Experimental device for mosquito repelling effect detection

By designing the mosquito repellent effect detection device of the main movable box and the secondary expansion box, the problem of mosquito movement blocked in the detection of traditional Chinese medicine repellent packages is solved, and efficient and accurate mosquito repellent effect detection is achieved to meet the experimental needs of different medicine packages.

CN223078292UActive Publication Date: 2025-07-08GANSU UNIV OF CHINESE MEDICINE
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Patent Information

Application Number
CN202422133384.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-07-08
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

The existing mosquito repellent effect detection device cannot effectively simulate the normal use status of the traditional Chinese medicine mosquito repellent package, resulting in the hindrance of mosquito movement, affecting the accuracy and reliability of the detection results.

Method used

An experimental device for detecting mosquito repellent effects was designed, including the main movable box and the secondary expansion box. Both are equipped with insect-proof nets. The mosquitoes move freely under the action of the mosquito repellent medicine bag. Combined with the movable medicine bag stowage assembly and the removable secondary expansion box, it simulates the normal use environment and improves the accuracy and convenience of detection.

Benefits of technology

It effectively reduces the error of experimental test results, improves the accuracy and convenience of mosquito repellent effect detection, expands the detection range, and meets the experimental needs of different mosquito repellent packages.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of mosquito repelling detection, and provides an experimental device for mosquito repelling effect detection, which comprises a main movable box which comprises a main box frame and a main insect-proof net connected with the main box frame, main partition plates movably connected with the main box frame are arranged on the left side and the right side of the main box frame, and a medicine bag placing opening and a mosquito throwing opening are formed in the top of the main movable box; the auxiliary expansion boxes are arranged on the left side and the right side of the main movable box and connected with the main movable box, and each auxiliary expansion box comprises an auxiliary box frame and an auxiliary insect-proof net connected with the auxiliary box frame. The experimental device for mosquito repelling effect detection provided by the utility model is simple in structure and convenient to use, effectively simulates a repelling environment in a normal use state of mosquito repelling medicine bags, and can quickly and efficiently detect mosquito repelling effects and mosquito repelling performance of different mosquito repelling medicine bags.
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Description

Technical Field

[0001] The utility model belongs to the technical field of mosquito repellent detection, and particularly relates to an experimental device for detecting the mosquito repellent effect. Background Art

[0002] The methods of mosquito repellent and mosquito control can be simply divided into physical methods and chemical methods. Among them, physical methods mainly rely on means such as sound, light, electricity, and magnetism to achieve the effect of mosquito repellent and mosquito control, while chemical methods mainly rely on the volatilization, dipping, etc. of some chemical substances or plant extracts with mosquito repellent and mosquito control effects to achieve the corresponding mosquito repellent effect, such as existing mosquito repellent liquids, traditional Chinese medicine mosquito repellent bags, etc. At present, there are corresponding test chambers for testing the mosquito repellent effect of mosquito repellent liquids. However, there is no corresponding experimental detection device for detecting the mosquito repellent effect of traditional Chinese medicine mosquito repellent bags. In addition, the existing test chambers cannot provide an effective repellent environment, that is, they cannot effectively simulate the repellent environment under the normal use state of traditional Chinese medicine mosquito repellent bags. Mosquitoes cannot fly freely and spread in the test chamber, and there is a phenomenon of blocking the movement of mosquitoes, thus affecting the detection of the mosquito repellent effect and resulting in deviation in the detection results of the mosquito repellent effect.

[0003] Therefore, it is necessary to design an experimental device for detecting the mosquito repellent effect of traditional Chinese medicine mosquito repellent bags. Summary of the Invention

[0004] In order to solve the above technical problems, the utility model provides an experimental device for detecting the mosquito repellent effect, which has a simple structure and is convenient to use, can effectively simulate the repellent environment under the normal use state of the mosquito repellent bag, and can quickly and efficiently detect the mosquito repellent effect and performance of different mosquito repellent bags.

