Managing Land-based CDR: BECCS, Forests and Carbon Sequestration

被引:32
作者
Brack, Duncan [1 ]
King, Richard [2 ]
机构
[1] Chatham House, London, England
[2] Chatham House, Energy Environm & Resources Programme, London, England
关键词
D O I
10.1111/1758-5899.12827
中图分类号
D81 [国际关系];
学科分类号
030207 ;
摘要
Decisions about when, where and how to achieve widespread carbon dioxide removal (CDR) are urgently required. Delays in developing the requisite policy and regulatory frameworks increase the risks of overshooting climate goals and will necessitate much larger negative emissions initiatives in the future. Yet the deployment of bioenergy with carbon capture and storage (BECCS) at the scales assumed under most Paris-Agreement-compliant emission-reduction pathways is unlikely. More generally, the sustainability of large-scale BECCS is questionable given its extensive land, water, and energy requirements for feedstocks and the competing necessity of these resources for the provision of ecosystem services and attainment of multiple Sustainable Development Goals. BECCS on a more limited scale, however, could have more benign impacts if feedstocks were restricted to wastes and residues. There is also widespread recognition that extensive afforestation, reforestation and forest restoration have critical roles in reducing greenhouse gas emissions to net zero. To date there has been little focus on the optimum strategies for integrating land-based CDR approaches - under which circumstances forest areas are best left undisturbed, managed for conservation, and/or managed for harvested wood products, and how these options affect the availability of residual feedstocks for BECCS. This paper reviews this debate and suggests appropriate policy measures.
引用
收藏
页码:45 / 56
页数:12
相关论文
共 42 条
[1]   The trouble with negative emissions [J].
Anderson, Kevin ;
Peters, Glen .
SCIENCE, 2016, 354 (6309) :182-183
[2]   Changes in soil organic carbon under biofuel crops [J].
Anderson-Teixeira, Kristina J. ;
Davis, Sarah C. ;
Masters, Michael D. ;
Delucia, Evan H. .
GLOBAL CHANGE BIOLOGY BIOENERGY, 2009, 1 (01) :75-96
[3]  
[Anonymous], 2015, CLIM INT CARB DIOX R
[4]  
[Anonymous], 2019, Forest Bioenergy, Carbon Capture and Storage, and Carbon Dioxide Removal: An Update
[5]  
[Anonymous], 2017, ENERGY TECHNOLOGY PE
[6]   Global energy sector emission reductions and bioenergy use: overview of the bioenergy demand phase of the EMF-33 model comparison [J].
Bauer, Nico ;
Rose, Steven K. ;
Fujimori, Shinichiro ;
van Vuuren, Detlef P. ;
Weyant, John ;
Wise, Marshall ;
Cui, Yiyun ;
Daioglou, Vassilis ;
Gidden, Matthew J. ;
Kato, Etsushi ;
Kitous, Alban ;
Leblanc, Florian ;
Sands, Ronald ;
Sano, Fuminori ;
Strefler, Jessica ;
Tsutsui, Junichi ;
Bibas, Ruben ;
Fricko, Oliver ;
Hasegawa, Tomoko ;
Klein, David ;
Kurosawa, Atsushi ;
Mima, Silvana ;
Muratori, Matteo .
CLIMATIC CHANGE, 2020, 163 (03) :1553-1568
[7]   On the financial viability of negative emissions [J].
Bednar, Johannes ;
Obersteiner, Michael ;
Wagner, Fabian .
NATURE COMMUNICATIONS, 2019, 10 (1)
[8]   Bioenergy production potential of global biomass plantations under environmental and agricultural constraints [J].
Beringer, Tim ;
Lucht, Wolfgang ;
Schaphoff, Sibyll .
GLOBAL CHANGE BIOLOGY BIOENERGY, 2011, 3 (04) :299-312
[9]  
Brack Duncan, 2017, Chatham House
[10]  
Center for the Study of Carbon Dioxide and Global Change, 2014, GROWTH RAT OLD VERS