[1]庞靖鹏,徐宗学,刘昌明.SWAT模型研究应用进展[J].水土保持研究,2007,14(03):31-35.
 PANG Jing-peng,XU Zong-xue,LIU Chang-ming.SWAT Model Application:State-of-the-Art Review[J].Research of Soil and Water Conservation,2007,14(03):31-35.
点击复制

SWAT模型研究应用进展

参考文献/References:

[1] Bhaduri, B, Harbor, J, Engel, B, et al.Assessing watershed-scale, long-term hydrologic impacts of land-use change using a GIS-NPS model[J].Environmental Management, 2000, 26(6):643-658.
[2] Schueller.The importance of imperviousness[J].Watershed Protection Techniques, 1994, 1(3):100-111.
[3] Tsihrintzis, V A, Hamid, R.Modeling and management of urban stormwater runoff quality:A review[J].Water Resources Management, 1997, 11(2):137-164.
[4] Heng, H H, Nikolaidis, N P.Modeling of nonpoint source pollution of nitrogen at the watershed scale[J].Journal of the American Water Resources Association, 1998, 34(2):359-374.
[5] Arnold, J G, Williams, J R, Srinivasan, R, et al.Large area hydrologic modeling and assessment part I:Model development[J].Journal of the American Water Resources Association, 1998, 34(1):73-89.
[6] Neitsch, S L, Arnold, J G, Kiniry, J R, et al.Soil and water assessment tool theoretical documentation version 2000[M].College Station:Texas Water Resources Institute, 2002.
[7] Arnold, J G, Williams, J R, Nicks, A D, et al.SWRRB:A Basin Scale Simulation Model for Soil and Water Resources Management[M].College Station:Texas A&M Press, 1990.
[8] Knisel, W G.CREAMS:A field scale model for chemicals, runoff, and erosion from agricultural management systems[R].Conservation Research Report No 26.1980.
[9] Leonard, R A, Knisel, W G, Still, D A.GLEAMS:GLEAMS:Groundwater Loading Effects of Agricultural Management Systems[J].Transactions of the American Society of Agricultural Engineers, 1987, 30(5):1403-1418.
[10] Williams, J R, Jones, C A, Dyke, P T.A modelling approach to determining the relationship between erosion and soil productivity[J].Transactions-American Society of Agricultural Engineers, 1984, 27(1):129-144.
[11] Arnold, J G, Williams, J R, Maidment, D R.Continuous-time water and sediment-routing model for large basins[J].Journal of Hydraulic Engineering-ASCE, 1995, 121(2):171-183.
[12] Bera, M, Borah, D K.Watershed-scale hydrologic and nonpoint-source pollution models:Review of mathematical bases[J].Transactions of the American Society of Agricultural Engineers, 2003, 46(6):1553-1566.
[13] Romanowicz, A A, Vanclooster, M, Rounsevell, M, et al.Sensitivity of the SWAT model to the soil and land use data parametrisation:a case study in the Thyle catchment, Belgium[J].Ecological Modelling, 2005, 187(1):27-39.
[14] Neitsch, S L, Arnold, J G, Kiniry, J R, et al.Soil and Water Assessment Tool User’s Manual[M].Temple:Grassland, Soil and Water Research Laboratory, Agricultural Research Service, 2002.
[15] Morris, M D.Factorial sampling plans for preliminary computational experiments[J].Technometrics, 1991, 33(2):161-174.
[16] McKay, M D, Beckman, R J, Conover, W J.Comparison of three methods for selecting values of input variables in the analysis of output from a computer code[J].Technometrics, 1979, 21(2):239-245.
[17] Holvoet, K, van Griensven, A, Seuntjens, P, et al.Sensitivity analysis for hydrology and pesticide supply towards the river in SWAT[J].Physics and Chemistry of the Earth, Parts A/B/C, 2005, 30(8-10):518-526.
