61
Storm Impact on the Coastal Geomorphology and Current Field
Hedges, T. S. (1976). An empirical modification to linear wave theory. Proceedings of the
Institution of Civil Engineers, 61(2), 575–579.
Hennings, I. (1990). Radar imaging of submarine sand waves in tidal channels. Journal of
Geophysical Research, 95, 9713–9721.
Hennings, I. (1998). An historical overview of radar imagery of sea bottom topography.
International Journal of Remote Sensing, 19, 1447–1454.
Hennings, I. and Herbers, D. (2006). Radar imaging mechanism of marine sand waves at very
low grazing angle illumination caused by unique hydrodynamic interactions. Journal of
Geophysical Research, 111, C10008, doi:10.1029/2005JC003302.
Hennings, I., Herbers, D., Prinz, K., and Ziemer, F. (2004). On waterspouts related to marine
sandwaves. Paper presented at the Marine Sandwave and River Dune Dynamics
International Workshop, University of Twente, Enschede, The Netherlands, 1–2 April
2004.
Hessner, K. and Bell, P. (2009). High-resolution current and bathymetry determined by nautical X-band radar in shallow waters. Paper presented at OCEANS 2009—EUROPE,
2009, OCEANS ’09.
Hirakuchi, H. and Ikeno, M. (1990). Wave direction measurement using marine X-band radar.
Paper presented at 22nd ICCE, Delft.
Holland, T. K. (2001). Application of the linear dispersion relation with respect to depth
inversion and remotely sensed imagery. IEEE Transactions on Geoscience and Remote
Sensing, 39(9), 2060–2072.
Holman, R. A., Sallenger, A. H., Lippmann, T. C., and Haines, J. W. (1993). The application
of video image processing to the study of nearshore processes. Oceanography, 6(3),
78–85.
Holman, R. and Stanley, J. (2007). The history and technical capabilities of Argus. Coastal
Engineering, 54, 477–491.
Hoogeboom, P. and Rosenthal, W. (1982). Directional wave spectra in radar images. Paper
presented at IGARSS, IEEE.
Hyunjun, K. and Johnson, J. T. (2002). Radar image study of simulated breaking waves. IEEE
Transactions on Geoscience and Remote Sensing, 40(10), 2143–2150.
Kakoulaki, G. (2009). Study of the interaction between the current field and structures in the
bathymetry in a tidal inlet. Christian Albrechts University, Kiel.
Krishen, K. (1971). Correlation of radar backscatter cross-sections with ocean wave height
and wind velocity. Journal of Geophysical Research, 76, 6528–6539.
Lane, A., Knight, P. J., and Player, R. J. (1999). Current measurement technology for nearshore waters. Coastal Engineering, 37(3–4), 343–368.
Lane, A., Riethmuller, R., Herbers, D., Rybaczok, P., Gunther, H., and Baumert, H. (2000).
Observational data sets for model development. Coastal Engineering, 41(1–3), 125–153.
Lee, P. H. Y., Barter, J. D., Beach, K. L., Hindman, C. L., Lake, B. M., Rungaldier, H., Shelton,
J. C., Williams, A. B., Yee, R., and Yuen, H. C. (1995). X band microwave backscattering from ocean waves. Journal of Geophysical Research, 100, 2591–2611.
Lindhorst, S., Betzler, C., and Hass, H. C. (2008). The sedimentary architecture of a Holocene
barrier spit (Sylt, German Bight): Swash-bar accretion and storm erosion. Sedimentary
Geology, 206(1–4), 1–16.
Mattie, M. G. and Lee, H. D. (1978). The use of imaging radar in studying ocean. Paper presented at 16th ICCE, ASCE.
McGregor, J. A., Poulter, E. M., and Smith, M. J. (1998). S band Doppler radar measurements
of bathymetry, wave energy fluxes, and dissipation across an offshore bar. Journal of
Geophysical Research, 103, 18779–18789.
McNinch, J. E. (2007). Bar and swash imaging radar (BASIR): A mobile X-band radar
designed for mapping nearshore sand bars and swash-defined shorelines over large distances. Journal of Coastal Research, 23(1), 59–74.
