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The interrelationship of the viscosity, fat content and temperature of cream between 40° and 80°C

Published online by Cambridge University Press:  01 June 2009

L. W. Phipps
Affiliation:
National Institute for Research in Dairying, Shinfield, Reading

Summary

The dynamic viscosity coefficients η of creams containing up to 50% fat have been determined at temperatures of approximately 40, 50, 60, 70 and 80°C. All the creams behaved as Newtonian liquids, the shear stress being proportional to rate of shear up to the maximum rate used of 100 sec−1. At a given temperature a linear dependence of log η on (φ+φ5/3) was obtained for φ < 0·4, where φ is the concentration (w/w) of fat. Interpolation formulae have been derived to enable η to be calculated at any temperature between 40 and 80°C and for any fat content up to 40%. Formulae for the density ρ of cream have also been deduced to permit kinematic viscosities η/ρ to be computed. Nomograms have been constructed to enable η and ρ to be readily determined without the use of the interpolation formulae and when slight loss in accuracy is unimportant.

Type
Original Articles
Copyright
Copyright © Proprietors of Journal of Dairy Research 1969

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References

REFERENCES

Allcock, H. J. & Jones, J. R. (1950). The Nomogram, 4th edn, (rev. Michel, J. G. C.) London: Sir Isaac Pitman & Sons Ltd.Google Scholar
Betscher, J. J. (1960). Thesis. Ohio State University.Google Scholar
British Standards Institution (1955). B.S. 696, Part 2.Google Scholar
British Standards Institution (1963). B.S. 1741.Google Scholar
Caffyn, J. E. (1951). J. Dairy Res. 18, 95.CrossRefGoogle Scholar
Cox, C. P. (1952). J. Dairy Res. 19, 72.CrossRefGoogle Scholar
Goulden, J. D. S. & Phipps, L. W. (1964). J. Dairy Res. 31, 195.CrossRefGoogle Scholar
Kaye, G. W. C. & Laby, T. H. (1956). Tables of Physical & Chemical Constants, 11th edn, London: Longmans, Green & Co.Google Scholar
Leviton, A. & Leighton, A. (1936). J. phys. Chem., Ithaca 40, 71.CrossRefGoogle Scholar
Prentice, J. H. (1967). S.C.I. Monogr. no. 27, p. 265.Google Scholar
Rook, J. A. F. (1961). Dairy Sci. Abstr. 23, 251.Google Scholar
Schowalter, W. R., Chaffey, C. E. & Brenner, H. (1968). J. Colloid Interface Sci. 26, 152.CrossRefGoogle Scholar
Sherman, P. (1962). Rheol. Acta 2, 74.CrossRefGoogle Scholar
Spöttel, W. & Gneist, K. (19411943). Milchw. Forsch. 21, 214.Google Scholar
Tapernoux, A. & Vuillaume, R. (1934). Lait, 14, 449.CrossRefGoogle Scholar
Taylor, G. I. (1932). Proc. R. Soc. A. 138, 41.Google Scholar
Whitaker, R., Sherman, J. M. & Sharp, P. F. (1927). J. Dairy Sci. 10, 361.CrossRefGoogle Scholar