Published April 2018 | Version v1
Journal article

Seismic behavior of breakwaters on complex ground by numerical tests: Liquefaction and post liquefaction ground settlements

  • 1. Qingdao University of Technology, Department of Civil Engineering (China)
  • 2. Nagoya Institute of Technology, Department of Civil Engineering (Japan)
  • 3. Shenzhen University, Department of Civil Engineering (China)
  • 4. Tongji University, Department of Geotechnical Engineering (China)
  • 5. Shanghai Jiao Tong University, Department of Civil Engineering (China)

Description

A large number of breakwaters have been constructed along coasts to protect humans and infrastructures from tsunamis. There is a risk that foundation soils of these structures may liquefy, or partially liquefy during the earthquake preceding a tsunami, which would greatly reduce the structures' capacity to resist the tsunami. It is necessary to consider not only the soil's liquefaction behavior due to earthquake motions but also its post-liquefaction behavior because this behavior will affect the breakwater's capacity to resist an incoming tsunami. In this study, numerical tests based on a sophisticated constitutive model and a soil-water coupled finite element method are used to predict the mechanical behavior of breakwaters and the surrounding soils. Two real breakwaters subjected to two different seismic excitations are examined through numerical simulation. The simulation results show that, earthquakes affect not only the immediate behavior of breakwaters and the surrounding soils but also their long-term settlements due to post-earthquake consolidation. A soil profile with thick clayey layers beneath liquefied soil is more vulnerable to tsunami than a soil profile with only sandy layers. Therefore, quantitatively evaluating the seismic behavior of breakwaters and surrounding soils is important for the design of breakwater structures to resist tsunamis.

Additional details

Identifiers

Publishing Information

Journal Title
Earthquake Engineering and Engineering Vibration
Journal Volume
17
Journal Issue
2
Journal Page Range
p. 325-342
ISSN
1671-3664

Optional Information

Copyright
Copyright (c) 2018 Institute of Engineering Mechanics, China Earthquake Administration and Springer-Verlag GmbH Germany, part of Springer Nature