Sheet flow and suspended sediment transport processes on a surf zone sandbar

Author(s)Mieras, Ryan S
Date Accessioned2018-05-17T12:07:42Z
Date Available2018-05-17T12:07:42Z
Publication Date2017
SWORD Update2018-02-22T20:25:38Z
AbstractA novel large wave flume experiment was conducted on a fixed, barred beach with a sediment pit on the sandbar, allowing for the isolation of small-scale bed response to large-scale wave forcing. Concurrent measurements of instantaneous sheet flow layer and suspended sediment concentration profiles, pore-pressure gradients, near-bed velocity profiles, and velocity profiles spanning the whole water column were obtained on a sandbar. Two sediment distributions were used with median grain diameters, d_50, of 0.17 and 0.27 mm. Sheet flow occurred primarily under wave crests, where sheet thickness increased with increasing wave height. A proportionality constant, Λ, was used to relate maximum Shields parameter to maximum sheet thickness (normalized by d_50), with bed shear stress computed using the quadratic drag law. An enhanced sheet layer thickness was apparent for the smaller sediment experiments (Λ = 18.7), when directly compared to closed-conduit oscillatory flow tunnel data (Λ = 10.6). However, Λ varied significantly (5 < Λ < 31) depending on the procedure used to estimate grain roughness, k_s, and wave friction factor, f_w. Three models for k_s were compared (keeping the model for f_w fixed): constant k_s = 2.5d_50, and two expressions dependent on flow intensity, derived from steady and oscillatory sheet flow experiments. Values of k_s/d_50 varied by two orders of magnitude and exhibited an inverse relationship with Λ, where Λ ~ 30 for k_s/d_50 of O(1) while Λ ~ 5 for k_s/d_50 of O(100). Two expressions for f_w were also tested (with the steady-flow-based model for k_s), yielding a difference of 69% (Λ ~ 13 versus Λ ~ 22). Intra-wave and wave-averaged observations of sediment flux profiles and transport rates in the lower half of the water column on the sandbar crest are also presented for 19 different wave and sediment cases. The total sediment transport rate was partitioned into suspended sediment (SS) and sheet flow (SF) components to quantify the relative contributions of SS and SF to the total sediment transport rate. Net suspended sediment transport rates were greater than net sheet flow transport rates for the positive half-cycle in 14 of 19 cases, compared to 100% (19 of 19) for the negative half-cycle. Total net sheet flow transport was greater than net suspended sediment transport for 13 of the 19 wave cases. The dominant mode of transport was determined from the ratio of net SF to net SS transport rate. In general, net total transport rate was negative (offshore) when SS dominated and positive (onshore) when SF dominated. Net SF transport rate correlated well with increasing near-bed third velocity moments (r^2 = 0.71), and no trend was observed related to the influence of sediment size.en_US
AdvisorPuleo, Jack A.
DegreePh.D.
DepartmentUniversity of Delaware. Department of Civil and Environmental Engineering
Unique Identifier1035838109
URLhttp://udspace.udel.edu/handle/19716/23210
Languageen
PublisherUniversity of Delawareen_US
URIhttps://search.proquest.com/docview/2024655230?accountid=10457
KeywordsApplied sciencesen_US
KeywordsBed shear stressen_US
KeywordsLarge wave flume experimenten_US
KeywordsSediment transporten_US
KeywordsSheet flowen_US
KeywordsSkewness and asymmetryen_US
KeywordsSuspended loaden_US
TitleSheet flow and suspended sediment transport processes on a surf zone sandbaren_US
TypeThesisen_US
Files
Original bundle
Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Mieras_udel_0060D_13133.pdf
Size:
7.35 MB
Format:
Adobe Portable Document Format
License bundle
Now showing 1 - 1 of 1
No Thumbnail Available
Name:
license.txt
Size:
2.22 KB
Format:
Item-specific license agreed upon to submission
Description: