An observation device for termite control experiment

CN224654461UActive Publication Date: 2026-08-21JIANGSU XIES ECOLOGICAL TECH CO LTD
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Patent Information

Application Number
CN202522068750.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-26
Publication Date
2026-08-21
Estimated Expiration
2035-09-26

AI Technical Summary

Technical Problem

[0003]目前在使用实验观察装置时,缺少全景观察机构,通常观察装置通过摄像头对白蚁拍摄进行记录观察,现有观察摄像头多采用单一固定安装方式,存在观察死角,难以实现全方位监测,因此提出一种用于白蚁防治实验观察装置,以便于增加全景观察机构,利用环绕、全覆盖的方式,增加实验观察范围和面积,实现全景实验观察,从而提高使用效果

Benefits of technology

(1)本实用新型所述的一种用于白蚁防治实验观察装置,通过设置的底座、环形架、转动架、齿圈、传动齿轮、第一横杆、第二横杆、支撑柱和摄像头,增加全景观察机构,利用旋转、环绕、全覆盖的方式,增加实验观察的范围和面积,以便于实现全景观察,提高观察的便捷性和灵活性,同时还有利于提高实验观察的准确性。

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Abstract

The utility model relates to termite control technical field, specifically is a kind of for termite control experimental observation device, including base, rotating stand and observation component, the top of base is connected with annular frame by bolt, annular frame is equipped with rotating stand, the top of base is located in rotating stand and is provided with storage component, the inside of rotating stand is located at the periphery of storage component and is provided with observation component, the top of rotating stand is rotatably connected with adjusting component;The periphery of rotating stand is connected with gear ring by bolt, and annular frame is connected with gear ring by reserved slot, the periphery of gear ring in annular frame is equipped with transmission gear by bearing, and transmission gear is connected gear ring by meshing;The observation component includes first cross bar and second cross bar;By increasing panoramic observation mechanism, using around, full coverage mode, increase experimental observation range and area, realize panoramic experimental observation, to improve use effect.
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Description

Technical Field

[0001] This utility model relates to the field of termite control technology, specifically to an experimental observation device for termite control. Background Technology

[0002] Termite control is a systematic task that requires a combination of prevention, monitoring, and targeted treatment. Due to its high degree of concealment, rapid reproduction, and great destructive power, scientific and effective methods must be adopted. In termite control research, it is necessary to observe and analyze the behavioral habits of termites under different control methods and different environmental conditions.

[0003] Currently, experimental observation devices lack panoramic observation mechanisms. Typically, these devices record and observe termites by taking pictures with cameras. However, existing cameras are mostly fixed and have blind spots, making it difficult to achieve comprehensive monitoring. Therefore, this paper proposes an experimental observation device for termite control that incorporates a panoramic observation mechanism. By using a surround and full-coverage approach, the device can increase the experimental observation range and area, achieving panoramic experimental observation and thus improving the effectiveness of the device. Utility Model Content

[0004] To address the problems in the existing technology, this utility model provides an experimental observation device for termite control, which increases the experimental observation range and area, enables panoramic experimental observation, and thus improves the effectiveness of use.

[0005] The technical solution adopted by this utility model to solve its technical problem is a termite control experimental observation device, including a base, a rotating frame and an observation component. The top of the base is connected to a ring frame by bolts. The rotating frame is sleeved inside the ring frame. The top of the base is located inside the rotating frame and a storage component is arranged inside the rotating frame. The inner side of the rotating frame is located outside the storage component and an observation component is arranged outside the storage component. The top of the rotating frame is rotatably connected to an adjustment component. The outer periphery of the rotating frame is connected to a gear ring by bolts, and the ring frame is fitted with the gear ring through a reserved slot. Inside the ring frame, located on the outer periphery of the gear ring, a transmission gear is installed by bearings, and the transmission gear is connected to the gear ring through meshing. The observation assembly includes a first crossbar and a second crossbar, with the second crossbar fixedly connected to the rotating frame by bolts. The bottom of the first crossbar is connected to a support column by bolts. Cameras are installed on the surfaces of the ring frame, the first crossbar, the second crossbar, and the support column.

