Adjusting the Operating Limit (OL) Threshold of a Compressor in a Gas Turbine System Based on Mass Flow Losses

The gas turbine system optimizes compressor operation by adjusting limits based on mass flow losses, addressing inefficiencies from inaccurate flow rate measurements, thereby enhancing efficiency and power output.

JP7721279B2Active Publication Date: 2025-08-12GENERAL ELECTRIC TECH GMBH
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Patent Information

Application Number
JP2021020209
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-04
Filing Date
2021-02-10
Publication Date
2025-08-12
Estimated Expiration
2041-02-10

AI Technical Summary

Technical Problem

Conventional gas turbine systems operate compressors at lower pressure ratios to prevent surge, reducing efficiency due to inaccurate mass flow rate measurement, leading to overprotection of new compressors and inefficient operation.

Method used

A gas turbine system with sensors and computing devices adjust operating parameters based on mass flow losses, estimating a lower operating limit threshold for the compressor using adjusted sensor measurements and ambient fluid pressure to optimize efficiency.

Benefits of technology

This approach enhances compressor efficiency and power output by accurately setting operating limits, reducing the risk of surge and fouling, and maintaining optimal performance across the compressor's lifespan.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a system for adjusting operational parameters of a gas turbine system.SOLUTION: A system, a program product and a method for adjusting operating limit thresholds for a compressor of a gas turbine system based on mass flow loss are disclosed herein. The system may include at least one computing device in communication with the gas turbine system, a sensor measuring operational characteristics of the gas turbine system and a pressure sensor measuring an ambient fluid pressure surrounding the gas turbine system. The computing device may be configured to adjust operational parameters of the gas turbine system by performing processes including determining mass flow loss between an estimated first mass flow rate and a calculated second mass flow rate for the compressor of the gas turbine system and adjusting an OL threshold for the compressor of the gas turbine system on the basis of the mass flow loss.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates generally to gas turbine systems, and more particularly to systems, program products, and methods for adjusting compressor operating limit (OL) thresholds of a gas turbine system based on compressor mass flow losses. [Background technology]

[0002] In traditional power systems, the operating efficiency of each component and potential undesirable events affect the overall operation of the entire system. For example, a compressor in a gas turbine system takes in airflow, first compresses it, and then directs it, for example, to the rotating portion of the compressor. The compressor's pressure ratio can determine its operating efficiency. However, once the pressure ratio reaches a defined threshold or peak value, often referred to as the operating surge line, airflow instability can indicate a reduction or possible reversal of compressor airflow. Compressor surge (or stall) occurs when the fluid flow leaves the blades / nozzles within the compressor, reducing the effective area and allowing less airflow through. In extreme cases, the direction of fluid flow through the compressor can actually reverse. When surge occurs, the compressor no longer compresses fluid to supply the rest of the gas turbine system, resulting in a loss of power generation. Several factors increase the risk of compressor surge and / or lower the surge line with increased operating times. These factors include compressor flow losses due to fouling (e.g., buildup of dirt on compressor airfoils), corrosion (e.g., loss of airfoil surface material), and / or friction (e.g., contact between rotating compressor blades and the compressor case).

[0003] The surge line can be determined or calculated based on the pressure ratio within the compressor and the mass flow rate of the utilized fluid flowing through the compressor. While the pressure ratio of a compressor can be easily detected, it is often difficult to accurately measure the mass flow rate of the fluid within the compressor. Due to the inability to accurately detect the mass flow rate, gas turbine system operators tend to "overprotect" new, clean compressors to ensure adequate protection for fully degraded compressors. For example, conventional control systems for gas turbine systems operate compressors at significantly lower pressure ratios, ultimately resulting in lower operating efficiencies. Specifically, when controlling the operation of a compressor, the control system operates the compressor as if it were a fully degraded component (e.g., with more than 100,000 operating hours), regardless of whether the compressor is new or old. This results in the margin between the compressor's surge line and the operating threshold, often referred to as the operating limit line, being overstated and / or maintained higher than necessary. This is especially true when the compressor is actually a new, undegraded machine. While conventional systems and procedures may mitigate the risk of surge occurring at the end of the compressor's operating life, operating the compressor as if it were a completely degraded component reduces the compressor's operating efficiency, which in turn reduces the operating efficiency and / or power output of the entire gas turbine system early in the compressor's operating time and / or life. Summary of the Invention

[0004] A first aspect of the present disclosure provides a gas turbine system including a compressor having inlet guide vanes; at least one sensor disposed within or adjacent to the gas turbine system, the at least one sensor measuring an operating characteristic of the gas turbine system; and at least one computing device in communication with the pressure sensor disposed adjacent to the gas turbine system to measure an ambient fluid pressure surrounding the gas turbine system, the at least one computing device adjusting the measured operating characteristic and the measured ambient fluid pressure based on predetermined measurement uncertainties of the at least one sensor and the pressure sensor, respectively; and calculating a pressure sensor for ... and adjusting an operating limit (OL) threshold of the compressor of the gas turbine system based on the mass flow loss, wherein the OL threshold of the compressor is lower than a predetermined surge threshold of the compressor.

[0005] A second aspect of the present disclosure, when executed by at least one computing device, includes adjusting an operating characteristic measured by at least one sensor disposed in or adjacent to the gas turbine system and adjusting an ambient fluid pressure measured by a pressure sensor disposed adjacent to the gas turbine system, wherein the measured operating characteristic and the measured ambient fluid pressure are adjusted based on predetermined measurement uncertainties of the at least one sensor and the pressure sensor, respectively; estimating a first mass flow rate of a compressor of the gas turbine system based on the adjusted measured operating characteristic and the adjusted measured ambient fluid pressure surrounding the gas turbine system; and estimating a first mass flow rate of a compressor of the gas turbine system based on the adjusted measured operating characteristic and the adjusted measured ambient fluid pressure surrounding the gas turbine system. and adjusting an operating limit (OL) threshold of the compressor of the gas turbine system based on the mass flow loss, wherein the OL threshold of the compressor is lower than a predetermined surge threshold of the compressor.

[0006] A third aspect of the present disclosure provides a method for adjusting operating parameters of a gas turbine system including a compressor having inlet guide vanes. The method includes adjusting an operating characteristic measured by at least one sensor disposed within or adjacent to the gas turbine system and adjusting an ambient fluid pressure measured by a pressure sensor disposed adjacent to the gas turbine system, wherein the measured operating characteristic and the measured ambient fluid pressure are adjusted based on predetermined measurement uncertainties of the at least one sensor and the pressure sensor, respectively; estimating a first mass flow rate of a compressor of the gas turbine system based on the adjusted measured operating characteristic and the adjusted measured ambient fluid pressure surrounding the gas turbine system; calculating a second mass flow rate of the compressor of the gas turbine system based on the adjusted measured operating characteristic and the adjusted measured ambient fluid pressure surrounding the gas turbine system; determining a mass flow loss between the estimated first mass flow rate and the calculated second mass flow rate of the compressor of the gas turbine system; and adjusting an operating limit (OL) threshold of the compressor of the gas turbine system based on the mass flow loss, wherein the OL threshold of the compressor is lower than a predetermined surge threshold of the compressor.

[0007] The exemplary aspects of the present disclosure are designed to solve the problems described herein and / or other problems not discussed.

[0008] These and other features of the present disclosure will be more readily understood from the following detailed description of the various aspects of the disclosure, taken in conjunction with the accompanying drawings which illustrate various embodiments of the present disclosure. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a schematic diagram of a gas turbine system including a control system according to various embodiments of the present disclosure. [Figure 2] FIG. 2 is a schematic diagram of a control system for the gas turbine system of FIG. 1 according to an embodiment of the present disclosure. [Figure 3] 2 is an exemplary compressor operating graph including a conventional method of operating a compressor of a gas turbine system and a method of adjusting an operating limit (OL) threshold of the compressor of FIG. 1 according to an embodiment of the present disclosure. [Figure 4] FIG. 2 illustrates an exemplary process for adjusting operating parameters of the gas turbine system of FIG. 1 in accordance with an embodiment of the present disclosure. [Figure 5] FIG. 2 illustrates an environment including a control system for adjusting operating parameters of the gas turbine system of FIG. 1 in accordance with an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0010] It should be noted that the drawings of the present disclosure are not to scale. The drawings are intended to illustrate only typical aspects of the present disclosure and therefore should not be considered limiting of the scope of the present disclosure. In the drawings, like numbers represent like elements between the drawings.

[0011] As an initial matter, in order to clearly explain this disclosure, it is necessary to select specific terminology when referring to and describing the relevant mechanical components in a combined cycle power plant. In doing so, common industry terminology will be used and utilized, whenever possible, consistent with its accepted meaning. Unless otherwise noted, such terminology should be given a broad interpretation consistent with the context of this application and the scope of the appended claims. Those skilled in the art will recognize that in many cases, a particular component may be referred to using several different or overlapping terms. What may be described herein as being a single part may include and be referred to in other contexts as consisting of multiple components. Alternatively, what may be described herein as comprising multiple components may be referred to elsewhere as a single part.

