References
1. Gill, A. E. (1982). Atmosphere-ocean dynamics (p. 662). Orlando Fl, USA: Academic Press.
2. Peixoto, J. P., & Oort, A. H. (1992). Physics of climate (p. 520). Melville NY, USA:
AIP-Press.
3. Munk, W., & Wunsch, C. (1998). Abyssal recipes II: Energetics of tidal and wind mixing.
Deep Sea Research Part I: Oceanographic Research Papers, 45, 1977–2010.
4. van Haren, H., Maas, L., Zimmerman, J. T. F., Ridderinkhof, H., & Malschaert, H. (1999).
Strong inertial currents and marginal internal wave stability in the central North Sea.
Geophysical Reseach Letters, 26, 2993–2996.
5. Bell, T. H. (1975). Topographically generated internal waves in the open ocean. Journal
Geophysical Research, 80, 320–327.
6. LeBlond, P. H., & Mysak, L. A. (1978). Waves in the Ocean (p. 602). New York, USA:
Elsevier.
7. Morozov, E. G. (1995). Semidiurnal internal wave global field. Deep Sea Research Part I:
Oceanographic Research Papers, 42, 135–148.
8. Eriksen, C. C. (1982). Observations of internal wave reflection off sloping bottoms. Journal
Geophysical Research, 87, 525–538.
9. Thorpe, S. A. (1987). Current and temperature variability on the continental slope.
Philosophical Transactions of the Royal Society of London A, 323, 471–517.
10. Davies, A. M., Xing, J. (2005). The effect of a bottom shelf front upon the generation and
propagation of near-inertial internal waves in the coastal ocean. Journal of Physical
Oceanography, 35, 976–990.
11. Turner, J. S. (1979). Buoyancy effects in fluids (p. 368). Cambridge, UK: Cambridge
University Press.
12. Sharp, D. H. (1984). An overview of Rayleigh-Taylor instability. Physica D, 12, 3–18.
13. Marshall, J., & Schott, F. (1999). Open-ocean convection: Observations, theory and models.
Reviews of Geophysics, 37, 1–64.
14. Li, S., & Li, H. (2006). Parallel AMR code for compressible MHD and HD equations. T-7,
MS B284, Theoretical division, Los Alamos National Laboratory, http://math.lanl.gov/
Research/Highlights/amrmhd.shtml.
15. Matsumoto, Y., & Hoshino, M. (2004). Onset of turbulence by a Kelvin-Helmholtz vortex.
Geophysical Reseach Letters, 31, L02807. https://doi.org/10.1029/2003GL018195.
16. Inall, M. E., Rippeth, T. P., Griffiths, C. R., & Wiles, P. (2005). Evolution and distribution of
TKE production and dissipation within stratified flow over topography. Geophysical Reseach
Letters, 32, L08607. https://doi.org/10.1029/2004GL022289.
17. Klymak, J. M., Legg, S., & Pinkel, R. (2010). A simple parameterization of turbulent tidal
mixing near supercritical topography. Journal of Physical Oceanography, 40, 2059–2074.
18. Cimatoribus, A. A., & van Haren, H. (2015). Temperature statistics above a deep-ocean
sloping boundary. Journal of Fluid Mechanics, 775, 415–435.
19. Winters, K. B. (2015). Tidally driven mixing and dissipation in the boundary layer above
steep submarine topography. Geophysical Reseach Letters, 42, 7123–7130. https://doi.org/10.
1002/2015GL064676.
20. Dauxois, T., Didier, A., & Falcon, E. (2004). Observation of near-critical reflection of internal
waves in a stably stratified fluid. Physics of Fluids, 16, 1936–1941.
21. Ivey, G. N., & Nokes, R. I. (1989). Vertical mixing due to the breaking of critical internal
waves on sloping boundaries. Journal of Fluid Mechanics, 204, 479–500.
22. van Haren, H., Groenewegen, R., Laan, M., & Koster, B. (2005). High sampling rate
thermistor string observations at the slope of Great Meteor Seamount. Ocean Science, 1,
17–28.
23. Hosegood, P., Bonnin, J., & van Haren, H. (2004). Solibore-induced sediment resuspension in
the Faeroe-Shetland channel. Geophysical Reseach Letters, 31, L09301. https://doi.org/10.
1029/2004GL019544.
