PA—Precision AgricultureSoil Tillage Resistance as a Tool to map Soil Type Differences

Abstract Precision agriculture is based on spatial knowledge of soil and crop conditions in the management decisions. In this paper, a method to improve determination of soil physical properties is proposed. Current practice is to analyse soil samples, taken at several locations in a field, for physical properties. To obtain a sound coverage, many soil samples have to be analysed. When soil properties are correlated, it is possible to reduce the number of soil samples of one property and enhance its spatial resolution with the information of another, more densely sampled, property. In this study, information gathered automatically during the major soil tillage operation, ploughing, is used to improve the spatial resolution of sampled topsoil clay content. Plough draught was measured during two seasons on a 6 ha field. The specific plough draught varied between 30 and 50 kNm −2 . Clay content varied between 6 and 22% and topsoil moisture content range was 120–240 g kg −1 during the first year and 180–300 g kg −1 in the second year. The specific plough draught maps of both years showed a similar spatial pattern with a cross correlation coefficient at zero distance of 0·6. The use of specific plough draught as co-variable in the co-kriging technique made it possible to decrease the number of topsoil clay content samples from 60 to 18 ha −1 with only 20% increase in prediction error. On this field, the spatial variation in top soil clay content was correlated with the spatial variation of the crop yield.

[1]  D. Goense,et al.  Differences in barley grain yields as a result of soil variability , 1993, The Journal of Agricultural Science.

[2]  B. D. Witney,et al.  The determination of plough draught—Part I. prediction from soil and meteorological data with cone index as the soil strength parameter , 1982 .

[3]  N. B. McLaughlin,et al.  ENERGY REQUIREMENTS FOR CONVENTIONAL TILLAGE FOLLOWING DIFFERENT CROP ROTATIONS , 1997 .

[4]  C.G.Bowers Tillage Draft and Energy Measurements for Twelve Southeastern Soil Series , 1989 .

[5]  Alfred Stein,et al.  Methods for comparing spatial variability patterns of millet yield and soil data. , 1997 .

[6]  Timothy M. Harrigan,et al.  Draft relationships for tillage and seeding equipment , 1995 .

[7]  S. A. Al-Suhaibani,et al.  DRAFT OF PRIMARY TILLAGE IMPLEMENTS IN SANDY LOAM SOIL , 1998 .

[8]  Richard J. Godwin,et al.  A Novel Approach to the Prediction of Tillage Tool Draught using a Standard Tine , 1997 .

[9]  A. Canarache A preliminary model estimating soil specific resistance to ploughing , 1993 .

[10]  A. Khalilian,et al.  Draft Relationships for Primary Tillage in Oklahoma Soils , 1986 .

[11]  Wolfgang Paul Zugkraftmessungen zur Teilschlagkartierung , 1992 .

[12]  D. H. Rackham,et al.  The determination of plough draught—Part II the measurement and prediction of plough draught for two mouldboard shapes in three soil series , 1982 .

[13]  Richard J. Godwin,et al.  Prediction of Tillage Implement Draught using Cone Penetrometer Data , 1999 .