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Cellular Actuators: Modularity and Variability in Muscle-Inspired
Actuation describes the roles actuators play in robotics and their
insufficiency in emerging new robotic applications, such as
wearable devices and human co-working robots where compactness and
compliance are important. Piezoelectric actuators, the topic of
this book, provide advantages like displacement scale, force,
reliability, and compactness, and rely on material properties to
provide displacement and force as reactions to electric
stimulation. The authors, renowned researchers in the area, present
the fundamentals of muscle-like movement and a system-wide study
that includes the design, analysis, and control of biologically
inspired actuators. This book is the perfect guide for researchers
and practitioners who would like to deploy this technology into
their research and products.
Human Modelling for Bio-inspired Robotics: Mechanical Engineering
in Assistive Technologies presents the most cutting-edge research
outcomes in the area of mechanical and control aspects of human
functions for macro-scale (human size) applications. Intended to
provide researchers both in academia and industry with key content
on which to base their developments, this book is organized and
written by senior experts in their fields. Human Modeling for
Bio-Inspired Robotics: Mechanical Engineering in Assistive
Technologies offers a system-level investigation into human
mechanisms that inspire the development of assistive technologies
and humanoid robotics, including topics in modelling of anatomical,
musculoskeletal, neural and cognitive systems, as well as motor
skills, adaptation and integration. Each chapter is written by a
subject expert and discusses its background, research challenges,
key outcomes, application, and future trends. This book will be
especially useful for academic and industry researchers in this
exciting field, as well as graduate-level students to bring them up
to speed with the latest technology in mechanical design and
control aspects of the area. Previous knowledge of the fundamentals
of kinematics, dynamics, control, and signal processing is assumed.
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