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Service ORiented Computing EnviRonment (SORCER) for deterministic global and stochastic aircraft design optimization: part 1

机译:用于确定性全球和随机飞机设计优化的面向服务的计算环境(SORCER):第1部分

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摘要

With rapid growth in the complexity of large scale engineering systems, the application of multidisciplinary analysis and design optimization (MDO) in the engineering design process has garnered much attention. MDO addresses the challenge of integrating several different disciplines into the design process. Primary challenges of MDO include computational expense and poor scalability. The introduction of a distributed, collaborative computational environment results in better utilization of available computational resources, reducing the time to solution, and enhancing scalability. SORCER, a Java-based network-centric computing platform, enables analyses and design studies in a distributed collaborative computing environment. Two different optimization algorithms widely used in multidisciplinary engineering design-VTDIRECT95 and QNSTOP-are implemented on a SORCER grid. VTDIRECT95, a Fortran 95 implementation of D. R. Jones' algorithm DIRECT, is a highly parallelizable derivative-free deterministic global optimization algorithm. QNSTOP is a parallel quasi-Newton algorithm for stochastic optimization problems. The purpose of integrating VTDIRECT95 and QNSTOP into the SORCER framework is to provide load balancing among computational resources, resulting in a dynamically scalable process. Further, the federated computing paradigm implemented by SORCER manages distributed services in real time, thereby significantly speeding up the design process. Part 1 covers SORCER and the algorithms, Part 2 presents results for aircraft panel design with curvilinear stiffeners.
机译:随着大型工程系统复杂性的快速增长,在工程设计过程中多学科分析和设计优化(MDO)的应用引起了广泛关注。 MDO解决了将几个不同的学科集成到设计过程中的挑战。 MDO的主要挑战包括计算费用和可伸缩性差。分布式协作计算环境的引入可以更好地利用可用的计算资源,缩短解决时间,并增强可伸缩性。 SORCER是基于Java的以网络为中心的计算平台,可在分布式协作计算环境中进行分析和设计研究。在SORCER网格上实现了两种广泛用于多学科工程设计的优化算法-VTDIRECT95和QNSTOP。 VTDIRECT95是D.R. Jones的算法DIRECT的Fortran 95实现,是一种高度可并行化的无导数确定性全局优化算法。 QNSTOP是用于随机优化问题的并行拟牛顿算法。将VTDIRECT95和QNSTOP集成到SORCER框架中的目的是在计算资源之间提供负载平衡,从而实现动态可伸缩的过程。此外,由SORCER实施的联合计算范例可实时管理分布式服务,从而显着加快了设计过程。第1部分介绍了SORCER和算法,第2部分介绍了具有曲线加劲肋的飞机面板设计的结果。

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