High efficiency hydrogen agriculture irrigation equipment
By designing the cylindrical anode and cathode plates and the stirring assembly, the problem of hydrogen bubble adhesion was solved, improving the hydrogen generation efficiency and mixing effect, thus realizing the preparation and convenient use of efficient hydrogen ion water.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHEJIANG ZHONGHYDROGEN TECH CO LTD
- Filing Date
- 2024-10-12
- Publication Date
- 2026-05-29
AI Technical Summary
Existing hydrogen agricultural irrigation equipment tends to have hydrogen bubbles adhere to the cathode plate after they are generated, resulting in a small cathode plate area, which makes it impossible to efficiently produce hydrogen and affects the efficiency of the equipment.
The structure employs a cylindrical anode and cathode plate, combined with an ion exchange membrane and an agitator, to increase the contact area between the cathode plate and water. A power mechanism drives the rotating shaft and agitator to promote gas-liquid mixing and rapid bubble removal, thereby improving electrolysis efficiency.
It achieves efficient preparation of hydrogen-ionized water, improves the hydrogen generation efficiency and mixing effect, ensures the quality and flow rate of irrigation water, and makes the equipment more convenient and safe to carry and use.
Smart Images

Figure CN119256932B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of agricultural irrigation technology, and in particular to a high-efficiency hydrogen agricultural irrigation device. Background Technology
[0002] Currently, hydrogen agricultural irrigation equipment is an innovative device applied in the agricultural field. It combines hydrogen technology with traditional irrigation systems, aiming to provide a more optimized environment and conditions for crop growth. This equipment integrates hydrogen into irrigation water through a special device. Hydrogen has some unique properties, such as promoting plant metabolism and enhancing plant resistance. During use, hydrogen agricultural irrigation equipment can precisely control parameters such as hydrogen concentration, irrigation water volume, and time to adapt to the needs of different crops at different growth stages. For example, for crops in the seedling stage, a lower concentration of hydrogen and an appropriate amount of water can be provided, while in the fruiting stage, it may be necessary to adjust the hydrogen concentration and irrigation volume. It not only helps to improve crop yield and quality, but may also reduce the use of pesticides and fertilizers, providing new pathways and possibilities for sustainable agricultural development.
[0003] A search revealed Chinese Patent Publication No. CN115316101A, which discloses a portable hydrogen agriculture irrigation device. The device includes a housing with a handle. It also includes a battery for providing energy; a water pump with inlet and outlet connected to water pipes, one end of which is connected to the outside of the housing for water input, and the other end connected to an electrolytic cell for outputting water to the outside of the housing; and an electrolytic cell where hydrogen gas is generated by electrolysis of some of the input water and mixed with the water before being output to the outside of the housing. The battery, water pump, and electrolytic cell are housed within the housing. This invention reduces the cost of promoting hydrogen agriculture by adding hydrogen gas to agricultural water in the form of bubbles and dissolved gases, increasing the hydrogen content of the water, making it harmless and pollution-free, and neutralizing acidic soil.
[0004] Regarding the aforementioned technologies, the inventors have discovered the following shortcomings: While the device uses the cooperation of an anode plate and a cathode plate to produce hydrogen-water for irrigation, certain defects and deficiencies remain in its application. Firstly, one side of the cathode plate is only designed with a relatively rough surface to increase the amount of hydrogen bubbles produced. However, due to their small size, the generated hydrogen bubbles tend to adhere to the cathode plate, making it difficult for them to dissipate quickly. Furthermore, the relatively small area of the cathode plate inside the device limits the amount of hydrogen produced. Therefore, the device exhibits certain defects and deficiencies in its overall operation, necessitating improvement and optimization. Summary of the Invention
[0005] To improve the efficiency of hydrogen ion water preparation, this application provides a high-efficiency hydrogen agricultural irrigation device.
