Designing a sector-coupled European energy system robust to 60 years of historical weather data.

Gøtske, Ebbe Kyhl; Andresen, Gorm Bruun; Neumann, Fabian; Victoria, Marta · Nat Commun · 2024

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Abstract

As energy systems transform to rely on renewable energy and electrification to mitigate climate change, they encounter stronger year-to-year variability in energy supply and demand. Yet, most infrastructure planning relies on a single weather year, risking a potential lack of robustness. In this paper, we optimize capacity layouts for a European energy system under net-zero CO<sub>2</sub> emissions for 62 different weather years. Subsequently, we fix the layouts and optimize their operation in every other weather year to assess resource adequacy and CO<sub>2</sub> emissions. Our analysis shows a variation of  ± 10% in total system costs across weather years. Layouts designed for years with compound weather events prove more robust, achieving resource adequacy of 99.9% and net-negative CO<sub>2</sub> emissions of -0.5% per year relative to 1990 levels. CO<sub>2</sub>-emitting backup generation regulated by a CO<sub>2</sub> tax offers a cost-effective measure to enhance robustness. It increases emissions only marginally, keeping average emissions below 1% of 1990 levels over all layouts. Our findings underscore the need for policymakers and energy stakeholders to account for interannual weather variability in future infrastructure planning.