An intelligent pest trapping, collecting and detecting device
By using a multi-roller guiding structure and an automated drive mechanism, the problem of frequent replacement of single-roll trapping tape is solved, realizing automatic replacement of the adhesive layer and improving the efficiency of pest trapping, making it suitable for seamless integration in large-scale farms.
Patent Information
- Application Number
- CN202522166210.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-14
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-10-14
AI Technical Summary
Existing single-roll trapping tape loses its stickiness after being covered with pests, requiring frequent manual replacement, which increases labor intensity and is inconvenient to operate, especially in large-scale farms.
Design an intelligent pest trapping, collection, and detection device. It adopts a multi-roller guiding structure and drive mechanism to automatically replace the adhesive layer and release layer. The adhesive layer status is monitored through a vision acquisition device to achieve automated winding and unwinding, avoiding manual replacement.
It enables automatic replacement of the adhesive layer, reduces labor intensity, improves pest trapping efficiency, is suitable for seamless integration in large-scale farms, and reduces manual operation.
Smart Images

Figure CN224670660U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of animal trapping devices, specifically to an intelligent insect trapping, collection, and detection device. Background Technology
[0002] In modern agricultural production, pests on farms (such as aphids, whiteflies, thrips, and fruit flies) have always been a significant problem affecting crop growth and yield. To control pest populations and reduce their harm to agricultural production, farmers typically employ methods such as physical trapping and chemical control. Among these, physical trapping methods based on trapping tape are widely used in various farm settings, including greenhouses, open orchards, and vegetable growing bases, due to their advantages of no chemical pollution, minimal impact on natural enemy insects, and relatively simple operation. Currently, the trapping tapes commonly used on farms are mostly single-roll structures. Their basic principle is that pests are trapped by the adhesive layer on the tape. However, in practical use, this type of trapping tape has significant limitations: when the tape is full of pests, the adhesive layer's stickiness decreases considerably, making it unable to effectively trap pests. At this point, the entire trapping tape needs to be manually replaced.
[0003] During operation, the old, expired tape needs to be removed from the mounting frame first, and then the new tape needs to be fixed in place. This process is labor-intensive and time-consuming. In particular, in large-scale farms or in scenarios where trapping tape needs to be densely arranged, the frequent manual replacement operation will significantly increase the labor intensity of farmers. Utility Model Content
[0004] This utility model aims to solve at least one of the technical problems existing in the prior art. To this end, this utility model proposes:
[0005] A smart pest trapping, collection, and detection device includes:
[0006] Box body;
[0007] The trapping tape includes an adhesive layer and a release layer.
[0008] The unwinding roller, the first winding roller, and the second winding roller are rotatably mounted on the upper end of the box body. One end of the trapping tape is wound around the unwinding roller, the adhesive layer at the other end is wound around the first winding roller, and the release layer at the other end is wound around the second winding roller.
[0009] The technical solution adopted by one embodiment of this utility model to solve its technical problem is as follows: it further includes a plurality of first guide rollers, the plurality of first guide rollers enclosing a polygon, and the plurality of first guide rollers are distributed at the corners of the polygon. The unwinding roller, the first winding roller, and the second winding roller are distributed inside the polygon. The adhesive layer at the other end of the trapping tape is wound around the plurality of first guide rollers and then wound onto the first winding roller.
[0010] The technical solution adopted by one embodiment of this utility model to solve its technical problem is: a plurality of first guide rollers are distributed at the corners of the upper end of the box body.
[0011] The technical solution adopted by one embodiment of this utility model to solve its technical problem is as follows: it further includes two second guide rollers, which are rotatably mounted on the box body and spaced apart on one side of the polygon. The adhesive layer at the other end of the trapping tape passes around one second guide roller, multiple first guide rollers and the remaining second guide roller in sequence and is then wound onto the first take-up roller.
[0012] The technical solution adopted by one embodiment of this utility model to solve its technical problem is: it further includes a visual acquisition device, which is used to acquire an image of the adhesive layer.
[0013] The technical solution adopted by one embodiment of this utility model to solve its technical problem is as follows: it further includes a plurality of first guide rollers and two third guide rollers. The plurality of first guide rollers form a polygon, and the plurality of first guide rollers are distributed at the corners of the polygon. The unwinding roller, the first winding roller, and the second winding roller are distributed inside the polygon. The two third guide rollers are rotatably mounted on the box body and distributed inside the polygon. The adhesive layer at the other end of the trapping tape is wound around the plurality of first guide rollers and the two third guide rollers and then wound on the first winding roller. The vision acquisition device is mounted on the box body and faces between the two third guide rollers. The vision acquisition device is used to acquire an image of the adhesive layer between the two third guide rollers.
