Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Cacchione, D. A.
Pratson, L. F.
and
Ogston, A. S.
2002.
The Shaping of Continental Slopes by Internal Tides.
Science,
Vol. 296,
Issue. 5568,
p.
724.
Staquet, C.
and
Sommeria, J.
2002.
INTERNAL GRAVITY WAVES: From Instabilities to Turbulence.
Annual Review of Fluid Mechanics,
Vol. 34,
Issue. 1,
p.
559.
Hosegood, Phil
and
van Haren, Hans
2003.
Ekman-induced turbulence over the continental slope in the Faeroe–Shetland Channel as inferred from spikes in current meter observations.
Deep Sea Research Part I: Oceanographic Research Papers,
Vol. 50,
Issue. 5,
p.
657.
NAKAYAMA, Keisuke
and
IMBERGER, Jorg
2005.
APPLICABILITY OF CARRIER AND GREENSPAN'S THEORY FOR INTERNAL WAVES SHOALING ON A SLOPE.
Doboku Gakkai Ronbunshu,
Vol. 2005,
Issue. 789,
p.
789_59.
Thorpe, S. A.
2005.
The Turbulent Ocean.
Legg, Sonya
and
Huijts, Karin M.H.
2006.
Preliminary simulations of internal waves and mixing generated by finite amplitude tidal flow over isolated topography.
Deep Sea Research Part II: Topical Studies in Oceanography,
Vol. 53,
Issue. 1-2,
p.
140.
Antenucci, Jason P.
and
Ivey, Gregory N.
2006.
Observations of bottom intensification of temperature and velocity fluctuations induced by oblique tidal interactions with a slope.
Marine and Freshwater Research,
Vol. 57,
Issue. 3,
p.
255.
Gostiaux, Louis
Dauxois, Thierry
Didelle, Henri
Sommeria, Joel
and
Viboud, Samuel
2006.
Quantitative laboratory observations of internal wave reflection on ascending slopes.
Physics of Fluids,
Vol. 18,
Issue. 5,
Reeder, D. Benjamin
Ma, Barry B.
and
Yang, Yiing Jang
2011.
Very large subaqueous sand dunes on the upper continental slope in the South China Sea generated by episodic, shoaling deep-water internal solitary waves.
Marine Geology,
Vol. 279,
Issue. 1-4,
p.
12.
Abdilghanie, Ammar M.
and
Diamessis, Peter J.
2012.
On the generation and evolution of numerically simulated large-amplitude internal gravity wave packets.
Theoretical and Computational Fluid Dynamics,
Vol. 26,
Issue. 1-4,
p.
205.
Pomar, L.
Morsilli, M.
Hallock, P.
and
Bádenas, B.
2012.
Internal waves, an under-explored source of turbulence events in the sedimentary record.
Earth-Science Reviews,
Vol. 111,
Issue. 1-2,
p.
56.
Zhou, Qi
and
Diamessis, Peter J.
2013.
Reflection of an internal gravity wave beam off a horizontal free-slip surface.
Physics of Fluids,
Vol. 25,
Issue. 3,
Pomar, Luis
Mateu-Vicens, Guillem
Morsilli, Michele
and
Brandano, Marco
2014.
Carbonate ramp evolution during the Late Oligocene (Chattian), Salento Peninsula, southern Italy.
Palaeogeography, Palaeoclimatology, Palaeoecology,
Vol. 404,
Issue. ,
p.
109.
Lamb, Kevin G.
2014.
Internal Wave Breaking and Dissipation Mechanisms on the Continental Slope/Shelf.
Annual Review of Fluid Mechanics,
Vol. 46,
Issue. 1,
p.
231.
Legg, Sonya
2014.
Scattering of Low-Mode Internal Waves at Finite Isolated Topography.
Journal of Physical Oceanography,
Vol. 44,
Issue. 1,
p.
359.
Belde, Johannes
Back, Stefan
Reuning, Lars
and
Eberli, Gregor
2015.
Three‐dimensional seismic analysis of sediment waves and related geomorphological features on a carbonate shelf exposed to large amplitude internal waves, Browse Basin region, Australia.
Sedimentology,
Vol. 62,
Issue. 1,
p.
87.
Ma, Xiaochuan
Yan, Jun
Hou, Yijun
Lin, Feilong
and
Zheng, Xufeng
2016.
Footprints of obliquely incident internal solitary waves and internal tides near the shelf break in the northern South China Sea.
Journal of Geophysical Research: Oceans,
Vol. 121,
Issue. 12,
p.
8706.
Belde, Johannes
Reuning, Lars
and
Back, Stefan
2017.
Bottom currents and sediment waves on a shallow carbonate shelf, Northern Carnarvon Basin, Australia.
Continental Shelf Research,
Vol. 138,
Issue. ,
p.
142.
Xie, Xiaohui
Liu, Qian
Zhao, Zhongxiang
Shang, Xiaodong
Cai, Shuqun
Wang, Dongxiao
and
Chen, Dake
2018.
Deep Sea Currents Driven by Breaking Internal Tides on the Continental Slope.
Geophysical Research Letters,
Vol. 45,
Issue. 12,
p.
6160.
Borisov, Dmitrii
2019.
Seismic evidence of bottom current controlled sedimentation in the Ceará Rise region (central Atlantic).
Journal of South American Earth Sciences,
Vol. 96,
Issue. ,
p.
102354.