Helical blades and micro hydroelectric power generation devices.

The helical blade with winglets and riblet structure addresses inefficiencies in micro-hydropower systems, improving conversion efficiency and reducing costs by optimizing fluid pressure conversion in narrow flow paths.

JP7799987B2Active Publication Date: 2026-01-16MEIDENSHA CORP
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Patent Information

Application Number
JP2021041463
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-15
Publication Date
2026-01-16
Estimated Expiration
2041-03-15

AI Technical Summary

Technical Problem

Micro-hydropower generation systems face inefficiencies in narrow flow paths due to the use of helical blades, which have lower conversion efficiency compared to conventional rotors, and require custom designs for each waterway, leading to high component costs.

Method used

A helical blade design with winglets and a riblet structure on the shaft and blades, optimized for efficient fluid pressure conversion, using materials like thermoplastic resins and photocurable resins, and manufactured via additive manufacturing to enhance efficiency and durability.

Benefits of technology

The helical blade design enhances rotational power conversion efficiency, enabling effective electricity generation in narrow flow paths and reducing maintenance and component costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a spiral blade having high conversion efficiency.SOLUTION: A spiral type blade has a columnar shaft part, and a wing part spirally provided on a side face of the shaft part. An end portion of the wing part has a winglet.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a helical blade and a micro-hydroelectric power generation device equipped with the helical blade. [Background technology]

[0002] In recent years, micro-hydropower generation systems with an output of 100 kW or less have begun to spread in emerging countries in Europe and Asia from the perspective of environmental friendliness and the effective use of renewable energy, but there are still no systems available that are satisfactory in terms of maintenance and cost.One of the reasons for this is that micro-hydropower generation systems require custom-made designs that match the shape, size, water volume, etc. of each waterway, which results in high component costs.

[0003] Generally, the rotor used to convert water flow into rotational power is closer to perpendicular to the direction of the water flow, and the larger the surface area that receives resistance from the water flow, the higher the efficiency of conversion to rotational power.However, in the case of micro-hydropower generation such as that described above, it is expected that it will be installed and used in narrow flow paths or places with a small drop in head, in which case a large rotor cannot be used. Summary of the Invention [Problem to be solved by the invention]

[0004] Helical blades are an example of a rotor that can be installed in narrow flow paths, but they have a problem in that they have lower conversion efficiency than water turbines or propeller-shaped rotors, making them unable to generate electricity efficiently. [Means for solving the problem]

[0005] The present invention provides a helical blade that solves the above problems. The helical blade of the present invention has a cylindrical shaft portion and blade portions arranged helically on the side surfaces of the shaft portion, and has winglets at the ends of the blade portions. [Effects of the Invention]

[0006] According to the present invention, it is possible to provide a spiral blade that can convert water flow into rotational power more efficiently than conventional ones, and thereby provide a micro-hydroelectric power generation device that can generate electricity efficiently even when installed in a narrow flow path with low water flow or a waterway with a small head. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a schematic diagram of a spiral blade No. 4 in Example 1. [Figure 2A] FIG. 2A is a partially enlarged view showing winglet Shape 1 in Example 1. [Figure 2B] FIG. 2B is a partially enlarged view showing winglet shape 2. DETAILED DESCRIPTION OF THE INVENTION

[0008] <1> Spiral wing In one aspect of the present invention, a helical blade is provided. In this disclosure, the term "helical blade" refers to a rotating body in which blades are arranged in a helical shape on the side of a cylindrical structure. When used as a rotating body for converting a water flow into rotational power, the helical blade is also called a helical water wheel. The helical blade is capable of converting fluid pressure (e.g., water flow or wind force) parallel to the longitudinal axis of the cylindrical structure into rotational power centered on the longitudinal axis of the cylindrical structure. In this disclosure, such a cylindrical structure is referred to as the "shaft" of the helical blade, and the blades arranged in a helical shape are referred to as the "wing portion."

[0009] In one aspect, the spiral wing of the present invention has a winglet at the end of the wing. In this disclosure, "winglet" refers to a small, feather-like structure provided at the end of the wing. The inclusion of a winglet can prevent fluid pressure from escaping along the spiral wing, making it possible to efficiently convert fluid pressure into rotational power. The size of the winglet is not particularly limited, but if it is too small, it will not be able to prevent fluid pressure from escaping, and if it is too large, it will impede the flow of fluid. Therefore, the ratio of the width of the winglet to the width of the wing is preferably designed so that the width of the wing is 5 to 100 times the width of the winglet.