[0014] The technical solution adopted by one embodiment of the present invention to solve its technical problem is as follows: it further includes a first driving mechanism and a second driving mechanism. The first driving mechanism is connected to the first take-up roller and is used to drive the first take-up roller to rotate. The second driving mechanism is connected to the second take-up roller and is used to drive the second take-up roller to rotate.
[0015] The technical solution adopted by one embodiment of this utility model to solve its technical problem is as follows: it further includes a trigger, an elastic element, a first micro switch, and a second micro switch. A rotatable fourth guide roller is provided on the upper end of the box body between the unwinding roller and the second winding roller. One end of the trigger is rotatably mounted on the box body and connected to the box body through the elastic element. The other end of the trigger contacts the release layer. A first micro switch and a second micro switch are respectively provided on both sides of the trigger. During winding, the first winding roller and the second winding roller rotate synchronously. The winding speed of the first winding roller is greater than that of the second winding roller. The peeling point between the release layer and the adhesive layer moves away from the unwinding roller, causing the trigger to rotate under the action of the elastic element until it contacts the fourth guide roller and triggers the first micro switch. The first drive mechanism stops. The second winding roller continues to rotate and wind the release layer. The peeling point between the release layer and the adhesive layer moves towards the unwinding roller, causing the other end of the trigger to rotate under the action of the release layer and move away from the fourth guide roller and trigger the second micro switch. The first drive mechanism starts.
[0016] The technical solution adopted by one embodiment of this utility model to solve its technical problem is as follows: it further includes an encoder and a tension roller. The tension roller is rotatably mounted on the box body and tensions the trapping tape. The encoder is disposed on the box body and located on the other side of the trapping tape relative to the tension roller, and the wheel of the encoder is in contact with the trapping tape.
[0017] The beneficial effects of this utility model are: the unwinding roller continuously releases the effective adhesive layer, and the first winding roller simultaneously collects the failed layer, avoiding the tedious operation of frequently disassembling old tape and installing new tape, thus reducing labor intensity. Attached Figure Description
[0018] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0019] Figure 1 This is a schematic diagram of the intelligent pest trapping, collection, and detection device described in this embodiment;
[0020] Figure 2 This is a schematic diagram of the structure when the triggering element of this embodiment triggers the first micro switch;
[0021] Figure 3 This is a schematic diagram of the structure when the triggering element of this embodiment triggers the second micro switch;
[0022] Figure 4 This is a bottom view of the intelligent pest trapping, collection, and detection device described in this embodiment. Detailed Implementation
[0023] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0024] In the description of this utility model, "multiple" means two or more; "greater than," "less than," and "exceeding" are understood to exclude the stated number; "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly specifying the number of indicated technical features or their sequential relationship.
[0025] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0026] In this utility model, unless otherwise explicitly defined, the terms "setting," "installing," and "connecting" should be interpreted broadly. For example, they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to a fixed connection, a detachable connection, or an integral molding; they can refer to a mechanical connection; they can refer to the internal connection of two components or the interaction between two components. Those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0027] Reference Figure 1-4 This application proposes an embodiment of the intelligent pest trapping, collection, and detection device, which includes:
[0028] Box body 1;
[0029] The trapping tape 2 includes an adhesive layer 21 and a release layer 22.
[0030] The unwinding roller 3, the first winding roller 4, and the second winding roller 5 are rotatably mounted on the upper end of the box body 1. One end of the trapping tape 2 is wound around the unwinding roller 3, the adhesive layer 21 of the other end is wound around the first winding roller 4, and the release layer 22 of the other end is wound around the second winding roller 5.
[0031] The intelligent pest trapping and collection detection device uses the box body 1 as the installation carrier. One end of the trapping tape 2 is pre-wound onto the unwinding roller 3 at the top of the box body 1 to realize the initial storage and release preparation of the tape. The other end of the trapping tape 2 is divided into layers. The adhesive layer 21 with pest trapping function is wound separately on the first winding roller 4. The first winding roller 4 is used to collect the failed adhesive layer 21, while the release layer 22, which only protects the adhesiveness of the adhesive layer 21, is independently wound to be stored on the second winding roller 5.
