IP Library Granted Patent US 11,698,028
Granted Patent B2
US 11,698,028 · App. 18/054,795 · Granted Jul 11, 2023

Onboard heater of auxiliary systems using exhaust gases and associated methods

Inventors: Tony Yeung (Houston, TX); Ricardo Rodriguez-Ramon (Houston, TX); Joseph Foster (Houston, TX)
Assignee: BJ Energy Solutions, LLC
F02C7/08F01D25/305F01N5/02F02C6/00F02C6/18F04B17/00F05D2220/32F05D2260/20F05D2260/607
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Quick Facts
Patent No.
US 11,698,028
App. No.
18/054,795
Granted
Jul 11, 2023
Kind
B2
Abstract

An exhaust energy recovery system (EERS) and associated methods for an engine are disclosed. An embodiment of an EERS, for example, includes an inlet duct that is configured to divert exhaust gas from an exhaust duct of the engine into the recovery system and an outlet duct configured to return the exhaust gas to the exhaust duct downstream of the inlet duct. The recovery system is configured to heat components or fluids associated with engine to operating temperatures. The recovery system may be part of a mobile power system that is mounted to a single trailer and includes an engine and a power unit such as a high pressure pump or generator mounted to the trailer. Methods of operating and purging recovery systems are also disclosed.

Claims (53)

1. A method of recovering energy from exhaust gases of a gas turbine engine of a mobile power system, the method comprising:

operating the gas turbine engine mounted to a trailer, the engine having an intake port and an exhaust duct;

opening an inlet valve in fluid communication with the exhaust duct, thereby to divert a portion of exhaust gas flowing from the exhaust duct to an exhaust energy recovery system (EERS) mounted to the trailer;

collecting the exhaust gas in a manifold of the EERS, the manifold positioned downstream of the inlet valve;

distributing exhaust gas from the manifold to a first heat exchanger and a second heat exchanger of the EERS, thereby to transfer heat from the exhaust gas to fluid of a first heat distribution element and a second heat distribution element, respectively;

controlling flow of exhaust gas from the manifold to the first heat exchanger and the second heat exchanger so as to operate a first control valve and a second control valve, respectively, based on a temperature of a medium associated with the first heat exchanger and the second heat exchanger, respectively, the first control valve positioned between the manifold and the first heat exchanger and the second control valve positioned between the manifold and the second heat exchanger; and

returning the exhaust gas to the exhaust duct via an outlet duct of the EERS, the outlet duct being in fluid communication with the exhaust duct downstream of the inlet valve.

2. The method according to claim 1 , further comprising flushing the exhaust energy recovery system including:

verifying the inlet valve is closed, and

injecting water into a flushing port when the inlet valve is closed such that the water flows through the EERS and into the exhaust duct via the outlet duct, thereby to purge the EERS.

3. The method according to claim 1 , wherein controlling the flow of exhaust gas from the manifold to the first heat exchanger includes:

operating the first control valve towards an open position in response to the fluid in the first heat distribution element being below a first predetermined temperature, and

operating the first control valve towards a closed position in response to the fluid in the first heat distribution element being at or above a second predetermined temperature.

4. The method according to claim 1 , further comprising controlling the inlet valve by opening and closing the inlet valve in response to a temperature of the fluid of one or both of the first heat distribution element and the second heat distribution element.

5. The method according to claim 1 , further comprising opening a pressure relief valve of the EERS in response to a pressure of exhaust gas within the EERS being at or above a predetermined pressure such that exhaust gas from the inlet valve bypasses the first heat exchanger and returns to the exhaust duct via the outlet duct.

6. A method of recovering energy from exhaust gases of a gas turbine engine of a mobile power system, the method comprising:

operating the gas turbine engine mounted to a trailer, the engine having an intake port and an exhaust duct;

opening an inlet valve in fluid communication with the exhaust duct, thereby to divert a portion of exhaust gas flowing from the exhaust duct to an exhaust energy recovery system (EERS) mounted to the trailer;

collecting the exhaust gas in a manifold of the EERS, the manifold positioned downstream of the inlet valve;

distributing exhaust gas from the manifold to a first heat exchanger and a second heat exchanger of the EERS, thereby to transfer heat from the exhaust gas to fluid of a first fluid reservoir and a second fluid reservoir, respectively;

controlling flow of exhaust gas from the manifold to the first heat exchanger and the second heat exchanger so as to operate a first control valve positioned between the manifold and the first heat exchanger and a second control valve positioned between the manifold and the second heat exchanger such that the controlling includes:

operating the first control valve towards an open position in response to the fluid in the first fluid reservoir being below a first temperature, and operating the first control valve towards a closed position in response to the fluid in the first fluid reservoir being at or above a second temperature, and

operating the second control valve towards an open position in response to the fluid in the second fluid reservoir being below a third temperature, and operating the second control valve towards a closed position in response to the fluid in the second fluid reservoir being at or above a fourth temperature; and

opening a pressure relief valve of the EERS in response to a pressure of exhaust gas within the EERS being at or above a predetermined pressure such that exhaust gas bypasses the first heat exchanger and the second heat exchanger and returns to the exhaust duct via an outlet duct being in fluid communication with the exhaust duct downstream of the inlet valve.