[0006] This application provides a high-efficiency hydrogen agricultural irrigation device, which adopts the following technical solution: it includes a water tank, a water pump is fixedly installed on the top of the water tank, the output end of the water pump is connected to the inside of the water tank, an electrolysis mechanism is fixedly installed at equal intervals inside the water tank, a power mechanism is fixedly installed on one side of the water tank, the output end of the power mechanism is fixedly connected to the electrolysis mechanism, and a water collection mechanism is fixedly installed on the side of the water tank away from the power mechanism, the input end of the water collection mechanism is fixedly connected to the electrolysis mechanism;
[0007] The electrolysis mechanism includes electrolysis components, which are fixedly installed at equal intervals at the bottom of the water tank. Each electrolysis component is rotatably connected to a rotating shaft at the center of its inner side. An agitator is fixedly installed on the outer surface of the rotating shaft. The rotating shaft is rotatably connected to the inside of the water tank at equal intervals. The end of the rotating shaft away from the water collection mechanism is fixedly connected to the output end of the power mechanism.
[0008] Optionally, the electrolysis assembly includes a cylindrical anode plate, which is fixedly installed at equal intervals at the bottom of the water tank. A cylindrical ion membrane is fixedly installed on the inner side of the cylindrical anode plate, and a cylindrical cathode plate is fixedly installed on the inner side of the cylindrical ion membrane. A slot is opened on one side of the top of the cylindrical anode plate, and the slot penetrates the cylindrical ion membrane and the cylindrical cathode plate.
[0009] Optionally, the inner side of the cylindrical cathode sheet is fixedly equipped with protrusions at equal intervals, and the protrusions are configured to be conical.
[0010] Optionally, the agitation assembly includes a hinge, which is fixedly installed on the outer surface of the rotating shaft. An agitator is also fixedly installed on the outer surface of the rotating shaft at equal intervals, and an agitator crossbar is fixedly installed on the outer surface of the agitator at equal intervals.
[0011] Optionally, the power mechanism includes side plates and worm gears. The side plates are fixedly installed at both ends of the water tank on the side away from the water collection mechanism. A drive motor is fixedly installed on the outer side of one side plate. A worm is rotatably connected between the inner sides of the side plates. The worm gears are rotatably connected at equal intervals to the side of the water tank away from the water collection mechanism. The worm and worm gears are connected by a transmission. The output end of the drive motor is fixedly connected to one end of the worm. The outer end of the rotating shaft passes through the water tank and is fixedly connected to one side of the worm gear.
[0012] Optionally, the water collection mechanism includes a drainage hopper, which is fixedly installed at equal intervals on the side of the water tank away from the power mechanism. The inner end of the drainage hopper is connected to the inner side of the cathode electrode plate. A conveying pipe is fixedly installed on the outer end of the drainage hopper, and a water collection hopper is fixedly installed on the outer end of the conveying pipe. A drainage threaded interface is fixedly installed at the end of the water collection hopper.
[0013] Optionally, the water pump has a fixed water-connecting threaded interface at its input end, and the external corners of the water tank are all rounded.
[0014] Optionally, anti-slip plates are fixedly installed on both sides of the bottom of the water tank, and anti-slip protrusions are fixedly connected at equal intervals on the bottom of the anti-slip plates.
[0015] Optionally, a base is fixedly installed on the lower side of one side of the water tank, and two ends of the base away from the water tank are rotatably connected to the base. A bridge-type handrail is fixedly installed on the side of the water tank away from the base, and an anti-slip handrail is fixedly connected to the outer surface of the bridge-type handrail.
[0016] Optionally, a protective shell is fixedly installed on the upper part of the water tank near the power mechanism, and the protective shell covers the outside of the worm and worm wheel.
[0017] In summary, this application includes the following beneficial technical effects:
[0018] This device produces hydrogen-ion water for irrigation by using an electrolysis component. In use, water enters the water tank through an external threaded interface and an external water supply pipe. The water pump and electrolysis component are then activated. During electrolysis, water molecules are oxidized and decomposed at the cylindrical anode plate, while the ion-exchange membrane allows hydrogen ions to pass through. A reduction reaction occurs at the cylindrical cathode plate to generate hydrogen gas, and the remaining water forms hydrogen-ion water. The cylindrical electrolysis component increases the contact area between the cathode plate and the water, enabling efficient production of hydrogen-ion water. The produced water is then connected to an external pipeline via a drainage hopper, delivery pipe, water collection hopper, and drainage threaded interface to assist in irrigation.
