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Advanced fluid-structure interaction techniques for modeling ringsail parachutes

机译:用于建模环帆降落伞的高级流体-结构相互作用技术

摘要

The Team for Advanced Flow Simulation and Modeling (T☆FSM) at Rice University specializes in developing fluid-structure interaction (FSI) modeling techniques for several classes of challenging problems including geometrically complex parachutes. Current modeling technologies are expanded upon with emphasis placed on more realistic FSI modeling of the Orion spacecraft ringsail parachutes. A method for generating a starting condition that matches NASA drop test data and allows for a fair comparison of design variations is introduced. The effect of the geometric porosity distribution on parachute performance and stability is analyzed for three parachute configurations. Rotationally periodic computations that model flow past the complex canopy geometry are presented. Fabric and geometric porosity coefficients are calculated for an improved FSI porosity model. A spatially multiscale technique is used to compare fabric stresses with and without a vent hoop.
机译:莱斯大学的高级流动仿真和建模团队(T☆ FSM)专门研究流体-结构相互作用(FSI)建模技术,以解决包括几何复杂降落伞在内的几类挑战性问题。当前的建模技术得到了扩展,重点是对Orion航天器的环帆降落伞进行更逼真的FSI建模。介绍了一种用于生成与NASA跌落测试数据匹配并允许公平比较设计变化的起始条件的方法。针对三种降落伞配置,分析了几何孔隙率分布对降落伞性能和稳定性的影响。提出了对流过复杂冠层几何形状的流进行建模的旋转周期性计算。计算织物和几何孔隙率系数以改进FSI孔隙率模型。使用空间多尺度技术来比较有无通风环的织物应力。

著录项

  • 作者

    Wright Samuel E. III;

  • 作者单位
  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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