Structural Damping with Iron-Based Shape Memory Alloys
- 1st Edition - June 1, 2026
- Latest edition
- Author: Cheng Fang
- Language: English
Structural Damping and Seismic Engineering Using Iron-based Shape Memory Alloys introduces the fundamental properties and practical applications of iron-based shape memory alloys… Read more
Structural Damping and Seismic Engineering Using Iron-based Shape Memory Alloys introduces the fundamental properties and practical applications of iron-based shape memory alloys (Fe-SMAs) from the perspective of seismic engineering. It objectively discusses the superiority of this novel class of materials that could potentially address the limitations of the existing seismic control technology. The results, vividly presented as tables and figures, are demonstrated with religious experimental verifications supplemented by comprehensive numerical investigations. From the knowledge provided, the readers will gain an in-depth understanding of the working mechanisms of various Fe-SMA-based structural devices and members, including braces, dampers, steel connections, base isolators, and concrete components, and as a result they will be provided with a broader vision of next-generation performance-based seismic design for novel adaptive structural systems. The book aims to help bridge the gap between materials science and structural engineering fronts, and to shed light on the opportunity of commercializing Fe-SMA products in construction industry. The cutting-edge research introduced in this book will also provide technical incentives to encourage design professionals, contractors, and building officials to use high performance and smart materials in structural design, allowing them to remain at the forefront of construction technology.
- The fundamental thermal-mechanical properties, especially the ultra-low cycle fatigue (ULCF) mechanism of Fe-SMA, will be first revealed.
- Modelling techniques for Fe-SMA material and elements will be first discussed.
- Appropriate welding technology for Fe-SMA elements will be first
Senior undergraduates, graduate students, academic researchers, and practicing engineers in civil and seismic engineering
Will also serve be of scientific interest to material science and mechanical engineers
1. Introduction to Iron-based Shape Memory Alloy (Fe-SMA)
1.1 A Brief History of Fe-SMA
1.2 Basic Properties of Fe-SMA
1.3 Manufacturing Procedures
1.4 Current applications of Fe-SMA in Civil Engineering
2. Modelling techniques for Fe-SMA
2.1 Introduction
2.2 Constitutive model for Fe-SMA under monotonic loading
2.3 Constitutive model for Fe-SMA under cyclic loading
2.4 Calibration of modelling parameters for practical use
3. Welding techniques for Fe-SMA
3.1 Introduction
3.2 Welding procedures
3.3 Static performance of welded connectors
3.4 Cyclic performance of welded connectors
4. Fe-SMA shear plate dampers
4.1 Basic information
4.2 Experimental program
4.3 Test results and discussions
4.4 Numerical modelling
5. Fe-SMA U-shaped plate dampers
5.1 Basic information
5.2 Experimental program
5.3 Test results and discussions
5.4 Numerical modelling
6. Fe-SMA buckling-restrained braces
6.1 Basic information
6.2 Experimental program
6.3 Test results and discussions
6.4 Numerical modelling
7. Structural systems with Fe-SMA dampers
7.1 Prototype buildings
7.2. Seismic hazard and ground motions
7.3 Global structural behaviour
7.4 Fragility analysis
7.5 Seismic loss and risk analysis
8. Excuses after of geotechnical failures
9. Interpretation of geotechnical reports
10. Interpretation without a conclusion
1.1 A Brief History of Fe-SMA
1.2 Basic Properties of Fe-SMA
1.3 Manufacturing Procedures
1.4 Current applications of Fe-SMA in Civil Engineering
2. Modelling techniques for Fe-SMA
2.1 Introduction
2.2 Constitutive model for Fe-SMA under monotonic loading
2.3 Constitutive model for Fe-SMA under cyclic loading
2.4 Calibration of modelling parameters for practical use
3. Welding techniques for Fe-SMA
3.1 Introduction
3.2 Welding procedures
3.3 Static performance of welded connectors
3.4 Cyclic performance of welded connectors
4. Fe-SMA shear plate dampers
4.1 Basic information
4.2 Experimental program
4.3 Test results and discussions
4.4 Numerical modelling
5. Fe-SMA U-shaped plate dampers
5.1 Basic information
5.2 Experimental program
5.3 Test results and discussions
5.4 Numerical modelling
6. Fe-SMA buckling-restrained braces
6.1 Basic information
6.2 Experimental program
6.3 Test results and discussions
6.4 Numerical modelling
7. Structural systems with Fe-SMA dampers
7.1 Prototype buildings
7.2. Seismic hazard and ground motions
7.3 Global structural behaviour
7.4 Fragility analysis
7.5 Seismic loss and risk analysis
8. Excuses after of geotechnical failures
9. Interpretation of geotechnical reports
10. Interpretation without a conclusion
- Edition: 1
- Latest edition
- Published: June 1, 2026
- Language: English
CF
Cheng Fang
The author received his BEng in Civil Engineering from Tongji University in 2007, and subsequently obtained his MSc and PhD from Imperial College London in 2008 and 2011, respectively. Prior to joining Tongji University in 2015, he worked as a structural engineer in ARUP, a Post-doctoral Fellow at the Hong Kong Polytechnic University, and an Assistant Professor at Newcastle University, UK.
Professor Cheng Fang has dedicated over 10 years of his research career to providing technical incentives to encourage design professionals, contractors, and building officials to use novel materials, members, and systems in seismic resilient structural design, helping them stay at the forefront of construction technology. His current research interests include steel and composite structures, smart materials (especially shape memory alloys) and structures, and seismic resilience. He has authored 5 books, published 85 refereed articles in leading SCI-indexed journals with 3000 citations, and secured more than 20 research projects as Principle Investigator (PI). He has obtained 8 authorised patents, and has served as committee member of three design standards. He is now an editorial board member of 7 SCI-indexed journals, and has contributed as reviewer for 30+ international journals. He has promoted the first application of shape memory alloys in building and bridge structures in China. He is ranked Top 1 scholar in terms of impact under the category of “Topic T.17429: Shape memory effect; Seismology; Superelastic shape”, according to SciVal (Scopus). He has been included in the list of “World’s Top 2% scientists” from 2020 to 2022
Affiliations and expertise
Professor and Assistant Dean, School of Civil Engineering, Tongji University, Shanghai, China