Arid Zone Research ›› 2024, Vol. 41 ›› Issue (2): 191-199.doi: 10.13866/j.azr.2024.02.02
• Weather and Climate • Previous Articles Next Articles
Received:
2023-04-07
Revised:
2023-10-25
Online:
2024-02-15
Published:
2024-03-11
ZHOU Yi, SUO Wenjiao. Spatialtemporal variation characteristics of drought in the Fenhe River Basin based on CWSI[J].Arid Zone Research, 2024, 41(2): 191-199.
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
Tab. 1
Data name and source"
数据 | 时间 | 数据来源 |
---|---|---|
MOD16A3 | 2000—2021年 | NTSG( |
MOD16A2 | ||
土壤相对湿度 | 2012年4—10月 | 国家气象信息中心( |
降水 | 2001—2020年 | 国家青藏高原科学数据中心 |
温度 | 2001—2020年 | ( |
植被指数 | 2001—2020年 | 中国科学院资源环境科学数据中心( |
30 m土地利用 | 2020年 | ( |
[1] |
张强, 韩兰英, 张立阳, 等. 论气候变暖背景下干旱和干旱灾害风险特征与管理策略[J]. 地球科学进展, 2014, 29(1): 80-91.
doi: 1001-8166(2014)01-0080-12 |
[Zhang Qiang, Han Lanying, Zhang Liyang, et al. Analysis on the character and management strategy of drought disaster and risk under the climatic warming[J]. Advances in Earth Science, 2014, 29(1): 80-91.]
doi: 1001-8166(2014)01-0080-12 |
|
[2] | 吴孟泉, 崔伟宏, 李景刚. 温度植被干旱指数(TVDI)在复杂山区干旱监测的应用研究[J]. 干旱区地理, 2007, 30(1): 30-35. |
[Wu Mengquan, Cui Weihong, Li Jinggang. Monitoring drought in mountainous area based on temperature/vegetation dryness index (TVDI)[J]. Arid Land Geography, 2007, 30(1): 30-35.] | |
[3] |
汪左, 王芳, 张运. 基于CWSI的安徽省干旱时空特征及影响因素分析[J]. 自然资源学报, 2018, 33(5): 853-866.
doi: 10.11849/zrzyxb.20170480 |
[Wang Zuo, Wang Fang, Zhang Yun. Spatio-temporal distribution characteristics and influencing factors of drought in Anhui Province based on CWSI[J]. Journal of Natural Resources, 2018, 33(5): 853-866.] | |
[4] | 张强, 鞠笑生, 李淑华. 三种干旱指标的比较和新指标的确定[J]. 气象科技, 1998(2): 49-53. |
[Zhang Qiang, Ju Xiaosheng, Li Shuhua. Comparison of three drought indicators and identification of new indicators[J]. Meteorological Science and Technology, 1998(2): 49-53.] | |
[5] | 王劲松, 郭江勇, 倾继祖. 一种K干旱指数在西北地区春旱分析中的应用[J]. 自然资源学报, 2007, 22(5): 709-717. |
[Wang Jinsong, Guo Jiangyong, Qing Jizu. Application of a kind of K drought index in the spring drought analysis in Northwest China[J]. Journal of Natural Resources, 2007, 22(5): 709-717.]
doi: 10.11849/zrzyxb.2007.05.005 |
|
[6] | 邹旭恺, 任国玉, 张强. 基于综合气象干旱指数的中国干旱变化趋势研究[J]. 气候与环境研究, 2010, 15(4): 371-378. |
[Zou Xukai, Ren Guoyu, Zhang Qiang. Droughts variations in China based on a compound index of meteorological drought[J]. Climatic and Environmental Research, 2010, 15(4): 371-378.] | |
[7] | 陈家宁, 孙怀卫, 王建鹏, 等. 综合气象干旱指数改进及其适用性分析[J]. 农业工程学报, 2020, 36(16): 71-77. |
[Chen Jianing, Sun Huaiwei, Wang Jianpeng, et al. Improvement of comprehensive meteorological drought index and its applicability analysis[J]. Transactions of the Chinese Society of Agricultural Engineering, 2020, 36(16): 71-77.] | |
[8] | 王晓燕, 李净, 邢立亭. 基于3种机器学习方法的农业干旱监测比较[J]. 干旱区研究, 2022, 39(1): 322-332. |
[Wanng Xiaoyan, Li Jing, Xing Liting. Comparative agricultural drought monitoring based on three machine learning methods[J]. Arid Zone Research, 2022, 39(1): 322-332.] | |
[9] | 刘安麟, 李星敏, 何延波, 等. 作物缺水指数法的简化及在干旱遥感监测中的应用[J]. 应用生态学报, 2004, 15(2): 210-214. |
[Liu Anlin, Li Xingmin, He Yanbo, et al. Simplification of crop shortage water index and its application in drought remote sensing monitoring[J]. Chinese Journal of Applied Ecology, 2004, 15(2): 210-214.]
