Congestion management via increasing integration of electric and thermal energy infrastructures

Congestion caused in the electrical network due to renewable generation can be effectively managed by integrating electric and thermal infrastructures, the latter being represented by large scale District Heating (DH) networks, often fed by large combined heat and power (CHP) plants. The CHP plants...

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Main Authors: Gonzalez-Castellanos Alvaro, Guha Thakurta Priyanko, Bischi Aldo
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/14/e3sconf_100res2021_05005.pdf
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spelling doaj-4e94f0b181f6476285440ceffa7ffb8d2021-02-18T10:43:47ZengEDP SciencesE3S Web of Conferences2267-12422021-01-012380500510.1051/e3sconf/202123805005e3sconf_100res2021_05005Congestion management via increasing integration of electric and thermal energy infrastructuresGonzalez-Castellanos Alvaro0Guha Thakurta Priyanko1Bischi Aldo2Center for Energy Science and Technology, Skolkovo Institute of Science and TechnologyEirGrid plcCenter for Energy Science and Technology, Skolkovo Institute of Science and TechnologyCongestion caused in the electrical network due to renewable generation can be effectively managed by integrating electric and thermal infrastructures, the latter being represented by large scale District Heating (DH) networks, often fed by large combined heat and power (CHP) plants. The CHP plants could further improve the profit margin of district heating multi-utilities by selling electricity in the power market by adjusting the ratio between generated heat and power. The latter is possible only for certain CHP plants, which allow decoupling the two commodities generation, namely the ones provided by two independent variables (degrees-of-freedom) or by integrating them with thermal energy storage and Power-to-Heat (P2H) units. CHP units can, therefore, help in the congestion management of the electricity network. A detailed mixed-integer linear programming (MILP) optimization model is introduced for solving the network-constrained unit commitment of integrated electric and thermal infrastructures. The developed model contains a detailed characterization of the useful effects of CHP units, i.e., heat and power, as a function of one and two independent variables. A lossless DC flow approximation models the electricity transmission network. The district heating model includes the use of gas boilers, electric boilers, and thermal energy storage. The conducted studies on IEEE 24 bus system highlight the importance of a comprehensive analysis of multi-energy systems to harness the flexibility derived from the joint operation of electric and heat sectors and managing congestion in the electrical network.https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/14/e3sconf_100res2021_05005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Gonzalez-Castellanos Alvaro
Guha Thakurta Priyanko
Bischi Aldo
spellingShingle Gonzalez-Castellanos Alvaro
Guha Thakurta Priyanko
Bischi Aldo
Congestion management via increasing integration of electric and thermal energy infrastructures
E3S Web of Conferences
author_facet Gonzalez-Castellanos Alvaro
Guha Thakurta Priyanko
Bischi Aldo
author_sort Gonzalez-Castellanos Alvaro
title Congestion management via increasing integration of electric and thermal energy infrastructures
title_short Congestion management via increasing integration of electric and thermal energy infrastructures
title_full Congestion management via increasing integration of electric and thermal energy infrastructures
title_fullStr Congestion management via increasing integration of electric and thermal energy infrastructures
title_full_unstemmed Congestion management via increasing integration of electric and thermal energy infrastructures
title_sort congestion management via increasing integration of electric and thermal energy infrastructures
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2021-01-01
description Congestion caused in the electrical network due to renewable generation can be effectively managed by integrating electric and thermal infrastructures, the latter being represented by large scale District Heating (DH) networks, often fed by large combined heat and power (CHP) plants. The CHP plants could further improve the profit margin of district heating multi-utilities by selling electricity in the power market by adjusting the ratio between generated heat and power. The latter is possible only for certain CHP plants, which allow decoupling the two commodities generation, namely the ones provided by two independent variables (degrees-of-freedom) or by integrating them with thermal energy storage and Power-to-Heat (P2H) units. CHP units can, therefore, help in the congestion management of the electricity network. A detailed mixed-integer linear programming (MILP) optimization model is introduced for solving the network-constrained unit commitment of integrated electric and thermal infrastructures. The developed model contains a detailed characterization of the useful effects of CHP units, i.e., heat and power, as a function of one and two independent variables. A lossless DC flow approximation models the electricity transmission network. The district heating model includes the use of gas boilers, electric boilers, and thermal energy storage. The conducted studies on IEEE 24 bus system highlight the importance of a comprehensive analysis of multi-energy systems to harness the flexibility derived from the joint operation of electric and heat sectors and managing congestion in the electrical network.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/14/e3sconf_100res2021_05005.pdf
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