[0012] Additionally, some descriptive terms may be used repeatedly herein, and it may be helpful to define these terms at the beginning of this section. These terms and their definitions are as follows, unless otherwise specified. As used herein, "downstream" and "upstream" are terms that indicate a direction relative to the flow of a working fluid through a turbine engine, or a fluid, such as, for example, the flow of air through a combustor or a coolant through one of the turbine's component systems. The term "downstream" corresponds to the direction of fluid flow, and the term "upstream" refers to the opposite direction of flow. The terms "forward" and "aft" refer to directions, unless otherwise specified, with "forward" referring to the forward or compressor end of the engine and "aft" referring to the aft or turbine end of the engine. It is often desired to describe components at different radial locations relative to a central axis. The term "radial" refers to movement or position perpendicular to the axis. In such cases, if a first component is located closer to the axis than a second component, the first component is said to be "radially inward" or "inboard" of the second component. On the other hand, if a first component is located farther from the axis than a second component, the first component may be said to be "radially outward" or "outward" of the second component. The term "axial" refers to movement or position parallel to the axis. Finally, the term "circumferential" refers to movement or position around the axis. It will be understood that such terms may be applied in relation to the central axis of the turbine.

[0013] As indicated above, the present disclosure relates generally to gas turbine systems, and more particularly to systems, program products, and methods for adjusting compressor operating limit (OL) thresholds of a gas turbine system based on compressor mass flow losses.

[0014] These and other embodiments are described below with reference to Figures 1-5. However, those skilled in the art will readily appreciate that the detailed description given herein with respect to these figures is for illustrative purposes only and should not be construed as limiting.

[0015] FIG. 1 illustrates a schematic diagram of a system 10 including a gas turbine system 11 according to various embodiments of the present disclosure. The gas turbine system 11 of the system 10 may include a compressor 12 and variable or adjustable inlet guide vanes (IGVs) 18 coupled to or disposed on the compressor 12 and / or disposed upstream of an inlet of the compressor 12. The compressor 12 compresses an incoming flow of fluid 20 (e.g., air) that may enter the compressor 12 through the IGVs 18. As described herein, the IGVs 18 may regulate the mass flow rate or flow rate of the fluid 20 as it flows through the IGVs 18 to the compressor 12. The compressor 12 delivers a flow of compressed fluid 22 (e.g., compressed air) to a combustor 24. The combustor 24 mixes the flow of compressed fluid 22 with a pressurized flow of fuel 26 provided by a fuel supply 28 and ignites the mixture to generate a flow of combustion gases 30.

[0016] The flow of combustion gases 30 is then supplied to a turbine component 32, which typically includes a plurality of turbine blades (not shown). The flow of combustion gases 30 drives the turbine component 32 to generate mechanical work. The mechanical work generated by the turbine component 32 drives the compressor 12 via a shaft 34, which can be used to drive a generator 36 (e.g., an external component) configured to generate electrical power and / or generate a load. The combustion gases 30 that flow through and drive the turbine blades of the turbine component 32 exit the turbine component 32 through an exhaust housing or exhaust 38 and may be vented to the atmosphere or reused by another system (e.g., a steam turbine system).

[0017] Although gas turbine system 11 is shown in FIG. 1 as having a single shaft configuration, it should be understood that in other non-limiting examples, gas turbine system 11 may have a dual shaft or rotor configuration.

[0018] 1 , the system 10 may also include at least one computing device 100 operably coupled to the gas turbine system 11 and / or configured to control or adjust operating parameters of the gas turbine system 11. The computing device(s) 100 may be wired and / or wirelessly connected to and / or communicate with the gas turbine system 11 and its various components (e.g., the compressor 12, the IGV 18, and the turbine component 32, etc.) via any suitable electronic communication component or technique. As discussed herein, the computing device(s) 100 may communicate with various components (not shown for clarity) of the gas turbine system 11 to control / adjust the operation and / or operating parameters of the components to improve performance of the gas turbine system 11 and / or prevent undesirable operating conditions (e.g., fouling in the compressor). In various embodiments, the computing device(s) 100 may include a control system 102 and multiple sensors 104, 106, as described herein, to obtain or measure operating characteristics of the gas turbine system 11. As discussed herein, the control system 102 may be used in controlling / regulating the operating parameters of the gas turbine system 11 and its various components.

[0019] The computing device(s) 100 of the system 10 may include and / or be in electrical communication with multiple sensors 104, 106. As shown in the non-limiting example of FIG. 1 , at least one or more sensors 104 (shown in phantom) of and / or connected to the computing device(s) 100 may be disposed at various locations within or adjacent to the gas turbine system 11 to measure, detect, and / or obtain operating characteristics of the gas turbine system 11 during operation. Thus, the location of the sensor(s) relative to the gas turbine system 11 and / or the type / configuration of the sensor(s) 104 may determine the operating characteristics measured or detected. For example, the sensor 104 may be positioned directly adjacent to and / or upstream of the compressor 12, more specifically, at the inlet of the compressor 12 with the IGV 18. In this non-limiting example, the sensor 104 may be configured and / or formed of any suitable sensor capable of measuring, detecting, or obtaining the inlet temperature of the fluid 20 flowing to the compressor 12, commonly referred to as the compressor inlet temperature. Additionally or alternatively, a separate sensor(s) 104 located within the inlet of the compressor 12 with the IGV 18 and / or directly within the compressor 12 (and downstream of the IGV 18) may also be located, configured, and / or formed of any suitable sensor capable of measuring, detecting, or obtaining the compressor inlet temperature based on the fluid 20.

[0020] 1 , the computing device 100 may include additional sensor(s) 104 disposed throughout the gas turbine system 11. For example, multiple separate sensor(s) 104 may be disposed adjacent to and / or in communication with the turbine components 32, the generator 36, the exhaust 38, the supply line (not shown) between the compressor 12 / turbine components 32 and the combustor 24, and the shaft 34 (not shown), etc. Each of these sensor(s) 104 may be positioned and / or configured to identify, detect, and / or measure additional or separate operating characteristics of the gas turbine system 11. The separate operating characteristics may be different from the compressor inlet temperature based on the fluid 20. Additionally, and as discussed herein, the separate operating characteristics may be used explicitly in assisting in the control or adjustment of operating parameters of the gas turbine system 11 and / or may be used to calculate inputs or information used in assisting in the control or adjustment of operating parameters of the gas turbine system 11. The operating characteristics include, but are not limited to, the exhaust temperature of the combustion gases 30 flowing through the exhaust pipe 38, the ambient humidity of or surrounding the gas turbine system 11, the compressor discharge temperature (e.g., the temperature of the compressed fluid 22), the compressor discharge pressure (e.g., the pressure of the compressed fluid 22), the fuel flow rate of the gas turbine system 11 supplied by the fuel supply 28, the power output of the gas turbine system 11 based, for example, on the operation of the generator 36, the inlet temperature of the compressor 12, the inlet pressure drop across the compressor 12 / IGV 18, the exhaust pressure drop across the turbine component 32, the position of the IGV 18 (e.g., angle or degree of opening), and the inlet bleed thermal valve position.

[0021] While six sensors 104 are shown, it should be understood that in other non-limiting examples, the system 10 may include more or fewer sensors 104 that may be configured to provide the computing device(s) 100, and in particular the control system 102, with information or data related to the operating characteristics of the gas turbine system 11 during operation.

[0022] 1 , the sensor 106 of the computing device(s) 100 may be located adjacent to the gas turbine system 11. More specifically, the sensor 106 may be located directly adjacent to and / or upstream of the compressor 12 and / or IGVs 18, which may receive the fluid 20 during operation. In a non-limiting example, the sensor 106 may be formed as a pressure sensor that may be configured and / or formed to measure an ambient fluid pressure of the fluid 20 surrounding the gas turbine system 11 and / or utilized by the gas turbine system 11 during operation. As discussed herein, the sensor 106, and the measured / detected ambient fluid pressure, may be used to determine the mass flow rate of the fluid 20 flowing through the compressor 12 during operation, which may ultimately assist in adjusting the operating parameters of the gas turbine system 11 during operation.

[0023] In a non-limiting example, the sensor(s) 104, 106 may intermittently sense, detect, and / or acquire data related to the operating characteristic(s) and / or ambient fluid pressure of the gas turbine system 11 during operation. The intermittent intervals or period at which the sensor(s) acquire data may be determined by, for example, the operating time of the gas turbine system 11, the operating life of the gas turbine system 11, the operating conditions (e.g., start-up, steady state), the type of data acquired by the sensor(s) 104, 106, etc. In another non-limiting example, the sensor(s) 104, 106 may continuously sense, detect, and / or acquire data related to the operating characteristic(s) and / or ambient fluid pressure of the gas turbine system 11 during operation.