[0019] The power mechanism and electrolysis mechanism of this device work together. Starting the drive motor causes the worm gear to rotate, which in turn drives the worm wheel and the rotating shaft in the cylindrical cathode plate inside the water tank to rotate. This, in turn, drives the auger and the stirring frame to rotate. The protrusions on the inner side of the cylindrical cathode plate increase the contact area and improve the electrolysis efficiency. The stirring frame and crossbar play a stirring role. The auger driven by the rotating shaft forms vortex-shaped bubbles, which is conducive to the output of gas-liquid mixed irrigation water. It can also accelerate the flow rate and push the bubbles into the drainage hopper for rapid discharge, avoiding bubble adhesion and improving the mixing and stirring effect. Compared with existing equipment, it can better prepare electrolyzed hydrogen ion irrigation water.
[0020] This device is equipped with a base and wheels for easy carrying. To move it during use, first drain the water from the tank to reduce weight, then tilt the tank by holding the handle to allow the wheels to touch the ground. Pull out the handle and use the wheels to roll it around. Once in position, place it horizontally. The anti-slip plate and anti-slip protrusions on the bottom of the tank increase friction to ensure stable placement. The wheels make it easy to carry, and the protective shell covers the worm gear and worm wheel for protection and to prevent injury, making the device safe and convenient to carry and use. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application;
[0022] Figure 2 This is a schematic diagram of the structure viewed from below in an embodiment of this application;
[0023] Figure 3 This is a rear-view structural schematic diagram of an embodiment of this application;
[0024] Figure 4 This is a top view of the structure in an embodiment of this application;
[0025] Figure 5 This is a schematic diagram of the internal structure of the water tank in an embodiment of this application;
[0026] Figure 6 This is a schematic diagram of the structure of the water tank with the electrolysis components removed in an embodiment of this application;
[0027] Figure 7 This is a schematic diagram of the electrolysis mechanism in an embodiment of this application;
[0028] Figure 8 This is a schematic diagram of the agitation component in an embodiment of this application.
[0029] Reference numerals: 1. Water tank; 2. Electrolysis mechanism; 21. Electrolysis assembly; 211. Cylindrical anode plate; 212. Cylindrical ion exchange membrane; 213. Cylindrical cathode plate; 214. Protrusion; 215. Groove; 22. Rotating shaft; 23. Agitating assembly; 231. Hinge; 232. Agitating frame; 233. Agitating crossbar; 3. Power mechanism; 31. Side plate; 32. Worm gear; 33. Worm wheel; 34. Drive motor; 35. Protective shell; 4. Water pump; 5. Water inlet threaded interface; 6. Water collection mechanism; 61. Drainage hopper; 62. Conveying pipe; 63. Water collection hopper; 64. Drainage threaded interface; 7. Anti-slip plate; 8. Anti-slip protrusion; 9. Base; 10. Traveling wheel; 11. Bridge-type handrail; 12. Anti-slip handrail glove. Detailed Implementation
[0030] The following is in conjunction with the appendix Figure 1-8 This application will be described in further detail.
[0031] This application discloses a high-efficiency hydrogen-based agricultural irrigation device. For example... Figure 1-8 As shown, the system includes a water tank 1, a water pump 4 fixedly installed on the top of the water tank 1, the output end of the water pump 4 being connected to the interior of the water tank 1, an electrolysis mechanism 2 fixedly installed at equal intervals inside the water tank 1, a power mechanism 3 fixedly installed on one side of the water tank 1, the output end of the power mechanism 3 being fixedly connected to the electrolysis mechanism 2, and a water collection mechanism 6 fixedly installed on the side of the water tank 1 away from the power mechanism 3, the input end of the water collection mechanism 6 being fixedly connected to the electrolysis mechanism 2.
