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Fibrous root growth and water use of sugar beet

Published online by Cambridge University Press:  27 March 2009

Kay F. Brown
Affiliation:
Broom's Barn Experimental StationHigham, Bury St Edmunds, Suffolk, IP28 6NP
P. V. Biscoe
Affiliation:
Broom's Barn Experimental StationHigham, Bury St Edmunds, Suffolk, IP28 6NP

Summary

Development of the fibrous root system of sugar beet was studied by washing soil samples taken from field experiments through the growing season. At the beginning of June the root system was still poorly developed but during June there was rapid proliferation. In the top 70 cm there was only little further increase in root density after the end of June. Below 70 cm root density increased up to the end of August. Throughout the season fibrous root density decreased with depth. Despite the origin of the lateral roots from two grooves on the storage root, fibrous root distributions at each depth around individual plants were essentially uniform from mid-June onwards. In the absence of nitrogen fertilizer, fibrous root development exceeded that of a crop given fertilizer, particularly at depths greater than 50 cm early in the season. The maximum value of root density was 2·8 cm/cm3 soil recorded in the top 10 cm in mid-September. Compared with published data for other crops, the sugar-beet root system was sparser than that of winter wheat or maize but denser than that of a soya bean or cassava.

Soil water content was measured with a neutron probe. Inflows to roots were calculated from soil water content changes in different soil layers. In the top 30 cm, inflows ranged up to 10·8 μl water/cm root.day and were up to five times higher than published inflows for winter wheat. At 30–100 cm sugar beet and winter wheat inflows were generally similar. The 0–30 and 30–120 cm layers contributed about 80 and 20% respectively of the total water use by sugar beet while no uptake was recorded below 110 cm. Previous studies have shown that sugar beet often takes up water from soil deeper than 110 cm, although it is not unknown for the depth of water removal to be restricted.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1985

