Expected load spectra of prototype Francis turbines in low-load operation using numerical simulations and site measurements

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Abstract

The operators of hydropower plants are forced to extend the existing operating ranges of their hydraulic machines to remain competitive on the energy market due to the rising amount of wind and solar power. Faster response times and a higher flexibility towards part- and low-load conditions enable a better electric grid control and assure therefore an economic operation of the power plant. The occurring disadvantage is a higher dynamic excitation of affected machine components, especially Francis turbine runners, due to pressure pulsations induced by unsteady flow phenomena (e.g. draft tube vortex ropes). Therefore, fatigue analysis becomes more important even in the design phase of the hydraulic machines to evaluate the static and dynamic load in different operating conditions and to reduce maintenance costs. An approach including a one-way coupled fluid-structure interaction has been already developed using unsteady CFD simulations and transient FEM computations. This is now applied on two Francis turbines with different specific speeds and power ranges, to obtain the load spectra of both machines. The results are compared to strain gauge measurements on the according Francis turbines to validate the overall procedure.

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Eichhorn, M., Taruffi, A., & Bauer, C. (2017). Expected load spectra of prototype Francis turbines in low-load operation using numerical simulations and site measurements. In Journal of Physics: Conference Series (Vol. 813). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/813/1/012052

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