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Analysis of Semi-Rigid Asphalt Pavement with Flexible Base as a Sandwich Layer

机译:用柔性碱作为三明治层的半刚性沥青路面分析

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摘要

Reflective cracking is one of main distresses for cement/lime/flyash stabilized base in China. Although flexible base can be and has been utilized as sandwich layer to reduce reflecting cracks from stabilized base, the repetitive truck traffic load may cause higher tensile stress at the bottom of asphalt surface course because of large deformation from flexible base. The high tensile stress may lead to fatigue cracking. To minimize the tensile stress at the bottom of the asphalt layer and to establish optimum structures to reduce reflective cracking, nonlinear finite element technique was utilized to support three experimental pavements in Tonghua Highway in Jilin province. Base on the analyses, pavement structures 1 and 2 are recommended. In addition, for pavement structure 1, the optimal design is to include 7-12cm of AM-30, 10-15cm of flexible base, and 30-45cm of semi-rigid subbase (lime-flyash stabilized soil or cement treated base). Furthermore, for pavement structure 2, the optimal design is to include 15-20cm of flexible base, and 25-40cm of semi-rigid subbase (lime-flyash stabilized base or cement treated base).
机译:反光裂缝是中国水泥/石灰/粉煤灰稳定基地的主要痛苦之一。虽然柔性碱可以并且已被用作夹层层以减少来自稳定基座的反射裂缝,但由于柔性基部的大变形,重复卡车交通负荷可能会导致沥青表面底部的较高的拉伸应力。高拉伸应力可能导致疲劳裂化。为了使沥青层底部的拉伸应力最小化,并建立最佳结构以减少反射裂缝,因此利用非线性有限元技术来支持吉林省通化高速公路的三个实验路面。基于分析,建议路面结构1和2。此外,对于路面结构1,最佳设计是包括7-12cm的AM-30,10-15cm的柔性基底和30-45厘米的半刚性亚比(Lime-Flyash稳定的土壤或水泥处理的碱)。此外,对于路面结构2,最佳设计是包括15-20cm的柔性基底,25-40cm的半刚性子基(Lime-Flyash稳定底座或水泥处理基部)。

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