Irrigation device for rice planting
By introducing the end frame and flow tank into the irrigation device, combined with the water separation tank and the irrigation nozzle, adaptability adjustment is achieved according to the rice field terrain, solving the problems of terrain applicability and output efficiency, improving irrigation efficiency and reducing the harm to rice.
Patent Information
- Application Number
- CN202422698571.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-11-06
AI Technical Summary
The existing irrigation devices have poor applicability to the topography and are too fast to output, which can easily cause harm to rice.
The design of end frame and flow tank is adopted, combined with the water separation tank and irrigation nozzle, and the slow output is achieved through a rotating output mechanism to adapt to the irrigation needs of different terrains.
The adaptive setting according to the rice field terrain is achieved, and efficient and slow output is adapted to irrigation needs is achieved, which improves irrigation efficiency and reduces the harm to rice.
Smart Images

Figure CN223298230U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of rice planting, in particular to an irrigation device for rice planting. Background Art
[0002] Field irrigation is not only the final link to improve the utilization rate of irrigation water, but also the basis for water diversion, water transmission and water distribution. Improving field irrigation technology is the focus of agricultural water conservation. Water management technology mainly adopts dry-wet alternating irrigation technology of rice fields, gridding of rice irrigation areas and shallow wet controlled irrigation technology of rice; rice field soaking and tillage combination technology; development of rice "three droughts" tillage and dry-rearing sparse planting and seedling broadcasting technology; elimination of long-term rice flooding technology; elimination of rice field cross-irrigation and cross-drainage technology; active research on suitable water layer standards for rice fields, soil moisture control indicators, field drying technology and corresponding irrigation systems, which saves water resources and increases rice yields.
[0003] When using existing irrigation devices, such as application number CN201711093320.6, which discloses an agricultural irrigation device for rice planting, the device comprises an irrigation device body, a base is provided below the irrigation device body, and a fixed plug rod is provided at the bottom of the base, a water connection pipe is provided on one side below the irrigation device body, and irrigation connecting pipes are provided on both sides above the irrigation device body, and sealing covers are provided at both ends of the irrigation connecting pipes. A fixed clamping plate is provided inside the irrigation device body, and an opening and closing valve is clamped inside the fixed clamping plate. However, the above technology has poor applicability to the terrain of irrigation, and its output efficiency is too fast, which is also likely to cause certain harm to rice. Therefore, the utility model proposes an irrigation device for rice planting to solve the problems existing in the prior art. Utility Model Content
[0004] In response to the above problems, the utility model proposes an irrigation device for rice planting. The irrigation device for rice planting mainly utilizes the end frame for timely lifting, so that under the action of the side frame and the flow trough, it is adaptively set according to the different terrain of the rice field, and the product is output through the water distribution chamber and the irrigation nozzle. Since the impulse energy transfer mechanism is a rotational output, it can achieve the effect of slow output, thereby achieving efficiency adapted to irrigation needs.
[0005] To achieve the purpose of the utility model, the utility model is implemented through the following technical solutions: an irrigation device for rice planting, comprising a positioning pumping assembly and a water diversion component, wherein bolt-connected impulse energy transfer mechanisms are provided above both ends of the positioning pumping assembly, and a fixed plug-in water diversion component is provided on one side of the impulse energy transfer mechanism;
[0006] The water diversion component includes a side frame, a flow trough, a water diversion chamber, a support base and an irrigation nozzle. The side frame is arranged on one side of the impulse energy transfer mechanism, and a flow trough is arranged above one end of the side frame. The output end of the flow trough is provided with a water diversion chamber, and the bottom end of the water diversion chamber is provided with a support base. The output end of the water diversion chamber is provided with an irrigation nozzle installed in a socket.
[0007] As a preferred embodiment of the present invention, the irrigation nozzles are distributed in a ring shape around the central axis of the water diversion chamber, and the flow trough is in an inclined flow trough structure.
