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Growth, Water use and nutrient uptake from the subsoil by grass swards

Published online by Cambridge University Press:  27 March 2009

E. A. Garwood
Affiliation:
The Grassland Research Institute, Hurley, Maidenhead, Berks.
T. B. Williams
Affiliation:
The Grassland Research Institute, Hurley, Maidenhead, Berks.

Extract

1. Plant nutrients, N, P and K, were applied to the soil surface or injected at a depth of 18 in. or 30 in. in perennial ryegrass swards, when the upper horizons of the soil profile were dry.

2. When the surface soil was dry and a soil water deficit of 2 in. existed there was no response to surface applied N but injection of N into moist soil at a depth of 18 in. produced a marked increase of growth. At this depth of injection there was a significant positive interaction between N and PK.

3. There was a substantial recovery in the herbage (59–80%) of the nitrogen applied to the subsoil, provided water was available in the soil horizon in which the nitrogen was applied.

4. Failure of a grass sward to regrow after cutting when the water available to the plant has been removed from the uppermost soil horizons is largely due to a deficiency of plant nutrients in the subsoil. The major deficiency is that of nitrogen.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1967

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References

Cooke, G. W. (1964). Nitrogen fertilizers: their place in food production, the forms which are made and their efficiencies. Proc. Fertil. Soc. no. 80 London.Google Scholar
Cowling, D. W. (1961). The effect of white clover and nitrogenous fertiliser on the production of a sward. I. Total annual production. J. Br. Grassld Soc. 16, 281–90.CrossRefGoogle Scholar
Dilz, K. & Woldendorp, J. W. (1961). Distribution and nitrogen balance of 15N-labelled nitrate applied on grass sods. Proc. 8th int. Grassld Congr. 1960, pp. 150–3.Google Scholar
Farbrother, H. G. (1957). On an electrical resistance technique for the study of soil moisture problems in the field. Emp. Cott. Grow. Rev. 34, 7189.Google Scholar
Garwood, E. A. & Clement, C. R. (1966). A movable and transparent rainproof cover for experimental plots. J. agric. Engng Res. 11, 62–4.CrossRefGoogle Scholar
Garwood, E. A. & Williams, T. E. (1967). Soil water use and growth of a grass sward. J. agric. Sci., Camb. 68, 281–92.CrossRefGoogle Scholar
Jantti, A. (1956). Regrowth of pastures in relation to soil moisture and defoliation. Proc. 1th int. Grassld Congr. pp. 3344.Google Scholar
Jantti, A. & Heinonen, R. (1957). Effect of defoliation and soil moisture on grassland regrowth. J. Br. Grassld Soc. 12, 5661.CrossRefGoogle Scholar
Kernick, M. D. (1960). The recovery of fertiliser nitrogen from various depths below swards. J. Br. Grassld Soc. 15, 3440.CrossRefGoogle Scholar
Stiles, W. & Williams, T. E. (1965). The response of a ryegrass/white clover sward to various irrigation regimes. J. agric. Sci., Camb. 65, 351–64.CrossRefGoogle Scholar
Tayler, R. S. (1965). The irrigation of grassland. Outl. Agric. 4, 234–42.CrossRefGoogle Scholar
Walker, T. W., Orchiston, H. D. & Adams, A. F. R. (1954). The nitrogen economy of grass legume associations. J. Br. Grassld Soc. 9, 249–74.CrossRefGoogle Scholar
Williams, T. E. & Clement, C. R. (1966). Accumulation and availability of nitrogen in soils under leys. Proc. 1st gen. meeting Eur. Grassld Fed., Wageningen, 1965, pp. 3945.Google Scholar