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Three dimensional finite element ablative thermal response analysis applied to heatshield penetration design.

机译:三维有限元烧蚀热响应分析应用于隔热板穿透设计。

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摘要

Heatshield design and analysis has traditionally been a decoupled process, the designer creates the geometry generally without knowledge about how the design variables affect the thermostructural response or how the system will perform under off nominal conditions. Heatshield thermal and structural response analyses are generally performed as separate tasks where the analysts size their respective components and feedback their results to the designer who is left to interpret them. The analysts are generally unable to provide guidance in terms of how the design variables can be modified to meet geometric constraints and not exceed the thermal or structural design specifications. In general, the thermal response analysis of ablative thermal protection systems has traditionally been performed using a one-dimensional finite difference calculation. The structural analyses are generally one, two, or three-dimensional finite element calculations.;In this dissertation, the governing differential equations for ablative thermal response are solved in three-dimensions using the finite element method. Darcy' Law is used to model the flow of pyrolysis gas through the ablative material. The three-dimensional governing differential equations for Darcy flow are solved using the finite element method as well. Additionally, the equations for linear elasticity are solved by the finite element method for the thermal stress using temperatures directly from the thermal response calculations.;This dissertation also links the analysis of thermal protection systems to their design. The link to design comes from understanding the variation in the thermostructural response over the range of the design variables. Material property sensitivities are performed and an optimum design is determined based on a deterministic analysis minimizing the design specification of bondline temperature subject to appropriate constraints. A Monte Carlo simulation is performed on the optimum design to determine the probability of exceeding the design specifications. The design methodology is demonstrated on the Orion Crew Exploration Vehicle's compression pad design.
机译:传统上,隔热罩的设计和分析是一个解耦过程,设计人员通常在不知道设计变量如何影响热结构响应或系统在非标称条件下的性能的情况下创建几何形状。隔热板的热和结构响应分析通常作为单独的任务执行,其中分析师确定其各自组件的大小,并将其结果反馈给设计人员,由设计人员对其进行解释。分析人员通常无法就如何修改设计变量以满足几何约束且不超过热设计或结构设计规范方面提供指导。通常,烧蚀热保护系统的热响应分析传统上是使用一维有限差分计算进行的。结构分析通常是一维,二维或三维有限元计算。本文采用有限元方法,对三维烧蚀热响应的控制微分方程进行了三维求解。达西定律用于模拟热解气体通过烧蚀材料的流动。还使用有限元方法求解了达西流的三维控制微分方程。另外,通过热响应计算中的温度直接通过有限元法求解热应力的线性弹性方程。;本文还将热保护系统的分析与其设计联系起来。设计的链接来自于了解热力学响应在设计变量范围内的变化。进行材料特性敏感性分析,并根据确定性分析确定最佳设计,该确定性分析将在适当限制下使胶合温度的设计指标降至最低。在最佳设计上执行蒙特卡洛模拟,以确定超出设计规格的可能性。该设计方法论在Orion Crew Exploration Vehicle的压缩垫设计中得到了证明。

著录项

  • 作者

    Dec, John A.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 252 p.
  • 总页数 252
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:12

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