Spiral blade unit and wind generator and blade connector for the unit
10422314 ยท 2019-09-24
Assignee
Inventors
- Yeoung Cheol Cho (Seoul, KR)
- Marinus Mieremet (Vinkeveen, NL)
- Joon-Ho Baek (Daejeon, KR)
- Bong Sik Kim (Daejeon, KR)
- Ho Seong Ji (Busan, KR)
Cpc classification
F03D1/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/0608
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/0625
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A spiral blade unit is disclosed, which generates less blade-sagging, deformation, or vibration, can be made of various material, can be made with light material, and can be installed easily in interconnecting spiral blades. The spiral blade unit includes a rotational axle and spiral blades with root portions attached along an outer circumferential surface of the rotational axle, and the spiral blades are interconnected to one another through a blade connector.
Claims
1. A spiral blade unit comprising: a rotational axle; and spiral blades, a root portion of each of which being fixed on an outer circumferential surface of the rotational axle, wherein the spiral blades are connected with one another through a blade connector.
2. The spiral blade unit of claim 1, wherein the blade connector comprises a connecting member penetrating the spiral blades and installed toward the rotational axle and configured for supporting by connecting outer edges of the spiral blades in directions tilted with respect to the rotational axle, or comprises a ring member interconnecting the outer edges of the spiral blades.
3. The spiral blade unit of claim 1, wherein the blade connector comprises: a connecting member having threads formed on an outer circumferential surface; washers engaging the outer circumferential surface of the connecting member; and a plurality of nuts engaging the threads, pressing down on a surface of the spiral blade so as to fix the spiral blade to the connecting member, or comprises the connecting member formed with a ring groove and a ring member engaging the ring groove and preventing the spiral blades from vibrating.
4. The spiral blade unit of claim 3, wherein the blade connector further comprises a slope member engaging the outer circumferential surface of the connecting member between the surface of the spiral blade and the nut and compensating a slope of the spiral blade.
5. The spiral blade unit of claim 3, wherein the blade connector further comprises: a first spherical member engaging the outer circumferential surface of the connecting member between the surface of the spiral blade and the nut and formed with convex or concave spherical surface on an outer surface; and a second spherical member engaging on the outer circumferential surface of the connecting member, disposed outside of the first spherical member, and formed with concave or convex spherical surface on an inner surface that is to be engaged with the convex or concave spherical surface of the first spherical member.
6. The spiral blade unit of claim 1, wherein the planar figure of the spiral blade has a form, which has a shape of cutting out a portion of semi-circle along a J-shaped curve at one side radius portion of the center of the semi-circle from the semi-circle or a shape of that a portion near to the center of the semi-circle is removed from the shape of cutting out so as to be formed an air-venting hole in a rear portion of the spiral blade unit.
7. The spiral blade unit of claim 1, wherein the spiral blade is manufactured by any one of making with an FRP by an FRP molding method, making with plastic by injection molding method, making with metal by die-casting method, making by bending metal plate, installing membrane member on a blade-shaped frame, making by bending metal plate with holes, making by enclosing with a membrane member an outer surface of one made by bending metal plate with holes or blocking the holes with material lighter that the metal plate, making by forming a membrane blocking the holes on a surface of one made by bending metal plate with holes, and making by welding blade pieces.
8. The spiral blade unit of claim 1, wherein the blade connector comprises a ring member disposed in circumferential direction about the rotational axle and interconnecting the spiral blades.
9. The spiral blade unit of claim 1, wherein the nuts and elements that are pressed toward a surface of the spiral blade by the nuts are installed on both surfaces of the spiral blade.
10. A wind generator comprising: a spiral blade unit according to claim 1; a supporting frame supporting both ends of the rotational axle of the spiral blade unit horizontally and rotatably and installed so as to rotate in place about a vertical axle; and a generator engaging the rotational axle and generating electricity.