[0008] As a preferred embodiment of the present utility model, the positioning and pumping assembly includes a pad base plate, a long-rod screw, a duct frame, a water trough, a connecting pipe, a sieve hole, a water diversion valve block, a pumping pump body and a water inlet. A long-rod screw assembled with bolts is provided below the side of the pad base plate, a duct frame is provided above the middle of the pad base plate, and a water trough is provided on the top side of the duct frame.
[0009] As a preferred embodiment of the present invention, a sleeve-mounted connecting pipe is provided on the inner side of the culvert frame, and a sieve hole is provided at one end of the connecting pipe, a water diversion valve block is provided at the output end of the connecting pipe, and a water pump body is provided at the output end of the water diversion valve block, and a water delivery port is provided at the output end of the water pump body.
[0010] As a preferred embodiment of the present invention, the impulse energy transfer mechanism includes an end frame, a top frame, a top plate, a photovoltaic power generation panel, a reduction motor, a wheel disc, a movable shaft and a wheel barrel. The end frame is arranged above the side of the pad base plate, the top of the end frame is provided with a top frame, and the top of the top frame is provided with a top plate, and the top side of the top plate is provided with a photovoltaic power generation panel.
[0011] As a preferred embodiment of the present invention, a reduction motor is provided on the outer side of the end frame, and a wheel disc is provided on the output end of the reduction motor, a movable shaft is provided on the inner side of the wheel disc, and a wheel barrel is provided on the inner side of the movable shaft.
[0012] The beneficial effects of the utility model are:
[0013] The utility model mainly utilizes the end frame to lift at the right time, so that under the action of the side frame and the flow trough, it can be adaptively set according to the different terrain of the rice field, and the product can be output through the water distribution chamber and the irrigation nozzle. Since the impulse energy transfer mechanism is a rotational output, it can achieve the effect of slow output, thereby achieving efficiency adapted to irrigation needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0015] Figure 2 This is a bottom-up three-dimensional structural diagram of the present invention;
[0016] Figure 3 This is a schematic diagram of the three-dimensional structure of the positioning and pumping assembly of the utility model;
[0017] Figure 4 This is a schematic diagram of the three-dimensional structure of the energy transfer mechanism of the utility model;
[0018] Figure 5 It is a schematic diagram of the three-dimensional structure of the water distribution component of the present utility model.
[0019] Among them: 1. Positioning pumping assembly; 101. Pad base plate; 102. Long rod screw; 103. duct frame; 104. Water tank; 105. Connecting pipe; 106. Sieve hole; 107. Water distribution valve block; 108. Pumping pump body; 109. Water inlet; 2. Energy transfer mechanism; 201. End frame; 202. Top frame; 203. Top plate; 204. Photovoltaic panel; 205. Reducer motor; 206. Disc; 207. Movable shaft; 208. Drum; 3. Water distribution components; 301. Side frame; 302. Flow trough; 303. Water distribution cabin; 304. Support base; 305. Irrigation nozzle. DETAILED DESCRIPTION
[0020] In order to deepen the understanding of the present invention, the present invention will be further described in detail below in conjunction with embodiments. The embodiments are only used to explain the present invention and do not constitute a limitation on the scope of protection of the present invention.
[0021] according to Figure 1-5 As shown, this embodiment provides an irrigation device for rice planting, comprising a positioning pumping assembly 1 and a water diversion component 3. Bolt-connected impulse energy transfer mechanisms 2 are provided above both ends of the positioning pumping assembly 1, and a fixedly plugged water diversion component 3 is provided on one side of the impulse energy transfer mechanism 2.
[0022] The water diversion component 3 includes a side frame 301, a flow trough 302, a water diversion chamber 303, a support base 304 and an irrigation nozzle 305. The side frame 301 is arranged on one side of the impulse energy transfer mechanism 2, and the flow trough 302 is arranged above one end of the side frame 301, the output end of the flow trough 302 is provided with a water diversion chamber 303, and the bottom end of the water diversion chamber 303 is provided with a support base 304, and the output end of the water diversion chamber 303 is provided with a socketed irrigation nozzle 305.
