Competition in Building Heating—The Techno-Economic Case for Decentralized Heat Pumps in Germany up to 2045

Decarbonizing the German building sector by 2045 requires a rapid transformation of the heating technology stock, in which decentralized heat pumps (HPs) compete with district heating (DH) and green-gas-based solutions. Yet, the existing literature has not sufficiently resolved which segments of the building stock are most appropriately served by which low-carbon technology. This paper addresses this gap through a bottom-up, dynamic analysis using the agent-based building stock model RENDER-Building, which combines building-specific environmental heat-source potentials with DH and gas distribution infrastructure availability across Germany. Three explorative techno-economic scenarios are evaluated, differing in their electricity network charge development, DH expansion, and gas infrastructure trajectories. The modeling results show that HPs are cost-competitive over their lifetime in most building stock segments, delivering unit heat at an average cost of 11–15 ct/kWh. Between 11 and 15 million units are projected to be heated by HPs by 2045, covering 25 to 30% of building heating demand. Settlement type and local heat-source availability are found to be the primary determinants of feasibility and adoption. The findings underline the importance of ensuring the availability of energy carriers and stable long-term policies for a cost-effective and climate-friendly transformation of heating in buildings.

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Publication Details

Journal
Energies
Published
2026-09-15
DOI
https://doi.org/10.3390/en19184377
Primary Topic
Integrated Energy Systems Optimization
Type
article
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Competition in Building Heating—The Techno-Economic Case for Decentralized Heat Pumps in Germany up to 2045

Şirin Alibaş, Stella Oberle, Songmin Yu, Hans‐Martin Henning et al.
Energies
Integrated Energy Systems Optimization
article

Competition in Building Heating—The Techno-Economic Case for Decentralized Heat Pumps in Germany up to 2045

Şirin Alibaş, Stella Oberle, Songmin Yu, Hans‐Martin Henning, Anna Billerbeck
article en

Abstract

Decarbonizing the German building sector by 2045 requires a rapid transformation of the heating technology stock, in which decentralized heat pumps (HPs) compete with district heating (DH) and green-gas-based solutions. Yet, the existing literature has not sufficiently resolved which segments of the building stock are most appropriately served by which low-carbon technology. This paper addresses this gap through a bottom-up, dynamic analysis using the agent-based building stock model RENDER-Building, which combines building-specific environmental heat-source potentials with DH and gas distribution infrastructure availability across Germany. Three explorative techno-economic scenarios are evaluated, differing in their electricity network charge development, DH expansion, and gas infrastructure trajectories. The modeling results show that HPs are cost-competitive over their lifetime in most building stock segments, delivering unit heat at an average cost of 11–15 ct/kWh. Between 11 and 15 million units are projected to be heated by HPs by 2045, covering 25 to 30% of building heating demand. Settlement type and local heat-source availability are found to be the primary determinants of feasibility and adoption. The findings underline the importance of ensuring the availability of energy carriers and stable long-term policies for a cost-effective and climate-friendly transformation of heating in buildings.

EnergiesVol. 19(18)
University of Freiburg (DE), Cosmote (Greece) (GR), Heilbronn University (DE), Fraunhofer Institute for Solar Energy Systems (DE), Fraunhofer Institute for Systems and Innovation Research (DE), SLK-Kliniken Heilbronn (DE)
Openalex Percentile: Top 21%
Integrated Energy Systems Optimization
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