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Original Articles

The rôle of capillary waves in oceanic air/water gas exchange

Pages 616-628 | Received 05 Dec 1997, Accepted 15 Sep 1998, Published online: 15 Dec 2016

  • Allen, K. R. and Joseph, R. I. 1990. A canonical statistical theory of surface wind waves. EOS. Trans. Am. Geo-phys. U. 71, 73.
  • Apel, J. R. 1994. An improved model of the ocean surface wave vector spectrum and its effects on radar back-scatter. J. Geophys. Res. 99, 16279–16291.
  • Banner, M. L. 1990. Equilibrium spectra of wind waves. J. Phys. Oceanog. 20, 966–984.
  • Benjamin, T. B. and Ursell, F. 1954. The stability of the plane free surface of a liquid in vertical periodic motion. Proc. R. Soc. London, Ser. A 225, 505–515.
  • Bjerkaas, A. W. and Riedel, F. W. 1979. Proposed model for the elevation spectrum of a wind-roughened sea surface. TG 1382, The Johns Hopkins University, Applied Physics Laboratory.
  • Broecker, H.-C., Petermann, J. and Siems, W. 1978. The influence of wind on CO2 exchange in a wind-wave tunnel, including the effects of monolayers. J. Mar. Res. 36, 595–610.
  • Christiansen, B., Alstrom, P. and Levinsen, M. T. 1995. Dissipation and ordering in capillary waves at high aspect ratios. J. Fluid Mech. 291, 323–341.
  • Donelan, M. A. and Pierson, W. J. 1987. Radar scattering and equilibrium ranges in wind-generated waves with application to scatterometry. J. Geophys. Res. 92, 4971–5029.
  • Elfouhaily, T., Chapron, B., Katsaros, K. and Vandemark, D. 1997. A unified directional spectrum for long and short wind-driven waves. J. Geophys. Res. 102, 15781–15796.
  • Faraday, M. 1831. On the forms and states assumed by fluids in contact with vibrating elastic surfaces. Philos. Trans. R. Soc. London 121, 319–340.
  • Ferraro, R. R., Grody, N. C. and Marks, G. F. 1994. Effects of surface conditions on rain identification using the SSM/I. Remote Sens. Rev. 11, 195–209.
  • Goodberlet, M. A., Swift, C. T. and Wilkerson, J. C. 1989. Remote sensing of ocean surface winds with the special sensor microwave imager. J. Geophys. Res. 94, 14544–14555.
  • Henderson, D. M. and Miles, J. W. 1990. Single-mode Faraday waves in small cylinders. J. Fluid Mech. 213, 95–109.
  • Henderson, D. M. and Miles, J. W. 1991. Faraday waves in 2: 1 internal resonance. J. Fluid Mech. 222, 449–470.
  • Herterich, K. and Hasselmann, K. 1982. The horizontal diffusion of tracers by surface waves. J. Phys. Oceanog. 12, 704–711.
  • Hsu, J. R. C., Silvester, R., and Tsuchiya, Y. 1980. Bound-ary-layer velocities and mass transport in short-crested waves. J. Fluid Mech. 99, 321–342.
  • Hwang, P. A., Atakturk, S., Sletten, M. A. and Trizna, D. B. 1996. A study of the wavenumber spectra of short water waves in the ocean. J. Phys. Oceanog. 26, 1266–1285.
  • Iskandarani, M. and Liu, P. L.-F. 1991. Mass transport in three-dimensional water waves. J. Fluid Mech. 231, 417–437.
  • Jähne, B., Mfinnich, K. O. and Siegenthaler, U. 1979. Measurements of gas exchange and momentum transfer in a circular wind-water tunnel. Tellus 31, 321–329.
  • Jähne, B., Wais, T., Memery, L., Caulliex, G., Merlivat, L., Münnich, K. O. and Coantic, M. 1985. He and Rn gas exchange experiments in the large wind-wave facility of IMST. J. Geophys. Res. 90, 11989–11997.
  • Jähne, B., Münnich, K. O., Bösinger, R., Dutzi, A., Huber, W. and Libner, P. 1987. On the parameters influencing air-water gas exchange. J. Geophys. Res. 92, 1937–1949.
  • Jähne, B. and Riemer K. S. 1990. Two-dimensional wave number spectra of small-scale water surface waves. J. Geophys. Res. 95, 11531–11546.
  • Kitaigorodskii, S. A. 1983. On the theory of the equilib-rium range in the spectrum of wind generated gravity waves. J. Phys. Oceanog. 13, 816–827.
  • Klinke, J. and Jähne, B. 1992.2D wave number spectra of short wind waves: results from wind wave facilities and extrapolation to the ocean. In: Optics of the air-sea interface; theory and measurements (ed. L. Estep). SPIE Proc. 1749,1–13.
  • Large, W. G. and Pond, S. 1981. Open ocean momentum flux measurements in moderate to strong winds. J. Phys. Oceanog. 11, 324–336.
  • Liss, P. and Merlivat, L. 1986. Air-sea gas exchange rates: Introduction and synthesis. In: The role of air-sea gas exchange in geochemical cycling (ed. P. Buat-Ménard). Adv. Sci. Inst. Ser. D. Reidel Pub. Co., 113–127.
  • Mesquita, O. N., Kane, S. and Gollub, J. P. 1992. Transport by capillary waves: Fluctuating Stokes drift. Phys. Rev. A45, 3700–3705.
  • Miles, J. W. and Henderson, D. M. 1990. Parametrically forced surface waves. Ann. Rev. Fluid Mech. 22, 143–165.
  • Miles, J. W. 1993. On Faraday waves. J. Fluid Mech. 248, 671–683.
  • Milner, S. T. 1991. Square patterns and secondary instabilities in driven capillary waves. J. Fluid Mech. 225, 81–100.
  • Ocampo-Torres, F. J., Donelan, M. A., Merzi, N. and Jia, F. 1994. Laboratory measurements of mass transfer of carbon dioxide and water vapour for smooth and rough flow conditions. Tellus 46B, 16–32.
  • Phillips, O. M. 1958. The equilibrium range in the spectrum of wind-generated waves. J. Fluid Mech. 4, 426–434.
  • Phillips, O. M. 1966. The dynamics of the upper ocean, London: Cambridge University Press.
  • Pierson, W. J. and Moskowitz, L. 1964. A proposed spectral form for fully developed wind seas based on the similarity theory of S. A. Kitaigorodskii. J. Geo-phys. Res. 69, 5181–5190.
  • Ramshankar, R., Berlin, D., and Gollub, J. P. 1990. Transport by capillary waves. Part I. Particle trajectories. Phys. Fluids 2, 1955–1965.
  • Saylor, J. R. and Handler, R. A. 1997. Gas transport across an air/water interface populated with capillary waves. Phys. Fluids 9, 2529–2541.
  • Szeri, A. J. 1997. Capillary waves and air-sea gas transfer. J. Fluid Mech. 332, 341–358,
  • Vanden-Broeck, J.-M. 1984. Nonlinear gravity-capillary standing waves in water of arbitrary uniform depth. J. Fluid Mech. 139, 97–104.
  • Wu, J. 1972. Sea-surface slope and equilibrium wind-wave spectra. Phys. Fluids 15, 741–747.
  • Wu, J. 1979. Temporal rates of growth and decay of microscopic and macroscopic surface structures in a wind-wave tank. J. Phys. Oceanog. 9, 802–814.