11. The wind generator of claim 10, wherein the supporting frame comprises a first frame element extending downwards from an end of the rotational axle, a second frame element extending obliquely downwards from the other end of the rotational axle and meeting the first frame element, and a third frame element having a first axle-engaging portion that extends toward the vertical axle from a portion where the first and second frame elements meet each other and engages an outer circumferential surface of the vertical axle.
12. The wind generator of claim 11, wherein a second axle-engaging portion is installed between both ends of the second frame element, which engages the vertical axle passing the first axle-engaging portion and extending upwards and is supported by the vertical axle.
13. A blade connector for interconnecting spiral blades disposed with intervals, the blade connector comprising: a connecting member for connecting the spiral blades; and a plurality of fixing means engaged to an outer circumferential surface of the connecting member and fixing the spiral blades to be interconnected to the connecting member.
14. The blade connector of claim 13, wherein threads are formed on the outer circumferential surface of the connecting member and the fixing means includes nuts engaging the threads, or wherein a ring groove is formed on the outer circumferential surface of the connecting member and the fixing means comprises a ring member engaged to the ring groove and preventing the spiral blade from vibrating.
15. The blade connector of claim 14, further comprising a slope member, which is engaged to the outer circumferential surface of the connecting member between the nut and a surface of the spiral blade and compensates a slope of the spiral blade.
16. The blade connector of claim 14, wherein further comprising: a first spherical member engaging the outer circumferential surface of the connecting member between the surface of the spiral blade and the nut and formed with convex or concave spherical surface on an outer surface; and a second spherical member engaging on the outer circumferential surface of the connecting member, disposed outside the first spherical member, and formed with concave or convex spherical surface on an inner surface that is to be engaged with the convex or concave spherical surface of the first spherical member.
17. The blade connector of claim 14, wherein on the outer circumferential surface of the connecting member are alternatingly disposed in a length direction a section formed with threads and a section without threads.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15) 100: spiral blade unit 110: spiral blade
(16) 110a: planar
(17) 120: rotational axle 140: blade connector
(18) 141: connecting member 142: threads
(19) 143: nut 144: slope member
(20) 145: washer 147: first spherical member
(21) 148: second spherical member 150: supporting frame
(22) 160: generator 172: brake
(23) 182: vertical axle 200: wind generator
BEST MODE FOR CARRYING OUT THE INVENTION
(24)
(25) Referring to
(26) The rotational axle (120) in the center is appropriate to make with metal, which more preferably can be hollow metal pipe. On the outer circumferential surface of such a rotational axle (120) are preferably formed threads (122) for engaging with the spiral blade (110) firmly.
(27) The spiral blade (110) may be formed with a perimeter (112) along outer edges thereof. This embodiment shows that the spiral blades (110) are fixed to outer circumferential surface of the rotational axle (120) by forming a FRP laminating portion (130) by laminating FRP material across the root portion (114) of the spiral blades (110) and the outer circumferential surface of the rotational axle (120) formed with the threads (122) in a state that the spiral blades (110) are fixed to a jig. After fixing, a top jig on the bottom jig (61) holding the spiral blade (110) is removed, leaving the bottom jig (61) only. The rotational axle (120) is combined to the groove (62) formed in a center of the bottom jig (61).
(28) Referring to
(29) Since the spiral blades (110) generate the largest displacement and vibration at an outer edge farthest from the rotational axle (120), the blade connector (140) is preferably installed to connect outer edges of the spiral blades (110) as shown in
(30) Preferably, the blade connector (140) has a connecting member (141), which penetrates the spiral blades (110) and is installed toward the rotational axle (120) from outside. On the outer circumferential surface of the connecting member (141) are formed threads (142). The threads (142) may be formed along entire length of the connecting member (141), but as shown in
(31) The blade connector (140) includes a plurality of nuts (143) engaging the threads (142) and fixing the spiral blades (110) to the connecting member (141), as a fixing means for fixing the spiral blade (110) to the connecting member (141). Sometimes, it may be fixed as in a state that the nut (143) presses down on a surface of the spiral blade (110) directly, but preferably using the one as shown in
(32) Preferably, such nut (143) and washer (145) are installed on both side surfaces of the spiral blade (110). Such a blade connector (140) performs a function of minimizing sagging and vibration of the spiral blade (110).
