V-shaped blade structure applied to horizontal water turbine

By adopting a V-shaped blade structure in a horizontal water turbine, the problem of low water resource utilization has been solved, and higher power generation efficiency has been achieved.

CN224679610UActive Publication Date: 2026-08-25SHENZHEN JINHONG NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521973067.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-12
Publication Date
2026-08-25
Estimated Expiration
2035-09-12

AI Technical Summary

Technical Problem

The blades of existing horizontal water turbines have low water resource utilization rates, resulting in low power generation efficiency.

Method used

It adopts a V-shaped blade structure, with the 'V' shaped opening of the blade opposite to the rotation direction of the rotor. High-pressure water flow impacts the blade to improve water flow utilization, and the airflow friction resistance is reduced through the blade tip. Combined with the water-blocking circle of the rotor, a storage tank is formed to prevent water from flowing out.

Benefits of technology

It improves the utilization rate of water resources, reduces energy loss, and enhances the power generation efficiency of water turbines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a V-shaped blade structure for horizontal water turbine belongs to the field of hydroelectricity. Including: runner disc, runner water -resisting circle, several V-shaped blades and nozzle, the runner disc is installed on the inner wall of runner water -resisting circle, several V-shaped blade ring around setting on the cambered surface center line of the outer circumference of runner water -resisting circle, and V-shaped blade one end is connected with the outer wall of runner water -resisting circle, the spout of nozzle is towards V-shaped blade. Compared with prior art, the V-shaped blade of the present application has "V" shape opening, can receive the water flow that nozzle sprays, improves the utilization of water flow, can utilize "V" shape tip to reduce the airflow friction resistance produced in high -speed rotation to can reduce energy loss, improve energy utilization rate, when V-shaped blade rotates to the bottom of runner disc, can also unload water, reduce the bearing of runner disc, can improve the power generation efficiency of water turbine.
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Description

Technical Field

[0001] This utility model belongs to the field of hydropower generation, and specifically relates to a V-shaped blade structure for use in horizontal water turbines. Background Technology

[0002] Currently, the more traditional power generation methods in society usually include thermal power generation, hydropower generation, wind power generation, photovoltaic power generation, nuclear power, etc. Among them, hydropower generation is widely used due to its advantages such as low cost, large power generation, and no environmental pollution.

[0003] The water turbine is the core equipment in hydropower generation. Traditional water turbines typically include reaction turbines and impulse turbines. Reaction turbines include mixed-flow, axial-flow, oblique-flow, and through-flow types, while impulse turbines include bucket turbine, inclined-stroke, and double-stroke types. In current technology, both impulse and reaction turbines use the blades of the runner to receive the water flow, utilizing the energy of the water flow to drive the turbine runner to rotate, which in turn drives the generator to produce electricity. This method has advantages such as low cost and environmental friendliness.

[0004] Reaction turbines and impulse turbines are classified as horizontal or vertical depending on the way the main shaft is set. Existing horizontal turbines generally have a low water resource utilization rate when the blades receive the water flow, resulting in low power generation efficiency. Utility Model Content

[0005] To address the aforementioned problems, the purpose of this invention is to provide a V-shaped blade structure for horizontal water turbines, which can improve water resource utilization and thus enhance the power generation efficiency of the water turbine.

[0006] To achieve the above objectives, the technical solution of this utility model is as follows:

[0007] This utility model provides a V-shaped blade structure for a horizontal water turbine, comprising: a runner disc, a runner water-blocking ring, several V-shaped blades, and a nozzle. The runner disc is mounted on the inner wall of the runner water-blocking ring, and the several V-shaped blades are arranged around the center line of the arc surface of the outer circumference of the runner water-blocking ring, with one end of the V-shaped blades connected to the outer wall of the runner water-blocking ring; the nozzle orifice faces the V-shaped blades.

[0008] Furthermore, the V-shaped openings of each V-shaped blade are oriented in the same direction, and the V-shaped openings of the V-shaped blades are opposite to the rotation direction of the rotary disk.

[0009] In this application, high-pressure water can be ejected from the nozzle and directly impact the V-shaped blades of the turbine runner, thereby driving the turbine runner to rotate faster. The turbine runner drives the generator bulb through the main shaft to generate hydroelectric power.

[0010] Compared to existing horizontal water turbines, the V-shaped blades of this application have an upward-facing "V"-shaped opening, receiving the impact of the water flow and rotating downwards. When the turbine rotates at high speed, the V-shaped tip of the blades points downwards. This not only allows the "V"-shaped opening to catch the water flow ejected from the nozzle, improving water utilization, but also reduces airflow friction resistance generated during high-speed rotation, thereby reducing energy loss and improving energy efficiency. When the V-shaped blades are impacted by the water flow, they drive the turbine disk to rotate. When the V-shaped blades rotate to the bottom of the turbine disk, the water on the blades is thrown into the water tank at the bottom of the turbine disk, discharging the water, reducing the load on the turbine disk, ensuring high-speed rotation of the turbine disk, and improving the power generation efficiency of the water turbine. At the same time, when the water flow enters the V-shaped blades, the water-blocking ring of the turbine disk can cooperate with the V-shaped blades to form a water storage tank, thereby preventing water from flowing out of the V-shaped blades and improving water utilization.

