期刊文献+

基于土性参数的土水特征曲线的预测方法 被引量:2

Study on the Prediction of SWCC from Basic Soil Properties
在线阅读 下载PDF
导出
摘要 为了降低土水特征曲线测量成本,利用基本土性参数预测粒状土和黏塑性土的土水特征曲线.分析了土性参数与土水特征曲线之间的关系,说明了采用基本土性参数来预测土水特征曲线的合理性.给出了土水特征曲线的预测方法,分别对粒状土和黏塑性土取不同土性参数的情况进行了回归拟合,给出了相应的二元、三元及四元回归方程.并将回归计算的结果与实验拟合的土水特征曲线进行了对比,结果表明,本文方法可以很好地预测土水特征曲线的基本走势. This paper explores the issue of establishing the regression relationship between soil characteristic parameters and the model of SWCC from the angle of basic physical soil properties. Firstly it discusses the soil factors which could influence SWCC, and the application of SWCC in engineering. Then it introduces the function of SWCC based on pore-size distribution curve by Fredlund and Xing. It also presents the conception and physical meaning of the equivalent capillary head. By fitting the existed experimental data with the equation of Fredlund and Xing, the fitted parameters in the model can be obtained. Then it establishes three different regression relationships, with 2, 3 and 4 independent variables respectively, for granular and plastic-cohesive materials. The calculated parameters are compared with the experimental fitted parameters. The analysis of the results of various regressions method is given, and the best regression functions are recommended. The predictions of the method could well capture the tendency of SWCC.
出处 《北京工业大学学报》 EI CAS CSCD 北大核心 2010年第11期1457-1464,共8页 Journal of Beijing University of Technology
基金 国家自然基金资助项目(50778013) 北京市自然基金资助项目(8082020) 国家重点基础研究计划(973)资助项目(2010CB732100)
关键词 土水特征曲线 等效毛细高度 土性参数 回归方法 soil-water characteristic curve, soil property, equivalent capillary head, regression
作者简介 刘艳(1983-),女,江西赣州人,博士生.
  • 相关文献

参考文献20

  • 1FREDLUND D G, XING A. Equation for soil-water characteristic curve[ J ]. Canadian Geotechnical Journal, 1994, 31 (4) : 521-532.
  • 2LEONG E, RAHARDJO H. Review of soil-water characteristic curve equations [ J ]. Journal of Geotechnieal and Geoenvironmental Engineering, 1997 ( 12 ) : 1106-1117.
  • 3KOVACS G. Seepage hydraulics, developments in water science, 10[ M]. New York: Elsevier, 1981: 125-148.
  • 4BEAR J. Dynamics of fluids in porous media[M]. New York: Elsevier, 1972: 312-323.
  • 5LOWELL S, SHIELDS J E. Powder surface area and porosity[ M ]. 3rd edition. Holand: Kluwer Academic Publishers Group, 1991 : 86-95.
  • 6IGWE G J I. Powder technology and multiphase systems gas permeametry and surface area measurement[ M]. New York: E Horwood, 1991 : 75-88.
  • 7MARSHALL T J, HOLMES J W, ROSE C W. Soil physics[ M]. 3rd edition. England: Cambridge University Press, 1996: 245- 271.
  • 8MBONIMPA M, AUBERTIN M, CHAPUIS R P, et al. Practical pedotransfer functions for estimating the saturated hydraulic conductivity [ J ]. Geotechnical and Geological Engineering, 2002, 20 ( 3 ) : 235-259.
  • 9SYDOR R C. Engineered mine tailings cover: verification of drainage behavior and investigations of design[ D]. Waterloo, Ontario: University of Waterloo Department of Civil Engineering, 1992.
  • 10BRUCH P G. A laboratory study of evaporative fluxes in homogeneous and layered soils [ D]. Saskatoon, Saskatchewan: University of Saskatchewan Civil Engineering, 1993.

同被引文献22

引证文献2

二级引证文献17

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部