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>Wind Tunnel Investigation of Ground Wind Loads for Ares Launch Vehicle
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Wind Tunnel Investigation of Ground Wind Loads for Ares Launch Vehicle
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机译:战神运载火箭地面风荷载的风洞研究
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摘要
A three year program was conducted at the NASA Langley Research Center (LaRC) Aeroelasticity Branch (AB) and Transonic Dynamics Tunnel (TDT) with the primary objective to acquire scaled steady and dynamic ground-wind loads (GWL) wind-tunnel data for rollout, on-pad stay, and on-pad launch configurations for the Ares I-X Flight Test Vehicle (FTV). The experimental effort was conducted to obtain an understanding of the coupling of aerodynamic and structural characteristics that can result in large sustained wind-induced oscillations (WIO) on such a tall and slender launch vehicle and to generate a unique database for development and evaluation of analytical methods for predicting steady and dynamic GWL, especially those caused by vortex shedding, and resulting in significant WIO. This paper summarizes the wind-tunnel test program that employed two dynamically-aeroelastically scaled GWL models based on the Ares I-X Flight Test Vehicle. The first model tested, the GWL Checkout Model (CM), was a relatively simple model with a secondary objective of restoration and development of processes and methods for design, fabrication, testing, and data analysis of a representative ground wind loads model. In addition, parametric variations in surface roughness, Reynolds number, and protuberances (on/off) were investigated to determine effects on GWL characteristics. The second windtunnel model, the Ares I-X GWL Model, was significantly more complex and representative of the Ares I-X FTV and included the addition of simplified rigid geometrically-scaled models of the Kennedy Space Center (KSC) Mobile Launch Platform (MLP) and Launch Complex 39B primary structures. Steady and dynamic base bending moment as well as model response and steady and unsteady pressure data was acquired during the testing of both models. During wind-tunnel testing of each model, flow conditions (speed and azimuth) where significant WIO occurred, were identified and thoroughly investigated. Scaled data from the Ares I-X GWL model test was used in the determination of worst-case loads for the analysis of Ares I-X FTV design wind conditions. Finally, this paper includes a brief discussion of the limited full-scale GWL data acquired during the rollout and on-pad stay of the Ares I-X FTV that was launched from KSC on October 28, 2009.
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机译:在NASA兰利研究中心(LaRC)空气弹性处(AB)和跨音速动力隧道(TDT)进行了为期三年的计划,其主要目的是获取按比例缩放的稳定和动态地风载荷(GWL)风洞数据以进行展开,Ares IX飞行测试车(FTV)的滑行,滑行停留和滑行发射配置。进行实验工作是为了了解空气动力学和结构特征的耦合,这种耦合会导致在如此高且细长的运载工具上产生大的持续性风致振荡(WIO),并生成用于分析和开发分析的独特数据库预测稳态和动态GWL的方法,尤其是那些由涡旋脱落引起的GWL的方法,并导致明显的WIO。本文总结了风洞测试程序,该程序采用了基于Ares I-X飞行测试车的两个动态气动弹性缩放的GWL模型。测试的第一个模型GWL Checkout模型(CM)是一个相对简单的模型,其次要目标是恢复和开发用于代表地面风荷载模型的设计,制造,测试和数据分析的过程和方法。此外,研究了表面粗糙度,雷诺数和突起(开/关)的参数变化,以确定对GWL特性的影响。第二个风洞模型是Ares IX GWL模型,它非常复杂,代表了Ares IX FTV,并且包括肯尼迪航天中心(KSC)移动发射平台(MLP)和发射场的简化的刚性几何比例模型。 39B的主要结构。在两个模型的测试过程中,都获得了稳定的动态基础弯矩以及模型响应以及稳态和非稳态压力数据。在每个模型的风洞测试期间,确定并彻底调查了发生明显WIO的流动条件(速度和方位角)。来自Ares I-X GWL模型测试的比例数据用于确定最坏情况负载,以分析Ares I-X FTV设计风况。最后,本文简要讨论了在2009年10月28日从KSC发射的Ares I-X FTV的推出和就地停留期间获得的有限的完整GWL数据。
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