IP Library › Granted Patent US 11,466,627
Granted Patent B2
US 11,466,627 · App. 16/917,385 · Granted Oct 11, 2022

Systems and methods for controlling a power plant

Inventor: Jeremy Eron Fetvedt (Raleigh, NC)
Assignee: 8 Rivers Capital, LLC
F02C9/54F02C3/34F02C7/057F02C9/20F02C9/26F02C9/263F02C9/16F02C9/32F02C9/34F05D2220/32F05D2220/76F05D2270/053F05D2270/303F05D2270/306F05D2270/335
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Quick Facts
Patent No.
US 11,466,627
App. No.
16/917,385
Granted
Oct 11, 2022
Kind
B2
Abstract

The present disclosure relates to systems and methods that are useful in control of one or more aspects of a power production plant. More particularly, the disclosure relates to power production plants, methods of starting power production plants, and methods of generating power with a power production plant wherein one or more control paths are utilized for automated control of at least one action. The present disclosure more particularly relates to power production plants, control systems for power production plants, and methods for startup of a power production plant.

Claims (26)

1. A power production plant comprising:

a combustor;

a turbine in fluid communication with the combustor;

a generator;

a fuel supply system comprising at least two fuel lines that are independently controlled and configured for passage of fuel to the combustor;

an oxidant supply system comprising at least two oxidant lines that are independently controlled and configured for passage of oxidant to the combustor; and

a control system having a plurality of control paths for automated control of at least one act in operation of the power production plant, said control system including one or more control paths adapted to generate a control signal that adjusts a mass flow ratio or a volume flow ratio of streams flowing through two lines chosen from the at least two fuel lines and the at least two oxidant lines,

wherein the control system is configured to generate a control signal that adjusts a mass flow of fuel or a volume flow of fuel to the combustor after selecting the lower of a FUEL FLOW DEMAND signal and a differential between a calculated turbine inlet temperature and a maximum turbine inlet temperature, the FUEL FLOW DEMAND signal being based on a comparison of actual power production by the power production plant at a given time and a desired power production at the same given time.

2. The power production plant of claim 1 , wherein the one or more control paths are adapted to generate a control signal that adjusts the mass flow ratio or the volume flow ratio of fuel flowing through a first of the at least two fuel lines and a second of the at least two fuel lines.

3. The power production plant of claim 2 , wherein the one or more control paths are configured so that the mass flow ratio or the volume flow ratio of fuel flowing through the first of the at least two fuel lines and the second of the at least two fuel lines is adjusted based upon an operating speed of the turbine.

4. The power production plant of claim 1 , wherein the one or more control paths are adapted to generate a control signal that adjusts the mass flow ratio or the volume flow ratio of oxidant flowing through a first of the at least two oxidant lines and a second of the at least two oxidant lines.

5. The power production plant of claim 4 , wherein the one or more control paths are configured so that the mass flow ratio or the volume flow ratio of oxidant flowing through the first of the at least two oxidant lines and the second of the at least two oxidant lines is adjusted based upon an operating speed of the turbine.

6. The power production plant of claim 1 , wherein the one or more control paths are adapted to generate a control signal that adjusts a fuel to oxidant ratio of fuel flowing through a first of the at least two fuel lines and oxidant flowing through a first of the at least two oxidant lines independent of a fuel to oxidant ratio of fuel flowing through a second of the at least two fuel lines and oxidant flowing through a second of the at least two oxidant lines.

7. The power production system of claim 1 , further comprising one or more lines configured for passage of carbon dioxide therethrough for addition to one or more of the at least two oxidant lines.

8. The power production system of claim 7 , wherein the one or more control paths are adapted to generate a control signal that adjusts a concentration of oxygen flowing in a first of the at least two oxidant lines by adjusting an amount of the carbon dioxide that is added to the first of the at least two oxidant lines.

9. The power production system of claim 8 , wherein the one or more control paths are adapted to generate a control signal that adjusts a concentration of oxygen flowing in a second of the at least two oxidant lines by adjusting an amount of the carbon dioxide that is added to the second of the at least two oxidant lines.

10. The power production system of claim 9 , wherein the one or more control paths are configured so that the adjusting of the amount of the carbon dioxide that is added to the first of the at least two oxidant lines is independent of the adjusting of the amount of the carbon dioxide that is added to the second of the at least two oxidant lines.

11. The power production system of claim 1 , wherein the fuel supply system comprises at least one flow control valve and at least one pressure control valve in each of the at least two fuel lines.

12. The power production system of claim 11 , further comprising a flow sensor in each of the at least two fuel lines.

13. The power production system of claim 12 , further comprising at least one pressure sensor in each of the at least two fuel lines.

14. The power production system of claim 13 , wherein the at least one pressure sensor comprises a first pressure sensor positioned in at least one of the at least two fuel lines between the pressure control valve and the flow control valve and a second pressure sensor positioned in the at least one of the at least two fuel lines between the flow control valve and the flow sensor.

15. The power production system of claim 1 , wherein the fuel supply system comprises a fuel compressor arranged to provide fuel to the at least two fuel lines.

16. The power production system of claim 1 , wherein the oxidant supply system comprises at least one flow control valve in each of the at least two oxidant lines.

17. The power production system of claim 1 , wherein the control system is effective to control flow of fuel through the at least two fuel lines so that, at any given time during operation of the power production system, 0% to 100% of fuel passed to the combustor is allocated to any of the at least two fuel lines.

18. The power production system of claim 1 , further comprising a heat exchanger in fluid communication with the turbine.

19. The power production system of claim 18 , further comprising one or more compressors arranged for compressing a stream of carbon dioxide for passage to the combustor via the heat exchanger.

Continuity (3)
Continuation 15440196 · Feb 23, 2017
Provisional Application 62300504 · Feb 26, 2016
Related Publication 20200332727A1 · Oct 22, 2020