[0024] Referring to Figure 2, a schematic diagram of a control system 102 for computing device(s) 100 is shown. In a non-limiting example, and as described herein, each individual component or feature shown in Figure 2 may identify or represent a portion or "module" of the control system 102 and may be separated to more clearly define the function or operation of the control system 102 (and each module) when adjusting parameters of the gas turbine system 11. Additionally, it should be understood that similarly numbered and / or named components may function substantially similarly. Redundant descriptions of these components have been omitted for clarity.

[0025] 2 and as discussed herein in connection with FIG. 1, data related to the operation of gas turbine system 11 may be measured. More specifically, data related to the operation of gas turbine system 11 may be measured, detected, and / or obtained by sensor(s) 104 and pressure sensors 106 located within and / or adjacent to gas turbine system 11. As also discussed herein, operating characteristic(s) data 108 may be obtained by sensor(s) 104. Operating characteristic(s) data 108 include, but are not limited to, compressor inlet temperature of or based on fluid 20 entering compressor 12 (see FIG. 1). Additionally, the operating characteristic(s) data 108 may include, but are not limited to, an exhaust temperature of the combustion gases 30 flowing through the exhaust duct 38, an ambient humidity of or surrounding the gas turbine system 11, a compressor discharge temperature (e.g., the temperature of the compressed fluid 22), a compressor discharge pressure (e.g., the pressure of the compressed fluid 22), a fuel flow rate of the gas turbine system 11 supplied by the fuel supply 28, a power output of the gas turbine system 11 based on operation of, for example, the generator 36, etc. Ambient fluid pressure data 110 based on the ambient fluid pressure surrounding the gas turbine system 11 may be acquired or detected by the pressure sensor 106. Once acquired, detected, and / or measured, the operating characteristic(s) data 108 and the ambient fluid pressure data 110 may be provided or supplied from sensors 104, 106 located within and / or adjacent to the gas turbine system 11 to various portions or modules (see FIG. 1 ) within the control system 102 of the computing device(s) 100 for further processing and / or manipulation.

[0026] In a non-limiting example, measured data related to the operation of the gas turbine system 11, more specifically, the operating characteristic(s) data 108 and the ambient fluid pressure data 110, may be provided to a first module of the control system 102 configured to assist in adjusting operating parameters of the gas turbine system 11. In a non-limiting example, the first module of the control system 102 that may receive the operating characteristic(s) data 108 and the ambient fluid pressure data 110 may include and / or be configured as an adaptive real-time engine simulation model (ARES) module. The first ARES module 112 is discussed in detail in U.S. Patent No. 7,742,904, issued June 22, 2010, which is incorporated herein by reference in its entirety. In a non-limiting example, the first ARES module 112 may receive the operating characteristic(s) data 108 and the ambient fluid pressure data 110 and utilize them in an operational model of the gas turbine system 11 to generate predicted ARES operating characteristic(s). The operational model of the gas turbine system 11 may be based at least in part on the performance or operation of an ideal, optimized, unrestrained, and / or “new clean system” identical to the gas turbine system 11 (e.g., identical build parameters, identical compressor / combustor / turbine component types, etc.). Differences between the measured or sensed operating characteristic(s) data 108 and ambient fluid pressure data 110 and the corresponding predicted ARES operating characteristic(s) / ambient fluid pressure generated by the model in the first ARES module 112 are determined and utilized in correcting, adjusting, and / or tuning the model of the gas turbine system 11, for example, using a Kalman filter or Kalman filter process. Once adjusted or tuned, the first ARES module 112 may generate predicted power or predicted operating parameters 118 (e.g., firing temperature, position on the IGV, etc.) of the gas turbine system 11 to the model-based control module 120.The model-based control module 120 may analyze the predicted operating parameters 118 along with other information or data discussed herein to adjust the operating parameters of the gas turbine system 11 .

[0027] The measured or detected operating characteristic(s) data 108 and ambient fluid pressure data 110 may also be provided directly to a measurement conditioning and first mass flow (MRFMF) module 122 (hereinafter “MRFMF module 122”). The MRFMF module 122 may receive or acquire the measured operating characteristic(s) data 108 and ambient fluid pressure data 110 and may perform various processes using the measured data. For example, the MRFMF module 122 may be configured to condition the measured operating characteristic(s) data 108 and ambient fluid pressure data 110. That is, the MRFMF module 122 may condition, change, scale, and / or alter the measured data values of the operating characteristic(s) data 108 and ambient fluid pressure data 110 measured by the sensor(s) 104, 106. In a non-limiting example, the MRFMF module 122 may adjust the measured operating characteristic(s) data 108 and the ambient fluid pressure data 110 based on predetermined measurement uncertainties of the sensor(s) 104 and pressure sensor 106, as well as calculated operating principles of the gas turbine system 11. More specifically, each sensor 104, 106 utilized within the gas turbine system 11 may include predetermined uncertainties, sensitivities, and / or data detection deviations based on operational and / or manufacturing variables. As such, an operator or user of the system 10, including the gas turbine system 11 and the control system 102, may understand that data values associated with the measured operating characteristic(s) data 108 and the measured ambient fluid pressure data 110 may be skewed based on known uncertainties.

[0028] Using the measured operating characteristic(s) data 108 and the ambient fluid pressure data 110, the MRFMF module 122 can calculate an operating principle of the gas turbine system 11 using the measured operating characteristic(s) data 108 and the ambient fluid pressure data 110 as inputs. The operating principle of the gas turbine system 11 can include any calculable thermodynamic equation used in estimating the operational details of the gas turbine system 11. For example, the calculated operating principle of the gas turbine system 11 can include the law of conservation of energy (e.g., ΔU=QW) and / or the law of conservation of mass (e.g., ρ in A in V in =ρ out A out V out), etc. This enables the MRFMF module 122 to compare the calculated operating principle of the gas turbine system 11 with a predetermined operating principle of the gas turbine system 11. The predetermined operating principle can be based on an operating model of the gas turbine system 11 similar to that discussed herein in connection with the first ARES module 112. That is, the operational model of gas turbine system 11 used by MRFMF module 122 may be based at least in part on the performance or operation of an idealized, optimized, unrestrained, and / or “new clean system” of the same model (e.g., same build parameters, same compressor / combustor / turbine component types, etc.) as gas turbine system 11. Additionally, the predetermined operating principle may be the same principle or thermodynamic equation (e.g., law of conservation of energy) and may be based on the operational module operating under the same conditions as the measured operating characteristic(s) data 108 and ambient fluid pressure data 110. For example, the MRFMF module 122 may determine, calculate, or obtain the predetermined operating principle value based on the measured operating characteristic(s) data 108 and the ambient fluid pressure data 110. If there is a mismatch between the calculated operating principle of the gas turbine system 11 and the predetermined operating principle of the gas turbine system 11, the MRFMF module 122 may adjust the values of the measured operating characteristic(s) data 108 and the ambient fluid pressure data 110. 122may adjust each value of the measured operating characteristic(s) data 108 and ambient fluid pressure data 110 based on a predetermined measurement uncertainty of each sensor(s) 104, 106 that acquires, measures, and / or detects values during operation of the gas turbine system 11.

[0029] Once adjusted, the MRFMF module 122 may recalculate the operating principle of the gas turbine system 11 using the adjusted operating characteristic(s) data 108 and the adjusted ambient fluid pressure data 110 and compare the recalculated operating principle with the predetermined operating principle of the gas turbine system 11 based on the model. 122 may also readjust the values of the adjusted operating characteristic(s) data 108 and the adjusted ambient fluid pressure data 110 until the calculated operating principle of the gas turbine system 11 is substantially equal to the predetermined operating principle of the gas turbine system 11. 122 determines that the calculated operating principle of the gas turbine system 11 is substantially equal to the predetermined operating principle of the gas turbine system 11, the value of the adjusted measured operating characteristic(s) data 108ADJ and the value of the measured ambient fluid pressure data 110ADJ may ultimately be adjusted, may be accurate, and / or may be “compensated” for the predetermined measurement uncertainty for each sensor 104, 106.

