Geometry of Wave-Formed Orbital Ripples in Coarse Sand

Using new large-scale wave-flume experiments we examine the cross-section and planform geometry of wave-formed ripples in coarse sand (median grain size D50 = 430 μm) under high-energy shoaling and...

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Main Authors: Gerben Ruessink, Joost A. Brinkkemper, Maarten G. Kleinhans
Format: Article
Language:English
Published: MDPI AG 2015-12-01
Series:Journal of Marine Science and Engineering
Subjects:
Online Access:http://www.mdpi.com/2077-1312/3/4/1568
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author Gerben Ruessink
Joost A. Brinkkemper
Maarten G. Kleinhans
author_facet Gerben Ruessink
Joost A. Brinkkemper
Maarten G. Kleinhans
author_sort Gerben Ruessink
collection DOAJ
description Using new large-scale wave-flume experiments we examine the cross-section and planform geometry of wave-formed ripples in coarse sand (median grain size D50 = 430 μm) under high-energy shoaling and plunging random waves. We find that the ripples remain orbital for the full range of encountered conditions, even for wave forcing when in finer sand the ripple length λr is known to become independent of the near-bed orbital diameter ds (anorbital ripples). The proportionality between λr and ds is not constant, but decreases from about 0.55 for ds / D50 ≈ 1400 to about 0.27 for ds / D50 ≈ 11 , 500 . Analogously, ripple height ηr increases with ds, but the constant of proportionally decreases from about 0.08 for ds / D50 ≈ 1400 to about 0.02 for ds / D50 > 8000 . In contrast to earlier observations of coarse-grained two-dimensional wave ripples under mild wave conditions, the ripple planform changes with the wave Reynolds number from quasi two-dimensional vortex ripples, through oval mounds with ripples attached from different directions, to strongly subdued hummocky-type features. Finally, we combine our data with existing mild-wave coarse-grain ripple data to develop new equilibrium predictors for ripple length, height and steepness suitable for a wide range of wave conditions and a D50 larger than about 300 μm.
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spelling doaj.art-608b882dfe9f4554a3a28af49e4586d12022-12-21T17:25:31ZengMDPI AGJournal of Marine Science and Engineering2077-13122015-12-01341568159410.3390/jmse3041568jmse3041568Geometry of Wave-Formed Orbital Ripples in Coarse SandGerben Ruessink0Joost A. Brinkkemper1Maarten G. Kleinhans2Department of Physical Geography, Faculty of Geosciences, Utrecht University, P.O. Box 80.115, 3508 TC Utrecht, The NetherlandsDepartment of Physical Geography, Faculty of Geosciences, Utrecht University, P.O. Box 80.115, 3508 TC Utrecht, The NetherlandsDepartment of Physical Geography, Faculty of Geosciences, Utrecht University, P.O. Box 80.115, 3508 TC Utrecht, The NetherlandsUsing new large-scale wave-flume experiments we examine the cross-section and planform geometry of wave-formed ripples in coarse sand (median grain size D50 = 430 μm) under high-energy shoaling and plunging random waves. We find that the ripples remain orbital for the full range of encountered conditions, even for wave forcing when in finer sand the ripple length λr is known to become independent of the near-bed orbital diameter ds (anorbital ripples). The proportionality between λr and ds is not constant, but decreases from about 0.55 for ds / D50 ≈ 1400 to about 0.27 for ds / D50 ≈ 11 , 500 . Analogously, ripple height ηr increases with ds, but the constant of proportionally decreases from about 0.08 for ds / D50 ≈ 1400 to about 0.02 for ds / D50 > 8000 . In contrast to earlier observations of coarse-grained two-dimensional wave ripples under mild wave conditions, the ripple planform changes with the wave Reynolds number from quasi two-dimensional vortex ripples, through oval mounds with ripples attached from different directions, to strongly subdued hummocky-type features. Finally, we combine our data with existing mild-wave coarse-grain ripple data to develop new equilibrium predictors for ripple length, height and steepness suitable for a wide range of wave conditions and a D50 larger than about 300 μm.http://www.mdpi.com/2077-1312/3/4/1568orbital rippleshummocksflume experimentempirical prediction
spellingShingle Gerben Ruessink
Joost A. Brinkkemper
Maarten G. Kleinhans
Geometry of Wave-Formed Orbital Ripples in Coarse Sand
Journal of Marine Science and Engineering
orbital ripples
hummocks
flume experiment
empirical prediction
title Geometry of Wave-Formed Orbital Ripples in Coarse Sand
title_full Geometry of Wave-Formed Orbital Ripples in Coarse Sand
title_fullStr Geometry of Wave-Formed Orbital Ripples in Coarse Sand
title_full_unstemmed Geometry of Wave-Formed Orbital Ripples in Coarse Sand
title_short Geometry of Wave-Formed Orbital Ripples in Coarse Sand
title_sort geometry of wave formed orbital ripples in coarse sand
topic orbital ripples
hummocks
flume experiment
empirical prediction
url http://www.mdpi.com/2077-1312/3/4/1568
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