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首页> 外文期刊>Latin American Journal of Solids and Structures >Optimization of concrete I-beams using a new hybrid glowworm swarm algorithm
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Optimization of concrete I-beams using a new hybrid glowworm swarm algorithm

机译:使用新的混合萤火虫群算法优化混凝土工字钢

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In this paper a new hybrid glowworm swarm algorithm (SAGSO) for solving structural optimization problems is presented. The structure proposed to be optimized here is a simply-supported concrete I-beam defined by 20 variables. Eight different concrete mixtures are studied, varying the compressive strength grade and compacting system. The solutions are evaluated following the Spanish Code for structural concrete. The algorithm is applied to two objective functions, namely the embedded CO2 emissions and the economic cost of the structure. The ability of glowworm swarm optimization (GSO) to search in the entire solution space is combined with the local search by Simulated Annealing (SA) to obtain better results than using the GSO and SA independently. Finally, the hybrid algorithm can solve structural optimization problems applied to discrete variables. The study showed that large sections with a highly exposed surface area and the use of conventional vibrated concrete (CVC) with the lower strength grade minimize the CO2 emissions.
机译:本文提出了一种解决结构优化问题的新型混合萤火虫群算法(SAGSO)。建议在此进行优化的结构是由20个变量定义的简单支撑的工字梁。研究了八种不同的混凝土混合物,改变了抗压强度等级和压实系统。根据西班牙结构混凝土规范对解决方案进行评估。该算法应用于两个目标函数,即嵌入的CO2排放量和结构的经济成本。萤火虫群优化(GSO)在整个解决方案空间中进行搜索的能力与通过模拟退火(SA)进行的本地搜索相结合,可以获得比单独使用GSO和SA更好的结果。最后,混合算法可以解决应用于离散变量的结构优化问题。研究表明,表面积大的裸露表面以及使用强度等级较低的常规振动混凝土(CVC)可以最大程度地减少二氧化碳排放量。

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