[0030] As shown in FIG. 2, the adjusted measured operating characteristic(s) data 108ADJ and the adjusted measured ambient fluid pressure data 110ADJ are input to the MRFMF module 122 and / or may be further utilized by other parts of the control system 102, e.g., the MRFMF module 122may also be configured to estimate an actual or first mass flow rate 124 of the compressor 12 (see FIG. 1 ) of the gas turbine system 11. The first mass flow rate 124 of the compressor 12 may represent an estimated flow rate at the time and / or under operating conditions at which the operating characteristic(s) data 108 and the ambient fluid pressure data 110 are measured by the sensors 104, 106, as discussed herein. Additionally, and as discussed herein, the first mass flow rate 124 may also represent an “aged” mass flow rate of the compressor 12 based, for example, on operating time, impurities accumulated on the features (e.g., blades and nozzles) of the compressor 12, etc. 122 may estimate the first mass flow rate 124 based on the value of the adjusted measured operating characteristic(s) data 108ADJ and the value of the adjusted measured ambient fluid pressure data 110ADJ. In a non-limiting example, the adjusted operating characteristic data 108ADJ may correspond to an adjusted value of the compressor inlet temperature based on the fluid 20 used by the compressor 12 (see FIG. 1 ). Using the adjusted value of the compressor inlet temperature (e.g., the adjusted measured operating characteristic(s) data 108ADJ), the adjusted measured ambient fluid pressure data 110ADJ, and known or predetermined information of the gas turbine system 11 and / or the compressor 12, the MRFMF module 122 may estimate a first mass flow rate 124 of the compressor 12. As discussed herein, the estimated first mass flow rate 124 may be provided to different portions or modules of the control system 102 for further processing to assist in adjusting operating parameters of the gas turbine system 11.

[0031] The adjusted measured operating characteristic(s) data 108ADJ and the adjusted measured ambient fluid pressure data 110ADJ may also be utilized by other portions of the control system 102. For example, and as shown in FIG. 122forms or generates adjusted measured operating characteristic(s) data 108ADJ and adjusted measured ambient fluid pressure data 110ADJ, 122 may provide the adjusted measured operating characteristic(s) data 108ADJ and the adjusted measured ambient fluid pressure data 110ADJ to a second ARES module 126 of the control system 102. The second ARES module 126 may be configured substantially similar to the first ARES module 112 discussed herein. However, unlike the first ARES module 112, the second ARES module 126 may be configured to utilize separate inputs or data and then provide separate outputs or calculations. For example, the second ARES module 126 may be configured to receive / acquire and use the adjusted measured operating characteristic(s) data 108ADJ and the adjusted measured ambient fluid pressure data 110ADJ to calculate a second mass flow rate 128 of the compressor 12 of the gas turbine system 11. The second mass flow rate 128 may represent an ideal, optimized, unrestrained, desired, "best-case scenario," and / or "new clean compressor" performance or operation of the compressor 12 at the time and / or under operating conditions as the operating characteristic(s) data 108 and ambient fluid pressure data 110 are measured by the sensors 104, 106. Also, unlike the first ARES module 112, the second ARES module 126 may not include a filter (e.g., a Kalman filter) because the second ARES module 126 utilizes a predetermined operating model of the gas turbine system 11 as discussed herein.

[0032] The second ARES module 126 receives the adjusted measured operating characteristic(s) data 108 generated by the MRFMF module 122. ADJ and adjusted measured ambient fluid pressure data 110 ADJ The second mass flow rate 128 of the compressor 12 may be calculated based on and / or using the adjusted operating characteristic data 108.ADJ may correspond to an adjusted value of the compressor inlet temperature based on the fluid 20 used by the compressor 12 or of the fluid 20 (see FIG. 1 ). The adjusted value of the compressor inlet temperature (e.g., adjusted measured operating characteristic(s) data 108 ADJ ), adjusted measured ambient fluid pressure data 110 ADJ , and a predetermined operating model of the gas turbine system 11, the second ARES module 126 can calculate a second mass flow rate 128 for the compressor 12. Specifically, the second ARES module 126 can calculate a second mass flow rate 128 for the compressor 12 using the adjusted measured operating characteristic(s) data 108 ADJ and adjusted measured ambient fluid pressure data 110 ADJ The second mass flow rate of the compressor 12 may be calculated based on a predetermined operating model of the gas turbine system 11 operating under identical conditions. Similar to the model used by the MRFMF module 122, the predetermined operating model used by the second ARES module 126 may be based at least in part on ideal, optimized, unrestrained, and / or “fresh clean” performance or operation of the same model (e.g., same build parameters, same compressor / combustor / turbine component types, etc.) as the gas turbine system 11. As such, once calculated, the second mass flow rate 128 may not need to be changed or adjusted due to tuning (e.g., Kalman filter tuning) within the second ARES module 126, because the calculated value of the second mass flow rate 128 may represent the desired mass flow rate of the compressor 12 under the same operating conditions as those used to estimate the first mass flow rate 124. Additionally or alternatively, the second ARES module 126 may use additional tuned operating characteristic(s) data 108 in calculating the second mass flow rate 128. ADJ For example, the second ARES module 126 may use an adjusted measured fuel flow rate of the gas turbine system 11 supplied by the fuel supply 28 (see FIG. 1 ) when calculating the second mass flow rate 128.

[0033] Once the first mass flow rate 124 is estimated by the MRFMF module 122 and the second mass flow rate is calculated by the second ARES module 126, the respective mass flow rates may be used to determine a mass flow loss 130 for the compressor 12 of the gas turbine system 11. That is, the mass flow loss 130 may be calculated based on the adjusted measured operating characteristic(s) data 108. ADJ and adjusted measured ambient fluid pressure data 110 ADJ The determined mass flow loss 130 may be determined between and / or based on the estimated first mass flow rate 124 and the calculated second mass flow rate 128 of the compressor 12 of the gas turbine system 11 operating under identical conditions. In the non-limiting example shown in FIG. 2 , the estimated first mass flow rate 124 may be subtracted from the calculated second mass flow rate 128 to determine the mass flow loss 130. In another non-limiting example, the mass flow loss 130 may be determined as a percentage loss between the estimated first mass flow rate 124 and the calculated second mass flow rate 128 of the compressor 12. The determined mass flow loss 130 of the compressor 12 of the gas turbine system 11 may then be provided to a flow loss module 132 of the control system 102 for further processing to assist in adjusting the operating parameters of the gas turbine system 11.

[0034] 2 as being first determined and then provided to the flow loss module 132, it may alternatively be determined by the flow loss module 132. That is, in yet another non-limiting example, both the estimated first mass flow rate 124 and the calculated second mass flow rate 128 of the compressor 12 may be provided separately to the flow loss module 132, which may be configured to determine the mass flow loss 130 between the estimated first mass flow rate 124 and the calculated second mass flow rate 128, as discussed herein.

[0035] The flow loss module 132 may receive and / or obtain the determined mass flow loss 130 of the compressor 12 and analyze the determined mass flow loss 130 to determine whether and how operating parameters of the gas turbine system may be adjusted. More specifically, the flow loss module 132 may analyze the determined mass flow loss 130 and may be configured to provide instruction input and / or data 134 regarding how to adjust an operating limit (OL) threshold of the compressor 12 of the gas turbine system 11 to improve operating efficiency and / or power output and to reduce the risk of fouling in the compressor 12. The adjustment of the OL threshold of the compressor 12 may be based on the mass flow loss 130 between the estimated first mass flow rate 124 and the calculated second mass flow rate 128, as discussed.

[0036] Referring to Figure 3, with continued reference to Figure 2, a compressor 12 operating graph including various thresholds is shown. The graph in Figure 3 may further help explain the function and / or operation of the flow loss module 132 and / or the instructions 134 generated by the flow loss module 132 to assist in adjusting the operating parameters of the gas turbine system 11 during operation. As shown in Figure 3, an operating graph or relationship for the compressor 12 is shown with respect to the compressor pressure ratio (CPR) and the flow rate of fluid within the compressor 12, as represented by the corrected flow (Wc) of the gas turbine system 11 (see Figure 1). Two separate operating relationships are depicted in Figure 3: a new, clean running compressor operating relationship 136 (e.g., solid line) and an deteriorated compressor operating relationship (e.g., long dashed line). The degradation of the compressor 12 that subsequently forms the degraded relationship 138 may be the result of the compressor 12 having operated for a certain number of hours, based on detected or calculated part or component degradation (e.g., blade / nozzle degradation or creep), the detected or calculated operating efficiency of the gas turbine system 11, etc. Additionally, as shown in FIG. 3 , the new clean operating relationship 136 of the compressor 12 and the degraded relationship 138 of the compressor 12 may each include surge thresholds 140, 142. The surge thresholds 140, 142 may represent pressure ratios of the compressor 12 at which fouling may occur, e.g., pressure ratios of the compressor 12 at which fluid flow separates from the blades / nozzles in the compressor and reverses direction, based on the gas turbine system 11 relationships detected by the sensors 104, 106 and / or operating characteristic(s). In a non-limiting example, the surge thresholds 140, 142 for the new clean operating relationship 136 of the compressor 12 and the degraded relationship 138 of the compressor 12, respectively, may be determined, calculated, and / or known in advance by the mass flow loss module 132 of the control system 102 (see FIG. 2).

