水文泥沙

渭河下游河流输沙需水量计算

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  • 1. 北京师范大学水科学研究院, 水沙科学教育部重点实验室, 北京 100875;
    2. 西北大学环境科学系, 西安 710069;
    3. 西安理工大学水利水电学院, 西安 710048
宋进喜 (1971-), 男, 汉族, 甘肃天水人, 中国地理学会会员, 主要从事水资源与水环境研究。E-mail: jxsong2003@yahoo.com.cn

收稿日期: 2005-05-23

  修回日期: 2005-07-28

  网络出版日期: 2005-09-25

基金资助

陕西省自然科学基金项目 (2003D07);教育部高等学校优秀青年教师教学科研奖励计划项目 (青年教师奖2001-282)

Estimation of Instream Flow Requirements for Transporting Sediment in the Lower Reach of the Weihe River

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  • 1. Key Laboratory of Water and Sediment Sciences, Ministry of Education, College of Water Sciences, Beijing Normal University, Beijing 100875, China;
    2. Department of Environmental Sciences, Northwest University, Xi'an 710069, China;
    3. School of Water Resources and Hydroelectric Power, Xi'an University of Technology, Xi'an 710048, China

Received date: 2005-05-23

  Revised date: 2005-07-28

  Online published: 2005-09-25

Supported by

Natural Science Foundation of Shaanxi Province, No.2003D07; Teaching and Research Project of the Ministry of Education, No.2001-282

摘要

基于对河流输沙运动特性的分析,认为最小河流输沙需水量是当河流输沙基本上处于冲淤平衡状态时输送单位重量的泥沙所需要的水的体积,通过河段进口即上游断面水流挟沙力 (Su*) 与含沙量 (Su) 比较,分Su ≤ Su*和Su > Su*两种情况,分别建立了最小河段输沙需水量的计算方法。并应用该方法对渭河下游输沙需水量做了计算。计算的空间尺度为渭河下游的咸阳、临潼、华县三个断面,时间尺度为四个代表年的年内月均需水量,分p = 25% (1963年)、p = 50% (1990年)、p = 75% (1982年)、p = 90% (1979年)。计算结果分析表明:渭河各断面汛期月均输沙需水量大于非汛期月均输沙需水量。相较而言,在不同代表年的汛期和非汛期,从咸阳断面至华县断面输沙需水量在增加。在丰水年 (p = 25%),渭河下游咸阳、临潼、华县等3个断面年输沙需水量分别为63.67亿m3、97.95亿m3和103.25亿m3;在平水年 (p = 50%),渭河下游咸阳、临潼、华县等3个断面年输沙需水量分别为49.71亿m3、83.27亿m3和85.08亿m3;在枯水年 (p = 75%),渭河下游咸阳、临潼、华县等3个断面年输沙需水量分别为30.17亿m3、55.14亿m3和65.32亿m3;在特枯水年 (p = 90%),渭河下游咸阳、临潼、华县等3个断面年输沙需水量分别为23.96亿m3、37.91亿m3和38.92亿m3。由丰水年到枯水年,渭河下游各断面年输沙需水量变小。

本文引用格式

宋进喜, 刘昌明, 徐宗学, 李怀恩, 杨方社 . 渭河下游河流输沙需水量计算[J]. 地理学报, 2005 , 60(5) : 717 -724 . DOI: 10.11821/xb200505002

Abstract

On the basis of the characteristic analysis for river load movement, the minimum instream flow requirements for transporting sediment was considered as a certain volume of intream flow required to transport per weight sediment when the sediment transportation is at balanced state of erosion and deposition. Through the analysis of sediment carrying capacity (Su*) and a comparison with the sediment concentration (Su) at the upper reach, a method to estimate minimum sectional instream flow requirements for transporting sediment of river was proposed according to Su ≤ Su* and Su > Su* respectively. Then, this method was applied to estimate the monthly instream flow requirements for transporting sediment in the lower Weihe River. The temporal scale of typical years included p = 25% (1963), p = 50% (1990), p = 75% (1982) and p = 90% (1979), and the spatial scale of the study areas included Xianyang section, Lintong section and Huaxian section. The results show that the average monthly instream flow requirements for transporting sediment in flood seasons are higher than those in non-flood seasons. Generally speaking, from Xianyang section to Huaxian section, the sectional instream flow requirements for transporting sediment in both flood seasons and non-flood seasons of each typical year increase. Estimated for a wet year (p = 25%), the annual instream flow requirements for transporting sediment of Xianyang section, Lintong section and Huanxian section are 63.67×108 m3, 97.95×108 m3 and 103.25×108 m3 respectively; estimated for normal year (p = 50%), the instream flow requirements for transporting sediment of Xianyang section, Lintong section and Huanxian section are 49.71×108 m3, 83.27×108 m3 and 85.08×108 m3 respectively; estimated for a dry year (p = 75%), the instream flow requirements for transporting sediment of Xianyang section, Lintong section and Huanxian section are 30.17×108 m3, 55.14×108 m3 and 65.32×108 m3 respectively; and estimated for a much drier year (p = 90%), the instream flow requirements for transporting sediment of Xianyang section, Lintong section and Huanxian section are 23.96×108 m3, 37.91×108 m3 and 38.92×108 m3 respectively. It can be found that from wet year to dry year, the instream flow requirements for transporting sediment of each section decrease.

