap 201, a support 201b, a rubber ring 201e, a cover plate 202, a hinge 202a, an ear seat 202b, a screw plug 202c, an electric grid 203, a mounting plate 203a, a handle 203b, a screw ring 203c, and a trapping lamp tube 205. By turning on the trapping lamp tube 205, mosquitoes and flies are lured into the interior of the trapping cylinder 1. By turning on the electric grid 203, mosquitoes and flies can be electrocuted. There is no need to replace the electric grid 203 according to the number of dead mosquitoes and flies inside the trapping cylinder 1. The trapping effect of the electric grid 203 will not be reduced due to a large number of dead mosquitoes and flies, thus reducing the frequency of replacement of the electric grid 203 and reducing the workload of the staff.
[0036] Specifically, the lower screw cap 201 is threaded onto the lower surface of the trapping cylinder 1, and a battery slot 201a is formed on the lower surface of the lower screw cap 201. A support 201b is connected to the lower surface of the lower screw cap 201, and a notch 201c is formed on the lower surface of the lower screw cap 201, communicating with the battery slot 201a. A through hole 201d is formed on the upper surface of the lower screw cap 201, communicating with the battery slot 201a. A rubber ring 201e is provided on the inner circumferential sidewall of the through hole 201d. The cover plate 202 is hinged inside the battery slot 201a by a hinge 202a. A lug 202b is connected to the side wall of plate 202. The lug 202b is locked to the inside of slot 201c by screw 202c. A mounting plate 203a is connected to the upper surface of electric grid 203. A handle 203b is connected to the upper surface of mounting plate 203a. A screw ring 203c is connected to the lower surface of electric grid 203. An internal thread groove 204 is opened on the upper surface of lower screw cover 201. The screw ring 203c is threaded into the inside of the internal thread groove 204. The trapping lamp tube 205 is connected to the upper surface of lower screw cover 201. The electric grid 203 is sleeved on the periphery of the trapping lamp tube 205.
[0037] Furthermore, the three supports 201b are arranged in a ring array, the two notches 201c are symmetrically opened, the through holes 201d are arranged in a ring array, the two ear seats 202b are symmetrically arranged, the mounting plate 203a is circular, and the electric grid 203 is cylindrical.
[0038] The operation process of this embodiment is as follows: Turn on the trapping lamp 205 and the electric grid 203. Mosquitoes and flies are attracted by the trapping lamp 205, pass through the filter screen 102 and enter the interior of the killing cylinder 1. After the mosquitoes and flies come into contact with the electric grid 203, they are killed and their corpses fall onto the upper surface of the lower screw cover 201. Rotate the support 201b clockwise, and the lower screw cover 201 will rotate clockwise until the lower screw cover 201 is removed from the lower surface of the killing cylinder 1. Clean the mosquito and fly corpses on the lower screw cover 201. Rotate the support 201b counterclockwise to connect the lower screw cover 201 to the lower surface of the killing cylinder 1. Rotate the handle 203b clockwise, and the screw ring 203c will rotate clockwise until the screw ring 203c moves out of the interior of the internal thread groove 204, thus separating the electric grid 203 from the lower screw cover 201. Conversely, the electric grid 203 is connected to the lower screw cover 201.
[0039] Example 3
[0040] Please see Figure 1 , Figure 2 and Figure 5 Based on specific embodiments one and two, a cleaning component 3 is provided. The cleaning component 3 includes an upper screw cap 301, a mounting frame 302, a lifting ring 302a, a protective cover 303, a motor 303a, a rotating shaft 303b, an upper cleaning brush 304, a connecting rod 304a, a connecting seat 304b, and a lower cleaning brush 304c. The motor 303a is operated to rotate the upper cleaning brush 304 to clean debris on the filter screen 102, and the lower cleaning brush 304c is rotated to clean debris on the electric grid 203. This effectively reduces the cleaning workload of the staff in the later stage and makes it easier to lure mosquitoes and flies into the trap 1 for extermination.