Storm Impact on the Coastal Geomorphology and Current Field
Hedges, T. S. (1976). An empirical modification to linear wave theory. Proceedings of the
Institution of Civil Engineers, 61(2), 575–579.
Hennings, I. (1990). Radar imaging of submarine sand waves in tidal channels. Journal of
Geophysical Research, 95, 9713–9721.
Hennings, I. (1998). An historical overview of radar imagery of sea bottom topography.
International Journal of Remote Sensing, 19, 1447–1454.
Hennings, I. and Herbers, D. (2006). Radar imaging mechanism of marine sand waves at very
low grazing angle illumination caused by unique hydrodynamic interactions. Journal of
Geophysical Research, 111, C10008, doi:10.1029/2005JC003302.
Hennings, I., Herbers, D., Prinz, K., and Ziemer, F. (2004). On waterspouts related to marine
sandwaves. Paper presented at the Marine Sandwave and River Dune Dynamics
International Workshop, University of Twente, Enschede, The Netherlands, 1–2 April
2004.
Hessner, K. and Bell, P. (2009). High-resolution current and bathymetry determined by nautical X-band radar in shallow waters. Paper presented at OCEANS 2009—EUROPE,
2009, OCEANS ’09.
Hirakuchi, H. and Ikeno, M. (1990). Wave direction measurement using marine X-band radar.
Paper presented at 22nd ICCE, Delft.
Holland, T. K. (2001). Application of the linear dispersion relation with respect to depth
inversion and remotely sensed imagery. IEEE Transactions on Geoscience and Remote
Sensing, 39(9), 2060–2072.
Holman, R. A., Sallenger, A. H., Lippmann, T. C., and Haines, J. W. (1993). The application
of video image processing to the study of nearshore processes. Oceanography, 6(3),
78–85.
Holman, R. and Stanley, J. (2007). The history and technical capabilities of Argus. Coastal
Engineering, 54, 477–491.
Hoogeboom, P. and Rosenthal, W. (1982). Directional wave spectra in radar images. Paper
presented at IGARSS, IEEE.
Hyunjun, K. and Johnson, J. T. (2002). Radar image study of simulated breaking waves. IEEE
Transactions on Geoscience and Remote Sensing, 40(10), 2143–2150.
Kakoulaki, G. (2009). Study of the interaction between the current field and structures in the
bathymetry in a tidal inlet. Christian Albrechts University, Kiel.
Krishen, K. (1971). Correlation of radar backscatter cross-sections with ocean wave height
and wind velocity. Journal of Geophysical Research, 76, 6528–6539.
Lane, A., Knight, P. J., and Player, R. J. (1999). Current measurement technology for nearshore waters. Coastal Engineering, 37(3–4), 343–368.
Lane, A., Riethmuller, R., Herbers, D., Rybaczok, P., Gunther, H., and Baumert, H. (2000).
Observational data sets for model development. Coastal Engineering, 41(1–3), 125–153.
Lee, P. H. Y., Barter, J. D., Beach, K. L., Hindman, C. L., Lake, B. M., Rungaldier, H., Shelton,
J. C., Williams, A. B., Yee, R., and Yuen, H. C. (1995). X band microwave backscattering from ocean waves. Journal of Geophysical Research, 100, 2591–2611.
Lindhorst, S., Betzler, C., and Hass, H. C. (2008). The sedimentary architecture of a Holocene
barrier spit (Sylt, German Bight): Swash-bar accretion and storm erosion. Sedimentary
Geology, 206(1–4), 1–16.
Mattie, M. G. and Lee, H. D. (1978). The use of imaging radar in studying ocean. Paper presented at 16th ICCE, ASCE.
McGregor, J. A., Poulter, E. M., and Smith, M. J. (1998). S band Doppler radar measurements
of bathymetry, wave energy fluxes, and dissipation across an offshore bar. Journal of
Geophysical Research, 103, 18779–18789.
McNinch, J. E. (2007). Bar and swash imaging radar (BASIR): A mobile X-band radar
designed for mapping nearshore sand bars and swash-defined shorelines over large distances. Journal of Coastal Research, 23(1), 59–74.
