Metallic Biomaterials: Metals for Medical Devices

Author:   Takao Hanawa (Tokyo Medical and Dental University, Japan)
Publisher:   Taylor & Francis Ltd
ISBN:  

9781032413778


Pages:   294
Publication Date:   14 November 2024
Format:   Hardback
Availability:   Not yet available   Availability explained
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Metallic Biomaterials: Metals for Medical Devices


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Overview

Metallic materials are used in many medical devices due to their high mechanical reliability and their excellent strength and toughness. They account for more than 70% of internally implantable devices (implants). This book helps understand the necessity and problems of metal materials used in medical applications. This book was written with the goal of helping students learn the essentials of metallic biomaterials and acquire knowledge that can be applied in a progressive manner. The target audience for this book are students, graduate students, engineers, medical doctors, and others who need knowledge about metallic biomaterials.

Full Product Details

Author:   Takao Hanawa (Tokyo Medical and Dental University, Japan)
Publisher:   Taylor & Francis Ltd
Imprint:   CRC Press
Weight:   0.740kg
ISBN:  

9781032413778


ISBN 10:   1032413778
Pages:   294
Publication Date:   14 November 2024
Audience:   College/higher education ,  Professional and scholarly ,  Tertiary & Higher Education ,  Professional & Vocational
Format:   Hardback
Publisher's Status:   Forthcoming
Availability:   Not yet available   Availability explained
This item is yet to be released. You can pre-order this item and we will dispatch it to you upon its release.

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Dr. Takao Hanawa was born in Tokyo, Japan in 1957. He was Professor of Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University since 2004, and retired in 2023. He is Professor at Osaka University and Kobe University. He is also a Council Member of the Science Council of Japan. He has studied and developed new alloys, new manufacturing processes, and new surfaces for medical devices, and the biocompatibility mechanism of titanium.

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