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Optimal design of multi-layer thermal protection of variable thickness

机译:变厚度多层热保护器的优化设计

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Purpose: The presented paper aims to consider algorithm for optimal design of multilayer thermal insulation. Design/methodology/approach: Developed algorithm is based on a sequential quadratic programming method. Findings: 2D mathematical model of heat transfer in thermal protection was considered in frame of thermal design of spacecraft. The sensitivity functions were used to estimate the Jacobean of the object functions. Research limitations/implications: Design of distributed parameter systems and shape optimization may be thought of as geometrical inverse problems, in which the positions of free boundaries are determined along with the spatial variables. In such problems, the missing data (i.e. the position of boundaries) are compensated for by the presence of the so-called inverse problem additional conditions. In the case under consideration, such conditions are constrains on the temperature values at the discrete points of the system. Practical implications: Results are presented how to apply the algorithm suggested for solving a practical problem - thickness sampling for a thermal protection systemof advanced solar probe. Originality/value - The procedure proposed in the paper to solve a design problem is based on the method of quadratic approximation of the initial problem statement as a Lagrange formulation. This has allowed to construct a rather universal algorithm applicable without modification for solving a wide range of thermal design problems.
机译:目的:本文旨在考虑多层隔热的最佳设计算法。设计/方法/方法:开发的算法基于顺序二次编程方法。发现:在航天器的热设计框架中考虑了热保护中热传递的二维数学模型。灵敏度函数用于估计对象函数的雅可比行列式。研究的局限性/意义:可以将分布式参数系统的设计和形状优化视为几何反问题,其中自由边界的位置与空间变量一起确定。在这样的问题中,通过所谓的反问题附加条件的存在来补偿丢失的数据(即边界的位置)。在考虑的情况下,这样的条件限制了系统离散点的温度值。实际意义:给出了如何应用建议的算法解决实际问题的结果-高级太阳能探头热保护系统的厚度采样。原创性/价值-本文中提出的解决设计问题的程序基于初始问题陈述的二次逼近方法(作为Lagrange公式)。这样就可以构造一个相当通用的算法,而无需进行修改即可解决广泛的热设计问题。

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