Video-based observations of nearshore sand ripples and ripple migration

被引:16
作者
Becker, J. M.
Firing, Y. L.
Aucan, J.
Holman, R.
Merrifield, M.
Pawlak, G.
机构
[1] Univ Hawaii Manoa, Dept Geol & Geophys, Honolulu, HI 96822 USA
[2] Univ Hawaii Manoa, Dept Oceanog, Honolulu, HI 96822 USA
[3] Oregon State Univ, Coll Ocean & Atmospher Sci, Corvallis, OR USA
[4] Univ Hawaii, Dept Ocean & Resources Engn, Honolulu, HI USA
关键词
D O I
10.1029/2005JC003451
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
[1] Observations of O(1 m) length and O(0.1 m) height sand ripples at Waimea Bay, a steep (slope similar to 0.05) pocket beach on the north shore of Oahu, Hawaii, are presented. Time series of ripple patterns over a 900 m(2) section of the nearshore in depths of 1 - 2 m are obtained using time-averaged video images from an Argus station overlooking the bay. Ripples are detected during weak wave conditions in the summer or between winter swell events. The ripple field exhibits narrow-band wave number structure, with ripple crests oriented parallel to the shoreline. The ripple wavelengths vary with wave orbital displacements, but they are shorter than predicted by orbital vortex ripple scaling relationships. A new suspension-limited model ( Smith and Wiberg, 2006; Traykovski, 2006) in which the suborbital ripple wavelengths vary with wave period appears to describe well the observed ripple wavelength scaling. Lagged correlations between sequential Argus images reveal area-average ripple migration rates ranging from - 3.3 m day(-1) (offshore) to 4.5 m day(-1). The corresponding estimated sediment transport ranges from - 0.3 m(3) m(-1) day(-1) to 0.5 m(3) m(-1) day(-1), similar to previous estimates of cross-shore transport based on observed volume changes at the subaerial beach. This suggests that the recovery of beach sand following major swell-driven erosion events may be accomplished in part by the shoreward migration of seabed ripples.
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页数:14
相关论文
共 25 条
[1]  
Amos CL, 1999, J COASTAL RES, V15, P1
[2]   Observations of wave-generated vortex ripples on the North Carolina continental shelf [J].
Ardhuin, F ;
Drake, TG ;
Herbers, THC .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2002, 107 (C10)
[3]   A third-generation wave model for coastal regions - 1. Model description and validation [J].
Booij, N ;
Ris, RC ;
Holthuijsen, LH .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1999, 104 (C4) :7649-7666
[4]   TIME-SEQUENCE OBSERVATIONS OF WAVE-FORMED SAND RIPPLES ON AN OCEAN SHOREFACE [J].
BOYD, R ;
FORBES, DL ;
HEFFLER, DE .
SEDIMENTOLOGY, 1988, 35 (03) :449-464
[5]   Synoptic imaging of nearshore bathymetric patterns [J].
Clarke, LB ;
Werner, BT .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2003, 108 (C1)
[6]   WAVE-FORMED STRUCTURES AND PALEOENVIRONMENTAL RECONSTRUCTION [J].
CLIFTON, HE ;
DINGLER, JR .
MARINE GEOLOGY, 1984, 60 (1-4) :165-198
[7]   Linear transition ripple migration and wave orbital velocity skewness: Observations [J].
Crawford, AM ;
Hay, AE .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C7) :14113-14128
[8]   Steep beach morphology changes due to energetic wave forcing [J].
Dail, HJ ;
Merrifield, MA ;
Bevis, M .
MARINE GEOLOGY, 2000, 162 (2-4) :443-458
[9]   Wave-formed sand ripples at Duck, North Carolina [J].
Hanes, DM ;
Alymov, V ;
Chang, YS ;
Jette, C .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C10) :22575-22592
[10]  
Hasselman K., 1973, DTSCH HYDROGR Z, V12, P1