[1] 刘志伟, 李胜男, 张寅生, 等. 青藏高原高寒草原土壤蒸发特征及其影响因素 [J]. 干旱区资源与环境, 2019, 33(9): 87-93. doi: 10.13448/j.cnki.jalre.2019.270 LIU Z W, LI S N, ZHANG Y S, et al. Evaporation characteristics of alpine meadow in Tibetan Plateau and the influencing factors [J]. Journal of Arid Land Resources and Environment, 2019, 33(9): 87-93(in Chinese). doi: 10.13448/j.cnki.jalre.2019.270
[2] 赵林, 胡国杰, 邹德富, 等. 青藏高原多年冻土变化对水文过程的影响 [J]. 中国科学院院刊, 2019, 34(11): 1233-1246. doi: 10.16418/j.issn.1000-3045.2019.11.006 ZHAO L, HU G J, ZOU D F, et al. Permafrost changes and its effects on hydrological processes on Qinghai-Tibet plateau [J]. Bulletin of Chinese Academy of Sciences, 2019, 34(11): 1233-1246(in Chinese). doi: 10.16418/j.issn.1000-3045.2019.11.006
[3] RAN Y H, LI X, CHENG G D. Climate warming over the past half century has led to thermal degradation of permafrost on the Qinghai–Tibet Plateau [J]. The Cryosphere, 2018, 12(2): 595-608. doi: 10.5194/tc-12-595-2018
[4] 叶庆华, 程维明, 赵永利, 等. 青藏高原冰川变化遥感监测研究综述 [J]. 地球信息科学学报, 2016, 18(7): 920-930. YE Q H, CHENG W M, ZHAO Y L, et al. A review on the research of glacier changes on the Tibetan Plateau by remote sensing technologies [J]. Journal of Geo-Information Science, 2016, 18(7): 920-930(in Chinese).
[5] LI J L, WANG W, WANG D H, et al. Hydrochemical and stable isotope characteristics of lake water and groundwater in the beiluhe basin, Qinghai–Tibet plateau [J]. Water, 2020, 12(8): 2269. doi: 10.3390/w12082269
[6] QIN Y, LEI H W, YANG D W, et al. Long-term change in the depth of seasonally frozen ground and its ecohydrological impacts in the Qilian Mountains, northeastern Tibetan Plateau [J]. Journal of Hydrology, 2016, 542: 204-221. doi: 10.1016/j.jhydrol.2016.09.008
[7] 闫立娟, 郑绵平, 魏乐军. 近40年来青藏高原湖泊变迁及其对气候变化的响应 [J]. 地学前缘, 2016, 23(4): 310-323. doi: 10.13745/j.esf.2016.04.027 YAN L J, ZHENG M P, WEI L J. Change of the lakes in Tibetan Plateau and its response to climate in the past forty years [J]. Earth Science Frontiers, 2016, 23(4): 310-323(in Chinese). doi: 10.13745/j.esf.2016.04.027
[8] 刘宝康, 李林, 杜玉娥, 等. 青藏高原可可西里卓乃湖溃堤成因及其影响分析 [J]. 冰川冻土, 2016, 38(2): 305-311. LIU B K, LI L, DU Y, et al. Causes of the outburst of Zonag Lake in Hoh Xil, Tibetan Plateau, and its impact on surrounding environment [J]. Journal of Glaciology and Geocryology, 2016, 38(2): 305-311(in Chinese).
[9] 董梁. 可可西里地区盐湖下游河道冲刷演变数值模拟研究[D]. 西安: 西安理工大学, 2021. DONG L. Numerical simulation of formation and evolution of river channel downstream of the hoh-xil region[D]. Xi'an: Xi'an University of Technology, 2021(in Chinese).
[10] KAUSHIK H, RAMANATHAN A, SOHEB M, et al. Climate change-induced high-altitude lake: Hydrochemistry and area changes of a moraine-dammed lake in Leh-Ladakh [J]. Acta Geophysica, 2021, 69(6): 2377-2391. doi: 10.1007/s11600-021-00670-x
[11] 李承鼎, 康世昌, 刘勇勤, 等. 西藏湖泊水体中主要离子分布特征及其对区域气候变化的响应 [J]. 湖泊科学, 2016, 28(4): 743-754. doi: 10.18307/2016.0407 LI C D, KANG S C, LIU Y Q, et al. Distribution of major ions in waters and their response to regional climatic change in Tibetan lakes [J]. Journal of Lake Sciences, 2016, 28(4): 743-754(in Chinese). doi: 10.18307/2016.0407
[12] WANG Z Y, GAO Z J, WANG S, et al. Hydrochemistry characters and hydrochemical processes under the impact of anthropogenic activity in the Yiyuan City, Northern China [J]. Environmental Earth Sciences, 2021, 80(2): 1-19.
