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THE RESEARCH OF STRUCTURAL OPTIMIZATION WITH THE CONSTRAINTS OF AERODYNAMICS AND RADAR CROSS SECTION (RCS) OF AIRCRAFT

机译:飞机空气动力学和雷达横截面(RCS)结构优化的研究

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The development of structural optimization calls for considering the influence of aerodynamics and radar cross section (RCS) of aircraft. So models and software's flow charts for structural optimization based on Concurrent Subspace Optimization(CSSO), with the constraints of aerodynamics and radar cross section (RCS) are presented and studied. The response surface technique is adopted to simulate the single disciplinary model, including structure disciplinary, aerodynamics disciplinary and radar detection and the dimension of input variables for response surface is decreased by distinguishing system variables which explicitly impact more than one subsystem from local variables which explicitly impact only one subsystem. The new constructing response surface method is integrated a two-level optimization frame, to solve complex engineering systems, in which system level optimizer optimizes system design variables and subsystem level optimizers optimize local design variables. These measures will reduce the times of single disciplinary re-analysis greatly. The effectiveness of the framework for improving optimization process in this paper is shown by an example, which is about design optimization of a flying-wing layout structure.
机译:结构优化要求考虑飞机空气动力学和雷达横截面(RCS)的影响。因此,基于并发子空间优化(CSSO)的结构优化的模型和软件的流程图,并提出了空气动力学和雷达横截面(RCS)的约束。采用响应面技术来模拟单一的学科模型,包括结构学科,空气动力学纪律和雷达检测,通过区分系统变量来降低响应表面的输入变量的尺寸,该系统变量从明确影响的局部变量显式影响了多个子系统的系统变量只有一个子系统。新的构建响应曲面方法是集成了两级优化帧,解决复杂工程系统,其中系统级优化器优化系统设计变量和子系统级优化器优化本地设计变量。这些措施将减少单一学科重新分析的时间。本文提高优化过程的框架的有效性如示例所示,这是关于飞行布局结构的设计优化。

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