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Parametric modelling and evolutionary optimization for cost-optimal and low-carbon design of high-rise reinforced concrete buildings

机译:高层钢筋混凝土建筑成本优化和低碳设计的参数化建模和进化优化

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Design optimization of reinforced concrete structures helps reducing the global carbon emissions and the construction cost in buildings. Previous studies mainly targeted at the optimization of individual structural elements in low-rise buildings. High-rise reinforced concrete buildings have complicated structural designs and consume tremendous amounts of resources, but the corresponding optimization techniques were not fully explored in literature. Furthermore, the relationship between the optimization of individual structural elements and the topological arrangement of the entire structure is highly interactive, which calls for new optimization methods. Therefore, this study aims to develop a novel optimization approach for cost-optimal and low-carbon design of high-rise reinforced concrete structures, considering both the structural topology and individual element optimizations. Parametric modelling is applied to define the relationship between individual structural members and the behavior of the entire building structure. A novel evolutionary optimization technique using the genetic algorithm is proposed to optimize concrete building structures, by first establishing the optimal structural topology and then optimizing individual member sizes. In an illustrative example, a high-rise reinforced concrete building is used to examine the proposed optimization approach, which can systematically explore alternative structural designs and identify the optimal solution. It is shown that the carbon emissions and material cost are both reduced by 18-24% after performing optimization. The proposed approach can be extended to optimize other types of buildings (such as steel framework) with a similar problem nature, thereby improving the cost efficiency and environmental sustainability of the built environment.
机译:钢筋混凝土结构的设计优化有助于降低全球碳排放量和建筑物的建设成本。先前的研究主要针对优化低层建筑中的单个结构元素。高层钢筋混凝土建筑的结构设计复杂且消耗大量资源,但是相应的优化技术尚未在文献中得到充分探索。此外,单个结构元件的优化与整个结构的拓扑结构之间的关系是高度交互的,这需要新的优化方法。因此,本研究旨在为高层钢筋混凝土结构的成本优化和低碳设计开发一种新的优化方法,同时兼顾结构拓扑和单个元素的优化。应用参数化建模来定义各个结构构件与整个建筑结构行为之间的关系。提出了一种使用遗传算法的新型进化优化技术,通过首先建立最佳的结构拓扑,然后优化各个构件的尺寸来优化混凝土建筑结构。在一个说明性示例中,使用高层钢筋混凝土建筑来检查所提出的优化方法,该方法可以系统地探索替代结构设计并确定最佳解决方案。结果表明,优化后,碳排放量和材料成本均降低了18-24%。可以将提出的方法扩展为优化具有类似问题性质的其他类型的建筑物(例如钢框架),从而提高建筑环境的成本效率和环境可持续性。

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