[0006] By adopting the above technical solutions, the scope and area of ​​experimental observation can be increased by using rotation, surround, and full coverage methods.

[0007] Specifically, the adjustment component includes a flow guide box, one end of which is connected to a rotating frame via a damping shaft. A fan is bolted to the top of the flow guide box, and the fan's outlet is located inside the flow guide box.

[0008] Specifically, a servo motor is bolted to the top of the transmission gear inside the ring frame, and the servo motor is connected to the transmission gear through a drive shaft. An annular slide is provided on the inner side of the ring frame, and a protrusion is bolted to the outer surface of the rotating frame, and the protrusion is slidably connected to the annular slide.

[0009] Specifically, an electric heating element is bolted inside the flow guide box, and a perforated plate is bolted to the bottom of the electric heating element inside the flow guide box.

[0010] Specifically, the storage component includes an annular groove, within which a sector-shaped box is disposed, and each sector-shaped box is provided with a cover plate on its top.

[0011] Specifically, the top of the base is bolted to a support frame, the top of the rotating frame is provided with a T-slot, one end of the first crossbar is bolted to a T-shaped locking block corresponding to the T-slot, and the surface inside the rotating frame is provided with an LED light strip.

[0012] The beneficial effects of this utility model are: (1) The experimental observation device for termite control described in this utility model adds a panoramic observation mechanism by setting a base, a ring frame, a rotating frame, a gear ring, a transmission gear, a first crossbar, a second crossbar, a support column and a camera. By using rotation, surround and full coverage, the range and area of ​​experimental observation are increased so as to realize panoramic observation, improve the convenience and flexibility of observation, and at the same time help to improve the accuracy of experimental observation.

[0013] (2) The termite control experimental observation device described in this utility model can increase the auxiliary temperature regulation mechanism by setting the flow box, fan, electric heating tube and perforated plate. It can adjust the experimental environment temperature of termites by means of air supply, flow guidance and heating, so as to simulate the real environment according to the experimental needs and improve the accuracy of experimental observation data. Attached Figure Description

[0014] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a cross-sectional structural diagram of the present invention; Figure 3 This is a cross-sectional view of the ring frame and rotating frame of this utility model; Figure 4 This is a cross-sectional view of the adjustment component of this utility model; Figure 5 This is a schematic cross-sectional view of the first crossbar of this utility model; Figure 6 This is a top view of the storage component of this utility model; In the diagram: 1. Base; 101. Support frame; 2. Ring frame; 201. Transmission gear; 202. Servo motor; 203. Annular slide rail; 3. Rotating frame; 301. Gear ring; 302. Protrusion; 303. T-slot; 304. LED light strip; 4. Storage component; 401. Annular slot; 402. Sector-shaped box; 403. Cover plate; 5. Observation component; 501. First crossbar; 502. Second crossbar; 503. Support column; 504. T-shaped locking block; 6. Adjustment component; 601. Flow guide box; 602. Fan; 603. Heating element; 604. Orifice plate; 7. Camera. Detailed Implementation

[0016] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0017] To facilitate expanding the experimental observation range and area, achieving panoramic experimental observation, and thus improving the usability, such as... Figure 1-5 As shown, the present invention provides an experimental observation device for termite control, comprising a base 1, a rotating frame 3, and an observation component 5. The top of the base 1 is bolted to a ring frame 2, and the rotating frame 3 is fitted inside the ring frame 2. The top of the base 1 is located inside the rotating frame 3 and a storage component 4 is arranged inside the rotating frame 3. The observation component 5 is arranged on the inner side of the rotating frame 3 outside the storage component 4. The top of the rotating frame 3 is rotatably connected to an adjustment component 6. The outer periphery of the rotating frame 3 is connected to the gear ring 301 by bolts, and the annular frame 2 is fitted with the gear ring 301 through a reserved slot. The annular frame 2 is equipped with a transmission gear 201 through a bearing on the outer periphery of the gear ring 301, and the transmission gear 201 is connected to the gear ring 301 through meshing. The observation component 5 includes a first crossbar 501 and a second crossbar 502, and the second crossbar 502 is fixedly connected to the rotating frame 3 by bolts. The bottom of the first crossbar 501 is connected to a support column 503 by bolts. Cameras 7 are provided on the surfaces of the ring frame 2, the first crossbar 501, the second crossbar 502 and the support column 503.