High-Resolution Observations of Internal Wave Turbulence …
143
1. Gill, A. E. (1982). Atmosphere-ocean dynamics (p. 662). Orlando Fl, USA: Academic Press.
2. Peixoto, J. P., & Oort, A. H. (1992). Physics of climate (p. 520). Melville NY, USA:
AIP-Press.
3. Munk, W., & Wunsch, C. (1998). Abyssal recipes II: Energetics of tidal and wind mixing.
Deep Sea Research Part I: Oceanographic Research Papers, 45, 1977–2010.
4. van Haren, H., Maas, L., Zimmerman, J. T. F., Ridderinkhof, H., & Malschaert, H. (1999).
Strong inertial currents and marginal internal wave stability in the central North Sea.
Geophysical Reseach Letters, 26, 2993–2996.
5. Bell, T. H. (1975). Topographically generated internal waves in the open ocean. Journal
Geophysical Research, 80, 320–327.
6. LeBlond, P. H., & Mysak, L. A. (1978). Waves in the Ocean (p. 602). New York, USA:
Elsevier.
7. Morozov, E. G. (1995). Semidiurnal internal wave global field. Deep Sea Research Part I:
Oceanographic Research Papers, 42, 135–148.
8. Eriksen, C. C. (1982). Observations of internal wave reflection off sloping bottoms. Journal
Geophysical Research, 87, 525–538.
9. Thorpe, S. A. (1987). Current and temperature variability on the continental slope.
Philosophical Transactions of the Royal Society of London A, 323, 471–517.
10. Davies, A. M., Xing, J. (2005). The effect of a bottom shelf front upon the generation and
propagation of near-inertial internal waves in the coastal ocean. Journal of Physical
Oceanography, 35, 976–990.
11. Turner, J. S. (1979). Buoyancy effects in fluids (p. 368). Cambridge, UK: Cambridge
University Press.
12. Sharp, D. H. (1984). An overview of Rayleigh-Taylor instability. Physica D, 12, 3–18.
13. Marshall, J., & Schott, F. (1999). Open-ocean convection: Observations, theory and models.
Reviews of Geophysics, 37, 1–64.
14. Li, S., & Li, H. (2006). Parallel AMR code for compressible MHD and HD equations. T-7,
MS B284, Theoretical division, Los Alamos National Laboratory, http://math.lanl.gov/
Research/Highlights/amrmhd.shtml.
15. Matsumoto, Y., & Hoshino, M. (2004). Onset of turbulence by a Kelvin-Helmholtz vortex.
Geophysical Reseach Letters, 31, L02807. https://doi.org/10.1029/2003GL018195.
16. Inall, M. E., Rippeth, T. P., Griffiths, C. R., & Wiles, P. (2005). Evolution and distribution of
TKE production and dissipation within stratified flow over topography. Geophysical Reseach
Letters, 32, L08607. https://doi.org/10.1029/2004GL022289.
17. Klymak, J. M., Legg, S., & Pinkel, R. (2010). A simple parameterization of turbulent tidal
mixing near supercritical topography. Journal of Physical Oceanography, 40, 2059–2074.
18. Cimatoribus, A. A., & van Haren, H. (2015). Temperature statistics above a deep-ocean
sloping boundary. Journal of Fluid Mechanics, 775, 415–435.
19. Winters, K. B. (2015). Tidally driven mixing and dissipation in the boundary layer above
steep submarine topography. Geophysical Reseach Letters, 42, 7123–7130. https://doi.org/10.
1002/2015GL064676.
20. Dauxois, T., Didier, A., & Falcon, E. (2004). Observation of near-critical reflection of internal
waves in a stably stratified fluid. Physics of Fluids, 16, 1936–1941.
21. Ivey, G. N., & Nokes, R. I. (1989). Vertical mixing due to the breaking of critical internal
waves on sloping boundaries. Journal of Fluid Mechanics, 204, 479–500.
22. van Haren, H., Groenewegen, R., Laan, M., & Koster, B. (2005). High sampling rate
thermistor string observations at the slope of Great Meteor Seamount. Ocean Science, 1,
17–28.
23. Hosegood, P., Bonnin, J., & van Haren, H. (2004). Solibore-induced sediment resuspension in
the Faeroe-Shetland channel. Geophysical Reseach Letters, 31, L09301. https://doi.org/10.
1029/2004GL019544.
High-Resolution Observations of Internal Wave Turbulence …
143