(33) Sometimes, other than a nut (143) may be used. A method may be used, in which a separate metal member with holes bored may be disposed on both surfaces of the spiral blade (110), the connecting members (141) that are not formed with threads (142) are inserted to the holes, and in a state of pressing down the metal member with holes on the surface of the spiral blade (110) both metal plate and the connecting member (141) are welded, so as to fix the connecting member (141) to the spiral blade (110). In a case that the spiral blade (110) is made of metal plate, the metal member with holes may be fixed to the spiral blade (110) by welding.
(34) The spiral blades (110) interconnected to one another through the blade connector (140) support one another, so that even though the spiral blade unit (100) rotates in a high speed, the end of the spiral blade (110) in prevented from generating displacement or vibration, preventing damage to the spiral blade (110).
(35) The spiral blade (110) may be manufactured with plastic material by using injection mold, not alone with FRP by FRP molding method.
(36) It can be manufactured with plastic by injection molding method, with metal by die-casting method, etc. In a case using a spiral blade (110) that is made of metal, it is preferable to fix it to the rotational axle (120) through welding.
(37)
(38) As shown in
(39) Preferably, the blade connector (140) according to the invention further comprises a slope member (144) as shown in
(40) The slope member (144) compensates a surface of the spiral blade (110), which changes its radius of curvature along a circumferential direction and is disposed tiltedly, so that the washer (145) and the nut (143) apply force evenly on the blade surface toward the center of the rotational axle (120) and in a tilted direction with respect to the rotational axle (120). Such a slope member (144) is a portion that makes a surface-contact to a surface of the spiral blade (110), which is shown in
(41) The washer (145) is engaged outside the slope member (144), and outwardly from that the nut (143) is engaged, which is engaged to the threads (142) and presses down the washer (145) and the slope member (144) toward a surface of the spiral blade (110).
(42) In order to prevent it from loosening, the nut (143) may be done with welding or damaging the threads after fixing. Sometimes, as shown in
(43) Instead of the nut-anti-loosening pin (146), preferably, silicon filler may be force-inserted in an engaging portion and then the portion may be covered with a cover. Here, for the nut (143), a Nylon insert nut known as Nylock nut in the market would be appropriate.
(44) Additionally, double-nut may be thought to be used, but it is not more preferable than the one described in the above for fully preventing loosening of nut. Also, fixing nut to bolt by welding, bending a tip of the connecting member (141), damaging threads, and inserting U-shaped member at a blade edge for fixing may be used, but since there are pros and cons according to methods, they may be selected and used according to a size of spiral blade unit or usage.
(45) Furthermore, chemical engaging using glue such as Loctite may be used.
(46) In order to increase a reliability and strength, it is preferable to use the slope member (144) if possible, but sometimes it may be done without the slope member (144).
MODE FOR THE INVENTION
(47)
(48) Sometimes, instead of the slope member described in
(49) That is, the blade connector (140) according to the invention provides the connecting member (141) which penetrates more than two spiral blades (110) and has the threads (142) formed on the outer circumferential surface. On the outer circumferential surface of the connecting member (141) is engaged a first spherical member (147) on a side of a surface of the spiral blade (110). The inner surface of the first spherical member (147) makes a surface-contact with the surface of the spiral blade (110). The outer surface of the first spherical member (147) is formed with a convex spherical surface that is convex outwards. Outside the first spherical member (147) is installed a second spherical member (148) formed with a concave spherical surface. The concave spherical surface engages the convex spherical surface, compensates the slope of the surface of the spiral blade (110), and makes the washer (145) and the nut (143) exerts force evenly on the blade surface toward a center of the rotational axle (120) and in a tilted direction with respect to the rotational axle (120). The positions to make the concave spherical surface and the convex spherical surface may be exchanged. The blade connector (140) according to the invention provides a washer (145) disposed outside the second spherical member (148), which engages the circumferential surface of the connecting member (141) and a nut (143), which engages the threads (142), and presses down the first and second spherical surface members (147, 148) and the washer (145) toward the surface of the spiral blade (110).