[0005] The technical solution of the utility model is as follows:

[0006] The utility model provides an experimental device for detecting the mosquito repellent effect, including:

[0007] A main activity box, the main activity box includes a main box frame and a main insect-proof net connected thereto. Main partitions are movably connected to the left and right sides of the main box frame. A medicine bag placement opening and a mosquito placement opening are provided at the top of the main activity box;

[0008] A secondary expansion box, the secondary expansion box is arranged on the left and right sides of the main activity box and connected thereto, and includes a secondary box frame and a secondary insect-proof net connected to the secondary box frame.

[0009] Preferably, guide grooves are arranged along the front-rear direction on the frame bodies on the left and right sides of the main box frame, and guide blocks are arranged at the ends of the main partitions and are movably embedded in the guide grooves.

[0010] Preferably, a medicine bag placing port is provided with a medicine bag supporting and placing component that can movably extend into the main activity box, and a sealing plug adapted thereto is provided at the position of the mosquito releasing port.

[0011] Preferably, the medicine bag supporting and placing component includes a holding part, a clamping part, and a supporting part that are connected to each other. The holding part and the supporting part are respectively fixedly arranged at both ends of the clamping part.

[0012] The clamping part can movably pass through the medicine bag placing port and extend into the main activity box.

[0013] Preferably, the clamping part includes a plurality of clamping arms arranged at intervals to clamp and fix the mosquito repellent medicine bag in a clamping space formed by the plurality of clamping arms.

[0014] Preferably, the main box frame and the sub-box frame are connected in an integral structure, and the main insect-proof net and the sub-insect-proof net are connected in an integral structure.

[0015] Preferably, the sub-expansion box and the main activity box are detachably connected.

[0016] Preferably, the left and right sides of the sub-box frame are provided with sub-partition boards movably connected thereto.

[0017] Preferably, a plurality of sub-expansion boxes are provided, and the sub-expansion boxes are detachably connected to each other.

[0018] The utility model has the following advantages and effects compared with the prior art:

[0019] (1) By adopting sub-expansion boxes located on the left and right sides of the main activity box, and both the main activity box and the sub-expansion boxes are provided with insect-proof nets. The mosquito repellent medicine bag is placed in the main activity box at the middle position. Under the repellent effect of the mosquito repellent medicine bag, mosquitoes can freely move to the sub-expansion boxes on both sides without being blocked, and cooperate with the insect-proof nets to form a non-closed breathable space, which maximally simulates the repellent environment in the normal use state of the mosquito repellent medicine bag, and can effectively reduce the error of the experimental detection results.

[0020] (2) By adopting a medicine bag supporting and placing component that can movably extend into the main activity box, the mosquito repellent medicine bag to be detected in the experiment can be clamped and fixed in the medicine bag supporting and placing component, which is convenient for the placement and removal of the mosquito repellent medicine bag, improves the convenience of the experimental detection, and can effectively simulate the normal use state of the mosquito repellent medicine bag to ensure the accuracy of the experimental detection results.

[0021] (3) By adopting a sub-expansion box that is detachably connected to the main activity box, it is convenient for the placement and transportation of the experimental device, reduces the occupied space in the non-detection use state, and improves the convenience of use.

[0022] (4) Several detachably connected sub - expansion boxes are adopted. Different numbers of sub - expansion boxes can be connected according to actual detection requirements to meet the experimental detection of mosquito repellent medicine packs with different mosquito repellent performances. At the same time, the accuracy and intuitiveness of experimental detection results can be improved, and the detection range of mosquito repellent effects can be expanded. Description of the Drawings

[0023] Figure 1 It is a schematic structural view of the experimental device for detecting mosquito repellent effect in Embodiment 1 of the present utility model;

[0024] Figure 2 It is an exploded structural view of the experimental device for detecting mosquito repellent effect in Embodiment 1 of the present utility model;

[0025] Figure 3 It is a schematic structural view of the experimental device for detecting mosquito repellent effect in Embodiment 2 of the present utility model;

[0026] Figure 4 It is another schematic structural view of the experimental device for detecting mosquito repellent effect in Embodiment 2 of the present utility model;

[0027] Figure 5 It is yet another schematic structural view of the experimental device for detecting mosquito repellent effect in Embodiment 2 of the present utility model.

