|
|
Change of the runoff-sediment relationship and its response to ecological management in Jialu River Basin |
LIAN Qiuhan1, TIAN Peng1, ZHAO Guangju1,2, MU Xingmin1,2, HU Jinfei2, JIANG Hongxu1 |
1. Institute of Soil and Water Conservation, Northwest A&F University, 712100, Yangling, Shaanxi, China; 2. State Key Laboratory of Soil Erosion and Dryland Framing on the Loess Plateau, Institute of Soil and Water Conservation, Chinese Academy of Sciences & Ministry of Water Resources, 712100, Yangling, Shaanxi, China |
|
|
Abstract [Background] The runoff-sediment relationship is the main indicator that reflects the hydrological cycle and soil erosion. In this study, we investigated the variation of flow-sediment relationship under the influence of ecological management in Jialu River Basin in typical hilly and gully loess region, aiming to provide some theoretical basis for the benefit evaluation of soil and water conservation and the prediction of soil and water loss. [Methods] Based on Tyson polygon method and multiple hydrological methods (Mann-Kendall trend test, ordered clustering analysis, and double mass curve method), we analyzed the characteristics of runoff-sediment relationship before and after comprehensive management and its response to the management on the yearly and small time (event) scale in Jialu River Basin on the Loess Plateau. [Results] 1972 was the transition year of runoff and sediment load in Jialu River Basin. Thus, the whole period was divided into two sub-periods, the baseline period (1957—1972) and the management period (1973—2014). Compared with the baseline period, the runoff-sediment relationship in the management period significantly changed at the yearly and event scale, and the sediment discharge at unit runoff depth was significantly declined. At event scale, the critical runoff depth of the basin was 6 mm. When the runoff depth was lower than this value, and the runoff-sediment relationship was discrete, otherwise, the runoff-sediment relationship tended to be stable. If rainfall amount was <50 mm, rainfall intensity was <4 mm/h or rainfall duration was >3 h, the runoff-sediment relationship in the management period changed significantly compared with the baseline period. [Conclusions] The main reason for the change is the comprehensive management of soil and water conservation, and the significant reduction of the runoff and sediment yield of medium-low precipitation, medium-low rainfall intensity and medium-long rainfall duration.
|
Received: 19 June 2019
|
|
|
|
|
[1] |
ZABALETA A, MARTINEZ M, URIARTE J A, et al. Factors controlling suspended sediment yield during runoff events in small headwater catchments of the Basque Country [J]. Catena, 2007(71): 179.
|
[2] |
ZHAO Wenwu, FU Bojie, MENG Qinghua, et al. Effects of land-use pattern change on rainfall-runoff and runoff-sediment relations: A case study in Zichang watershed of the Loess Plateau of China [J]. Journal of Environmental Sciences, 2004, 16(3): 436.
|
[3] |
王芸, 刘文兆, 李怀有,等. 黄土高塬沟壑区砚瓦川流域水沙关系及其对流域治理响应[J]. 自然资源学报, 2015, 30(8):1403. WANG Yun, LIU Wenzhao, LI Huaiyou, et al. The flow-sediment relationship and its response to watershed management in Yanwachuan watershed, Loess Plateau Gully Region, China [J]. Journal of Natural Resources, 2015, 30(8):1403.
|
[4] |
牟金泽, 孟庆枚. 陕北中小流域年产沙量计算[C]. 黄土高原水土流失综合治理科学讨论会资料汇编.陕西杨凌:中国科学院西北水土保持研究所, 1981:251. MOU Jinze, MENG Qingmei. Calculation of annual sediment production on medium and small basin in northern Shaanxi [C]. The Information Compilation of Scientific Symposium on Water and Soil Loss Comprehensive Harness in Loess Plateau. Yangling,Shaanxi: Institute of Soil and Water Conservation, CAS & MWR, 1981: 251.
|
[5] |
王孟楼, 张仁. 陕北岔巴沟流域次暴雨产沙模型的研究[J].水土保持学报, 1990, 4(1):11. WANG Menglou, ZHANG Ren. Study on the storm-sediment yield model of the Chaba gully basin [J]. Journal of Water and Soil Conservation, 1990, 4(1): 11.
|
[6] |
郑明国, 蔡强国, 王彩峰, 等. 黄土丘陵沟壑区坡面水土保持及植被对流域尺度水沙关系的影响[J]. 水利学报, 2007, 38(1):47. ZHENG Mingguo, CAI Guoqiang, WANG Caifeng, et al. Effect of vegetation and other measures for soil and water conservation on runoff-sediment relationship in watershed scale [J]. Journal of Hydraulic Engineering, 2007, 38(1):47.
|
[7] |
刘淑燕, 余新晓, 信忠保, 等. 黄土丘陵沟壑区典型流域土地利用变化对水沙关系的影响[J]. 地理科学进展, 2010, 29(5):565. LIU Shuyan, YU Xinxiao, XIN Zhongbao, et al. Effects of land use change on runoff-sediment relationship at watershed in the loess hilly region [J]. Progress in Geography, 2010, 29(5): 565.