[0010] The winglet is provided at the end of the wing portion so as to form a predetermined angle with respect to the wing portion, and this angle is called the inclination angle of the winglet with respect to the wing portion. If this inclination angle is too small, it will not be possible to prevent the escape of fluid pressure, and if it is too large, it will likely obstruct the flow of fluid. The inclination angle is preferably 5° to 80°, more preferably 10° to 50°, and even more preferably 10° to 30°.

[0011] The shape of the winglet is not particularly limited, and it may be formed with a thickness similar to that of the wing portion, or may be molded thinner than the wing portion. The number of winglets at the end is also not particularly limited, and multiple winglets may be present at the end of the wing portion. For example, the end of the wing may be shaped like a fork, in which case two winglets will be present at the end of the wing portion. Preferably, one or two winglets are present at the end.

[0012] When two winglets are present at the end, the inclination angles of the winglets may be the same or different, but preferably the inclination angle of one winglet is 1 to 8 times, and particularly preferably 1 to 3 times, the inclination angle of the other winglet.

[0013] The winglets may be attached to the wing or may be integrally molded with the wing, and in one preferred embodiment, the winglets are integrally molded with the wing from the same material as the wing.

[0014] In another embodiment of the present invention, the shaft and / or wing have a riblet structure. In the present invention, the term "riblet structure" refers to a periodic, fine uneven structure for reducing fluid friction. Examples of naturally occurring riblet structures include the scale structure of fish such as sharks, and it is known that periodic uneven structures imitating this can reduce fluid friction.

[0015] The riblet structure is intended to reduce fluid friction, and therefore, by having the riblet structure, the spiral blade of the present invention can reduce power loss due to friction. There are no particular restrictions on the riblet structure that can be employed in the spiral blade of the present invention, and various structures known as riblet structures can be employed. Typical examples of riblet structures include a continuous uneven shape in a predetermined pattern, such as a shape in which U-shaped or V-shaped groove structures are periodically repeated, or a shape in which a rectangular wave or a sine wave is repeated. Furthermore, such a groove structure may be separated by crescent-shaped or circular structures and further have a scale-like repeating shape. The difference between the maximum and minimum heights of the uneven shape is preferably 50 μm to 2 mm, and more preferably 100 μm to 500 μm. In one preferred embodiment of the spiral wing of the present invention, it is provided with both the winglet and riblet structures.

[0016] The shaft of the spiral impeller of the present invention may be any columnar structure, but is typically cylindrical. A fluid flows along the longitudinal axis of the cylinder, pushing the blades, causing the spiral impeller to rotate.

[0017] The blade of the spiral blade of the present invention is formed so that a plate-like structure spirally surrounds the periphery (side surface) of the shaft. The blade may be formed with a constant twist angle, or portions of the blade may be formed with different twist angles. For example, the twist angle of the blade can be designed to increase by a predetermined amount midway (i.e., the blade's inclination is made gentler), thereby reducing the fluid pressure acting on the blade near the outlet of the spiral blade. Furthermore, resistance can be further reduced by rounding the corners of the blade's terminal portion. These also enable more efficient power conversion.

[0018] The material for forming the spiral blade of the present invention is not particularly limited as long as it ensures sufficient strength, and metals and the like can be used, but in consideration of the balance between strength and weight and moldability, resins are preferably used. Examples of resins include thermoplastic resins, photocurable resins, and those coated with metals or hard materials such as silica.

[0019] The thermoplastic resin is not particularly limited as long as it remains in a cured state in the usage environment, and can be appropriately selected depending on the purpose. Examples of such thermosetting resins include, but are not limited to, polyamide 12 (PA12), polyamide 11 (PA11), polybutylene terephthalate, polypropylene, polyamide 9T (PA9T), polyamide 10T (PA10T), thermoplastic polyurethane (TPU), thermoplastic elastomer (TPE), etc. These may be used alone or in combination of two or more. A helical blade can be formed by using a thermoplastic resin composition containing the above-mentioned thermoplastic resin, for example, by a high speed sintering (HSS) method or a selective laser sintering (SLS) method.

[0020] The photocurable resin is not particularly limited as long as it has sufficient hardness in a cured state, and can be appropriately selected depending on the purpose. Examples of such photocurable resins include, but are not limited to, phenolic resins, unsaturated polyester resins, polyimide resins, epoxy resins, urethane resins, alkyd resins, diallyl phthalate resins, acrylic resins, and methacrylic resins, as well as mixtures or copolymers thereof. A curable composition containing a precursor of the photocurable resin and a polymerization initiator can be used to form a spiral blade, for example, by stereolithography (SLA). The curable composition is suitable for use in stereolithography (SLA) but can also be used in methods other than stereolithography. For example, it can be used in an inkjet method, but it is necessary to consider a discharge mechanism that can accommodate the viscosity of the curable composition and the fiber diameter of the nanofibers.

