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Fluid--Structure Interaction Modeling of Modified-Porosity Parachutes and Parachute Clusters

机译:修正孔隙率降落伞和降落伞簇的流固耦合模型

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摘要

To increase aerodynamic performance, the geometric porosity of a ringsail spacecraft parachute canopy is sometimes increased, beyond the "rings" and "sails" with hundreds of "ring gaps" and "sail slits." This creates extra computational challenges for fluid--structure interaction (FSI) modeling of clusters of such parachutes, beyond those created by the lightness of the canopy structure, geometric complexities of hundreds of gaps and slits, and the contact between the parachutes of the cluster. In FSI computation of parachutes with such "modified geometric porosity," the flow through the "windows" created by the removal of the panels and the wider gaps created by the removal of the sails cannot be accurately modeled with the Homogenized Modeling of Geometric Porosity (HMGP), which was introduced to deal with the hundreds of gaps and slits. The flow needs to be actually resolved. All these computational challenges need to be addressed simultaneously in FSI modeling of clusters of spacecraft parachutes with modified geometric porosity. The core numerical technology is the Stabilized Space--Time FSI (SSTFSI) technique, and the contact between the parachutes is handled with the Surface-Edge-Node Contact Tracking (SENCT) technique. In the computations reported here, in addition to the SSTFSI and SENCT techniques and HMGP, we use the special techniques we have developed for removing the numerical spinning component of the parachute motion and for restoring the mesh integrity without a remesh. We present results for 2- and 3-parachute clusters with two different payload models. We also present the FSI computations we carried out for a single, subscale modified-porosity parachute.
机译:为了提高空气动力学性能,有时会增加环形帆航天器降落伞机盖的几何孔隙率,超过具有数百个“环形间隙”和“帆缝”的“环形”和“帆”。除了由降落伞结构的轻巧,数百个缝隙和狭缝的几何复杂性以及簇降落伞之间的接触所产生的降落伞之外,这种降落伞簇的流固耦合(FSI)建模还带来了额外的计算挑战。 。在具有这种“修正的几何孔隙度”的降落伞的FSI计算中,无法通过均质的几何孔隙度均化模型准确地建模通过移除面板所形成的“窗口”的流量以及移除帆所产生的更宽的间隙( HMGP),旨在处理数百个间隙和缝隙。该流程需要实际解决。在具有改进的几何孔隙度的航天器降落伞簇的FSI建模中,所有这些计算难题都需要同时解决。核心数值技术是稳定时空FSI(SSTFSI)技术,降落伞之间的接触通过表面边缘节点接触跟踪(SENCT)技术处理。在此处报告的计算中,除了SSTFSI和SENCT技术以及HMGP外,我们还使用我们开发的特殊技术来删除降落伞运动的数字旋转分量并恢复网格完整性而无需重新设置。我们介绍了具有两个不同有效负载模型的2降落伞和3降落伞群集的结果。我们还介绍了我们对单个子尺度的修正孔隙率降落伞进行的FSI计算。

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    Boben Joseph;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 eng
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