IP Library Patent Application 18340529
Patent Application
App. No. 18/340,529

CRYOGENIC AIR SEPARATION ENHANCED GAS TURBINE

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Quick Facts
Patent No.
US None
App. No.
18/340,529
Abstract

A turbine engine assembly includes a compressor section where an inlet airflow is compressed, a cryogenic fuel system for generating flow of cryogenic fuel, an air separation system where an airflow is placed in thermal communication with a portion of the flow of cryogenic fuel for generating an enhanced oxygen flow. In a combustor section, the compressed inlet airflow and a portion of the enhanced oxygen flow is mixed with fuel and ignited to generate an exhaust gas flow that is communicated through a core flow path to a turbine section where expansion of the exhaust gas flow is utilized to generate a mechanical power output. Water is extracted from the exhaust gas flow in condenser transformed into a steam flow for injection into the core flow path in an evaporator system.

Claims (37)

1 . A turbine engine assembly comprising:

a compressor section where an inlet airflow is compressed to generate a pressurized airflow;

a cryogenic fuel system for generating flow of cryogenic fuel;

an air separation system where a portion of the pressurized airflow from the compressor section is placed in thermal communication with a portion of the flow of cryogenic fuel for generating a pressurized enhanced oxygen flow;

a combustor section where the compressed inlet airflow and the pressurized enhanced oxygen flow is mixed with fuel and ignited to generate an exhaust gas flow that is communicated through a core flow path;

a turbine section where expansion of the exhaust gas flow is utilized to generate a mechanical power output;

a condenser where water is extracted from the exhaust gas flow; and

an evaporator system where thermal energy from the exhaust gas flow is utilized to transform water extracted from the exhaust gas flow into a steam flow for injection into the core flow path.

2 - 3 . (canceled)

4 . The turbine engine assembly as recited in claim 1 , wherein the air separation system generates a nitrogen enriched flow that is communicated away from the core flow path through the turbine section.

5 . The turbine engine assembly as recited in claim 4 , wherein the nitrogen enriched flow is directed to cool a portion of the compressor section.

6 . (canceled)

7 . The turbine engine assembly as recited in claim 1 , wherein the air separator system comprises a first heat exchanger disposed outside of a core flow path, the heat exchanger configured to communicate the flow of cryogenic fuel with a flow of air.

8 - 10 . (canceled)

11 . An aircraft propulsion system comprising:

a core engine configured to generate an exhaust gas flow, the core engine including a core flow path through a compressor section, a combustor section and a turbine section, wherein the compressor section generates a pressurized airflow that is communicated to the combustor section;

a cryogenic fuel system configured to generate flow of cryogenic fuel;

an air separation system where a portion of the pressurized airflow from the compressor section is placed in thermal communication with a portion of the flow cryogenic fuel for liquifying a portion of oxygen from the pressurized airflow to generate an enhanced oxygen flow, wherein a portion of the enhanced oxygen flow is injected into the combustor section;

a condenser where water is extracted from the exhaust gas flow; and

an evaporator system where thermal energy from the exhaust gas flow is utilized to transform water extracted from the exhaust gas flow into a steam flow for injection into the core flow path.

12 - 15 . (canceled)

16 . The aircraft propulsion system as recited in claim 11 , wherein the air separation system generates a nitrogen enriched flow that is communicated away from the core flow path through the turbine section.

17 . A method of operating a gas turbine engine, the method comprising:

generating a flow of cryogenic fuel;

separating oxygen from a pressurized airflow from a compressor section of the gas turbine engine by liquifying oxygen through cooling with the flow cryogenic fuel to generate an enhanced oxygen flow;

generating an exhaust gas flow in a combustor with a portion of the cryogenic fuel flow and the enhanced oxygen flow;

expanding the gas flow through a turbine section and generating a mechanical power output;

extracting water from the exhaust gas flow in a condenser;

transforming the water flow to a steam flow with heat from the exhaust gas flow in an evaporator system and injecting a portion of the steam flow into the combustor; and

controlling generation of the oxygen enhanced flow by adjusting a ratio of a flow of cryogenic fuel relative to the airflow communicated to an air separator.

18 . The method as recited in claim 17 , further comprising separating a nitrogen enriched gas flow from the airflow and routing the nitrogen enriched gas flow away from a core flow path.

19 - 20 . (canceled)

21 . The turbine engine as recited in claim 1 , wherein the generation of the pressurize enhanced oxygen flow is controlled by adjusting a ratio of a flow of cryogenic fuel relative to pressurized airflow communicated to the air separator.

22 . The turbine engine as recited in claim 1 , wherein the compressor section includes a low pressure compressor and a high pressure compressor and the pressurized inlet airflow is drawn from a location between the low pressure compressor and the high pressure compressor.

23 . The aircraft propulsion system as recited in claim 11 , wherein the generation of the pressurize enhanced oxygen flow is controlled by adjusting a ratio of a flow of cryogenic fuel relative to pressurized airflow communicated to the air separator.

24 . The aircraft propulsion system as recited in claim 11 , wherein the compressor section includes a low pressure compressor and a high pressure compressor and the pressurized inlet airflow is drawn from a location between the low pressure compressor and the high pressure compressor.

25 . The method as recited in claim 17 , wherein the compressor section includes a low pressure compressor and a high pressure compressor and further comprising drawing the pressurized airflow from a location between the low pressure compressor and the high pressure compressor.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2024
From: TERWILLIGER, NEIL J.; STAUBACH, JOSEPH B.
To: RAYTHEON TECHNOLOGIES CORPORATION
Reel/Frame 066017/0743 →
CHANGE OF NAME Recorded Jan 4, 2024
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 066192/0845 →
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064402/0837 →