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Determination of aggregate physical properties and its effects on cross-anisotropic behavior of unbound aggregate materials

机译:骨料物理性质的确定及其对未结合骨料的交叉各向异性行为的影响

摘要

Work done by several researchers reveals that unbound aggregate materials show nonlinear cross-anisotropic behavior. The incorporation of cross-anisotropic properties significantly improves the predictions of stress distribution by reducing tensile stresses computed within granular layers. Existing pavement analysis and design approaches, however, generally assume the pavement structure to be linear isotropic layered system. This assumption is motivated by the difficulties in determining cross-anisotropic resilient material properties from laboratory experiments and lack of pavement anisotropic analysis programs. Recently, the International Center for Aggregates Research (ICAR) developed a methodology to characterize unbound aggregate layers by considering stress-sensitivity and nonlinear cross-anisotropy. The ICAR model requires nine coefficients to account for stress-sensitivity and anisotropy of vertical, horizontal, and shear moduli. Unfortunately, ICAR testing protocol is time-consuming and expensive to perform and certainly do not lend themselves to routine testing. Since it is important to be able to consider the stress-sensitive and anisotropic nature of unbound granular materials, a simple procedure was proposed by accounting for the effects of aggregate gradation and shape properties in predicting the cross-anisotropic modular ratio of unbound granular materials. Variable confining pressure type repeated load triaxial tests were performed on six aggregate sources with three different gradations and three different moisture contents. The experimental results were analyzed within the framework of nonlinear cross-anisotropic elastic model in order to determine the model coefficients. Image analysis techniques were utilized to measure aggregate shape properties. The gradation and shape properties were fitted using a cumulative distribution function and nonlinear regression analysis, which is capable of capturing the complete distribution of these properties. The experimental and analytical results indicate that the vertical resilient modulus is greater than the horizontal resilient modulus and that aggregate physical properties significantly affect the anisotropic resilient behavior. Based on finite element analysis, the anisotropic resilient behavior has substantial effect on the critical pavement responses. Thus, it is extremely valuable to approximate the degree of cross-anisotropy in unbound aggregates and to use it as input in the pavement analysis programs to adequately model unbound aggregate bases for pavement design and analysis.
机译:几位研究人员所做的工作表明,未结合的骨料显示出非线性的交叉各向异性行为。通过减少颗粒层内计算出的拉应力,交叉各向异性特性的引入大大改善了应力分布的预测。但是,现有的路面分析和设计方法通常假定路面结构为线性各向同性分层系统。这种假设是由于难以通过实验室实验确定交叉各向异性弹性材料的性能以及缺乏路面各向异性分析程序而产生的。最近,国际骨料研究中心(ICAR)开发了一种通过考虑应力敏感性和非线性交叉各向异性来表征未结合骨料层的方法。 ICAR模型需要九个系数来考虑应力敏感度以及垂直,水平和剪切模量的各向异性。不幸的是,ICAR测试协议执行起来既耗时又昂贵,并且肯定不适合进行常规测试。由于重要的是能够考虑未结合的颗粒材料的应力敏感和各向异性性质,因此通过考虑聚集体渐变和形状特性对预测未结合的颗粒材料的交叉各向异性模量比的影响,提出了一种简单的方法。在六个具有三个不同等级和三个不同水分含量的骨料源上进行了可变约束压力型重复载荷三轴试验。在非线性交叉各向异性弹性模型的框架内分析了实验结果,以确定模型系数。图像分析技术被用来测量骨料的形状特性。使用累积分布函数和非线性回归分析对渐变和形状属性进行拟合,该非线性回归分析能够捕获这些属性的完整分布。实验和分析结果表明,垂直弹性模量大于水平弹性模量,并且总体物理性能显着影响各向异性弹性行为。基于有限元分析,各向异性弹性行为对临界路面响应有很大影响。因此,估算未结合骨料中的交叉各向异性程度并将其用作路面分析程序中的输入以对未结合骨料基础进行充分建模以进行路面设计和分析非常有价值。

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  • 作者

    Kim Sung-Hee;

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  • 年度 2005
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  • 正文语种 en_US
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