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Modeling of unconfined compressive strength of soil-RAP blend stabilized with Portland cement using multivariate adaptive regression spline

机译:基于多元自适应回归样条的波特兰水泥稳定的RAP共混物无侧限抗压强度建模

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摘要

The recycled layer in full-depth reclamation (FDR) method is a mixture of coarse aggregates and reclaimed asphalt pavement (RAP) which is stabilized by a stabilizer agent. For design and quality control of the final product in FDR method, the unconfined compressive strength of stabilized material should be known. This paper aims to develop a mathematical model for predicting the unconfined compressive strength (UCS) of soil-RAP blend stabilized with Portland cement based on multivariate adaptive regression spline (MARS). To this end, two different aggregate materials were mixed with different percentages of RAP and then stabilized by different percentages of Portland cement. For training and testing of MARS model, total of 64 experimental UCS data were employed. Predictors or independent variables in the developed model are percentage of RAP, percentage of cement, optimum moisture content, percent passing of #200 sieve, and curing time. The results demonstrate that MARS has a great ability for prediction of the UCS in case of soil-RAP blend stabilized with Portland cement (R-2 is more than 0.97). Sensitivity analysis of the proposed model showed that the cement, optimum moisture content, and percent passing of #200 sieve are the most influential parameters on the UCS of FDR layer.
机译:全深度回收(FDR)方法中的再生层是粗骨料与再生沥青路面(RAP)的混合物,后者由稳定剂稳定。对于采用FDR方法进行最终产品的设计和质量控制,应知道稳定材料的无限制抗压强度。本文旨在建立基于多元自适应回归样条(MARS)的预测波特兰水泥稳定的土壤-RAP共混物的无侧限抗压强度(UCS)的数学模型。为此,将两种不同的骨料与不同百分比的RAP混合,然后通过不同百分比的波特兰水泥进行稳定。为了训练和测试MARS模型,总共使用了64个UCS实验数据。开发模型中的预测变量或自变量是RAP百分比,水泥百分比,最佳水分含量,#200筛通过率和固化时间。结果表明,在用硅酸盐水泥(R-2大于0.97)稳定的土壤-RAP共混物中,MARS具有很大的UCS预测能力。该模型的敏感性分析表明,水泥,最佳含水量和#200筛分的通过率是FDR层UCS最具影响力的参数。

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