[0018] In use, a panoramic observation mechanism is added through the base 1, the ring frame 2, the transmission gear 201, the rotating frame 3, the gear ring 301, the first crossbar 501, the second crossbar 502, the support column 503 and the camera 7. By using rotation, surround and full coverage, the range and area of ​​experimental observation are increased to achieve panoramic experimental observation.

[0019] Camera 7 is electrically connected to an external display via wires.

[0020] To improve the accuracy of observation, for example, such as Figure 1 , Figure 4 As shown, the present invention also includes the adjustment component 6, which includes a flow guide box 601, and one end of the flow guide box 601 is connected to the rotating frame 3 through a damping shaft. The top of the flow guide box 601 is connected to a fan 602 by bolts, and the air outlet of the fan 602 is located inside the flow guide box 601.

[0021] When in use, the air guide box 601 and the fan 602 facilitate the adjustment of the termite observation environment according to the actual experimental needs by using air supply.

[0022] For example, such as Figure 3 As shown, the present invention also includes a servo motor 202 bolted to the top of the transmission gear 201 inside the annular frame 2, and the servo motor 202 is connected to the transmission gear 201 via a drive shaft. An annular slide 203 is provided on the inner side of the annular frame 2, and a protrusion 302 is bolted to the outer surface of the rotating frame 3, and the protrusion 302 is slidably connected to the annular slide 203.

[0023] In use, the servo motor 202 facilitates the rotation of the transmission gear 201, and the annular slide 203 and the protrusion 302 can improve the stability of the rotating frame 3 by means of limit guidance.

[0024] For example, such as Figure 4 As shown, the present invention also includes an electric heating tube 603 bolted inside the flow guide box 601, and a perforated plate 604 bolted to the bottom of the electric heating tube 603 inside the flow guide box 601.

[0025] In use, the heating element 603 and the orifice plate 604 facilitate the heating of the air supply, thereby improving the control effect of the experimental environment. The heating element 603 includes a temperature controller.

[0026] For example, such as Figure 6 As shown, the present invention also includes the storage component 4, which includes an annular groove 401, a sector-shaped box 402 disposed in the annular groove 401, and a cover plate 403 disposed on the top of each sector-shaped box 402.

[0027] In use, the annular groove 401, the fan-shaped box 402 and the cover plate 403 facilitate the grouping of termites for experimental observation. The surface of the cover plate 403 is provided with ventilation holes. The annular groove 401, the fan-shaped box 402 and the cover plate 403 are all made of acrylic material.

[0028] For example, such as Figure 3 As shown, the present invention also includes a support frame 101 bolted to the top of the base 1, a T-shaped groove 303 formed in the top of the rotating frame 3, a T-shaped locking block 504 corresponding to the T-shaped groove 303 bolted to one end of the first crossbar 501, and an LED light strip 304 provided on the inner surface of the rotating frame 3.

[0029] In use, the support frame 101 facilitates the placement of the storage component 4 for observation. The T-slot 303 and T-block 504 facilitate the installation of the first crossbar 501 for experimental observation of the top. The LED light strip 304 provides supplementary lighting for the storage component 4, improving the ease of observation. The base 1 includes a controller and a temperature and humidity sensor. The temperature and humidity sensor, servo motor 202, LED light strip 304, fan 602, temperature controller, and heating element 603 are all electrically connected to the controller via wires.

