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Mixture Ratio Design Optimization of Coal Gangue-Based Geopolymer Concrete Based on Modified Gravitational Search Algorithm

机译:基于改进的重力搜索算法的混合比设计优化基于煤矸石的地质混凝土

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A green concrete, new type of coal gangue-based geopolymer concrete, was prepared. Coal gangue geopolymer concrete contains many mineral admixtures and alkaline activators; the concrete mixture ratio design has always been a complex problem. The framework of the mix design optimization by the proposed method is established in this work. The paper aims to minimize the economic cost under the premise of ensuring the strength and workability of coal gangue-based geopolymer concrete. Gravitational search algorithm (GSA) has the advantages of faster convergence speed and stronger exploitation performance compared with the traditional optimization algorithms. However, GSA tends to premature convergence and local optimum, with weak search ability. Therefore, chaotic map is introduced in the work here. Gravitational search algorithm was modified based on Chebyshev map in chaotic theory, and the modified equations were derived. The modified algorithm was verified by the calculation of typical functions. And results from traditional GSA and GSA modified by another chaotic mapping, logistic mapping, were compared and the characteristics of different GSA were analyzed and concluded. After that, the mix design of geopolymer concrete based on coal gangue with different strength grades was optimized with the modified GSA. Through analysis of the optimization results, cost variation of different strength grade coal gangue-based geopolymer concrete was revealed. Costs declined significantly; the higher the grades within a certain strength range, the more saved. Therefore, it can be inferred that the modified gravity search method provides a reliable tool for the optimization of mixture ratio of similar geopolymer concrete.
机译:制备了一种绿色混凝土,新型的煤矸石基地缘聚合物混凝土。煤矸石地缘聚合物混凝土含有许多矿物混合物和碱性活化剂;混凝土混合比设计一直是复杂的问题。在这项工作中建立了所提出的方法的混合设计优化的框架。本文旨在减少经济成本,以确保基于煤矸石的地缘混凝土的实力和可加工性的前提下。与传统优化算法相比,引力搜索算法(GSA)具有更快的收敛速度和更强的开发性能。然而,GSA倾向于过早收敛和局部最佳,搜索能力较弱。因此,在这里的工作中引入了混沌图。基于混沌理论的Chebyshev地图修改了重力搜索算法,导出了修改的方程。通过计算典型功能来验证修改的算法。并通过另一种混沌映射改性的传统GSA和GSA的结果进行了分析并结束了不同GSA的物流映射,并结束了不同GSA的特征。此后,利用改性的GSA优化了基于具有不同强度等级的煤矸石的地缘聚合物混凝土的混合设计。通过分析优化结果,揭示了不同强度级煤矸石的地质聚合物混凝土的成本变化。成本明显下降;在一定强度范围内的成绩越高,越节省。因此,可以推断改进的重力搜索方法提供了可靠的工具,用于优化类似地缘聚合物混凝土的混合比。

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