[0021] Further, the thermoplastic resin or photocurable resin can be coated with metal or silica to further enhance its strength. The thickness of the metal or silica coating may be, for example, 1 μm to 200 μm, preferably 20 μm to 200 μm. When the metal or silica coating thickness is 1 μm to 200 μm, a spiral blade with excellent durability can be obtained.

[0022] Examples of metal coating methods include dipping using a metal coating solution and electroplating. Therefore, the metal used for coating is not particularly limited as long as it is a metal that can be used in these methods, and examples include silver, gold, platinum, copper, zinc, cobalt, nickel, iron, and alloys thereof. Examples of silica coating methods include dipping using a silica coating solution.

[0023] The photocurable resin may further contain nanofibers. By using a resin in which nanofibers are encapsulated within the photocurable resin, heat resistance and strength can be further improved. The nanofibers may be composed of, for example, ceramic, glass, cellulose, alumina, titania, carbon, siloxane, etc. These may be used alone or in combination of two or more. In addition to the above, examples of nanofibers that can improve strength and heat resistance include those described in International Publication No. 2008 / 057844.

[0024] The shape of the nanofiber is not particularly limited and can be appropriately changed as needed. The fiber diameter of the nanofiber is preferably 1 μm or more and 30 μm or less, more preferably 2 μm or more and 25 μm or less, and even more preferably 4 μm or more and 15 μm or less. The fiber length of the nanofiber is preferably 50 μm or more, more preferably 100 μm or more, and even more preferably 300 μm or more. There is no particular upper limit to the fiber length of the nanofiber, and it can be appropriately selected depending on the purpose, but it is preferably 3,000 μm or less. When the fiber diameter and fiber length of the nanofibers are within the above numerical ranges, the heat resistance and strength of the spiral blade can be further improved, and the surface roughness of the spiral blade can be made to the same level as that of a cured product without the addition of nanofibers.

[0025] The fiber diameter and fiber length of the nanofibers represent average values, and can be obtained by measuring the spiral blade with a scanning electron microscope (SEM) and averaging five points.

[0026] To improve the adhesion between the nanofibers and the resin component, a sizing agent may be added or the nanofibers may be surface-treated. Among these, nanofibers whose surfaces have been hydrophobized are preferably used. The hydrophobizing agent used in the hydrophobizing treatment is not particularly limited and can be appropriately selected depending on the purpose. Examples include silane coupling agents such as hexamethyldisilazane (HMDS) and dimethyldichlorosilane (DMDS), and silicone oils such as dimethylsilicone oil and amino-modified silicone oil. These may be used alone or in combination of two or more. Among these, silane coupling agents are preferred.

[0027] The content of nanofibers is not particularly limited and can be selected appropriately depending on the purpose, but is preferably 5% by mass or more relative to the total amount of the spiral blade. By including 5% by mass or more of nanofibers, the heat resistance and strength can be improved. On the other hand, the total content of nanofibers is preferably 90 mass % or less of the total amount of the spiral blade, which can prevent the difficulty of molding caused by the inclusion of a large amount of nanofibers. The content of nanofibers is preferably 10% by mass or more and 60% by mass or less in consideration of the viscosity of the curable composition constituting the spiral blade, and more preferably 20% by mass or more and 60% by mass or less in order to further improve the strength of the rotor.

[0028] The spiral blade of the present invention is preferably manufactured by additive manufacturing, which allows for the integral molding of complex and detailed shapes such as winglets and riblet structures.

[0029] <2> Micro hydroelectric power generation device In another aspect of the present invention, there is provided a micro-hydroelectric power generation device having the above-mentioned helical blade. The micro-hydroelectric power generation device comprises the helical blade of the present invention, water conveying means for introducing water into the helical blade, and power generation means connected to the helical blade, and preferably also comprises foreign matter separation means, foreign matter recovery means, foreign matter decomposition means, and abnormality reporting means, and may further comprise other means as necessary.

