With the continued improvements in computing power and digital information availability, we are witnessing the increasing use of high-performance computers to enhance simulations for the forecasting of hazards, disasters, and responses. This major reference work summarizes the theories, analysis methods, and computational results of various earthquake simulations by the use of supercomputers. It covers simulations in the fields of seismology, physical geology, earthquake engineering - specifically the seismic response of structures - and the socioeconomic impact of post-earthquake recovery on cities and societies. Individual chapters address phenomena such as earthquake cycles and plate boundary behavior, tsunamis, structural response to strong ground motion, and post-disaster traffic flow and economic activity. The methods used for these simulations include finite element methods, discrete element methods, smoothed particle hydrodynamics, and multi-agent models, among others.The simulations included in this book provide an effective bird's-eye view of cutting-edge simulations enhanced with high-performance computing for earthquake occurrence, earthquake damage, and recovery from the damage, combining three of the major fields of earthquake studies: earth science, earthquake engineering, and disaster-mitigation-related social science. The book is suitable for advanced undergraduates, graduates, and researchers in these fields.
Sprache
Verlagsort
Zielgruppe
Für höhere Schule und Studium
Für Beruf und Forschung
Maße
Höhe: 235 mm
Breite: 157 mm
Dicke: 39 mm
Gewicht
ISBN-13
978-1-80061-462-8 (9781800614628)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Klassifikation
Herausgeber*in
Univ Of Tokyo, Japan & Japan Agency For Marine-earth Science And Technology, Japan
Earthquake Generation Cycle and Crust Deformation in Subduction Zones ; Large-Scale Simulation of the Discrete Element Method to Analyze Multiscale Granular Dynamics in the Practical Geoscience Applications; Multi-scale Tsunami Simulation with a High Fidelity Modeling and Visualization; Seismic Structural Response for Extremely Strong Ground Motion Using Parallel Finite Element Method; Earthquake Simulation on Unstructured Finite Elements Enhanced by High Performance Computing; Large-Scale Finite Element Simulation for Surface Faulting; Traffic Flow Simulator and Travel Demand Simulators for Assessing Congestion on Roads 7. after a Major Earthquake; Dynamic Programming of Firms' Activities and Market Interactions in Aftermath of Disaster; Towards the 1:1 Scale Agent-Based Simulation of Post-disaster Economies; Study on Improved and Advanced Urban Information Data for Implementation into Social Science Simulations of Earthquakes;