[0032] When the intelligent pest trapping and collection detection device is in operation, the adhesive layer 21 is exposed to trap pests. When the exposed adhesive layer 21 is replaced, the first take-up roller 4 and the second take-up roller 5 are rotated. The second take-up roller 5 peels off and rolls up the release layer 22 on the surface of the adhesive layer 21, so that the adhesive layer 21 on the trapping tape 2 is exposed to trap pests.
[0033] When the exposed adhesive layer 21 has been used for a period of time, and becomes covered with pests or loses its stickiness, the first take-up roller 4 and the second take-up roller 5 continue to rotate and pull the unwind roller 3 to rotate. The first take-up roller 4 will take up the failed adhesive layer 21, while the unwind roller 3 will unwind a new trapping tape 2. The second take-up roller 5 will pull the release layer 22 to separate and expose the new adhesive layer 21, eliminating the need for manual replacement of the entire tape.
[0034] The unwinding roller 3 continuously releases the effective adhesive layer 21, while the first winding roller 4 simultaneously collects the failed layer, achieving a seamless connection in pest trapping. This avoids the tedious manual operation of frequently disassembling old tape and installing new tape, reducing labor intensity.
[0035] It also includes a first drive mechanism 10 and a second drive mechanism 11. The first drive mechanism 10 is connected to the first take-up roller 4 and is used to drive the first take-up roller 4 to rotate. The second drive mechanism 11 is connected to the second take-up roller 5 and is used to drive the second take-up roller 5 to rotate.
[0036] When replacing the exposed adhesive layer 21, the first drive mechanism 10 rotates and drives the first take-up roller 4 to rotate and take up the used adhesive layer 21. The unwind roller 3 rotates passively under the tension of the tape, releasing the new trapping tape 2. The second drive mechanism 11 drives the second take-up roller 5 to rotate and peel off and rewind the release layer 22 on the surface of the adhesive layer 21, thereby exposing the new adhesive layer 21. The first drive mechanism 10 and the second drive mechanism 11 can be equipped with intelligent control motors or other devices, which can intelligently realize the rotation control of the take-up rollers. Thus, the start and stop of the first drive mechanism 10 and the second drive mechanism 11 can be remotely controlled, eliminating the need for manual on-site operation. This is convenient to use. Furthermore, by controlling the running time of the first drive mechanism 10 and the second drive mechanism 11, the new trapping tape 2 can be unwound at a fixed length, thereby replacing the used adhesive layer 21.
[0037] Preferably, the device also includes a plurality of first guide rollers 6, which together form a polygon, and the plurality of first guide rollers 6 are distributed at the corners of the polygon. The unwinding roller 3, the first winding roller 4, and the second winding roller 5 are distributed inside the polygon. The adhesive layer 21 at the other end of the trapping tape 2 is wound around the first winding roller 4 after passing through the plurality of first guide rollers 6.
[0038] Multiple first guide rollers 6 enclose the polygon to form a polygonal structure, such as a rectangle or hexagon, with all first guide rollers 6 installed at the corners of the polygon. The unwinding roller 3, the first winding roller 4, and the second winding roller 5 are positioned inside the polygon. After the adhesive layer 21 of the trapping tape 2 is released from the unwinding roller 3, it must sequentially pass through each of the first guide rollers 6 at the corners of the polygon before connecting to the first winding roller 4. The first guide rollers 6 change the orientation of the adhesive layer 21 by rotating, creating a multi-faceted exposed shape within the polygon, thus increasing the contact area between the adhesive layer 21 and the pests. Simultaneously, the limiting effect of the guide rollers prevents the adhesive layer 21 from shifting or wrinkling during winding, ensuring that the adhesive layer 21 remains flat and trapping.
[0039] The polygonal guide structure exposes the adhesive layer 21 from multiple directions and surfaces, covering a larger area around the box body 1. This is particularly suitable for farm settings where pests are widely distributed, increasing the number of pests trapped per unit time. The take-up and release rollers are located inside the polygon, and the adhesive layer 21 is extended to the outside by the guide rollers. This maximizes space utilization without increasing the volume of the box body 1, adapting to the installation needs of narrow scenarios such as greenhouses.