[0032] The electrolysis mechanism 2 includes electrolysis components 21, which are fixedly installed at equal intervals at the bottom of the water tank 1. A rotating shaft 22 is rotatably connected to the inner center of each electrolysis component 21. An agitator 23 is fixedly installed on the outer surface of each rotating shaft 22. The rotating shaft 22 is rotatably connected to the inside of the water tank 1 at equal intervals. The end of the rotating shaft 22 away from the water collection mechanism 6 is fixedly connected to the output end of the power mechanism 3. A water pump 4 fixedly installed at the top of the water tank 1 can efficiently transport water into the water tank 1, providing sufficient water for the subsequent electrolysis process. The electrolysis mechanism 2, fixedly installed at equal intervals inside the water tank 1, plays a crucial role. The electrolysis components 21 can stably and efficiently carry out the electrolysis reaction to produce water rich in hydrogen ions for agricultural irrigation. The rotating shaft 23 rotatably connected to the inner center of each electrolysis component 21... The agitator 23 on its outer surface enhances water flow and mixing during electrolysis, improving electrolysis efficiency and effectiveness, resulting in more uniform and complete generation of hydrogen ion water. The rotating shaft 22 is rotatably connected to the inside of the water tank 1 at equal intervals and is fixedly connected to the output end of the power mechanism 3. This design ensures effective power transmission and stable operation, and can control the movement of the rotating shaft 22 and the agitator 23, further optimizing the electrolysis process. The water collection mechanism 6 can collect the hydrogen ion water generated by electrolysis in a timely and effective manner, ensuring that the water can be used smoothly for agricultural irrigation. All components of the entire device cooperate and work together to achieve efficient, stable, and precise preparation and collection of hydrogen ion water, providing a high-quality water source for agricultural irrigation and helping to improve the growth quality and yield of crops.
[0033] Please refer to Figures 5-7The electrolysis assembly 21 includes cylindrical anode plates 211, which are fixedly installed at equal intervals at the bottom of the water tank 1. A cylindrical ion exchange membrane 212 is fixedly installed inside the cylindrical anode plates 211, and a cylindrical cathode plate 213 is fixedly installed inside the cylindrical ion exchange membrane 212. A slot 215 is opened on one side of the top of the cylindrical anode plates 211, penetrating the cylindrical ion exchange membrane 212 and the cylindrical cathode plate 213. Protrusions 214, which are conical in shape, are fixedly installed at equal intervals on the inner side of the cylindrical cathode plate 213. The cylindrical anode plates 211 are fixedly installed at equal intervals at the bottom of the water tank 1. This layout ensures a uniform distribution of the electrolysis reaction area, enabling more comprehensive and efficient treatment of the water in the water tank 1. The cylindrical ion exchange membrane 212, fixedly installed inside the cylindrical anode plates 211, has excellent selective permeation performance, allowing only specific ions to pass through, ensuring the precision and efficiency of the electrolysis reaction, and effectively preventing the passage of unreactive ions. The necessary interference from ions and substances improves the purity and quality of electrolyzed water. The cylindrical cathode plate 213 is installed inside the cylindrical ion membrane 212, increasing the contact area with water and thus improving electrolysis efficiency. The conical protrusions 214, which are fixedly installed at equal intervals inside the cylindrical cathode plate 213, further increase the contact area, making the electrolysis reaction more complete and rapid. The unique design of the conical protrusions 214, with their gradually widening bottom, provides more stable support and a larger reaction area. In addition, the slot 215, which penetrates the cylindrical ion membrane 212 and the cylindrical cathode plate 213, is opened on one side of the top of the cylindrical anode plate 211, which facilitates the discharge and exchange of substances and bubbles generated during electrolysis, promotes water flow and renewal, avoids local accumulation and reaction stagnation, and thus ensures the continuous and stable progress of the electrolysis reaction. This improves the performance and efficiency of the entire electrolysis assembly 21 and provides a strong guarantee for the preparation of high-quality hydrogen ion water.
