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Layout design of reinforced concrete structures using two-material topology optimization with Drucker-Prager yield constraints

机译:基于Drucker-Prager屈服约束的两种材料拓扑优化的钢筋混凝土结构布局设计

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摘要

This paper aims to develop a method that can automatically generate the optimal layout of reinforced concrete structures by incorporating concrete strength constraints into the two-material topology optimization formulation. The Drucker-Prager yield criterion is applied to predict the failure behavior of concrete. By using the power-law interpolation, the proposed optimization model is stated as a minimum compliance problem under the yield stress constraints on concrete elements and the material volume constraint of steel. The ε-relaxation technique is employed to prevent the stress singularity. A hybrid constraint-reduction strategy, in conjunction with the adjoint-variable sensitivity information, is integrated into a gradient-based optimization algorithm to overcome the numerical difficulties that arise from large-scale constraints. It can be concluded from numerical investigations that the proposed model is suitable for obtaining a reasonable layout which makes the best uses of the compressive strength of concrete and the tensile strength of steel. Numerical results also reveal that the hybrid constraint-reduction strategy is effective in solving the topology optimization problems involving a large number of constraints.
机译:本文旨在开发一种方法,该方法可以通过将混凝土强度约束纳入两种材料拓扑优化公式中来自动生成钢筋混凝土结构的最佳布局。 Drucker-Prager屈服准则用于预测混凝土的破坏行为。通过使用幂律插值,将所提出的优化模型描述为混凝土构件的屈服应力约束和钢的材料体积约束下的最小服从问题。 ε松弛技术用于防止应力奇异性。混合约束减少策略与伴随变量敏感度信息一起被集成到基于梯度的优化算法中,以克服大规模约束所带来的数值困难。从数值研究可以得出结论,所提出的模型适合获得合理的布局,从而充分利用混凝土的抗压强度和钢的抗拉强度。数值结果还表明,混合约束减少策略可以有效解决涉及大量约束的拓扑优化问题。

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