ZHANG Pengyu, WANG Quanjiu, ZHOU Beibei. Cultivated Soil Erodibility in Shaanxi Province[J]. Bulletin of Soiland Water Conservation, 2016, 36(5): 100-106.
DOI:
ZHANG Pengyu, WANG Quanjiu, ZHOU Beibei. Cultivated Soil Erodibility in Shaanxi Province[J]. Bulletin of Soiland Water Conservation, 2016, 36(5): 100-106. DOI: 10.13961/j.cnki.stbctb.2016.05.025.
以陕西省9个地区的耕地土壤实测数据为基础,利用通用土壤流失方程USLE(universal soil loss equation)、修订土壤流失方程RUSLE2(revised universal soil loss equation version 2)、侵蚀生产力影响模型EPIC(erosion productivity impact calculator)中可蚀性因子K值的计算公式以及几何平均粒径公式和几何平均粒径-有机质Dg-OM公式,计算不同耕地土壤质地条件下的土壤可蚀性因子。[结果
[Objective] Soil erodibility is a key factor of calculating the soil erosion
and the investigation of cultivated soil erodibility provide the scientific basic to calculate and evaluate soil erosion in Shaanxi Province.[Methods] The soil data was from nine experimental plots that distributed in Shaanxi Province of China. To calculate soil erodibility of these areas
we utilized five commonly used models
which are universal soil loss equation(USLE)
revised universal soil loss equation version 2(RUSLE2)
Erosion productivity impact calculator(EPIC)
geometric mean diameter(Dg) and geometric mean diameter-organic matter(Dg-OM).[Results] The equation of very fine sand(VFS) in RUSLE2 underestimated 14.53% of VFS content in hilly area of Losses Plateau of Shaanxi Province and overestimated 32.91% of VFS content in the Southern Shaanxi Province. Based on the measured values
the revised equation reduced the average calculation error of VFS content to 7.81% and 13.14% respectively. Secondly
comparison of K values
the measured K value in Zizhou County is 0.002 69[(t·hm2·h)/(hm2·MJ·mm)]
the mean K value of Dg-OM model is 0.029 7[(t·hm2·h)/(hm2·MJ·mm)]. Thirdly
the interrill erodibility(Ki) and rill erodibility(Kr) parameters in water erosion prediction project model(WEPP) were calculated and the correlation of erodibility parameter between Ki
Kr and K of USLE were 0.738 6 and 0.607 4.[Conclusion] The average calculation error of revised equation of very fine sand is less than the equation of very fine sand in RUSLE2. Dg-OM model was suitable for calculation the soil erodibility in hilly area of Losses Plateau of Shaanxi Province and the area of Changwu County
Yangling District and Ankang City. Moreover
Ki and Kr parameters in WEPP was found the good correlation of erodibility parameter between USLE and WEPP model when the sand content was less than 30%.
关键词
Keywords
references
唐科丽,史立人,史德明.中国水土保持[M].北京:科学出版社,2004.
景可,王万忠,郑粉莉.中国土壤侵蚀与环境[M].北京:科学出版社,2005:83-96.
王彬,郑粉莉, R mkens M J M.水蚀过程的土壤可蚀性研究评述[J].水土保持研究,2013,20(1):277-286.
Wischmeier W H, Smith D D. Predicting rainfall erosion losses[M]. U. S. Government Printing Office, Washington D. C, USA:United States Department of Agriculture Agricultural Handbook, 537, 1978.
USDA-Agriculture Research Service, Revised Universal Soil Loss Equation2[M/OL]. (2013-12-05)[2015-12-12].Http://www.ars.usda.gov/Research/docs.htm?docid=6010.
Sharply A N, Williams J R. EPIC:Erosion/Productivity Impact Calculator. Model Documentation[M]. U.S. Department of Agricuture Technical Bulletin, 1990.
Nearing M A, Foster G R, Lane L J, et al. A process-based soil erosion model for USDA:water erosion prediction project technology[J]. Transactions of the ASAE, 1989,32(5):1587-1593.
Morgan R P C. Soil Erosion and Conservation(3rd ed)[M].M A:Blackwell Publishing, 2005:116-149.
Romero C C, Stroosnijder L, Baigorria G A. Interrill[KG8mm] and rill erodibility in the Northern Andean Highlands[J]. Catena, 2007,70(2):105-113.
R mkens M J M, Roth C B, Nelson D W. Erodibility of selected clay subsoils in relation to physical and chemical properties[J]. Soil Science Society of America Journal, 1977,41(5):954-960.
Wang Bin, Zheng Fenli, R mkens M J M. Comparison of soil erodibility factors in USLE, RUSLE2, EPIC and Dg models based on a Chinese soil erodibility database[J]. Soil and Plant Science, 2013,63(1):69-79.
Foster G P. Science documentation:Revised universal soil loss equation, Version 2(RUSLE2)[Z]. USDA:Agricultural Research Service, Washington D C, 2005.
Williams J R. Computer models of watershed hydrology[M]. Water Resources Publications,1995.
Shirazi M A, Boersma L. A unifying quantitative analysis of soil texture[J]. Soil Science Society of America Journal, 1984,48(1):142-147.
Assessment of WEPP Model Applicability(Hillslope Version) on Hill-gully Region of the Loess Plateau--A Case Study in Slope Length Factor
The Amount of Soil Erosion in Baoxiang Watershed of Dianchi Lake Based on GIS and USLE
Assessment of WEPP Model Applicability in Black Soil Zone of Northeast China-A Case Study of Slope Gradient and Soil and Water Conservation Measures
Soil Erosion Sensitivity Assessment for Poyang Lake Basin Based on GIS and USLE
Assessment and Feature Analysis of Soil Erosion in Mountainous Area of Guangdong Province Based on USLE
Related Author
Wang Jianxun
Zheng Fenli
Jiang Zhongshan
Zhang Xunchang
ZHAO Lei
YUAN Guo-lin
ZHANG Yan
HE Bin
Related Institution
College of Resource and Environment, Northwest Agriculture and Forestry University, Yangling
The State Key Laboratory of Soil Erosion and Dryland Farming on Loess Plateau, Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, Yangling
USDA-ARS Grazinglands Research Laboratory, EI Reno, Oklahoma 73036, U. S