[0037] As discussed herein, the mass flow loss module 132 (see FIG. 2 ) may adjust the OL threshold 144 of the compressor 12 of the gas turbine system 11 during operation based on the determined mass flow loss 130 of the compressor 12. As shown in FIG. 3 and as discussed herein, the OL threshold 144 may represent an upper limit on the operating pressure ratio of the compressor 12 during operation of the gas turbine system 11. Additionally, the OL threshold 144 may depend, at least in part, on operational characteristic(s) of the gas turbine system 11, including, but not limited to, the ambient fluid pressure of the gas turbine system 11 sensed by the sensor 106, the operating speed of the shaft 34 of the gas turbine system 11, the operating time of the gas turbine system 11, and operational degradation within the compressor 12. Furthermore, the OL threshold 144, and the adjustment of the OL threshold 144, may depend on the mass flow loss 130 between the estimated first mass flow rate 124 and the calculated second mass flow rate 128. That is, the flow loss module 132 (see FIG. 2 ) can take the determined mass flow loss 130 and analyze and / or compare the mass flow loss 130 in light of the new clean operating relationship 136, the degraded relationship 138, and predetermined surge thresholds 140, 142 to determine whether and how to adjust the OL threshold 144 of the compressor 12. As discussed herein, the flow loss module 132 can provide instructions 134 to the model-based control module 120 that determine how to adjust the OL threshold 144 of the compressor 12.

[0038] In a non-limiting example, the flow loss module 132 may receive the mass flow loss 130 indicating that the difference between the estimated first mass flow rate 124 and the calculated second mass flow rate 128 is minimal, less than a predetermined difference value, and / or within or below a predetermined range. The flow loss module 132 may determine that a minimum value or a value within a predetermined range for the mass flow loss 130 may indicate that the compressor 12 of the gas turbine system 11 is operating as efficiently as possible or near a desired / optimum operating efficiency (e.g., substantially equal to a model operating efficiency), and thus the risk or likelihood of fouling is substantially low. This may also be an indication that the compressor 12 of the gas turbine system 11 has not been operated for an extended period of time and / or may closely resemble an ideal, optimized, and / or “new clean” compressor 12 in the gas turbine system 11. As such, the flow loss module 132 may provide instructions 134 to the model-based control module 120 indicating that the OL threshold 144 may be increased and / or the margin between the OL threshold 144 and the surge threshold 140 may be decreased based on the mass flow loss 130. As shown in FIG. 3 , the OL threshold 144A may be located near the surge threshold 140 and / or the margin separating the OL threshold 144A and the surge threshold 140 may be minimal. Thus, if the gas turbine system 11, and more specifically the compressor 12, is determined to have minimal flow loss, the compressor 12 may operate at an OL threshold 144A that is lower than the surge threshold 140, avoiding fouling of the gas turbine system 11 but increasing operating efficiency and / or power output.

[0039] However, as the compressor 12 and / or gas turbine system 11 deteriorate over time and / or the operating characteristic(s) data 108 and / or ambient fluid pressure data 110 deteriorate or reduce the efficiency of the gas turbine system 11, the mass flow loss 130 of the compressor 12 may increase. If the mass flow loss 130 exceeds a minimum amount, exceeds a predetermined differential value, and / or increases outside or beyond a predetermined range, the mass flow loss module 132 may further adjust the OL threshold 144. In response to determining that the mass flow loss 130 is increasing in value (and over time) due to compressor deterioration, the mass flow loss module 132 may provide instructions 134 to the model-based control module 120 indicating that the OL threshold 144 may be decreased and / or the margin between the OL threshold 144 and the surge threshold 140 may be increased, based on the mass flow loss 130. As shown in FIG. 3 , the instructions 134 provided by the mass flow loss module 132 may indicate that the compressor 12 should operate at an OL threshold 144B, 144C, or 144D as the mass flow loss 130 increases. The reduced OL thresholds 144B, 144C, and 144D may be determined by the mass flow loss module 132 based on the value of the mass flow loss 130, as discussed herein. As shown in FIG. 3 , the reduced OL thresholds 144B, 144C, and 144D may have a larger margin between them and the predetermined surge thresholds 140 and 142 compared to the OL threshold 144A. Operating the compressor 12 at the OL thresholds 144B, 144C, and 144D can mitigate and / or reduce the risk of fouling based on the operating pressure ratio of the degraded compressor 12.

[0040] As discussed herein, the instructions 134 provided by the mass flow loss module 132 to the model-based control module 120 may indicate a desired OL threshold 144 for the compressor 12 based on the mass flow loss 130. Additionally, the instructions 134 may provide input and / or information related to operating parameters of the compressor 12 and / or the gas turbine system 11 that may be adjusted to ensure the compressor 12 operates at the OL threshold 144. For example, the flow loss module 132 may provide the instructions 134 for adjusting the OL threshold 144 by adjusting the rotational speed of a shaft 34 of the gas turbine system 11, at least a portion of which is disposed within and / or is a part of the compressor 12 (see FIG. 1 ). Additionally or alternatively, the flow loss module 132 may provide the instructions 134 for adjusting the OL threshold 144 by adjusting the position of an IGV 18 of the compressor 12 of the gas turbine system 11 (see FIG. 1 ). Adjusting the rotational speed of the shaft 34 and / or adjusting the position of the IGV 18 may determine the amount of fluid 20 introduced and / or compressed by the compressor 12 of the gas turbine system 11, which may in turn affect (e.g., increase, decrease) the operating pressure ratio and / or OL threshold 144 of the compressor 12.

[0041] In the non-limiting example discussed herein, determining the mass flow loss 130 may allow the compressor 12 to operate at a higher OL threshold 144A, for example, during the start-up life of the gas turbine system 11 and / or when operating conditions of the gas turbine system 11 are ideal or optimal. This increases the power output of the gas turbine system 11. Furthermore, by dynamically, continuously, or intermittently adjusting the OL threshold 144 of the compressor 12 based on the determined mass flow loss 130, the compressor 12 may operate at improved efficiency while still reducing and / or eliminating the risk of fouling. That is, by determining the mass flow loss 130, the control system 102 may operate the compressor 12 at different OL thresholds 144 over its operating life to improve both the operating efficiency and power output of the gas turbine system and reduce or eliminate the risk of fouling in the compressor 12.

[0042] 4 shows a flowchart illustrating non-limiting exemplary processes for adjusting operating parameters of gas turbine system 11. These processes may be performed by at least one computing device 100 comprising control system 102 (see FIG. 1 ), for example, as described herein. In other cases, these processes may be performed according to a computer-implemented method for adjusting operating parameters of gas turbine system 11. In yet other embodiments, these processes may be performed by executing computer program code on computing device(s) 100 and causing computing device(s) 100, and in particular control system 102, to adjust operating parameters of gas turbine system 11.

[0043] In process P1, operating characteristic(s) of the gas turbine system may be measured and / or calculated. More specifically, operating characteristic(s) of the gas turbine system and ambient fluid pressure surrounding the gas turbine system may be measured and / or calculated. The operating characteristic(s) and ambient fluid pressure may be measured using sensor(s) located adjacent to and / or within the gas turbine system. Alternatively, the operating characteristic(s) of the gas turbine system may be calculated based on information or data obtained by sensors located adjacent to and / or within the gas turbine system. The measured / calculated operating characteristic(s) may include, but are not limited to, compressor inlet temperature based on the fluid used in the compressor of the gas turbine system, exhaust temperature of the combustion gases flowing through the exhaust pipe, ambient humidity of the gas turbine system or the ambient humidity surrounding the gas turbine system, compressor discharge temperature (e.g., temperature of the compressed fluid), compressor discharge pressure (e.g., pressure of the compressed fluid), fuel flow rate of the gas turbine system supplied by a fuel supply connected to the combustor, power output of the gas turbine system based, for example, on operation of a generator of the gas turbine system, compressor inlet temperature, inlet pressure drop experienced in the compressor / IGV, exhaust pressure drop experienced in the turbine components, position of the IGV (e.g., angle or degree of opening), and inlet extraction thermal valve position.