[0028] Reference Numerals: 1, main movable box; 11, main box frame; 12, main insect - proof net; 13, main partition; 14, medicine - pack placement opening; 15, mosquito release opening; 2, sub - expansion box; 21, sub - box frame; 22, sub - insect - proof net; 23, sub - partition; 3, guide groove; 4, guide block; 5, medicine - pack supporting and placing assembly; 51, holding part; 52, clamping part; 521, clamping arm; 53, supporting part; 6, sealing plug; 7, clamping groove; 8, clamping block. Detailed Embodiments

[0029] In order to enable those skilled in the art to better understand the present utility model, the present utility model will be further described below in conjunction with specific embodiments.

[0030] Embodiment 1:

[0031] As Figures 1 to 2 shown, the present utility model provides an experimental device for detecting mosquito repellent effect, including a main movable box 1 and two sub - expansion boxes 2 arranged on the left and right sides of the main movable box 1. The main movable box 1 is used to place mosquito repellent medicine packs and release mosquitoes before experimental detection, and the sub - expansion box 2 provides a repellent space for mosquitoes.

[0032] The main movable box 1 includes a main box frame 11 and a main insect - proof net 12 connected to the main box frame 11. Combining Figure 1 and Figure 2As shown, the main box frame 11 is provided with main partitions 13 movably connected thereto on the left and right sides, and the main box frame 11, the main anti-insect net 12, and the main partitions 13 on both sides form a closed space for placing mosquitoes and mosquito repellent bags. Specifically, the main box frame 11 is a cubic frame, the main anti-insect net 12 is fixedly connected to the main box frame 11, and is arranged on the front side, rear side, top side, and bottom side of the main box frame 11, and cooperates with the main partitions 13 on the left and right sides to form a closed experimental detection space.

[0033] like Figure 2 As shown, the frame bodies on the left and right sides of the main box frame 11 are provided with guide grooves 3 arranged in the front-back direction, and the end of the main partition 13 is provided with a guide block 4 that is movably embedded in the guide groove 3. By pulling the main partition 13 to the front side, the main active box 1 and the auxiliary extension box 2 can be connected, and by pushing the main partition 13 to the rear side, the main active box 1 and the auxiliary extension box 2 can be separated and independent. It should be noted that when the main partition 13 is pushed in, it is sealed with the frame bodies on both sides of the main box frame 11, and mosquitoes will not fly from the main active box 1 to the auxiliary extension box 2; at the same time, the guide block 4 slides back and forth in the guide groove 3, and when the main partition 13 is pulled forward to the maximum sliding distance (the main partition 13 will not be separated from the main box frame 11), the end of the main partition 13 is flush with the frame body of the main box frame 11, so as to avoid the main partition 13 blocking the movement and diffusion of mosquitoes.

[0034] like Figure 2 As shown, a medicine bag placement port 14 and a mosquito release port 15 are provided on the top of the main activity box 1, so that the mosquito repellent medicine bag can be placed in the main activity box 1 through the medicine bag placement port 14, and the mosquitoes can be released into the main activity box 1 through the mosquito release port 15.

[0035] A matching sealing plug 6 is provided at the position of the mosquito delivery port 15 to realize the opening and closing of the mosquito delivery port 15 , and mosquitoes for experimental detection are delivered into the main activity box 1 through the mosquito delivery port 15 .

[0036] A medicine package holding assembly 5 which can be movably extended into the interior of the main movable box 1 is provided at the position of the medicine package placement opening 14. The medicine package holding assembly 5 includes a handle portion 51, a clamping portion 52, and a supporting portion 53 which are connected to each other. The handle portion 51 and the supporting portion 53 are respectively fixedly arranged at two ends of the clamping portion 52. The clamping portion 52 can movably pass through the medicine package placement opening 14 and extend into the interior of the main movable box 1. The clamping portion 52 includes a plurality of clamping arms 521 arranged at intervals to clamp and fix the mosquito repellent medicine package in a clamping space formed by the plurality of clamping arms 521.

