# Sector coupling

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{{Short description|Integration of energy sectors}}
thumb|Integrated energy system through sector coupling
'''Sector coupling''' or '''sector integration''' is a concept in which [electricity](/source/electricity) produced from [renewable energy](/source/renewable_energy) sources is used to substitute [fossil fuels](/source/fossil_fuels) within all end-consumption sectors, including [transport](/source/transport), [industry](/source/Manufacturing), and residential [heating](/source/heating)/[cooling](/source/cooling). The key goal is the integration of large-scale renewable electricity, mainly from [wind](/source/wind_power) and [solar power](/source/solar_power), by increasing its direct use or indirect application through transformation into a suitable energy carrier, for example heat, gas, and liquids. Sector coupling supports the creation of [100% renewable energy](/source/100%25_renewable_energy) systems, adds flexibility and improves storage and distribution options to the use of renewable electricity.<ref>Jasmine Ramsebner et al: ''The sector coupling concept: A critical review''. In: ''WIRES Energy and Environment'' 10, 4, 2021, {{DOI|10.1002/wene.396}}</ref>

Sector coupling and system integration are regarded as key concepts in the global [energy transition](/source/energy_transition), as it makes the adoption of renewable energy sources more efficient and cheaper.<ref>Jakob Zinck Thellufsen et al.: ''Beyond sector coupling: Utilizing energy grids in sector coupling to improve the European energy transition''. In: ''Smart Energy'' 12, 2023, {{DOI|10.1016/j.segy.2023.100116}}</ref> The sector coupling concept has also been further developed into fully integrated energy systems. These are also called '''smart energy systems''' (not to be confused with the [Smart grid](/source/Smart_grid) approach, as the latter only refers to the power sector). A smart energy system is defined as "as an approach in which smart electricity, thermal and gas grids are combined with storage technologies and coordinated to identify synergies between them in order to achieve an optimal solution for each individual sector as well as for the overall energy system."<ref>[Henrik Lund](/source/Henrik_Lund_(academic)) et al. ''Smart Energy and Smart Energy Systems''. In: ''Energy'' 137, 2017, {{DOI|10.1016/j.energy.2017.05.123}}</ref>

== Concept ==
Using [power-to-X](/source/power-to-X)-technologies, sector coupling offers possibilites to exploit synergies across different energy sectors, for example by using [power-to-heat](/source/power-to-heat)-technologies such as [heat pump](/source/heat_pump)s and cheap thermal energy storage to (better) integrate surplus energy from renewable electricity and thus decarbonize the heating sector. It also includes the production of [electrofuel](/source/electrofuel)s, by which aviation or shipping can be decarbonized. However, in order to reach the highest efficiency and lowest cost, direct electricity use in technologies such as heat pumps and [battery-electric vehicle](/source/battery-electric_vehicle)s should be prioritized wherever possible, while much less efficient [hydrogen](/source/hydrogen) solutions or hydrogen-to-X conversions for e-fuels and e-chemicals should only be used where other solutions are impossible.<ref>Christian Breyer et al.: ''On the History and Future of 100% Renewable Energy Systems Research''. In: ''IEEE Access'' 10, 2022, {{DOI|10.1109/ACCESS.2022.3193402}}</ref> Though, while [electrification](/source/electrification) typically is the most cost-efficient [decarbonization](/source/decarbonization) route in all economic sectors, there still remains a relatively small but though essential contribution of hydrogen use to allow deep decarbonization.<ref>Bob van der Zwaan et al.: ''Electricity- and hydrogen-driven energy system sector-coupling in net-zero CO2 emission pathways''. In: [Nature Communications](/source/Nature_Communications) 16, 2025, {{DOI|10.1038/s41467-025-56365-0}}</ref>

Sector coupling has also been used to overcome undesired limitations from single sector based energy analysis. Typically, if energy system analysis focus only on the electricity sector, these studies often result in high levels of curtailment of renewable power and high costs of balancing, as they cannot use the flexibility provided by other energy sectors. This can lead to unrealistic assumptions and results. However, if a fully integrated smart energy system is used, cheaper solutions in non-electricity-sectors can be used, as a cross-sectoral approach makes it possible to convert renewable electricity to energy carriers that can be stored in much more affordable types of [energy storage](/source/energy_storage).<ref>Henrik Lund et al. ''Energy balancing and storage in climate-neutral smart energy systems''. In: ''Renewable and Sustainable Energy Reviews'' 209, 2025, {{DOI|10.1016/j.rser.2024.115141}}.</ref> 

== Further reading ==
* [IRENA](/source/IRENA) 2022: [https://www.irena.org/-/media/Files/IRENA/Coalition-for-Action/Publication/IRENA_Coalition_sector_coupling_2022.pdf Sector coupling. A key concept for accelerating the energy transformation]

== References ==
{{reflist}}

{{Electricity grid modernization|state=expanded}}
{{Electricity generation}}

Category:Energy policy
Category:Energy storage
Category:Power engineering
Category:Renewable energy

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Adapted from the Wikipedia article [Sector coupling](https://en.wikipedia.org/wiki/Sector_coupling) by Wikipedia contributors ([contributor history](https://en.wikipedia.org/wiki/Sector_coupling?action=history)). Available under [Creative Commons Attribution-ShareAlike 4.0 International](https://creativecommons.org/licenses/by-sa/4.0/). Changes may have been made.
