Natural gas combustion under engine-relevant conditions

This thesis focuses on the study of natural gas combustion under engine relevant conditions. The work begins with the development of a detailed chemical kinetic mechanism that represents the ignition characteristics of methane with various minor additives over a wider range of operating conditions t...

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Main Author: Huang , Jian
Language:English
Published: 2010
Online Access:http://hdl.handle.net/2429/18215
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spelling ndltd-UBC-oai-circle.library.ubc.ca-2429-182152018-01-05T17:39:21Z Natural gas combustion under engine-relevant conditions Huang , Jian This thesis focuses on the study of natural gas combustion under engine relevant conditions. The work begins with the development of a detailed chemical kinetic mechanism that represents the ignition characteristics of methane with various minor additives over a wider range of operating conditions than previously existing mechanisms. The mechanism includes a NOx submechanism selected from the literature that yields good agreement with experimental data in various methane/air combustion systems. The excessive computational load associated with detailed chemistry is alleviated using a trajectory generated low-dimensional manifold (TGLDM) method. The TGLDMs generated in this work provide a satisfactory approximation of calculation using detailed chemistry in various methane/air reaction systems with a significant reduction of the computational cost. An innovative combustion model for simulating turbulent diffusion flames is presented at the end of this thesis. The model employs the Conditional Source-term Estimation method for the closure of the chemical source term. It obtains production/consumption rates of reaction scalars through TGLDMs generated with the new reaction mechanism. The model was used to simulate ignition and combustion of transient turbulent methane jets under engine-relevant conditions; it has achieved encouraging results in comparison with the experimental data from this work as well as the literature. Applied Science, Faculty of Mechanical Engineering, Department of Graduate 2010-01-16T17:02:17Z 2010-01-16T17:02:17Z 2006 2006-05 Text Thesis/Dissertation http://hdl.handle.net/2429/18215 eng For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use.
collection NDLTD
language English
sources NDLTD
description This thesis focuses on the study of natural gas combustion under engine relevant conditions. The work begins with the development of a detailed chemical kinetic mechanism that represents the ignition characteristics of methane with various minor additives over a wider range of operating conditions than previously existing mechanisms. The mechanism includes a NOx submechanism selected from the literature that yields good agreement with experimental data in various methane/air combustion systems. The excessive computational load associated with detailed chemistry is alleviated using a trajectory generated low-dimensional manifold (TGLDM) method. The TGLDMs generated in this work provide a satisfactory approximation of calculation using detailed chemistry in various methane/air reaction systems with a significant reduction of the computational cost. An innovative combustion model for simulating turbulent diffusion flames is presented at the end of this thesis. The model employs the Conditional Source-term Estimation method for the closure of the chemical source term. It obtains production/consumption rates of reaction scalars through TGLDMs generated with the new reaction mechanism. The model was used to simulate ignition and combustion of transient turbulent methane jets under engine-relevant conditions; it has achieved encouraging results in comparison with the experimental data from this work as well as the literature. === Applied Science, Faculty of === Mechanical Engineering, Department of === Graduate
author Huang , Jian
spellingShingle Huang , Jian
Natural gas combustion under engine-relevant conditions
author_facet Huang , Jian
author_sort Huang , Jian
title Natural gas combustion under engine-relevant conditions
title_short Natural gas combustion under engine-relevant conditions
title_full Natural gas combustion under engine-relevant conditions
title_fullStr Natural gas combustion under engine-relevant conditions
title_full_unstemmed Natural gas combustion under engine-relevant conditions
title_sort natural gas combustion under engine-relevant conditions
publishDate 2010
url http://hdl.handle.net/2429/18215
work_keys_str_mv AT huangjian naturalgascombustionunderenginerelevantconditions
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