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tures in the last 100 years over China[J]. Acta Meteorologica Sini‐ es analysis[J]. Transactions of the Chinese Society of Agricultur‐
ca, 53(4): 431-439. DOI: 10. 11676/qxxb1995. 049. al Engineering, 34(2): 265-271. DOI: 10. 11975/j. issn. 1002-
苏东生, 胡秀清, 文莉娟, 等, 2018. 青海湖热力状况对气候变化响 6819. 2018. 02. 036.
应的数值研究[J]. 高原气象, 37(2): 394-405. DOI: 10. 7522/ 肖薇, 符靖茹, 王伟, 等, 2017. 用稳定同位素方法估算大型浅水湖
j. issn. 1000-0534. 2017. 00069. Su D S, Hu X Q, Wen L J, et 泊蒸发量——以太湖为例[J]. 湖泊科学, 29(4): 1009-1017.
al, 2018. Simulation of the response of Qinghai Lake thermal con‐ DOI: 10. 18307/2017. 0425. Xiao W, Fu J R, Wang W, et al,
ditions to climate change[J]. Plateau Meteorology, 37(2): 394- 2017. Estimating evaporation over a large and shallow lake using
405. DOI: 10. 7522/j. issn. 1000-0534. 2017. 00069. stable isotopic method: a case study of Lake Taihu[J]. Journal of
田露, 郭伟, 倪向南, 等, 2023. 青海湖地区潜在蒸散发变化特征及 Lake Sciences, 29(4): 1009-1017. DOI: 10. 18307/2017. 0425.
影响因子分析[J]. 地球环境学报, 14(3): 328-338. DOI: 10. 徐华亭, 吴志勇, 陈瑞方, 等, 2024. 基于再分析降水资料的青藏高
7515/JEE222058. Tian L, Guo W, Ni X N, et al, 2023. Analysis 原典型流域径流模拟分析[J]. 水资源保护, 40(4): 92-98,
of potential evapotranspiration trends and its factors in Qinghai 147. DOI: 10. 3880/j. issn. 1004-6933. 2024. 04. 011. Xu H T,
Lake area[J]. Journal of Earth Environment, 14(3): 328-338. Wu Z Y, Chen R F, et al, 2024. Runoff simulation analysis of
DOI: 10. 7515/JEE222058. typical watershed in Tibetan Plateau based on reanalysis precipita‐
汪青雄, 肖红, 沈峰, 等, 2020. 陕西红碱淖湿地湖心岛生境修复与 tion data[J]. Water Resources Protection, 40(4): 92-98, 147.
遗鸥种群保护[J]. 湿地科学与管理, 16(2): 53-56. DOI: 10. DOI: 10. 3880/j. issn. 1004-6933. 2024. 04. 011.
3969/j. issn. 1673-3290. 2020. 02. 14. Wang Q X, Xiao H, Shen 杨亮彦, 孟婷婷, 武丹, 2021. 毛乌素沙地不同水面蒸发器折算系
F, et al, 2020. Habitat restoration of lake-center island and pro‐ 数研究[J]. 节水灌溉, (7): 55-59. Yang L Y, Meng T T, Wu
tection of breeding population of the relict gulls in Hongjiannao D, 2021. Study on conversion coefficient of different water sur‐
wetland in Shaanxi[J]. Wetland Science & Management, 16(2): face evaporators in mu us sandy land[J]. Water Saving Irriga‐
53-56. DOI: 10. 3969/j. issn. 1673-3290. 2020. 02. 14. tion, (7): 55-59.
王晓燕, 尹德超, 王雨山, 等, 2023. 白洋淀湖泊原位蒸发试验研究 杨宇, 高峰, 马鑫, 等, 2024. 岱海水面蒸发与气象要素关系分析
[J]. 水文地质工程地质, 50(6): 204-212. DOI: 10. 16030/j. [J]. 广东水利水电, (6): 62-68. Yang Y, Gao F, Ma X, et al,
cnki. issn. 1000-3665. 202211030. Wang X Y, Yin D C, Wang Y 2024. Response analysis of water surface evaporation and meteo‐
S, et al, 2023. Research on in-situ test of lake evaporation in the rological elements of Daihai[J]. Guangdong Water Resources and
Baiyangdian Lake[J]. Hydrogeology & Engineering Geology, 50 Hydropower, (6): 62-68.
(6) : 204-212. DOI: 10. 16030/j. cnki. issn. 1000-3665. 赵宁, 马超, 杨亚莉, 2016. 1973-2013 年红碱淖水域水质变化及驱
202211030. 动 力 分 析[J]. 湖 泊 科 学 , 28(5): 982-993. DOI: 10. 18307/
王欣语, 高冰, 2021. 青海湖水量平衡变化及其对湖水位的影响研 2016. 0507. Zhao N, Ma C, Yang Y L, 2016. Water quality varia‐
究[J]. 水力发电学报, 40(10): 60-70. DOI: 10. 11660/slfdxb. tion of Lake Hongjiannao and its driving force analysis from 1973
20211006. Wang X Y, Gao B, 2021. Study of water balance to 2013[J]. Journal of Lake Sciences, 28(5): 982-993. DOI:
change and its influence on water stage in the Qinghai Lake[J]. 10. 18307/2016. 0507.
Journal of Hydroelectric Engineering, 40(10): 60-70. DOI: 10. 卓静, 朱延年, 王娟, 等, 2019. 红碱淖面积时空演变规律及保护措
11660/slfdxb. 20211006. 施成效[J]. 中国沙漠, 39(4): 195-203. DOI: 10. 7522/j. issn.
王莺, 闫正龙, 高凡, 2018. 1957-2015 年红碱淖湖水域面积时空变 1000-694X. 2019. 00052. Zhuo J, Zhu Y N, Wang J, et al,
化监测及驱动力分析[J]. 农业工程学报, 34(2): 265-271. 2019. Spatio-temporal change of water area in Hongjiannao Lake
DOI: 10. 11975/j. issn. 1002-6819. 2018. 02. 036. Wang Y, Yan and the effectiveness of protection measures[J]. Journal of Desert
Z L, Gao F, 2018. Monitoring spatio-temporal changes of water Research, 39(4): 195-203. DOI: 10. 7522/j. issn. 1000-694X.
area in Hongjiannao Lake from 1957 to 2015 and its driving forc‐ 2019. 00052.