pmid: 15146625 |
|
[10] | 王玲玲, 张友静, 佘远见, 等. 遥感旱情监测方法的比较与分析[J]. 遥感信息, 2010, 25(5): 49-53. |
[Wang Lingling, Zhang Youjing, She Yuanjian, et al. Analysis and comparison of drought monitoring methods by remote sensing[J]. Remote Sensing of Information, 2010, 25(5): 49-53.] | |
[11] | 田国珍, 武永利, 梁亚春, 等. 基于蒸散发的干旱监测及时效性分析[J]. 干旱区地理, 2016, 39(4): 721-729. |
[Tian Guozhen, Wu Yongli, Liang Yachun, et al. Drought monitoring and timeliness based on evapotranspiration model[J]. Arid Land Geography, 2016, 39(4): 721-729.] | |
[12] |
Mu Q Z, Heinsch F A, Zhao M S, et al. Development of a global evapotranspiration algorithm based on MODIS and global meteorology data[J]. Remote Sensing of Environment, 2007, 111(4): 519-536.
doi: 10.1016/j.rse.2007.04.015 |
[13] |
Mu Q Z, Zhao M S, Running S W. Improvements to a MODIS global terrestrial evapotranspiration algorithm[J]. Remote Sensing of Environment, 2011, 115(8): 1781-1800.
doi: 10.1016/j.rse.2011.02.019 |
[14] |
张静, 任志远. 基于MOD16的汉江流域地表蒸散发时空特征[J]. 地理科学, 2017, 37(2): 274-282.
doi: 10.13249/j.cnki.sgs.2017.02.014 |
[Zhang Jing, Ren Zhiyuan. Spatiotemporal characteristics of evapotranspiration based on MOD16 in the Hanjiang River Basin[J]. Scientia Geographica Sinica, 2017, 37(2): 274-282.]
doi: 10.13249/j.cnki.sgs.2017.02.014 |
|
[15] | 吴桂平, 刘元波, 赵晓松, 等. 基于MOD16产品的鄱阳湖流域地表蒸散量时空分布特征[J]. 地理研究, 2013, 32(4): 617-627. |
[Wu Guiping, Liu Yuanbo, Zhao Xiaosong, et al. Spatio-temporal variations of evapotranspiration in Poyang Lake Basin using MOD16 products[J]. Geographical Research, 2013, 32(4): 617-627.]
doi: 10.11821/yj2013040004 |
|
[16] |
温媛媛, 赵军, 王炎强, 等. 基于MOD16的山西省地表蒸散发时空变化特征分析[J]. 地理科学进展, 2020, 39(2): 255-264.
doi: 10.18306/dlkxjz.2020.02.007 |
[Wen Yuanyuan, Zhao Jun, Wang Yanqiang, et al. Spatiotemporal variation characteristics of surface evapotranspiration in Shanxi Province based on MOD16[J]. Progress in Geography, 2020, 39(2): 255-264.]
doi: 10.18306/dlkxjz.2020.02.007 |
|
[17] | 李晴, 杨鹏年, 彭亮, 等. 基于MOD16数据的焉耆盆地蒸散量变化研究[J]. 干旱区研究, 2021, 38(2): 351-358. |
[Li Qing, Yang Pengnian, Peng Liang, et al. Study of the variation trend of evapotranspiration in the Yanqi Basin based on MOD16 data[J]. Arid Zone Research, 2021, 38(2): 351-358.] | |
[18] | 康利刚, 曹生奎, 曹广超, 等. 青海湖沙柳河流域蒸散发时空变化特征[J]. 干旱区研究, 2023, 40(3): 358-372. |
[Kang Ligang, Cao Shengkui, Cao Guangchao, et al. Temporal and spatial changes of evapotranspiration in the Shaliu River Basin of Qinghai Lake[J]. Arid Zone Research, 2023, 40(3): 358-372.] | |
[19] | 何慧娟, 卓静, 李红梅, 等. 基于MOD16产品的陕西关中地区干旱时空分布特征[J]. 干旱地区农业研究, 2016, 34(1): 236-241. |
[He Huijuan, Zhuo Jing, Li Hongmei, et al. Spatial-temporal distribution characteristics of drought in Guanzhong region of Shaanxi Province based on MOD16 products[J]. Agricultural Research in the Arid Areas, 2016, 34(1): 236-241.] | |
[20] | 刘秀红, 李智才, 刘秀春, 等. 山西春季干旱的特征及成因分析[J]. 干旱区资源与环境, 2011, 25(9): 156-160. |
[Liu Xiuhong, Li Zhicai, Liu Xiuchun, et al. Features and causes of spring drought in Shanxi[J]. Journal of Arid Land Resources and Environment, 2011, 25(9): 156-160.] | |
[21] | 李京京, 吕哲敏, 石小平, 等. 基于地形梯度的汾河流域土地利用时空变化分析[J]. 农业工程学报, 2016, 32(7): 230-236. |
[Li Jingjing, Lv Zhemin, Shi Xiaoping, et al. Spatiotemporal variations analysis for land use in Fen River Basin based on terrain gradient[J]. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(7): 230-236.] | |
[22] |
张亚琳, 赵海燕, 王春玲, 等. 1979—2014年汾河流域干旱时空特征[J]. 中国农学通报, 2018, 34(3): 145-151.
