Surface and sub-surface drivers of autumn temperature increase over Eurasian permafrost

被引:0
|
作者
Daniel J. Vecellio
Oliver W. Frauenfeld
机构
[1] Texas A&M University,Climate Science Lab, Department of Geography
来源
Climatic Change | 2022年 / 172卷
关键词
Permafrost degradation; Surface energy budget; Thermodynamics; Climate change; Community Earth System Model; Large ensemble;
D O I
暂无
中图分类号
学科分类号
摘要
While most Arctic amplification research is focused on sea ice reduction and its feedbacks onto the climate system, the impacts of permafrost degradation in high latitudes and subsequent land–atmosphere interactions potentially resulting in terrestrial-based amplification are still unclear. Previous work has shown that thermodynamics plays a large part in surface air temperature increases over continuous and discontinuous permafrost at the end of the lengthening warm season. Here, a novel information flow methodology is applied to determine the specific land surface drivers of autumn surface air temperatures over different frozen ground regions in Eurasia. The influences of a changing surface energy balance are particularly apparent in the continuous and discontinuous permafrost regions. There, autumn surface air temperatures transition from being driven by summer and autumn sensible heat flux in the late twentieth century to a combination of latent and ground heat flux as the twenty-first century progresses. Changing seasonal snow patterns aid this transition, whereby continued thermodynamically influenced warming initially occurs through early-year insulation and subsurface hydrothermal heat transport. Later in the twenty-first century, a likely switch to late-season soil heat gain due to direct atmospheric exposure occurs as less snow remains in autumn. This role of evolving surface-atmosphere energy exchange reinforces the importance of the terrestrial contribution to Arctic amplification, as the high latitudes become a hot spot for increasing land–atmosphere interactions.
引用
收藏
相关论文
共 50 条
  • [31] SUB-SURFACE TEMPERATURES ON THE MOON - REPLY
    FREMLIN, JH
    NATURE, 1959, 183 (4671) : 1317 - 1318
  • [32] Sub-surface heating at Oakthorpe village
    Drake, D.
    Mining Engineer London, 1988, 148 (326): : 227 - 235
  • [33] Sub-surface mechanical properties and sub-surface creep behavior of wood-plastic composites reinforced by organoclay
    Yadav, Sumit Manohar
    Bin Yusoh, Kamal
    SCIENCE AND ENGINEERING OF COMPOSITE MATERIALS, 2019, 26 (01) : 114 - 121
  • [34] Sub-surface injection of liquid waste
    Aguas, PMP
    Godwin, R
    FERTILIZER RESEARCH, 1996, 43 (1-3): : 157 - 163
  • [35] SUB-SURFACE DEGRADATION OF COMPOSITES INVIVO
    MAIR, LH
    JOURNAL OF DENTAL RESEARCH, 1989, 68 (04) : 574 - 574
  • [36] Innovative Techniques for Sub-surface Investigations
    Olmi, R.
    Priori, S.
    Capitani, D.
    Proietti, N.
    Capineri, L.
    Falorni, P.
    Negrotti, R.
    Riminesi, C.
    MATERIALS EVALUATION, 2011, 69 (01) : 89 - 96
  • [37] Sub-surface Cutting for Rapid Prototyping
    Chen, Yonghua
    Lu, Jianan
    ADVANCED MECHANICAL DESIGN, PTS 1-3, 2012, 479-481 : 561 - 564
  • [38] Sub-surface location: Techniques and equipment
    Sherbakov, GN
    Tkach, VN
    Tkachev, DV
    DETECTION OF BULK EXPLOSIVES: ADVANCED TECHNIQUES AGAINST TERRORISM, 2004, 138 : 155 - 160
  • [39] Cutting temperature and its effect to sub-surface damage in diamond turning
    Horio, K
    Kasai, T
    Sekiguchi, K
    PROCEEDINGS OF THE TWELFTH ANNUAL MEETING OF THE AMERICAN SOCIETY FOR PRECISION ENGINEERING, 1997, : 199 - 202
  • [40] Surface roughness and sub-surface deformation measurements in machining of niobium
    Olsson, Mike
    Persson, Henrik
    Bushlya, Volodymyr
    Stahl, Jan-Eric
    4TH CIRP CONFERENCE ON SURFACE INTEGRITY (CSI 2018), 2018, 71 : 413 - 417