|
[8] |
高鹏, 穆兴民, 李锐, 等. 黄河支流无定河水沙变化趋势及其驱动因素[J]. 泥沙研究, 2009(5):22. GAO Peng, MU Xingmin, LI Rui, et al. Analyses on trend and driving force of runoff and sediment load in the Wuding River [J].Journal of Sediment Research, 2009(5):22.
|
[9] |
田永宏, 张庆伟. 佳芦河流域水土保持措施减水减沙效益分析[J]. 中国水土保持, 1996(6):22. TIAN Yonghong, ZHANG Qinwei. Analysis on runoff and sediment reduction benefit by erosion control measures in Jialu River watershed [J]. Soil and Water Conservation in China, 1996(6):22.
|
[10] |
黄河上中游管理局. 黄河流域水土保持基本资料[M]. 西安:黄河上中游管理局出版社, 2001:282. Upper and Middle Yellow River Bureau. Basic data on soil and water conservation in the Yellow River Basin [M]. Xi'an: Upper and Middle Yellow River Bureau Press, 2001:282.
|
[11] |
冉大川, 齐斌, 肖培青, 等. 佳芦河流域特大暴雨洪水对下垫面治理的响应[J]. 水土保持研究, 2015, 22(6):7. RAN Dachuan, QI Bin, XIAO Peiqing, et al. Response of extraordinary rainstorm and flood to the harnessing for underlying surface in Jialu river basin [J]. Research of Soil and Water Conservation, 2015,22(6):7.
|
[12] |
黄锡荃, 李惠明, 金伯欣. 水文学[M].北京: 高等教育出版社, 2003: 68. HUANG Xiquan, LI Huiming, JIN Boxin. Hydrology [M]. Beijing: Higher Education Press, 2003: 68.
|
[13] |
周璟, 张旭东, 何丹, 等.武陵山区女儿寨小流域次降雨径流与产沙特征[J]. 中国水土保持科学,2011,9(1):33. ZHOU Jing, ZHANG Xudong, HE Dan, et al. Characteristics of runoff and sediment yield for rainfall events in Nüerzhai small watershed of Wuling Mountain area [J]. Science of Soil and Water Conservation, 2011, 9(1): 33.
|
[14] |
罗琳, 王忠静, 刘晓燕, 等. 黄河流域中游典型支流汛期降雨特性变化分析[J]. 水利学报, 2013, 44(7):848. LUO Lin, WANG Zhongjing, LIU Xiaoyan, et al. Changes in characteristics of precipitation in flood season over five typical basins of middle reaches of the Yellow River in China [J]. Journal of Hydraulic Engineering, 2013, 44(7): 848.
|
[15] |
焦菊英, 王万中, 郝小品. 黄土高原不同类型暴雨的降水侵蚀特征[J]. 干旱区资源与环境, 1999, 13(1): 34. JIAO Juying, WANG Wanzhong, HAO Xiaopin. Characteristics of rain-storm in different pattern on Loess Plateau [J]. Journal of Arid Land Resources and Environment, 1999, 13(1): 34.
|
[16] |
WIGBOUT M. Limitations in the use of double-mass curves [J]. Journal of Hydrology, 1973, 12(2):132.
|
[17] |
丁晶.洪水时间序列干扰点的统计推估[J].武汉水利电力学院学报,1986(5):38. DING Jing. Statistical detection for transition point in flood time sequences [J]. Journal of Wuhan Institute of Hydraulic and Electric Power, 1986(5): 38.
|
[18] |
LIBISELLER C, GRIMVALL A. Performance of partial Mann-Kendall test for trend detection in the presence of covariates [J]. Environ Metrics, 2002(13):71.
|
[19] |
郑明国, 蔡强国, 陈浩. 黄土丘陵沟壑区植被对不同空间尺度水沙关系的影响[J]. 生态学报, 2007, 27(9): 3572. ZHENG Mingguo, CAI Qiangguo, CHEN Hao. Effect of vegetation on runoff-sediment relationship at different spatial scale levels in gullied-hilly area of the Loess Plateau, China [J]. Acta Ecologica Sinica, 2007, 27(9): 3572.
|
[20] |
ZHENG Mingguo, QIN Fen, YANG Jishang, et al. The spatio-temporal invariability of sediment concentration and the flow-sediment relationship for hilly areas of the Chinese Loess Plateau [J]. Catena, 2013(109):164.
|
[21] |
刘卉芳, 曹文洪, 秦伟, 等. 淤地坝在流域水土保持措施中的贡献研究[J]. 中国农村水利水电,2011(1):55. LIU Huifang, CAO Wenhong, QIN Wei, et al. The contribution of silt dam for soil and water conservation measures [J]. China Rural Water and Hydropower, 2011(1):55.
|
[22] |
蔡强国, 王贵平, 陈永宗. 黄土高原小流域侵蚀产沙过程与模拟[M]. 北京:科学出版社,1998.135. CAI Qiangguo, WANG Guiping, CHENG YZ. Soil erosion and sediment yield process and model for small basin in Loess Plateau [M]. Beijing: Science Press, 1998.135.
|
|
|
|