ROTATING MACHINE
A rotating machine cooled by a cooling medium directed through the rotating machine in a main flow and a secondary flow includes a rotor. A stator includes a swirl passage configured to guide the secondary flow so as to be discharged from a pre-swirl nozzle. At least one control device includes a shape-memory alloy disposed in an area of the pre-swirl nozzle and is configured to control the secondary flow based on a temperature in an automated manner.
1 . A rotating machine cooled by a cooling medium directed through the rotating machine in a main flow and a secondary flow, the rotating machine comprising:
a rotor;
a stator including a swirl passage configured to guide the secondary flow so as to be discharged from a pre-swirl nozzle; and
at least one control device including a shape-memory alloy disposed in an area of the pre-swirl nozzle and configured to control the secondary flow based on a temperature in an automated manner,
wherein the swirl passage includes a swirl vane disposed in the area of the pre-swirl nozzle,
wherein the at least one control device is configured to alter a flow cross-section of the swirl passage in an area of the swirl vane based on the temperature, and
wherein each of the at least one control device includes a curved membrane having the shape-memory alloy projecting into the swirl passage, a curvature of the curved membrane being adjustable so as to alter the flow cross section of the swirl passage.
2 . The rotating machine according to claim 1 , wherein the rotating machine is a gas turbine, and the cooling medium is cooling air.
3 . A rotating machine cooled by a cooling medium directed through the rotating machine in a main flow and a secondary flow, the rotating machine comprising:
a rotor;
a stator including a swirl passage configured to guide the secondary flow so as to be discharged from a pre-swirl nozzle; and
at least one control device including a shape-memory alloy disposed in an area of the pre-swirl nozzle and configured to control the secondary flow based on a temperature in an automated manner,
wherein the swirl passage includes a swirl vane disposed in the area of the pre-swirl nozzle,
wherein the at least one control device is configured to alter a flow cross-section of the swirl passage in an area of the swirl vane based on the temperature, and wherein each of the at least one control device includes a wall element disposed in the swirl passage parallel to a swirl passage wall and an adjusting element having the shape-memory alloy configured to transversely displace the wall element relative to the swirl passage wall so as to alter the flow cross section of the swirl passage based on the temperature.
4 . The rotating machine according to claim 3 , wherein the adjusting element includes at least one of a bolt and a spring.
5 . The rotating machine according to claim 3 , wherein the wall element includes a baffle plate disposed on an upstream side of the wall element configured to direct the cooling medium flowing in the swirl passage into the altered flow cross section.
6 . The rotating machine according to claim 3 , wherein the rotating machine is a gas turbine, and the cooling medium is cooling air.
7 . A rotating machine cooled by a cooling medium directed through the rotating machine in a main flow and a secondary flow, the rotating machine comprising:
a rotor;
a stator including a swirl passage configured to guide the secondary flow so as to be discharged from a pre-swirl nozzle; and
at least one control device including a shape-memory alloy disposed in an area of the pre-swirl nozzle and configured to control the secondary flow based on a temperature in an automated manner,
wherein the swirl passage includes a swirl vane disposed in the area of the pre-swirl nozzle,
wherein the at least one control device is configured to alter a flow cross-section of the swirl passage in an area of the swirl vane based on the temperature, and
wherein the swirl vane includes adjusting elements having the shape-memory alloy configured to displace the swirl vane in the swirl passage transversely to a flow direction based on the temperature so as to alter the flow cross section.
8 . The rotating machine according to claim 7 , wherein the swirl vane includes a baffle plate disposed on an upstream side of the swirl vane configured to direct the cooling medium flowing in the swirl passage into the altered flow cross section.
9 . The rotating machine according to claim 7 , wherein the adjusting element includes at least one of a bolt and a spring.
10 . A rotating machine cooled by a cooling medium directed through the rotating machine in a main flow and a secondary flow, the rotating machine comprising:
a rotor;
a stator including a swirl passage configured to guide the secondary flow so as to be discharged from a pre-swirl nozzle; and
at least one control device including a shape-memory alloy disposed in an area of the pre-swirl nozzle and configured to control the secondary flow based on a temperature in an automated manner,
wherein the swirl passage includes a swirl vane disposed in the area of the pre-swirl nozzle,
wherein the at least one control device is configured to alter a flow cross-section of the swirl passage in an area of the swirl vane based on the temperature, and
wherein each of the at least one control device includes a torsion element having the shape-memory alloy oriented in a direction of a longitudinal axis of the swirl vane configured to alter a set angle of the swirl vane based on the temperature so as to alter the flow cross section.
11 . The rotating machine according to claim 10 , wherein the adjusting element includes at least one of a bolt and a spring.