Arid Zone Research ›› 2021, Vol. 38 ›› Issue (3): 704-713.doi: 10.13866/j.azr.2021.03.12
• Weather and Climate • Previous Articles Next Articles
BAO Guangyu1(),NIE Hong2,DAI Sheng3(),YAN Zhengning1,YANG Chunhua1,DAI Qingcuo1
Received:
2020-07-31
Revised:
2020-10-01
Online:
2021-05-15
Published:
2021-06-17
Contact:
Sheng DAI
E-mail:985022892@qq.com;842072303@qq.com
BAO Guangyu,NIE Hong,DAI Sheng,YAN Zhengning,YANG Chunhua,DAI Qingcuo. Research on effects of different precipitation magnitudes on runoff changes in the headwater region of the upper Yellow River[J].Arid Zone Research, 2021, 38(3): 704-713.
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Tab. 2
Climatic tendency rate and test table of average precipitation in the source region of the upper Yellow River from 1961 to 2019"
气象站点 | 降水量/mm | 距平/% | 倾向率/[mm·(10a)-1] | 显著性 | 显著性检验 | |
---|---|---|---|---|---|---|
1961—2000年 | 2001—2019年 | |||||
兴海 | 352.9 | 422.4 | 16.45 | 16.42 | 0.359 | 0.01 |
同德 | 423.7 | 487.2 | 13.03 | 13.17 | 0.251 | 0.05 |
泽库 | 468.3 | 525.2 | 10.83 | 13.93 | 0.301 | 0.01 |
玛多 | 311.8 | 360.7 | 13.55 | 16.21 | 0.416 | 0.01 |
玛沁 | 510.1 | 540.6 | 5.64 | 6.26 | 0.144 | - |
甘德 | 525.3 | 550.2 | 4.53 | 12.66 | 0.227 | 0.05 |
达日 | 547.6 | 584.1 | 6.25 | 9.24 | 0.218 | 0.05 |
河南 | 585.0 | 588.9 | 0.66 | 8.54 | 0.108 | - |
久治 | 747.5 | 758.1 | 1.39 | 0.82 | 0.014 | - |
班玛 | 666.6 | 654.2 | -1.90 | 3.06 | 0.064 | - |
玛曲 | 598.9 | 624.7 | 4.13 | 2.74 | 0.049 | - |
若尔盖 | 651.7 | 662.7 | 1.66 | 1.67 | 0.029 | - |
红原 | 758.5 | 762.7 | 0.5 | 5.94 | 0.097 | - |
黄河源区 | 548.8 | 578.6 | 5.1 | 7.57 | 0.209 | - |
Tab. 3
The climatic tendency rate and correlation test of precipitation at all levels in the headwater area of the upper Yellow River from 1961 to 2019"
站点 | 1961—2019年 | 2001—2019年 | |||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
≥5.0 mm | ≥10.0 mm | ≥25.0 mm | ≥5.0 mm | ≥10.0 mm | ≥25.0 mm | ||||||||
倾向率 | 显著性 | 倾向率 | 显著性 | 倾向率 | 显著性 | 倾向率 | 显著性 | 倾向率 | 显著性 | 倾向率 | 显著性 | ||
兴海 | 16.10 | 0.37*** | 12.50 | 0.36*** | 7.18 | 0.39*** | 44.86 | 0.30 | 36.35 | 0.29 | 11.92 | 0.15 | |
同德 | 12.90 | 0.25** | 11.42 | 0.28** | 3.68 | 0.18 | 113.05 | 0.61*** | 85.42 | 0.53** | 23.37 | 0.26 | |
泽库 | 13.14 | 0.29** | 11.89 | 0.30** | 4.50 | 0.29** | 20.57 | 0.17 | 16.71 | 0.15 | 8.21 | 0.17 | |
玛多 | 11.42 | 0.34*** | 3.89 | 0.15 | 1.09 | 0.10 | 34.12 | 0.36 | 21.75 | 0.31 | 13.51 | 0.33 | |
玛沁 | 5.28 | 0.13 | 0.10 | 0.00 | -1.10 | -0.06 | 37.76 | 0.28 | 5.32 | 0.04 | 9.40 | 0.15 | |
