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Estuary circulation: assessment and application

Published online by Cambridge University Press:  05 December 2011

R. H. F. Collar
Affiliation:
Department of Civil Engineering, University of Strathclyde
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Synopsis

The Hansen and Rattray (1966) procedure for classifying estuary circulation pattern is applied to the estuaries of the Dornoch and Cromarty Firths, and the Tay, Forth, and Clyde. All are found to be partlymixed, with the Cromarty Firth and Clyde approaching the stratified condition. The ability of the method to forecast stratification and circulation is examined by comparing predictions and field measurements in the five estuaries. Acceptable results are obtained in cases of better mixing, but some significant departures occur with low range tides and with irregular depth.

One dimensional dispersion coefficients are calculated for the five systems and vary from 70 to 1285 m2s−1. Values increase both as mixing diminishes and with distance seaward along the estuary. Comparison with the table relating values to contributing mechanisms given by Cox and Macola (1967) shows in these cases density-driven circulation to produce higher coefficients than storage basin effect. The results also suggest that transverse circulation induced by Coriolis force produces a further order of increase in dispersion coefficient, values then exceeding 500m2s−1.

Type
Research Article
Copyright
Copyright © Royal Society of Edinburgh 1978

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References

Barrett, M. J. and Mollowney, B. M., 1972. Pollution problems in relation to the Thames Barrier. Phil Trans. Roy. Soc. Lond., A272 213.Google Scholar
Collar, R. H. F. and Mackay, D. W., 1972. The Clyde hydraulic model: circulation and pollution. Wat. Poll. Res. Tech. Pap., 13, 202209.Google Scholar
Cox, G. C. and Macola, S. A., 1967. Predicting salinity in an estuary. Am. Soc. Civ. Eng. Env. Eng. Conf., Dallas.Google Scholar
Craig, R. E., 1959. Hydrography of Scottish coastal waters. Mar. Res., 2.Google Scholar
Fischer, H. B., 1970. A method for predicting pollutant transport in tidal waters. Wat. Resources Cent. Contrib. Coll. Eng., Univ. Calif., Berkeley, 132.Google Scholar
Frazer, W., Barr, D. I. H. and Smith, A. A., 1968. A hydraulic model study of heat dissipation at Longannet Power Station. Proc. Inst. Civ. Eng., 39, 2344.Google Scholar
Gameson, A. L. H., 1972. Estuaries of the United Kingdom. Wat. Poll. Res. Tech. Pap., 13, 413.Google Scholar
Glenne, B., 1967. Classification system for estuaries. Proc. Am. Soc. Civ. Eng., 93, WW1, 5561.Google Scholar
Hansen, D. V. and Rattray, M., 1965. Gravitational circulation in straits and estuaries. J. Mar. Res., 23, 104122.Google Scholar
Hansen, D. V. and Rattray, M., 1966. New dimensions in estuary classification. Limnol. Oceanogr., 11, 319326.CrossRefGoogle Scholar
Harleman, D. R. F. and Abraham, G., 1966. One-dimensional analysis of salinity intrusion in the Rotterdam waterway, Delft Hydraul. Lab. Publ., 44.Google Scholar
Pritchard, D. W., 1955. Estuarine circulation patterns. Proc. Am. Soc. Civ. Eng., 81, Sep. 717.Google Scholar
Simmons, H. B., 1955. Some effects of upland discharge on estuarine hydraulics. Proc. Am. Soc. Civ. Eng., 81, Sep. 792.Google Scholar
Stommel, H., 1953. Computation of pollution in a vertically mixed estuary. Sewage Ind. Wastes, 25, 1065–71.Google Scholar
Williams, D. J. A. and West, J. R., 1972. A one-dimensional representation of mixing in the Tay estuary. Wat. Poll. Res. Tech. Pap., 13, 118125.Google Scholar
West, J. R., 1972. Water movements in the Tay estuary. Proc. Roy. Soc. Edinb., B71, 9.Google Scholar