Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering

The prediction of liquefaction-induced lateral spreading is an important geotechnical engineering problem. In this paper, a simplified prediction method based upon Newmark sliding block analysis was proposed to predict the liquefaction-induced lateral spreading. The acceleration time history beneath...

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Main Authors: Yanxin Yang, Junhua Chen, Zhenqiang Zhang, Jianlin Ma
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2020/8406062
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spelling doaj-41beee02a9954ae696a0e671edae27c02021-01-04T00:00:19ZengHindawi LimitedAdvances in Civil Engineering1687-80942020-01-01202010.1155/2020/8406062Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction TriggeringYanxin Yang0Junhua Chen1Zhenqiang Zhang2Jianlin Ma3School of Architecture and Transportation EngineeringSchool of Architecture and Transportation EngineeringHenan Xupingnan Expressway Co. Ltd.School of Civil EngineeringThe prediction of liquefaction-induced lateral spreading is an important geotechnical engineering problem. In this paper, a simplified prediction method based upon Newmark sliding block analysis was proposed to predict the liquefaction-induced lateral spreading. The acceleration time history beneath the liquefied soil (starting from the triggering time of liquefaction) and the postliquefaction yield acceleration corresponding with the residual shear strength of liquefiable soil were used in the Newmark sliding block analysis. One-dimensional effective stress analysis was conducted to obtain the motion beneath the liquefied soil and the liquefaction time. Limit equilibrium analysis was employed to determine the postliquefaction yield acceleration using the residual shear strength of liquefied soil, which correlated with the equivalent clean sand SPT blow count of the liquefied sand. This method was evaluated against five well-documented case histories and the predicted displacements of lateral spreading were subsequently compared with the observed displacements. In addition, the lateral spreading predicted by the rigorous Newmark sliding block method and numerical difference analysis was presented. Based on the statistical analysis of the displacement ratios, it suggested that the method proposed in this paper identified the triggering time of liquefaction and provided a reasonable prediction of the liquefaction-induced lateral spreading with an RMSE (root mean square error) of 0.63, a standard deviation of 0.40, and a CV (coefficient of variance) of 0.60, respectively.http://dx.doi.org/10.1155/2020/8406062
collection DOAJ
language English
format Article
sources DOAJ
author Yanxin Yang
Junhua Chen
Zhenqiang Zhang
Jianlin Ma
spellingShingle Yanxin Yang
Junhua Chen
Zhenqiang Zhang
Jianlin Ma
Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
Advances in Civil Engineering
author_facet Yanxin Yang
Junhua Chen
Zhenqiang Zhang
Jianlin Ma
author_sort Yanxin Yang
title Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
title_short Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
title_full Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
title_fullStr Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
title_full_unstemmed Evaluating Lateral Spreading Using Newmark Method Based on Liquefaction Triggering
title_sort evaluating lateral spreading using newmark method based on liquefaction triggering
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8094
publishDate 2020-01-01
description The prediction of liquefaction-induced lateral spreading is an important geotechnical engineering problem. In this paper, a simplified prediction method based upon Newmark sliding block analysis was proposed to predict the liquefaction-induced lateral spreading. The acceleration time history beneath the liquefied soil (starting from the triggering time of liquefaction) and the postliquefaction yield acceleration corresponding with the residual shear strength of liquefiable soil were used in the Newmark sliding block analysis. One-dimensional effective stress analysis was conducted to obtain the motion beneath the liquefied soil and the liquefaction time. Limit equilibrium analysis was employed to determine the postliquefaction yield acceleration using the residual shear strength of liquefied soil, which correlated with the equivalent clean sand SPT blow count of the liquefied sand. This method was evaluated against five well-documented case histories and the predicted displacements of lateral spreading were subsequently compared with the observed displacements. In addition, the lateral spreading predicted by the rigorous Newmark sliding block method and numerical difference analysis was presented. Based on the statistical analysis of the displacement ratios, it suggested that the method proposed in this paper identified the triggering time of liquefaction and provided a reasonable prediction of the liquefaction-induced lateral spreading with an RMSE (root mean square error) of 0.63, a standard deviation of 0.40, and a CV (coefficient of variance) of 0.60, respectively.
url http://dx.doi.org/10.1155/2020/8406062
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AT zhenqiangzhang evaluatinglateralspreadingusingnewmarkmethodbasedonliquefactiontriggering
AT jianlinma evaluatinglateralspreadingusingnewmarkmethodbasedonliquefactiontriggering
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