Arid Land Geography ›› 2026, Vol. 49 ›› Issue (3): 484-495.doi: 10.12118/j.issn.1000-6060.2025.281
• Climatology and Hydrology • Previous Articles Next Articles
ZHOU Lingmin(
), Yimuran KULUWAN, Yusufujiang RUSULI(
), WU Haizhi, Nazhakaiti NIJIATI
Received:2025-05-15
Revised:2025-08-25
Online:2026-03-25
Published:2026-03-24
Contact:
Yusufujiang RUSULI
E-mail:zhoulingmin@163.com;yusupjan@xjnu.edu.cn
ZHOU Lingmin, Yimuran KULUWAN, Yusufujiang RUSULI, WU Haizhi, Nazhakaiti NIJIATI. Spatiotemporal variations and influencing factors of lake ice phenology in large lakes of the arid region of northwest China[J].Arid Land Geography, 2026, 49(3): 484-495.
Tab. 1
Geographical characteristics of large lakes in the mid-latitude arid regions of northwest China"
| 湖泊名称 | 纬度/°N | 经度/°E | 海拔/m | 2020年面积/km2 | 最大水深/m | 盐度类型 |
|---|---|---|---|---|---|---|
| 赛里木湖 | 44.6 | 81.0 | 2072 | 461 | 92.0 | 咸水湖 |
| 艾比湖 | 44.9 | 82.6 | 189 | 1148 | 1.8 | 咸水湖 |
| 博斯腾湖 | 41.9 | 86.7 | 1048 | 1069 | 17.0 | 淡水湖 |
| 吉力湖 | 46.8 | 85.7 | 532 | 370 | 8.0 | 淡水湖 |
| 乌伦古湖 | 47.3 | 86.2 | 478 | 827 | 12.0 | 淡水湖 |
| 青海湖 | 36.8 | 100.2 | 3196 | 4543 | 32.8 | 咸水湖 |
| 哈拉湖 | 38.3 | 97.6 | 4076 | 588 | 68.0 | 咸水湖 |
| [1] | Guo L N, Wu Y H, Zheng H X, et al. Uncertainty and variation of remotely sensed lake ice phenology across the Tibetan Plateau[J]. Remote Sensing, 2018, 10(10): 1534, doi: 10.3390/rs10101534. |
| [2] |
Du J Y, Kimball J S, Duguay C R, et al. Satellite microwave assessment of northern hemisphere lake ice phenology from 2002 to 2015[J]. The Cryosphere, 2017, 11(1): 47-63.
doi: 10.5194/tc-11-47-2017 |
| [3] |
Hampton S E, Galloway A W, Powers S M, et al. Ecology under lake ice[J]. Ecology Letters, 2017, 20(1): 98-111.
doi: 10.1111/ele.12699 pmid: 27889953 |
| [4] |
Wang W, Lee X H, Xiao W, et al. Global lake evaporation accelerated by changes in surface energy allocation in a warmer climate[J]. Nature Geoscience, 2018, 11(6): 410-414.
doi: 10.1038/s41561-018-0114-8 |
| [5] |
Cooley S W. Global loss of lake water storage[J]. Science, 2023, 380(6646): 693, doi: 10.1126/science.adi0992.
pmid: 37200417 |
| [6] |
Lu J Y, Qiu Y B, Wang X X, et al. Constructing a dataset of classified drainage areas based on surface water-supply patterns in High Mountain Asia[J]. Big Earth Data, 2020, 4(3): 225-241.
doi: 10.1080/20964471.2020.1766180 |
| [7] |
Sharma S, Blagrave K, Magnuson J J, et al. Widespread loss of lake ice around the northern Hemisphere in a warming world[J]. Nature Climate Change, 2019, 9(3): 227-231.
doi: 10.1038/s41558-018-0393-5 |
| [8] |
Brown L C, Duguay C R. The response and role of ice cover in lake-climate interactions[J]. Progress in Physical Geography: Earth and Environment, 2010, 34(5): 671-704.
doi: 10.1177/0309133310375653 |
| [9] | Woolway I R, Kraemer M B, Lenters D J, et al. Global lake responses to climate change[J]. Nature Reviews Earth & Environment, 2020, 1(8): 388-403. |
| [10] | Leppäranta M. Freezing of lakes and the evolution of their ice cover[M]. Berlin: Springer Science & Business Media, 2014: 245-269. |
| [11] |
Sharma S, Blagrave K, Magnuson J, et al. Widespread loss of lake ice around the northern Hemisphere in a warming world[J]. Nature Climate Change, 2019, 9(3): 227-231.
