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5 期 曹晓云等:近40年青藏高原雪深变化及对气候变化的响应分析 1143
drology, 620: 129438. DOI: 10. 1016/j. jhydrol. 2023. 129438. Environment Data Center. DOI: 10. 11888/Geogra. tpdc. 270194.
Guo D L, Pepin N, Yang K, et al, 2021. Local changes in snow 黄嘉佑, 李庆祥, 2015. 气象数据统计分析方法[M]. 北京: 气象出
depth dominate the evolving pattern of elevation-dependent warm‐ 版社 . Huang J Y, Li Q X, 2015. Statistical analysis methods for
ing on the Tibetan Plateau[J]. Science Bulletin, 66(11): 1146- meteorological data[M]. Beijing: China Meteorological Press.
1150. DOI: 10. 1016/j. scib. 2021. 02. 013. 黄晓东, 马英, 李雨馨, 等, 2023. 1980-2020 年青藏高原积雪时空
Guo D L, Sun J Q, Yang K, et al, 2019. Revisiting recent elevation- 变化特征[J]. 冰川冻土, 45(2): 423-434. DOI: 10. 7522/j.
dependent warming on the Tibetan Plateau using satellite-based issn. 1000-0240. 2023. 0032. Huang X D, Ma Y, Li Y X, et al,
data sets[J]. Journal of Geophysical Research, D. Atmospheres: 2023. Spatiotemporal variation characteristics of snow cover over
124(15): 8511-8521. DOI: 10. 1029/2019JD030666. the Tibetan Plateau from 1980 to 2020[J]. Journal of Glaciology
Immerzeel W W, Van Beek L P H, Bierkens M F P, 2010. Climate and Geocryology, 45(2): 423-434. DOI: 10. 7522/j. issn. 1000-
change will affect the Asian water tower[J]s. Science, 328, 0240. 2023. 0032.
1382-1385. DOI: 10. 1126/science. 1183188. 雷润芝, 余晔, 周国兵, 等, 2023. 1984-2020 年青藏高原感热通量
Kang S C, Xu Y W, You Q L, et al, 2010. Review of climate and 长期变化趋势分析[J]. 高原气象, 42(4): 833-847. Lei R Z,
cryospheric change in the Tibetan Plateau[J]. Environmental Re‐
Yu Y, Zhou G B, et al, 2023. Long-term variation of sensible
search Letters, 5(1): 15101. DOI: 10. 1088/1748-9326/5/1/
heat flux over the Qinghai-Xizang Plateau from 1984 to 2020[J].
015101.
Plateau Meteorology, 42(4): 833-847. DOI: 10. 7522/j. issn.
Ma Q Q, Keyimu M D, Li X Y, et al, 2023. Climate and elevation
1000-0534. 2023. 00032.
control snow depth and snow phenology on the Tibetan Plateau
刘杰, 张丽娟, 黄玉桃, 等, 2024. 1961-2020 年黑龙江省最大雪深
[J]. Journal of Hydrology, 617: 128938. DOI: 10. 1016/j. jhy‐
时空变化及其影响因素分析[J]. 冰川冻土, 46(3): 861-875.
drol. 2022. 128938.
DOI: 10. 7522/j. issn. 1000-0240. 2024. 0069. Liu J, Zhang L J,
Ma Y, Huang X D, Yang X L, et al, 2023. Mapping snow depth dis‐
Huang Y T, et al, 2024. Spatial and temporal variation of maxi‐
tribution from 1980 to 2020 on the Tibetan Plateau using multi-
mum snow depth and its influencing factors in Heilongjiang Prov‐
source remote sensing data and downscaling techniques[J]. Jour‐
ince from 1961 to 2020[J]. Journal of Glaciology and Geocryolo‐
nal of Photogrammetry and Remote Sensing, 205: 246-262.
gy, 46(3): 861-875. DOI: 10. 7522/j. issn. 1000-0240. 2024.
DOI: 10. 1016/j. isprsjprs. 2023. 10. 012.
0069.