[0011] Furthermore, the V-shaped blade includes a first blade plate and a second blade plate. One side of the first blade plate and one side of the second blade plate are connected to form a "V" shape, and the opening of the "V" shape is opposite to the rotation direction of the rotary disk. This structure not only allows the water flow from the nozzle to be received through the opening of the "V" shape, but also reduces air resistance by utilizing the tip of the "V" shape, thereby improving energy utilization.

[0012] Furthermore, the cross-section of the V-blade turbine runner structure is an "I" shape, symmetrical at both ends, making the structure more stable.

[0013] The beneficial effects of this utility model are: compared with the prior art, this application can improve the utilization rate of water resources by setting V-shaped blades, thereby improving the power generation efficiency of the water turbine. Attached Figure Description

[0014] Figure 1 This is the front view of the V-shaped blade structure.

[0015] Figure 2 This is a side view of the V-shaped blade structure.

[0016] Figure 3 This is a schematic diagram of the V-shaped blade.

[0017] In the diagram: 1. Rotary disc; 2. Rotary water-blocking circle; 3. V-shaped blade; 31. First blade plate; 32. Second blade plate; 4. Nozzle; 5. Main shaft. Detailed Implementation

[0018] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0019] To achieve the above objectives, the technical solution of this utility model is as follows:

[0020] See Figure 1-3 As shown, this embodiment provides a V-shaped blade structure for a horizontal water turbine, including: a runner disk 1, a runner water-blocking ring 2, several V-shaped blades 3, and a nozzle 4. The runner disk 1 is installed on the inner wall of the runner water-blocking ring 2, and the several V-shaped blades 3 are arranged around the center line of the arc surface of the outer circumference of the runner water-blocking ring 2, with one end of the V-shaped blades 3 connected to the outer wall of the runner water-blocking ring 2; the nozzle 4 faces the V-shaped blades 3.

[0021] Furthermore, the "V"-shaped openings of each V-shaped blade 3 are in the same direction, and the "V"-shaped openings of the V-shaped blade 3 are opposite to the rotation direction of the rotary disk 1.

[0022] In this application, high-pressure water can be ejected from nozzle 4 and directly impact the V-shaped blades 3 of the turbine runner 1, thereby driving the turbine runner 1 to rotate faster. The turbine runner 1 drives the generator ball to work through the main shaft 5 to realize hydroelectric power generation.

[0023] Compared to existing horizontal water turbines, the V-shaped blade 3 of this application has an upward-facing "V"-shaped opening, which receives the impact of the water flow and rotates downwards. When the water turbine rotates at high speed, the V-shaped blade 3 has its V-shaped tip pointing downwards. This not only allows it to receive the water flow ejected from the nozzle 4 through the "V"-shaped opening, improving the water flow utilization rate, but also reduces the airflow friction resistance generated during high-speed rotation by utilizing the "V"-shaped tip, thereby reducing energy loss and improving energy utilization. When the V-shaped blade 3 receives the impact of the water flow, it can drive the turbine disk 1 to rotate. When the V-shaped blade 3 rotates to the bottom of the turbine disk 1, the water on the V-shaped blade 3 will be thrown into the water tank at the bottom of the turbine disk 1, unloading the water, reducing the weight of the turbine disk 1, ensuring that the turbine disk 1 rotates at high speed, and improving the power generation efficiency of the water turbine. At the same time, when the water flows into the V-shaped blade 3, the impeller water-blocking ring 2 can cooperate with the V-shaped blade 3 to form a water storage groove, thereby preventing the water from flowing out of the V-shaped blade 3 and improving the utilization rate of the water flow.

[0024] Furthermore, there are thirty V-shaped blades 3, which are arranged at equal intervals around the center line of the arc surface of the outer circumference of the water-blocking circle 2 of the impeller.

[0025] Furthermore, the V-shaped blade 3 includes a first blade plate 31 and a second blade plate 32. One side of the first blade plate 31 and one side of the second blade plate 32 are connected to form a "V" shape, and the opening of the "V" shape is opposite to the rotation direction of the rotary disk 1. This structure not only allows the water flow from the nozzle to be received through the opening of the "V" shape, but also reduces air resistance by utilizing the tip of the "V" shape, thereby improving energy utilization.

[0026] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A V-shaped blade structure applied to a horizontal water turbine, characterized in that, include: The device comprises a rotating disc, a rotating water-blocking ring, several V-shaped blades, and a nozzle. The rotating disc is mounted on the inner wall of the rotating water-blocking ring. The several V-shaped blades are arranged around the center line of the arc surface of the outer circumference of the rotating water-blocking ring, and one end of the V-shaped blades is connected to the outer wall of the rotating water-blocking ring. The nozzle orifice faces the V-shaped blades.

2. The V-shaped blade structure applied to a horizontal water turbine as described in claim 1, characterized in that, The "V" shaped openings of each V-shaped blade face the same direction, and the "V" shaped openings of the V-shaped blades are opposite to the rotation direction of the rotary disk.

3. The V-shaped blade structure applied to a horizontal water turbine as described in claim 1, characterized in that, The V-shaped blade includes a first blade plate and a second blade plate. One side of the first blade plate is connected to one side of the second blade plate to form a "V" shape structure, and the "V" shape opening is opposite to the rotation direction of the rotary disk.

4. The V-shaped blade structure applied to a horizontal water turbine as described in claim 1, characterized in that, The cross-section of the V-blade turbine runner structure is an "I" shaped structure.