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2018 | Book

Cover of the book

Multi-axis Substructure Testing System for Hybrid Simulation

Authors: Prof. Riadh Al-Mahaidi, Dr. M. Javad Hashemi, Dr. Robin Kalfat, Graeme Burnett, John Wilson

Publisher: Springer Singapore

Book Series : SpringerBriefs in Applied Sciences and Technology

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About this book

This book describes the multi-axis substructure testing (MAST) system, a simulator developed at Swinburne University of Technology, Australia, which provides state-of-the-art technology for large-scale hybrid testing of structures under realistic scenarios depicting extreme events. The book also demonstrates the responses of physical specimens while they serve as part of the virtual computer model of the full structure subjected to extreme dynamic forces.

Experimental studies using the MAST system are expected to enhance design and construction methods and significantly improve the repair and retrofitting of structures endangered by natural disasters and man-made hazards, providing a direct benefit to society by improving public safety and the re

silience of the built environment. An additional benefit is increased sustainability in the form of reduced direct and indirect economic losses and social and environmental impacts in the face of extreme events. This book will be of interest to researchers and advanced practitioners in the fields of structural earthquake engineering, geotechnical earthquake engineering, engineering seismology, and experimental dynamics, including seismic qualification.

Table of Contents

Frontmatter

Open Access

Chapter 1. Introduction
Abstract
This chapter discusses the role of experimental methods in earthquake engineering with a brief summary of advantages and challenges of the various test methods used in this field. The objectives and motivations of this research are discussed with an overview of the contents of this book.
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson

Open Access

Chapter 2. Background
Abstract
This chapter presents the technical background and literature review on the development of hybrid simulation in the fields of substructuring techniques, integration schemes, continuous and real-time hybrid testing, local and geographically distributed hybrid testing, and experimental and numerical errors in hybrid testing.
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson

Open Access

Chapter 3. State-of-the-Art System for Hybrid Simulation at Swinburne
Abstract
This chapter describes the different components of the state-of-the-art system for hybrid simulation at Swinburne, including the design details of the MAST facility, the reaction systems including the strong wall/floor and the cruciform crosshead, servo-hydraulic actuators and the 6-DOF controller system, and hybrid simulation architecture.
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson

Open Access

Chapter 4. Application of the MAST System for Collapse Experiments
Abstract
This chapter presents the results of a range of experiments, including switched/mixed load/deformation mode quasi-static cyclic and hybrid simulation tests to highlight the unique and powerful capabilities of the MAST system, specifically for the assessment and mitigation of the collapse risk of structures.
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson

Open Access

Chapter 5. Closure
Abstract
This chapter presents a summary of key contributions and concluding remarks. Research areas for further development and study are also briefly discussed.
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson
Erratum to: Multi-axis Substructure Testing System for Hybrid Simulation
Riadh Al-Mahaidi, Javad Hashemi, Robin Kalfat, Graeme Burnett, John Wilson
Backmatter
Metadata
Title
Multi-axis Substructure Testing System for Hybrid Simulation
Authors
Prof. Riadh Al-Mahaidi
Dr. M. Javad Hashemi
Dr. Robin Kalfat
Graeme Burnett
John Wilson
Copyright Year
2018
Publisher
Springer Singapore
Electronic ISBN
978-981-10-5867-7
Print ISBN
978-981-10-5866-0
DOI
https://doi.org/10.1007/978-981-10-5867-7