Research Article

Effect of Tillage and Maize - Cowpea Intercrop on Fractal Features of Particle and Aggregate Size Distribution on a Tropical Sandy Loam Soil in Southwest Nigeria

1 Department of Soil Science and Land Management, University of Agriculture, Abeokuta. Nigeria
2 Department of Crop and Soil Science, Faculty of Agriculture, University of Port Harcourt, Port Harcourt, Rivers State, Nigeria.
3 Department of Soil Science and Land Management, Federal University of Agriculture, P.M.B. 2240, Abeokuta 110001, Ogun-State, Nigeria
4 Department of Soil Science and Land Management, Federal University of Agriculture, P. M. B., 2240, Abeokuta, Ogun-State, Nigeria
5 Department of Plant Physiology and Crop Production, Federal University of Agriculture, P.M. B. 2240, Abeokuta 110001, Ogun-State, Nigeria
6 Department of Biological and Environmental Sciences, Alabama Agricultural and Mechanical University, 4900 Me-ridian Street North, Normal, Alabama 35762, USA
7 Department of Soil Science and Land Management, College of Plant Science and Crop Production, Federal University of Agriculture, Abeokuta, P.M.B. 2240, Ogun State, Nigeria.
* Corresponding author: adesodunjk@funaab.edu.ng
Published: Apr, 2020
Pages: 102-110
Views: 503
Downloads: 624

Abstract

The effects of tillage and cropping pattern on soil aggregation, fractal dimensions and distribution of organic carbon fractions were studied. Treatments were no- tillage (NT), conventional tillage (CT), and four cropping patterns viz: sole maize, sole cowpea, maize-cowpea intercrops and control (no crop). Soil samples were analysed for particle size distribution (PSD), aggregation ratio (AR), mean- weight diameter (MWD) and aggregated silt+clay (ASC). Mass fractal dimension (Dm) was obtained from PSD, while fragmentation fractal dimension (Df) was obtained from aggregate sizes. Total organic carbon (TOC), free and occluded particulate organic carbon (fPOC and oPOC), were measured. Results showed that structural stability at micro-aggregate scale measured by aggregated silt + clay (ASC) was significantly (p < 0.05) highest for NT (4.07) than CT (1.58). The CT significantly (P ≤ 0.05) reduced the larger aggregate fraction (5.66-2.00 mm). The difference in fractal dimensions was significantly higher with NT than control with CT. Lower difference between Dm and Df with CT represents high- er degree of fragmentation of aggregates. Correlation showed significant positive linear relationships between Dm and sand (p < 0.05, r = 0.627) and negative rela- tionship with silt and clay (r = -0.675). Therefore, fractal dimensions derived from aggregates sizes rather than particle size distribution reflected the impact of land management practices on fragmentation of aggregates of most tropical soils.

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How to Cite

Kayode, A. J., E., U. B., O, A. A., O.,, A. C., O., A. M., A., O. F., M., M., & C.O,, O. (2020). Effect of Tillage and Maize - Cowpea Intercrop on Fractal Features of Particle and Aggregate Size Distribution on a Tropical Sandy Loam Soil in Southwest Nigeria. Nigerian Journal of Soil Science, 30(1), 102-110. https://doi.org/10.67042/njss.2020.ttcoq0hh

A. J. Kayode, U. B. E., A. A. O, A. C. O.,, A. M. O., O. F. A., M. M., and O. C.O,, "Effect of Tillage and Maize - Cowpea Intercrop on Fractal Features of Particle and Aggregate Size Distribution on a Tropical Sandy Loam Soil in Southwest Nigeria," Nigerian Journal of Soil Science, vol. 30, no. 1, pp. 102-110, April 2020. doi: 10.67042/njss.2020.ttcoq0hh

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