[0023] The irrigation nozzles 305 are distributed in a ring shape around the central axis of the water diversion chamber 303, and the flow groove 302 is in an inclined flow groove structure.
[0024] In this embodiment, after the movable shaft 207 and the wheel drum 208 take in water, the water is input into the flow trough 302 above one end of the side frame 301, and the flow trough 302 flows the water into the water diversion tank 303, and finally the water is injected into the corresponding paddy field through the irrigation nozzle 305 at the output end of the water diversion tank 303 to achieve the irrigation effect.
[0025] The positioning and pumping assembly 1 includes a pad base plate 101, a long-rod screw 102, a duct frame 103, a water trough 104, a connecting pipe 105, a sieve hole 106, a water diversion valve block 107, a pumping pump body 108 and a water inlet 109. The long-rod screw 102 assembled with bolts is provided at the lower side of the pad base plate 101, the duct frame 103 is provided above the middle part of the pad base plate 101, and the water trough 104 is provided on the top side of the duct frame 103.
[0026] In this embodiment, when in use, the pad base plate 101 is matched with the long rod screw 102 according to the use position of the equipment to place the equipment in the best working water collection position, so that the pad base plate 101 is matched with the duct frame 103, the water tank 104 and various components for installation.
[0027] A sleeve-mounted connecting pipe 105 is provided on the inner side of the culvert frame 103, and a sieve hole 106 is provided at one end of the connecting pipe 105. A water diversion valve block 107 is provided at the output end of the connecting pipe 105, and a water pump body 108 is provided at the output end of the water diversion valve block 107. A water delivery port 109 is provided at the output end of the water pump body 108.
[0028] In this embodiment, after the impulse energy transfer mechanism 2 is charged, the connecting pipe 105 is placed at the water collection location in conjunction with the sieve hole 106, and the water diversion valve block 107 is opened, and the water pump body 108 outputs power to drive the output end to operate so that the water body is finally input into the water tank 104 through the water inlet 109 for temporary storage.
[0029] The impulse energy transfer mechanism 2 includes an end frame 201, a top frame 202, a top plate 203, a photovoltaic power generation panel 204, a reduction motor 205, a wheel disc 206, a movable shaft 207 and a wheel barrel 208. The end frame 201 is arranged above the side of the pad base plate 101, and the top of the end frame 201 is provided with a top frame 202, and the top of the top frame 202 is provided with a top plate 203, and the top side of the top plate 203 is provided with a photovoltaic power generation panel 204.
[0030] In this embodiment, when the device is in use, the end frame 201 and the top frame 202 cooperate with each other to enable the photovoltaic panel 204 on the top of the top plate 203 to achieve the effect of photovoltaic charging for the device.
[0031] A reduction motor 205 is provided on the outer side of the end frame 201 , and a wheel plate 206 is provided on the output end of the reduction motor 205 , a movable shaft bar 207 is provided on the inner side of the wheel plate 206 , and a wheel barrel 208 is provided on the inner side of the movable shaft bar 207 .
[0032] In this embodiment, the output power of the reduction motor 205 output end is then used to drive the output end to operate, so that after the output end of the reduction motor 205 operates, it drives the wheel disc 206 to run at a slow speed, so that the wheel disc 206 drives the movable shaft 207 and the wheel drum 208 to take water from the water tank 104.
