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Simulating the Earth system response to negative emissions

  • C. D. Jones
  • , P. Ciais
  • , S. J. Davis
  • , P. Friedlingstein
  • , T. Gasser
  • , G. P. Peters
  • , J. Rogelj
  • , D. P. Van Vuuren
  • , J. G. Canadell
  • , A. Cowie
  • , R. B. Jackson
  • , M. Jonas
  • , E. Kriegler
  • , E. Littleton
  • , J. A. Lowe
  • , J. Milne
  • , G. Shrestha
  • , P. Smith
  • , A. Torvanger
  • , A. Wiltshire
  • Now at Met Office Hadley Centre
  • Université Versailles-Saint Quentin
  • Long Beach VA and University of California
  • University of Exeter
  • CIRED
  • Center for International Climate Research (CICERO)
  • International Institute for Applied Systems Analysis (IIASA)
  • ETH Zurich
  • PBL Netherlands Environmental Assessment Agency
  • Utrecht University
  • Commonwealth Scientific and Industrial Research Organization
  • University of New England Australia
  • Stanford University
  • Potsdam Institute for Climate Impact Research (PIK)
  • University of East Anglia
  • U.S. Global Change Research Program
  • University of Aberdeen

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Natural carbon sinks currently absorb approximately half of the anthropogenic CO2 emitted by fossil fuel burning, cement production and land-use change. However, this airborne fraction may change in the future depending on the emissions scenario. An important issue in developing carbon budgets to achieve climate stabilisation targets is the behaviour of natural carbon sinks, particularly under low emissions mitigation scenarios as required to meet the goals of the Paris Agreement. A key requirement for low carbon pathways is to quantify the effectiveness of negative emissions technologies which will be strongly affected by carbon cycle feedbacks. Here we find that Earth system models suggest significant weakening, even potential reversal, of the ocean and land sinks under future low emission scenarios. For the RCP2.6 concentration pathway, models project land and ocean sinks to weaken to 0.8 ±0.9 and 1.1 ±0.3 GtC yr-1 respectively for the second half of the 21st century and to -0.4 ±0.4 and 0.1 ±0.2 GtC yr-1 respectively for the second half of the 23rd century. Weakening of natural carbon sinks will hinder the effectiveness of negative emissions technologies and therefore increase their required deployment to achieve a given climate stabilisation target. We introduce a new metric, the perturbation airborne fraction, to measure and assess the effectiveness of negative emissions.

langue originaleAnglais
Numéro d'article095012
journalEnvironmental Research Letters
Volume11
Numéro de publication9
Les DOIs
étatPublié - 20 sept. 2016
Modification externeOui

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