doi: 10.1038/s41558-018-0393-5 |
| [12] |
赵明杰, 王宁练, 石晨烈, 等. 2000—2020年中亚大型湖泊湖冰物候时空变化[J]. 干旱区地理, 2024, 47(4): 561-575.
doi: 10.12118/j.issn.1000-6060.2023.200 |
|
[Zhao Mingjie, Wang Ninglian, Shi Chenlie, et al. Temporal and spatial changes of lake ice phenology in large lakes in Central Asia from 2000 to 2020[J]. Arid Land Geography, 2024, 47(4): 561-575.]
doi: 10.12118/j.issn.1000-6060.2023.200 |
|
| [13] |
唐鸿, 赵仪欣, 牛瑞佳, 等. 基于分析模型的青海湖近40年湖冰演变特征研究[J]. 高原气象, 2024, 43(5): 1152-1162.
doi: 10.7522/j.issn.1000-0534.2024.00015 |
|
[Tang Hong, Zhao Yixin, Niu Ruijia, et al. Study on the evolution characteristics of lake ice in Qinghai Lake in the past 40 years based on the analysis model[J]. Plateau Meteorology, 2024, 43(5): 1152-1162.]
doi: 10.7522/j.issn.1000-0534.2024.00015 |
|
| [14] | 邰雪楠, 王宁练, 吴玉伟, 等. 近20 a色林错湖冰物候变化特征及其影响因素[J]. 湖泊科学, 2022, 34(1): 334-348. |
|
[Tai Xuenan, Wang Ninglian, Wu Yuwei, et al. Lake ice phenology variations and influencing factors of Selin Co from 2000 to 2020[J]. Journal of Lake Sciences, 2022, 34(1): 334-348.]
doi: 10.18307/2022.0127 |
|
| [15] | Brown L C, Duguay C R. Modelling lake ice phenology with an examination of satellite-detected subgrid cell variability[J]. Advances in Meteorology, 2012, 2012: 529064, doi: 10.1155/2012/529064. |
| [16] | 金璐. 基于Sentinel-1 SAR数据的青藏高原湖冰冻融过程监测研究[D]. 合肥: 安徽建筑大学, 2024. |
| [Jin Lu. Monitoring the freeze-thaw process of Qinghai-Tibet Plateau lakes based on Sentinel-1 SAR data[D]. Hefei: Anhui Jianzhu University, 2024.] | |
| [17] | Kuluwan Y, Rusuli Y. Characteristics and correlation study of mountainous lake ice phenology changes in Xinjiang, China based on passive microwave remote sensing data[J]. Water, 2024, 16(21): 3059, doi: 10.3390/w16213059. |
| [18] | Kuluwan Y, Rusuli Y, Ainiwaer M. Monitoring of lake ice phenology changes in Bosten Lake based on Bayesian change detection algorithm and passive microwave remote sensing (PMRS) data[J]. Sensors, 2023, 23(24): 9852, doi: 10.3390/s23249852. |
| [19] | Wang Q, Wang J B, Guo J Y, et al. Lake ice extraction of Selin Co and its space-time distribution based on support vector machine[J]. Manned Spaceflight, 2019, 25(6): 789-798. |
| [20] | Yang X, Pavelsky T M, Bendezu L P, et al. Simple method to extract lake ice condition from landsat images[J]. IEEE Transactions on Geoscience and Remote Sensing, 2021, 60: 1-10. |
| [21] | Kuluwan Y, Rusuli Y, Ainiwaer M, et al. Comparative study on lake ice phenology changes and driving factors in large lakes of mid-latitude Xinjiang, China[J]. Journal of Environmental Management, 2025, 374: 123880, doi: 10.1016/j.jenvman.2024.123880. |
| [22] |
Qi M M, Yao X J, Li X F, et al. Spatial-temporal characteristics of ice phenology of Qinghai Lake from 2000 to 2016[J]. Acta Geographica Sinica, 2018, 73(5): 932-944.
doi: 10.11821/dlxb201805012 |
| [23] | Kropacek J, Chen F, Hoerz S, et al. Analysis of ice phenology of lakes on the Tibetan Plateau from MODIS data[J]. The Cryosphere Discussions, 2012, 7(1): 287-301. |
| [24] |
Yang Q, Song K S, Wen Z D, et al. Recent trends of ice phenology for eight large lakes using MODIS products in northeast China[J]. International Journal of Remote Sensing, 2019, 40(14): 5388-5410.
doi: 10.1080/01431161.2019.1579939 |
| [25] |
Cai Y, Ke C Q, Yao G H, et al. MODIS-observed variations of lake ice phenology in Xinjiang,China[J]. Climatic Change, 2020, 158(3-4): 575-592.