[0040] Furthermore, multiple first guide rollers 6 are distributed at the corners of the upper end of the box body 1. The cooperation between the guide rollers and the corners of the box body 1 makes the exposed area of the adhesive layer 21 match the contour of the box body 1.
[0041] Furthermore, as a preferred embodiment, it also includes two second guide rollers 7, which are rotatably mounted on the box body 1 and spaced apart on one side of the polygon. The adhesive layer 21 at the other end of the trapping tape 2 passes sequentially around one second guide roller 7, multiple first guide rollers 6 and the remaining second guide roller 7 before being wound onto the first take-up roller 4.
[0042] After the adhesive layer 21 of the trapping tape 2 is released from the unwinding roller 3, it first passes around the first second guide roller 7. After the direction is adjusted by the guide roller, it enters multiple first guide rollers 6 at the corner of the polygon, completing multi-face exposure. Then it passes around the second second guide roller 7, and after a second direction adjustment, it is finally wound onto the first take-up roller 4. By bringing the two second guide rollers 7 close to each other, the exposed surfaces of the adhesive layer 21 are enclosed as much as possible to form a complete polygon, so that a complete trapping tape 2 is distributed around the upper part of the box body 1, maximizing the area of the exposed surface of the adhesive layer 21.
[0043] Preferably, a visual acquisition device 8 is also included, which is used to acquire an image of the adhesive layer 21.
[0044] When the device is running, the vision acquisition device 8 takes real-time images of the adhesive layer 21 at a set frequency or as needed, and transmits the image data to the background control system. The staff in the background can analyze and detect the types of pests in the images based on the image data, so that the staff can formulate targeted prevention and control plans in a timely manner according to the types of pests and the characteristics of different pests, so as to achieve precise application of pesticides or physical control, effectively control pests, and ensure the healthy growth of crops.
[0045] Furthermore, it also includes two third guide rollers 9, and a plurality of first guide rollers 6 enclose a polygon, with the plurality of first guide rollers 6 distributed at the corners of the polygon. The unwinding roller 3, the first winding roller 4, and the second winding roller 5 are distributed inside the polygon. The two third guide rollers 9 are rotatably mounted on the box body 1 and distributed inside the polygon. The adhesive layer 21 at the other end of the trapping tape 2 is wound around the first winding roller 4 after passing through the plurality of first guide rollers 6 and the two third guide rollers 9. The visual acquisition device 8 is mounted on the box body 1 and faces between the two third guide rollers 9. The visual acquisition device 8 is used to acquire an image of the adhesive layer 21 between the two third guide rollers 9.
[0046] Two third guide rollers 9 are added inside the polygon; after the adhesive layer 21 of the trapping tape 2 is released from the unwinding roller 3, it first passes around the first guide roller 6, then around the two third guide rollers 9, and finally connects to the first take-up roller 4. This allows the visual acquisition device 8 to be mounted on the box body 1 and its lens to be aimed at the area of the adhesive layer 21 between the two third guide rollers 9.
[0047] Specifically, it also includes a trigger 12, an elastic element 13, a first micro switch 14, and a second micro switch 15. A rotatable fourth guide roller 16 is provided on the upper end of the housing body 1 between the unwinding roller 3 and the second winding roller 5. One end of the trigger 12 is rotatably mounted on the housing body 1 and connected to the housing body 1 via the elastic element 13. The trigger 12 is located on the side of the release layer 22 closest to the unwinding roller 3, and the other end of the trigger 12 contacts the release layer 22. A first micro switch 14 and a second micro switch 15 are respectively provided on both sides of the trigger 12. During winding, the first winding roller 4 and the second winding roller 5 rotate synchronously. The winding of the first winding roller 4… When the speed is greater than the winding speed of the second take-up roller 5, the peeling point between the release layer 22 and the adhesive layer 21 moves away from the unwinding roller 3, causing the trigger 12 to rotate under the restoring force of the elastic member 13 until it contacts the fourth guide roller 16 and triggers the first micro switch 14. The first drive mechanism 10 stops, and the second take-up roller 5 continues to rotate and wind up the release layer 22. The peeling point between the release layer 22 and the adhesive layer 21 moves towards the unwinding roller 3, causing the other end of the trigger 12 to rotate away from the fourth guide roller 16 under the action of the release layer 22, overcoming the elastic member 13, and triggering the second micro switch 15. The second drive mechanism 11 stops.