甘德 | 11.23 | 0.22* | 5.92 | 0.13 | 0.98 | 0.06 | 35.86 | 0.31 | 8.25 | 0.08 | 1.55 | 0.04 | |
达日 | 6.89 | 0.16 | 2.16 | 0.06 | -1.20 | -0.07 | 40.41 | 0.35 | 2.85 | 0.03 | -1.13 | -0.03 | |
河南 | 8.46 | 0.11 | 0.23 | 0.00 | 9.95 | 0.24* | 33.06 | 0.20 | 9.11 | 0.05 | 18.67 | 0.19 | |
久治 | -2.80 | -0.05 | -7.51 | -0.13 | -7.37 | -0.27** | 65.09 | 0.39* | 57.18 | 0.41* | -1.82 | -0.03 | |
班玛 | 1.80 | 0.04 | 0.71 | 0.02 | 1.26 | 0.06 | 59.79 | 0.43* | 45.01 | 0.34 | 33.24 | 0.52** | |
玛曲 | 2.51 | 0.05 | 5.90 | 0.11 | 3.65 | 0.10 | 20.78 | 0.15 | -1.02 | -0.01 | -0.38 | 0.00 | |
若尔盖 | 1.27 | 0.02 | -0.98 | -0.02 | 1.03 | 0.03 | 66.74 | 0.37* | 35.69 | 0.20 | 11.60 | 0.11 | |
红原 | 11.27 | 0.18 | 8.06 | 0.14 | 3.25 | 0.12 | 118.41 | 0.58*** | 102.35 | 0.54** | 12.87 | 0.13 | |
黄河源区 | 6.22 | 0.19 | 3.59 | 0.14 | 1.11 | 0.12 | 53.12 | 0.56*** | 32.69 | 0.45** | 10.85 | 0.33 |
Tab. 4
Annual total precipitation increase rate of different grades in the headwater area of the upper Yellow River"
气象 站点 | ≥0.1 mm | ≥5.0 mm | ≥10.0 mm | ≥25.0 mm | |||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
A | B | T/% | A | B | T/% | A | B | T/% | A | B | T/% | ||||
兴海 | 352.9 | 422.4 | 16.5 | 240.1 | 307.9 | 22.0 | 131.2 | 183.3 | 28.4 | 11.1 | 38.4 | 71.2 | |||
同德 | 423.7 | 487.2 | 13.0 | 300.9 | 361.4 | 16.7 | 175.2 | 224.0 | 21.8 | 22.5 | 36.1 | 37.6 | |||
泽库 | 468.3 | 525.2 | 10.8 | 330.8 | 388.8 | 14.9 | 198.5 | 248.0 | 20.0 | 30.6 | 42.5 | 28.1 | |||
玛多 | 311.8 | 360.7 | 13.5 | 177.4 | 215.8 | 17.8 | 89.5 | 108.9 | 17.8 | 5.8 | 11.1 | 47.3 | |||
玛沁 | 510.1 | 540.6 | 5.6 | 352.8 | 385.1 | 8.4 | 204.5 | 211.5 | 3.3 | 29.2 | 28.3 | -3.3 | |||
甘德 | 524.3 | 550.2 | 4.7 | 338.5 | 366.2 | 7.5 | 184.2 | 202.7 | 9.1 | 18.2 | 17.0 | -7.3 | |||
达日 | 547.6 | 584.1 | 6.2 | 368.9 | 399.7 | 7.7 | 212.1 | 217.4 | 2.4 | 24.5 | 24.8 | 1.4 | |||
河南 | 554.9 | 588.9 | 5.8 | 400.8 | 436.1 | 8.1 | 262.4 | 275.7 | 4.8 | 43.0 | 64.2 | 33.0 | |||
久治 | 753.1 | 758.1 | 0.7 | 560.1 | 557.9 | -0.4 | 345.6 | 336.3 | -2.8 | 58.2 | 44.7 | -30.1 | |||
班玛 | 666.6 | 654.2 | -1.9 | 484.4 | 473.6 | -2.3 | 294.8 | 279.1 | -5.6 | 33.2 | 36.1 | 8.3 | |||
玛曲 | 598.9 | 624.7 | 4.1 | 433.0 | 459.8 | 5.8 | 272.7 | 313.6 | 13.0 | 61.4 | 83.7 | 26.6 | |||
若尔盖 | 651.7 | 662.7 | 1.7 | 483.7 | 502.4 | 3.7 | 328.4 | 341.8 | 3.9 | 83.9 | 91.3 | 8.2 | |||
红原 | 758.5 | 762.7 | 0.5 | 566.7 | 588.2 | 3.7 | 359.6 | 375.7 | 4.3 | 65.9 | 76.6 | 13.9 | |||
