Climate warming over 1961–2019 and impacts on permafrost zonation in Northeast China

被引:0
|
作者
Xiaoying Li
Huijun Jin
Long Sun
Hongwei Wang
Ruixia He
Yadong Huang
Xiaoli Chang
机构
[1] Northeast Forestry University,Key Laboratory of Sustainable Forest Ecosystem Management, Ministry of Education, School of Forestry
[2] Northeast China Observatory and Research Station of Permafrost Geo-Environment-Ministry of Education,School of Civil Engineering
[3] Institute of Cold-Regions Engineering Science and Technology,Da
[4] Northeast Forestry University,Xing’anling Observatory and Research Station of Permafrost Engineering and Environment and State Key Laboratory of Frozen Soils Engineering
[5] Northwest Institute of Eco-Environment and Resources,School of Resource and Environmental and Safety Engineering
[6] Chinese Academy of Sciences,undefined
[7] Hunan University of Science and Technology,undefined
来源
关键词
Climate warming; Permafrost zonation; Southern limit of latitudinal permafrost; Regional differentiation; Mean annual air temperature; Mean annual ground surface temperature;
D O I
暂无
中图分类号
学科分类号
摘要
In boreal forest ecosystems, permafrost and forest types are mutually interdependent; permafrost degradation impacts forest ecosystem structure and functions. The Xing’an permafrost in Northeast China is on the southern margin of the Eastern Asia latitudinal permafrost body. Under a warming climate, permafrost undergoes rapid and extensive degradation. In this study, the frost-number (Fn) model based on air temperatures and ground surface temperatures was used to predict the distribution of the Xing’an permafrost, and, temporal and spatial changes in air and ground-surface temperatures from 1961 to 2019 are analyzed. The results show that Northeast China has experienced a rapid and substantial climate warming over the past 60 years. The rises in mean annual air and mean annual ground-surface temperatures were higher in permafrost zones than those in the seasonal frost zone. The frost numbers of air and ground-surface temperatures were calculated for determining the southern limit of latitudinal permafrost and for permafrost zonation. The southern limits of discontinuous permafrost, sporadic permafrost, and latitudinal permafrost moved northward significantly. According to the air-temperature frost-number criteria for permafrost zoning, compared with that in the 1960s, the extent of Xing’an permafrost in Northeast China had decreased by 40.6% by the 2010s. With an average rate of increase in mean annual air temperatures at 0.03 °C a−1, the extent of permafrost in Northeast China will decrease to 26.42 × 104 by 2020, 14.69 × 104 by 2040 and to 11.24 × 104 km2 by 2050. According to the ground-surface temperature frost-number criteria, the southern limit of latitudinal permafrost was at the 0.463. From the 1960s to the 2010s, the extent of latitudinal permafrost declined significantly. Due to the nature of the ecosystem-protected Xing’an-Baikal permafrost, management and protection (e.g., more prudent and effective forest fire management and proper logging of forests) of the Xing’an permafrost eco-environment should be strengthened.
引用
收藏
页码:767 / 788
页数:21
相关论文
共 50 条
  • [41] Climate warming and permafrost thaw in the Russian Arctic: potential economic impacts on public infrastructure by 2050
    Vladimir P. Melnikov
    Victor I. Osipov
    Anatoly V. Brouchkov
    Arina A. Falaleeva
    Svetlana V. Badina
    Mikhail N. Zheleznyak
    Marat R. Sadurtdinov
    Nikolay A. Ostrakov
    Dmitry S. Drozdov
    Alexei B. Osokin
    Dmitry O. Sergeev
    Vladimir A. Dubrovin
    Roman Yu. Fedorov
    [J]. Natural Hazards, 2022, 112 : 231 - 251
  • [42] Disequilibrium response of permafrost thaw to climate warming in Canada over 1850-2100
    Zhang, Yu
    Chen, Wenjun
    Riseborough, Daniel W.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2008, 35 (02)
  • [43] Continued Warming of the Permafrost Regions Over the Northern Hemisphere Under Future Climate Change
    Hu, Guojie
    Zhao, Lin
    Wu, Tonghua
    Wu, Xiaodong
    Park, Hotaek
    Li, Ren
    Zhu, Xiaofan
    Ni, Jie
    Zou, Defu
    Hao, Junming
    Li, Wangping
    [J]. EARTHS FUTURE, 2022, 10 (09)
  • [44] Late-Holocene ecosystem dynamics and climate sensitivity of a permafrost peatland in Northeast China
    Xia, Yingfan
    Yang, Zili
    Sun, Jingjing
    Xia, Zhengyu
    Yu, Zicheng
    [J]. QUATERNARY SCIENCE REVIEWS, 2024, 324
  • [45] Prolonged dry episodes over Northeast China during the period 1961–2012
    Qinqin Kong
    Quansheng Ge
    Jingyun Zheng
    Jianchao Xi
    [J]. Theoretical and Applied Climatology, 2015, 122 : 711 - 719
  • [46] Quantitative relationships between precipitation and temperature over Northeast China, 1961–2010
    Haibo Du
    Zhengfang Wu
    Yinghua Jin
    Shengwei Zong
    Xiangjun Meng
    [J]. Theoretical and Applied Climatology, 2013, 113 : 659 - 670
  • [47] The Climate Characteristics of the Northeast China Cold Vortex against the Background of Global Warming
    Fang, Yihe
    Hua, Jingjing
    Yu, Yiqiu
    Lin, Yitong
    Zhao, Chunyu
    [J]. SUSTAINABILITY, 2022, 14 (15)
  • [48] Response of maize phenology to climate warming in Northeast China between 1990 and 2012
    Li, Zhengguo
    Yang, Peng
    Tang, Huajun
    Wu, Wenbin
    Yin, He
    Liu, Zhenhuan
    Zhang, Li
    [J]. REGIONAL ENVIRONMENTAL CHANGE, 2014, 14 (01) : 39 - 48
  • [49] Dynamics of the vegetation eco-boundary under climate warming in Northeast China
    邹春静
    韩士杰
    周玉梅
    张军辉
    王琛瑞
    [J]. Journal of Forestry Research, 2000, (03) : 191 - 197
  • [50] Impacts of climate warming on Alpine lake biota over the past decade
    Weckstrom, K.
    Weckstrom, J.
    Huber, K.
    Kamenik, C.
    Schmidt, R.
    Salvenmoser, W.
    Rieradevall, M.
    Weisse, T.
    Psenner, R.
    Kurmayer, R.
    [J]. ARCTIC ANTARCTIC AND ALPINE RESEARCH, 2016, 48 (02) : 361 - 376