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Fluid-Structure Interaction Simulations of a Tension-Cone Inflatable Aerodynamic Decelerator

机译:张力锥充气气动减速器的流固耦合仿真

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摘要

A series of fluid-structure interaction simulations of an aerodynamic tension-cone supersonic decelerator prototype intended for large mass payload deployment in planetary explorations are discussed. The fluid-structure interaction computations combine large deformation analysis of thin shells with large-eddy simulation of compressible turbulent flows using a loosely coupled approach to enable quantification of the dynamics of the vehicle.The simulation results are compared with experiments carried out at the NASA Glenn Research Center. Reasonably good agreement between the simulations and the experiment is observed throughout a deflation cycle. The simulations help to illuminate the details of the dynamic progressive buckling of the tension-cone decelerator that ultimately results in the collapse of the structure as the inflation pressure is decreased. Furthermore, the tension-cone decelerator exhibits a transient oscillatory behavior under impulsive loading that ultimately dies out The frequency of these oscillations was determined to be related to the acoustic time scale in the compressed subsonic region between the bow shock and the structure. As shown, when the natural frequency of the structure and the frequency of the compressed subsonic region approximately match, the decelerator exhibits relatively large nonaxisymetric oscillations. The observed response appears to be a fluid-structure interaction resonance resulting from an acoustic chamber (pistonlike) mode exciting the structure.
机译:讨论了气动张力锥超音速减速器原型的一系列流固耦合仿真,该原型旨在用于行星探测中的大质量载荷部署。流固耦合计算将薄壳的大变形分析与可压缩湍流的大涡模拟结合起来,采用了一种松散耦合的方法来量化车辆的动力学性能,并将模拟结果与在NASA Glenn进行的实验进行了比较研究中心。在整个放气周期中,观察到模拟与实验之间的合理良好一致性。这些模拟有助于阐明张力锥减速器的动态渐进屈曲的细节,最终随着充气压力的降低最终导致结构崩溃。此外,张力锥减速器在脉冲负载下表现出瞬态振荡行为,最终最终消失。确定这些振荡的频率与弓形激波和结构之间的压缩亚音速区域中的声时标有关。如图所示,当结构的固有频率和压缩的亚音速区域的频率近似匹配时,减速器表现出较大的非轴心振荡。观察到的响应似乎是由于声腔(活塞式)模式激发结构而引起的流体-结构相互作用共振。

著录项

  • 来源
    《AIAA Journal》 |2013年第7期|1640-1656|共17页
  • 作者单位

    Department of Mechanical Science and Engineering,University of Illinois at Urbana-Champaign, Urbana, Illinois 61801;

    Department of Engineering,University of Cambridge,-Department of Mechanical Science and Engineering,Cambridge, England CB2 1PZ, United Kingdom;

    Department of Mechanical Science and Engineering,University of Illinois at Urbana-Champaign, Urbana, Illinois 61801;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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