IP Library Granted Patent US 10,760,438
Granted Patent B2
US 10,760,438 · App. 14/771,913 · Granted Sep 1, 2020

Axial flow rotating machine and diffuser

Inventors: Kazuya Nishimura (Tokyo, JP); Eisaku Ito (Tokyo, JP); Koichiro Iida (Tokyo, JP); Kentaro Akimoto (Tokyo, JP)
Assignee: MITSUBISHI HEAVY INDUSTRIES, LTD.
F01D9/041F01D5/02F01D5/143F01D25/162F01D25/24F01D25/30F04D29/542F04D29/547F05D2220/32F05D2240/12F05D2240/20F05D2250/324
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Quick Facts
Patent No.
US 10,760,438
App. No.
14/771,913
Granted
Sep 1, 2020
Kind
B2
Abstract

An axial flow rotating machine has: a rotor with a plurality of rotor blades; a stator with a plurality of stator blades; an axial flow rotating portion defined by the rotor and the stator; and a diffuser connected to the axial flow rotating portion on a downstream side of the axial flow rotating portion. A final blade portion inner-circumferential inner wall, which is a portion of an inner-circumferential inner wall of the axial flow rotating portion, is defined such that a diameter thereof at a trailing edge position of a final blade is smaller than the diameter at a leading edge position of the final blade. In addition, a diameter of all or a portion of a diffuser inner-circumferential inner wall decreases in a direction of the downstream side in an axial direction.

Claims (34)

1. An axial flow rotating machine comprising:

a rotor that includes a plurality of rotor blades and is configured to freely rotate around an axial line;

a stator that includes a plurality of stator blades adjacent to the plurality of rotor blades;

an axial flow rotating portion that is defined by the rotor and the stator; and

a diffuser that is connected to the axial flow rotating portion on a downstream side of the axial flow rotating portion and that extends in an axial direction to define a circular flow path;

wherein:

an inner-circumferential inner wall of the diffuser includes a first inclination portion and a second inclination portion located downstream of the first inclination portion;

the second inclination portion is continuous with the first inclination portion;

the first inclination portion and the second inclination portion are inclined in opposite directions whereby the first inclination portion is inclined toward an outer-circumferential inner wall of the diffuser and the second inclination portion is inclined away from the outer-circumferential inner wall of the diffuser;

the second inclination portion extends from the first inclination portion to a downstream end of the inner-circumferential inner wall of the diffuser such that a diameter of the inner-circumferential inner wall of the diffuser decreases over an entirety of the second inclination portion;

the first inclination portion is a straight linear portion inclined at a first inclination angle in a cross section of the diffuser along the axial direction; and

the second inclination portion is a straight linear portion inclined at a second inclination angle in the cross section of the diffuser along the axial direction.

2. The axial flow rotating machine according to claim 1 , wherein a final blade portion inner-circumferential inner wall, which is a portion of an inner-circumferential inner wall of the axial flow rotating portion corresponding to an axial-direction position of a final blade located furthest downstream among the plurality of rotor blades and the plurality of stator blades, is defined such that a diameter of the final blade portion inner-circumferential inner wall at a trailing edge position of the final blade is smaller than the diameter of the final blade portion inner-circumferential inner wall at a leading edge position of the final blade.

3. The axial flow rotating machine according to claim 2 , wherein an average inclination angle of the inner-circumferential inner wall of the diffuser is equal to or greater than an average inclination angle of the final blade portion inner-circumferential inner wall from a leading edge to a trailing edge of the final blade on the final blade portion inner-circumferential inner wall and is less than 0 degrees.

4. The axial flow rotating machine according to claim 2 , wherein:

the final blade is a final-stage rotor blade of a turbine and the diffuser is connected to the final-stage rotor blade on a downstream side of the final-stage rotor blade; and

the diameter of the final blade portion inner-circumferential inner wall starts decreasing from a position between a leading edge and a throat position of the final-stage rotor blade.

5. The axial flow rotating machine according to claim 1 , wherein a distance between the inner-circumferential inner wall of the diffuser and the outer-circumferential inner wall of the diffuser is narrowest at an inlet of the diffuser.

6. An axial flow rotating machine comprising:

a rotor that includes a plurality of rotor blades and is configured to freely rotate around an axial line;

a stator that includes a plurality of stator blades adjacent to the plurality of rotor blades;

an axial flow rotating portion that is defined by the rotor and the stator; and

a diffuser that is connected to the axial flow rotating portion on a downstream side of the axial flow rotating portion and that extends in an axial direction to define a circular flow path;

wherein:

an inner-circumferential inner wall of the diffuser includes a first inclination portion and a second inclination portion located downstream of the first inclination portion;

the second inclination portion is continuous with the first inclination portion;

each of the first inclination portion and the second inclination portion is inclined away from an outer-circumferential inner wall of the diffuser;

the first inclination portion is a straight linear portion inclined at a first inclination angle in a cross section of the diffuser along the axial direction;

the second inclination portion is a straight linear portion inclined at a second inclination angle in the cross section of the diffuser along the axial direction; and

the first inclination angle is different from the second inclination angle.

7. The axial flow rotating machine according to claim 6 , wherein the second inclination portion extends from the first inclination portion to a downstream end of the inner-circumferential inner wall of the diffuser.

8. The axial flow rotating machine according to claim 6 , further comprising:

a final blade portion inner-circumferential inner wall, which is a portion of an inner-circumferential inner wall of the axial flow rotating portion corresponding to an axial-direction position of a final blade located furthest downstream among the plurality of rotor blades and the plurality of stator blades, and is defined such that a diameter of the final blade portion inner-circumferential inner wall at a trailing edge position of the final blade is smaller than the diameter of the final blade portion inner-circumferential inner wall at a leading edge position of the final blade.

9. The axial flow rotating machine according to claim 8 , wherein an average inclination angle of the inner-circumferential inner wall of the diffuser is equal to or greater than an average inclination angle of the final blade portion inner-circumferential inner wall from a leading edge to a trailing edge of the final blade on the final blade portion inner-circumferential inner wall and is less than 0 degrees.

Assignments (3)
NUNC PRO TUNC ASSIGNMENT Recorded Jul 5, 2021
From: MITSUBISHI POWER, LTD.
To: MITSUBISHI POWER, LTD.
Reel/Frame 056750/0088 →
CHANGE OF ADDRESS Recorded Jul 5, 2021
From: MITSUBISHI HEAVY INDUSTRIES, LTD.
To: MITSUBISHI HEAVY INDUSTRIES, LTD.
Reel/Frame 056760/0660 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 1, 2015
From: NISHIMURA, KAZUYA; ITO, EISAKU; IIDA, KOICHIRO; AKIMOTO, KENTARO
To: MITSUBISHI HEAVY INDUSTRIES, LTD.
Reel/Frame 036468/0600 →
Priority Claims (1)
JP 2013-071075 · Mar 29, 2013 · national
Continuity (1)
Related Publication 20160017734A1 · Jan 21, 2016