[0044] In process P2, the measured / calculated operating characteristic(s) and ambient fluid pressure may be adjusted. More specifically, values or data of the measured / calculated operating characteristic(s) and ambient fluid pressure may be adjusted based on a predetermined measurement uncertainty of the sensors measuring the operating characteristic(s) and ambient fluid pressure, respectively. The predetermined uncertainty of the sensors utilized within the gas turbine system may include or be related to sensitivity and / or data detection deviation based on operational and / or manufacturing variables. Adjusting the measured / calculated operating characteristic(s) and ambient fluid pressure may further include calculating an operating principle of the gas turbine system using the measured operating characteristic(s) and the measured ambient fluid pressure. The operating principle of the gas turbine system may include any calculable thermodynamic equation used in estimating the operational details of the gas turbine system, such as the law of conservation of energy and / or the law of conservation of mass. Once calculated, the operating principle of the gas turbine system may be compared to the predetermined operating principle of the gas turbine. The predetermined operating principle may be based on an operating model of the gas turbine system operating under identical conditions to the measured operating characteristics and measured ambient fluid pressure. Additionally, the operating model of the gas turbine system may be based at least in part on ideal, optimized, unrestrained, and / or “new clean” performance or operation of an identical model of the gas turbine system (e.g., identical build parameters, identical compressor / combustor / turbine component types, etc.). Finally, adjusting the measured / calculated operating characteristic(s) and ambient fluid pressure may further include adjusting the measured operating characteristic(s) and ambient fluid pressure based on a predetermined measurement uncertainty of the sensor(s) until the calculated operating principle of the gas turbine system is substantially equal to the predetermined operating principle of the gas turbine system.

[0045] In process P3, a first mass flow rate of a compressor of the gas turbine system is estimated. The estimated first mass flow rate of the compressor of the gas turbine system may be based on the adjusted measured operating characteristic(s) and the adjusted measured ambient fluid pressure. The first mass flow rate of the compressor 12 may represent an estimated flow rate at the time and / or under the operating conditions at which the operating characteristic(s) data and the ambient fluid pressure data are measured by the sensors 104, 106, and / or at the time and / or under the operating conditions at which the operating characteristic(s) data and the ambient fluid pressure data are adjusted, as discussed herein. Additionally, and as discussed herein, the first mass flow rate may also represent an “aged” mass flow rate of the compressor based, for example, on operating time, impurities accumulated on the compressor's features (e.g., blades and nozzles), etc.

[0046] In process P4, a second mass flow rate of a compressor of the gas turbine system may be calculated. More specifically, the second mass flow rate may be calculated based on the adjusted measured operating characteristic(s) and the adjusted measured ambient fluid pressure surrounding the gas turbine system. Calculating the second mass flow rate may further include calculating the second mass flow rate of the compressor based on a predetermined operating model of the gas turbine system operating under identical conditions with the adjusted measured operating characteristic(s) and the adjusted measured ambient fluid pressure. In a non-limiting example, the predetermined operating model of the gas turbine system may be substantially similar to the model used in process P3. The second mass flow rate may represent ideal, optimized, unrestrained, desired, and / or “best-case scenario” performance or operation of the compressor at the time and / or under the operating conditions at which the operating characteristic(s) data and the ambient fluid pressure data are measured / calculated by sensors (e.g., process P1).

[0047] In process P5, a mass flow loss of a compressor of the gas turbine system may be determined. More specifically, a mass flow loss between an estimated first mass flow rate (e.g., process P3) and a calculated second mass flow rate (e.g., process P4) may be determined. In a non-limiting example, the estimated first mass flow rate may be subtracted from the calculated second mass flow rate to determine the mass flow loss. In another non-limiting example, the mass flow loss may be determined as a percentage loss between the estimated first mass flow rate and the calculated second mass flow rate of the compressor.

[0048] In process P6, an operational limit (OL) threshold of the compressor of the gas turbine system may be adjusted. More specifically, the OL threshold of the compressor may be adjusted based on a determined mass flow loss of the compressor determined by the estimated first mass flow rate and the calculated second mass flow rate. The OL threshold of the compressor may be lower than a predetermined surge threshold of the compressor. In a non-limiting example, the OL threshold may represent an upper limit of the operating pressure ratio of the compressor during operation, while the predetermined surge threshold may represent a compressor pressure ratio at which adhesion may occur, e.g., a compressor pressure ratio at which fluid flow separates from blades / nozzles in the compressor and reverses direction. Each of the OL threshold and the predetermined surge threshold may depend at least in part on operating characteristics of the gas turbine system, including, but not limited to, ambient fluid pressure surrounding the gas turbine system, the operating speed of the shaft of the gas turbine system, the operating time of the gas turbine system, and operational degradation within the compressor. Adjusting the OL threshold of the compressor in process P6 may further include adjusting the operating speed of a shaft of the gas turbine system and / or adjusting the position (e.g., open, closed) of an inlet guide vane of the compressor of the gas turbine system. Adjusting the operating speed of the shaft and / or adjusting the position of the inlet guide vane may determine the amount of fluid introduced and / or compressed by the compressor of the gas turbine system, which may in turn affect (e.g., increase, decrease) the operating pressure ratio and / or OL threshold of the compressor.

[0049] Thus, adjusting the compressor's OL threshold may also include increasing or decreasing the margin between the compressor's OL threshold and a predetermined surge threshold based on the determined mass flow loss. In a non-limiting example, the margin between the OL threshold and the predetermined surge threshold may be decreased, and / or the OL threshold may be moved closer to the surge threshold but remain spaced apart in response to a determination that the mass flow loss is minimal and / or within a predetermined range. The flow loss module 132 may determine that a minimal mass flow loss indicates that the compressor of the gas turbine system is operating as efficiently as possible or near a desired / optimal operating efficiency, and therefore the risk or likelihood of fouling is substantially low, so the margin may be decreased and / or the OL threshold may be moved closer to the predetermined surge threshold. However, as the mass flow loss increases and / or increases beyond the predetermined range, the margin between the compressor's OL threshold and the predetermined surge threshold may increase. That is, an increase in the determined mass flow loss may indicate that the compressor is not operating as efficiently as possible / desired, and therefore the risk of fouling may increase. Thus, the OL threshold may be decreased and / or the margin between the OL threshold and the surge threshold may be increased to mitigate and / or reduce the risk of fouling based on the operating pressure ratio of the compressor. In this non-limiting example, determining the mass flow loss may allow the compressor to operate at a higher OL threshold, for example, during the start-up life of the gas turbine system and / or when the operating conditions of the gas turbine system are ideal, optimal, and / or "new clean system," thereby increasing the power output of the gas turbine system.

[0050] It will be understood that other processes or operations not shown in the flowcharts shown and described herein may also be performed. The order of the processes may also be rearranged according to various embodiments. For example, although shown as being performed sequentially, processes P3 and P4 may be performed simultaneously. In addition, intermediate processes may be performed between one or more described processes. Furthermore, as discussed herein, processes P1-P6 may be performed sequentially in succession, and / or process P1 may be performed continuously or intermittently, independent of the execution of other processes, to improve operation of the gas turbine system and / or to assist in adjusting operating parameters of the gas turbine system. The process flows shown and described herein should not be considered limiting to various embodiments.

[0051] 5 illustrates an exemplary environment including computing device(s) 100 capable of performing various process steps described herein to control operation and / or adjust operating parameters of gas turbine system 11. In particular, computing device(s) 100 are shown as including a control system 102 that enables computing device(s) 100 to control operation and / or adjust operating parameters of gas turbine system 11 by performing one or more of the process steps of the present disclosure.

[0052] Computing device(s) 100 are shown comprising a storage component 146, a processing component 148, an input / output (I / O) component 150, and a bus 152. Additionally, computing device(s) 100 are shown in communication with the gas turbine system 11 and / or sensors 104, 106. As known in the art, generally, the processing component 148 executes computer program code, such as for the control system 102, stored in the storage component 146 or an external storage component (not shown). While executing the computer program code, the processing component 148 can read and / or write data, such as for the control system 102, from the storage component 146 and / or the I / O component 150. The bus 152 provides a communication link between each of the components of the computing device(s) 100. I / O components 150 may include any device that allows user(s) 153 to interact with computing device(s) 100 or any device that allows computing device(s) 100 to communicate with one or more other computing devices. Input / output devices (including but not limited to keyboards, displays, pointing devices, etc.) may be coupled to the system directly or through intervening I / O controllers.

[0053] In any event, computing device(s) 100 may include any general-purpose computing product (e.g., personal computer, server, handheld device, etc.) capable of executing computer program code installed by user 153. However, it will be understood that computing device(s) 100 and control system 102 are merely representative of various possible equivalent computing devices capable of performing the various process steps of the present disclosure. To this end, in other embodiments, computing device(s) 100 may comprise any special-purpose computing product including hardware and / or computer program code for performing particular functions, any computing product including a combination of special-purpose and general-purpose hardware / software, etc. In either case, the program code and hardware may be created using standard programming and engineering techniques, respectively.

[0054] Similarly, computing device(s) 100 are merely illustrative of various types of computer infrastructure for implementing the present disclosure. For example, in one embodiment, computing device(s) 100 comprise two or more computing devices (e.g., a server cluster) communicating via any type of wired and / or wireless communication link, such as a network, shared memory, etc., to perform various process steps of the present disclosure. When the communication link comprises a network, the network can include any combination of one or more types of networks (e.g., the Internet, a wide area network, a local area network, a virtual private network, etc.). Network adapters can also be coupled to the system to enable the data processing system to couple to other data processing systems or remote printers or storage devices via intervening private or public networks. Modems, cable modems, and Ethernet cards are just a few of the currently available types of network adapters. Regardless, communications between computing devices can utilize any combination of various types of transmission technologies.

