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Embodied Energy Optimization of Steel-Concrete Composite Beams using a Genetic Algorithm

机译:使用遗传算法实现钢混凝土复合梁的能量优化

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The optimisation of structural performance is acknowledged as a means of obtaining sustainable structural designs. The minimisation of embodied energy of construction materials is a key component in the delivery of sustainable future designs. This study attempts to understand the relationship between embodied energy and structural forms of composite floor plates repetitively used in multi-storey buildings, and highly optimise the form to minimise embodied energy. As a search method based upon the principles of genetics and natural selection, Genetic Algorithms (GA) have previously been used to optimise composite beams and composite frames for cost and weight objective functions. Parametric design models have also been presented in the literature as an optimisation tool to optimise steel floor plates for both cost and embodied carbon. In this paper, a Matlab algorithm incorporating MathWorks global optimisation toolbox GA and in accordance with Eurocode 4 design processes is employed to optimise a composite beam for five separate objective functions: maximise span length, minimise beam cross section, minimise slab depth, minimise weight, and minimise deflected shape. For each of these objective functions, candidate designs are assessed for embodied energy to determine individual relationships. It is concluded that correlation can be derived, and collective relationships between design and state variables as well as embodied energy can be determined.
机译:结构性能的优化被认为是获得可持续结构设计的一种方法。建筑材料的最小化能量的能量是交付可持续未来设计中的关键组成部分。本研究试图了解多层建筑物重复使用的复合地板板的体现能量和结构形式之间的关系,高度优化了形成能量的形式。作为基于遗传学和自然选择原理的搜索方法,先前已经用于优化复合梁和复合帧以实现成本和重量的物理函数的基因算法。参数化设计模型也已在文献中作为优化工具,以优化成本和体现碳的钢板板。在本文中,一个Matlab算法并入MathWorks的全局优化工具箱GA并根据欧洲规范4的设计流程,采用优化的复合光束为五个单独的目标函数:最大化跨度长度,最小化光束横截面,最小化板坯深度,使重量最小,和最小化偏转形状。对于这些目标函数中的每一个,评估候选设计以确定能量来确定个体关系。得出结论,可以导出相关性,并且可以确定设计和状态变量与体现的集体关系。

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