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Since delays are present in 99% of industrial processes, Control
Strategy for Time-delay Systems covers all the important features
of real-world practical applications which will be valuable to
practicing engineers and specialists The book presents the views of
the editors on promising research directions and future industrial
applications in this area. Although the fundamentals of time-delay
systems are discussed, the book focuses on the advanced modelling
and control of such systems and will provide the analysis and test
(or simulation) results of nearly every technique described in the
book For this purpose, highly complex models are introduced to
describe the mentioned new applications which are characterized by
time-varying delays with intermittent and stochastic nature,
several types of nonlinearities, and the presence of different
time-scales. Researchers, practitioners and PhD students will gain
insights into the prevailing trends in design and operation of
real-time control systems, reviewing the shortcomings and future
developments concerning the practical system issues such as
standardization, protection and design.
Control Strategy for Time-Delay Systems Part I: Concepts and
Theories covers all the important features of real-world practical
applications which will be valuable to practicing engineers and
specialists, especially given that delays are present in 99% of
industrial processes. The book presents the views of the editors on
promising research directions and future industrial applications in
this area. Although the fundamentals of time-delay systems are
discussed, the book focuses on the advanced modeling and control of
such systems and will provide the analysis and test (or simulation)
results of nearly every technique described. For this purpose,
highly complex models are introduced to describe the mentioned new
applications, which are characterized by time-varying delays with
intermittent and stochastic nature, several types of
nonlinearities, and the presence of different time-scales.
Researchers, practitioners, and PhD students will gain insights
into the prevailing trends in design and operation of real-time
control systems, reviewing the shortcomings and future developments
concerning practical system issues, such as standardization,
protection, and design.
Microgrids use ICT to intelligently deliver energy and integrate
clean generation. They can operate independently from a larger grid
and can help to strengthen grid resilience. Applications include
remote as well as urban areas, hospitals, and manufacturing
complexes. Cybersecurity challenges arise, exposing the microgrids
to cyber-attacks, possibly resulting in harm to infrastructure and
to people. Research has classified attacks based on
confidentiality, integrity, and availability, and most
countermeasures focus on specific attacks or on protecting specific
components. A global approach is needed combining solutions that
can secure the entire system and respond in milliseconds. This
reference work for researchers, in academia, industry and at grid
operators as well as for students, provides an up-to-date framework
for cybersecurity technologies and perspectives on operation,
control, testbed and protection of microgrids from a system level
perspective. Coverage includes the role of modern power electronics
in active distribution networks, cyber-induced steady-state and
dynamic issues, situational awareness of cyber-attacks, AI aided
detection of data manipulation, cyber security threats in
multi-agent microgrids, communication assisted protection, design
and modeling of cyber-attacks for grid tied PV systems, stealth
cyber-attacks, resilient distributed control, cyber-physical
testbeds for smart grids and EV charging, and event-driven
resiliency of microgrids against cyber-attacks. The book offers
advanced cyber-attack detection strategies for microgrids to
address breaches, counter attacks, deploy appropriate
countermeasures, and stabilize microgrids under cyber-attacks.
DC electric power distribution systems have higher efficiency,
better current carrying capacity and faster response when compared
to conventional AC systems. They also provide a more natural
interface with many types of renewable energy sources. Furthermore,
there are fewer issues with reactive power flow, power quality and
frequency regulation, resulting in a notably less complex control
system. All these facts lead to increased applications of DC
systems in modern power systems. Still, design and operation of
these systems imposes a number of specific challenges, mostly
related to lack of mature protection technology and operational
experience, as well as very early development stage of standards
regarding DC based power infrastructure. This book provides an
up-to-date overview of recent research activities in the control,
protection and architectural design of a number of different types
of DC distribution systems and microgrids. Practical requirements
and implementation details of several types of DC distribution
systems used in the real world industrial applications are also
presented. Several types of coordinated control design concepts are
shown, with concepts of stabilization being explained in detail.
The book reviews the shortcomings and future developments
concerning the practical DC system integration issues.
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