AXIAL FLOW TURBINE
20180030834 ยท 2018-02-01
Inventors
Cpc classification
F01D9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D1/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D9/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/142
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an axial flow turbine, comprising: a rotor mounting part; a housing having a fluid supply part surrounding the rotor mounting part; a rotor which is installed at a rotation shaft installed in the housing and has a plurality of blades installed in a circumferential direction; and a plurality of injection nozzles, installed in the fluid supply part surrounding the rotor mounting part, for spraying a high-pressure fluid toward the blades, wherein the fluid collision surface of the blades installed at the rotor is formed to be inclined at an angle in the rotational direction of the rotor with respect to the normal axis of the rotation center axis, and the injection nozzles formed in the fluid supply part are installed at an angle parallel to the normal direction of the fluid collision surface of the blades. Due to the aforementioned configuration, the present invention provides the effect of maximizing the rotation rate of a turbine while smoothing fluid flow by optimizing the angle of the fluid collision surface of the blades.
Claims
1. An axial flow turbine, comprising: a rotor mounting part; a housing comprising a fluid supply part that surrounds the rotor mounting part; a rotor installed at a rotation shaft at the housing, located at a rotor mounting part, and comprising a plurality of blades mounted thereon in a circumferential direction; and a plurality of injection nozzles installed at the fluid supply part surrounding the rotor mounting part and provided to spray a high-pressure fluid to the blades, wherein fluid collision surfaces of the blades mounted on the rotor are formed to be inclined in a rotation direction of the rotor with respect to a normal direction axis of a rotation center axis, and the injection nozzles formed at the fluid supply part are installed at an angle parallel to a normal direction of fluid collision surfaces of the blades.
2. The axial flow turbine according to claim 1, wherein fixing blades installed between the blades, which are installed at the rotor, and the rotation shaft and guiding a fluid are installed at a supporter extending, in a rotation shaft direction, from the fluid supply part of the housing.
3. The axial flow turbine according to claim 1, wherein the fluid collision surfaces of the blades installed at the rotor are formed to be inclined at a predetermined angle with respect to a rotation center axis of the rotor.
4. The axial flow turbine according to claim 3, wherein the fluid collision surfaces of the blades are inclined at an angle of 5 to 45 degrees in a rotation direction of the rotor with respect to the normal direction axis of the rotation center axis, and the fluid collision surface are inclined at a predetermined angle, i.e., at an angle of 0 to 65 degrees, with respect to the rotation center axis of the rotor.
5. An axial flow turbine, comprising: a housing comprising at least one fluid inlet formed in an upper part thereof and a rotor mounting part formed therein; a rotation shaft rotatably installed at the housing and passing through the rotor mounting part; a rotor installed at the rotation shaft and comprising a plurality of a rotor rotation force generators formed at edge portions thereof, wherein each of the rotor rotation force generators formed at the rotor comprises a fluid induction part formed from an upper surface in a rotation direction; a blade formation part formed from the fluid induction part in a radial direction, formed to be inclined in a rotation direction with respect to a normal direction axis perpendicular to a rotation center axis of the rotor, and colliding with a fluid; and an induction discharge part protruding from the blade formation part to an outer circumferential surface of the rotor.
6. The axial flow turbine according to claim 5, wherein the induction discharge part is formed in a direction opposite to a rotation direction from the blade formation part, and fluid induction resistance protrusions are formed on an inner circumferential surface of the housing corresponding to the induction discharge part.
Description
DESCRIPTION OF DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
BEST MODE
[0026] An embodiment of an axial flow turbine according to the present invention is illustrated in
[0027] Referring the figures, an axial flow turbine 10 according to the present invention includes a rotor mounting part 21 included therein; a housing 20 in which the rotor mounting part 21 and a fluid supply part 22 partitioned by a sectional partition wall 23 are formed; a rotor 40 which is installed at the rotor mounting part 21 installed at a rotation shaft 30 that is installed at the housing 20 and on which a plurality of blades 41 is mounted in a circumferential direction; and a plurality of injection nozzles 50 which is installed at the sectional partition wall 23 and is provided to rotate the rotor 40 by spraying a fluid supplied to the fluid supply part 22 onto fluid collision surfaces 42 of the blades 41.
[0028] A plurality of rotor mounting parts 21 may be installed to be stacked inside the housing 20 in a vertical direction of the rotation shaft 30, and the rotor 40 is installed at each of the rotor mounting parts 21. In addition, a fluid is supplied to the fluid supply part 22, which is partitioned, in a circumferential direction, by the sectional partition wall 23 at an outer circumferential surface of the rotor mounting part 21 located at the uppermost side, through at least one fluid supply pipe 24 installed at an upper surface or side surface of the fluid supply part 22.
[0029] In addition, a fluid supply part 22 located at a lower part in a shaft direction communicates with the rotor mounting part 21 at an upper part in the shaft direction such that a fluid of the rotor mounting part 21 is introduced to the fluid supply part 22.
[0030] As illustrated in
[0031] In addition, the injection nozzles 50 for spraying a fluid supplied from the fluid supply part 22 to the fluid collision surfaces 42 of the blades 41 are installed at an angle parallel to a normal direction of the fluid collision surfaces 42 of the blades 41. An injection hole of each of the injection nozzles 50 is preferably installed to correspond to the center of the fluid collision surfaces 42. In addition, preferably, an inner diameter of each of the injection nozzles 50 gradually increases from the injection hole of each of the injection nozzles 50 to the fluid supply part 22 so as to reduce loss in a tube, although not illustrated in the figures.
