Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/102539
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Title: Experimental and numerical study on transient air–water mixing flows in viscoelastic pipes
Authors: Zhu, Y
Duan, HF 
Li, F 
Wu, CG
Yuan, YX
Shi, ZF
Issue Date: 2018
Source: Journal of hydraulic research, 2018, v. 56, no. 6, p. 877-887
Abstract: Air–water mixing flows are commonly formed in pressurized water supply pipes due to dissolved air from the water under low pressure conditions, and air injected through system controls and associated valves and pumps. This paper investigates transient behaviours of air–water mixing flows in viscoelastic pipes through laboratory experimental tests, numerical modelling and theoretical analysis. Two numerical schemes – the discrete vaporous cavity model (DVCM) and the discrete gas cavity model (DGCM), which are firstly calibrated and validated by the experimental data gained in this study, are adopted for comparative study for their validity and accuracy for modelling transient air–water mixing flows in viscoelastic pipes. With the validated model, the results of systematic analysis show that the effect of pipe-wall viscoelasticity on transient amplitude damping decreases with the increase of air content, and the frequency shifting rate of viscoelastic effect is negligible in comparison with that of air content.
Keywords: Air content
Air–water mixing flow
Transients
Unsteady friction
Viscoelasticity
Publisher: Taylor & Francis published on behalf of the International Association for Hydro-Environment Engineering and Research
Journal: Journal of hydraulic research 
ISSN: 0022-1686
EISSN: 1814-2079
DOI: 10.1080/00221686.2018.1424045
Rights: © 2018 International Association for Hydro-Environment Engineering and Research
This is an Accepted Manuscript of an article published by Taylor & Francis in Journal of Hydraulic Research on 04 Apr 2018 (published online), available at: http://www.tandfonline.com/10.1080/00221686.2018.1424045.
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