A case study of the near-inertial oscillations near the Xisha Islands in the South China Sea during the passage of typhoon Conson 2010
Keywords:
damped slab model, red-shift phenomenon, numerical modelAbstract
Near-inertial oscillations in the northern South China Sea, close to the Xisha Islands, during the passage of typhoon Conson, were investigated using 52-day observational data and a damped slab model. Using spectral analyses, we found that these near-inertial oscillations were dominated by clockwise components. The observed, as well as simulated, inertial currents matched well before and after the passage of the typhoon, which revealed that significantly enhanced oscillations were induced by the typhoon. They have a peak frequency of 0.0237 cycles per hour, which is 2% lower than the local inertial frequency, meaning a red-shift phenomenon exists, even in shallow water. The red-shift might be attributed to the background negative vorticity. Additionally, we found that the barotropic near-inertial currents were more significant after the passage of the typhoon. The position of the maximum intensity of near-inertial current shear with a period of 20.8 h was found to propagate upward slowly with time before the passage of the typhoon.
References
Alford, M. H., 2003. Fine-structure contamination: Observations and a model of a simple two-wave case. J. Phys. Oceanogr. 31, 2645–2649.
Chant, R. J., 2001. Evolution of near-inertial waves during an upwelling event on the New Jersey inner shelf. J. Phys. Oceanogr. 31, 746–764.
Corkright, M. E., Lorcanini, R. A., Garcia, H. E., O'Brien, T. D., Boyer, T. P., Stephens, C., Antonov, J. I., 2002. World Ocean Atlas 2001: Objective Analyses, Data Statistics, and Figures, CD-ROM Documentation. National Oceanographic Data Center, Silver Spring, MD, 17.
D'Asaro, E. A., 1985. The energy flux from the wind to near-inertial motions in the mixed layer. J. Phys. Oceanogr. 15, 943–959.
Garrett, C., 2001. What is the “near-inertial” band and why is it different from the rest of the internal wave spectrum? J. Phys. Oceanogr. 31, 962–971.
Gill, A. E., 1982. Atmosphere-Ocean Dynamics. Academic, San Diego, CA.
Gill, A. E., 1984. On the behavior of inertial waves in the wakes of storms. J. Phys. Oceanogr. 14, 1129–1151.
Hisaki, Y., Naruke, T., 2003. Horizontal variability of near-inertial oscillations associated with the passage of a typhoon. J. Geophys. Res. 108(C12), 3382.
Ke, P. H., Huang, Q. Z., Chen, F. P., Huang, H. W., Feng, S. Y., 1987. Preliminary analysis of the continental shelf current in northern South China Sea driven typhoon. Sci. Atmos. Sinica 11, 441–445, (In Chinese, English abstract).
Kunze, E., 1985. Near-inertial wave propagation in geostrophic shear. J. Phys. Oceanogr. 15, 544–565.
Leaman, K. D., Sanford, T. B., 1975. Vertical energy propagation of internal waves: a vector spectral analysis of velocity profiles. J. Geophys. Res. 80, 1975–1978.
Liu, J. L., Cai, S. Q., Wang, S. A., 2010. Current and mixing on the Northern South China Sea. Chin. J. Oceanol. Limnol. 28, 974–980.
Liu, J. L., Cai, S. Q., Wang, S. A., 2011. Observations of strong near-bottom current after the passage of Typhoon Pabuk in the South China Sea. J. Mar. Syst. 87, 102–108.
Liu, Y., Weisberg, R. H., 2005. Momentum balance diagnoses for the West Florida Shelf. Cont. Shelf Res. 25, 2054–2074.
Perkins, H., 1972. Inertial oscillations in the Mediterrranean. Deep Sea Res. 19, 289–296.
Perkins, H., 1976. Observed effect of an eddy on inertial oscillations. Deep Sea Res. 23, 1037–1042.
Peters, H., Shay, L. K., Mariano, A. J., Cook, T. M., 2002. Current variability on a narrow shelf with large ambient vorticity, J. Geophys. Res. 107(C8), 3087, doi:10.1029/2001JC000813.
Pollard, R. T., Millard, R. C., 1970. Comparison between observed and simulated wind-generated inertial oscillations. Deep-Sea Res. 17, 813–821.
Shay, L. K., Lee, T. N., Williams, E. J., Graber, H. G., Rooth, C. G., 1998. Effects of low-frequency current variability on near-inertial submesoscale vortices. J. Geophys. Res. 103, 18691–18714.
Sun, L., Zheng, Q. A., Wang, D. X., Hu, J. Y., Tai, C. K., Sun, Z. Y., 2011a. A case study of near-inertial oscillation in the South China Sea using mooring observations and satellite altimeter data. J. Oceanogr. 56(6), 677–687.
Sun, Z. Y., Hu, J. Y., Zheng, Q. A., Li, C. Y., 2011b. Strong near-inertial oscillations in geostrophic shear in the northern South China Sea. J. Oceanogr. 67, 377–384.
Watanabe, M., Hibiya, T., 2002. Global estimates of the wind-induced energy flux to inertial motions in the surface mixed layer. Geophys. Res. Lett. 29, doi:10.1029/2001GL014422.
Zhai, X., Greatbatch, R. J., Eden, C., 2007. Spreading of near-inertial energy in a 1/12 model of the North Atlantic Ocean. Geophys. Res. Lett. 34:L10609.
Zhang, X., Liang, X., Tian, J., 2005. Study on internal tides and near-inertial motions in the upper 450 m ocean in the northern South China Sea. Chin. Sci. Bull. 50, 2027–2031.
Zhang, Y. W., 2009. Study on wind-induced turbulent mixing on the South China Sea shelf and long-term mixing observation. Ph. D. dissertation, Ocean University of China.
Published
Issue
Section
License
Manuscripts must be original. They must not be published or be under consideration for publication elsewhere, in whole or in part. It is required that the lead author of accepted papers complete and sign the MSU Press AEHM Author Publishing Agreement and provide it to the publisher upon acceptance.