Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing

In this paper, a comprehensive computational modeling study of the unsteady aerodynamic environment around a warship with a helicopter is performed. An experimental validation exercise is also conducted, comparing computational fluid dynamics (CFD) results of the airwake calculated for a reduced-sca...

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Main Authors: Yu Lu, Xin Chang, Zhenju Chuang, Junhua Xing, Zecai Zhou, Xiuyuan Zhang
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Engineering Applications of Computational Fluid Mechanics
Subjects:
Online Access:http://dx.doi.org/10.1080/19942060.2020.1786461
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spelling doaj-699a8805b25c4251bdde1e047da1e0ae2020-12-07T17:17:45ZengTaylor & Francis GroupEngineering Applications of Computational Fluid Mechanics1994-20601997-003X2020-01-0114195497910.1080/19942060.2020.17864611786461Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landingYu Lu0Xin Chang1Zhenju Chuang2Junhua Xing3Zecai Zhou4Xiuyuan Zhang5Naval Architecture and Ocean Engineering College, Dalian Maritime UniversityNaval Architecture and Ocean Engineering College, Dalian Maritime UniversityNaval Architecture and Ocean Engineering College, Dalian Maritime UniversityNational Key Laboratory on Ship Vibration & Noise, China Ship Development and Design CenterCollege of Shipbuilding Engineering, Harbin Engineering UniversityCollege of Shipbuilding Engineering, Harbin Engineering UniversityIn this paper, a comprehensive computational modeling study of the unsteady aerodynamic environment around a warship with a helicopter is performed. An experimental validation exercise is also conducted, comparing computational fluid dynamics (CFD) results of the airwake calculated for a reduced-scale model of the isolated Landing Helicopter Assault (LHA) model with high-quality particle image velocimetry experimental data provided by the NASA AMES Research Center. Comparisons of the results generally obtain agreement, indicating that the CFD numerical method is able to resolve the large-scale turbulent airflow. Building on this, a numerical simulation of a real Robin helicopter, immersed in the unsteady airwakes of a full-scale Amphibious Assault Ship (AAS), is performed. The aerodynamic simulation of the influence on the coupled airflow of warship–helicopter is explored and compared with that of the solitary ship airflow field and the superposition airwakes, where the vortex patterns and pressure on the ship surface, as well as the velocity distribution, are circumvented. As a further step, dynamic landing analysis of the airflow field for a shipborne helicopter is implemented at an important location through the landing path for headwind. The aerodynamic characteristics of a helicopter during a flight deck landing are also explored for the unsteady ship airwakes impacting on rotor force during shipboard landings. In addition, different shipboard landing paths of the helicopter are comparatively investigated for obtaining an optimal landing path decision. The present study demonstrates an effective aerodynamic analysis and robust numerical approach, which creates a solid foundation supporting further alternative evaluations of ship airflow fields.http://dx.doi.org/10.1080/19942060.2020.1786461aerodynamic characteristicscoupled airwakesactuator diskrotor–fuselage interferencefull-scale simulationexperimental validationshipboard landing
collection DOAJ
language English
format Article
sources DOAJ
author Yu Lu
Xin Chang
Zhenju Chuang
Junhua Xing
Zecai Zhou
Xiuyuan Zhang
spellingShingle Yu Lu
Xin Chang
Zhenju Chuang
Junhua Xing
Zecai Zhou
Xiuyuan Zhang
Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
Engineering Applications of Computational Fluid Mechanics
aerodynamic characteristics
coupled airwakes
actuator disk
rotor–fuselage interference
full-scale simulation
experimental validation
shipboard landing
author_facet Yu Lu
Xin Chang
Zhenju Chuang
Junhua Xing
Zecai Zhou
Xiuyuan Zhang
author_sort Yu Lu
title Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
title_short Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
title_full Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
title_fullStr Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
title_full_unstemmed Numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
title_sort numerical investigation of the unsteady coupling airflow impact of a full-scale warship with a helicopter during shipboard landing
publisher Taylor & Francis Group
series Engineering Applications of Computational Fluid Mechanics
issn 1994-2060
1997-003X
publishDate 2020-01-01
description In this paper, a comprehensive computational modeling study of the unsteady aerodynamic environment around a warship with a helicopter is performed. An experimental validation exercise is also conducted, comparing computational fluid dynamics (CFD) results of the airwake calculated for a reduced-scale model of the isolated Landing Helicopter Assault (LHA) model with high-quality particle image velocimetry experimental data provided by the NASA AMES Research Center. Comparisons of the results generally obtain agreement, indicating that the CFD numerical method is able to resolve the large-scale turbulent airflow. Building on this, a numerical simulation of a real Robin helicopter, immersed in the unsteady airwakes of a full-scale Amphibious Assault Ship (AAS), is performed. The aerodynamic simulation of the influence on the coupled airflow of warship–helicopter is explored and compared with that of the solitary ship airflow field and the superposition airwakes, where the vortex patterns and pressure on the ship surface, as well as the velocity distribution, are circumvented. As a further step, dynamic landing analysis of the airflow field for a shipborne helicopter is implemented at an important location through the landing path for headwind. The aerodynamic characteristics of a helicopter during a flight deck landing are also explored for the unsteady ship airwakes impacting on rotor force during shipboard landings. In addition, different shipboard landing paths of the helicopter are comparatively investigated for obtaining an optimal landing path decision. The present study demonstrates an effective aerodynamic analysis and robust numerical approach, which creates a solid foundation supporting further alternative evaluations of ship airflow fields.
topic aerodynamic characteristics
coupled airwakes
actuator disk
rotor–fuselage interference
full-scale simulation
experimental validation
shipboard landing
url http://dx.doi.org/10.1080/19942060.2020.1786461
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