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Prioritizing forestation based on biogeochemical and local biogeophysical impacts

机译:基于生物地球化学优先造林和当地biogeophysical影响

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Reforestation and afforestation is expected to achieve a quarter of all emission reduction pledged under the Paris Agreement. Trees store carbon in biomass and soil but also alter the surface energy balance, warming or cooling the local climate. Mitigation scenarios and policies often neglect these biogeophysical (BGP) effects. Here we combine observational BGP datasets with carbon uptake or emission data to assess the end-of-century mitigation potential of forestation. Forestation and conservation of tropical forests achieve the highest climate benefit at 732.12 tCO(2)e ha(-1). Higher-latitude forests warm the local winter climate, affecting 73.7% of temperate forests. Almost a third (29.8%) of forests above 56 degrees N induce net winter warming if only their biomass is considered. Including soil carbon reduces the net warming area to 6.8% but comes with high uncertainty (2.9-42.0%). Our findings emphasize the necessity to conserve and re-establish tropical forests and consider BGP effects in policy scenarios. Forests take up carbon from the atmosphere but also change Earth's surface energy balance through biophysical effects. Accounting for these shows that tropical forests have the highest mitigation potential; the climate benefit of higher-latitude forests is offset by their warming effects in winter.
机译:预计重新造林和绿化实现减排的四分之一承诺根据巴黎协议。碳生物量和土壤也改变了表面能量平衡,气候变暖或冷却当地的气候。经常忽视这些biogeophysical(东方)的影响。这里我们将观察边界网关协议的数据集碳吸收或发射数据评估end-of-century减排的潜力造林。热带森林达到最高的气候受益于732.12 tCO ha (1) (2) e。森林温暖当地冬季气候影响温带森林的73.7%。(29.8%)的森林N诱导净56度以上如果只有他们的生物量是冬季变暖考虑。但伴随着高变暖地区6.8%不确定性(2.9 -42.0%)。保护和重建的必要性热带森林和考虑边界网关协议的影响政策方案。气氛也改变地球表面能量通过生物物理平衡的影响。这些表明,热带森林减排潜力最大;高纬度森林是他们所抵消在冬天变暖的影响。

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