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Monthly-mean residual flows through the Dover Strait, 1949–1972

Published online by Cambridge University Press:  11 May 2009

D. Prandle
Affiliation:
Institute of Oceanographic Sciences, Bidston Observatory, Merseyside

Extract

An estimate is made of the mean value of residual flow through the Dover Strait for each month over the 24–year period from 1949 to 1972. The estimates are based on results from a modelling investigation by Prandle (1978) where it was shown that the residual flow consists of three components, (a) a tidal residual, (b), a wind-driven residual and (c) a flow due to a long-term gradient in mean sea level. The components (a) and (c) are assumed to be constant and the value of (b) is deduced using wind data recorded by Dutch Light Vessels located in the southern North Sea.

The mean flow over the whole period amounts to 155 × 103 m3 s–1 into the North Sea with a maximum value of 364 x 103 m3 s–1 and a minimum of – 15 × 103 m3 s–1 (out of the North Sea). One notable feature of the complete time series is the surprisingly small variation in the annual mean flows; perhaps this stability in the annual flow is of significance to the marine biology of the area.

The validity of the computed time series is established by reference to comparable data including a 9–year record, from cross-channel submarine cables, of the potential induced by the flow of water through the Earth's magnetic field. Additional comparisons are also made with the results of a previous study of daily-mean flows.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1978

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References

REFERENCES

Alcock, G. A. & Cartwright, D. E., 1978. An analysis of 10 years' voltage records from the Dover-Sangatte cable. Deep-Sea Research (Supplementary volume: George Deacon 70th Anniversary Volume).Google Scholar
Bowden, K. F., 1950. Processes affecting the salinity of the Irish Sea. Monthly Notices of the Royal Astronomical Society. Geophysical Supplement, 6, 6389.CrossRefGoogle Scholar
Bowden, K. F., 1956. The flow of water through the Straits of Dover related to wind and differences in sea level. Philosophical Transactions of the Royal Society (A), 248, 517551.Google Scholar
Prandle, D., 1978. Residual flows and elevations in the southern North Sea. Proceedings of the Royal Society (A), 359, 189228.Google Scholar
Prandle, D. & Harrison, A. J., 1975. Relating the potential difference measured on a submarine cable to the flow of water through the Strait of Dover. Deutsche hydrographische Zeitschrift, 28, 207226.Google Scholar
Robinson, I. S. R., 1978. A theoretical model for predicting the response of the Dover-Sangatte cable to typical tidal flows. Deep-Sea Research (Supplementary volume: George Deacon 70th Anniversary Volume).Google Scholar
Schott, F., 1970. Monthly Mean Winds over the Sea Areas around Britain during 1950–1967. 17 pp. Charlottelund Slot, Denmark: International Council for the Exploration of the Sea, Hydrographic Service.Google Scholar
Smed, J., 1970. Monthly Means of Surface Temperature and Salinity for Areas of the North Sea and the North-eastern North Atlantic. International Council for the Exploration of the Sea.Google Scholar
Talbot, J. W., 1975. Changes in Plaice Larval Dispersal in the Last Fifteen Years. Contribution 41 International Council for the Exploration of the Sea Symposium on Changes in North Sea Fish Stocks.Google Scholar
Wilson, T. R. S., 1974. Caesium-137 as a water movement tracer in the St George's Channel. Nature, London, 248, 125126.Google Scholar