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由于大规模生物能源种植的气候反馈,陆地降水增加。

Increased precipitation over land due to climate feedback of large-scale bioenergy cultivation.

机构信息

Department of Earth System Science, Ministry of Education Key Laboratory for Earth System Modeling, Institute for Global Change Studies, Tsinghua University, 100084, Beijing, China.

Laboratoire des Sciences du Climat et de l'Environnement, LSCE/IPSL, CEA-CNRS-UVSQ, Université Paris-Saclay, 91191, Gif-sur-Yvette, France.

出版信息

Nat Commun. 2023 Jul 11;14(1):4096. doi: 10.1038/s41467-023-39803-9.

Abstract

Bioenergy with carbon capture and storage (BECCS) is considered to be a key technology for removing carbon dioxide from the atmosphere. However, large-scale bioenergy crop cultivation results in land cover changes and activates biophysical effects on climate, with earth's water recycling altered and energy budget re-adjusted. Here, we use a coupled atmosphere-land model with explicit representations of high-transpiration woody (i.e., eucalypt) and low-transpiration herbaceous (i.e., switchgrass) bioenergy crops to investigate the range of impact of large-scale rainfed bioenergy crop cultivation on the global water cycle and atmospheric water recycling. We find that global land precipitation increases under BECCS scenarios, due to enhanced evapotranspiration and inland moisture advection. Despite enhanced evapotranspiration, soil moisture decreases only slightly, due to increased precipitation and reduced runoff. Our results indicate that, at the global scale, the water consumption by bioenergy crop growth would be partially compensated by atmospheric feedbacks. Thus, to support more effective climate mitigation policies, a more comprehensive assessment, including the biophysical effects of bioenergy cultivation, is highly recommended.

摘要

生物能源碳捕获与封存(BECCS)被认为是从大气中去除二氧化碳的关键技术。然而,大规模的生物能源作物种植会导致土地覆盖的变化,并对气候产生生物物理效应,改变地球的水循环并重新调整能量预算。在这里,我们使用一个具有显式高蒸腾木质(例如桉树)和低蒸腾草本(例如柳枝稷)生物能源作物的耦合大气-陆地模型,来研究大规模雨养生物能源作物种植对全球水循环和大气水分再循环的影响范围。我们发现,由于蒸散和内陆水汽平流增强,BECCS 情景下全球陆地降水增加。尽管蒸散增强,但由于降水增加和径流量减少,土壤湿度仅略有下降。我们的结果表明,在全球范围内,生物能源作物生长的耗水量将部分被大气反馈所补偿。因此,为了支持更有效的气候缓解政策,强烈建议进行更全面的评估,包括生物能源种植的生物物理效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8203/10336109/bf4317089229/41467_2023_39803_Fig1_HTML.jpg

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