paper

Variable thrust and high efficiency propulsion with oscillating foils at high Reynolds numbers

arXiv:1907.01097 · doi:10.1016/j.oceaneng.2020.107833

Abstract

Bio-inspired oscillatory foil propulsion has the ability to traverse various propulsive modes by dynamically changing the foil's heave and pitch kinematics. This research characterizes the propulsion properties and wake dynamics of a symmetric oscillating foil, specifically targeting the high Reynolds number operation of small to medium surface vessels whose propulsive specifications have a broad range of loads and speeds. An unsteady Reynolds-averaged Navier-Stokes (URANS) solver with a k- SST turbulence model is used to sweep through pitch amplitude and frequency at two heave amplitudes of and at . At , the maximum thrust coefficient is due to the large intercepted flow area of the foil, whereas at a decreased Strouhal number the thrust coefficient decreases and the maximum propulsive efficiency reaches 75%. Results illustrate the kinematics required to transition between the high-efficiency and high-thrust regimes at high Reynolds number and the resulting changes to the vortex wake structure. The unsteady vortex dynamics throughout the heave-pitch cycle strongly influence the characterization of thrust and propulsive efficiency, and are classified into flow regimes based on performance and vortex structure.

16 pages, 16 figures. Published in the Ocean Engineering journal. This version replaces the preprint submitted to the journal, major changes include an overhaul of the RANS model verification and validation, including the analysis of mesh resolution in the wake

Variable thrust and high efficiency propulsion with oscillating foils at high Reynolds numbers · wovepaper