[0034] Please refer to Figures 5-8The agitation assembly 23 includes a hinge 231, which is fixedly installed on the outer surface of the rotating shaft 22. An agitator frame 232 is also fixedly installed at equal intervals on the outer surface of the rotating shaft 22. An agitator crossbar 233 is fixedly installed at equal intervals on the outer surface of the agitator frame 232. The power mechanism 3 includes a side plate 31 and a worm gear 33. The side plate 31 is fixedly installed at both ends of the water tank 1 on the side away from the water collection mechanism 6. A drive motor 34 is fixedly installed on the outer side of one side plate 31. The inner sides of the side plates 31 rotate... The worm gear 32 and worm wheel 33 are rotatably connected at equal intervals to the side of the water tank 1 away from the water collecting mechanism 6. The worm gear 32 and worm wheel 33 are connected by a transmission. The output end of the drive motor 34 is fixedly connected to one end of the worm gear 32. The outer end of the rotating shaft 22 passes through the water tank 1 and is fixedly connected to one side of the worm wheel 33. In the stirring assembly 23, the agitator 231 is fixedly installed on the outer surface of the rotating shaft 22. It can form a vortex when the rotating shaft 22 rotates, which promotes water flow and material exchange, improves the electrolysis effect, etc. The fixedly installed agitator 232 and its outer surface agitator crossbar 233 further enhance the agitation effect, ensuring that the water in the water tank 1 is fully mixed, thus guaranteeing the uniformity and efficiency of the electrolysis reaction. Regarding the power mechanism 3, the side plate 31 provides a stable mounting position for the worm gear 32 and worm wheel 33. The drive motor 34 is fixed to the outside of the side plate 31, with its output end fixedly connected to one end of the worm gear 32, enabling precise rotation of the worm gear 32. The worm gear 32 is connected to the worm wheel 33, which is rotatably connected to one side of the water tank 1 at equal intervals. This transmission method is stable and reliable, evenly transmitting power to each rotating shaft 22. The drive motor 34 drives the worm gear 32, which in turn drives the worm wheel 33 and the connected rotating shaft 22, achieving precise control of the agitator component 23. This allows the entire system to operate in a coordinated manner. This design not only improves the operating efficiency of the equipment but also reduces energy consumption, while ensuring the stability and reliability of the equipment during long-term operation.
[0035] Please refer to Figures 1-6The water collection mechanism 6 includes drainage hoppers 61, which are fixedly installed at equal intervals on the side of the water tank 1 away from the power mechanism 3. The inner end of the drainage hopper 61 is connected to the inner side of the cathode electrode plate. A conveying pipe 62 is fixedly installed on the outer end of the drainage hopper 61, and a water collection hopper 63 is fixedly installed on the outer end of the conveying pipe 62. A drainage threaded interface 64 is fixedly installed at the end of the water collection hopper 63. A water inlet threaded interface 5 is fixedly installed at the input end of the water pump 4. The outer corners of the water tank 1 are all rounded. The drainage hoppers 61 are fixedly installed at equal intervals on the side of the water tank 1 away from the power mechanism 3. This uniformly distributed design can effectively collect hydrogen-rich water generated by each electrolysis component 21. The inner end of the drainage hopper 61 is connected to the inner side of the cathode electrode plate, ensuring that the water generated by electrolysis can flow smoothly into the drainage hopper 61 without leakage or accumulation. The conveying pipe 62 fixedly installed on the outer end of the hopper provides water transfer. A stable channel is provided, enabling rapid and unobstructed water delivery to the water collection hopper 63. The water collection hopper 63 collects water from various delivery pipes 62, acting as a consolidation and buffer to stabilize the water flow. The drain threaded interface 64 at the end of the water collection hopper 63 facilitates connection to external irrigation pipes, enabling convenient water delivery and irrigation operations. In addition, the water inlet threaded interface 5 at the input end of the water pump 4 facilitates connection to external water sources, ensuring the water supply to the water tank 1. The external corners of the water tank 1 are rounded, which not only reduces the risk of injury from accidental collisions but also makes the equipment more aesthetically pleasing. At the same time, the rounded design reduces stress concentration to a certain extent, enhancing the stability and durability of the water tank 1 structure and helping to extend the service life of the equipment. This carefully designed water collection mechanism 6, together with other components, achieves an efficient, safe, and stable hydrogen ion water preparation and irrigation process.
