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Optimum cost design of reinforced concrete slabs using neural dynamics model

机译:基于神经动力学模型的钢筋混凝土楼板最优成本设计。

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For structural optimization algorithms to find widespread usage among practicing engineering they must be formulated as cost optimization and applied to realistic structures subjected to the actual constraints of commonly used design codes such as the ACI code. In this article, a general formulation is presented for cost optimization of single- and multiple-span RC slabs with various end conditions (simply supported, one end continuous, both ends continuous, and cantilever) subjected to all the constraints of the ACI code. The problem is formulated as a mixed integer-discrete variable optimization problem with three design variables: thickness of slab, steel bar diameter, and bar spacing. The solution is obtained in two stages. In the first stage, the neural dynamics model of Adeli and Park is used to obtain an optimum solution assuming continuous variables. Next, the problem is formulated as a mixed integer-discrete optimization problem and solved using a perturbation technique in order to find practical values for the design variables. Practicality, robustness, and excellent convergence properties of the algorithm are demonstrated by application to four examples.
机译:为了使结构优化算法能够在实际工程中广泛使用,必须将其公式化为成本优化,并应用于受常用设计代码(例如ACI代码)实际约束的实际结构。在本文中,提出了一种通用公式,用于优化受ACI代码所有约束的各种端部条件(简单支撑,一端连续,两端连续和悬臂)的单跨和多跨RC板的成本优化。该问题被公式化为具有三个设计变量的混合整数离散变量优化问题:板坯厚度,钢筋直径和钢筋间距。该解决方案分两个阶段获得。在第一阶段,使用Adeli和Park的神经动力学模型来获得假设连续变量的最优解。接下来,将该问题公式化为混合整数离散优化问题,并使用扰动技术解决该问题,以便找到设计变量的实用值。通过应用于四个实例证明了该算法的实用性,鲁棒性和优良的收敛性。

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