Robert J. Poole

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United Kingdom

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Articles (19)

Polymer-dominant drag reduction in turbulent channel flow over a superhydrophobic surface

In this study, we focused on the integration of a flexible polymer (polyacrylamide) and a (randomly patterned) superhydrophobic surface in a large-scale turbulent channel flow rig to investigate their combined drag reduction effectiveness. Experimental results indicate that, prior to degradation, polyacrylamide (at a 100-ppm concentration) and superhydrophobic surfaces individually manifest drag reductions of 35% and 7%, respectively. However, when combined, the influence of polymer additives remained consistent, with the introduction of superhydrophobic surfaces yielding negligible differences. A clear predominance was evidenced in our facility looking at realistic pressure for applications, with polymer additives overshadowing the impact of superhydrophobic surfaces.

Year:

2023

Collaborators (12)

Kate McAulay

Glasgow Caledonian University

UNITED KINGDOM

Paulo J. Oliveira

Professor

Universidade da Beira Interior

PORTUGAL

Konstantinos Zografos

Lecturer

University Of Strathclyde

UNITED KINGDOM

Jae Sung Park

Assistant Professor

University of Nebraska - Lincoln

UNITED STATES

Henry C. H. Ng

Lecturer

University of Liverpool

UNITED KINGDOM

Colin Crick

Senior Lecturer

Queen Mary University of London

UNITED KINGDOM

Annela Seddon

Professor of Physics

University of Bristol

UNITED KINGDOM

Rishav Agrawal

Coventry University

UNITED KINGDOM

Osama Maklad

University of Greenwich

UNITED KINGDOM

Alexandre M. Afonso

University of Porto

PORTUGAL

Claudio Fonte

Senior Lecturer in Chemical Engineering

The University of Manchester

UNITED KINGDOM

Bayode Emmanuel Owolabi

Czech Academy of Sciences, Institute of Thermomechanics

CZECH REPUBLIC
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