黄河源区 | 548.8 | 578.6 | 5.1 | 389.6 | 418.7 | 6.9 | 236.4 | 255.2 | 7.4 | 38.9 | 45.8 | 15.0 |
Tab. 5
Contribution rates and correlation coefficients of different grades of precipitation in the upper reaches of the Yellow River from 1961-2019 to total precipitation"
≥5.0 mm | ≥10.0 mm | ≥25.0 mm | ||||||
---|---|---|---|---|---|---|---|---|
贡献率 | 相关系数 | 贡献率 | 相关系数 | 贡献率 | 相关系数 | |||
兴海 | 69 | 0.260** | 38 | 0.245* | 5 | 0.330*** | ||
同德 | 71 | 0.164 | 42 | 0.190 | 5 | 0.113 | ||
泽库 | 71 | 0.212* | 43 | 0.260** | 7 | 0.219* | ||
玛多 | 57 | 0.201 | 28 | -0.008 | 2 | 0.095 | ||
玛沁 | 69 | 0.057 | 39 | -0.122 | 5 | -0.132 | ||
甘德 | 65 | 0.189 | 35 | 0.066 | 3 | 0.030 | ||
达日 | 67 | 0.067 | 38 | 0.019 | 4 | -0.088 | ||
河南 | 73 | 0.091 | 46 | -0.113 | 9 | 0.207 | ||
久治 | 74 | -0.145 | 45 | -0.198 | 7 | -0.285** | ||
班玛 | 72 | -0.015 | 43 | -0.018 | 5 | 0.024 | ||
玛曲 | 72 | 0.042 | 46 | 0.143 | 11 | 0.128 | ||
若尔盖 | 74 | 0.011 | 50 | -0.066 | 12 | 0.023 | ||
红原 | 75 | 0.337*** | 47 | 0.165 | 9 | 0.103 | ||
黄河河源 | 71 | 0.109 | 43 | 0.046 | 7 | 0.067 |
[1] | 王欢. 近60年黄河源区流量变化特征及其影响因子的研究[D]. 南京: 南京信息工程大学, 2014. |
[ Wang Huan. The Research of Variation and Impact Factor of the Runoff in Source Region of the Yellow River Nearly 60 years[D]. Nanjing: Nanjing University of Information Science and Technology, 2014. ] | |
[2] | 李二辉, 穆兴民, 赵广举. 1919—2010年黄河上中游区径流量变化分析[J]. 水科学进展, 2014,25(2):155-163. |
[ Li Erhui, Mu Xingmin, Zhao Guangju. Temporal changes in annual runoff and influential factors in the upper and middle reaches of Yellow River from 1919-2010[J]. Advances in Water Science, 2014,25(2):155-163. ] | |
[3] | 郭西军, 郝岩浩, 赵俊麟. 气候变暖对黄河源区水文要素变化影响初步分析[J]. 农业科技与信息, 2016,29(5):133-134. |
[ Guo Xijun, Hao Yanhao, Zhao Junlin. Preliminary analysis of the impact of climate warming on the changes of hydrological elements in the source region of the Yellow River[J]. Agricultural Technology and Information, 2016,29(5):133-134. ] | |
[4] | 李林, 申红艳, 戴升. 黄河源区径流对气候变化的响应及未来趋势预测[J]. 地理学报, 2011,66(9):1261-1269. |
[ Li Lin, Shen Hongyan, Dai Sheng, et al. Response of runoff to climate change and its future tendency in the source region of Yellow River[J]. Acta Geographica Sinaca, 2011,66(9):1261-1269. ] | |
[5] | 蓝永超, 刘根生, 喇承芳, 等. 近55年来黄河河源区径流的变化及区域差异[J]. 山地学报, 2017,35(3):257-265. |
[ Lan Yongchao, Liu Gensheng, La Chengfang, et al. Study on the characteristics and trend of runoff change in the source region of the Yellow River and its regional difference[J]. Mountain Research, 2017,35(3):257-265. ] | |