[0030] The water conveying means is a metal or resin means that supports the water wheel on the water wheel shaft so that the water wheel rotates by the hydraulic force of the water flow and is placed in the waterway. The metal is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include stainless steel, titanium, nickel alloy, carbon steel, chromium steel, and manganese steel. The resin is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include polyether ether ketone (PEEK) resin, Teflon (registered trademark), MC nylon resin, ultra-high molecular weight polyethylene resin, polyacetal resin, polystyrene resin, styrene-acrylonitrile copolymer, styrene-butadiene copolymer, styrene-maleic anhydride copolymer, polyester resin, polyvinyl chloride resin, vinyl chloride-vinyl acetate copolymer, polyvinyl acetate resin, polyvinylidene chloride resin, polyarylate resin, phenoxy resin, polycarbonate resin, polyvinyl butyral resin, polyvinyl formal resin, polyvinyl toluene resin, poly-N-vinylcarbazole, acrylic resin, silicone resin, epoxy resin, melamine resin, urethane resin, phenolic resin, alkyd resin, etc. These may be used alone or in combination of two or more. The water guide means is not particularly limited in shape, size, structure, etc., as long as it can guide water to the spiral blades of the water turbine, and can be selected appropriately depending on the purpose.

[0031] There are no particular restrictions on the power generation means as long as it can convert the rotational kinetic energy of the spiral blades of the water turbine into electrical energy, and it can be either an AC generator or a DC generator, and can be selected appropriately depending on the purpose.Examples include a rotary magnet AC generator, a DC generator with a commutator, and a magnet pump. There are no particular limitations on the rotary magnet type AC generator, but for example, a dynamo used for bicycle lighting or the like can be used. In a magnetic pump, a driven magnet built into a rotor rotates synchronously with the rotation of a drive magnet magnetically coupled to the driven magnet, allowing for the intake and pumping of fluids. The rotating magnet can rotate in conjunction with the rotation of the spiral blades due to magnetic force, and the rotating magnet and the spiral blades are arranged in isolation to prevent the flow of water. This magnetic pump does not use a shaft sealing device such as a mechanical seal, so there is no corrosion of the pump or dirt around the pump even after long-term use, and there is no water leakage due to deterioration of the mechanical seal.

[0032] The micro-hydroelectric power generation device preferably has a foreign matter separation means on the water conveying means for separating foreign matter from the liquid. By having the foreign matter separation means on the water conveying means, foreign matter can be separated from the water introduced into the water turbine, preventing damage to the spiral blades and enabling efficient power generation over a long period of time. There are no particular limitations on the size, shape, structure, material, etc. of the foreign matter separating means, and they can be appropriately selected depending on the purpose. Examples of the foreign matter separating means include a net, a screen, a filter, and the like.

[0033] The micro-hydroelectric power generation device preferably has foreign matter recovery means for recovering foreign matter in the liquid. The micro-hydroelectric power generation device preferably includes foreign matter decomposition means for decomposing the foreign matter collected by the foreign matter collection means. There are no particular limitations on the size, shape, structure, material, etc. of the foreign matter decomposition means, and they can be selected appropriately depending on the purpose. The foreign matter decomposition means can be selected appropriately depending on the type of foreign matter, and examples thereof include a microbubble generator, an ultraviolet (UV) irradiator, and a filter with an average pore size of 0.1 μm or less.

[0034] The micro-hydroelectric power generation device preferably has an abnormality notification means for notifying the occurrence of an abnormality, such as malfunction or inoperability of the micro-hydroelectric power generation device, clogging of the flow path, or a decrease in the amount of water in the waterway. Examples of abnormality notification means include a display, email, speaker, light, and a mobile app using Wi-Fi (registered trademark).

[0035] Examples of other means include a control means and a power storage means. The control means is a means for controlling the operation of the micro-hydroelectric power generation device of the present invention. The control means may include storage means such as ROM (Read Only Memory) and RAM (Random Access Memory) and calculation means such as CPU (Central Processing Unit) and FPGA (Field Programmable Gate Array). The storage means may store programs for causing the water turbine and water conveying means to perform specific operations, and the operation of each means is controlled based on these programs.

[0036] The power storage means is a means for storing the power generated by the micro-hydroelectric power generation device, and examples thereof include lithium ion secondary batteries, nickel cadmium batteries, and lead storage batteries.

[0037] The micro-hydroelectric power generation device of the present invention is a low-head, low-flow compatible type that can be installed in small irrigation channels, which have previously been difficult to install, and can be installed in, for example, rivers, agricultural waterways, agricultural irrigation channels, industrial waterways, drainage channels for factories, buildings, sewage treatment plants, and water conduits within plants. [Example]

[0038] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to the following examples.