[0048] In the initial state, the other end of the trigger 12 is in contact with the release layer 22 and there is a gap between the release layer 22 and the fourth guide roller 16, so the first micro switch 14 is not triggered.
[0049] When the adhesive layer 21 needs to be replaced, the first drive mechanism 10 drives the first take-up roller 4 to rotate, and the second drive mechanism 11 drives the second take-up roller 5 to rotate. The winding speed of the first take-up roller 4 is greater than that of the second take-up roller, meaning that within a certain time, the length of the adhesive layer 21 wound is greater than the length of the release layer wound. If the release layer 22 is not peeled off from the adhesive layer 21 in time, the peeling position of the release layer 22 from the adhesive layer 21 gradually moves away from the unwinding roller 3. At this time, the release layer 22 between the fourth guide roller 16 and the second take-up roller 5 gradually moves away from the trigger 12, causing the trigger 12 to rotate under the action of the elastic member 13 until it contacts the fourth guide roller 16 and triggers the first micro switch 14, stopping the first drive mechanism 10.
[0050] After the first drive mechanism 10 stops, the second drive mechanism 11 continues to drive the second take-up roller 5 to rotate, causing the separation point between the release layer 22 and the adhesive layer 21 to gradually move towards the unwinding roller 3, until the separation point between the release layer 22 and the adhesive layer 21 passes the position where the trigger 12 contacts the fourth guide roller 16. The release layer 22 continues to be wound up, and the release layer 22 generates a reverse thrust on the trigger 12, overcoming the elastic force of the elastic member 13 and causing the trigger 12 to rotate and move away from the fourth guide roller 16. The trigger 12 contacts and triggers the second micro switch 15 and returns to the initial state. The second micro switch 15 sends a signal to start the first drive mechanism 10.
[0051] The first drive mechanism 10 and the second drive mechanism 11 repeat the above steps until the unwinding length of the new trapping tape on the unwinding roller 3 reaches the preset length. Then, the first drive mechanism 10 and the second drive mechanism 11 stop, completing the replacement of the used adhesive layer 21.
[0052] Through the mechanical triggering mechanism of the trigger element 12 and the micro switch, the intermittent peeling and winding of the release layer 22 and the adhesive layer 21 can be achieved without the need for complex electronic sensors, ensuring that the winding length of the release layer 22 and the adhesive layer 21 remains consistent.
[0053] In this embodiment, the trigger 12 is rotatably mounted on the box body 1 via a rotating shaft, and an elastic element 13 is sleeved on the rotating shaft. The two ends of the elastic element 13 are respectively connected to the box body 1 and the rotating shaft.
[0054] Preferably, the device also includes an encoder 17 and a tension roller 18, the tension roller 18 being rotatably mounted on the box body 1 to tension the trapping tape 2, the encoder 17 being disposed on the box body 1 and located on the other side of the trapping tape 2 opposite to the tension roller 18, and the wheel of the encoder 17 being in contact with the trapping tape 2.
[0055] The housing body 1 is equipped with a controller, and the encoder 17, vision acquisition device 8, first drive mechanism 10, and second drive mechanism 11 are all electrically connected to the controller. Referring to the attached drawings, the encoder 17 is mounted on the housing body 1 and positioned between the fourth guide roller 16 and the unwind roller 3, on the opposite side of the trapping tape 2 relative to the tension roller 18, ensuring close contact between the encoder 17 wheel and the tape surface. As the tape moves during the release of the unwind roller 3 and the rewind of the take-up roller, the tension roller 18 ensures that the tape remains in contact with the encoder 17 wheel. The movement of the tape drives the encoder 17 wheel to rotate synchronously. The encoder 17 converts the number of rotations and rotation speed of the wheel into electrical signals, which are transmitted to the backend control system to calculate the release length of the tape, thereby precisely controlling the unwind length of each new trapping tape.
[0056] Of course, this utility model is not limited to the above-described embodiments. Those skilled in the art can make equivalent modifications or substitutions without departing from the spirit of this utility model. All such equivalent modifications and substitutions are included within the scope defined by the claims of this application.
Claims
1. A smart insect trapping, collection, and detection device, characterized in that, include: Box body(1); The trapping tape (2) includes an adhesive layer (21) and a release layer (22). The unwinding roller (3), the first winding roller (4), and the second winding roller (5) are rotatably mounted on the upper end of the box body (1). One end of the trapping tape (2) is wound around the unwinding roller (3), the adhesive layer (21) at the other end is wound around the first winding roller (4), and the release layer (22) at the other end is wound around the second winding roller (5).
