Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions

Flow behavior through a gas turbine double-container fuel valve is numerically studied. Normally the gas fuel supply pressure of the gas turbine sites is over 20+ barg while the combustion chamber pressure is around 12 barg in base load operation and slightly more than atmospheric during start-up. T...

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Main Authors: S. Zirak, M. Seifi, A. Ramesh
Format: Article
Language:English
Published: Isfahan University of Technology 2020-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:http://jafmonline.net/JournalArchive/download?file_ID=50601&issue_ID=1004
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spelling doaj-c05b0ce780c140d9a9e549628c9c321d2020-11-25T01:30:21ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-35722020-01-01131211219.Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating ConditionsS. Zirak0M. Seifi1A. Ramesh2Mechanical Engineering Department, Semnan University, Semnan, Semnan, 35131-19111, IranMAPNA Turbine Engineering & Manufacturing Co. (TUGA), Karaj, Alborz, 15875-5643, IranMAPNA Turbine Engineering & Manufacturing Co. (TUGA), Karaj, Alborz, 15875-5643, IranFlow behavior through a gas turbine double-container fuel valve is numerically studied. Normally the gas fuel supply pressure of the gas turbine sites is over 20+ barg while the combustion chamber pressure is around 12 barg in base load operation and slightly more than atmospheric during start-up. Therefore, the flow control through this high range of pressure ratios is a very difficult and costly task with a single-container control valve. The double-container valve is an innovative design which consists of two parts, SRV (Stop Ratio Valve) followed by GCV (Gas Control Valve), in a compact unit. SRV maintains a significantly low pressure upstream of the GCV during gas turbine firing to establish flame and control fuel flow during acceleration. It opens the GCV to a position where it is much easier to control the flow through the valve. The same situation exists in base load operation when the turbine load is changing. The obtained results prove the special design of the valve to maintain linear characteristics of flow with stroke position in GCV. The results of the mass flow are given for various GCV stroke openings at various valve pressure ratios. Also, the range of pressure ratios for a proper operation of GCV is determined. SRV regulates the middle pressure between the two parts based on rotor speed. Therefore, a sensitive combination of globes position takes place during gas turbine operation.http://jafmonline.net/JournalArchive/download?file_ID=50601&issue_ID=1004Double-container; Control valve; Gas turbine; Gas fuel; Numerical analysis; Operating conditions.
collection DOAJ
language English
format Article
sources DOAJ
author S. Zirak
M. Seifi
A. Ramesh
spellingShingle S. Zirak
M. Seifi
A. Ramesh
Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
Journal of Applied Fluid Mechanics
Double-container; Control valve; Gas turbine; Gas fuel; Numerical analysis; Operating conditions.
author_facet S. Zirak
M. Seifi
A. Ramesh
author_sort S. Zirak
title Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
title_short Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
title_full Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
title_fullStr Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
title_full_unstemmed Double-Container Gas Fuel Control Valve: Numerical Analysis and Operating Conditions
title_sort double-container gas fuel control valve: numerical analysis and operating conditions
publisher Isfahan University of Technology
series Journal of Applied Fluid Mechanics
issn 1735-3572
publishDate 2020-01-01
description Flow behavior through a gas turbine double-container fuel valve is numerically studied. Normally the gas fuel supply pressure of the gas turbine sites is over 20+ barg while the combustion chamber pressure is around 12 barg in base load operation and slightly more than atmospheric during start-up. Therefore, the flow control through this high range of pressure ratios is a very difficult and costly task with a single-container control valve. The double-container valve is an innovative design which consists of two parts, SRV (Stop Ratio Valve) followed by GCV (Gas Control Valve), in a compact unit. SRV maintains a significantly low pressure upstream of the GCV during gas turbine firing to establish flame and control fuel flow during acceleration. It opens the GCV to a position where it is much easier to control the flow through the valve. The same situation exists in base load operation when the turbine load is changing. The obtained results prove the special design of the valve to maintain linear characteristics of flow with stroke position in GCV. The results of the mass flow are given for various GCV stroke openings at various valve pressure ratios. Also, the range of pressure ratios for a proper operation of GCV is determined. SRV regulates the middle pressure between the two parts based on rotor speed. Therefore, a sensitive combination of globes position takes place during gas turbine operation.
topic Double-container; Control valve; Gas turbine; Gas fuel; Numerical analysis; Operating conditions.
url http://jafmonline.net/JournalArchive/download?file_ID=50601&issue_ID=1004
work_keys_str_mv AT szirak doublecontainergasfuelcontrolvalvenumericalanalysisandoperatingconditions
AT mseifi doublecontainergasfuelcontrolvalvenumericalanalysisandoperatingconditions
AT aramesh doublecontainergasfuelcontrolvalvenumericalanalysisandoperatingconditions
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