TY - JOUR
T1 - Numerical assessment of erosion risk for composite hydrofoils by the potential energy theoretical method
AU - Shao, Ruhan
AU - Yuan, Rui
AU - Zhang, Housheng
AU - Wu, Qin
AU - Huang, Biao
AU - Wang, Guoyu
N1 - Publisher Copyright:
© 2025 Published by Elsevier Ltd.
PY - 2026/3/1
Y1 - 2026/3/1
N2 - This study employs a fluid-structure interaction (FSI) framework coupled with an energy cascade-based potential energy erosion metric (E) to numerically assess cavitation erosion risk on composite hydrofoils with varying ply angles ([+45°], [0°], [-45°]). The erosion indicator E is defined as the average of instantaneous pressure-wave power densities exceeding a specified threshold, derived from the time-averaged pressure field and vapor-fraction transport, while the contraction-phase metric αc characterizes the vapor-fraction reduction rate. Results reveal that bending-twisting coupling effect significantly alters cavitation dynamics and erosion distribution. The bend-twist coupling induced by the +45° ply angle (K = +70) increases the effective angle of attack, producing larger cavitation structures and consequently the highest erosion intensity concentrated in the mid-chord region. Conversely, the −45° bend-twist coupling (K = −70) reduces cavitation scale and shifts the erosion risk toward the trailing edge, while the 0° configuration (K = 0) exhibits intermediate behavior. Crucially, erosion is primarily driven by collapsing large-scale shedding clouds and small closure clouds, with peak risk occurring during attached cavity growth and large cloud shedding/collapse. This work establishes a predictive framework linking composite bending-twisting coupling effect to cavitation erosion mechanisms, providing critical insights for designing erosion-resistant marine composites.
AB - This study employs a fluid-structure interaction (FSI) framework coupled with an energy cascade-based potential energy erosion metric (E) to numerically assess cavitation erosion risk on composite hydrofoils with varying ply angles ([+45°], [0°], [-45°]). The erosion indicator E is defined as the average of instantaneous pressure-wave power densities exceeding a specified threshold, derived from the time-averaged pressure field and vapor-fraction transport, while the contraction-phase metric αc characterizes the vapor-fraction reduction rate. Results reveal that bending-twisting coupling effect significantly alters cavitation dynamics and erosion distribution. The bend-twist coupling induced by the +45° ply angle (K = +70) increases the effective angle of attack, producing larger cavitation structures and consequently the highest erosion intensity concentrated in the mid-chord region. Conversely, the −45° bend-twist coupling (K = −70) reduces cavitation scale and shifts the erosion risk toward the trailing edge, while the 0° configuration (K = 0) exhibits intermediate behavior. Crucially, erosion is primarily driven by collapsing large-scale shedding clouds and small closure clouds, with peak risk occurring during attached cavity growth and large cloud shedding/collapse. This work establishes a predictive framework linking composite bending-twisting coupling effect to cavitation erosion mechanisms, providing critical insights for designing erosion-resistant marine composites.
KW - CFRP 0009 hydrofoil
KW - Carbon fiber reinforced plastic
KW - Cavitation erosion prediction
UR - https://www.scopus.com/pages/publications/105030120509
U2 - 10.1016/j.oceaneng.2025.123874
DO - 10.1016/j.oceaneng.2025.123874
M3 - Article
AN - SCOPUS:105030120509
SN - 0029-8018
VL - 348
JO - Ocean Engineering
JF - Ocean Engineering
M1 - 123874
ER -