You Q L, Chen D L, Wu F Y, et al, 2020. Elevation dependent warm‐
刘一静, 孙燕华, 钟歆玥, 等, 2020. 从第三极到北极: 积雪变化研
ing over the Tibetan Plateau: patterns, mechanisms and perspec‐
究进展[J]. 冰川冻土, 42(1): 140-156. DOI: 10. 7522/j. issn.
tives[J]. Earth-Science Reviews, 210: 103349. DOI: 10. 1016/
1000-0240. 2020. 0007. Liu Y J, Sun Y H, Zhong X Y, et al,
j. earscirev. 2020. 103349.
2020. Changes of snow cover in the Third Pole and the Arctic[J].
保云涛, 2019. 青藏高原积雪时空变化特征及其年际变率成因探讨
Journal of Glaciology and Geocryology, 42(1): 140-156. DOI:
[D]. 南京: 南京信息工程大学 . Bao Y T, 2019. Spatial-tempo‐
10. 7522/j. issn. 1000-0240. 2020. 0007.
ral characteristics of the snow depth over the Tibetan Plateau and
李双行, 王慧, 李栋梁, 等, 2024. 青藏高原中东部暖季极端降水的
the cause of its interannual variability[D]. Nanjing: Nanjing Uni‐
区域特征及其典型环流[J]. 高原气象, 43(6): 1364-1379. Li
versity of Information Science and Technology.
S X, Wang H, Li D L, et al, 2024. Regional characteristics and
曹晓云, 肖建设, 郝晓华, 等, 2022. 2001-2020 年三江源地区积雪
typical circulation of extreme precipitation in the warm season
日数变化及地形分异[J]. 干旱区地理, 45(5): 1370-1380.
over the central and eastern Qinghai-Xizang Plateau[J]. Plateau
DOI: 10. 12118/j. issn. 1000-6060. 2021. 599. Cao X Y, Xiao J
Meteorology, 43(6): 1364-1379. DOI: 10. 7522/j. issn. 1000-
S, Hao X H, et al, 2022. Variation of snow cover days and topo‐
0534. 2024. 00030.
graphic differentiation in Sanjiangyuan area from 2001 to 2020
[J]. Arid Land Geography, 45(5): 1370-1380. DOI: 10. 12118/ 李延, 赵瑞瑜, 陈斌, 2024. 青藏高原冬春多源积雪资料年际变化
尺度上的适用性分析[J]. 高原气象, 43(2): 277-292. Li Y,
j. issn. 1000-6060. 2021. 599.
车涛, 郝晓华, 戴礼云, 等, 2019. 青藏高原积雪变化及其影响[J]. Zhao R Y, Chen B, 2024. Applicability of multi-source winter-
中国科学院院刊, 34(11): 1247-1253. DOI: 10. 16418/j. issn. spring snow cover data over the Qinghai-Xizang (Tibetan) Pla‐
1000-3045. 2019. 11. 007. Che T, Hao X H, Dai L Y, et al, teau on the Scale of Interannual Variation[J]. Plateau Meteorolo‐
2019. Snow cover variation and its impacts over the Qinghai- gy, 43(2): 277-292. DOI: 10. 7522/j. issn. 1000-0534. 2023.
Tibet Plateau[J]. Bulletin of Chinese Academy of Sciences, 34 00057.
(11): 1247-1253. DOI: 10. 16418/j. issn. 1000-3045. 2019. 阳坤, 姜尧志, 唐文君, 等, 2023. 第三极地区长时间序列高分辨率
11. 007. 地面气象要素驱动数据集(TPMFD, 1979-2022)[Z]. 国家青
车涛, 戴礼云, 李新, 2015. 中国雪深长时间序列数据集(1979- 藏高原科学数据中心 . DOI: 10. 11888/Atmos. tpdc. 300398.
2020)[Z]. 时空三极环境大数据平台 . DOI: 10. 11888/Geogra. Yang K, Jiang Y Z, Tang W J, et al, 2023. A high-resolution
tpdc. 270194. Che T, Dai L Y, Li X, 2015. Long-term series of near-surface meteorological forcing dataset for the Third Pole re‐
daily snow depth dataset in China(1979-2020)[Z]. Third Pole gion (TPMFD, 1979-2022)[Z]. National Tibetan Plateau /

