Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls

Gravity caisson wall is a common waterfront construction that were severely damaged by soil liquefaction in previous earthquakes. The deep mixing method is regarded as effective in liquefaction remediation. Meanwhile, an easily-executable remedial design procedure of using the deep mixing method for...

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Main Authors: Bin Tong, Vern Schaefer, Yingjun Liu, Bing Han
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Geomatics, Natural Hazards & Risk
Subjects:
Online Access:http://dx.doi.org/10.1080/19475705.2018.1521879
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spelling doaj-2b6f8395afa34fbdb97789e86c8360fb2020-11-25T01:54:14ZengTaylor & Francis GroupGeomatics, Natural Hazards & Risk1947-57051947-57132019-01-0110128731310.1080/19475705.2018.15218791521879Optimization of deep mixing design for seismic liquefaction mitigation of Caisson wallsBin Tong0Vern Schaefer1Yingjun Liu2Bing Han3China Institute of Geo-Environmental MonitoringIowa State UniversityChina Ordnance Industry Survey and Geotechnical InstituteChina Institute of Geo-Environmental MonitoringGravity caisson wall is a common waterfront construction that were severely damaged by soil liquefaction in previous earthquakes. The deep mixing method is regarded as effective in liquefaction remediation. Meanwhile, an easily-executable remedial design procedure of using the deep mixing method for caisson walls exposed to seismic liquefaction risk has not been well developed for routine constructions. To solve the issue by following the philosophy of the Performance-Based Design method, the deep mixing method is examined within a framework of a well-calibrated case history to provide hypothetical mitigation to a damaged caisson wall to reach the acceptable level under the identical cyclic loadings as recorded in the case history. The study is divided into two steps: (1) a case history of damaged caisson wall by seismic-induced soil liquefaction was verified; (2) the deep mixing method is hypothetically applied to the caisson wall before the occurrence of earthquake, and the remedial design is optimized based on the improved wall structure deformation under seismic loading. The remedial design including the locations and configurations of deep mixing elements are optimized. Insights and recommendations on the establishment of liquefaction mitigation design and optimization process for caisson quay walls are provided to the practice.http://dx.doi.org/10.1080/19475705.2018.1521879caisson wallliquefaction mitigationdeep mixing methodperformance-based designnumerical modelling
collection DOAJ
language English
format Article
sources DOAJ
author Bin Tong
Vern Schaefer
Yingjun Liu
Bing Han
spellingShingle Bin Tong
Vern Schaefer
Yingjun Liu
Bing Han
Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
Geomatics, Natural Hazards & Risk
caisson wall
liquefaction mitigation
deep mixing method
performance-based design
numerical modelling
author_facet Bin Tong
Vern Schaefer
Yingjun Liu
Bing Han
author_sort Bin Tong
title Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
title_short Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
title_full Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
title_fullStr Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
title_full_unstemmed Optimization of deep mixing design for seismic liquefaction mitigation of Caisson walls
title_sort optimization of deep mixing design for seismic liquefaction mitigation of caisson walls
publisher Taylor & Francis Group
series Geomatics, Natural Hazards & Risk
issn 1947-5705
1947-5713
publishDate 2019-01-01
description Gravity caisson wall is a common waterfront construction that were severely damaged by soil liquefaction in previous earthquakes. The deep mixing method is regarded as effective in liquefaction remediation. Meanwhile, an easily-executable remedial design procedure of using the deep mixing method for caisson walls exposed to seismic liquefaction risk has not been well developed for routine constructions. To solve the issue by following the philosophy of the Performance-Based Design method, the deep mixing method is examined within a framework of a well-calibrated case history to provide hypothetical mitigation to a damaged caisson wall to reach the acceptable level under the identical cyclic loadings as recorded in the case history. The study is divided into two steps: (1) a case history of damaged caisson wall by seismic-induced soil liquefaction was verified; (2) the deep mixing method is hypothetically applied to the caisson wall before the occurrence of earthquake, and the remedial design is optimized based on the improved wall structure deformation under seismic loading. The remedial design including the locations and configurations of deep mixing elements are optimized. Insights and recommendations on the establishment of liquefaction mitigation design and optimization process for caisson quay walls are provided to the practice.
topic caisson wall
liquefaction mitigation
deep mixing method
performance-based design
numerical modelling
url http://dx.doi.org/10.1080/19475705.2018.1521879
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AT binghan optimizationofdeepmixingdesignforseismicliquefactionmitigationofcaissonwalls
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