Assessment of numerical methods for estimating the wall shear stress in turbulent Herschel–Bulkley slurries in circular pipes

Journal Article (2020)
Author(s)

D. Mehta (TU Delft - Sanitary Engineering)

Adithya Thota Radhakrishnan (TU Delft - Sanitary Engineering)

J.B. Van Lier (TU Delft - Sanitary Engineering)

Francois Clemens (Deltares, TU Delft - Sanitary Engineering)

Research Group
Sanitary Engineering
Copyright
© 2020 D. Mehta, A.K. Thota Radhakrishnan, J.B. van Lier, F.H.L.R. Clemens
DOI related publication
https://doi.org/10.1080/00221686.2020.1744751
More Info
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Publication Year
2020
Language
English
Copyright
© 2020 D. Mehta, A.K. Thota Radhakrishnan, J.B. van Lier, F.H.L.R. Clemens
Research Group
Sanitary Engineering
Issue number
2
Volume number
59 (2021)
Pages (from-to)
196-213
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Abstract

This article concerns the turbulent flow of Herschel–Bulkley slurries through circular horizontal pipes; in particular, that of concentrated domestic slurry obtained upon separation of domestic waste water and reduction in the use of water for domestic purposes. Experiments with a rheologically equivalent clay (kaolin) slurry indicated a non-Newtonian behaviour of the Herschel–Bulkley type. A modified wall function was developed to enable the Reynolds-averaged Navier–Stokes simulation of Herschel–Bulkley slurries to estimate the wall shear stress. Despite the accuracy achieved, the use of Reynolds-averaged Navier–Stokes models for an entire waste water system is impractical. Therefore, this article assesses the accuracy of semi-empirical models in estimating frictional losses. It also discusses possible modifications of existing models to encompass Herschel–Bulkley behaviour. An evaluation suggests that most existing models deliver estimates of comparable accuracy; however, the probability of these estimates being reliable, while accounting for experimental errors in quantifying the actual frictional losses, is rather low.