Pesticide spraying device for rice planting
By combining the flight path kit and the spraying mechanism, automatic flight spraying of pesticides has been achieved, solving the problems of health damage and low efficiency caused by the need for manual operation of existing devices, and improving the safety and efficiency of use.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2026-04-07
AI Technical Summary
Existing pesticide spraying devices require manual operation by users, which can lead to health damage and are inefficient.
The system employs a path flight kit that combines an arm, a brushless motor, and rotor blades to achieve automatic aerial spraying of pesticides via wireless control components. It includes a spraying mechanism consisting of a lifting plate, a pesticide tank, a refueling port, a base pipe, a connecting valve block, a drive pump, connecting pipes, and atomizing nozzles.
It enables automated aerial spraying of pesticides, improving efficiency and reducing harm to users' health.
Smart Images

Figure CN224084518U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of rice planting technology, and in particular to a pesticide spraying device for rice planting. Background Technology
[0002] Pesticide spraying refers to a method of spraying pesticides to achieve the purpose of killing insects, fungi, and weeds. Although pesticide spraying is an effective method of killing insects, fungi, and weeds, it needs to be used with caution. When using it, safe operating procedures and environmental protection requirements should always be followed, and pesticides should be used rationally to ensure agricultural development and environmental protection.
[0003] Existing pesticide spraying devices, such as the one disclosed in application number CN202011147334.3 for rice cultivation, include a fixed base, a liquid-drawing spraying assembly, a pesticide tank, a fixing component, a fixing clip, and a directional spraying device. The fixed base is located on the side wall of the pesticide tank, the directional spraying device is located on the side wall of the pesticide tank, the fixing component is located on the lower wall of the directional spraying device, the liquid-drawing spraying assembly is located on the fixed base, and the fixing clip is located on the liquid-drawing spraying assembly, with the fixing clip being snapped onto the fixing component. However, in the above-mentioned technology, users still need to operate it themselves, which can cause harm to the user's health during use, and the efficiency is poor. Therefore, this utility model proposes a pesticide spraying device for rice cultivation to solve the problems existing in the prior art. Utility Model Content
[0004] To address the aforementioned problems, this utility model proposes a pesticide spraying device for rice cultivation. This pesticide spraying device for rice cultivation mainly utilizes a path flight kit. After pre-operation by the user, the arm, brushless motor, and rotor blades fly and operate in conjunction with the landing gear, effectively achieving the effect of path flight. This allows the device to effectively spray pesticides, thereby improving the efficiency of the equipment and reducing harm to health.
[0005] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: a pesticide spraying device for rice planting, including a path flight kit and a spraying mechanism, wherein a wired control component connected by bolts is provided at the top of the path flight kit, and a spraying mechanism connected by bolts is provided on the inner bottom side of the path flight kit;
[0006] The spraying mechanism includes a lifting plate, a reagent tank, a refueling port, a bottom pipe, a connecting valve block, a drive pump body, a connecting pipe, a connecting rod, and atomizing nozzles. The lifting plate is located on the inner bottom side of the flight path kit. The reagent tank is located below the lifting plate, and a refueling port is located on one side above the reagent tank. The output end of the reagent tank is connected to the connecting valve block through the bottom pipe. The output end of the connecting valve block is connected to the drive pump body, and the output end of the drive pump body is connected to the connecting pipe. The output end of the connecting pipe passes through the connecting rod and is connected to the atomizing nozzles.
[0007] In a preferred embodiment of this utility model, the atomizing nozzle and the connecting rod are symmetrically distributed around the central axis of the connecting valve block, and the atomizing nozzle is parallel to the central axis of the connecting rod.
[0008] In a preferred embodiment of the present invention, the path flight kit includes landing gear, base plate, frame, arm, brushless motor and rotor blades. The base plate is provided on the inner side of the lower part of the landing gear, and the frame is bolted on the upper part of the landing gear.
[0009] In a preferred embodiment of the present invention, the frame is provided with bolted arms around its perimeter, and a brushless motor is provided above one end of the arm, with rotor blades provided at the output end of the brushless motor.
[0010] In a preferred embodiment of this utility model, the wired control component includes a top plate, a control box, a camera, a protruding plate, a cable compartment, an inner insert plate, a cable frame, an optical fiber, and a connector. The top plate is bolted to the top of the frame. The control box is located above one end of the top plate, and a camera is located on the side of the control box. A protruding plate is located at one end of the control box, and a cable compartment is located on the opposite side of the protruding plate.
[0011] In a preferred embodiment of the present invention, the interior of the cable compartment is provided with an inner insert shaft plate, and the inner side of the inner insert shaft plate is provided with a cable frame, the outer side of the cable frame is provided with a wound optical fiber, and one end of the optical fiber is provided with a connector.