[0036] Please refer to Figures 1-5Anti-slip plates 7 are fixedly installed on both sides of the bottom of water tank 1. Anti-slip protrusions 8 are fixedly connected at equal intervals on the bottom of the anti-slip plates 7. A base 9 is fixedly installed on the lower end of one side of water tank 1. Two wheels 10 are rotatably connected to both ends of the side of the base 9 away from water tank 1. A bridge-type handrail 11 is fixedly installed on the side of water tank 1 away from the base 9. Anti-slip handrail gloves 12 are fixedly connected to the outer surface of the bridge-type handrail 11. A protective shell 35 is fixedly installed on the upper end of the side of water tank 1 closest to the power mechanism 3. The protective shell 35 covers the outside of the worm gear 32 and worm wheel 33. The anti-slip plates 7 fixedly installed on both sides of the bottom of water tank 1 greatly enhance the stability of water tank 1 when placed. The anti-slip protrusions 8 fixedly connected at equal intervals on the bottom of the anti-slip plates 7 further improve the anti-slip effect. Even on wet or uneven ground, it can effectively prevent water tank 1 from sliding or tipping over, ensuring the safety and stability of the equipment during operation. The base 9 provides a reliable mounting position for the wheels 10. The rotating connection of the traveling wheels 10 makes it easy and convenient to move the water tank 1 when needed. When the equipment needs to be moved, it can be easily pushed by the traveling wheels 10, reducing the burden of manual handling and improving the mobility and flexibility of the equipment. The bridge-type handrail 11 provides a convenient point of force for the operator. The anti-slip handrail gloves 12 on the outer surface increase the friction, allowing the operator to hold the handrail more firmly when lifting or pushing the water tank 1, preventing slippage and improving the safety and comfort of operation. The protective shell 35 is fixedly installed on the upper part of the side of the water tank 1 near the power mechanism 3 and covers the outer side of the worm 32 and worm wheel 33. This design not only effectively protects the worm 32 and worm wheel 33, reducing wear, corrosion and other damage caused by external factors and extending their service life, but also prevents the operator from accidentally touching the worm 32 and worm wheel 33 during equipment operation, preventing accidental injury and improving the safety of equipment use.
[0037] The implementation principle of a high-efficiency hydrogen agricultural irrigation device according to this application embodiment is as follows: During use, the device operates effectively by setting up an electrolysis component 21. In use, an external water supply pipe can be connected via an external threaded interface to transport water to the water tank 1. Then, the water pump 4 is started to allow the water to smoothly enter the water tank 1. At this time, the electrolysis component 21 is activated. During the electrolysis process, an oxidation reaction occurs at the cylindrical anode plate 211, where water molecules lose electrons and decompose into oxygen and hydrogen ions. The ion membrane has selective permeability, allowing only specific ions to pass. In this case, it allows hydrogen ions to pass through while preventing the random penetration of other ions and substances. A reduction reaction occurs at the cylindrical cathode plate 213, where hydrogen ions gain electrons at the cathode and combine with water molecules to form hydrogen gas. Simultaneously, the remaining water is rich in hydrogen ions. Hydrogen ions are generated by the decomposition of water molecules near the cylindrical anode plate 211, and then hydrogen ions are formed. When current flows through the electrolysis component 21, the hydrogen ions generated by the decomposition of water molecules near the cylindrical anode plate 211 move towards the cylindrical cathode plate 213 through the ion membrane and react at the cylindrical cathode plate 213 to finally obtain water rich in hydrogen ions. During the preparation process, since the entire motor component has a cylindrical structure, the water rich in hydrogen ions can be discharged into the conveying pipe 62 through the drainage hopper 61. After being transported by the conveying pipe 62, the water is transported to the drainage threaded interface 64 through the water collection hopper 63, and then connected to the external water supply pipe through the threaded interface to assist in irrigation. Compared with the cathode plate in the prior art, the overall cylindrical design of the electrolysis component 21 significantly increases the contact area between the cylindrical cathode plate 213 and the water, which can produce hydrogen ion water more efficiently.