[0033] The working principle of the irrigation device for rice planting is: when in use, the pad base plate 101 is matched with the long rod screw 102 according to the use position of the equipment to make the equipment be in the best working water collection position, so that the pad base plate 101 is matched with the duct frame 103, the water tank 104 and each component are installed. When the equipment is in use, the end frame 201 and the top frame 202 are used to cooperate with each other so that the photovoltaic power generation panel 204 on the top of the top plate 203 can achieve the photovoltaic charging effect for the equipment. After the energy transfer mechanism 2 is charged, the connecting pipe 105 is matched with the sieve hole 106 to be placed at the water collection location, and the water diversion valve block 107 is opened, and the water pump body 108 outputs power to drive the output. The output end operates so that the water is finally input into the water tank 104 through the water inlet 109 for temporary storage, and then the output end of the reduction motor 205 is used to output power to drive the output end to operate, so that after the output end of the reduction motor 205 operates, it drives the wheel disc 206 to run slowly, so that the wheel disc 206 drives the movable shaft 207 and the wheel drum 208 to take the water from the water tank 104. After the movable shaft 207 and the wheel drum 208 take the water, the water is input into the flow groove 302 above one end of the side frame 301, and the flow groove 302 flows the water into the water diversion tank 303, and finally the water is injected into the corresponding paddy field through the irrigation nozzle 305 at the output end of the water diversion tank 303 to achieve the irrigation effect.
[0034] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.
Claims
1. An irrigation device for rice planting, comprising a positioning pumping component (1) and a water distribution component (3), characterized in that: Bolt-connected impulse energy transfer mechanisms (2) are provided above both ends of the positioning pumping assembly (1), and a fixedly plugged water distribution component (3) is provided on one side of the impulse energy transfer mechanism (2); The water diversion component (3) comprises a side frame (301), a flow trough (302), a water diversion chamber (303), a support base (304) and an irrigation nozzle (305). The side frame (301) is arranged on one side of the impulse energy transfer mechanism (2), and a flow trough (302) is arranged above one end of the side frame (301). The output end of the flow trough (302) is provided with a water diversion chamber (303), and the bottom end of the water diversion chamber (303) is provided with a support base (304). The output end of the water diversion chamber (303) is provided with an irrigation nozzle (305) installed in a sleeve manner.
2. The irrigation device for rice planting according to claim 1, characterized in that: The irrigation nozzles (305) are distributed in a ring shape around the central axis of the water distribution chamber (303), and the flow trough (302) is in an inclined flow trough structure.
3. The irrigation device for rice planting according to claim 1, characterized in that: The positioning pumping assembly (1) comprises a base plate (101), a long-rod screw (102), a duct frame (103), a water trough (104), a connecting pipe (105), a sieve hole (106), a water diversion valve block (107), a pumping pump body (108) and a water delivery port (109); a long-rod screw (102) assembled with bolts is provided below the side of the base plate (101); a duct frame (103) is provided above the middle of the base plate (101), and a water trough (104) is provided on the top side of the duct frame (103).
4. The irrigation device for rice planting according to claim 3, characterized in that: A sleeve-mounted connecting pipe (105) is provided on the inner side of the culvert frame (103), and a sieve hole (106) is provided at one end of the connecting pipe (105). A water diversion valve block (107) is provided at the output end of the connecting pipe (105), and a water pump body (108) is provided at the output end of the water diversion valve block (107). A water delivery port (109) is provided at the output end of the water pump body (108).
5. The irrigation device for rice planting according to claim 3, characterized in that: The impulse energy transfer mechanism (2) comprises an end frame (201), a top frame (202), a top plate (203), a photovoltaic power generation panel (204), a reduction motor (205), a wheel disc (206), a movable shaft (207) and a wheel barrel (208); the end frame (201) is arranged above the side of the pad base plate (101); the top of the end frame (201) is provided with a top frame (202); the top of the top frame (202) is provided with a top plate (203); and the top side of the top plate (203) is provided with a photovoltaic power generation panel (204).
6. The irrigation device for rice planting according to claim 5, characterized in that: A reduction motor (205) is provided on the outer side of the end frame (201), and a wheel disc (206) is provided at the output end of the reduction motor (205), a movable shaft (207) is provided on the inner side of the wheel disc (206), and a wheel barrel (208) is provided on the inner side of the movable shaft (207).
Citation Information
Patent Citations
Agricultural irrigation device used for rice planting
CN107750906A