[13] KAPHLE B, WANG J B, KAI J L, et al. Hydrochemistry of Rara Lake: A Ramsar Lake from the southern slope of the central Himalayas, Nepal [J]. Journal of Mountain Science, 2021, 18(1): 141-158. doi: 10.1007/s11629-019-5910-0
[14] WALI S U, ALIAS N, HARUN S B. Reevaluating the hydrochemistry of groundwater in basement complex aquifers of Kaduna Basin, NW Nigeria using multivariate statistical analysis [J]. Environmental Earth Sciences, 2021, 80(5): 1-25.
[15] 陈强, 冶富寿, 陈育红, 等. 青藏高原可可西里盐湖水量平衡初步分析 [J]. 人民长江, 2020, 51(5): 94-98. doi: 10.16232/j.cnki.1001-4179.2020.05.016 CHEN Q, YE F S, CHEN Y H, et al. Preliminary study on water balance for Salt Lake in Hoh Xil, Tibetan Plateau [J]. Yangtze River, 2020, 51(5): 94-98(in Chinese). doi: 10.16232/j.cnki.1001-4179.2020.05.016
[16] 刘文惠, 谢昌卫, 王武, 等. 青藏高原可可西里盐湖水位上涨趋势及溃决风险分析 [J]. 冰川冻土, 2019, 41(6): 1467-1474. doi: 10.7522/j.issn.1000-0240.2019.0307 LIU W H, XIE C W, WANG W, et al. Analysis on expansion trend and outburst risk of the Yanhu Lake in Hoh Xil region, Qinghai-Tibet Plateau [J]. Journal of Glaciology and Geocryology, 2019, 41(6): 1467-1474(in Chinese). doi: 10.7522/j.issn.1000-0240.2019.0307
[17] 刘勇平, 周敬, 韩凤清, 等. 青海可可西里东部盐湖水化学及沉积特征初步研究 [J]. 盐湖研究, 2009, 17(3): 10-16. LIU Y P, ZHOU J, HAN F Q, et al. Preliminary study of hydrochemistry and sedimentary characteristics of salt lakes in eastern hoh xil region [J]. Journal of Salt Lake Research, 2009, 17(3): 10-16(in Chinese).
[18] 高翔, 彭强, 蔡敏, 等. 可可西里盐湖表层沉积物中粘土矿物的环境信息 [J]. 岩石矿物学杂志, 2012, 31(5): 736-744. doi: 10.3969/j.issn.1000-6524.2012.05.011 GAO X, PENG Q, CAI M, et al. Environmental information of clay minerals in salt lake surface sediments of Hol Xil area [J]. Acta Petrologica et Mineralogica, 2012, 31(5): 736-744(in Chinese). doi: 10.3969/j.issn.1000-6524.2012.05.011
[19] 白宇明, 王训练, 杨立超, 等. 青海可可西里东北部多秀湖和盐湖水化学特征研究 [J]. 盐湖研究, 2018, 26(2): 27-33. BAI Y M, WANG X L, YANG L C, et al. Hydrochemical characteristics of Duoxiu Lake and yanhu lake in northeastern hoh xil region, Qinghai [J]. Journal of Salt Lake Research, 2018, 26(2): 27-33(in Chinese).
