Electroactive Polymers for Robotic Applications

Artificial Muscles and Sensors

Editors: Kim, Kwang J., Tadokoro, Satoshi (Eds.)

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About this book

Electroactive polymers (EAPs) respond to electrical stimulation with large deformations. They are dynamic actuators which have attracted attention from an interdisciplinary audience of engineers and scientists. An enabling EAP technology is emerging which attempts to imitate the properties of natural muscle and which, as a result, can perform a unique function in a variety of biologically-inspired robotics applications.

Electroactive Polymers for Robotics Applications covers the fundamental properties, modelling and demonstration of EAPs in robotic applications, focusing particularly on artificial muscles and sensors. Ionic Polymer–Metal Composite Actuators and Dielectric Elastomers are discussed within the book with chapters on their properties and their uses in robotics applications.

With its concentration on devices based on EAPs and their uses, Electroactive Polymers for Robotics Applications will be of interest to researchers working within this field as well as to postgraduate students studying robotics or smart materials and structures. Practitioners working in the mechanical, electrical and materials industries will also find this book of value.

About the authors

Dr Kwang Kim is an Associate Professor of Mechanical Engineering and Director of the Active Materials and Processing Laboratory at the University of Nevada, Reno (UNR). He graduated in 1987 from Yonsei University, Korea, and received his MS and PhD from Arizona State University in 1989 and 1992, respectively. He later completed his postdoctoral study at the Center for Environmental Energy Engineering (CEEE) at the University of Maryland-College Park (1993-1995). His industrial experience includes time as a Senior Research Engineer at Thermal Electric Devices, Inc. (1995-1997), and as the Chief Scientist at Environmental Robots, Inc. (1997-2001), Albuquerque NM. He has published over 130 technical papers and holds 2 patents. His research and teaching interests are broad-based, but mainly relate to active materials/sensors, thermal science/energy systems, and nanotechnology.

Dr Satoshi Tadokoro is President of the International Rescue System Institute, in Kobe, Japan. He is also a Professor in the Department of Computer and Systems Engineering at Kobe University, where he has been employed for over twenty years. He teaches about actuator theory, mechatronics and intelligent machine theory. Dr Tadokoro gained his MS and his PhD in Engineering from the University of Tokyo. His research interests include rescue robots, and robotics and actuators.

Table of contents (3 chapters)

  • Polypyrrole Actuators: Properties and Initial Applications

    J. D. Madden

    Pages 121-152

  • Ionic Polymer-Metal Composite as a New Actuator and Transducer Material

    K. J. Kim

    Pages 153-164

  • Applications of Ionic Polymer-Metal Composites: Multiple-DOF Devices Using Soft Actuators and Sensors

    M. Konyo, S. Tadokoro, K. Asaka

    Pages 227-262

Buy this book

eBook $149.00
price for USA (gross)
  • ISBN 978-1-84628-372-7
  • Digitally watermarked, DRM-free
  • Included format: PDF
  • ebooks can be used on all reading devices
  • Immediate eBook download after purchase
Hardcover $199.00
price for USA
  • ISBN 978-1-84628-371-0
  • Free shipping for individuals worldwide
  • Usually dispatched within 3 to 5 business days.
Softcover $199.00
price for USA
  • ISBN 978-1-84996-590-3
  • Free shipping for individuals worldwide
  • Usually dispatched within 3 to 5 business days.
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Bibliographic Information

Bibliographic Information
Book Title
Electroactive Polymers for Robotic Applications
Book Subtitle
Artificial Muscles and Sensors
Editors
  • Kwang J. Kim
  • Satoshi Tadokoro
Copyright
2007
Publisher
Springer-Verlag London
Copyright Holder
Springer-Verlag London
eBook ISBN
978-1-84628-372-7
DOI
10.1007/978-1-84628-372-7
Hardcover ISBN
978-1-84628-371-0
Softcover ISBN
978-1-84996-590-3
Edition Number
1
Number of Pages
X, 281
Topics