[1] |
阿布都米吉提·阿布力克木, 葛拥晓, 王亚俊, 等. 咸海的过去、 现在与未来[J]. 干旱区研究, 2019, 36(1):7-18.
|
|
[ Ablekim Abdimijit, Ge Yongxiao, Wang Yajun, et al. The past, present and feature of the Aral Sea[J]. Arid Zone Research, 2019, 36(1):7-18. ]
|
[2] |
杨雪雯, 王宁练, 陈安安, 等. 中亚干旱区咸海面积变化与人类活动及气候变化的关联研究[J]. 冰川冻土, 2020, 42(2):681-692.
|
|
[ Yang Xuewen, Wang Ninglian, Chen An’an, et al. The relationship between human activities, climate change and area variation of the Aral Sea in the arid Central Asia[J]. Journal of Glaciology and Geocryology, 2020, 42(2):681-692. ]
|
[3] |
姚俊强, 杨青, 毛炜峄, 等. 气候变化和人类活动对中亚地区水文环境的影响评估[J]. 冰川冻土, 2016, 38(1):222-230.
|
|
[ Yao Junqiang, Yang Qing, Mao Weiyi, et al. Evaluation of the impacts of climate change and human activities on the hydrological environment in Central Asia[J]. Journal of Glaciology and Geocryology, 2016, 38(1):222-230. ]
|
[4] |
Chen F H, Wang J S, Jin L Y, et al. Rapid warming in mid-latitude Central Asia for the past 100 years[J]. Frontiers of Earth Science in China, 2009, 3(1):42-50.
doi: 10.1007/s11707-009-0013-9
|
[5] |
龙爱华, 邓铭江, 谢蕾, 等. 气候变化下新疆及咸海流域河川径流演变及适应性对策分析[J]. 干旱区地理, 2012, 35(3):377-387.
|
|
[ Long Aihua, Deng Mingjiang, Xie Lei, et al. Exploring analysis on the adaptive countermeasures to water resources evolvement under the climate change in Xinjiang and Aral Sea Basin[J]. Arid Land Geography, 2012, 35(3):377-387. ]
|
[6] |
邓铭江, 龙爱华. 咸海流域水文水资源演变与咸海生态危机出路分析[J]. 冰川冻土, 2011, 33(6):1363-1375.
|
|
[ Deng Mingjiang, Long Aihua. Evolution of hydrologic and water resources and ecological crisis in the Aral Sea Basin[J]. Journal of Glaciology and Geocryology, 2011, 33(6):1363-1375. ]
|
[7] |
吴敬禄, 马龙, 吉力力·阿不都外力, 等. 中亚干旱区咸海的湖面变化及其环境效应[J]. 干旱区地理, 2009, 32(3):418-422.
|
|
[ Wu Jinglu, Ma Long, Abuduwaili Jilili, et al. Lake surface change of the Aral Sea and its environmental effects in the arid region of the Central Asia[J]. Arid Land Geography, 2009, 32(3):418-422. ]
|
[8] |
陈起川, 夏自强, 郭利丹, 等. 中亚湖泊地区降水量变化特征及趋势分析[J]. 水电能源科学, 2012, 30(6):13-16.
|
|
[ Chen Qichuan, Xia Ziqiang, Guo Lidan, et al. Variation characteristics and trend analysis of precipitation in Central Asia lakes zones[J]. Water Resources and Power, 2012, 30(6):13-16. ]
|
[9] |
Bai J, Chen X, Li J L, et al. Changes in the area of inland lakes in arid regions of Central Asia during the past 30 years[J]. Environmental Monitoring and Assessment, 2011, 178(1-4):247-256.
doi: 10.1007/s10661-010-1686-y
|
[10] |
成晨, 傅文学, 胡召玲, 等. 基于遥感技术的近30年中亚地区主要湖泊变化[J]. 国土资源遥感, 2015, 27(1):146-152.
|
|
[ Cheng Chen, Fu Wenxue, Hu Zhaoling, et al. Changes of major lakes in Central Asia over the past 30 years revealed by remote sensing technology[J]. Remote Sensing for Land and Resources, 2015, 27(1):146-152. ]
|
[11] |
Benduhn F, Renard P. A dynamic model of the Aral Sea water and salt balance[J]. Journal of Marine Systems, 2003, 47(1):35-50.
doi: 10.1016/j.jmarsys.2003.12.007
|
[12] |
Gaybullaev B, Chen S C, Gaybullaev G. The large Aral Sea water balance: A future prospective of the large Aral Sea depending on water volume alteration[J]. Carbonates and Evaporites, 2014, 29(2):211-219.
doi: 10.1007/s13146-013-0174-1
|
[13] |
Singh A, Seitz F, Schwatke C. Inter-annual water storage changes in the Aral Sea from multi-mission satellite altimetry, optical remote sensing, and GRACE satellite gravimetry[J]. Remote Sensing of Environmrnt, 2012, 123:187-195.
|
[14] |
Yang P, Chen Y N. An analysis of terrestrial water storage variations from GRACE and GLDAS: The Tianshan Mountains and its adjacent areas, Central Asia[J]. Quaternary International, 2015, 358:106-112.
