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Practical applications of a nonlinear approach to analysis of earthquake-induced liquefaction and deformation of earth structures

机译:非线性方法在地震引起的土结构液化和变形分析中的实际应用

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Seismic stability, liquefaction, and deformation of earth structures are critical issues in geotechnical earthquake engineering practice. At present, the equivalent linear approach is considered the 'state of practice' in common use. More recently, dynamic analyses incorporating nonlinear, effective-stress-based soil models have been used more frequently in engineering applications. This paper describes a bounding surface hypoplasticity model for sand [Wang ZL. Bounding surface hypoplasticity model for granular soils and its applications. PhD Dissertation for the University of California at Davis, U.M.I. Dissertation Information Service, Order No. 9110679; 1990; Wang ZL, Dafalias YF, Shen CK. Bounding surface hypoplasticity model for sand. ASCE, J Eng Mech 1990;116(5):983-1001; Wang ZL, Makdisi FI. Implementing a bounding surface hypoplasticity model for sand into the FLAC program. In: Proceedings of the international symposium on numerical modeling in geomechanics. Minnesota, USA; 1999. p. 483-90] incorporated into a two-dimensional finite difference analysis program [Itasca Consulting Group, Inc. FLAC (Fast Lagrangian Analysis of Continua), Version 4. Minneapolis, MN; 2000] to perform nonlinear, effective-stress analyses of soil structures. The soil properties needed to support such analyses are generally similar to those currently used for equivalent linear and approximate effective-stress analyses. The advantages of using a nonlinear approach are illustrated by comparison with results from the equivalent linear approach for a rockfill dam. The earthquake performance of a waterfront slope and an earth dam were evaluated to demonstrate the model's ability to simulate pore-pressure generation and liquefaction in cohesionless soils.
机译:土结构的地震稳定性,液化和变形是岩土地震工程实践中的关键问题。目前,等效线性方法被认为是普遍使用的“实践状态”。最近,在工程应用中更频繁地使用结合了基于有效应力的非线性模型的动力分析。本文描述了砂的边界表面次塑性模型[Wang ZL。粒状土的边界表面塑性减低模型及其应用。加州大学戴维斯分校博士学位论文学位论文信息服务,订单号9110679; 1990年;王志良,达法里亚斯YF,沉CK。砂的边界表面塑性低下模型。 ASCE,J Eng Mech 1990; 116(5):983-1001; Wang ZL,Makdisi FI。在FLAC程序中实现砂的边界表面塑性减低模型。在:国际地质力学数值模拟研讨会论文集。美国明尼苏达州; 1999。二维有限差分分析程序[Itasca Consulting Group,Inc. FLAC(Continua的快速拉格朗日分析),版本4。]将其合并到二维中。 [2000]进行土壤结构的非线性有效应力分析。支持此类分析所需的土壤特性通常类似于当前用于等效线性和近似有效应力分析的特性。通过与堆石坝等效线性方法的结果进行比较,说明了使用非线性方法的优势。对海滨坡和土坝的地震性能进行了评估,以证明该模型能够模拟无粘性土壤中的孔隙压力产生和液化。

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