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A Universal MDO Framework Based on the Adaptive Discipline Surrogate Model

机译:基于自适应学科代理模型的通用MDO框架

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摘要

High time-consuming computation has become an obvious characteristic of the modern multidisciplinary design optimization (MDO) solving procedure. To reduce the computing cost and improve solving environment of the traditional MDO solution method, this article introduces a novel universal MDO framework based on the support of adaptive discipline surrogate model with asymptotical correction by discriminative sampling. The MDO solving procedure is decomposed into three parts: framework level, architecture level, and discipline level. Framework level controls the MDO solving procedure and carries out convergence estimation; architecture level executes the MDO solution method with discipline surrogate models; discipline level analyzes discipline models to establish adaptive discipline surrogate models based on a stochastic asymptotical sampling method. The MDO solving procedure is executed as an iterative way included with discipline surrogate model correcting, MDO solving, and discipline analyzing. These are accomplished by the iteration process control at the framework level, the MDO decomposition at the architecture level, and the discipline surrogate model update at the discipline level. The framework executes these three parts separately in a hierarchical and modularized way. The discipline models and disciplinary design point sampling process are all independent; parallel computing could be used to increase computing efficiency in parallel environment. Several MDO benchmarks are tested in this MDO framework. Results show that the number of discipline evaluations in the framework is half or less of the original MDO solution method and is very useful and suitable for the complex high-fidelity MDO problem.
机译:高耗时的计算已经成为解决过程中的现代多学科设计优化(MDO)的显着特点。为了降低计算成本,提高解决了传统MDO溶液方法的环境下,本文介绍了一种基于由判别抽样的支持自适应纪律替代模型的渐近与校正的新颖的通用MDO框架。该MDO解决过程分解为三个部分:框架层面,建筑层面和学科水平。框架水平控制MDO求解过程,并进行收敛估计;架构级别执行MDO溶液方法纪律替代模型;学科水平分析学科模型基于随机渐近抽样的方法,建立自适应纪律的替代模型。该MDO解决程序作为附带学科代理模型修正,MDO解决和学科分析迭代的方式执行。这些都是通过在框架层面的迭代过程控制,在架构层面的MDO分解,并在学科水平的学科代理模型更新完成。该框架的层次化,模块化的方式分别执行这三个部分。学科模型和学科设计点采样过程都是独立的;并行计算可以用来增加在并行计算环境效率。几个MDO基准是在这个框架MDO测试。结果表明,纪律评价在框架的数量为一半或原始MDO溶液方法的少,并且是复杂的高保真MDO问题非常有用和适合的。

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