参考文献


[1] Sun Dongpo, Li Guoqing, Zhu Taishun et al. River Training and Sediment Engineering. Zhengzhou: Yellow River Water Conservancy Press, 1999.
[孙东坡, 李国庆, 朱太顺 等. 治河及泥沙工程. 郑州: 黄河水利出版社, 1999.]

[2] Li Lijuan, Zheng Hongxing. Environmental and ecological water consumption of river systems in Haihe-Luanhe basins. Acta Geographica Sinica, 2000, 55(4): 496-500.
[李丽娟, 郑红星. 海滦河流河流系统生态环境需水量计算. 地理学报, 2000, 55(4): 496-500.]

[3] Ni Jinren, Cui Shubin, Li Tianhong et al. On water demand of river ecosystem. Journal of Hydraulics, 2002, (9): 14-19.
[倪晋仁, 崔树彬, 李天宏 等. 论河流生态环境需水. 水利学报, 2002, (9): 14-19.]

[4] Shi Wei, Wang Guangqian. Review of studies on the water requirement for sediment transport of the lower Yellow River. Advances in Water Science, 2003, 14(1): 118-120.
[石伟, 王光谦. 黄河下游输沙水量研究综述. 水科学进展, 2003, 14(1): 118-120.]

[5] Nash D B. Effective sediment-transporting discharge from magnitude-frequency analysis. Journal of Hydrology, 1994, 102(1): 79-95.

[6] Omdorff R L, Whiting P J. Computing effective discharges with S-PLUS. Computers & Geosciences, 1999, (25): 559-565.

[7] Richter B D, Baumgartner J V. How much water does a river need? Freshwater Biology, 1997, 37(1): 231-249.

[8] Qi Pu, Li Shiying, Liu Yuelan et al. Changes of Runoff and Sediment Load and Reducing Silt Measures of the Lower Yellow River. Zhengzhou: Yellow River Water Conservancy Press, 1997. 104.
[齐璞, 李世滢, 刘月兰 等. 黄河水沙变化与下游河道减淤措施. 郑州: 黄河水利出版社, 1997. 104.]

[9] Yue Dejun, Hou Suzhen. A study on the water requirements for sediment transportation in the lower Yellow River. Yellow River, 1996, (8): 32-33.
[岳德军, 侯素珍. 黄河下游输沙水量研究. 人民黄河, 1996, (8): 32-33.]

[10] Chang Bingyan, Xue Songgui, Zhang Huiyan et al. Equitable Distribution and Optimizing Regulation for Water Resources in the Yellow River Basin. Zhengzhou: Yellow River Water Conservancy Press, 1998. 132-152.
[常炳炎, 薛松贵, 张会言 等. 黄河流域水资源合理分配和优化调度. 郑州: 黄河水利出版社, 1998. 132-152.]

[11] Zhao Yean, Pan Xiandi, Li Yong et al. A Study on Instream Flow Requirements for Sediment Transportation in the Lower Yellow River. Zhengzhou: Yellow River Water Conservancy Press, 1990. 1-19.
[赵业安, 潘贤娣, 李勇 等. 黄河下游河道输沙用水量的初步研究. 郑州: 黄河水利科学研究所, 1990. 1-19.]

[12] Zhao Huaxia, Chen Jianguo, Chen Jianwu et al. On the water volume required for transporting sediment and the fluvial processes in the lower Yellow River. Journal of Sediment Research, 1997, (3): 57-61.
[赵华侠, 陈建国, 陈建武 等. 黄河下游洪水期输沙水量与河道泥沙冲淤分析. 泥沙研究, 1997, (3): 57-61.]

