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Cost and CO_2 emission optimization of precast-prestressed concrete U-beam road bridges by a hybrid glowworm swarm algorithm

机译:混合萤火虫群算法优化预应力混凝土U型梁路桥造价和CO_2排放优化

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摘要

This paper describes a methodology to optimize cost and CO_2 emissions when designing precast-prestressed concrete road bridges with a double U-shape cross-section. To this end, a hybrid glowworm swarm optimization algorithm (SAGSO) is used to combine the synergy effect of the local search with simulated annealing (SA) and the global search with glowworm swarm optimization (GSO). The solution is defined by 40 variables, including the geometry, materials and reinforcement of the beam and the slab. Regarding the material, high strength concrete is used as well as self-compacting concrete in beams. Results provide engineers with useful guidelines to design PC precast bridges. The analysis also revealed that reducing costs by 1 Euro can save up to 1.75 kg in CO_2 emissions. Finally, the parametric study indicates that optimal solutions in terms of monetary costs have quite a satisfactory environmental outcome and differ only slightly from the best possible environmental solution obtained.
机译:本文介绍了在设计具有双U形横截面的预制预应力混凝土公路桥梁时优化成本和CO_2排放的方法。为此,使用了混合萤火虫群优化算法(SAGSO)来结合具有模拟退火(SA)的局部搜索和具有萤火虫群优化(GSO)的全局搜索的协同效应。该解决方案由40个变量定义,包括梁,平板的几何形状,材料和钢筋。关于材料,在梁中使用高强度混凝土以及自密实混凝土。结果为工程师提供了设计PC预制桥的有用指导。分析还显示,减少1欧元的成本可以节省多达1.75千克的CO_2排放量。最后,参数研究表明,就货币成本而言,最佳解决方案具有相当令人满意的环境结果,并且与获得的最佳环境解决方案仅略有不同。

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