2. The intelligent pest trapping, collection, and detection device according to claim 1, characterized in that, It also includes a plurality of first guide rollers (6), which form a polygon and are distributed at the corners of the polygon. The unwinding roller (3), the first winding roller (4), and the second winding roller (5) are distributed inside the polygon. The adhesive layer (21) at the other end of the trapping tape (2) is wound around the first winding roller (4) after passing through the plurality of first guide rollers (6).
3. The intelligent pest trapping, collection, and detection device according to claim 2, characterized in that, Multiple first guide rollers (6) are distributed at the corners of the upper end of the box body (1).
4. The intelligent pest trapping, collection, and detection device according to claim 2, characterized in that, It also includes two second guide rollers (7), which are rotatably mounted on the box body (1) and spaced apart on one side of the polygon. The adhesive layer (21) at the other end of the trapping tape (2) passes around one second guide roller (7), multiple first guide rollers (6) and the remaining second guide roller (7) in sequence and is then wound onto the first take-up roller (4).
5. The intelligent pest trapping, collection, and detection device according to any one of claims 1-4, characterized in that, It also includes a vision acquisition device (8) for acquiring an image of the adhesive layer (21).
6. The intelligent pest trapping, collection, and detection device according to claim 5, characterized in that, It also includes multiple first guide rollers (6) and two third guide rollers (9). The multiple first guide rollers (6) form a polygon, and the multiple first guide rollers (6) are distributed at the corners of the polygon. The unwinding roller (3), the first winding roller (4), and the second winding roller (5) are distributed inside the polygon. The two third guide rollers (9) are rotatably mounted on the box body (1) and distributed inside the polygon. The adhesive layer (21) at the other end of the trapping tape (2) is wound around the first winding roller (4) after passing through the multiple first guide rollers (6) and the two third guide rollers (9). The visual acquisition device (8) is mounted on the box body (1) and faces between the two third guide rollers (9). The visual acquisition device (8) is used to acquire an image of the adhesive layer (21) between the two third guide rollers (9).
7. The intelligent pest trapping, collection, and detection device according to any one of claims 1-4, characterized in that, It also includes a first drive mechanism (10) and a second drive mechanism (11). The first drive mechanism (10) is connected to the first take-up roller (4) and is used to drive the first take-up roller (4) to rotate. The second drive mechanism (11) is connected to the second take-up roller (5) and is used to drive the second take-up roller (5) to rotate.
8. The intelligent pest trapping, collection, and detection device according to claim 7, characterized in that, It also includes a trigger (12), an elastic element (13), a first micro switch (14), and a second micro switch (15). A rotatable fourth guide roller (16) is provided on the upper end of the housing body (1) between the unwinding roller (3) and the second winding roller (5). One end of the trigger (12) is rotatably mounted on the housing body (1) and connected to the housing body (1) through the elastic element (13). The other end of the trigger (12) is in contact with the release layer (22). The first micro switch (14) and the second micro switch (15) are respectively provided on both sides of the trigger (12). During winding, the first winding roller (4) and the second winding roller (5) rotate synchronously. The winding speed of the first winding roller (4) is greater than that of the second winding roller. At the winding speed, the peeling point between the release layer (22) and the adhesive layer (21) moves away from the unwinding roller (3), causing the trigger (12) to rotate under the action of the elastic member (13) to contact the fourth guide roller (16) and trigger the first micro switch (14), the first drive mechanism (10) stops, the second winding roller (5) continues to rotate and wind up the release layer (22), the peeling point between the release layer (22) and the adhesive layer (21) moves towards the unwinding roller (3), causing the other end of the trigger (12) to rotate away from the fourth guide roller (16) under the action of the release layer (22) and trigger the second micro switch (15), and the first drive mechanism (10) starts.
9. The intelligent pest trapping, collection, and detection device according to claim 7, characterized in that, It also includes an encoder (17) and a tension roller (18), the tension roller (18) being rotatably mounted on the box body (1) and tensioning the trapping tape (2), the encoder (17) being disposed on the box body (1) and located on the other side of the trapping tape (2) opposite to the tension roller (18), and the wheel of the encoder (17) being in contact with the trapping tape (2).