[13] Ni Jinren, Liu Xiaoyong, Li Tianhong et al. Efficiency of sediment transport by flood and its control in the lower Yellow River. Science in China (E), 2004, 34(suppl. 1): 144-154.
[倪晋仁, 刘小勇, 李天宏 等. 黄河下游洪水输沙效率及其调控. 中国科学(E辑), 2004, 34(增刊1): 144-154.]

[14] Ni Jinren, Jin Ling, Zhao Yean et al. Minimum water demand for ecosystem protection in the lower Yellow River. Journal of Hydraulic Engineering, 2002, (10): 1-7.
[倪晋仁, 金玲, 赵业安 等. 黄河下游河流最小生态环境需水量初步研究. 水利学报, 2002, (10): 1-7.]

[15] Liu Xiaoyong, Li Tianhong, Zhao Yean. Water demand for sediment transport in the lower Yellow River. Journal of Basic Science and Engineering, 2002, 10(3): 253-262.
[刘小勇, 李天宏, 赵业安 等. 黄河下游河道输沙用水量研究. 应用基础与工程科学学报, 2002, 10(3): 253-262.]

[16] Shi Wei, Wang Guangqian. Estimation of ecological water requirement for the lower Yellow River. Acta Geographica Sinica, 2002, 57(5): 595-602.
[石伟, 王光谦. 黄河下游生态需水量及其估算. 地理学报, 2002, 57(5): 595-602.]

[17] Luo Huaming, Li Tianhong, Ni Jinren et al. Water demand for ecosystem protection in rivers with hyper-concentrated sediment-laden flow. Science in China (E series), 2004, 34(suppl. 1): 155-164.
[罗华铭, 李天宏, 倪晋仁 等. 多沙河流的生态环境需水特点研究. 中国科学(E辑), 2004, 34(增刊1): 155-164.]
[18 ] Chen Li, Ming Zongfu. River Dynamics. Wuhan: Wuhan University Press, 2001. 57.
[陈立, 明宗富. 河流动力学. 武汉: 武汉大学出版社, 2001. 57.]

[19] Duan Hongdong, He Huasong. Sediment Transportation Mechanics of River. Zhengzhou: Yellow River Water Conservancy Press, 2001. 97-100.
[段红东, 何华松. 河流输沙力学. 郑州: 黄河水利出版社, 2001. 97-100.]

[20] Liang Zhiyong, Yao Wenguang, Li Wenxue et al. The Characteristic of Rivers with Hyper-Concentrated Sediment-laden Flow. Beijing: China Water Conservancy and Electric Power Press, 2003. 18.
[梁志勇, 姚文广, 李文学 等. 多沙河流的河性. 北京: 中国水利水电出版社, 2003. 18.]

[21] Zhang Ruijin. Sediment Dynamics of River. Beijing: China Water Conservancy and Electric Power Press, 1989. 4-7.
[张瑞瑾. 河流泥沙动力学. 北京: 中国水利水电出版社, 1989. 4-7.]

[22] Atkinston J F, Abranhams A D, Krishnan C et al. Shear stress partitioning and sediment transport by overland flow. Journal of Hydraulic Research, 2000, 38(1): 37-40.

[23] Wang Zhaoyin. Outlook for sediment research. Acta Geographica Sinica, 1998, 53(3): 244-255.
[王兆印. 泥沙研究的发展趋势和新课题. 地理学报, 1998, 53(3): 245-255.]

[24] Wang Guangqian, Shi Wei. A study on minimum instream flow requirements for transporting sediment in the lower Yellow River. In: Ecology for River. Beijing: Tsinghua University Press, 2002. 445-455.
[王光谦, 石伟. 黄河下游最小输沙水量初探. 见: 江河颂. 北京: 清华大学出版社, 2002. 445-455.]

[25] Chen Fazhong, Dai Mingying, Wu Qing. Analysis on variation and characteristic of water and sediment in the Wei River. Yellow River, 1999, 21(8): 16-18.
[陈发中, 戴明英, 吴卿. 渭河水沙变化及特性分析. 人民黄河, 1999, 21(8): 16-18.]

