Simulating Transient Sediment Waves in Aggraded Alluvial Channels by Double-Decomposition Method

Loading...

Date

Authors

Tayfur, Gökmen

Journal Title

Journal ISSN

Volume Title

Open Access Color

BRONZE

Green Open Access

Yes

OpenAIRE Downloads

9

OpenAIRE Views

5

Publicly Funded

No
Impulse
Average
Influence
Average
Popularity
Average

relationships.isProjectOf

relationships.isJournalIssueOf

Abstract

By using the double-decomposition (DD) method, this study simulates transient sediment waves caused by aggradation described by a diffusion-type partial differential equation (PDE). The DD method solves the PDE by decomposing the solution function for sediment rate into a summation of M number of components, where M stands for the order of approximation. The solution was approximated by considering only the first three terms. The model satisfactorily simulated laboratory-measured aggradation bed profiles with, on average, a mean absolute error (MAE) of 0.70 cm, a root-mean-square error (RMSE) of 0.84 cm, a mean relative error (MRE) of 1.11%, and R2=0.95. The model performance was also tested by using numerical and error-function solutions. In addition, the results obtained from application of the DD solution to hypothetical field cases were found to be theoretically compatible with what may be observed in natural streams. However, sediment wave fronts in later periods of the simulation time reached equilibrium bed levels more quickly, around in the middle section of the channel.

Description

Keywords

Alluvial channel, Bed profile, Diffusion wave, Double decomposition, Anoxic sediments, Diffusion wave, Bed profile, Double decomposition, Alluvial channel, Anoxic sediments

Fields of Science

0208 environmental biotechnology, 0207 environmental engineering, 02 engineering and technology

Citation

Tayfur, G.,and Singh, V.P. (2011). Simulating transient sediment waves in aggraded alluvial channels by double-decomposition method. Journal of Hydrologic Engineering, 16(4), 362-370. doi:10.1061/(ASCE)HE.1943-5584.0000326

WoS Q

Scopus Q

OpenCitations Logo
OpenCitations Citation Count
2

Volume

16

Issue

4

Start Page

362

End Page

370
PlumX Metrics
Citations

CrossRef : 1

Scopus : 3

Captures

Mendeley Readers : 7

Google Scholar Logo
Google Scholar™
OpenAlex Logo
OpenAlex FWCI
0.0

Sustainable Development Goals