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玄武岩纤维增强苯乙烯-丁二烯-苯乙烯改性沥青混合料在冻融循环作用下性能劣化的室内试验评价

Laboratory Evaluation on the Performance Degradation of Styrene-Butadiene-Styrene-Modified Asphalt Mixture Reinforced with Basalt Fiber under Freeze-Thaw Cycles.

作者信息

Cheng Yongchun, Li He, Wang Wensheng, Li Liding, Wang Haitao

机构信息

College of Transportation, Jilin University, Changchun 130025, China.

Ingram School of Engineering, Texas State University, San Marcos, TX 78666, USA.

出版信息

Polymers (Basel). 2020 May 11;12(5):1092. doi: 10.3390/polym12051092.

Abstract

This paper aims at the freeze-thaw (F-T) cycles resistance of styrene-butadiene-styrene (SBS) modified asphalt mixture reinforced with basalt fiber in order to explore the performance evaluation and prediction of asphalt mixtures at seasonal frozen regions. Asphalt was firstly modified by the common SBS and then SBS-modified stone mastic asphalt (SMA) specimens with basalt fiber were prepared by using Superpave gyratory compaction (SGC) method. Next, asphalt mixture specimens processed by 0-21 F-T cycles were adopted for the high-temperature compression test, low-temperature splitting test and indirect tensile stiffness modulus test. Meanwhile, a three-dimensional model of F-T damage evolution of the mixtures was also established based on the reliability and damage theory. The test results showed that the loss rates of mechanical strength increased rapidly, and then gradually flattened; however, these indications changed significantly after 15-18 F-T cycles. In addition, the exponential function could reflect the variation trend of the mechanical performances with F-T cycles to a certain degree. The damage evolution and prediction model based on the reliability and damage theory can be established to analyze the internal degradation law better.

摘要

本文旨在研究玄武岩纤维增强苯乙烯-丁二烯-苯乙烯(SBS)改性沥青混合料的抗冻融(F-T)循环性能,以探索季节性冰冻地区沥青混合料的性能评价与预测方法。首先采用普通SBS对沥青进行改性,然后采用Superpave旋转压实(SGC)法制备了掺加玄武岩纤维的SBS改性沥青玛蹄脂碎石混合料(SMA)试件。接着,对经过0-21次冻融循环处理的沥青混合料试件进行高温压缩试验、低温劈裂试验和间接拉伸劲度模量试验。同时,基于可靠性和损伤理论建立了混合料冻融损伤演化的三维模型。试验结果表明,力学强度损失率先迅速增加,然后逐渐趋于平缓;然而,在15-18次冻融循环后,这些趋势发生了显著变化。此外,指数函数在一定程度上能够反映力学性能随冻融循环次数的变化趋势。基于可靠性和损伤理论可以建立损伤演化与预测模型,以更好地分析内部劣化规律。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/494c/7284990/3398a98be67d/polymers-12-01092-g001.jpg

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