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This book describes and explains the basis of bio-inspired,
leading-edge tubercles based on humpback whale flippers as passive
but effective flow control devices, as well as providing a
comprehensive practical guide in their applications. It first
discusses the morphology of the humpback whale flipper from a
biological perspective, before presenting detailed experimental and
numerical findings from past investigations by various experts on
the benefits of leading-edge tubercles and their engineering
implementations. Leading-edge tubercle designs and functions have
attracted considerable interest from researchers in terms of
understanding their role in the underwater agility of these whales,
and to exploit their flow dynamics in the development of new and
novel engineering solutions. Extensive research over the past
recent years has demonstrated that the maneuverability of these
whales is at least in part due to the leading-edge tubercles acting
as passive flow control devices to delay stall and increase lift in
the post-stall regime. In addition to the inherent benefits in
terms of aerodynamics and hydrodynamics, investigations into
leading-edge tubercles have also broadened into areas of noise
attenuation, stability and industrial applications. This book
touches upon these areas, with an emphasis upon the effects of
lifting-surface types, flow regimes, tubercle geometries,
lifting-surface stability and potential industrial applications,
among others. As such, it features contributions from key experts
in the fields of biology, physics and engineering who have
conducted significant studies into understanding the various
aspects of leading-edge tubercles. Given the broad coverage and
in-depth analysis, this book will benefit academic researchers,
practicing engineers and graduate students interested in tapping
into such a unique but highly functional flow control strategy.
This book describes and explains the basis of bio-inspired,
leading-edge tubercles based on humpback whale flippers as passive
but effective flow control devices, as well as providing a
comprehensive practical guide in their applications. It first
discusses the morphology of the humpback whale flipper from a
biological perspective, before presenting detailed experimental and
numerical findings from past investigations by various experts on
the benefits of leading-edge tubercles and their engineering
implementations. Leading-edge tubercle designs and functions have
attracted considerable interest from researchers in terms of
understanding their role in the underwater agility of these whales,
and to exploit their flow dynamics in the development of new and
novel engineering solutions. Extensive research over the past
recent years has demonstrated that the maneuverability of these
whales is at least in part due to the leading-edge tubercles acting
as passive flow control devices to delay stall and increase lift in
the post-stall regime. In addition to the inherent benefits in
terms of aerodynamics and hydrodynamics, investigations into
leading-edge tubercles have also broadened into areas of noise
attenuation, stability and industrial applications. This book
touches upon these areas, with an emphasis upon the effects of
lifting-surface types, flow regimes, tubercle geometries,
lifting-surface stability and potential industrial applications,
among others. As such, it features contributions from key experts
in the fields of biology, physics and engineering who have
conducted significant studies into understanding the various
aspects of leading-edge tubercles. Given the broad coverage and
in-depth analysis, this book will benefit academic researchers,
practicing engineers and graduate students interested in tapping
into such a unique but highly functional flow control strategy.
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