Evaluation of RANS-based turbulence models for isothermal flow in a realistic can-type gas turbine combustor application

Fuente: arXiv
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Auteurs principaux: Kumar, Aishvarya, Bharti, Ram Prakash
Format: Preprint
Publié: 2023
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author Kumar, Aishvarya
Bharti, Ram Prakash
author_facet Kumar, Aishvarya
Bharti, Ram Prakash
contents The present study assesses RANS-based turbulence models to simulate isothermal flow in a combustor representing a constituent can combustor of can-annular configuration used in jet engines. Two-equation models (standard $k-ε$, realizable $k-ε$, standard $k-ω$, SST $k-ω$), and Linear Pressure Strain - Reynolds Stress Model (LPS-RSM), are assessed by comparing their predictions of mean axial and transverse velocity, turbulent kinetic energy, and shear stress with the experimental data at the primary and dilution hole planes in combustor. While the two-equation models generally have failed to predict the confined swirling flow at both positions accurately, the SST $k-ω$ model yielded the most accurate, followed by standard $k-ω$ and realizable $k-ε$ models. The discrepancies between the computational and experimental results could be attributed to the isotropic turbulence assumptions, which, however, are invalid for confined swirling flows. Further, the two-equation model formulations cannot capture the intricacies of vortex flow and its interaction with the surroundings in confined swirling flows. LPS-RSM, which considers turbulence anisotropy, showed some promise, although overpredicted results follow the trend with experimental values at the primary holes plane. However, at dilution holes plane, the model overpredicted the velocity field and underestimated turbulence field, including turbulent kinetic energy and shear stress. These observed discrepancies can be ascribed to the pressure-strain correlation in the LPS-RSM, which assumes the pressure is a linear function of the strain-rate tensor. However, for complex flows, this linear assumption is quite simplistic. Hence, this study suggests that more advanced turbulence models such as non-LPS-RSM are needed to accurately predict the confined swirling flow in combustors.
format Preprint
id arxiv_https___arxiv_org_abs_2312_14459
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Evaluation of RANS-based turbulence models for isothermal flow in a realistic can-type gas turbine combustor application
Kumar, Aishvarya
Bharti, Ram Prakash
Fluid Dynamics
The present study assesses RANS-based turbulence models to simulate isothermal flow in a combustor representing a constituent can combustor of can-annular configuration used in jet engines. Two-equation models (standard $k-ε$, realizable $k-ε$, standard $k-ω$, SST $k-ω$), and Linear Pressure Strain - Reynolds Stress Model (LPS-RSM), are assessed by comparing their predictions of mean axial and transverse velocity, turbulent kinetic energy, and shear stress with the experimental data at the primary and dilution hole planes in combustor. While the two-equation models generally have failed to predict the confined swirling flow at both positions accurately, the SST $k-ω$ model yielded the most accurate, followed by standard $k-ω$ and realizable $k-ε$ models. The discrepancies between the computational and experimental results could be attributed to the isotropic turbulence assumptions, which, however, are invalid for confined swirling flows. Further, the two-equation model formulations cannot capture the intricacies of vortex flow and its interaction with the surroundings in confined swirling flows. LPS-RSM, which considers turbulence anisotropy, showed some promise, although overpredicted results follow the trend with experimental values at the primary holes plane. However, at dilution holes plane, the model overpredicted the velocity field and underestimated turbulence field, including turbulent kinetic energy and shear stress. These observed discrepancies can be ascribed to the pressure-strain correlation in the LPS-RSM, which assumes the pressure is a linear function of the strain-rate tensor. However, for complex flows, this linear assumption is quite simplistic. Hence, this study suggests that more advanced turbulence models such as non-LPS-RSM are needed to accurately predict the confined swirling flow in combustors.
title Evaluation of RANS-based turbulence models for isothermal flow in a realistic can-type gas turbine combustor application
topic Fluid Dynamics
url https://arxiv.org/abs/2312.14459