[0032] Meanwhile, the fluid collision surfaces 42 of the blades 41 installed at the rotor 40 are formed to be inclined at a predetermined angle with respect to the rotation center axis C of the rotor 40. The fluid collision surfaces 42 are formed to be inclined irrespective of the shapes of blades or installation angles thereof. Preferably, an inclination angle d of each of the fluid collision surfaces 42 is 0 to 65 degrees. When an inclination angle b of each of the fluid collision surfaces 42 with respect to the rotation center axis C is 65 degrees or more, the force component in the main stream direction increases, whereby an occurrence frequency of leakage loss relatively increases.
[0033] In addition, a supporter 25 extending, by a predetermined length, from a fluid supply part side in a rotation shaft direction is formed at a lower part of the sectional partition wall 23 of the housing 20. A through hole 26 is formed at the supporter 25 such that a fluid colliding with the fluid collision surfaces 42 of the blades 41 smoothly flows to the fluid supply part 22 at the lower part.
[0034] In addition, fixing blades 45 for guiding a fluid in the vicinity of inner end sides of the blades 41 are installed at a predetermined interval at an end side of the supporter 25 such that rotating blades 41 do not interfere with a fluid which has collided with the blades 41. The fixing blades are preferably formed to be inclined in a rotation direction of the rotor 40.
[0035]
[0036] Referring to the figures, at least one fluid supply pipe 24 is formed at an upper part of the axial flow turbine 70 according to the present invention. In addition, the axial flow turbine 70 includes a housing 20 inside which a single rotor mounting part 21 is formed; a rotation shaft 30 which is rotatably installed at the housing 20 and passes through the rotor mounting part 21; and a plurality of rotors 90 including a plurality of rotor rotation force generators 80 that are formed at edge portions of the rotation shaft 30.
[0037] The rotors 90 are formed in a disk shape. The rotor rotation force generators 80, which are formed along edge portions of the rotors 90 and provide rotational force to the rotors 90 due to collision of a fluid, include a fluid induction part 81 formed from an upper surface of each of the rotors 90 in a rotation direction; a blade formation part 82 which is formed from the fluid induction part 81 in a radial direction to be inclined in a rotation direction with respect to a normal direction axis B perpendicular to a rotation center axis C of the rotors 90, so that a fluid introduced through the fluid induction part 81 collides with the blade formation part 82; and an induction discharge part 83 protruding from the blade formation part 82 to an outer circumferential surface of each of the rotors 90. The induction discharge part 83 is formed to be inclined in a direction opposite to a rotation direction from the blade formation part 82, and fluid induction resistance protrusions 27 are formed on an inner circumferential surface of the housing corresponding to the induction discharge part 83.
[0038] As illustrated in
[0039] The fluid induction resistance protrusions 27, which is formed on an inner circumferential surface of the housing 20 opposite to outer circumferential surfaces of the rotors 90, downwardly induce flow of a fluid discharged from the fluid induction discharge part 83, and includes at least one surface (not shown) corresponding to the fluid induction discharge part 83 of each of the rotors 90 such that reaction force due to collision of a fluid can act on the rotors 90.
[0040] Operation effects of the axial flow turbine according to the present invention having the aforementioned configuration are described below.
[0041] First, the present invention may maximize a rate of rotation of a turbine while providing smooth fluid flow by optimizing the angles of fluid action blade surfaces. Referring to
[0042] In addition, a high-temperature and high-pressure fluid introduced to the fluid supply part 22 is sprayed at high pressure through the injection nozzles 50 and collides with the fluid collision surfaces 42 of the blades 41 corresponding to the injection nozzles 50, thereby rotating the rotor 40 at high speed.
[0043] By such a process, the fixing blades 45 induce a fluid travel direction toward the through hole 26 through which the rotation shaft 30 passes such that interference of the blades 41 of the rotor 40 does not occur. Accordingly, re-mixing with a fluid colliding with the fluid collision surfaces 42 of the blades 41 may be prevented, thereby minimizing mixing loss of a fluid.
[0044] In particular, since the fluid collision surfaces 42 of the blades 41 of the rotor 40 according to the present invention are formed to be inclined in a rotation direction of the rotor 40 with respect to the normal direction axis B of the rotation center axis C, collision surfaces of a fluid sprayed from the injection nozzles may be more widely secured and interference resistance of the blades introduced to the injection nozzles 50 in succession during rotation of the blades 41 may be reduced. Accordingly, the effect that a fluid continuously collides with the blades 41 of the rotor 40 may be obtained, whereby short-circuit loss of a fluid sprayed from the injection nozzles 50 may be relatively reduced.
[0045] As illustrated in
[0046] Meanwhile, referring to
[0047] In particular, since the blade formation part 82 is formed to be inclined in a rotation direction of the rotor with respect to the normal direction axis B of the rotation center axis C, collision surfaces of a fluid sprayed from the injection nozzles 50 may be relatively widely secured, thereby reducing fluid resistance.
[0048] The constituents of the present invention may be variously modified and may have various shapes.
[0049] While the present invention has been particularly shown and described with reference to the preferred embodiments thereof, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. It will be appreciated by those skilled in the art that numerous changes and modifications of the invention are possible without departing from the spirit and scope of the appended claims. Thus, it is intended that the present invention covers the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents. In addition, the blades and the blade surfaces of the present invention may have various shapes and forms depending upon a field situation or a fluid type within a range within which angle ranges of the blades and blade surfaces of the present invention are not affected.
INDUSTRIAL APPLICABILITY
[0050] The technical idea of an axial flow turbine of the present invention may be repeatedly practiced providing the same result. Particularly, the axial flow turbine of the present invention may be used in various power generating facilities and as industrial power source.