doi: 10.11924/j.issn.1000-6850.casb16120143 |
[Zhang Yalin, Zhao Haiyan, Wang Chunling, et al. Temporal and spatial characteristics of drought from 1979 to 2014 in Fen River Basin[J]. Chinese Agricultural Science Bulletin, 2018, 34(3): 145-151.]
doi: 10.11924/j.issn.1000-6850.casb16120143 |
|
[23] | 苏迎庆, 张恩月, 刘源, 等. 汾河流域土地利用变化及生态环境效应[J]. 干旱区研究, 2022, 39(3): 968-977. |
[Su Yingqing, Zhang Enyue, Liu Yuan, et al. Land-use changes and ecological environment effects on Fen River Basin[J]. Arid Zone Research, 2022, 39(3): 968-977.] | |
[24] |
史利江, 刘敏, 李艳萍, 等. 汾河流域县域经济差异的时空格局演变及驱动因素[J]. 地理研究, 2020, 39(10): 2361-2378.
doi: 10.11821/dlyj020190785 |
[Shi Lijiang, Liu Min, Li Yanping, et al. The spatio-temporal evolution and influencing factors of economic difference at county level in Fenhe River Basin[J]. Geographical Research, 2020, 39(10): 2361-2378.]
doi: 10.11821/dlyj020190785 |
|
[25] | 伍博炜, 杨胜天, 邵南方, 等. 黄土高原生态脆弱区土地利用变化对生态系统服务价值的影响——以汾河流域为例[J]. 水土保持研究, 2019, 26(5): 340-345. |
[Wu Bowei, Yang Shengtian, Shao Nanfang, et al. Effects of land use change on ecosystem service value in fragile ecological area of the Loess Plateau: A case study of Fenhe River Basin[J]. Research of Soil and Water Conservation, 2019, 26(5): 340-345.] | |
[26] |
Jackson R D, Idso S B, Reginato R J, et al. Canopy temperature as a crop water stress indicator[J]. Water Resources Research, 1981, 17(4): 1133-1138.
doi: 10.1029/WR017i004p01133 |
[27] |
Jackson R D, Kustas W P, Choudhury B J. A reexamination of the crop water stress index[J]. Irrigation Science, 1988, 9(4): 309-317.
doi: 10.1007/BF00296705 |
[28] |
Tong S, Zhang J, Bao Y. Interdecadal spatiotemporal variations of aridity based on temperature and precipitation in Inner Mongolia, China[J]. Polish Journal of Environmental Studies, 2017, 26(2): 819-826.
doi: 10.15244/pjoes/65840 |
[29] |
Pearson K. Note on regression and inheritance in the case of two parents[J]. Proceedings of the Royal Society of London, 1895, 58: 240-242.