(50) The rest is same as described referring to
(51)
(52) A wind generator (200) shown in
(53) A generator (160) is engaged to an end of the rotational axle (120), and on the other end is installed a RPM meter (170). Preferably, a brake is further installed on the other end of the rotational axle (120), so that even when the wind is very strong the rotational axle (120) does not exceed a specific RPM. If the blades rotate too fast, the blades and other parts may be damaged.
(54) Sometimes, a stop brake for stopping the rotation of the spiral blade unit (100) if necessary for checking or maintenance. Here, the generator (160) and the brake may exchange their installation positions. In a certain case, the generator (160) and the brake may be installed at a same side.
(55) The supporting frame (150) is installed so as to engage a vertical axle (182) installed rotatably to a support (180) and rotate in place about the vertical axle (182). Such a supporting frame (150) supports both ends of the spiral blade unit (100) horizontally and rotatably.
(56) More specifically, the supporting frame (150) comprises a first frame element (151) extending downwards from an end of the rotational axle (120), a second frame element (153) extending obliquely downwards from the other end of the rotational axle (120) and meeting the first frame element (151), and a third frame element (155) having a first axle-engaging portion (156) that extends toward the vertical axle (182) from a portion where the first and second frame elements (151, 153) meet each other and engages an outer circumferential surface of the vertical axle (182).
(57) Preferably, a second axle-engaging portion (158) is installed between both ends of the second frame element (153), which engages the vertical axle (182) passing the first axle-engaging portion (156) and extending upwards and is supported by the vertical axle (182).
(58) In such a case, it is much more stable and can withstand a strong wind better than when the meeting portion of the first and second frame elements (151, 153) is supported rotatably by the vertical axle (182).
(59) Thus the spiral blade unit (100) according to the invention can rotate horizontally about the vertical axle (182) as a rotational center according to the direction of wind in a state of being supported in the supporting frame (150) and being able to rotate about the rotational axle (120) as a center.
(60) In a state of
(61) When the direction of wind changes, an unbalance of left and right forces of wind appears to the spiral blade (110), and then accordingly the spiral blades (110) according to the invention rotates about the 182 as a center, so that the forces on the left and right sides of the spiral blades (110) resume balance.
(62) Thus, the spiral blade unit (100) according to the invention automatically rotates about the vertical axle (182) as a center in a direction of wind blowing in a state of being supported on the supporting frame (150).
(63)
(64) Sometimes, metal plate such as iron plate, tinplate, various alloy plate, aluminum plate, etc. is cut in a shape of a planar figure plate (110a) as shown in
(65) When the spiral blade (110) is made with a metal plate, the connecting member (141) without the threads (142) can be welded and fixed to the spiral blade (110), interconnecting the spiral blades (110). In such a case, a thick portion to be able to be welded is formed on the spiral blade (110), and the connecting member (141) is welded directly, or a metal member with holes described with
(66)
(67) Also, sometimes, the spiral blade (110) may be manufactured with metal plate as shown in
(68) When the spiral blade (110) is manufactured with a metal plate such as steel sheet and the like, a solid steel rod may be used for rotational axle, but hollow pipe-type may be good at vibration and can reduce the weight.
(69) The spiral blade (110) made of metal plate is preferably fixed to the outer circumferential surface of the rotational axle by welding, but sometimes riveting or bolting may be used according to situations. Sometimes, a metal rotational axle set is made by welding a portion of the spiral blade to the outer circumferential surface of the metal rotational axle by a specific length, and then the remaining metal spiral blade (110) may be assembled through methods such as welding, bolting, riveting, etc.
(70) Since the metal is easily welded, parts of the spiral blade (110) can be made in advance and then the spiral blade (110) of desired form can be made by combining them through a method such as welding.
