LAPSE:2018.0885
Published Article
LAPSE:2018.0885
Investigation of a High Head Francis Turbine at Runaway Operating Conditions
Chirag Trivedi, Michel J. Cervantes, B. K. Gandhi
November 27, 2018
Hydraulic turbines exhibit total load rejection during operation because of high fluctuations in the grid parameters. The generator reaches no-load instantly. Consequently, the turbine runner accelerates to high speed, runaway speed, in seconds. Under common conditions, stable runaway is only reached if after a load rejection, the control and protection mechanisms both fail and the guide vanes cannot be closed. The runner life is affected by the high amplitude pressure loading at the runaway speed. A model Francis turbine was used to investigate the consequences at the runaway condition. Measurements and simulations were performed at three operating points. The numerical simulations were performed using standard k-ε, k-ω shear stress transport (SST) and scale-adaptive simulation (SAS) models. A total of 12.8 million hexahedral mesh elements were created in the complete turbine, from the spiral casing inlet to the draft tube outlet. The experimental and numerical analysis showed that the runner was subjected to an unsteady pressure loading up to three-times the pressure loading observed at the best efficiency point. Investigates of unsteady pressure pulsations at the vaneless space, runner and draft tube are discussed in the paper. Further, unsteady swirling flow in the blade passages was observed that was rotating at a frequency of 4.8-times the runaway runner angular speed. Apart from the unsteady pressure loading, the development pattern of the swirling flow in the runner is discussed in the paper.
Keywords
Computational Fluid Dynamics, Francis turbine, pressure pulsation, runaway, runner, transient
Suggested Citation
Trivedi C, Cervantes MJ, Gandhi BK. Investigation of a High Head Francis Turbine at Runaway Operating Conditions. (2018). LAPSE:2018.0885
Author Affiliations
Trivedi C: Department of Energy and Process Engineering, Norwegian University of Science and Technology, Trondheim NO-7491, Norway [ORCID]
Cervantes MJ: Department of Energy and Process Engineering, Norwegian University of Science and Technology, Trondheim NO-7491, Norway; Department of Engineering Sciences and Mathematics, Luleå University of Technology, Luleå 97187, Sweden
Gandhi BK: Department of Mechanical and Industrial Engineering, Indian Institute of Technology, Roorkee 247667, India
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Journal Name
Energies
Volume
9
Issue
3
Article Number
E149
Year
2016
Publication Date
2016-03-02
Published Version
ISSN
1996-1073
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PII: en9030149, Publication Type: Journal Article
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LAPSE:2018.0885
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doi:10.3390/en9030149
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Nov 27, 2018
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Calvin Tsay
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