[6] | 王亚迪, 权全, 薛涛涛, 等. 气候变化对黄河源区的水文影响分析[J]. 水资源研究, 2018,40(2):135-143. |
[ Wang Yadi, Quan Quan, Xue Taotao, et al. Hydrological impact of climate change on the source region of the Yellow River[J]. Journal of Water Resources Research, 2018,40(2):135-143. ] | |
[7] | 王素萍, 宋连春, 韩永翔, 等. 玛曲气候变化对生态环境的影响[J]. 冰川冻土, 2006,28(4):556-561. |
[ Wang Suping, Song Lianchun, Han Yongxiang, et al. Impacts of climate change on ecological environment in Maqu grassland[J]. Journal of Glaciology and Geocryology, 2006,28(4):556-561. ] | |
[8] | 段水强, 刘弢, 曹广超, 等. 近期长江源区湖泊扩张特征及其成因[J]. 干旱区研究, 2015,32(1):15-22. |
[ Duan Shuiqiang, Liu Tao, Cao Guangchao, et al. Expansion of the lakes and its causes in the source region of the Yangtze River[J]. Arid Zone Research, 2015,32(1):15-22. ] | |
[9] | 杨春华, 燕振宁, 周丹, 等. 1967—2016年黄河上游河曲地区降水变化特征研究[J]. 沙漠与绿洲气象, 2020,14(2):43-49. |
[ Yang Chunhua, Yan Zhenning, Zhou Dan, et al. Precipitation change characteristics in the upper reaches of the Yellow River during 1967-2016[J]. Desert and Oasis Meteorology, 2020,14(2):43-49. ] | |
[10] | 白爱娟, 黄融, 程志刚, 等. 气候变暖情景下的青海湖水位变化[J]. 干旱区研究, 2014,31(5):793-797. |
[ Bai Aijuan, Huang Rong, Cheng Zhigang. Change of water level of the Qinghai Lake under climate warming[J]. Arid Zone Research, 2014,31(5):793-797. ] | |
[11] | 王欢, 李栋梁, 蒋元春. 1956—2012年黄河源区流量演变的新特征及其成因[J]. 冰川冻土, 2014,36(2):403-412. |
[ Wang Huan, Li Dongliang, Jiang Yuanchun. Characteristics and reasons of the runoff variation in source regions of the Yellow River during 1956-2012[J]. Journal of Glaciology and Geocryology, 2014,36(2):40-412. ] | |
[12] | 周陈超, 贾绍凤, 燕华云, 等. 近50年以来青海省水资源变化趋势分析[J]. 冰川冻土, 2005,27(3):432-437. |
[ Zhou Chenchao, Jia Shaofeng, Yan Huayun, et al. Changing trend of water resources in Qinghai Province from 1956 to 2000[J]. Journal of Glaciology and Geocryology, 2005,27(3):432-437. ] | |
[13] | 张建云, 王国庆. 气候变化对水文水资源研究影响[M]. 北京: 科学出版社, 2007. |
[ Zhang Jianyun, Wang Guoqing. Impact of Climate Change on Hydrology and Water Resources Research[M]. Beijing: Science Press, 2007. ] | |
[14] | 周帅, 王义民, 郭爱军, 等. 气候变化和人类活动对黄河源区径流影响的评估[J]. 西安理工大学学报, 2018,34(2):205-210. |
[ Zhou Shuai, Wang Yimin, Guo Aijun, et al. Assessment on impacts of climate change and human activities on runoff in source region of the Yellow River[J]. Journal of Xi’an University of Technology, 2018,34(2):205-210. ] | |
[15] | 常国刚, 李林, 朱西德, 等. 黄河源区地表水资源变化及其影响因子[J]. 地理学报, 2007,62(3):312-320. |
