Transient FSI–Fatigue Coupling Analysis of a Francis Turbine Runner Under Load Rejection
作者:Ma Min, Yonggang Lu, Ruiwen Ren, Zequan Zhang, Chengming Liu, Yi Luo, Alexandre Presas · 发表于:Machines · 年份:2026 · DOI:10.3390/machines14080848 · 研究领域:Cavitation Phenomena in Pumps、Water Systems and Optimization、Hydraulic flow and structures
With increasing renewable energy penetration, hydropower units face more frequent load rejection transients, which impose severe hydraulic excitation on Francis turbine runners. Although extensive studies have investigated flow dynamics and stress concentrations during transients, quantitative fatigue damage assessments for runners with pre-existing cracks remain scarce. To fill this gap, this study conducts CFD simulations coupled with one-way FSI to analyze a Francis turbine runner during load rejection, comparing uncracked and cracked configurations. Fatigue damage is evaluated using rain-flow counting, a modified S-N curve with Goodman mean stress correction, and the Palmgren–Miner linear damage rule. Results show that stress concentrations shift from the band-side to the crown-side T-junction during load rejection, with 4.5 times higher fatigue damage at the crown (D = 1.62 × 10−4) than at the band (D = 3.57 × 10−5). Pre-existing cracks increase local stress and reduce the allowable number of load rejection events from 6173 to 514 cycles. Reducing residual stress from 200 MPa to 100 MPa lowers fatigue damage by approximately 42%. This study provides a quantitative framework for transient fatigue assessments.