[0041] Specifically, the upper screw cap 301 is threaded onto the upper surface of the trapping cylinder 1, and a mounting bracket 302 is connected to the upper surface of the upper screw cap 301. A lifting ring 302a is fixed to the upper surface of the mounting bracket 302. A protective cover 303 is connected to the inner top of the mounting bracket 302. A motor 303a is installed inside the protective cover 303. A rotating shaft 303b is connected to the lower end face of the motor 303a. The lower end of the rotating shaft 303b penetrates the lower surface of the protective cover 303, and the rotating shaft 303b is connected to the upper screw cap 301. The middle part of 1 is rotatably connected, the lower end of the rotating shaft 303b extends into the interior of the trapping cylinder 1, a connecting rod 304a is connected to one side wall of the upper cleaning brush 304, the end of the connecting rod 304a is connected to the peripheral side wall of the rotating shaft 303b, and the other side wall of the upper cleaning brush 304 contacts the filter screen 102. The connecting seat 304b is connected to the lower surface of the upper cleaning brush 304, and a lower cleaning brush 304c is connected to the lower surface of the connecting seat 304b. The lower cleaning brush 304c contacts the electric grid 203.
[0042] Furthermore, the mounting frame 302 is U-shaped, the upper cleaning brushes 304 are arranged in a circular array, the connecting seat 304b is Z-shaped, and the lower cleaning brushes 304c are arranged in a circular array.
[0043] The operation process of this embodiment is as follows: start the motor 303a, the rotating shaft 303b rotates, the connecting rod 304a rotates, the upper cleaning brush 304 rotates to clean the debris on the filter screen 102, the connecting seat 304b rotates, and the lower cleaning brush 304c rotates to clean the debris on the power grid 203.
[0044] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
Claims
1. A novel fly and mosquito killer using a sticky trap method, comprising a cleaning component (3), a trapping cylinder (1), and a trapping lamp (205), characterized in that: The trapping tube (1) is provided with a trapping and killing component (2) on its lower surface. The trapping and killing component (2) includes a lower screw cap (201) that is threaded onto the lower surface of the trapping tube (1). The trapping lamp tube (205) connected to the upper surface of the lower screw cap (201) is located inside the trapping tube (1). An electric grid (203) is provided on the upper surface of the lower screw cap (201). The electric grid (203) is sleeved around the periphery of the trapping lamp tube (205). The cleaning component (3) is disposed on the upper surface of the trapping cylinder (1) and includes an upper screw cap (301) threadedly connected to the upper surface of the trapping cylinder (1). A rotating shaft (303b) is rotatably connected to the middle of the upper screw cap (301). The lower end of the rotating shaft (303b) extends into the interior of the trapping cylinder (1). There are upper cleaning brushes (304) arranged in a ring array on the side of the rotating shaft (303b). The end of the connecting rod (304a) connected to the side wall of the upper cleaning brush (304) is connected to the peripheral side wall of the rotating shaft (303b). The connecting seat (304b) connected to the lower surface of the upper cleaning brush (304) is Z-shaped. The lower cleaning brush (304c) connected to the lower surface of the connecting seat (304b) is in contact with the electric grid (203).
2. The novel fly and mosquito killer using a trapping and sticky method according to claim 1, characterized in that: The trapping tube (1) has through slots (101) arranged in a ring array on its peripheral sidewall. A filter screen (102) is embedded inside the through slots (101) and the filter screen (102) is in contact with the upper cleaning brush (304).
3. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 1, characterized in that: A battery slot (201a) is provided on the lower surface of the lower screw cap (201). A cover plate (202) is hinged to the inside of the battery slot (201a) via a hinge (202a). An ear seat (202b) is connected to the side wall of the cover plate (202). A notch (201c) is provided on the lower surface of the lower screw cap (201). The ear seat (202b) is locked to the inside of the notch (201c) by a screw (202c).
4. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 3, characterized in that: The lower screw cap (201) has a support (201b) arranged in a ring array on its lower surface, and a through hole (201d) arranged in a ring array on its upper surface. The through hole (201d) communicates with the battery compartment (201a), and a rubber ring (201e) is provided on the inner circumferential sidewall of the through hole (201d).
5. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 1, characterized in that: A screw ring (203c) is connected to the lower surface of the power grid (203), and an internal thread groove (204) is opened on the upper surface of the lower screw cap (201). The screw ring (203c) is threaded into the inside of the internal thread groove (204).
6. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 5, characterized in that: The mounting plate (203a) connected to the upper surface of the power grid (203) is circular, and a handle (203b) is connected to the upper surface of the mounting plate (203a).
7. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 1, characterized in that: The upper end of the rotating shaft (303b) is connected to a motor (303a), and a protective cover (303) is provided on the outer side wall of the motor (303a).
8. A novel fly and mosquito killer using a trapping and sticky trapping method according to claim 7, characterized in that: The mounting bracket (302) connected to the upper surface of the protective cover (303) is U-shaped. The mounting bracket (302) is connected to the upper surface of the upper screw cap (301). A lifting ring (302a) is connected to the upper surface of the mounting bracket (302).