[0039] Example 1. Creation of a spiral blade Spiral blades 1 to 10 having the following shapes were fabricated using a thermoplastic resin (PA12, manufactured by Hewlett-Packard (HP)) by the HSS (High Speed ​​Sintering) method. FIG. 1 is a schematic diagram of spiral wing No. 4 in Example 1, FIG. 2A is a partially enlarged view showing winglet shape 1 in Example 1, and FIG. 2B is a partially enlarged view showing winglet shape 2. Here, the wing pitch refers to the pitch of the twist of the wing, with a pitch of 1 meaning that it makes exactly one full rotation from the top to the bottom of the shaft. The number of wing stripes is the number of wing stripes attached to one shaft, with three stripes meaning that there are three spiral wing strips. The wing width is expressed as a relative value with the No. 1 spiral wing being used as the reference value. Both winglet shapes are bifurcated, but in Shape 1, the winglet on the side subjected to fluid pressure has an inclination angle of 30° and the winglet on the side not subjected to fluid pressure has an inclination angle of 11°, while in Shape 2, both winglets have an inclination angle of 11°.

[0040] [Table 1]

[0041] Example 2. Performance test Using the above-mentioned spiral blade, the rotational torque of the blade was measured against the flow velocity. As a result, it was found that the torque increased when the blade pitch was narrower, the blade width was longer, the winglet shape 1 was used, and the number of blades was greater. In particular, it was found that when winglets were provided, a larger torque could be obtained than when winglets were not provided, and that high efficiency could be obtained by inclining the side on which fluid pressure is applied depending on the shape of the winglet. Furthermore, when a shark-skin riblet structure was formed, a larger torque could be obtained than when a riblet structure was not formed.

[0042] The present invention includes, for example, the following aspects. <1> A spiral wing having a cylindrical shaft and blades arranged spirally on the side of the shaft, characterized in that the blades have winglets at the ends. <2> The width of the wing portion is 5 to 100 times the width of the winglet. <1> The spiral blade is described in <3> The inclination angle of the winglet relative to the wing portion is 5° to 80°. <1> or <2> The spiral blade is described in <4> The winglet has a forked wing end. <1> from <3> The spiral blade according to any one of claims 1 to 4. <5> The inclination angle of one of the bifurcated winglets with respect to the curved surface of the wing portion is 1 to 8 times the inclination angle of the other winglet with respect to the curved surface of the wing portion. <4> The spiral blade is described in <6> At least one of the shaft portion and the wing portion has a riblet structure. <1> from <5> The spiral blade according to any one of claims 1 to 4. <7> The riblet structure is a continuous uneven shape in a predetermined pattern. <6> The spiral blade is described in <8> The uneven shape of the riblet structure is a U-shaped or V-shaped periodic groove structure. <7> The spiral blade is described in <9> The uneven shape of the riblet structure is a periodic rectangular wave or sine wave shape. <7> The spiral blade is described in <10> The difference between the maximum and minimum heights of the uneven shape is 50 μm to 2 mm. <7> from <9> The spiral blade according to any one of claims 1 to 4. <11> The aforementioned <1> from <10> A micro-hydroelectric power generation device having the spiral blade described in any one of claims 1 to 4.

[0043] The aforementioned <1> from <10> The spiral blade according to any one of the preceding claims, <11> According to the micro-hydroelectric power generation device described above, the various problems in the past can be solved and the object of the present invention can be achieved.

Claims

1. A spiral blade having a columnar shaft and blades arranged spirally on a side surface of the shaft, and converting fluid pressure of a water flow parallel to the longitudinal axis direction of the shaft into rotational power around the longitudinal axis of the shaft, and having winglets at the ends of the blades, The winglet has a shape in which the wing end is bifurcated, The winglet is provided at an end of the wing portion so as to form a predetermined angle with respect to the wing portion, and the inclination angle with respect to the wing portion is 10° to 30°, a winglet having a bifurcated winglet on a side to which the fluid pressure is applied, the inclination angle of which is larger than the inclination angle of a winglet on a side to which the fluid pressure is not applied.

2. 2. The spiral wing according to claim 1, wherein the width of the wing portion is 5 to 100 times the width of the winglet.

3. The spiral blade according to claim 1 or 2, wherein at least one of the shaft portion and the blade portion has a riblet structure.

4. The spiral airfoil according to claim 3 , wherein the riblet structure is a continuous concave-convex shape in a predetermined pattern.

5. The spiral blade according to claim 4, wherein the uneven shape of the riblet structure is a U-shaped or V-shaped periodic groove structure.

6. The spiral blade according to claim 4, wherein the concave and convex shape of the riblet structure is a periodic rectangular wave or sinusoidal wave shape.

7. 7. The spiral blade according to claim 4, wherein the difference between the maximum and minimum heights of the concave and convex shapes is 50 μm to 2 mm.

8. A micro-hydroelectric power generation device having the spiral blade according to any one of claims 1 to 7.

Citation Information

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