Applications of fractals in soil and tillage research: A review

被引:201
作者
Perfect, E [1 ]
Kay, BD [1 ]
机构
[1] UNIV GUELPH,DEPT LAND RESOURCE SCI,GUELPH,ON N1G 2W1,CANADA
关键词
fractals; fractal dimension; scaling; soils; tillage; transport;
D O I
10.1016/0167-1987(96)81397-3
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Fractals are spatial and temporal model systems generated using iterative algorithms with simple scaling rules. This paper reviews the literature on spatial fractals as it applies to soil and tillage research. Applications of fractals in this area can be grouped into three broad categories: (i) description of soil physical properties; (ii) modeling soil physical processes; (iii) quantification of soil spatial variability. In terms of physical properties, fractals have been used to describe bulk density, pore-size distribution, pore surface area, particle-size distribution, aggregate-size distribution, ped shape and soil microtopography. In terms of physical processes, fractals have been used to model adsorption, diffusion, transport of water and solutes, brittle fracture and fragmentation. In terms of spatial variability, fractals have been applied to quantify distributions of soil properties and processes using semi-variograms, power spectra and multifractal spectra. Further research is needed to investigate the specificity of different fractal models, to collect data for testing these models, and to move from the current descriptive paradigm towards a more predictive one. Fractal theory offers the possibility of quantifying and integrating information on soil biological, chemical and physical phenomena measured at different spatial scales.
引用
收藏
页码:1 / 20
页数:20
相关论文
共 55 条
[1]   THE FRACTAL DIMENSION OF THE PORE-VOLUME INSIDE SOILS [J].
AHL, C ;
NIEMEYER, J .
ZEITSCHRIFT FUR PFLANZENERNAHRUNG UND BODENKUNDE, 1989, 152 (05) :457-458
[2]   ON THE FRACTAL DIMENSIONS OF SOME TRANSIENT SOIL PROPERTIES [J].
ARMSTRONG, AC .
JOURNAL OF SOIL SCIENCE, 1986, 37 (04) :641-652
[3]   STRUCTURE AND SELF-SIMILARITY IN SILTY AND SANDY SOILS - THE FRACTAL APPROACH [J].
BARTOLI, F ;
PHILIPPY, R ;
DOIRISSE, M ;
NIQUET, S ;
DUBUIT, M .
JOURNAL OF SOIL SCIENCE, 1991, 42 (02) :167-185
[4]   TESTING ROUGHNESS INDEXES TO ESTIMATE SOIL SURFACE-ROUGHNESS CHANGES DUE TO SIMULATED RAINFALL [J].
BERTUZZI, P ;
RAUWS, G ;
COURAULT, D .
SOIL & TILLAGE RESEARCH, 1990, 17 (1-2) :87-99
[5]   FRACTAL DESCRIPTION OF MACROPOROSITY [J].
BRAKENSIEK, DL ;
RAWLS, WJ ;
LOGSDON, SD ;
EDWARDS, WM .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1992, 56 (06) :1721-1723
[6]   MULTISCALE SOURCES OF SPATIAL VARIATION IN SOIL .1. THE APPLICATION OF FRACTAL CONCEPTS TO NESTED LEVELS OF SOIL VARIATION [J].
BURROUGH, PA .
JOURNAL OF SOIL SCIENCE, 1983, 34 (03) :577-597
[7]   SIMPLE METHOD FOR DETERMINING UNSATURATED CONDUCTIVITY FROM MOISTURE RETENTION DATA [J].
CAMPBELL, GS .
SOIL SCIENCE, 1974, 117 (06) :311-314
[8]   FRACTAL DESCRIPTION OF WETTING FRONT INSTABILITY IN LAYERED SOILS [J].
CHANG, WL ;
BIGGAR, JW ;
NIELSEN, DR .
WATER RESOURCES RESEARCH, 1994, 30 (01) :125-132
[9]   QUANTIFICATION OF FUNGAL MORPHOLOGY, GASEOUS TRANSPORT AND MICROBIAL DYNAMICS IN SOIL - AN INTEGRATED FRAMEWORK UTILIZING FRACTAL GEOMETRY [J].
CRAWFORD, JW ;
RITZ, K ;
YOUNG, IM .
GEODERMA, 1993, 56 (1-4) :157-172
[10]   ON THE RELATION BETWEEN NUMBER SIZE DISTRIBUTIONS AND THE FRACTAL DIMENSION OF AGGREGATES [J].
CRAWFORD, JW ;
SLEEMAN, BD ;
YOUNG, IM .
JOURNAL OF SOIL SCIENCE, 1993, 44 (04) :555-565