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STUDY OF DYNAMIC FLOW EFFECTS DUE TO SHIP AIR WAKE AND ROTOR DOWNWASH INTERACTION ON WARSHIP HELO-DECKS

机译:船型尾桨对船舶尾流和转子下水相互作用的动态流动影响研究

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摘要

Helicopters have become an integral part as they provide extended capabilities in areas where land-based operations are not feasible. In order to facilitate helo operations, frontline warships are provided with a helo deck and a helo hangar. Hangar shapes which were traditionally designed with stowage volume and associated aviation systems availability are being additionally optimised for stealth aspects.rnHowever, the flow considerations on helo-deck are verified by Experimental Test Pilots (ETPs) performing high risk trials in later stages of warship construction. The non-availability of a design tool at initial design stage of a warship which can effectively optimize the dynamic flow conditions on the helo deck poses a significant challenge to the designer as well as the operator. Across the globe, combinations of warship forms and helicopter types are increasing and the task of qualifying multiple helo-decks is challenging for all Navies.rnThis paper examines the effects of helicopter downwash interacting with ship airwake for a Simplified Frigate Ship (SFS2). The flow visualization studies, with simplified rotor downwash (SRD) and airwake measurements carried out in wind tunnel at IIT Delhi are presented. These studies give a valuable insight into the interaction of varying helicopter operations at different warship speed regimes. Further, they provide critical data for numerical model validation and parametric studies at initial design stages.
机译:直升机已成为不可或缺的一部分,因为它们在无法进行陆基作业的地区提供了扩展的功能。为了便于直升机操作,前线战舰配备了直升机甲板和直升机机库。传统上根据积载量设计的机库形状和相关航空系统的可用性在隐身方面进行了额外的优化。然而,通过在军舰建造的后期阶段进行高风险试验的实验测试飞行员(ETP)验证了直升机甲板上的流量考虑因素。在军舰的初始设计阶段无法使用设计工具,该工具无法有效地优化直升机甲板上的动态流动条件,这对设计人员和操作人员构成了重大挑战。在全球范围内,军舰形式和直升机类型的组合正在增加,对所有海军来说,鉴定多个直升机甲板的任务都具有挑战性。本文研究了直升机下冲与简化空中护卫舰(SFS2)的空中唤醒相互作用的影响。介绍了在IIT Delhi的风洞中进行简化的转子向下冲洗(SRD)和空气唤醒测量的流动可视化研究。这些研究提供了宝贵的见解,以了解在不同战舰速度状态下各种直升机操作之间的相互作用。此外,它们为初始设计阶段的数值模型验证和参数研究提供了关键数据。

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  • 来源
    《》|2016年|1-17|共17页
  • 会议地点 Bath(GB)
  • 作者单位

    Department of Applied Mechanics, Indian Institute of Technology Delhi, New Delhi, India -110 016;

    Department of Ocean Engineering, Indian Institute of Technology Madras, Chennai, India - 600 036;

    Department of Applied Mechanics, Indian Institute of Technology Delhi, New Delhi, India -110 016;

    Department of Applied Mechanics, Indian Institute of Technology Delhi, New Delhi, India -110 016;

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