Reprint

Disaster Mitigation, Risk Reduction, and Resilience Design of Engineering Structures

Edited by
May 2024
186 pages
  • ISBN978-3-7258-0947-9 (Hardback)
  • ISBN978-3-7258-0948-6 (PDF)

This book is a reprint of the Special Issue Disaster Mitigation, Risk Reduction, and Resilience Design of Engineering Structures that was published in

Chemistry & Materials Science
Computer Science & Mathematics
Engineering
Environmental & Earth Sciences
Physical Sciences
Summary

The disaster mitigation, risk reduction, and resilience design of engineering structures under natural hazards are topics of great interest, as well as being crucial for protecting human life and reducing economic losses. In recent decades, with the help of emerging knowledge regarding the mechanisms of natural hazards, new methods and facilities for disaster mitigation and risk reduction are being developed. Furthermore, resilience designs have been proposed for the improvement of post-disaster retrofits and repairs for modern engineering structures. This Special Issue is dedicated, but not limited, to current research on theoretical, computational, experimental, and relevant research works regarding advanced methods in the disaster mitigation, risk reduction, and resilience design of engineering structures, including methodologies and innovations on mechanical performance evaluation; modeling technologies and simulations of failure mechanisms; methodologies regarding vulnerability, risk, reliability, and resilience assessment; applications of disaster mitigation and risk reduction; and innovative and advanced design methodologies for the resilience design of engineering structures under earthquakes, fires, winds, and tsunamis.

Format
  • Hardback
License and Copyright
© 2024 by the authors; CC BY-NC-ND license
Keywords
SCCFST arched protective door; dynamic response; damage mode; cross-sectional ultimate bending moment; ultimate bearing capacity; discrete element method; plate structures; parameter sensitivity analysis; orthogonal design method; error analysis; frame structures; seismic strengthening; numerical simulation; IDA; seismic fragility analysis; concrete-filled double-skin steel tube; assembled beam-only connected reinforced concrete shear walls; seismic risk reduction; performance-based seismic design; tunnel–soil–pile interaction; Kerr foundation model; lateral soil displacements; shielding effect; group piles; aluminum alloy portal frame; beam-column joints; experimental study; numerical analysis; vertical load; horizontal load; gas-insulated transmission line (GIL); seismic performance; dynamic amplification; seismic vulnerability; seismic retrofit; derailment containment provisions; steel DCP; protection facility; derailment tests; post-derailment safety device; load–displacement; initial stiffness; socket-type keyway; ultimate load capacity; finite element analysis; buckling analysis; failure mechanism; prefabricated ECC/RC shear wall; seismic energy dissipation; ECC; finite element analysis; structural optimization; coupling beams