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References

REFERENCES

Allmaras, R. R., Nelson, W. W. & Voorhees, W. B. (1975). Soybean and corn rooting in South western Minnesota. II. Root distributions and water inflow. Soil Science Society of America Proceedings 39, 771777.CrossRefGoogle Scholar
Artschwager, E. (1926). Anatomy of vegetative organs of the sugar beet. Journal of Agricultural Research 33, 143176.Google Scholar
Asfary, A. F., Wild, A. & Harris, P. M. (1983). Growth, mineral nutrition and water use by potato crops. Journal of Agricultural Science, Cambridge 100, 87101.CrossRefGoogle Scholar
Biscoe, P. V., Draycott, A. P. & Jaggard, K. W. (1980). Weather and the growth of sugar beet. British Sugar Beet Review 48 (2), 4749.Google Scholar
Biscoe, P. V. & Messem, A. B. (1982). A record beet year – and its weather. British Sugar Beet Review 50 (4), 4144.Google Scholar
Connor, D. J., Cock, J. H. & Parra, G. E. (1981). Response of cassava to water shortage. 1. Growth and yield. Field Crops Research 4, 181200.CrossRefGoogle Scholar
Cooke, D. A., Jaggard, K. W., Draycott, A. P., Scott, R. K., Webb, D. J. & Golding, M. J. (1982). Setting up and managing an experimental farm for crop studies: the first 20 years' experience at Broom's Barn. Experimental Agriculture 18, 105123.CrossRefGoogle Scholar
Draycott, A. P. & Messem, A. B. (1977). Response of sugar beet to irrigation 1965–1975. Journal of Agricultural Science, Cambridge 89, 481493.CrossRefGoogle Scholar
Durrant, M. J., Love, B. J. G., Messem, A. B. & Draycott, A. P. (1973). Growth of crop roots in relation to soil moisture extraction. Annals of Applied Biology 74, 387394.CrossRefGoogle Scholar
Fick, G. W., Williams, W. A. & Ulrich, A. (1972). Parameters of the fibrous root system of sugar beet (Beta vulgaris L.). Crop Science 12, 108112.CrossRefGoogle Scholar
Gardner, W. R. (1960). Dynamic aspects of water availability to plants. Soil Science 89, 6373.CrossRefGoogle Scholar
Graham, J., Clarkson, D. T. & Sanderson, J. (1974). Water uptake by roots of marrow and barley plants. ARC Letcombe Laboratory Annual Report for 1973, pp. 912.Google Scholar
Gregory, P. J., McGowan, M., Biscoe, P. V. & Hunter, B. (1978 a). Water relations of winter wheat. 1. Growth of the root system. Journal of Agricultural Science, Cambridge 91, 91102.CrossRefGoogle Scholar
Gregory, P. J., McGowan, M. & Biscoe, P. V. (1978 b). Water relations of winter wheat. 2. Soil water relations. Journal of Agricultural Science, Cambridge 91, 103116.CrossRefGoogle Scholar
Hillel, D., Talpaz, H. & Van Keulen, H. (1976). A macroscopic-scale model of water uptake by a nonuniform root system and of water and salt movement in the soil profile. Soil Science 121, 242255.CrossRefGoogle Scholar
Last, P. J., Draycott, A. P., Messem, A. B. & Webb, D. J. (1983). Effects of nitrogen fertilizer and irrigation on sugar beet at Broom's Barn 1973–8. Journal of Agricultural Science, Cambridge 101, 185205.CrossRefGoogle Scholar
Lawlor, D. W. & Milford, G. F. J. (1973). The effect of sodium on growth of water-stressed sugar beet. Annals of Botany 37, 594604.CrossRefGoogle Scholar
McGowan, M. (1974). Depths of water extraction by roots. Application to soil–water balance studies. In Isotope and Radiation Techniques in Soil Physics and Irrigation Studies, 1973, pp. 435445. Vienna: International Atomic Energy Agency.Google Scholar
Milford, G. F. J., Biscoe, P. V., Jaggard, K. W., Scott, R. K. & Draycott, A. P. (1980). Physiological potential for increasing yields in sugar beet. In Opportunities for Increasing Crop Yields (ed. Hurd, R. G., Biscoe, P. V. and Dennis, C.), pp. 7185. London: Pitman.Google Scholar
Milford, G. F. J. & Lawlor, D. W. (1975). Effects of varying air and soil moisture on the water relations and growth of sugar beet. Annals of Applied Biology 80, 93102.CrossRefGoogle Scholar
Monteith, J. L. (1977). Climate and the efficiency of crop production in Britain. Philosophical Transactions of the Royal Society, London, Series B 281, 277297.Google Scholar
Nagata, N. (1970). Study of the fibrous root growth in sugar beet. Japan Sugar Beet Improvement Foundation, Sugar Beet Research Bulletin, Supplement 12, pp. 8089.Google Scholar
Newman, E. I. (1969). Resistance to water flow in soil and plant. I. Soil resistances in relation to amounts of root: theoretical estimates. Journal of Applied Ecology 6, 112.CrossRefGoogle Scholar
Russell, E. W. (1973). Soil Conditions and Plant Growth, 10th ed.London: Longman.Google Scholar
Russell, R. S. (1977). Plant Root Systems: their Function and Interaction with the Soil. New York and London: McGraw-Hill.Google Scholar
Schuurman, J. J. & Goedewaagen, M. A. J. (1971). Methods for the Examination of Root Systems and Roots, Wageningen: Centre for Agricultural Publishing and Documentation.Google Scholar
Scott, R. K. & Jaggard, K. W. (1978). How the crop grows – from seed to sugar. British Sugar Beet Review 46 (4), 1922.Google Scholar
Smith, L. P. (1967). Potential Evaporation. Technical Bulletin, 16. Ministry of Agriculture, Fisheries and Food. London: H.M.S.O.Google Scholar
Taylor, H. M. & Klepper, B. (1973). Rooting density and water extraction patterns for corn (Zea mays L). Agronomy Journal 65, 965968.CrossRefGoogle Scholar
Taylor, H. M. & Klepper, B. (1974). Water relationsof cotton. 1. Root growth and water use as related to top growth and soil water content. Agronomy Journal 66, 584588.CrossRefGoogle Scholar
Taylor, H. M. & Klepper, B. (1978). The role of rooting characteristics in the supply of water to plants. Advances in Agronomy 30, 99128.CrossRefGoogle Scholar
Tennant, D. (1975). A test of a modified line intersect method of estimating root length. Journal of Ecology 63, 9951001.CrossRefGoogle Scholar
Wallace, J. S., Clark, J. A. & McGowan, M. (1983). Water relations of winter wheat. 3. Components of leaf water potential and soil-plant water potential gradient. Journal of Agricultural Science, Cambridge 100, 581589.CrossRefGoogle Scholar
Weaver, J. E. (1926). Root Development of Field Crops. New York and London: McGraw-Hill.Google Scholar
Welbank, P. J., Gibb, M. J., Taylor, P. J. & Williams, E. D. (1974). Root growth of cereal crops. Rothamsted Report for 1973, Part II, pp. 2666.Google Scholar
Willatt, S. T. & Taylor, H. M. (1978). Water uptake by soya bean roots as affected by their depth and by soil water content. Journal of Agricultural Science, Cambridge 90, 205213.CrossRefGoogle Scholar