Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft

According to the development and research background of the next generation civil aircraft, the aerodynamic characteristics and stall mechanism of a specified distributed propulsion (DP) blended-wing-body (BWB) aircraft are analyzed and studied by combining the numerical simulation and the wind tunn...

Full description

Bibliographic Details
Published in:Xibei Gongye Daxue Xuebao
Main Authors: WANG Kelei, ZHOU Zhou, ZHANG Yang
Format: Article
Language:Chinese
Published: EDP Sciences 2022-02-01
Subjects:
Online Access:https://www.jnwpu.org/articles/jnwpu/full_html/2022/01/jnwpu2022401p18/jnwpu2022401p18.html
_version_ 1850536093469900800
author WANG Kelei
ZHOU Zhou
ZHANG Yang
author_facet WANG Kelei
ZHOU Zhou
ZHANG Yang
author_sort WANG Kelei
collection DOAJ
container_title Xibei Gongye Daxue Xuebao
description According to the development and research background of the next generation civil aircraft, the aerodynamic characteristics and stall mechanism of a specified distributed propulsion (DP) blended-wing-body (BWB) aircraft are analyzed and studied by combining the numerical simulation and the wind tunnel tests. Firstly, the DP BWB configuration and the numerical simulation methods are introduced. Secondly, the aerodynamic performance of the DP BWB aircraft between with and without the DP induced effects into consideration are compared and analyzed by using the numerical simulation. Finally, the stall mechanism is sorted out based on the wind tunnel flow-field visualization, and at the same time, the numerical simulation method is also validated. The results show that the span-wise flow along the leading edge (LE) of the plane platform for DP installation is the main factor to induce stall at high angle of attack (AOA), while the middle fuselage can still provide enough lift to maintain flight at high angle of attack, and the DP system has an obvious combination effect on the flow on the wing, which maybe is an effective way to control and improve the BWB stall characteristics at high AOA.
format Article
id doaj-art-eae8b2dbffa747d490382bda9bc73a79
institution Directory of Open Access Journals
issn 1000-2758
2609-7125
language zho
publishDate 2022-02-01
publisher EDP Sciences
record_format Article
spelling doaj-art-eae8b2dbffa747d490382bda9bc73a792025-08-19T22:38:12ZzhoEDP SciencesXibei Gongye Daxue Xuebao1000-27582609-71252022-02-01401182410.1051/jnwpu/20224010018jnwpu2022401p18Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraftWANG Kelei0ZHOU Zhou1ZHANG Yang2School of Aeronautics, Northwestern Polytechnical UniversitySchool of Aeronautics, Northwestern Polytechnical UniversitySchool of Aeronautics, Northwestern Polytechnical UniversityAccording to the development and research background of the next generation civil aircraft, the aerodynamic characteristics and stall mechanism of a specified distributed propulsion (DP) blended-wing-body (BWB) aircraft are analyzed and studied by combining the numerical simulation and the wind tunnel tests. Firstly, the DP BWB configuration and the numerical simulation methods are introduced. Secondly, the aerodynamic performance of the DP BWB aircraft between with and without the DP induced effects into consideration are compared and analyzed by using the numerical simulation. Finally, the stall mechanism is sorted out based on the wind tunnel flow-field visualization, and at the same time, the numerical simulation method is also validated. The results show that the span-wise flow along the leading edge (LE) of the plane platform for DP installation is the main factor to induce stall at high angle of attack (AOA), while the middle fuselage can still provide enough lift to maintain flight at high angle of attack, and the DP system has an obvious combination effect on the flow on the wing, which maybe is an effective way to control and improve the BWB stall characteristics at high AOA.https://www.jnwpu.org/articles/jnwpu/full_html/2022/01/jnwpu2022401p18/jnwpu2022401p18.htmldistributed propulsion blended-wing-body aircraftnumerical simulationwind tunnel testflow-field visualizationflow mechanism
spellingShingle WANG Kelei
ZHOU Zhou
ZHANG Yang
Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
distributed propulsion blended-wing-body aircraft
numerical simulation
wind tunnel test
flow-field visualization
flow mechanism
title Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
title_full Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
title_fullStr Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
title_full_unstemmed Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
title_short Aerodynamic characteristics research of a distributed propulsion blended-wing-body aircraft
title_sort aerodynamic characteristics research of a distributed propulsion blended wing body aircraft
topic distributed propulsion blended-wing-body aircraft
numerical simulation
wind tunnel test
flow-field visualization
flow mechanism
url https://www.jnwpu.org/articles/jnwpu/full_html/2022/01/jnwpu2022401p18/jnwpu2022401p18.html
work_keys_str_mv AT wangkelei aerodynamiccharacteristicsresearchofadistributedpropulsionblendedwingbodyaircraft
AT zhouzhou aerodynamiccharacteristicsresearchofadistributedpropulsionblendedwingbodyaircraft
AT zhangyang aerodynamiccharacteristicsresearchofadistributedpropulsionblendedwingbodyaircraft