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  4. Draft tube discharge fluctuation during self-sustained pressure surge: fluorescent particle image velocimetry in two-phase flow
 
research article

Draft tube discharge fluctuation during self-sustained pressure surge: fluorescent particle image velocimetry in two-phase flow

Müller, Andres  
•
Dreyer, Matthieu  
•
Andreini, Nicolas  
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2013
Experiments in Fluids

Hydraulic machines play an increasingly important role in providing a secondary energy reserve for the integration of renewable energy sources in the existing power grid. This requires a significant extension of their usual operating range, involving the presence of cavitating flow regimes in the draft tube. At overload conditions, the self-sustained oscillation of a large cavity at the runner outlet, called vortex rope, generates violent periodic pressure pulsations. In an effort to better understand the nature of this unstable behavior and its interaction with the surrounding hydraulic and mechanical system, the flow leaving the runner is investigated by means of Particle Image Velocimetry. The measurements are performed in the draft tube cone of a reduced scale model of a Francis turbine. A cost-effective method for the in-house production of fluorescent seeding material is developed and described, based on off-the-shelf polyamide particles and Rhodamine-B dye. Velocity profiles are obtained at three streamwise positions in the draft tube cone and the corresponding discharge variation in presence of the vortex rope is calculated. The results suggest that 5-10% of the discharge in the draft tube cone is passing inside the vortex rope.

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Type
research article
DOI
10.1007/s00348-013-1514-6
Web of Science ID

WOS:000318158500019

Author(s)
Müller, Andres  
Dreyer, Matthieu  
Andreini, Nicolas  
Avellan, François  
Date Issued

2013

Publisher

Springer-Verlag

Published in
Experiments in Fluids
Volume

54

Issue

4

Start page

1

End page

11

Subjects

Francis turbines

•

cavitation

•

PIV

•

fluid dynamics

•

vortex rope

•

pressure surge

•

overload

•

fluorescent particles

Note

National Licences

Editorial or Peer reviewed

NON-REVIEWED

Written at

EPFL

EPFL units
LMH  
LHE  
Available on Infoscience
May 1, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/91901
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