Technical Papers
Apr 10, 2018

Experimental Investigation of a Francis Turbine during Exigent Ramping and Transition into Total Load Rejection

Publication: Journal of Hydraulic Engineering
Volume 144, Issue 6

Abstract

This study investigates the unsteady pressure fluctuations in a hydraulic turbine observed during a dangerous case of steep ramping interrupted by an unexpected transition into total load rejection. Although hydraulic turbines are expected to experience such events only a few times over their lifetime, the resulting pressure amplitudes are so significant that they take a toll on a machine’s operating life. The focus of the present study is to experimentally measure and numerically characterize time-dependent pressure amplitudes in the vaneless space, runner, and draft tube of a model Francis turbine. To this end, 12 pressure sensors were integrated into a turbine, including four miniature sensors mounted in the runner. Steep ramping was performed by changing the rotational speed using a frequency controller. After a few seconds, as the load increased, total load rejection was initiated. This resulted in the generation of strong vibrations throughout the entire structure and strong pressure fluctuations in the turbine. The data analysis shows that pressure amplitudes are in the order of 10–20% of hydraulic energy in the vaneless space and runner, with high-amplitude fluctuations occurring at expected characteristic frequencies, including those associated with rotor-stator interactions, water hammer travel times, and standing waves in the turbine. Various stochastic frequencies were also observed, especially at the runner outlet.

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Acknowledgments

These experiments were conducted through a research project entitled “High head Francis turbine.” The project was financially supported by the Research Council of Norway and by the Norwegian hydropower industry.

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Journal of Hydraulic Engineering
Volume 144Issue 6June 2018

History

Received: Apr 5, 2017
Accepted: Dec 7, 2017
Published online: Apr 10, 2018
Published in print: Jun 1, 2018
Discussion open until: Sep 10, 2018

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Researcher, Waterpower Laboratory, Dept. of Energy and Process Engineering, NTNU—Norwegian Univ. of Science and Technology, 7491 Trondheim, Norway (corresponding author). ORCID: https://orcid.org/0000-0002-2198-8981. E-mail: [email protected]
Einar Agnalt [email protected]
Ph.D. Candidate, Waterpower Laboratory, Dept. of Energy and Process Engineering, NTNU—Norwegian Univ. of Science and Technology, 7491 Trondheim, Norway. E-mail: [email protected]
Ole Gunnar Dahlhaug [email protected]
Professor, Waterpower Laboratory, Dept. of Energy and Process Engineering, NTNU—Norwegian Univ. of Science and Technology, 7491 Trondheim, Norway. E-mail: [email protected]

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