[0055] As described above and discussed herein, the control system 102 enables the computing device(s) 100 to control the operation and / or adjust operating parameters of the gas turbine system 11. To this end, the control system 102 is shown as including various modules, including a first ARES module 112, a model-based control module 120, a measurement regulation and first mass flow (MRFMF) module 122, a second ARES module 126, a flow loss module 132, measured / calculated operating characteristic(s) and ambient pressure data 108, 110, operating principle data 154, and predetermined operating model data 156. The operation of each of these data is further described herein. However, it is understood that some of the various data shown in FIG. 5 may be implemented independently, combined, and / or stored in memory for one or more separate computing devices included in the computing device(s) 100. Further, it should be understood that some of the data and / or functionality may not be implemented, or additional data and / or functionality may be included as part of computing device(s) 100.

[0056] The flowcharts and block diagrams in the figures illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of the present disclosure. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code, which includes one or more executable instructions for implementing the specified logical function(s). It should also be noted that in some alternative implementations, the functions described in the blocks may occur out of the order described in the figures. For example, two blocks shown in succession may, in fact, be executed substantially concurrently or may sometimes be executed in the reverse order, depending on the functionality involved in the blocks. It should also be noted that each block of the block diagrams and / or flowchart diagrams, and combinations of blocks in the block diagrams and / or flowchart diagrams, may be realized by a dedicated hardware-based system that performs the specified functions or operations, or by a combination of dedicated hardware and computer instructions.

[0057] As described herein, various systems and components are described as "obtaining" data (e.g., obtaining operating characteristic(s) 108, etc.). It is understood that the corresponding data can be obtained using any solution. For example, the corresponding system / component can generate data and / or be used to generate data, retrieve data from one or more data stores (e.g., databases), receive data from another system / component, etc. When data is not generated by a particular system / component, it is understood that another system / component, separate from the illustrated system / component, can be implemented that generates and provides data to the system / component and / or stores data for access by the system / component.

[0058] As will be appreciated by those skilled in the art, the present disclosure may be embodied as a system, a method, or a computer program product. Accordingly, the present disclosure may take the form of an entirely hardware embodiment, an entirely software embodiment (including firmware, resident software, microcode, etc.), or an embodiment combining software and hardware aspects, all of which may be referred to generically herein as a "circuit," "module," and / or "system." Furthermore, the present disclosure may take the form of a computer program product embodied in any tangible medium of expression having computer-usable program code embodied in the medium.

[0059] Any combination of one or more computer-usable or computer-readable media may be utilized. The computer-usable or computer-readable medium may be, for example, but not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, device, or propagation medium. More specific examples (a non-exhaustive list) of computer-readable media include an electrical connection having one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), optical fiber, a portable compact disc read-only memory (CD-ROM), an optical storage device, a transmission medium such as a medium supporting the Internet or an intranet, or the like, or a magnetic storage device. It should be noted that the computer-usable or computer-readable medium may also be paper or another suitable medium on which the program is printed, and the program may be captured electronically, for example, via optical scanning of the paper or other medium, and then compiled, interpreted, or processed in an appropriate manner as needed, and then stored in computer memory. In the context of this specification, a computer-usable medium or computer-readable medium may be any medium that can contain, store, communicate, propagate, or transport a program for use by or in connection with an instruction execution system, apparatus, or device. A computer-usable medium may include a propagated data signal with computer-usable program code embodied in baseband or as part of a carrier wave. The computer-usable program code may be transmitted using any suitable medium, including but not limited to wireless, wired, fiber optic cable, RF, etc.

[0060] Computer program code for carrying out operations of the present disclosure may be written in any combination of one or more programming languages, including object-oriented programming languages such as Java, Smalltalk, C++, etc., and conventional procedural programming languages, such as the "C" programming language or similar programming languages. The program code may execute entirely on the user's computer, partially on the user's computer, as a separate software package, partially on the user's computer, partially on a remote computer, or entirely on a remote computer or server. In the latter scenario, the remote computer may be connected to the user's computer via any type of network, including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computer (e.g., via the Internet using an Internet Service Provider).

[0061] The present disclosure is described herein with reference to flowcharts and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the disclosure. It will be understood that each block of the flowcharts and / or block diagrams, and combinations of blocks in the flowcharts and / or block diagrams, can be implemented by computer program instructions. These computer program instructions may be provided to a processor of a general-purpose computer, special-purpose computer, or other programmable data processing apparatus to produce a machine, whereby the instructions, executed by the processor of the computer or other programmable data processing apparatus, provide means for performing the function / acts specified in the block or blocks of the flowcharts and / or block diagrams.

[0062] These computer program instructions may also be stored on a computer-readable medium that can direct a computer or other programmable data processing apparatus to function in a particular manner, whereby the instructions stored on the computer-readable medium produce an article of manufacture including instruction means that implements the function / acts specified in the block or blocks of the flowcharts and / or block diagrams.

[0063] The computer program instructions may also be loaded into a computer or other programmable data processing apparatus to cause the computer or other programmable apparatus to perform a series of operational steps to generate a computer-implemented process, whereby the instructions, executed by the computer or other programmable apparatus, provide a process for implementing the function / acts specified in the block or blocks of the flowcharts and / or block diagrams.

[0064] The technical effect is to provide a system for adjusting operating parameters of a gas turbine system to improve operating efficiency and / or power generation. Specifically, the system may dynamically adjust an operating limit threshold of the gas turbine system based on a mass flow loss of a compressor of the gas turbine system. Adjusting the operating limit threshold may increase or decrease the margin between the operating limit threshold and a surge threshold of the compressor based on the mass flow loss of the compressor.

[0065] The terminology used herein is merely for the purpose of describing particular embodiments and is not intended to limit the present disclosure. As used herein, the singular forms "a," "an," and "the" are intended to include the plural unless expressly stated otherwise. It will be further understood that the terms "comprise" and / or "comprising," as used herein, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or sets thereof. "Optional" or "optionally" means that the subsequently-stated event or circumstance may or may not occur, and the description includes instances in which the event occurs and instances in which it does not occur.

[0066] As used herein throughout this specification and claims, approximation language can be applied to modify any quantitative expression that can reasonably vary without resulting in a change in the basic function involved. Thus, values modified by terms such as "approximately," "about," and "substantially" are not limited to the exact value specified. In at least some instances, approximation language can correspond to the precision of the instrument used to measure the value. Here, and throughout this specification and claims, range limitations are combinable and / or interchangeable, and unless the context and language dictate otherwise, such ranges are specified and include all subranges encompassed therein. "About," as applied to a particular value in a range, applies to both values and can indicate + / - 10% of the stated value, unless specifically dependent on the precision of the instrument used to measure the value.

[0067] The corresponding structure, material, acts, and equivalents of all means-plus-function or step-plus-function elements in the appended claims are intended to encompass any structure, material, or act for performing that function in combination with other specifically claimed claim elements. The description of the present disclosure has been presented for purposes of illustration and description and is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the disclosure. The present embodiments were chosen and described in order to best explain the principles and practical application of the disclosure and to enable others skilled in the art to understand the disclosure in its various embodiments with various modifications as suited to the particular uses envisioned. [Explanation of symbols]

[0068] 10 Systems 11 Gas Turbine System 12 Compressor 18 Inlet guide vane (IGV) 20 Surrounding fluid 22 Compressed Fluids 24 Combustor 26 Fuel 28 Fuel supply source 30 Combustion Gas 32 Turbine Components 34 Shaft 36 Generator 38 Exhaust pipe 100 computing devices 102 Control System 104, 106 Sensors 108 Operating Characteristics Data 108 ADJ Adjusted measured operating characteristic data 110 Ambient Fluid Pressure Data 110 ADJ Adjusted measured ambient fluid pressure data 112 First ARES Module 118 Predicted Operating Parameters 120 Model-Based Control Module 122 Measurement Conditioning and First Mass Flow (MRFMF) Module 124 First Mass Flow Rate 126 Second ARES Module 128 Second Mass Flow Rate 130 Mass flow loss 132 Flow Loss Module 134 Command 136 New Clean Compressor Operating Relationships 138 Deteriorating Relationships 140, 142 Surge threshold 144, 144A, 144B, 144C Operating Limit (OL) Threshold 146 Storage Components 148 Processing Components 150 Input / Output (I / O) Components 152 Bus 153 users 154 Operating principle data 156 Predetermined Operational Model Data

