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Move limits definition in structural optimization with sequential linear programming. Part II: Numerical examples

机译:通过顺序线性编程在结构优化中移动极限定义。第二部分:数值示例

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A variety of numerical methods have been proposed in literature in purpose to deal with the complexity and non-linearity of structural optimization problems. In practical design, sequential linear programming (SLP) is very popular because of its inherent simplicity and because linear solvers (e.g. Simplex) are easily available. However, SLP performance is sensitive to the definition of proper move limits for the design variables which task itself often involves considerable heuristics. This research presents a new SLP algorithm (LESLP) that implements an advanced technique for defining the move limits. The linearization error sequential linear programming (LESLP) algorithm is formulated so to overcome the traditional limitations of the SLP method. In a companion paper [Comput. Struct. 81 (2003) 197] the basics of the LESLP formulation along with a guide to programming are provided. The new algorithm is successfully tested in weight minimisation problems of truss structures with up to hundreds of design variables and thousands of constraints: sizing and configuration problems are considered. Optimization problems of non-truss structures are also presented. The numerical efficiency, advantages and drawbacks of LESLP are discussed and compared to those of other SLP algorithms recently published or implemented in commercial software packages.
机译:为了解决结构优化问题的复杂性和非线性,文献中提出了多种数值方法。在实际设计中,顺序线性编程(SLP)由于其固有的简单性以及线性求解器(例如Simplex)易于使用而非常受欢迎。但是,SLP性能对设计变量的适当移动限制的定义很敏感,而这些任务本身通常涉及相当大的启发式。这项研究提出了一种新的SLP算法(LESLP),该算法实现了用于定义移动极限的先进技术。制定了线性化误差顺序线性规划(LESLP)算法,以克服SLP方法的传统局限性。在随附的论文中。结构。 [81(2003)197]提供了LESLP公式的基础知识以及编程指南。该新算法已在具有多达数百个设计变量和数千个约束的桁架结构的重量最小化问题中成功进行了测试:考虑了尺寸和配置问题。还提出了非桁架结构的优化问题。讨论了LESLP的数值效率,优缺点,并将其与最近在商业软件包中发布或实施的其他SLP算法的数值效率,优点和缺点进行了比较。

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