Influence of vortex interactions on the exergy transfer and performance of OWC wells turbine

Kaihe Geng, Ce Yang*, Hanzhi Zhang, Ben Zhao, Chenxing Hu, Jianbing Gao, Yanzhao Li

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)

Abstract

To provide deep dives about aerodynamic loss mechanisms in Wells turbines for wave energy conversion, a loss audit analysis was performed by numerical experiments in a monoplane Wells turbine with guide vanes. The interactions between the tip-leakage and leading-edge vortices during the stall process were captured by an improved vortex identification method, which revealed the relationship between vortex interactions and stall mechanisms by identifying coherent structures and tracking the vortex core trajectory. Finally, the influence of vortex interactions on exergy transfer was quantified. The results indicate that the lost kinetic energy and mixing losses dominate the loss generation in the Wells turbine stage under stall conditions. Under the beneficial effect of tip leakage flow, leading-edge separation first begins at the equilibrium region between the tip-leakage and leading-edge vortices. As the leading-edge vortices expand toward the blade tip, the intensified leading-edge vortex interacts with the casing suction-side corner vortex and accelerates the dissipation of the tip-leakage vortices. Consequently, the contributions of viscous irreversibilities outweigh those of shaft work, being the dominant factor in the decrease in flow exergy, leading to a decrease in exergy utilization by 38.46% from the pre-stall condition to the stall condition.

Original languageEnglish
Pages (from-to)1264-1283
Number of pages20
JournalProceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy
Volume237
Issue number6
DOIs
Publication statusPublished - Sept 2023
Externally publishedYes

Keywords

  • Wave energy conversion
  • exergy transfer
  • loss audit
  • vortex interaction
  • wells turbine

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