[0030] In use, the operator first places multiple groups of termites into the corresponding sector-shaped boxes 402, then places the sector-shaped boxes 402 into the annular groove 401 and assembles them into a ring. Next, the T-shaped locking block 504 of the first crossbar 501 is inserted into the corresponding T-shaped groove 303, so that the support column 503 enters the circular hole formed by the splicing of the sector-shaped boxes 402. During the experimental observation, according to the observation position requirements, the servo motor 202 can be turned on to drive the transmission gear 201 to rotate. The gear meshing connection drives the gear ring 301 and the rotating frame 3 to rotate relative to each other, so that the observation position of the camera 7 on the rotating frame 3, the first crossbar 501, the second crossbar 502 and the support column 503 can be adjusted to adapt to different observation position requirements. At the same time, a full-coverage observation mechanism can be formed around the storage component 4, which greatly increases the experimental observation range and area, and makes it more flexible and convenient to use. Furthermore, according to actual experimental needs, the fan 602 and heating element 603 can be turned on to send air into the fan-shaped box 402 through the guide box 601 and the orifice plate 604. By sending air and heating, a more realistic experimental environment can be simulated, improving the flexibility and functionality of the device.

[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. An experimental observation device for termite control, characterized in that, The device includes a base (1), a rotating frame (3), and an observation component (5). The top of the base (1) is connected to a ring frame (2) by bolts. The rotating frame (3) is fitted inside the ring frame (2). The top of the base (1) is located inside the rotating frame (3) and a storage component (4) is provided. The inner side of the rotating frame (3) is located outside the storage component (4) and an observation component (5) is provided. The top of the rotating frame (3) is rotatably connected to an adjustment component (6). The outer periphery of the rotating frame (3) is connected to a gear ring (301) by bolts, and the ring frame (2) is fitted with the gear ring (301) through a reserved slot. The ring frame (2) is located on the outer periphery of the gear ring (301) and a transmission gear (201) is installed through a bearing. The transmission gear (201) is connected to the gear ring (301) through meshing. The observation component (5) includes a first crossbar (501) and a second crossbar (502), and the second crossbar (502) is fixedly connected to the rotating frame (3) by bolts. The bottom of the first crossbar (501) is connected to a support column (503) by bolts. Cameras (7) are provided on the surfaces of the ring frame (2), the first crossbar (501), the second crossbar (502) and the support column (503).

2. The experimental observation device for termite control according to claim 1, characterized in that, The adjustment component (6) includes a flow guide box (601), and one end of the flow guide box (601) is connected to the rotating frame (3) through a damping shaft. A fan (602) is bolted to the top of the flow guide box (601), and the air outlet of the fan (602) is located inside the flow guide box (601).

3. The experimental observation device for termite control according to claim 1, characterized in that, The servo motor (202) is bolted to the top of the transmission gear (201) inside the ring frame (2), and the servo motor (202) is connected to the transmission gear (201) through a drive shaft. The inner side of the ring frame (2) is provided with an annular slide (203). The outer surface of the rotating frame (3) is bolted to a protrusion (302), and the protrusion (302) is slidably connected to the annular slide (203).

4. The experimental observation device for termite control according to claim 2, characterized in that, The flow guide box (601) is connected to the heating tube (603) by bolts, and the flow guide box (601) is located at the bottom of the heating tube (603) and is fixedly connected to the perforated plate (604) by bolts.

5. The experimental observation device for termite control according to claim 1, characterized in that, The storage component (4) includes an annular groove (401), a sector box (402) is provided in the annular groove (401), and a cover plate (403) is provided on the top of each sector box (402).

6. The experimental observation device for termite control according to claim 1, characterized in that, The top of the base (1) is connected to a support frame (101) by bolts. The top of the rotating frame (3) is provided with a T-shaped groove (303). One end of the first crossbar (501) is connected to a T-shaped block (504) corresponding to the T-shaped groove (303) by bolts. The surface inside the rotating frame (3) is provided with an LED light strip (304).