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Principal Mismatch Patterns Across a Simplified Highly Renewable European Electricity Network
by
Greiner, Martin
, Zeyer, Timo
, Raunbak, Mads
, Zhu, Kun
in
Electricity
/ energy system design
/ Infrastructure
/ large-scale integration of renewables
/ principal component analysis
/ Principal components analysis
/ renewable energy networks
/ solar power
/ super grid
/ wind power
2017
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Principal Mismatch Patterns Across a Simplified Highly Renewable European Electricity Network
by
Greiner, Martin
, Zeyer, Timo
, Raunbak, Mads
, Zhu, Kun
in
Electricity
/ energy system design
/ Infrastructure
/ large-scale integration of renewables
/ principal component analysis
/ Principal components analysis
/ renewable energy networks
/ solar power
/ super grid
/ wind power
2017
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Do you wish to request the book?
Principal Mismatch Patterns Across a Simplified Highly Renewable European Electricity Network
by
Greiner, Martin
, Zeyer, Timo
, Raunbak, Mads
, Zhu, Kun
in
Electricity
/ energy system design
/ Infrastructure
/ large-scale integration of renewables
/ principal component analysis
/ Principal components analysis
/ renewable energy networks
/ solar power
/ super grid
/ wind power
2017
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Principal Mismatch Patterns Across a Simplified Highly Renewable European Electricity Network
Journal Article
Principal Mismatch Patterns Across a Simplified Highly Renewable European Electricity Network
2017
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Overview
Due to its spatio-temporal variability, the mismatch between the weather and demand patterns challenges the design of highly renewable energy systems. A principal component analysis is applied to a simplified networked European electricity system with a high share of wind and solar power generation. It reveals a small number of important mismatch patterns, which explain most of the system’s required backup and transmission infrastructure. Whereas the first principal component is already able to reproduce most of the temporal mismatch variability for a solar dominated system, a few more principal components are needed for a wind dominated system. Due to its monopole structure the first principal component causes most of the system’s backup infrastructure. The next few principal components have a dipole structure and dominate the transmission infrastructure of the renewable electricity network.
Publisher
MDPI AG
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