doi: 10.1016/j.quaint.2014.09.077
|
[15] |
Wang F, Wang Z M, Yang H B, et al. Utilizing GRACE-based groundwater drought index for drought characterization and teleconnection factors analysis in the North China Plain[J]. Journal of Hydrology, 2020, 585:124849, doi: 10.1016/j.jhydrol.2020.124849.
doi: 10.1016/j.jhydrol.2020.124849
|
[16] |
Sun Z L, Long D, Yang W T, et al. Reconstruction of GRACE data on changes in total water storage over the global land surface and 60 basins[J]. Water Resources Research, 2020, 56(4):R026250, doi: 10.1029/2019WR026250.
|
[17] |
Deng Haijun, Chen Yaning, Li Yang. Glacier and snow variations and their impacts on regional water resources in mountains[J]. Journal of Geographical Sciences, 2019, 29(1):84-100.
doi: 10.1007/s11442-019-1585-2
|
[18] |
Hu Weijie, Liu Hailong, Bao Anming, et al. Influences of environmental changes on water storage variations in Central Asia[J]. Journal of Geographical Sciences, 2018, 28(7):985-1000.
doi: 10.1007/s11442-018-1517-6
|
[19] |
Lin M, Biswas A, Bennett E M. Spatio-temporal dynamics of groundwater storage changes in the Yellow River Basin[J]. Journal of Environmental Management, 2019, 235:84-95.
doi: S0301-4797(19)30016-7
pmid: 30677659
|
[20] |
Swenson S, Wahr J. Post-processing removal of correlated errors in GRACE data[J]. Geophysical Research Letters, 2006, 33(8):L025285, doi: 10.1029/2005GL025285.
|
[21] |
张园园. GRACE重力卫星的数据处理与应用[D]. 开封: 河南大学, 2017.
|
|
[ Zhang Yuanyuan. Data processing and application of GRACE gravity satellite[D]. Kaifeng: Henan University, 2017. ]
|
[22] |
Watkins M M, Wiese D N, Yuan D N, et al. Improved methods for observing Earth’s time variable mass distribution with GRACE using spherical cap mascons[J]. Journal of Geophysical Research: Soild Earth, 2015, 120(4):2648-2671.
|
[23] |
邹贤才, 金涛勇, 朱广彬. 卫星跟踪卫星技术反演局部地表物质迁移的MASCON方法研究[J]. 地球物理学报, 2016, 59(12):4623-4632.
|
|
[ Zou Xiancai, Jin Taoyong, Zhu Guangbin. Research on the MASCON method for the determination of local surface mass flux with satellite-satellite tracking technique[J]. Chinese Journal of Geophysics, 2016, 59(12):4623-4632. ]
|
[24] |
姚海娇, 周宏飞. 中亚五国咸海流域水资源策略的博弈分析[J]. 干旱区地理, 2013, 36(4):764-771.
|
|
[ Yao Haijiao, Zhou Hongfei. Game analysis of water resources strategy among the Central Asia countries around the Aral Sea Basin[J]. Arid Land Geography, 2013, 36(4):764-771. ]
|
[25] |
陈曦, 姜逢清, 王亚俊, 等. 亚洲中部干旱区生态地理格局研究[J]. 干旱区研究, 2013, 30(3):385-390.
|
|
[ Chen Xi, Jiang Fengqing, Wang Yajun, et al. Characteristics of the eco-geographical pattern in arid land of Central Asia[J]. Arid Zone Research, 2013, 30(3):385-390. ]
|
[26] |
田向荣, 王国义, 樊彦芳. 咸海流域跨界水合作历史、形势及思考[J]. 边界与海洋研究, 2017, 2(6):90-104.
|
|
[ Tian Xiangrong, Wang Guoyi, Fan Yanfang. Aral Sea Basin transboundary water cooperation: History, present situation and reflections[J]. Journal of Boundary and Ocean Studies, 2017, 2(6):90-104. ]
|
[27] |
陈桃, 包安明, 郭浩, 等. 中亚跨境流域生态脆弱性评价及其时空特征分析——以阿姆河流域为例[J]. 自然资源学报, 2019, 34(12):2643-2657.
|
|
[ Chen Tao, Bao Anming, Guo Hao, et al. Ecological vulnerability assessment for a transboundary basin in Central Asia and its spatiotemporal characteristics analysis: Taking Amu Darya River Basin as an example[J]. Journal of Natural Resources, 2019, 34(12):2643-2657. ]
|
[28] |
李爱华, 崔胜玉, 王红瑞, 等. 基于GRACE卫星时变重力场模型的黄河中游地区水储量变化研究[J]. 自然资源学报, 2017, 32(3):461-473.
|
|
[ Li Aihua, Cui Shengyu, Wang Hongrui, et al. Water storage changes in the middle reaches of the Yellow River Basin based on GRACE time variable gravitation model[J]. Journal of Natural Resources, 2017, 32(3):461-473. ]
|
[29] |
于延胜, 陈兴伟. 基于Mann-Kendall法的径流丰枯变化过程划分[J]. 水资源与水工程学报, 2013, 24(1):60-63.
|
|
[ Yu Yansheng, Chen Xingwei. Division of variation process of high and low runoff based on Mann-Kendall method[J]. Journal of Water Resources and Water Engineering, 2013, 24(1):60-63. ]
|