[18] Griensven, A v, Meixner, T, Grunwald, S, et al.A global sensitivity analysis tool for the parameters of multi-variable catchment models[J].Journal of Hydrology.In Press.
[19] Neitsch, S L.Differences between SWAT2000 and SWAT2005[Z].Temple:Grassland, Soil and Water Research Laboratory, Agricultural Research Service, 2005.
[20] Krysanova, V, Muller-Wohlfeil, D I, Becker, A.Integrated modelling of hydrology and water quality in mesoscale watersheds[R].PIK Report No.18.Potsdam, Germany:Potsdam Institute for Climate Impact Research(PIK).
[21] Sophocleous, M A, Koelliker, J K, Govindaraju, R S et al..Integrated numerical modeling for basin-wide water management:The case of the Rattlesnake Creek basin in south-central Kansas[J].Journal of Hydrology, 1999, 214(1-4):179-196.
[22] Eckhardt, K, Arnold, J G.Automatic calibration of a distributed catchment model[J].Journal of Hydrology, 2001, 251(1-2):103-109.
[23] Eckhardt, K, Haverkamp, S, Fohrer, N, et al..SWAT-G, a version of SWAT99.2 modified for application to low mountain range catchments[J].Physics and Chemistry of the Earth, 2002, 27(9-10):641-644.
[24] Fohrer, N, Eckhardt, K, Haverkamp, S, et al.Effects of land use changes on the water balance of a rural watershed in a peripheral region[Auswirkungen von landnutzungsanderungen auf den wasserhaushalt eines landlichen einzugsgebiets in einer peripheren region][J].Zeitschrift fur Kulturtechnik und Landentwicklung, 1999, 40(5-6):202-206.
[25] Krysanova, V, Meiner, A, Roosaare, J, et al.Simulation modelling of the coastal waters pollution from agricultural watershed[J].Ecol Modelling, 1989, 49(1-2):7-29.
[26] Krysanova, V, Muller-Wohlfeil, D I, Becker, A.Development and test of a spatially distributed hydrological/water quality model for mesoscale watersheds[J].Ecological Modelling, 1998, 106(2-3):261-289.
[27] Van Griensven, A, Bauwens, W.Integral water quality modelling of catchments[J].Water Science and Technology, 2001, 43(7):321-328.
[28] Brown, L C, Barnwell, J T O.The Enhanced Stream Water Quality Models QUAL2E and QUAL2E-UNCAS:Documentation and User Model[M].Washington:USEPA, 1987.
[29] Arnold, J G, Srinivasan, R, Muttiah, R S, et al.Continental scale simulation of the hydrologic balance[J].Journal of the American Water Resources Association, 1999, 35(5):1037-1051.
[30] Santhi, C, Arnold, J G, Williams, J R, et al.Validation of the SWAT model on a large river basin with point and nonpoint sources[J].Journal of the American Water Resources Association, 2001, 37(5):1169-1188.
[31] Weber, A, Fohrer, N, Moller, D.Long-term land use changes in a mesoscale watershed due to socio-economic factors——effects on landscape structures and functions[J].Ecological Modelling, 2001, 140(1-2):125-140.
[32] Eckhardt, K, Haverkamp, S, Fohrer, N, et al.SWAT-G, a version of SWAT99.2 modified for application to low mountain range catchments[J].Physics and Chemistry of the Earth, Parts A/B/C, 2002, 27(9-10):641-644.
[33] Van Liew, M W, Garbrecht, J.Hydrologic simulation of the Little Washita River experimental watershed using SWAT[J].Journal of the American Water Resources Association, 2003, 39(2):413-426.