[0012] The beneficial effects of this utility model are as follows:
[0013] This invention mainly utilizes a path flight kit. After the user performs pre-operation, the arm, brushless motor, and rotor blades, in conjunction with the landing gear, can effectively achieve the effect of path flight, enabling the equipment to effectively spray, thereby improving the efficiency of the equipment and reducing harm to health. Attached Figure Description
[0014] Figure 1This is a three-dimensional structural diagram of the present invention;
[0015] Figure 2 This is a side view of the three-dimensional structure of the present invention;
[0016] Figure 3 This is a schematic diagram of the wired control component of this utility model;
[0017] Figure 4 This is a three-dimensional structural diagram of the spraying mechanism of this utility model.
[0018] The components include: 1. Flight path kit; 101. Landing gear; 102. Base plate; 103. Frame; 104. Arm; 105. Brushless motor; 106. Rotor blades; 2. Wired control components; 201. Top plate; 202. Control cabinet; 203. Camera; 204. Protruding plate; 205. Cable compartment; 206. Inner insert shaft plate; 207. Cable frame; 208. Fiber optic cable; 209. Connector; 3. Spraying mechanism; 301. Lifting plate; 302. Chemical tank; 303. Supply port; 304. Bottom pipe; 305. Connecting valve block; 306. Drive pump body; 307. Connecting pipe; 308. Connecting rod; 309. Atomizing nozzle. Detailed Implementation
[0019] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.
[0020] according to Figures 1-4 As shown, this embodiment proposes a pesticide spraying device for rice cultivation, including a path flight kit 1 and a spraying mechanism 3. The top of the path flight kit 1 is provided with a wired control component 2 connected by bolts, and the inner bottom side of the path flight kit 1 is provided with a spraying mechanism 3 connected by bolts.
[0021] The spraying mechanism 3 includes a lifting plate 301, a chemical tank 302, a refill port 303, a bottom pipe 304, a connecting valve block 305, a drive pump body 306, a connecting pipe 307, a connecting rod 308, and an atomizing nozzle 309. The lifting plate 301 is located on the inner bottom side of the path flight kit 1. The chemical tank 302 is located below the lifting plate 301. The refill port 303 is located on one side above the chemical tank 302. The output end of the chemical tank 302 is connected to the connecting valve block 305 through the bottom pipe 304. The output end of the connecting valve block 305 is connected to the drive pump body 306, and the output end of the drive pump body 306 is connected to the connecting pipe 307. The output end of the connecting pipe 307 passes through the connecting rod 308 and is connected to the atomizing nozzle 309.
[0022] The atomizing nozzle 309 and the connecting rod 308 are symmetrically distributed about the central axis of the connecting valve block 305, and the atomizing nozzle 309 is parallel to the central axis of the connecting rod 308.
[0023] In this embodiment, during flight, the agent in the agent tank 302 is input into the socket valve block 305 through the bottom pipe 304, and the drive pump body 306 outputs power to drive the output end to run, so that the material output from the connecting pipe 307 is sprayed through the atomizing nozzle 309 below the socket rod 308 to achieve the spraying effect.
[0024] The path flight kit 1 includes a landing gear 101, a base plate 102, a frame 103, an arm 104, a brushless motor 105, and a rotor blade 106. The base plate 102 is located on the inner side of the lower part of the landing gear 101, and the frame 103 is bolted to the upper part of the landing gear 101.
[0025] In this embodiment, during use, the frame 103 is connected to the upper part of the landing gear 101 by bolts, and the equipment is placed on the ground of the farm through the landing gear 101 and the base plate 102.
[0026] The frame 103 is surrounded by bolted arms 104, and a brushless motor 105 is mounted on one end of the arm 104. The output end of the brushless motor 105 is equipped with rotor blades 106.
[0027] In this embodiment, when path flight is required, the wired control unit 2 outputs commands, and the brushless motor 105 above one end of the arm 104 outputs power to drive the output end to run, so that the rotor blades 106 rotate and the device plans the flight path.
[0028] The wired control component 2 includes a top plate 201, a control box 202, a camera 203, a protruding plate 204, a cable compartment 205, an inner insert plate 206, a cable frame 207, an optical fiber 208, and a connector 209. The top plate 201 is bolted to the top of the frame 103. The control box 202 is located above one end of the top plate 201, and the camera 203 is located on the side of the control box 202. The protruding plate 204 is located at one end of the control box 202, and the cable compartment 205 is located on the opposite side of the protruding plate 204.