[0038] By setting the power mechanism 3 and the electrolysis mechanism 2 to cooperate with each other, the device can operate by starting the drive motor 34. The drive motor 34 drives the worm gear 32 to rotate. The worm gear 32 is connected to each worm wheel 33. At this time, the worm gear 32 synchronously drives each worm wheel 33 to rotate. The rotation of the worm wheel 33 drives the rotating shaft 22 located in the cylindrical cathode plate 213 inside the water tank 1 to rotate. The rotation of the rotating shaft 22 drives the auger and the agitator 232 to rotate. During this process, since the inner side of the cylindrical cathode plate 213 is provided with equally spaced protrusions 214, the contact area between the cylindrical cathode plate 213 and the water can be further increased, improving the electrolysis efficiency. At the same time, during this process, as the agitator 232 and the agitator bar 233 move in the cylindrical cathode plate 213... The internal rotation of the device provides excellent stirring. During this process, the rotating shaft 22 can also drive the hinge 231 to rotate. As the hinge 231 rotates, it forms vortex-like bubbles, which is beneficial for outputting the gas-liquid mixed irrigation water. The hinge 231 can also generate power to make the water inside the water tank 1 flow into the inner side of the electrolysis component 21 through the slot 215. The flow rate is accelerated by the hinge 231. At the same time, the efficient water flow formed inside the cylindrical cathode plate 213 can also push the bubbles to flow quickly into the drainage hopper 61 of the water collection mechanism 6, which facilitates the rapid discharge of the gas-liquid mixed hydrogen ion irrigation water. This can prevent the bubbles from adhering and improve the mixing and stirring effect. Compared with existing equipment, it can be seen that this device can better prepare electrolyzed hydrogen ion irrigation water.
[0039] When using this device, due to the base 9 and its bottom wheels 10, if it needs to be moved during use, first drain the water from the water tank 1 to reduce the weight of the entire device. Then, lift the water tank 1 to an inclined position using the handle 11. After the water tank 1 is tilted, the wheels 10 on the base 9 contact the ground, allowing the handle 11 to be pulled out. The device is then carried by the wheels rolling on the ground. Once the device is in the desired location, place it horizontally on the ground, with the water tank 1 lying flat on the ground. The anti-slip plate 7 at the bottom is in contact with the ground, and the bottom of the anti-slip plate 7 is provided with anti-slip protrusions 8, which makes the bottom of the water tank 1 of this device have a large friction force, so that the whole device can be placed on the ground relatively stably. At the same time, the design of the walking wheels 10 makes the whole device easy to carry, and the protective shell 35 can cover the worm 32 and worm wheel 33, which provides protection for the worm 32 and worm wheel 33. It can also prevent the worm 32 and worm wheel 33 from getting tangled in the human body when they are running. This makes the whole device easy to carry and use, and the overall use is safe and convenient.