[20] 郭彦威, 李颖智, 王秀明, 等. 青藏高原清水河流域水化学特征分析 [J]. 安全与环境工程, 2012, 19(4): 70-73. doi: 10.3969/j.issn.1671-1556.2012.04.017 GUO Y W, LI Y Z, WANG X M, et al. Hydrochemical characteristics of Qingshui River Basin in the Tibetan Plateau [J]. Safety and Environmental Engineering, 2012, 19(4): 70-73(in Chinese). doi: 10.3969/j.issn.1671-1556.2012.04.017
[21] 张丽, 陈永金, 刘加珍, 等. 东平湖水化学特征及成因分析 [J]. 环境化学, 2021, 40(5): 1490-1502. doi: 10.7524/j.issn.0254-6108.2019122502 ZHANG L, CHEN Y J, LIU J Z, et al. Analysis on hydrochemical characteristics and causes of Dongping Lake [J]. Environmental Chemistry, 2021, 40(5): 1490-1502(in Chinese). doi: 10.7524/j.issn.0254-6108.2019122502
[22] 屈伸, 史浙明, 梁向阳, 等. 大海则井田多层含水层系统水化学特征及演化规律 [J]. 环境化学, 2022, 41(8): 2614-2624. doi: 10.7524/j.issn.0254-6108.2021043003 QU S, SHI Z M, LIANG X Y, et al. Hydrochemical characteristics and evolution of groundwater in multilayer aquifer system in the Dahaize Coalfield [J]. Environmental Chemistry, 2022, 41(8): 2614-2624(in Chinese). doi: 10.7524/j.issn.0254-6108.2021043003
[23] 林永生, 裴建国, 杜毓超, 等. 基于多元统计方法的岩溶地下水化学特征及影响因素分析 [J]. 环境化学, 2016, 35(11): 2394-2401. doi: 10.7524/j.issn.0254-6108.2016.11.2016032801 LIN Y S, PEI J G, DU Y C, et al. Hydrochemical characteristics of Karst groundwater and their influencing factors based on multiple statistical analysis [J]. Environmental Chemistry, 2016, 35(11): 2394-2401(in Chinese). doi: 10.7524/j.issn.0254-6108.2016.11.2016032801
[24] XIANG J, ZHOU J J, YANG J C, et al. Applying multivariate statistics for identification of groundwater chemistry and qualities in the Sugan Lake Basin, Northern Qinghai-Tibet Plateau, China [J]. Journal of Mountain Science, 2020, 17(2): 448-463. doi: 10.1007/s11629-019-5660-z
[25] 杜丁丁. 中国西部地区湖泊碳库效应的影响因素及评价[D]. 兰州: 兰州大学, 2018. DU D D. The influence factors and evalution of 14C reservoir effects of lakes in the Western China[D]. Lanzhou: Lanzhou University, 2018(in Chinese).
[26] 郑喜玉. 中国盐湖志[M]. 北京: 科学出版社, 2002. ZHENG X Y. China Salt Lake Chronicle [M]. Beijing: Science Press, 2002(in Chinese).
[27] 李颖智, 郭彦威, 耿昕, 等. 青藏高原不冻泉地区地下水分布特征 [J]. 水资源保护, 2013, 29(3): 10-14. doi: 10.3969/j.issn.1004-6933.2013.03.003 LI Y Z, GUO Y W, GENG X, et al. Distribution characteristics of groundwater in non-freezing spring area on Tibetan Plateau [J]. Water Resources Protection, 2013, 29(3): 10-14(in Chinese). doi: 10.3969/j.issn.1004-6933.2013.03.003
[28] 汤欢. 聚类分析的新方法研究[D]. 昆明: 云南师范大学, 2020. TANG H. Research on new methods of clustering analysis[D]. Kunming: Yunnan Normal University, 2020(in Chinese).
[29] YADAV A, NANDA A, SAHU B L, et al. Groundwater hydrochemistry of rajnandgaon district, chhattisgarh, central India [J]. Groundwater for Sustainable Development, 2020, 11: 100352. doi: 10.1016/j.gsd.2020.100352
[30] GAO Z Y, NIU F J, LIN Z J. Effects of permafrost degradation on thermokarst lake hydrochemistry in the Qinghai-Tibet Plateau, China [J]. Hydrological Processes, 2020, 34(26): 5659-5673. doi: 10.1002/hyp.13987
[31] ZHAO G, LI W, LI F, et al. Hydrochemistry of waters in snowpacks, lakes and streams of Mt. Dagu, eastern of Tibet Plateau [J]. The Science of the Total Environment, 2018, 610/611: 641-650. doi: 10.1016/j.scitotenv.2017.08.088
[32] CEJUDO E, ACOSTA-GONZÁLEZ G, ORTEGA-CAMACHO D, et al. Changes in the hydrochemistry of a karstic lake in yucatan, Mexico [J]. Environmental Earth Sciences, 2020, 79(5): 1-13.