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首页> 外文期刊>Theoretical and applied climatology >The freeze/thaw process and the surface energy budget of the seasonally frozen ground in the source region of the Yellow River
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The freeze/thaw process and the surface energy budget of the seasonally frozen ground in the source region of the Yellow River

机译:冻结/解冻过程和黄河源区季节性冻结地面的表面能预算

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摘要

The freeze/thaw process and the surface energy budget of the seasonally frozen ground in the source region of the Yellow River were investigated by using observed soil temperature and moisture and the energy flux from May 12, 2014, to May 11, 2015. Compared with the Maduo site, the starting date of the freezing process was later and the freezing depth was shallower at Maqu site. The maximum frozen depth was about 320 cm at Maduo site and 90 cm at Maqu site. The soil temperature of Maqu site was higher than of Maduo site due to lower latitude and altitude. The soil was the driest under the depth of 40 cm and 80 cm at Maduo and Maqu sites, respectively. The diurnal amplitudes of soil temperature of Maduo site were larger than of Maqu site at four freeze/thaw stages; the amplitudes were the largest in the completely thawed stage (9.19 degrees C and 4.35 degrees C) and minimal in the freezing stage (1.23 degrees C and 0.47 degrees C). The diurnal amplitudes of soil moisture of Maqu site were greater than of Maduo site at all stages. The net radiation Rn's seasonal change was hardly influenced by the freeze/thaw process. The mean ground heat flux (G(0)) was negative during the freezing and completely frozen stage and positive during the thawing and completely thawed stage. During the completely thawed and frozen stages, the latent heat flux (LE) and sensible heat flux (H) predominated in the surface energy distribution, respectively. Overall, the variations of fluxes were affected by both the monsoon and freeze/thaw process of the soil layer in seasonally frozen region. The freeze/thaw process had a significant effect on the diurnal change of G(0) during the freezing stage. The annual energy closure status of Maduo and Maqu sites was 0.77 and 0.58, respectively. The energy closure status was the highest during the completely thawed stage at Maduo site and during the thawing stage at Maqu site and lowest during the freezing stage among the four stages, due to the snow cover's impact. Overall, the freeze/thaw process and the high albedo caused by snow cover had effects on the energy closure status.
机译:通过在2015年5月12日至2015年5月11日,通过观察到的土壤温度和水分和能量通量研究了黄河源区季节性冻结地区的冻融过程和表面能预算。与MADUO网站,冻结过程的起始日期后来,静音深度较浅在MAQU网站较浅。 MADUO网站的最大冻结深度约为320厘米,在MAQU遗址90厘米。由于纬度和高度较低,MAQU遗址的土壤温度高于Maduo位点。土壤是在Maduo和Maqu遗址40厘米和80厘米的深度下最干燥的。在四个冻融/解冻阶段的Maduo位点的土壤温度的昼夜幅度大于Maqu遗址;幅度在完全解冻的阶段(9.19℃和4.35℃)中最大,冷冻阶段(1.23℃和0.47℃)最小。 MAQU景区的昼夜巨大幅度大于所有阶段的Maduo位点。净辐射RN的季节变化几乎不受冻结/解冻过程的影响。平均接地热通量(G(0))在冷冻期间为阴性,并且在解冻和完全解冻阶段期间完全冷冻阶段和阳性。在完全解冻和冷冻阶段,分别在表面能量分布中占主导地位的潜热通量(LE)和明智的热通量(H)。总体而言,助焊剂的变化受季节性冷冻区域中土壤层的季风和冷冻/解冻过程的影响。冷冻/解冻过程对冷冻阶段期间G(0)的昼夜变化具有显着影响。马上和MAQU站点的年度能源关闭状况分别为0.77和0.58。由于雪覆盖的影响,能源关闭状态在Maduo站点的完全解冻阶段和Maqu遗址的解冻阶段,并且在四个阶段的冰冻阶段中最低的状态下最高。总体而言,冻结/解冻过程和雪覆盖引起的高玻璃对能量闭合状态影响。

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  • 来源
    《Theoretical and applied climatology》 |2019年第4期|1631-1646|共16页
  • 作者单位

    Chinese Acad Sci Northwest Inst Ecoenvironm & Resources Key Lab Land Surface Proc & Climate Change Cold & Lanzhou 730000 Gansu Peoples R China|Univ Chinese Acad Sci Beijing 100049 Peoples R China;

    Chinese Acad Sci Northwest Inst Ecoenvironm & Resources Key Lab Land Surface Proc & Climate Change Cold & Lanzhou 730000 Gansu Peoples R China;

    Chinese Acad Sci Northwest Inst Ecoenvironm & Resources Key Lab Land Surface Proc & Climate Change Cold & Lanzhou 730000 Gansu Peoples R China;

    Chinese Acad Sci Northwest Inst Ecoenvironm & Resources Key Lab Land Surface Proc & Climate Change Cold & Lanzhou 730000 Gansu Peoples R China;

    Univ Saskatchewan Global Inst Water Secur Saskatoon SK S7N 3H5 Canada;

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