[0037] Optionally, in some embodiments, the handle portion 51 , the clamping portion 52 , and the supporting portion 53 are connected in an integrated structure.

[0038] The auxiliary expansion box 2 is arranged on the left and right sides of the main active box 1 and is connected to the main active box 1. The auxiliary expansion box 2 includes an auxiliary box frame 21 and an auxiliary insect-proof net 22 connected to the auxiliary box frame 21. The auxiliary box frame 21, the auxiliary insect-proof net 22, and the main partition 13 of the main active box 1 enclose a closed space for mosquito diffusion. Specifically, the auxiliary box frame 21 is a cubic frame, and the auxiliary insect-proof net 22 is fixedly connected to the auxiliary box frame 21 and is arranged on the front side, rear side, top side, bottom side, and the side opposite to the main partition 13 of the auxiliary box frame 21. That is, the left side of the left auxiliary box frame 21 is provided with the auxiliary insect-proof net 22, and the right side of the right auxiliary box frame 21 is provided with the auxiliary insect-proof net 22.

[0039] Optionally, in some embodiments, the main box frame 11 and the auxiliary box frame 21 are connected in an integral structure, and the main insect-proof net 12 and the auxiliary insect-proof net 22 are connected in an integral structure.

[0040] During the specific experimental detection process, first, push the main partitions 13 on the left and right sides to the rearmost side so that the main active box 1 and the auxiliary expansion boxes 2 on both sides are independent and enclosed spaces; then fix the mosquito repellent medicine packet clamp on the supporting part 53 of the medicine packet placing and supporting assembly 5, and extend the medicine packet placing and supporting assembly 5 into the main active box 1 through the medicine packet placing opening 14; then release mosquitoes into the main active box 1 through the mosquito releasing opening 15, and after the release, use the sealing plug 6 to block the mosquito releasing opening 15; then wait for a period of time, pull the main partitions 13 on the left and right sides forward so that the main active box 1 is communicated with the auxiliary expansion boxes 2 on both sides, and the mosquitoes automatically move and spread to both sides under the repellent effect of the mosquito repellent medicine packet; finally, when it tends to be stable, push the main partitions 13 on the left and right sides backward to isolate the main active box 1 from the auxiliary expansion boxes 2 on both sides, and count the number of mosquitoes in the auxiliary expansion boxes 2 on both sides to complete the experimental detection of the mosquito repellent effect.

[0041] Embodiment 2:

[0042] For Embodiment 2 of the present utility model, Figures 3 to 5 is described. In addition, the parts that have no difference from Embodiment 1 are omitted from the description and are given the same reference numerals.

[0043] As Figures 3 to 5 shown, the experimental device for detecting the mosquito repellent effect involved in the present utility model, wherein the auxiliary expansion box 2 is detachably connected to the main active box 1. Specifically, one side of each of the left and right sides of the main active box 1 and the auxiliary expansion box 2 is provided with a clamping groove 7, and the other side is provided with a clamping block 8 adapted to the clamping groove 7. That is, one side of each of the left and right sides of the main active box 1 is provided with a clamping groove 7, and the other side is provided with a clamping block 8 adapted to the clamping groove 7. One side of each of the left and right sides of the auxiliary expansion box 2 is provided with a clamping groove 7, and the other side is provided with a clamping block 8 adapted to the clamping groove 7.

[0044] Reference Figure 4 As shown, on both the left and right sides of the secondary box frame 21 of the secondary expansion box 2, there are secondary partitions 23 movably connected thereto. At this time, the secondary insect-proof net 22 is arranged on the front side surface, rear side surface, top side surface, and bottom side surface of the secondary box frame 21, and it cooperates with the secondary partitions 23 on the left and right side surfaces to form a closed space for mosquito diffusion. For the specific experimental detection process, reference can be made to the relevant content in the above-mentioned embodiments. Just perform the same operations on the secondary partition 23 during the process of pulling the main partition 13 forward and pushing it backward. In addition, when finally measuring and counting the number of mosquitoes during the detection process, the secondary expansion boxes 2 on both sides can be disassembled for measurement, which can reduce the difficulty of the measurement and counting process and improve the convenience and flexibility of the detection.