[26] Wang Guie, Ji Li, Li Yangjun. Effect of water and sediment variation on erosion and deposition of the Wei River bed. Journal of Sediment Research, 2001, (2): 40-52.
[王桂娥, 季利, 李杨俊. 渭河水沙条件变化对河床冲淤的影响分析. 泥沙研究, 2001, (2): 40-52.]

[27] Tang Xianhai. A study on siltation process in the lower Wei River since 1992. Journal of Sediment Research, 1999, (3): 69-73.
[唐先海. 渭河下游近期淤积发展情况的分析研究. 泥沙研究, 1999, (3): 69-73.]

[28] Zhang Cuiping, Zhang Yuanfeng, Gao Jiping. Characteristic of runoff, sediment and fluvial processes in the lower Wei River in recent years. Journal of Sediment Research, 1999, (3): 17-25.
[张翠萍, 张原锋, 高际萍. 渭河下游近期水沙特性及冲淤规律. 泥沙研究, 1999, (3): 17-25.]

[29] Chen Xuefeng, Chen Li, Li Yitian. Contrast of formulae of sediment carrying capacity for sediment-laden flow with high, median and low concentrations. Journal of Wuhan University of Hydrological and Electric Engineering, 1999, 32(5): 1-5.
[陈雪峰, 陈立, 李义天. 高、中、低浓度挟沙水流挟沙力公式的对比分析. 武汉水利电力大学学报, 1999, 32(5): 1-5.]

[30] Zhang Hongwu, Zhang Qing. The estimation formula for sediment carrying capacity in the Yellow River. Yellow River, 1992, (11): 7-9.
[张红武, 张清. 黄河水流挟沙力的计算公式. 人民黄河, 1992, (11): 7-9.]

[31] Shu Anping. Research on sediment carrying capacity for sediment-laden flow with high concentration and mechanism of sediment transportation. The PhD Thesis of Tsinghua University, 1994.
[舒安平. 高含沙水流挟沙能力及输沙机理研究. 清华大学博士学位论文, 1994.]

[32] Liu Xingnian, Cao Shuyou, Huang Er et al. Study on the sediment transporting capacity. Journal of Sediment Research, 2000, (4): 35-39.
[刘兴年, 曹叔尤, 黄尔 等. 粗细泥沙挟沙能力研究. 泥沙研究, 2000, (4): 35-39.]

[33] Liu Feng, Li Yitian. A new calculation formula for sediment carrying capacity. Journal of Yangtze River Scientific Research Institute, 1997, 14(1): 17-20.
[刘峰, 李义天. 新的水流挟沙力计算公式. 长江科学院院报, 1997, 14(1): 17-20.]

[34] Zhou Yilin. Stream frame of sediment-laden flow with high concentration in floodplain and development rule of sediment erosion and siltation in wash land and riverbed. The PhD Thesis of Wuhan Unversity of Hydrological and Electric Engineering, 1995.
[周宜林. 漫滩高含沙水流的水流结构及滩槽冲淤演变规律. 武汉水利电力大学博士学位论文, 1995.]

[35] Shu Anping. The examination and review of sediment transporting capacity. Yellow River, 1993, (1): 7-9.
[舒安平.水流挟沙力公式的验证与评述. 人民黄河, 1993, (1): 7-9.]

[36] Li Changhua. A study on sediment carrying capacity in open channel. Research on Water Conservancy and Water Transportation Sciences, 1980, (3): 78-83.
[李昌华. 明渠水流挟沙能力初步研究. 水利水运科学研究, 1980, (3): 78-83.]

[37] Sha Yuqing. Introduction of Sediment Movement. Beijing: China Industry Press, 1965.
[沙玉清. 泥沙运动学引论. 北京: 中国工业出版社, 1965.]

[38] Wang Zhaoyin, Zeng Qinghua. Experimental study on solid-nonnewtonian fluid two-phase flow. Journal of Sediment Research, 1990, (3): 1-12.
[王兆印, 曾庆华. 非牛顿体固液两相流的试验研究. 泥沙研究, 1990, (3): 1-12.]

[39] Cao Ruxuan. Study on sediment carrying capacity for sediment-laden flow with high silt concentration. Water Resource and Hydropower Engineering, 1979, (5): 55-61.
[曹如轩. 高含沙水流挟沙力的初步研究. 水利水电技术, 1979, (5): 55-61.].

[40] Walling D E, Fang D. Recent trends in the suspended sediment loads of the world's rivers. Global and Planetary Change, 2003, 39: 111-126.

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