doi: 10.1007/s10584-019-02623-2 |
| [26] |
艾尔肯·图尔荪, 玉素甫江·如素力, 崔一爽, 等. 2000—2019年新疆大型湖泊湖冰物候时空变化特征[J]. 干旱区地理, 2022, 45(5): 1440-1449.
doi: 10.12118/j.issn.1000-6060.2021.513 |
| [Tursun Aiken, Rusuli Yusufujiang, Cui Yishuang, et al. Spatial and temporal variation characteristics of lake ice phenology in large lakes in Xinjiang from 2000 to 2019[J]. Arid Land Geography, 2022, 45(5): 1440-1449.] | |
| [27] |
Caldwell T J, Chandra S, Albright T P, et al. Drivers and projections of ice phenology in mountain lakes in the western United States[J]. Limnology and Oceanography, 2021, 66(3): 995-1008.
doi: 10.1002/lno.v66.3 |
| [28] |
勾鹏, 叶庆华, 魏秋方. 2000—2013年西藏纳木错湖冰变化及其影响因素[J]. 地理科学进展, 2015, 34(10): 1241-1249.
doi: 10.18306/dlkxjz.2015.10.004 |
|
[Gou Peng, Ye Qinghua, Wei Qiufang. Ice change and its influencing factors of Nam Co Lake in Xizang from 2000 to 2013[J]. Progress in Geography, 2015, 34(10): 1241-1249.]
doi: 10.18306/dlkxjz.2015.10.004 |
|
| [29] |
吴其慧, 李畅游, 孙标, 等. 1986—2017年呼伦湖湖冰物候特征变化[J]. 地理科学进展, 2019, 38(12): 1933-1943.
doi: 10.18306/dlkxjz.2019.12.009 |
|
[Wu Qihui, Li Changyou, Sun Biao, et al. Changes in ice phenology characteristics of Hulun Lake from 1986 to 2017[J]. Progress in Geography, 2019, 38(12): 1933-1943.]
doi: 10.18306/dlkxjz.2019.12.009 |
|
| [30] |
Noges P, Noges T. Weak trends in ice phenology of Estonian large lakes despite significant warming trends[J]. Hydrobiologia, 2014, 731(1): 5-18.
doi: 10.1007/s10750-013-1572-z |
| [31] |
Cai Y, Ke C Q, Li X G, et al. Variations of lake ice phenology on the Tibetan Plateau from 2001 to 2017 based on MODIS data[J]. Journal of Geophysical Research: Atmospheres, 2019, 124(2): 825-843.
doi: 10.1029/2018JD028993 |
| [32] | Guo L N, Wu Y H. Investigating lake ice phenology in Tibetan Plateau using satellite data[C]//Proceedings of the 2019 IEEE International Geoscience and Remote Sensing Symposium. Yokohama: IEEE, 2019: 4125-4128. |
| [33] | Brodzik M J, Long D G, Hardaman M A. Best practices in crafting the calibrated, enhanced-resolution passive-microwave EASE-Grid 2.0 brightness temperature earth system data record[J]. Remote Sensing, 2018, 10(11): 1793, doi: 10.3390/rs10111793. |
| [34] |
Huang X D, Deng J, Ma X F, et al. Spatiotemporal dynamics of snow cover based on multi-source remote sensing data in China[J]. The Cryosphere, 2016, 10(5): 2453-2463.
doi: 10.5194/tc-10-2453-2016 |
| [35] | Kendall M G. Rank correlation methods[M]. London: Charles Griffin, 1970. |
| [39] |
[Qin Qiyong, Li Xuemei, Zhang Bo, et al. Variation of ice phenology characteristics of Sayram Lake from 2000 to 2019[J]. Arid Land Geography, 2022, 45(1): 37-45.]
doi: 10.12118/j.issn.1000–6060.2021.029 |
| [36] |
Mann H B. Nonparametric tests against trend[J]. Econometrica, 1945, 13: 245-259.
doi: 10.2307/1907187 |
| [37] |
Srivastava M S, Solanky T K. Predicting multivariate response in linear regression model[J]. Communications in Statistics-Simulation and Computation, 2003, 32(2): 389-409.
doi: 10.1081/SAC-120017497 |
| [38] |
Varady N H, Pareek A, Eckhardt C M, et al. Multivariable regression: Understanding one of medicine’s most fundamental statistical tools[J]. Knee Surgery, Sports Traumatology, Arthroscopy, 2023, 31(1): 7-11.
doi: 10.1007/s00167-022-07215-9 |
| [39] |
秦启勇, 李雪梅, 张博, 等. 2000—2019年赛里木湖湖冰物候特征变化[J]. 干旱区地理, 2022, 45(1): 37-45.
doi: 10.12118/j.issn.1000–6060.2021.029 |
|
||