[34] Tripathi, M P, Panda, R K, Raghuwanshi, N S.Identification and Prioritisation of Critical Sub-watersheds for Soil Conservation Management using the SWAT Model[J].Biosystems Engineering, 2003, 85(3):365-379.
[35] Lenhart, T, Fohrer, N, Frede, H G.Effects of land use changes on the nutrient balance in mesoscale catchments[J].Physics and Chemistry of the Earth, Parts A/B/C, 2003, 28(33-36):1301-1309.
[36] Grizzetti, B, Bouraoui, F, Granlund, K, et al.Modelling diffuse emission and retention of nutrients in the Vantaanjoki watershed(Finland) using the SWAT model[J].Ecological Modelling, 2003, 169(1):25-38.
[37] Di Luzio, M, Arnold, J G.Formulation of a hybrid calibration approach for a physically based distributed model with NEXRAD data input[J].Journal of Hydrology, 2004, 298(1-4):136-154.
[38] Bouraoui, F, Benabdallah, S, Jrad, A, et al.Application of the SWAT model on the Medjerda river basin(Tunisia)[J].Physics and Chemistry of the Earth, Parts A/B/C, 2005, 30(8-10):497-507.
[39] Behera, S, Panda, R K.Evaluation of management alternatives for an agricultural watershed in a sub-humid subtropical region using a physical process based model[J].Agriculture, Ecosystems and Environment, 2006, 113(1-4):62-72.
[40] Chu, Tzyy-Woei.Modeling hydrologic and water quality response of a mixed land use watershed in Piedmont physiographic region[D].Maryland:University of Maryland, College Park, 2003.
[41] Santhi, C, Srinivasan, R, Arnold, J G, et al.A modeling approach to evaluate the impacts of water quality management plans implemented in a watershed in Texas[J].Environmental Modelling & Software, In Press, Corrected Proof.
[42] Mo?ller, D, Kuhlmann, F.ProLand:A New Approach to Generate and Evaluate Land Use.Ⅸ[R].European Congress of Agricultural Economists.Warsaw, Poland, 1999.
[43] Chang, C C, McCarl, B A, Mjelde, J W, et al.Sectoral implications of farm program modifications[J].American Journal of Agricultural Economics, 1992, 74:38-49.
[44] Attwood, J D, McCarl, B, Chen, C C, et al.Assessing regional impacts of change:linking economic and environmental models[J].Agricultural Systems, 2000, 63(3):147-159.
[45] Jayakrishnan, R, Srinivasan, R, Santhi, C, et al.Advances in the application of the SWAT model for water resources management[J].Hydrological Processes, 2005, 19(3):749-762.
[46] Moon, J, Srinivasan, R, Jacobs, J, H.Stream flow estimation using spatially distributed rainfall in the Trinity River Basin, Texas[J].Transactions of the American Society of Agricultural Engineers, 2004, 47(5):1445-1451.
[47] 郝芳华.流域非点源污染分布式模拟研究[D].北京:北京师范大学环境学院, 2003.
[48] Hao, F H, Zhang, X S, Yang, Z F.A distributed non-point source pollution model:calibration and validation in the Yellow River Basin[J].Journal of Environmental Sciences, 2004, 16(4):646-650.
[49] 张东, 张万昌, 朱利, 等.SWAT分布式流域水文物理模型的改进及应用研究[J].地理科学, 2005, 25(4):434-440.
[50] 王中根, 刘昌明, 黄友波.SWAT模型的原理、结构及应用研究[J].地理科学进展, 2003, 22(1):79-86.
[51] 黄清华, 张万昌.SWAT分布式水文模型在黑河干流山区流域的改进及应用[J].南京林业大学学报(自然科学版), 2004, 28(2):22-26.
[52] 刘昌明, 李道峰, 田英, 等.基于DEM的分布式水文模型在大尺度流域应用研究[J].地理科学进展, 2003, 22(5):437-445.
[53] 万超, 张思聪.基于GIS的潘家口水库面源污染负荷计算[J].水力发电学报, 2003,(2):62-68.
[54] 陈军锋, 李秀彬, 张明.模型模拟梭磨河流域气候波动和土地覆被变化对流域水文的影响[J].中国科学D辑, 2004, 34(7):668-674.

