Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.

This paper describes the investigations performed to better understand unsteady effect that develop in a contra-rotating axial fan. More specifically, this study focuses on rotor-rotor interactions effects on unsteady characteristic and blade aerodynamic force. The investigation method is based on t...

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Main Authors: Hengxuan Luan, Liyuan Weng, Yuanzhong Luan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC6053160?pdf=render
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spelling doaj-b143f67e896c48cda4d4be6aaacdd4c82020-11-24T21:55:53ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01137e020051010.1371/journal.pone.0200510Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.Hengxuan LuanLiyuan WengYuanzhong LuanThis paper describes the investigations performed to better understand unsteady effect that develop in a contra-rotating axial fan. More specifically, this study focuses on rotor-rotor interactions effects on unsteady characteristic and blade aerodynamic force. The investigation method is based on three-dimensional URANS simulations, in conjunction with SST turbulence model. At first, the experimental measurements are compared to evaluate ability of the numerical method in estimation of unsteady flows. The results show that rotor-rotor interaction in the contra-rotating fan played an important role in aerodynamic efficiency. Unsteady effect increased flow losses of rotor 1, but effectively inhibited flow losses of rotor 2. The inhibition effect was mainly caused by wake recovery effect of upstream wakes in the flow passage of rotor 2. Meanwhile, negative jet flow enhanced boundary layer energy of the blade of rotor 2, so that flow separation was postponed. Different configurations consider five sets of axial spacing dimensions. Specific survey of flows under the same operation conditions indicates that axial spacing is responsible for the unsteady interaction effect. The blade aerodynamics analysis shows that the influence of the downstream potential flow disturbance on rotor 1 is greater than the effect of the upstream wake on rotor 2.http://europepmc.org/articles/PMC6053160?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Hengxuan Luan
Liyuan Weng
Yuanzhong Luan
spellingShingle Hengxuan Luan
Liyuan Weng
Yuanzhong Luan
Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
PLoS ONE
author_facet Hengxuan Luan
Liyuan Weng
Yuanzhong Luan
author_sort Hengxuan Luan
title Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
title_short Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
title_full Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
title_fullStr Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
title_full_unstemmed Numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
title_sort numerical simulation of unsteady aerodynamic interactions of contra-rotating axial fan.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description This paper describes the investigations performed to better understand unsteady effect that develop in a contra-rotating axial fan. More specifically, this study focuses on rotor-rotor interactions effects on unsteady characteristic and blade aerodynamic force. The investigation method is based on three-dimensional URANS simulations, in conjunction with SST turbulence model. At first, the experimental measurements are compared to evaluate ability of the numerical method in estimation of unsteady flows. The results show that rotor-rotor interaction in the contra-rotating fan played an important role in aerodynamic efficiency. Unsteady effect increased flow losses of rotor 1, but effectively inhibited flow losses of rotor 2. The inhibition effect was mainly caused by wake recovery effect of upstream wakes in the flow passage of rotor 2. Meanwhile, negative jet flow enhanced boundary layer energy of the blade of rotor 2, so that flow separation was postponed. Different configurations consider five sets of axial spacing dimensions. Specific survey of flows under the same operation conditions indicates that axial spacing is responsible for the unsteady interaction effect. The blade aerodynamics analysis shows that the influence of the downstream potential flow disturbance on rotor 1 is greater than the effect of the upstream wake on rotor 2.
url http://europepmc.org/articles/PMC6053160?pdf=render
work_keys_str_mv AT hengxuanluan numericalsimulationofunsteadyaerodynamicinteractionsofcontrarotatingaxialfan
AT liyuanweng numericalsimulationofunsteadyaerodynamicinteractionsofcontrarotatingaxialfan
AT yuanzhongluan numericalsimulationofunsteadyaerodynamicinteractionsofcontrarotatingaxialfan
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