[0045] It should be noted that the specific structure of the movable connection between the secondary partition 23 and the secondary box frame 21 is the same as that of the movable connection between the main partition 13 and the main box frame 11, and will not be elaborated here.

[0046] Furthermore, reference Figure 5 As shown, a plurality of secondary expansion boxes 2 are provided, and the secondary expansion boxes 2 are detachably connected to increase the range of mosquito diffusion, thereby improving the intuitiveness and accuracy of the detection of the mosquito repellent effect, and facilitating an intuitive and clear judgment of the differences in the mosquito repellent effects of different mosquito repellent packets.

[0047] In summary, the experimental device for detecting the mosquito repellent effect provided by the present utility model has a simple structure and is convenient to use. It effectively simulates the repellent environment under the normal use state of the mosquito repellent packet, and can quickly and efficiently detect the mosquito repellent effect and mosquito repellent performance of different mosquito repellent packets.

[0048] The above are only the preferred embodiments of the present utility model, and do not limit the patent scope of the present utility model accordingly. All equivalent changes and modifications made within the scope of the present utility model should still fall within the scope covered by the present utility model.

Claims

1. An experimental device for detecting the mosquito repellent effect, characterized in that, Comprising: A main activity box (1), the main activity box (1) includes a main box frame (11) and a main insect-proof net (12) connected thereto. The main box frame (11) is provided with main partition boards (13) movably connected thereto on both left and right sides. The top of the main activity box (1) is provided with a medicine bag placement opening (14) and a mosquito release opening (15); A secondary expansion box (2), the secondary expansion box (2) is arranged on both left and right sides of the main activity box (1) and connected thereto, and includes a secondary box frame (21) and a secondary insect-proof net (22) connected to the secondary box frame (21).

2. The experimental device for detecting the mosquito repellent effect according to claim 1, characterized in that: On the frame bodies on both left and right sides of the main box frame (11), there are guide grooves (3) arranged in the front-back direction. The end of the main partition board (13) is provided with a guide block (4) movably inserted into the guide groove (3).

3. The experimental device for detecting repellent effect according to claim 1, characterized in that: At the position of the medicine bag placement opening (14), there is a medicine bag supporting and placing assembly (5) that can be movably inserted into the main activity box (1). At the position of the mosquito release opening (15), there is a sealing plug (6) adapted thereto.

4. The experimental device for detecting the mosquito repellent effect according to claim 3, characterized in that: The medicine bag supporting and placing assembly (5) includes a gripping and lifting part (51), a clamping part (52), and a supporting part (53) connected to each other. The gripping and lifting part (51) and the supporting part (53) are respectively fixedly arranged at both ends of the clamping part (52); The clamping part (52) can movably pass through the medicine bag placement opening (14) and extend into the main activity box (1).

5. The experimental device for detecting the mosquito repellent effect according to claim 4, characterized in that: The clamping part (52) includes a plurality of clamping arms (521) arranged at intervals to clamp and fix the mosquito repellent medicine bag in the clamping space formed by the plurality of clamping arms (521).

6. The experimental device for detecting the mosquito repellent effect according to claim 1, wherein: The main box frame (11) and the secondary box frame (21) are connected in an integral structure. The main insect-proof net (12) and the secondary insect-proof net (22) are connected in an integral structure.

7. The experimental device for detecting the mosquito repellent effect according to claim 1, characterized in that: The secondary expansion box (2) is detachably connected to the main activity box (1).

8. The experimental device for detecting the mosquito repellent effect according to claim 6, wherein: On both left and right sides of the secondary box frame (21), there are secondary partition boards (23) movably connected thereto.

9. The experimental device for detecting the mosquito repellent effect according to claim 7, wherein: There are a plurality of the secondary expansion boxes (2), and the secondary expansion boxes (2) are detachably connected to each other.