相似文献/References:

[1]李佳,张小咏,杨艳昭.基于SWAT模型的长江源土地利用/土地覆被情景变化对径流影响研究[J].水土保持研究,2012,19(03):119.
 LI Jia,ZHANG Xiao-yong,YANG Yan-zhao.SWAT Model of Runoff Study under Different Land Use Land Cover Scenarios in Source Region of the Yangtze River[J].Research of Soil and Water Conservation,2012,19(03):119.
[2]杨巍,汤洁,李昭阳,等.基于SWAT模型的大伙房水库汇水区径流与泥沙模拟[J].水土保持研究,2012,19(02):77.
 YANG Wei,TANG Jie,LI Zhao-yang,et al.Streamflow and Sediment Simulation Based on SWAT Model in Dahuofang Reservoir Catchment[J].Research of Soil and Water Conservation,2012,19(03):77.
[3]黄新会,王占礼,牛振华.水文过程及模型研究主要进展[J].水土保持研究,2004,11(04):105.
 HUANG Xin-hui,WANG Zhan-li,NIU Zhen-hua.Main Progress of Research on Hydrologic Processes and Prediction Models[J].Research of Soil and Water Conservation,2004,11(03):105.
[4]丁晋利,郑粉莉.SWAT模型及其应用[J].水土保持研究,2004,11(04):128.
 DING Jin-li,ZHENG Fen-li.SWAT Model and Its Application[J].Research of Soil and Water Conservation,2004,11(03):128.
[5]张小咏,刘耕年,鞠远江,等.冰川径流模型研究进展[J].水土保持研究,2005,12(04):58.
 ZHANG Xiao-yong,LIU Geng-nian,JU Yuan-jiang,et al.A Review of the Hydrological Model in the Glacierized Drainage Basin[J].Research of Soil and Water Conservation,2005,12(03):58.
[6]金鑫,郝振纯,张金良.水文模型研究进展及发展方向[J].水土保持研究,2006,13(04):197.
 JIN Xin,HAO Zhen-chun,ZHANG Jin-liang.Research Evolution and Development Direction of Hydrological Models[J].Research of Soil and Water Conservation,2006,13(03):197.
[7]王亚军,周陈超,贾绍凤,等.基于SWAT模型的湟水流域径流模拟与评价[J].水土保持研究,2007,14(06):394.
 WANG Ya-jun,ZHOU Chen-chao,JIA Shao-feng,et al.Simulation and Assessment of Natural Runoff in Huangshui River Basin Based on SWAT[J].Research of Soil and Water Conservation,2007,14(03):394.
[8]梁小军,江洪,朱求安,等.岷江上游流域不同土地利用与气候变化的径流响应研究[J].水土保持研究,2008,15(05):30.
 LIANG Xiao-jun,JIANG Hong,ZHU Qiu-an,et al.Modelling Hydrological Response to Different Land-use and Climate Change Scenarios in the Upper Reach of Minjiang River[J].Research of Soil and Water Conservation,2008,15(03):30.
[9]杨菁荟,张万昌.SWAT模型及其在水环境非点源污染中的应用研究进展[J].水土保持研究,2009,16(05):260.
 YANG Jing-hui,ZHANG Wan-chang.Research Progress on SWAT Model and Its Application on Water Environmental Nonpoint Source Pollution[J].Research of Soil and Water Conservation,2009,16(03):260.
[10]侯统昭,李锦育.SWAT模型之初步探讨[J].水土保持研究,2009,16(06):282.
 HOU Tung-chao,LEE Chin-yu.Primarily Study for Soil and Water Assessment Tool (SWAT)[J].Research of Soil and Water Conservation,2009,16(03):282.

备注/Memo

收稿日期:2006-6-20
基金项目:北京市科技计划项目(D0704004040191)
作者简介:庞靖鹏(1976- ),男,博士研究生,研究方向为水资源与水环境.

更新日期/Last Update: 1900-01-01