IEEE Power & Energy Magazine - May/June 2016 - 35
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and transport of electricity down to the distribution system
and the variety of connected customers.
in large parts of the world, electricity markets exist on
the transmission level of the infrastructure. Here, markets
and energy transactions are already used to influence system operation, and, thus, aspects of te are arguably already
in place at that level. Because of this, the distributed, collaborative decision-making nature of how market mechanisms work at the transmission level in modern power systems is already well understood. the big challenge for the
smart grid is how to coordinate an ever-growing number
of intelligent devices, each with their own objectives and
value perspectives, into a resilient, secure, and efficient
system that balances the trade-offs among the objectives of
the many participants and has the flexibility to evolve with
may/june 2016
the changing mix of resources over time. this frames the
opportunity for introducing te concepts across the entire
infrastructure and specifically into the distribution-level of
the electricity grid.
this article focuses primarily on the application of te as
a scalable coordination approach to electricity distribution
systems operations by reviewing and contrasting the way a
te system works and its advantages with competing control
and coordination approaches. Several field demonstrations
are summarized both in europe and the united States, where
first-generation te systems have been shown to improve the
balance between local consumption and production and, by
doing so, improve the integration of renewable generation
and mitigate congestion (i.e., local power flow overloads) in
distribution systems.
ieee power & energy magazine
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Table of Contents for the Digital Edition of IEEE Power & Energy Magazine - May/June 2016
IEEE Power & Energy Magazine - May/June 2016 - Cover1
IEEE Power & Energy Magazine - May/June 2016 - Cover2
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IEEE Power & Energy Magazine - May/June 2016 - Cover3
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