TRANSPORT OF WATER DUE TO A TEMPERATURE-GRADIENT IN UNSATURATED FROZEN CLAY

被引:10
作者
NAKANO, Y
TICE, AR
机构
[1] U.S. Army Cold Regions Research and Engineering Laboratory, Hanover
关键词
20;
D O I
10.1016/0165-232X(90)90038-X
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
As reported experimental data indicate, the net flux of water f in a fine-grained soil column was assumed to be given as: f=-D1(w,T) αw αx-ρD2 (w,T) αT αx where ρ{variant} is the dry density, T is the temperature (°C), w is the content of water in all phases, x is the coordinate, and empirical functions D1 and D2 are the properties of a given soil. Under this assumption a new experimental method was introduced to determine D2 of a soil with known D1. The D2 of Morin clay was determined as a function of w at several temperatures ranging between - 1.0 and 1.0°C. A common feature found is that D2 increases with increasing w, attains its maximum near or not far from a point where w is equal to the equilibrium unfrozen water content, and then decrease when T is negative. However, D2 increases with increasing w up to about 14%, and then remains more or less constant as w increases when T is positive. Because of this behavior of D2 a sudden change (or discontinuity) of D2 occurs near a point where T = 0°C when w is greater than 14%. The validity of the assumed functional description of the flux f is discussed based on some recent results of mathematical analysis on degenerate quasi-linear equations of parabolic type. © 1990.
引用
收藏
页码:57 / 75
页数:19
相关论文
共 20 条
[1]   CLOSED-SYSTEM FREEZING OF UNSATURATED SOIL [J].
DIRKSEN, C ;
MILLER, RD .
SOIL SCIENCE SOCIETY OF AMERICA PROCEEDINGS, 1966, 30 (02) :168-+
[2]   MOVEMENT OF WATER IN SOIL DUE TO A TEMPERATURE GRADIENT [J].
GURR, CG ;
MARSHALL, TJ ;
HUTTON, JT .
SOIL SCIENCE, 1952, 74 (05) :335-345
[3]  
HADLEY W. A., 1955, TRANS AMER GEOPHYS UNION, V36, P615
[4]  
HILLEL D, 1971, SOIL WATER PHYSICAL
[6]  
HUTCHEON WL, 1958, HIGHWAY RES BOARD SP, V40, P113
[7]  
Ladyzhenskaya O. A., 1968, TRANSL MATH MONOGRAP, V23
[8]  
LAVENTEV MM, 1987, SIBIRSKII MAT ZH, V28, P79
[9]   TRANSPORT OF WATER IN FROZEN SOIL .6. EFFECTS OF TEMPERATURE [J].
NAKANO, Y ;
TICE, AR .
ADVANCES IN WATER RESOURCES, 1987, 10 (01) :44-50
[10]   TRANSPORT OF WATER IN FROZEN SOIL .5. METHOD FOR MEASURING THE VAPOR DIFFUSIVITY WHEN ICE IS ABSENT [J].
NAKANO, Y ;
TICE, AR ;
JENKINS, TF .
ADVANCES IN WATER RESOURCES, 1984, 7 (04) :172-179