Integrated assessment of biomass supply and demand in climate change mitigation scenarios

Publication date

2019

Authors

Daioglou, VassilisISNI 0000000419508234
Doelman, JonathanORCID 0000-0002-6842-573XISNI 0000000492496647
Wicke, BirkaISNI 000000039652365X
Faaij, Andre
van Vuuren, DetlefORCID 0000-0003-0398-2831ISNI 0000000040910093

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Document Type

Article
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Abstract

Biomass is often seen as a key component of future energy systems as it can be used for heat and electricity production, as a transport fuel, and a feedstock for chemicals. Furthermore, it can be used in combination with carbon capture and storage to provide so-called “negative emissions”. At the same time, however, its production will require land, possibly impacting food security, land-based carbon stocks, and other environmental services. Thus, the strategies adopted in the supply, conversion, and use of biomass have a significant impact on its effectiveness as a climate change mitigation measure. We use the IMAGE 3.0 integrated assessment model to project three different global, long term scenarios spanning different socioeconomic futures with varying rates of population growth, economic growth, and technological change, and investigate the role of biomass in meeting strict climate targets. Using these scenarios we highlight different possibilities for biomass supply and demand, and provide insights on the requirements and challenges for the effective use of this resource as a climate change mitigation measure. The results show that in scenarios meeting the 1.5 °C target, biomass could exceed 20% of final energy consumption, or 115–180 EJPrim/yr in 2050. Such a supply of bioenergy can only be achieved without extreme levels land use change if agricultural yields improve significantly and effective land zoning is implemented. Furthermore, the results highlight that strict mitigation targets are contingent on the availability of advanced technologies such as lignocellulosic fuels and carbon capture and storage.

Keywords

Biochemicals, Bioenergy, Climate policy, Energy system, Land use, Scenario analysis, Taverne, Global and Planetary Change, Geography, Planning and Development, Ecology, Management, Monitoring, Policy and Law, SDG 2 - Zero Hunger, SDG 7 - Affordable and Clean Energy, SDG 8 - Decent Work and Economic Growth, SDG 13 - Climate Action

Citation

Daioglou, V, Doelman, J C, Wicke, B, Faaij, A & van Vuuren, D P 2019, 'Integrated assessment of biomass supply and demand in climate change mitigation scenarios', Global Environmental Change, vol. 54, pp. 88-101. https://doi.org/10.1016/j.gloenvcha.2018.11.012