Claims

1. A system (10) comprising at least one computing device (100), the at least one computing device (100) comprising: A gas turbine system (11) comprising a compressor (12) having inlet guide vanes (18); at least one sensor (104) disposed within or adjacent to the gas turbine system (11), the at least one sensor (104) measuring an operating characteristic of the gas turbine system (11); and a pressure sensor (106) disposed adjacent to the gas turbine system (11) for measuring the pressure of an ambient fluid (20) surrounding the gas turbine system (11); and wherein the at least one computing device (100) is in communication with adjusting the measured operating characteristic and the measured ambient fluid (20) pressure based on predetermined measurement uncertainties of the at least one sensor (104) and the pressure sensor (106), respectively; estimating an actual mass flow rate (124) of the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); calculating a target mass flow rate (128) for the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); determining a mass flow loss (130) between the estimated actual mass flow (124) and the calculated target mass flow (128) of the compressor (12) of the gas turbine system (11); adjusting an operational limit (OL) threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11) based on the mass flow loss (130), wherein the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) is lower than a predetermined surge threshold (140) of the compressor (12); configured to adjust operating parameters of the gas turbine system (11) by performing a process including: The at least one computing device (100) calculating an operating principle of the gas turbine system (11) using the measured operating characteristics and the measured ambient fluid (20) pressure; comparing the calculated operating principle of the gas turbine system (11) with a predetermined operating principle of the gas turbine system (11), the predetermined operating principle being based on an operating model of the gas turbine system (11) operating under the same conditions as the measured operating characteristics and the measured ambient fluid (20) pressure; adjusting the measured operating characteristic and the measured ambient fluid (20) pressure based on the predetermined measurement uncertainties of the at least one sensor (104) and the pressure sensor (106), respectively, until the calculated operating principle of the gas turbine system (11) is substantially equal to the predetermined operating principle of the gas turbine system (11); a process for adjusting the measured operating characteristic and the measured ambient fluid pressure by performing a process comprising:

2. The at least one computing device (100) adjusting the operating speed of a shaft (34) of the gas turbine system (11), at least a portion of the shaft (34) being located within the compressor (12); or Adjusting the position of the inlet guide vanes (18) of the compressor (12) of the gas turbine system (11).

2. The system (10) of claim 1, configured to adjust the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11) by performing a process including at least one of:

3. The at least one computing device (100) Increasing or decreasing the margin between the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) and the predetermined surge threshold (140) based on the determined mass flow loss (130).

2. The system (10) of claim 1, configured to adjust the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11) by performing a process comprising:

4. The at least one computing device (100) calculating the target mass flow rate (128) for the compressor (12) based on the adjusted measured operating characteristics and the operating model of the gas turbine system (11) operating under identical conditions with the adjusted measured ambient fluid (20) pressure; The system (10) of claim 1, configured to calculate the target mass flow rate (128) for the compressor (12) of the gas turbine system (11) by performing a process comprising:

5. 2. The system of claim 1, wherein the at least one sensor comprises a temperature sensor disposed adjacent to or within the compressor, and the operating characteristic comprises a compressor inlet temperature.

6. The process executed by the at least one computing device (100) to adjust operating parameters of the gas turbine system (11) comprises: measuring or calculating at least one distinct operating characteristic different from the compressor (12) inlet temperature, the at least one distinct operating characteristic being: the exhaust temperature of the gas turbine system (11); the ambient humidity of the gas turbine system (11); Compressor (12) discharge temperature, Compressor (12) discharge pressure; a fuel (26) flow rate of the gas turbine system (11); and Power output of the gas turbine system (11) selected from the group consisting of The system (10) of claim 5, further comprising:

7. 1. A computer program product comprising: program code for causing at least one computing device (100) to adjust operating parameters of a gas turbine system (11) including a compressor (12) having inlet guide vanes (18), the computer program product, when executed by the at least one computing device (100), comprising: adjusting an operating characteristic measured by at least one sensor located within or adjacent to the gas turbine system and adjusting an ambient fluid pressure measured by a pressure sensor located adjacent to the gas turbine system, wherein the measured operating characteristic and the measured ambient fluid pressure are adjusted based on predetermined measurement uncertainties of the at least one sensor and the pressure sensor, respectively; estimating an actual mass flow rate (124) of the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); calculating a target mass flow rate (128) for the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); determining a mass flow loss (130) between the estimated actual mass flow (124) and the calculated target mass flow (128) of the compressor (12) of the gas turbine system; adjusting an operational limit (OL) threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11) based on the mass flow loss (130), wherein the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) is lower than a predetermined surge threshold (140) of the compressor (12); and program code for causing the at least one computing device to adjust operating parameters of the gas turbine system by executing a process including: adjusting the measured operating characteristic and the measured ambient fluid (20) pressure; calculating an operating principle of the gas turbine system (11) using the measured operating characteristics and the measured ambient fluid (20) pressure; comparing the calculated operating principle of the gas turbine system (11) with a predetermined operating principle of the gas turbine system (11), the predetermined operating principle being based on an operating model of the gas turbine system (11) operating under the same conditions as the measured operating characteristics and the measured ambient fluid (20) pressure; adjusting the measured operating characteristic and the measured ambient fluid (20) pressure based on the predetermined measurement uncertainties of the at least one sensor (104) and the pressure sensor (106), respectively, until the calculated operating principle of the gas turbine system (11) is substantially equal to the predetermined operating principle of the gas turbine system (11); The computer program product further comprises:

8. adjusting the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11), Increasing or decreasing the margin between the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) and the predetermined surge threshold (140) based on the determined mass flow loss (130).

8. The computer program product of claim 7, further comprising:

9. A method for adjusting operating parameters of a gas turbine system (11) including a compressor (12) having inlet guide vanes (18), the method comprising: adjusting an operating characteristic measured by at least one sensor (104) located within or adjacent to the gas turbine system (11) and adjusting an ambient fluid (20) pressure measured by a pressure sensor (106) located adjacent to the gas turbine system (11), wherein the measured operating characteristic and the measured ambient fluid (20) pressure are adjusted based on predetermined measurement uncertainties of the at least one sensor (104) and the pressure sensor (106), respectively; estimating an actual mass flow rate (124) of the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); calculating a target mass flow rate (128) for the compressor (12) of the gas turbine system (11) based on the adjusted measured operating characteristics and the adjusted measured ambient fluid (20) pressure surrounding the gas turbine system (11); determining a mass flow loss (130) between the estimated actual mass flow (124) and the calculated target mass flow (128) of the compressor (12) of the gas turbine system; adjusting an operational limit (OL) threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11) based on the mass flow loss (130), wherein the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) is lower than a predetermined surge threshold (140) of the compressor (12); It contains adjusting the measured operating characteristic and the measured ambient fluid (20) pressure; calculating an operating principle of the gas turbine system (11) using the measured operating characteristics and the measured ambient fluid (20) pressure; comparing the calculated operating principle of the gas turbine system (11) with a predetermined operating principle of the gas turbine system (11), the predetermined operating principle being based on an operating model of the gas turbine system (11) operating under the same conditions as the measured operating characteristics and the measured ambient fluid (20) pressure; adjusting the measured operating characteristic and the measured ambient fluid (20) pressure based on the predetermined measurement uncertainties of the at least one sensor (104) and the pressure sensor (106), respectively, until the calculated operating principle of the gas turbine system (11) is substantially equal to the predetermined operating principle of the gas turbine system (11); The method further comprises:

10. adjusting the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11), adjusting the operating speed of a shaft (34) of the gas turbine system (11), at least a portion of the shaft (34) being located within the compressor (12); or Adjusting the position of the inlet guide vanes (18) of the compressor (12) of the gas turbine system (11). The method of claim 9 , further comprising at least one of:

11. adjusting the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) of the gas turbine system (11), Increasing or decreasing the margin between the OL threshold (144, 144A, 144B, 144C, 144D) of the compressor (12) and the predetermined surge threshold (140) based on the determined mass flow loss (130).

10. The method of claim 9, further comprising:

12. Calculating the target mass flow rate (128) of the compressor (12) of the gas turbine system (11) calculating the target mass flow rate (128) for the compressor (12) based on the adjusted measured operating characteristics and the operating model of the gas turbine system (11) operating under identical conditions with the adjusted measured ambient fluid (20) pressure; 10. The method of claim 9, further comprising:

13. the at least one sensor (104) includes a temperature sensor (104) located adjacent to or within the compressor (12), the operating characteristic includes a compressor (12) inlet temperature, and the method includes at least one of measuring or calculating at least one distinct operating characteristic different from the compressor (12) inlet temperature, the at least one distinct operating characteristic being: the exhaust temperature of the gas turbine system (11); the ambient humidity of the gas turbine system (11); Compressor (12) discharge temperature, Compressor (12) discharge pressure; a fuel (26) flow rate of the gas turbine system (11); and Power output of the gas turbine system (11) selected from the group consisting of 10. The method of claim 9, further comprising:

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