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Effect of variation in density and phosphate supply on seed production of Stylosanthes humilis

Published online by Cambridge University Press:  27 March 2009

H. M. Shelton
Affiliation:
Department of Agriculture, University of Queensland, St Lucia, Q., 4067, Australia
L. R. Humphreys
Affiliation:
Department of Agriculture, University of Queensland, St Lucia, Q., 4067, Australia

Summary

Stylosanthes humilis was grown at Brisbane at densities of 10, 50, 250, 850 and 3800 plants/m2 in boxes of sand which received basal nutrients, applications of 0, 10 and 50 kg P/ha as calcium dihydrogen phosphate, and frequent irrigation.

Maximum seed yield was 69 g/m2 at a density of 850 plants/m2. Seed yield was linearly related to the logarithm of density up to 250 plants/m2, and was comparatively stable over the upper density range, declining slightly at supra-optimal density. Inflorescence density exerted the primary control over seed yield, but seed set per floret and floret number per inflorescence were also influential.

The application of 50 kg P/ha increased yield of plant tops by 54% and seed yield by 20%.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1971

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References

REFERENCES

Donald, C. M. (1951). Competition among pasture plants. I. Intraspecific competition among annual pasture plants. Aust. J. agric. Res. 2, 355.Google Scholar
Donald, C. M. (1954). Competition among pasture plants. II. The influence of density on flowering and seed production in annual pasture plants. Aust. J. agric. Res. 5, 585.Google Scholar
Fisher, M. J. (1969). The growth and development of Townsville lucerne (Stylosanthes humilis) in ungrazed swards at Katherine, N.T. Aust. J. exp. agric. Anim. Husb. 9, 196.Google Scholar
Gurney, E. H. (1938). Ann. Rep. Qd Dep. agric. Stock 1936–7, p. 95. Govt Printer, Brisbane.Google Scholar
Holliday, R. (1960). Plant population and crop yield. Fld Crop Abstr. 13, 159.Google Scholar
Humphreys, L. R. (1967). Townsville lucerne: history and prospect. J. Aust. Inst. agric. Sci. 33, 3.Google Scholar
Norman, M. J. T. (1960). Performance of buffel grass and buffel grass-Townsville lucerne mixtures at Katherine, N.T. C.S.I.R.O. Australia Div. Land Res. Reg. Surv. Tech. Pap. no. 11.Google Scholar
Norman, M. J. T. (1964). The value of standing dry forage for winter cattle grazing at Katherine, Northern Territory, Australia. Ann. Arid Zone 3, 38.Google Scholar
Norman, M. J. T. & Stewart, G. A. (1967). Complementary grazing of native pasture and standing Townsville lucerne in the dry season at Katherine, N.T. Aust. J. exp. agric. Anim. Husb. 7, 225.CrossRefGoogle Scholar
Rickert, K. G. & Humphreys, L. R. (1970). Effects of variation in density and phosphate application on growth and composition of Townsville stylo (Stylosanthes humilis). Aust. J. exp. agric. Anim. Husb. 10, 442.CrossRefGoogle Scholar
Shaw, N. H., Gates, C. T. & Wilson, J. R. (1966). Growth and chemical composition of Townsville lucerne (Stylosanthes humilis). 1. Dry matter yield and nitrogen content in response to superphosphate. Aust. J. exp. agric. Anim. Husb. 6, 150.CrossRefGoogle Scholar
Sillar, D. I. (1969). Townsville lucerne in Queensland. Qd agric. J. 95, 2.Google Scholar