Javascript must be enabled to continue!
Optimisation of CO Turndown for an Axially Staged Gas Turbine Combustor
View through CrossRef
Abstract
This paper reports on an optimisation study of the CO turndown behaviour of an axially staged combustor, in the context of industrial gas turbines (GT). The aim of this work is to assess the optimally achievable CO turndown behaviour limit given system and operating characteristics, without considering flow-induced behaviours such as mixing quality and flame spatial characteristics. To that end, chemical reactor network modelling is used to investigate the impact of various system and operating conditions on the exhaust CO emissions of each combustion stage, as well as at the combustor exit. Different combustor residence time combinations are explored to determine their contribution to the exhaust CO emissions.
The two-stage combustor modelled in this study consists of a primary (Py) and a secondary (Sy) combustion stage, followed by a discharge nozzle (DN), which distributes the exhaust to the turbines. The Py is modelled using a freely propagating flame (FPF), with the exhaust gas extracted downstream of the flame front at a specific location corresponding to a specified residence time (tr). These exhaust gases are then mixed and combusted with fresh gases in the Sy, modelled by a perfectly stirred reactor (PSR) operating within a set tr. These combined gases then flow into the DN, which is modelled by a plug flow reactor (PFR) that cools the gas to varying combustor exit temperatures within a constrained tr. Together, these form a simplified CRN model of a two-stage, dry-low emissions (DLE) combustion system. Using this CRN model, the impact of the tr distribution between the Py, Sy and DN is explored. A parametric study is conducted to determine how inlet pressure (Pin), inlet temperature (Tin), equivalence ratio (ϕ) and Py-Sy fuel split (FS), individually impact indicative CO turndown behaviour. Their coupling throughout engine load is then investigated using a model combustor, and its effect on CO turndown is explored. Thus, this aims to deduce the fundamental, chemically-driven parameters considered to be most important for identifying the optimal CO turndown of GT combustors.
In this work, a parametric study and a model combustor study are presented. The parametric study consists of changing a single parameter at a time, to observe the independent effect of this change and determine its contribution to CO turndown behaviour. The model combustor study uses the same CRN, and varies the parameters simultaneously to mimic their change as an engine moves through its steady-state power curve. The latter study thus elucidates the difference in CO turndown behaviour when all operating conditions are coupled, as they are in practical engines. The results of this study aim to demonstrate the parameters that are key for optimising and improving CO turndown.
American Society of Mechanical Engineers
Title: Optimisation of CO Turndown for an Axially Staged Gas Turbine Combustor
Description:
Abstract
This paper reports on an optimisation study of the CO turndown behaviour of an axially staged combustor, in the context of industrial gas turbines (GT).
The aim of this work is to assess the optimally achievable CO turndown behaviour limit given system and operating characteristics, without considering flow-induced behaviours such as mixing quality and flame spatial characteristics.
To that end, chemical reactor network modelling is used to investigate the impact of various system and operating conditions on the exhaust CO emissions of each combustion stage, as well as at the combustor exit.
Different combustor residence time combinations are explored to determine their contribution to the exhaust CO emissions.
The two-stage combustor modelled in this study consists of a primary (Py) and a secondary (Sy) combustion stage, followed by a discharge nozzle (DN), which distributes the exhaust to the turbines.
The Py is modelled using a freely propagating flame (FPF), with the exhaust gas extracted downstream of the flame front at a specific location corresponding to a specified residence time (tr).
These exhaust gases are then mixed and combusted with fresh gases in the Sy, modelled by a perfectly stirred reactor (PSR) operating within a set tr.
These combined gases then flow into the DN, which is modelled by a plug flow reactor (PFR) that cools the gas to varying combustor exit temperatures within a constrained tr.
Together, these form a simplified CRN model of a two-stage, dry-low emissions (DLE) combustion system.
Using this CRN model, the impact of the tr distribution between the Py, Sy and DN is explored.
A parametric study is conducted to determine how inlet pressure (Pin), inlet temperature (Tin), equivalence ratio (ϕ) and Py-Sy fuel split (FS), individually impact indicative CO turndown behaviour.
Their coupling throughout engine load is then investigated using a model combustor, and its effect on CO turndown is explored.
Thus, this aims to deduce the fundamental, chemically-driven parameters considered to be most important for identifying the optimal CO turndown of GT combustors.
In this work, a parametric study and a model combustor study are presented.
The parametric study consists of changing a single parameter at a time, to observe the independent effect of this change and determine its contribution to CO turndown behaviour.
The model combustor study uses the same CRN, and varies the parameters simultaneously to mimic their change as an engine moves through its steady-state power curve.
The latter study thus elucidates the difference in CO turndown behaviour when all operating conditions are coupled, as they are in practical engines.
The results of this study aim to demonstrate the parameters that are key for optimising and improving CO turndown.
Related Results
Gas Turbine Part Load Exhaust Gas Emissions Turndown Envelope Testing Methodology
Gas Turbine Part Load Exhaust Gas Emissions Turndown Envelope Testing Methodology
Economic and regulatory requirements have transformed today’s power plant operations. High reserve margins and increased fuel costs have driven combined cycle plants that were once...
Modeling of Combustor and Turbine Vane Interaction
Modeling of Combustor and Turbine Vane Interaction
Abstract
Modern aero-engines are characterized by compact components (fan, compressor, combustor, and turbine). Such proximity creates a complex interaction between ...
A Solution for Improving Gas Turbine Performance Degradation and Emissions: The “GT Auto Tuner” Product
A Solution for Improving Gas Turbine Performance Degradation and Emissions: The “GT Auto Tuner” Product
Abstract
The main causes of gas turbine performance degradation in natural gas combined cycle power plants are corrosion, fouling, and high turbine inlet temperature...
Development of an Experimental Combustor for Hybrid Electric Gas Turbines
Development of an Experimental Combustor for Hybrid Electric Gas Turbines
Future aircraft will require innovative propulsion architectures, such as hybrid electric gas turbines, for improvements in emissions and fuel economy. Hybridized propulsion system...
Combustor Effusion Cooling Multiparameter Aerothermal Numerical Analysis
Combustor Effusion Cooling Multiparameter Aerothermal Numerical Analysis
The solid temperature prediction is one of the most widespread type of modelization used in the industry. One reading this study might wonder why there would be readymade solutions...
On-Design and Off-Design Performance Analysis of a Gas Turbine Combined Cycle Using the Exergy Method
On-Design and Off-Design Performance Analysis of a Gas Turbine Combined Cycle Using the Exergy Method
The present paper describes an on-design and an off-design performance study of gas turbine combined cycle based power plants. The exergy analysis has been carried out along with t...
PENGARUH AIR FUEL RATIO (AFR) TERHADAP EFISIENSI TURBIN GAS
PENGARUH AIR FUEL RATIO (AFR) TERHADAP EFISIENSI TURBIN GAS
Gas turbine efficiency is an indicator to determine the performance of a generator. The greater the efficiency value of the gas turbine in a generator, the better the performance o...
Impact of Individual High-Pressure Turbine Rotor Purge Flows on Turbine Center Frame Aerodynamics
Impact of Individual High-Pressure Turbine Rotor Purge Flows on Turbine Center Frame Aerodynamics
This paper presents an experimental study of the impact of individual high-pressure turbine purge flows on the main flow in a downstream turbine center frame duct. Measurements wer...