doi: 10.1098/rspl.1895.0041 |
[30] | 张洁, 武建军, 周磊, 等. 基于MODIS数据的农业干旱监测方法对比分析[J]. 遥感信息, 2012, 27(5): 48-54. |
[Zhang Jie, Wu Jianjun, Zhou Lei, et al. Comparative study on remotely sensed methods of monitoring agricultural drought based on MODIS data[J]. Remote Sensing Information, 2012, 27(5): 48-54.] | |
[31] | 张强, 邹旭凯, 肖风劲, 等. GB/T 20481-2006. 气象干旱等级[S]. 北京: 中国标准出版社, 2006. |
[Zhang Qiang, Zou Xukai, Xiao Fengjin, et al. GB/T 20481-2006. The Grade of Meteorological Drought[S]. Beijing: China Standard Press, 2006.] | |
[32] | 马梓策. 华北地区干旱时空变化特征及其影响因素分析[D]. 呼和浩特: 内蒙古师范大学, 2020. |
[Ma Zice. Spatial and Temporal Characteristics of Drought and Its Influencing Factors in North China[D]. Hohhot: Inner Mongol Normal University, 2020.] |
[1] | ZHANG Qiaofeng, YU Hongbo, HUANG Fang. The spatiotemporal dynamics of drought and the cumulative impact on vegetation phenology in the Mongolian Plateau [J]. Arid Zone Research, 2024, 41(9): 1548-1559. |
[2] | LI Ye, JIANG Wei, CHEN Xiaojun, WU Yingjie, WANG Sinan. Drought trends in Ordos from 1961 to 2020 based on meteorological precipitation anomaly percentage [J]. Arid Zone Research, 2024, 41(7): 1099-1111. |
[3] | ZHANG Bin, LI Congjuan, Yi Guangping, LIU Ran. Physiological, biochemical and morphological responses of Haloxylon ammodendron and Calligonum caput-medusae to drought stress [J]. Arid Zone Research, 2024, 41(7): 1177-1184. |
[4] | SHAN Jian'an, ZHU Rui, YIN Zhenliang, YANG Huaqing, ZHANG Wei, FANG Chunshuang. Spatial and temporal variation of drought in Northwest China based on CMIP6 model [J]. Arid Zone Research, 2024, 41(5): 717-729. |
[5] | XU Chaojie, DOU Yan, MENG Qilin. Prediction of the standardized precipitation evapotranspiration index in the Xinjiang region using the EMD-GWO-LSTM model [J]. Arid Zone Research, 2024, 41(4): 527-539. |
[6] | TAO Jifeng, BAO Yulong, GUO Enliang, Jin Eerdemutu, Husile , BAO Yuhai. Characteristics of the spatial and temporal evolution of winter drought in Inner Mongolia over the past 40 years [J]. Arid Zone Research, 2024, 41(3): 387-398. |
[7] | ZHANG Lingxue, LI Xiaofeng, QU Jun, MA Meiyu, ZHANG Jianbin, LI Yaoming. Effects of water and salt stress on the physiological growth characteristics of Atriplex canescens [J]. Arid Zone Research, 2024, 41(10): 1767-1777. |
[8] | BAI Ju, LIU Xiaolin, LI Shen, LIANG Zheming, XU Zihang, WANG Yongliang, YANG Zhiping. Mechanism of sludge alkaline thermal hydrolysis liquid on the growth of Brassica chinensis under drought stress [J]. Arid Zone Research, 2024, 41(1): 80-91. |
[9] | YAN Qiaofang, SHAN Lishan, XIE Tingting, WANG Hongyong, SHI Yating. Morphological characteristics of the leaves and roots of Caroxylon passerinum seedlings in response to drought-induced stress [J]. Arid Zone Research, 2024, 41(1): 92-103. |
[10] | LYU Xiaoyu, GUO Hao, MENG Xiangchen, BAO Anming, TIAN Yunfei, ZHU Li. Characterization of the evolution of drought events in China based on 3D identification [J]. Arid Zone Research, 2023, 40(6): 849-962. |
[11] | LI Feifei, ZHOU Xia, ZHOU Yuxi. Vulnerability assessment and spatiotemporal distribution of agricultural drought in Northwest China [J]. Arid Zone Research, 2023, 40(4): 663-669. |
[12] | SUN Qixing, YANG Xiaodong, LI Borui, KONG Cuicui, Elhamjan ANWAR, ZHOU Jie, LYU Guanghui. Effects of hydraulic traits on the species abundance distribution pattern of desert plant communities [J]. Arid Zone Research, 2023, 40(3): 412-424. |
[13] | ZHANG Enyue, ZHENG Junyan, SU Yingqing, ZHANG Lei, ZHANG Pengfei, LIU Geng. Optimization of low-carbon land use pattern based on scenario simulation: A case study of Fenhe River Basin [J]. Arid Zone Research, 2023, 40(2): 203-212. |
[14] | XU Mengqi, GAO Yanju, ZHANG Zhihao, HUANG Caibian, ZENG Fanjiang. Effects of drought stress on growth and physiology of Alhagi sparsifolia seedlings [J]. Arid Zone Research, 2023, 40(2): 257-267. |
[15] | XU Liting,LIU Haihong,HUANG Lijie,WANG Yufan. Spatial and temporal changes of ecological environment and water conservation in Fenhe River Basin from 2000 to 2020 [J]. Arid Zone Research, 2023, 40(2): 313-325. |
|