[ Chang Guogang, Li Lin, Zhu Xide, et al. Changes and influencing factors of surface water resources in the source region of the Yellow River[J]. Acta Geographica Sinica, 2007,62(3):312-320. ] | |
[16] | 许君利, 张世强, 上官冬辉. 30a来长江源区冰川变化遥感监测[J]. 干旱区研究, 2013,30(5):919-926. |
[ Xu Junli, Zhang Shiqiang, Shangguan Donghui. Glacier change in headwaters of the Yangtze River in recent three decades[J]. Arid Zone Research, 2013,30(5):919-926. ] | |
[17] | 魏凤英. 现代气候统计诊断与预测技术[M]. 北京: 气象出版社, 2008. |
[ Wei Fengying. Modern Climate Statistics Diagnosis and Prediction Technology[M]. Beijing: Meteorological Press, 2008. ] | |
[18] | 周丹. 1961—2013年华北地区气象干旱时空变化特征及其成因分析[D]. 兰州: 西北师范大学, 2015. |
[ Zhou Dan. Spatio-temporal Changes and the Cause Analysis of Meteorological Drought in North China from 1961 to 2013[D]. Lanzhou: Northwest Normal University, 2015. ] | |
[19] | 丁裕国, 江志红. 极端气候研究方法导论[M]. 北京: 气象出版社, 2009. |
[ Ding Yuguo, Jiang Zhihong. Introduction to Extreme Climate Research Methods[M]. Beijing: Meteorological Press, 2009. ] | |
[20] | 冯晓莉, 申红艳, 李万志, 等. 1961—2017年青藏高原暖湿季节极端降水时空变化特征[J]. 高原气象, 2020,39(4):694-705. |
[ Feng Xiaoli, Shen Hongyan, Li Wanzhi, et al. Spatiotemporal changes for extreme precipitation in wet season over the Qinghai-Tibetan Plateau and the surroundings during 1961-2017[J]. Plateau Meteorology, 2020,39(4):694-705. ] | |
[21] |
Wu Z H, Huang N E. Ensemble empirical mode decomposition: A noise-assisted data analysis method[J]. Advances in Adaptive Data Analysis, 2009,1(1):1-41.
doi: 10.1142/S1793536909000047 |
[22] | 张士锋, 贾绍凤, 刘昌明, 等. 黄河源区水循环变化规律及其影响[J]. 中国科学(技术科学), 2004,39(增刊):117-125. |
[ Zhang Shifeng, Jia Shaofeng, Liu Changming, et al. The water circulation change rule and its influence in the source area of the Yellow River[J]. Scientia Sinica(Technologica), 2004,39(Suppl. ): 117-125. ] | |
[23] | 苏贤保. 黄河上游径流复杂性多尺度特征及其驱动机制研究[D]. 兰州: 兰州大学, 2019. |
[ Su Xianbao. Research on the Multi-scale Characteristic of Runoff Complexity and It’s Driving Mechanism in the Upper Reaches of the Yellow River[D]. Lanzhou: Lanzhou University, 2019. ] | |
[24] | 叶培龙, 张强, 王莺, 等. 1980—2018年黄河上游气候变化及其对生态植被和径流量的影响[J]. 大气科学学报, 2020,43(6):967-979. |
[ Ye Peilong, Zhang Qiang, Wang Ying, et al. Characteristics of climate change in the upper Yellow River basin and its influence on vegetation and runoff during recent 40 Years[J]. Transactions of Atmospheric Sciences, 2020,43(6):967-979. ] |
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