Fatigue in Additive Manufactured Metals provides a brief overview of the fundamental mechanics involved in metal fatigue and fracture, assesses the unique properties of additive manufactured metals, and provides an in-depth exploration of how and why fatigue occurs in additive manufactured metals. Additional sections cover solutions for preventing it, best-practice design methods, and more. The book recommends cutting-edge evidence-based approaches for designing longer lasting additive manufactured metals, discusses the latest trends in the field and the various aspects of low cycle fatigue, and looks at both post-treatment and manufacturing process-based solutions.
By providing international standards and testing procedures of additive manufactured metal parts and discussing the environmental impacts of additive manufacturing of metals and outlining simulation and modeling scenarios, this book is an ideal resource for users in industry.
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Professor Filippo Berto is Chair Professor of Mechanics of Materials at Sapienza Università di Roma, a position he has held since 2022, following a long academic career at the Norwegian University of Science and Technology. Since 2002, his research has focused on fracture mechanics, fatigue design, and structural integrity of materials and components.
He has received several prestigious international recognitions, including the Wöhler Medal awarded in 2021 by the European Society of Structural Integrity for his outstanding contributions to fatigue research. Since 2021, he has served as President of the Italian Group of Fracture, one of the most active international scientific communities in the field of structural integrity.
Professor Berto is Editor-in-Chief or Senior Editor of leading international journals in mechanics and materials engineering and has authored several hundred scientific publications.
Fatigue in Additive Manufactured Metals starts by providing a brief overview of the fundamental mechanics involved in metal fatigue and fracture, then looks at the unique properties of additive manufactured metals, before diving into an in-depth exploration of how and why fatigue occurs in additive manufactured metals, solutions for preventing it, best-practice design methods, and more. It recommends cutting-edge evidence-based approaches for designing longer lasting additive manufactured metals, discusses the latest trends in the field and the various aspects of low cycle fatigue, and looks at both post-treatment and manufacturing process-based solutions. It covers new attempts in providing international standards and testing procedures of additive manufactured metal parts, discusses the environmental impacts of additive manufacturing of metals, and outlines simulation and modeling scenarios.
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