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Koltsaklis, Nikolaos
Knápek, Jaroslav
2025-10-20T08:18:38Z
2025-10-20T08:18:38Z
2023
1785-8860hu_HU
http://hdl.handle.net/20.500.14044/34894
Extremely adaptable power systems are required, as the share of variable renewable energy sources increases. The variable renewable energy sources' ability to be installed on the grid, is frequently thought to be constrained by a limited flexible capacity. A general, methodological framework, for the optimal scheduling of an islanded power system, with a variety of flexibility resources, is presented in this work. In particular, it takes into account a significant amount of intermittent RES and the widespread use of electric vehicles that offer charging and discharging options. The modeling in this work also considers demand response programs' active market participation and the installation of energy storage capacities. Additionally, it covers the involvement of electricity interconnections, as a source of flexibility. Two illustrative case studies of an island power system connected to a mainland power system, have been used, to evaluate the applicability of the proposed strategy. The scheduling framework is daily, with an hourly interval. The results of the modeling show how important all of the flexibility resources are, for effective energy management and the supply of ancillary services, especially in cases for high-RES penetration. The proposed method can be used by market operators, policymakers and regulatory authorities, to choose the best system development, market design and portfolio synthesis.hu_HU
Extremely adaptable power systems are required, as the share of variable renewable energy sources increases. The variable renewable energy sources' ability to be installed on the grid, is frequently thought to be constrained by a limited flexible capacity. A general, methodological framework, for the optimal scheduling of an islanded power system, with a variety of flexibility resources, is presented in this work. In particular, it takes into account a significant amount of intermittent RES and the widespread use of electric vehicles that offer charging and discharging options. The modeling in this work also considers demand response programs' active market participation and the installation of energy storage capacities. Additionally, it covers the involvement of electricity interconnections, as a source of flexibility. Two illustrative case studies of an island power system connected to a mainland power system, have been used, to evaluate the applicability of the proposed strategy. The scheduling framework is daily, with an hourly interval. The results of the modeling show how important all of the flexibility resources are, for effective energy management and the supply of ancillary services, especially in cases for high-RES penetration. The proposed method can be used by market operators, policymakers and regulatory authorities, to choose the best system development, market design and portfolio synthesis.hu_HU
dc.formatPDFhu_HU
enhu_HU
The Role of Flexibility Resources in the Energy Transitionhu_HU
Open accesshu_HU
Óbudai Egyetemhu_HU
Budapesthu_HU
Bánki Donát Gépész és Biztonságtechnikai Mérnöki Karhu_HU
Óbudai Egyetemhu_HU
Műszaki tudományok - multidiszciplináris műszaki tudományokhu_HU
optimizationhu_HU
island systemhu_HU
flexibilithu_HU
interconnectionhu_HU
energy storagehu_HU
demand responsehu_HU
Tudományos cikkhu_HU
Acta Polytechnica Hungaricahu_HU
local.tempfieldCollectionsFolyóiratcikkekhu_HU
10.12700/APH.20.11.2023.11.9
Kiadói változathu_HU
22 p.hu_HU
11. sz.hu_HU
20. évf.hu_HU
2023hu_HU
Óbudai Egyetemhu_HU


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