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Liquefaction Potential and Post-liquefaction Settlement of Saturated Clean Sands

Liquefaction Potential and Post-liquefaction Settlement of Saturated Clean Sands
Author: Maksat Omarov
Publisher:
Total Pages: 392
Release: 2010
Genre: Soil liquefaction
ISBN:

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"Liquefaction of saturated granular soils has been the cause of most geotechnical hazards during earthquakes. Development of excess pore pressures in saturated soils when subjected to cyclic loading has been shown to cause the liquefaction, which can be simply described as the transformation of stable soil structure into unstable liquid form. Majority of the previous laboratory studies have been focused on stress-controlled loading. However, the generation of excess pore pressure is better characterized by the induced shear strains. The objectives of this study were: (i) to investigate the liquefaction potential and post-loading volumetric strain of saturated clean sands through strain-controlled testing; and (ii) to study as an alternative mitigation technique, the influence of geofiber reinforcement on exess pore pressure generation and post-liquefaction settlement of saturated sands. Undrained, strain-controlled, cyclic triaxial tests were performed in the following categories: (1) tests performed under different effective consolidation stresses; (2) tests performed at various number of loading cycles; (3) tests performed at different relative densities; and (4) tests performed on geofiber-reinforced sand specimens. The liquefaction potential of specimens subjected to different levels of shear strains were investigated with respect to the developed excess pore pressures. Reduction in the volume of the specimens with the dissipation of generated excess pore water pressure was studied by allowing for drainage after cyclic loading. Additionally, the influence of geofibers as a possible mitigation measure against the excess pore pressure development and post-loading volumetric straining of clean sands was investigated. The results from this study were used to develop insight into the behavior of clean and geofiber-reinforced sands under seismic loading conditions. Based on the test results, geofiber-reinforced seismic loading conditions was found that the number of loading cycles has significant influence on the generation of excess pore pressure and post-loading volumetric strain. Specimens subjected to continued loading after initial liquefaction indicated about three times larger volumetric strains when compared to those allowed to drain after initial liquefaction. Soil specimens consolidated to 100kPa effective stress were found to experience less volumetric strain than that observed in specimens consolidated to 400kPa effective consolidation stress; however, the excess pore pressure generation at 100kPa effective stress was about two times larger than that measured at 400kPa effective stress. In general, geofiber-reinforced specimens showed less excess pore pressures when compared to clean sand specimens; while post-loading settlement were observed to be nearly two times larger for specimens with 1%geofiber content when compared to clean sand specimens"--Leaves iii-iv.


State of the Art and Practice in the Assessment of Earthquake-Induced Soil Liquefaction and Its Consequences

State of the Art and Practice in the Assessment of Earthquake-Induced Soil Liquefaction and Its Consequences
Author: National Academies of Sciences, Engineering, and Medicine
Publisher:
Total Pages: 350
Release: 2019-01-30
Genre:
ISBN: 9780309440271

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Earthquake-induced soil liquefaction (liquefaction) is a leading cause of earthquake damage worldwide. Liquefaction is often described in the literature as the phenomena of seismic generation of excess porewater pressures and consequent softening of granular soils. Many regions in the United States have been witness to liquefaction and its consequences, not just those in the west that people associate with earthquake hazards. Past damage and destruction caused by liquefaction underline the importance of accurate assessments of where liquefaction is likely and of what the consequences of liquefaction may be. Such assessments are needed to protect life and safety and to mitigate economic, environmental, and societal impacts of liquefaction in a cost-effective manner. Assessment methods exist, but methods to assess the potential for liquefaction triggering are more mature than are those to predict liquefaction consequences, and the earthquake engineering community wrestles with the differences among the various assessment methods for both liquefaction triggering and consequences. State of the Art and Practice in the Assessment of Earthquake-Induced Soil Liquefaction and Its Consequences evaluates these various methods, focusing on those developed within the past 20 years, and recommends strategies to minimize uncertainties in the short term and to develop improved methods to assess liquefaction and its consequences in the long term. This report represents a first attempt within the geotechnical earthquake engineering community to consider, in such a manner, the various methods to assess liquefaction consequences.


