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Topology optimization of continuum structures with local and global stress constraints

机译:具有局部和全局应力约束的连续体结构的拓扑优化

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摘要

Topology structural optimization problems have been usually stated in terms of a maximum stiffness (minimum compliance) approach. The objective of this type of approach is to distribute a given amount of material in a certain domain, so that the stiffness of the resulting structure is maximized (that is, the compliance, or energy of deformation, is minimized) for a given load case. Thus, the material mass is restricted to a predefined percentage of the maximum possible mass, while no stress or displacement constraints are taken into account. This paper presents a different strategy to deal with topology optimization: a minimum weight with stress constraints Finite Element formulation for the topology optimization of continuum structures. We propose two different approaches in order to take into account stress constraints in the optimization formulation. The local approach of the stress constraints imposes stress constraints at predefined points of the domain (i.e. at the central point of each element). On the contrary, the global approach only imposes one global constraint that gathers the effect of all the local constraints by means of a certain so-called aggregation function. Finally, some application examples are solved with both formulations in order to compare the obtained solutions.
机译:通常以最大刚度(最小顺应性)方法来陈述拓扑结构优化问题。这种方法的目的是在给定的载荷情况下在给定的区域内分配给定量的材料,以便使所得结构的刚度最大化(即,顺应性或变形能量最小)。 。因此,材料质量被限制为最大可能质量的预定百分比,而没有考虑应力或位移约束。本文提出了一种用于拓扑优化的不同策略:具有应力约束的最小权重用于连续体结构拓扑优化的有限元公式。为了在优化公式中考虑应力约束,我们提出了两种不同的方法。应力约束的局部方法在域的预定义点(即,在每个元素的中心点)施加应力约束。相反,全局方法仅施加一个全局约束,该全局约束通过某种所谓的聚集函数来收集所有局部约束的效果。最后,用两种配方解决了一些应用实例,以便比较获得的解决方案。

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