(71) And the spiral blade (110) made of metal such as steel and the like uses a thin sheet, but since the larger the spiral blade (110) gets, the stronger the blade be, the thickness thereof must be increased. If the thickness gets larger, the weight of the spiral blade (110) may get larger than necessary. In such a case, the spiral blade (110) having holes (115) as shown in
(72) As shown in
(73) Furthermore, in an area of strong wind, the spiral blade (110) may be used with the holes (115) open.
(74)
(75) Sometimes, as shown in
(76) And the spiral blades (110) can be strengthened by interconnecting with a ring member (190) disposed in a circumferential direction around the rotational axle (120). The ring member (190) preferably connects the outside of the spiral blade (110) as shown in
(77) Such a ring member (190) forms a blade connector as a sort of connecting member for connecting the spiral blades. Also in the previous embodiment, at a perimeter of the spiral blades (110) can be formed a ring member engaging portion where the ring member (190) can be engaged for connecting the spiral blades. The ring member (190) with a turn buckle installed can be used, which can adjust the diameter. In such a case, the ring member engaging portion or the turn buckle becomes a fixing means. The connector using the ring member (190) can be installed along with the blade connector of a form having linear connecting member described in the previous embodiment or alone.
(78) As the spiral blade (110) gets larger and larger, the number of the blade connectors for supporting the spiral blades (110) would be high.
(79) In a state shown in
(80) In an area of weak wind, it can be used without any blade connector installed.
(81)
(82) Sometimes, on an outer circumferential surface of the connecting member (141) is formed a ring groove (141a), and in the ring groove (141a) is installed a ring member (149), so as to prevent the spiral blade (110) from vibrating. Here, the ring groove (141a) and the ring member (149) may be installed outside the spiral blade (110) only, or on both side surfaces inside and outside of the spiral blade (110). For the ring member (149), a stop ring or a split ring with one side split may be used. And for the connecting member (141), a rod member having a rectangular, hexagonal, octagonal cross-section can be used as well as a circular rod having a circular cross-section.
(83) The rest is same as described in the above.
(84)
(85) Middle/large-scale wind generators using regular wing-shaped blades reduce wind resistance in a situation of emergency stop by changing the pitch angle of the blades, but the spiral blade cannot use such a method.
(86) Furthermore, since in the case of the spiral blade (110) applied in the invention the area blown by wind is much larger than a regular wing-shaped blade, if the wind blows strongly, a large force is exerted.
(87) The inventor found that when the spiral blade (110) is small it is easy to stop the rotation or reduce the rotational speed even when the wind blows for installing, repairing, etc., but it can be very hard to stop rotation or reduce rotational speed with cases of the middle or large scale.
(88) In order to reduce the wind resistance of the spiral blade (110) of the invention, as shown in
(89) In the spiral blade (110) of
(90) The rest is same as described in the above.
(91)
(92) Sometimes, in the spiral blade (110) shown in
(93) On the other hand, in a case of long rotational axle (120), flapping or vibration can be generated on both ends of the rotational axle (120), so that the rotation limit can be hard to make larger than 400 rpm, it is hard to balance the spiral blade (110), and even though using fixed axle on both ends the life of bearing is shorted due to vibration built up at the long axle, etc. It is required to reduce the length of the rotational axle (120) considering vibration, balancing, increasing of rotation limit, etc.
(94) According to the embodiment, by removing a rear partial portion of the spiral blade (110), the length of the rotational axle (120) can be reduced a lot as shown in
(95) If describing about the spiral blade (110) in this embodiment referring to
(96) And an edge at an outside tip of the spiral blade (110) has a shape of being partially removed, maintaining as large angle as possible or round, and preventing damage from colliding with other object.
(97) The rest is same as described in the previous embodiment.
INDUSTRIAL APPLICABILITY
(98) The invention may be used in manufacturing a spiral blade unit suitable for wind power generation. The spiral blade unit according to the invention may be used in water power generation.