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Evaluation of a model of the energy system of lactating and pregnant cows

Published online by Cambridge University Press:  02 September 2010

P. J. Broadbent
Affiliation:
North of Scotland College of Agriculture, 581 King Street, Aberdeen AB9 1UD
J. H. Topps
Affiliation:
North of Scotland College of Agriculture, 581 King Street, Aberdeen AB9 1UD
J. J. Clark
Affiliation:
Scottish Farm Buildings Investigation Unit, Craibstone, Bucksburn, Aberdeen AB2 9TR
J. M. Bruce
Affiliation:
Scottish Farm Buildings Investigation Unit, Craibstone, Bucksburn, Aberdeen AB2 9TR
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Abstract

1. The model of the energy system of lactating, and pregnant, cows proposed by Bruce, Broadbent and Topps (1984) has been evaluated using data relating to 166 lactations for dairy cows and 48 lactations for beef cows. The cows in both sets of data were subjected to various nutritional and managerial regimes.

2. The discrepancies between observed and predicted values of milk (energy) and live weight were small, both as a proportion of the measured values and total energy intake. For Danish Black and White dairy cows the discrepancies for milk were virtually zero on both bases; those for live weight represented 0·020 of the total energy intake, or an over-prediction by 0·054 in late lactation. For Hereford × British Friesian beef cows, suckled by one or two calves, the discrepancies as a proportion of the total energy intake ranged from 0·005 to 0·051 for milk and 0·001 to 0·063 for live-weight change across the nutritional and managerial regimes.

3. It was concluded that the model of Bruce et al. (1984), which considers genetic potential for milk production and growth, nutritional (energy), reproductive and environmental status, may be used to predict milk yield and live-weight change simultaneously from food (energy) input.

Type
Research Article
Copyright
Copyright © British Society of Animal Science 1984

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References

REFERENCES

Agricultural Research Council. 1980. The Nutrient Requirements of Ruminant Livestock. Commonwealth Agricultural Bureaux, Slough.Google Scholar
Brown, C. A., Stallings, C. C. and Telega, S. W. 1981. Nutritional modeling and its impact on managerial goals in dairy production. J. Dairy Sci. 64: 20832095.Google Scholar
Bruce, J. M., Broadbent, P. J. and Topps, J. H. 1984. A model of the energy system of lactating and pregnant cows. Anim. Prod. 38: 351362.Google Scholar
Cowan, R. T., Robinson, J. J., Grennhalgh, J. F. D. and McHattie, I. 1979. Body composition changes in lactating ewes estimated by serial slaughter and deuterium dilution. Anim. Prod. 29: 381390.Google Scholar
Forbes, J. M. 1977. Development of a model of voluntary food intake and energy balance in lactating cows. Anim. Prod. 24: 203214.Google Scholar
Le DU, Y. L. P., Baker, R. D. and Barker, J. M. 1978. The use of short-term secretion rate measurements for estimating the milk production of suckler cows. J. Dairy Res. 45: 14.CrossRefGoogle Scholar
Linzell, J. L. 1972. Milk yield, energy loss in milk, and mammary gland weight in different species. Dairy Sci.Abstr. 34: 351360.Google Scholar
Lowman, B. G., Scott, N. and Somerville, S. 1973.Condition scoring of cattle. Bull. E. Scotl. Coll. Agric., No. 6.Google Scholar
Ministry of Agriculture, Fisheries and Food, Department of Agriculture and Fisheries for Scotland and Department of Agriculture for Northern Ireland. 1975. Energy allowances and feeding systems for ruminants. Tech. Bull. 33. Her Majesty's Stationery Office, London.Google Scholar
Mould, F. L., øRskov, E. R. and Mann, S. O. 1983. Associative effects of mixed feeds, I. Effects of type and level of supplementation and the influence of the rumen fluid pH on cellulolysis in vivo and dry matter digestion of various roughages. Anim. Feed Sci. & Tech. 10: 315330.Google Scholar
øStergaard, V. 1979. Strategies for concentrate feeding to attain optimum feeding level in high yielding dairy cows. Beretn. St. Husdyrbrugs Fors., 482.Google Scholar
Rowett Research Institute. 1976. Feedingstuffs Evaluation Unit. First Report 1975. Department of Agriculture and Fisheries for Scotland, Edinburgh.Google Scholar
School of Agriculture—Aberdeen. 1980. Performance of calves on different suckling regimes. In Research Investigations and Field Trials, 1978–1979, pp. 1718. School of Agriculture, Aberdeen.Google Scholar
School of Agriculture—Aberdeen. 1981. Performance of calves on different suckling regimes. In Research Investigations and Field Trials, 1979–1980, pp. 1112. School of Agriculture, Aberdeen.Google Scholar
School of Agriculture—Aberdeen. 1982. Dietary response of underfed beef cows suckling two calves. In Research Investigations and Field Trials, 1980–1981, pp.34. School of Agriculture, Aberdeen.Google Scholar
Tyrrell, H. F. and Reid, J. T. 1965. Prediction of the energy value of cow's milk. J. Dairy Sci. 48: 1215 (Abstr.).CrossRefGoogle ScholarPubMed
Webster, A. J. F., Ahmed, A. A. M. and Frappell–, J. P. 1982. A note on growth rates and maturation rates in beef bulls. Anim. Prod. 35: 281284.Google Scholar
Wood, P. D. P. 1979. A simple model of lactation curves for milk yield, food requirement and body weight. Anim. Prod. 28: 355363.Google Scholar
Wood, P. D. P. 1980. Breed variations in the shape of the lactation curve of cattle and their implications for efficiency. Anim. Prod. 31: 133141.Google Scholar