[0040] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A high-efficiency hydrogen agricultural irrigation device, comprising a water tank (1), characterized in that: A water pump (4) is fixedly installed on the top of the water tank (1). The output end of the water pump (4) is connected to the inside of the water tank (1). Electrolysis mechanisms (2) are fixedly installed at equal intervals inside the water tank (1). A power mechanism (3) is fixedly installed on one side of the water tank (1). The output end of the power mechanism (3) is fixedly connected to the electrolysis mechanism (2). A water collection mechanism (6) is fixedly installed on the side of the water tank (1) away from the power mechanism (3). The input end of the water collection mechanism (6) is fixedly connected to the electrolysis mechanism (2). The electrolysis mechanism (2) includes an electrolysis component (21), which is fixedly installed at equal intervals at the bottom of the water tank (1). The inner middle of each electrolysis component (21) is rotatably connected to a rotating shaft (22). An agitator (23) is fixedly installed on the outer surface of the rotating shaft (22). The rotating shaft (22) is rotatably connected at equal intervals inside the water tank (1). The end of the rotating shaft (22) away from the water collection mechanism (6) is fixedly connected to the output end of the power mechanism (3). The electrolysis assembly (21) includes a cylindrical anode plate (211), which is fixedly installed at equal intervals at the bottom of the water tank (1). A cylindrical ion membrane (212) is fixedly installed on the inner side of the cylindrical anode plate (211), and a cylindrical cathode plate (213) is fixedly installed on the inner side of the cylindrical ion membrane (212). A slot (215) is opened on one side of the top of the cylindrical anode plate (211), and the slot (215) penetrates the cylindrical ion membrane (212) and the cylindrical cathode plate (213). The agitation assembly (23) includes a hinge (231), which is fixedly installed on the outer surface of the rotating shaft (22). The outer surface of the rotating shaft (22) is also fixedly installed with agitation frame (232) at equal intervals. The outer surface of the agitation frame (232) is fixedly installed with agitation crossbar (233) at equal intervals.
2. The high-efficiency hydrogen agricultural irrigation equipment according to claim 1, characterized in that: The inner side of the cylindrical cathode plate (213) is fixedly equipped with protrusions (214) at equal intervals, and the protrusions (214) are configured as conical.
3. The high-efficiency hydrogen agricultural irrigation equipment according to claim 2, characterized in that: The power mechanism (3) includes a side plate (31) and a worm gear (33). The side plate (31) is fixedly installed on both ends of the side of the water tank (1) away from the water collection mechanism (6). A drive motor (34) is fixedly installed on the outer side of one side plate (31). A worm (32) is rotatably connected between the inner sides of the side plates (31). The worm gear (33) is rotatably connected at equal intervals to the side of the water tank (1) away from the water collection mechanism (6). The worm (32) and the worm gear (33) are connected by transmission. The output end of the drive motor (34) is fixedly connected to one end of the worm (32). The outer end of the rotating shaft (22) passes through the water tank (1) and is fixedly connected to one side of the worm gear (33).
4. The high-efficiency hydrogen agricultural irrigation equipment according to claim 3, characterized in that: The water collection mechanism (6) includes a drainage bucket (61), which is fixedly installed at equal intervals on the side of the water tank (1) away from the power mechanism (3). The inner end of the drainage bucket (61) is connected to the inner side of the cathode electrode plate. A conveying pipe (62) is fixedly installed on the outer end of the drainage bucket (61). A water collection bucket (63) is fixedly installed on the outer end of the conveying pipe (62). A drainage threaded interface (64) is fixedly installed at the end of the water collection bucket (63).
5. A high-efficiency hydrogen agricultural irrigation device according to claim 1, characterized in that: The water pump (4) is fixedly installed with a water-connecting threaded interface (5) at its input end, and the external corners of the water tank (1) are all set to be arc-shaped.
6. The high-efficiency hydrogen agricultural irrigation equipment according to claim 1, characterized in that: Anti-slip plates (7) are fixedly installed on both sides of the bottom of the water tank (1), and anti-slip protrusions (8) are fixedly connected at equal intervals on the bottom of the anti-slip plates (7).
7. The high-efficiency hydrogen agricultural irrigation equipment according to claim 1, characterized in that: A base (9) is fixedly installed on the lower side of one side of the water tank (1). Both ends of the base (9) away from the water tank (1) are rotatably connected to a walking wheel (10). A bridge-type handrail (11) is fixedly installed on the side of the water tank (1) away from the base (9). An anti-slip handrail glove (12) is fixedly connected to the outer surface of the bridge-type handrail (11).
8. A high-efficiency hydrogen agricultural irrigation device according to claim 5, characterized in that: A protective shell (35) is fixedly installed on the upper end of the water tank (1) near the power mechanism (3), and the protective shell (35) covers the outside of the worm (32) and worm wheel (33).