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A quantitative analysis of the effects of nitrogen on the growth, development and yield of oilseed rape

Published online by Cambridge University Press:  27 March 2009

E. J. Allen
Affiliation:
Department of Applied Biology, University of Cambridge
D. G. Morgan
Affiliation:
Department of Applied Biology, University of Cambridge

Summary

Two experiments carried out in 1968 and 1969 are described which examined, through growth and yield analysis, the effect of nitrogen on the growth of oilseed rape. The results of the second experiment, when 0, 105·5 and 211·0 kg N/ha were compared, are presented and discussed. The application of nitrogen increased the yields of seed and oil, principally through increased production of seeds by a larger number of pods. However, the application of nitrogen had little effect on average pod weight or average seed weight. Crop growth rates were increased by the application of nitrogen and reached their highest levels during the period of pod development when the leaf areas had declined to very low levels. The order of effects of nitrogen (N 2 > Nl > NO) was similar for LAI, number of pods per plant and number of seeds per pod and it is likely that the effect of nitrogen was achieved indirectly through an increase in the supply of assimilates to the flowers and young pods. This suggests that the maintenance of a large and photosynthetically efficient leaf area during the period of flowering is necessary for high yields in this crop.

The results also suggest that once pods are macroscopic they produce much of the assimilates needed for their own growth.

The implications of these findings with regard to both practice and further research are discussed.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1972

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References

REFERENCES

Adamczewski, K. & Musnicki, C. (1967). The rates of nitrogen fertilizer under winter turnip rape (Brassica rapa oleifera). Pam. Pulaw. No. 25. 5157. (Fid Crop Abstr. 1968, 21 Abs. 467.)Google Scholar
Allen, E. J., Morgan, D. G. & Ridgman, W. J. (1971). A physiologioal analysis of the growth of oilseed rape. J. agric. Sci., Camb. 77, 339–41.CrossRefGoogle Scholar
Appelqvist, L. A. (1968). Lipids in Cruciferae. II. Fatty acid composition of Brassica napus seed as affected by nitrogen, phosphorus, potassium and sulfur nutrition of the plants. Physiol. Plant 21, 455–65.CrossRefGoogle Scholar
Bechyne, M. & Kondra, Z. P. (1970). Effect of seed pod location on the fatty acid composition of seed oil from rape seed (Brasaica napus and Brassica campestris). Can. J. Plant Sci. 50, 151–4.CrossRefGoogle Scholar
Bhatty, R. S. (1964). Influenoe of nitrogen fertilization on the yield, protein and oil content of two varieties of rape. Can. J. Plant Sci. 44, 215–17.CrossRefGoogle Scholar
Bunting, E. S. (1969). Oilseed crops in Great Britain. Fid Crop Abstr. 22, 215–23.Google Scholar
Dybing, C. D. (1964). Influence of nitrogen level on flax growth and oil production in varied environments. Crop Sci. 4, 491–4.CrossRefGoogle Scholar
Fernando, L. H. (1958). Studies on leaf growth: effect of mineral nutrients and the interdependence of the leaves of a plant. Ph.D. thesis. University of London.Google Scholar
Flinn, A. M. & Pate, J. S. (1970). A quantitative study of carbon transfer from pod and subtending leaf to the ripening seeds of field pea (Pisum arvense L.). J. exp. Bot. 21, 7182.CrossRefGoogle Scholar
Gaastra, P. (1963). In Environmental Control of Plant Growth (ed. Evans, L. T.), p. 113. New York and London: Academio Press.CrossRefGoogle Scholar
Hughes, M. (1969). Determination of moisture and oil in the seed of winter rape (Brassica napus). II. Comparison of extraction methods for the estimation of oil. J. Sci. Fd. Agric. 20, 745–7.CrossRefGoogle Scholar
Lovell, P. H. & Lovell, P. J. (1970). Fixation of CO2 and export of photosynthate by the carpel in Pisum sativum. Physiol. Plant 23, 316–22.CrossRefGoogle Scholar
Meadley, J. T. & Milbourn, G. M. (1971). The growth of vining peas. III. The effect of shading on abscission of flowers and pods. J. agric. Sci., Camb. 77, 103–8.CrossRefGoogle Scholar
Saxena, S. S. & Sinha, S. K. (1966). Interaction of nitrogen, phosphorus and pH on growth and yield of linseed. Indian J. Pl. Physiol. 9, 2233.Google Scholar
Singh, K. D. (1968). Studies on the effect of varying levels of nitrogen and dates of sowing on yield and quality of linseed (Linum usitatisaimum Linn.). Indian J. Agron. 13, 215–18.Google Scholar
Van Steveninck, R. F. M. (1957). Faotors affecting the absoission of reproductive organs in yellow lupins (Lupinus luteus L.). I. The effect of different patterns of flower removal. J. exp. Bot. 8, 373–81.CrossRefGoogle Scholar
Van Steveninck, R. F. M. (1958). Factors affeoting the abscission of reproductive organs in yellow lupins (Lupinus luteus L.). II. The effect of growth substances, defoliation and removal of lateral growth. J. exp. Bot. 9, 372–83.CrossRefGoogle Scholar
Wetter, L. R., Ukrainetz, H. & Downey, R. K. (1970). Theeffect of chemical fertilizers on the content of oil, protein and glucosinolates in Brassica including rapeseed. Proc. Int. Conf. sci., technol. and mktg of rapeseed products. Ste. Adéle, Québec pp. 92112.Google Scholar