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Genetic algorithm for cost optimization of modified multi-component binders

机译:改进的多组分粘结剂成本优化的遗传算法

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This paper describes the application of a genetic algorithm for the cost optimization of a modified multi-component binder (MMCB). An MMCB comprised of Portland cement (NPC), finely ground mineral additives (fly ash, ponded ash or granulated blast furnace slag), and a highly reactive powder component (usually silica fume, SF) was modified by a superplasticizer (SP). Strength models based on the experimental results were developed. The present work is oriented to the minimization of the MMCB cost for specific strength levels with the help of a changing range genetic algorithm (CRGA) to handle the nonlinear constraints imposed by the MMCB models. The developed CRGA is based on an approach that adaptively shifts and shrinks the size of the search space to the feasible region. The application of CRGA helps to minimize the cost of MMCB with a low resolution of the binary representation scheme and without additional computational efforts.
机译:本文介绍了遗传算法在改进多组分粘合剂(MMCB)成本优化中的应用。 MMCB由超塑化剂(SP)改性,它由波特兰水泥(NPC),精细研磨的矿物添加剂(粉煤灰,池灰或高炉矿渣粉)和高反应性粉末组分(通常为硅粉,SF)组成。建立了基于实验结果的强度模型。本工作的目标是借助变化范围遗传算法(CRGA)来处理特定强度级别的MMCB成本,以处理MMCB模型施加的非线性约束。所开发的CRGA基于一种可自适应地将搜索空间的大小移动和缩小到可行区域的方法。 CRGA的应用以较低的二进制表示方案的分辨率,无需额外的计算工作,就有助于最小化MMCB的成本。

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