Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis
Instead of simplified steady-state models, with modern computers, one can solve the complete aero-thermodynamics happening in gas turbine engines. In the present article, we describe a mathematical model and numerical procedure to represent the transient response of a PT6A gas turbine engine operati...
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doaj-81fb608c033e44fdb86e23761106e0132020-11-25T01:35:03ZengMDPI AGEnergies1996-10732019-11-011222425810.3390/en12224258en12224258Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response AnalysisCamilo Bayona-Roa0J.S. Solís-Chaves1Javier Bonilla2A.G. Rodriguez-Melendez3Diego Castellanos4Universidad ECCI, Cra. 19 No. 49-20, Bogotá 111311, ColombiaUniversidad ECCI, Cra. 19 No. 49-20, Bogotá 111311, ColombiaUniversidad ECCI, Cra. 19 No. 49-20, Bogotá 111311, ColombiaUniversidad ECCI, Cra. 19 No. 49-20, Bogotá 111311, ColombiaUniversidad ECCI, Cra. 19 No. 49-20, Bogotá 111311, ColombiaInstead of simplified steady-state models, with modern computers, one can solve the complete aero-thermodynamics happening in gas turbine engines. In the present article, we describe a mathematical model and numerical procedure to represent the transient response of a PT6A gas turbine engine operating at off-design conditions. The aero-thermal model consists of a set of algebraic and ordinary differential equations that arise from the application of the mass, linear momentum, angular momentum and energy balances in each engine’s component. The solution code has been developed in Matlab-Simulink<sup>®</sup> using a block-oriented approach. Transient simulations of the PT6A engine start-up have been carried out by changing the original Jet-A1 fuel with biodiesel blends. Time plots of the main thermodynamic variables are shown, especially those regarding the structural integrity of the burner. Numerical results have been validated against reported experimental measurements and GasTurb<sup>®</sup> simulations. The computer model has been capable to predict acceptable fuel blends, such that the real PT6A engine can be substituted to avoid the risk of damaging it.https://www.mdpi.com/1996-1073/12/22/4258gas turbine enginetwo-spool turboprop enginept6a engineaero-thermal modelmatlab-simulinkbio-dieselstart-up transient |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Camilo Bayona-Roa J.S. Solís-Chaves Javier Bonilla A.G. Rodriguez-Melendez Diego Castellanos |
spellingShingle |
Camilo Bayona-Roa J.S. Solís-Chaves Javier Bonilla A.G. Rodriguez-Melendez Diego Castellanos Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis Energies gas turbine engine two-spool turboprop engine pt6a engine aero-thermal model matlab-simulink bio-diesel start-up transient |
author_facet |
Camilo Bayona-Roa J.S. Solís-Chaves Javier Bonilla A.G. Rodriguez-Melendez Diego Castellanos |
author_sort |
Camilo Bayona-Roa |
title |
Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis |
title_short |
Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis |
title_full |
Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis |
title_fullStr |
Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis |
title_full_unstemmed |
Computational Simulation of PT6A Gas Turbine Engine Operating with Different Blends of Biodiesel—A Transient-Response Analysis |
title_sort |
computational simulation of pt6a gas turbine engine operating with different blends of biodiesel—a transient-response analysis |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2019-11-01 |
description |
Instead of simplified steady-state models, with modern computers, one can solve the complete aero-thermodynamics happening in gas turbine engines. In the present article, we describe a mathematical model and numerical procedure to represent the transient response of a PT6A gas turbine engine operating at off-design conditions. The aero-thermal model consists of a set of algebraic and ordinary differential equations that arise from the application of the mass, linear momentum, angular momentum and energy balances in each engine’s component. The solution code has been developed in Matlab-Simulink<sup>®</sup> using a block-oriented approach. Transient simulations of the PT6A engine start-up have been carried out by changing the original Jet-A1 fuel with biodiesel blends. Time plots of the main thermodynamic variables are shown, especially those regarding the structural integrity of the burner. Numerical results have been validated against reported experimental measurements and GasTurb<sup>®</sup> simulations. The computer model has been capable to predict acceptable fuel blends, such that the real PT6A engine can be substituted to avoid the risk of damaging it. |
topic |
gas turbine engine two-spool turboprop engine pt6a engine aero-thermal model matlab-simulink bio-diesel start-up transient |
url |
https://www.mdpi.com/1996-1073/12/22/4258 |
work_keys_str_mv |
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