7. The method according to claim 6 , further comprising flushing the exhaust energy recovery system including:

verifying the inlet valve is closed, and

injecting water into a flushing port when the inlet valve is closed such that the water flows through the EERS and into the exhaust duct via the outlet duct, thereby to purge the EERS.

8. The method according to claim 6 , further comprising controlling the inlet valve by opening and closing the inlet valve in response to a temperature of the fluid in the first fluid reservoir or the fluid in the second fluid reservoir.

9. A method of recovering energy from exhaust gases of a gas turbine engine of a mobile power system, the method comprising:

operating the gas turbine engine mounted to a trailer, the engine having an intake port and an exhaust duct;

opening an inlet valve in fluid communication with the exhaust duct, thereby to divert a portion of exhaust gas flowing from the exhaust duct to an exhaust energy recovery system (EERS) mounted to the trailer;

collecting the exhaust gas in a manifold of the EERS, the manifold positioned downstream of the inlet valve;

distributing exhaust gas from the manifold to a plurality of heat exchangers, thereby to transfer heat from the exhaust gas to fluids of a plurality of heat distribution elements;

controlling flow of exhaust gas from the manifold to the plurality of heat exchangers so as to operate a plurality of control valves based on temperatures of the fluids of the plurality of heat distribution elements, each of the plurality of control valves positioned between the manifold and a corresponding one of the plurality of heat exchangers; and

controlling the inlet valve by opening and closing the inlet valve based on temperatures of the fluids of the plurality of heat distribution elements.

10. The method according to claim 9 , further comprising flushing the exhaust energy recovery system including:

verifying the inlet valve is closed, and

injecting water into a flushing port when the inlet valve is closed such that the water flows through the EERS and into the exhaust duct via an outlet duct to purge the EERS.

11. The method according to claim 9 , wherein controlling the flow of exhaust gas from the manifold to the plurality of heat exchangers includes:

operating a first control valve of the plurality of control valves towards an open position in response to fluid in a first heat distribution element of the plurality of heat distribution elements being below a first predetermined temperature, and

operating the first control valve towards a closed position in response to the fluid in the first heat distribution element being at or above a second predetermined temperature.

12. The method according to claim 11 , further comprising opening a pressure relief valve of the EERS in response to a pressure of exhaust gas within the EERS being at or above a predetermined pressure such that exhaust gas from the inlet valve bypasses the plurality of heat exchangers and returns to the exhaust duct via an outlet duct, the outlet duct being in fluid communication with the exhaust duct downstream of the inlet valve.

13. A method of recovering energy from exhaust gases of a gas turbine engine of a mobile power system, the method comprising:

operating the gas turbine engine, the engine having an intake port and an exhaust duct;

opening an inlet valve in fluid communication with the exhaust duct, thereby to divert a portion of exhaust gas flowing from the exhaust duct to an exhaust energy recovery system (EERS) mounted to a trailer;

collecting the exhaust gas in a manifold of the EERS, the manifold positioned downstream of the inlet valve;

distributing exhaust gas from the manifold to a plurality of heat exchangers, thereby to transfer heat from the exhaust gas to fluid of a plurality of heat distribution elements;

controlling flow of exhaust gas from the manifold to the plurality of heat exchangers by operating a plurality of control valves positioned between the manifold and the plurality of heat exchangers, the controlling includes operating at least one of the plurality of control valves towards an open position in response to fluid in a corresponding one of the plurality of heat distribution elements being below a corresponding first temperature and operating the at least one of the plurality of control valves towards a closed position in response to the fluid in the corresponding one of the plurality of heat distribution elements being at or above a corresponding second temperature; and

controlling the inlet valve by opening and closing the inlet valve in response to a temperature of fluid of one or more of the plurality of heat distribution elements.

14. The method according to claim 13 , further comprising flushing the exhaust energy recovery system including:

verifying the inlet valve is closed, and

injecting water into a flushing port when the inlet valve is closed such that the water flows through the EERS and into the exhaust duct via an outlet duct, thereby to purge the EERS.

15. The method according to claim 13 , further comprising opening a pressure relief valve of the EERS in response to a pressure of exhaust gas within the EERS being at or above a predetermined pressure such that exhaust gas from the inlet valve bypasses the plurality of heat exchangers and returns to the exhaust duct via an outlet duct.

Assignments (1)
SECURITY INTEREST Recorded Sep 17, 2024
From: BJ ENERGY SOLUTIONS. LLC
To: ECLIPSE BUSINESS CAPITAL LLC. AS AGENT
Reel/Frame 068970/0125 →
Continuity (4)
Division 17383900 · Jul 23, 2021
Continuation 15929715 · May 18, 2020
Provisional Application 62704556 · May 15, 2020
Related Publication 20230091641A1 · Mar 23, 2023
Cited By (1)
US 12,624,665