[0029] In this embodiment, during the control process between the optical fiber 208 and the user, the control chassis 202 is used to effectively transmit control commands, and the cameras 203 at both ends of the control chassis 202 are used to effectively observe the surrounding environment.
[0030] The cable compartment 205 has an inner insert shaft plate 206 inside, and a cable frame 207 is provided on the inner side of the inner insert shaft plate 206. An optical fiber 208 is provided on the outer side of the cable frame 207, and a connector 209 is provided at one end of the optical fiber 208.
[0031] In this embodiment, one end of the optical fiber 208 is then connected to the user's controller using a connector 209. Since the fiber optic cable 207 is wound around the optical fiber 208, the connector 209 at one end of the optical fiber 208 can be extended.
[0032] The working principle of this pesticide spraying device for rice cultivation is as follows: During use, the frame 103 is connected to the upper part of the landing gear 101 via bolts. The device is then placed on the ground of the farm via the landing gear 101 and the base plate 102. One end of the optical fiber 208 is connected to the user's controller using a connector 209. Because the fiber optic cable 208 is wound around the cable tray 207, the connector 209 at one end of the fiber optic cable 208 can be extended. During the control process between the optical fiber 208 and the user, the control box 202 effectively transmits control commands, and coordinates with the two ends of the control box 202... The camera 203 effectively observes the surrounding environment. When path flight is required, the wired control unit 2 outputs commands, causing the brushless motor 105 above one end of the arm 104 to output power and drive the output end to run. This causes the rotor blades 106 to rotate, enabling the equipment to plan its flight path. During flight, the agent in the agent tank 302 is input into the socket valve block 305 through the bottom pipe 304, and the drive pump 306 outputs power to drive the output end to run. The material output from the connecting pipe 307 is sprayed through the atomizing nozzle 309 below the socket rod 308 to achieve a spraying effect.
[0033] 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 embodiments and descriptions in the specification 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 the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A pesticide spraying device for rice cultivation, comprising a path-flying kit (1) and a spraying mechanism (3), characterized in that: The top of the path flight kit (1) is provided with a wired control component (2) connected by bolts, and the inner bottom side of the path flight kit (1) is provided with a spraying mechanism (3) connected by bolts. The path flight kit (1) includes a landing gear (101), a base plate (102), a frame (103), an arm (104), a brushless motor (105), and a rotor blade (106). The base plate (102) is provided on the inner side of the lower part of the landing gear (101). The frame (103) is bolted on the upper part of the landing gear (101). The arm (104) is bolted around the frame (103). The brushless motor (105) is provided on the upper part of one end of the arm (104). The rotor blade (106) is provided at the output end of the brushless motor (105). The spraying mechanism (3) includes a lifting plate (301), a reagent tank (302), a refueling port (303), a bottom pipe (304), a connecting valve block (305), a drive pump body (306), a connecting pipe (307), a connecting rod (308), and an atomizing nozzle (309). The lifting plate (301) is located on the inner bottom side of the path flight kit (1), and the reagent tank (302) is located below the lifting plate (301). A supply port (303) is provided on one side above the (302). The output end of the medicine tank (302) is connected to a connecting valve block (305) through a bottom pipe (304). The output end of the connecting valve block (305) is provided with a drive pump body (306), and the output end of the drive pump body (306) is provided with a connecting pipe (307). The output end of the connecting pipe (307) passes through the connecting rod (308) and is connected to an atomizing nozzle (309).
2. The pesticide spraying device for rice cultivation according to claim 1, characterized in that: The atomizing nozzle (309) and the connecting rod (308) are symmetrically distributed about the central axis of the connecting valve block (305), and the atomizing nozzle (309) is parallel to the central axis of the connecting rod (308).
3. The pesticide spraying device for rice cultivation according to claim 1, characterized in that: The wired control component (2) includes a top plate (201), a control box (202), a camera (203), a protruding plate (204), a cable compartment (205), an inner insert plate (206), a cable frame (207), an optical fiber (208), and a connector (209). The top plate (201) is bolted to the top of the frame (103). The control box (202) is located above one end of the top plate (201), and the camera (203) is located on the side of the control box (202). The protruding plate (204) is located at one end of the control box (202), and the cable compartment (205) is located on the opposite side of the protruding plate (204).
4. A pesticide spraying device for rice cultivation according to claim 3, characterized in that: The cable compartment (205) is provided with an inner insert shaft plate (206), and a cable frame (207) is provided on the inner side of the inner insert shaft plate (206). A wound optical fiber (208) is provided on the outer side of the cable frame (207), and a connector (209) is provided at one end of the optical fiber (208).
Citation Information
Patent Citations
Pesticide spraying device for rice planting
CN112400835A