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A multiple response-surface method for slope reliability analysis considering spatial variability of soil properties

机译:考虑土性空间变异性的边坡可靠度分析的多重响应面法

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This paper proposes a multiple response-surface method for slope reliability analysis considering spatially variable soil properties. The scales of fluctuation of soil shear strength parameters are summarized. The effect of theoretical autocorrelation functions (ACFs) on slope reliability is highlighted since the theoretical ACFs are often used to characterize the spatial variability of soil properties due to a limited number of site observation data available. The differences in five theoretical ACFs, namely single exponential, squared exponential, second-order Markov, cosine exponential and binary noise ACFs, are examined. A homogeneous c-phi slope and a heterogeneous slope consisting of three soil layers (including a weak layer) are studied to demonstrate the validity of the proposed method and explore the effect of ACFs on the slope reliability. The results indicate that the proposed method provides a practical tool for evaluating the reliability of slopes in spatially variable soils. It can greatly improve the computational efficiency in relatively low-probability analysis and parametric sensitivity analysis. The extended Cholesky decomposition technique can effectively discretize the cross-correlated non-Gaussian random fields of spatially variable soil properties. Among the five selected ACFs, the squared exponential and second-order Markov ACFs might characterize the spatial correlation of soil properties more realistically. The probability of failure associated with the commonly-used single exponential ACF may be underestimated. In general, the difference in the probabilities of failure associated with the five ACFs is minimal. (C) 2014 Elsevier B.V. All rights reserved.
机译:本文提出了一种考虑空间变化的土壤特性的边坡可靠度分析的多重响应面方法。总结了土壤抗剪强度参数的波动范围。由于有限的现场观测数据经常被用于表征土壤性质的空间变异性,因此理论自相关函数(ACF)对边坡可靠性的影响得到了强调。研究了五个理论ACF的差异,即单指数,平方指数,二阶Markov,余弦指数和二进制噪声ACF。研究了由三个土层(包括一个薄弱层)组成的均质c-phi边坡和非均质边坡,以证明该方法的有效性,并探讨了ACF对边坡可靠度的影响。结果表明,所提出的方法为评价空间可变土壤中边坡的可靠度提供了实用工具。它可以在相对较低的概率分析和参数敏感性分析中极大地提高计算效率。扩展的Cholesky分解技术可以有效地离散空间变化的土壤特性的互相关的非高斯随机场。在五个选定的ACF中,平方指数和二阶Markov ACF可能更真实地表征了土壤特性的空间相关性。与常用的单指数ACF相关的故障概率可能会被低估。通常,与五个ACF相关的故障概率差异很小。 (C)2014 Elsevier B.V.保留所有权利。

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