Earthquake Geotechnical Engineering

Earthquake Geotechnical Engineering
Author: Kenji Ishihara
Publisher: CRC Press
Total Pages: 0
Release: 1995-01-01
Genre: Technology & Engineering
ISBN: 9789054105787

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This work is based on an international conference held in Tokyo in 1995. Topics covered include: dynamic behaviour of soil; dynamic response of ground; liquefaction and associated phenomenon; seismic failure of embankments and slopes; and reports on recent earthquakes.


Induced Partial Saturation (IPS) for Soil Liquefaction Mitigation

Induced Partial Saturation (IPS) for Soil Liquefaction Mitigation
Author: Chunhui Zhao
Publisher:
Total Pages: 130
Release: 2014
Genre:
ISBN:

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Due to the hazards of soil liquefaction and limitations of traditional liquefaction mitigation approaches, this research focuses to investigate of new liquefaction mitigation method----Induced Partial Saturation (IPS) which reduces the degree of soil saturation by introducing small amounts of gas and air into liquefaction-susceptible sand making sand partially saturated, an idea initially developed by researchers at Northeastern University. A large-scale 1-g geotechnical laminar box (6m height, 2. 75m wide, 5m long) which can simulate the response of fully saturated sand and partially saturated sand up to 20ft (6m) depth subjected to base shaking has been developed by the Structural Engineering and Earthquake Simulation laboratory (SEESL), University at Buffalo. The laminar box system is made of 39 laminates vertically stacked together, shaking base, computer-controlled high-speed actuators, strong floor, advanced instrumentations, and a laboratory hydraulic filling for placing sand. One large-scale fully saturated sand experiment (LG-1) and two large-scale partially saturated sand experiments (IPS-1 and IPS-2) were performed with two different treatment methods, involving nearly 16ft (5m) deep sand deposit, and the results are presented henceforth. One of the latter two experiments involved partially saturating the top 8 feet of sand (IPS-1), and the other involved partially saturating the full depth of sand in the laminar box (IPS-2). Tests were conducted using laminar box. Accelerometers, teompsonics, potentiometers, piezometers, conductivity probes and cameras were used to record soil response. Cone Penetration Test (CPT) was performed to assess the geotechnical engineering properties of soil. A comparison between fully saturated sand responses, partially IPS treated induced partial saturation sand response and fully IPS treated induced partial saturation sand response reveal the effect of IPS on soil behavior due to strong shaking. Liquefaction, significant sand boils, and ground settlement occurred in fully saturated sand test. Soil didn't fully liquefy in IPS- treatment zone, although pore pressures and limited ground settlements occurred. Fully saturated sand (LG-1) liquefied at all depths throughout the experiment. Fully IPS treated induced partially saturation test (IPS-2) didn't liquefy and has a delay on pore water pressure development. The partially IPS treated induced partial saturation test (IPS-1) didn't liquefy in IPS treated zone and exhibited similar excess pore water pressure response. Further analysis of the work are presented in three other separate PhD dissertations at Northeastern University and another MS thesis report at University at Buffalo. The experiment results presented demonstrate the IPS method can be further improved as an effective method to reduce the soil liquefaction potential and reducing liquefaction-induced ground settlement.


Soil Liquefaction

Soil Liquefaction
Author: Michael Jefferies
Publisher: CRC Press
Total Pages: 625
Release: 2006-09-04
Genre: Science
ISBN: 020330196X

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Soil liquefaction is a major concern in areas of the world subject to seismic activity or other repeated vibration loads. This book brings together a large body of information on the topic, and presents it within a unified and simple framework. The result is a book which will provide the practising civil engineer with a very sound understanding of


Performance-Based Design in Earthquake Geotechnical Engineering

Performance-Based Design in Earthquake Geotechnical Engineering
Author: Takaji Kokusho
Publisher: CRC Press
Total Pages: 388
Release: 2009-09-24
Genre: Technology & Engineering
ISBN: 9780415556149

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This book presents current developments in performance-based design (PBD) in earthquake geotechnical engineering, including various case histories, numerical methods, soil investigations and engineering practice. Special attention is paid to the 2008 Wenchuan Sichuan earthquake in China, performance evaluations, the role of soil investigations, criteria/design codes, and the performance and future perspectives of PBD. The information in this book will be of particular interest to researchers in earthquake geotechnical engineering, and practicing geotechnical and structural engineers.