TY - JOUR
T1 - Research on cavitation vortex structures and load characteristics on of bionic manta-ray vehicles with different crossflow intensity during successive water-exit
AU - Gao, Shan
AU - Shi, Yao
AU - Zhang, Guiyong
AU - Pan, Guang
AU - Huang, Qiaogao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9/1
Y1 - 2026/9/1
N2 - This study numerically investigates the cavitation vortex structures and load characteristics of bionic manta ray vehicles during successive water-exit under varying crossflow intensities using the Improved Delayed Detached Eddy Simulation method, Volume of Fluid model, Schnerr-Sauer cavitation model, and overset grid technique. Understanding these mechanisms is crucial for attitude stability in adverse sea conditions. Validations based on an axisymmetric body show that the prediction errors are within the reasonable range for engineering applications, which verifies the reliability of the numerical solver. Results show that crossflow symmetry governs wake vortex evolution: without crossflow, symmetric hairpin vortices and vortex rings dominate. At dimensionless crossflow intensity U = 0.100, windward boundary-layer separation intensifies, causing twisting, stretching and skewing of vortices, leading to a strongly asymmetric three-dimensional vortex topology. Crossflow also weakens vertical deceleration. At dimensionless crossflow intensity U = 0.00, vertical velocity decays fastest with a sharp force spike. Increasing crossflow accelerates cavity collapse, reduces vertical decay rate, and lowers the impact load amplitude. High crossflow induces large periodic yaw angular velocity fluctuations, while low crossflow keeps yaw angular velocity near zero. The yaw fluctuation grows nonlinearly with crossflow intensity, posing a significant risk to attitude stability. These findings provide theoretical guidance for control and vortex management of biomimetic vehicles during trans-media water-exit.
AB - This study numerically investigates the cavitation vortex structures and load characteristics of bionic manta ray vehicles during successive water-exit under varying crossflow intensities using the Improved Delayed Detached Eddy Simulation method, Volume of Fluid model, Schnerr-Sauer cavitation model, and overset grid technique. Understanding these mechanisms is crucial for attitude stability in adverse sea conditions. Validations based on an axisymmetric body show that the prediction errors are within the reasonable range for engineering applications, which verifies the reliability of the numerical solver. Results show that crossflow symmetry governs wake vortex evolution: without crossflow, symmetric hairpin vortices and vortex rings dominate. At dimensionless crossflow intensity U = 0.100, windward boundary-layer separation intensifies, causing twisting, stretching and skewing of vortices, leading to a strongly asymmetric three-dimensional vortex topology. Crossflow also weakens vertical deceleration. At dimensionless crossflow intensity U = 0.00, vertical velocity decays fastest with a sharp force spike. Increasing crossflow accelerates cavity collapse, reduces vertical decay rate, and lowers the impact load amplitude. High crossflow induces large periodic yaw angular velocity fluctuations, while low crossflow keeps yaw angular velocity near zero. The yaw fluctuation grows nonlinearly with crossflow intensity, posing a significant risk to attitude stability. These findings provide theoretical guidance for control and vortex management of biomimetic vehicles during trans-media water-exit.
KW - Bionic manta-ray vehicle
KW - Load characteristic
KW - Vortex structure
KW - Water-exit
UR - https://www.scopus.com/pages/publications/105046535116
U2 - 10.1016/j.oceaneng.2026.127448
DO - 10.1016/j.oceaneng.2026.127448
M3 - 文章
AN - SCOPUS:105046535116
SN - 0029-8018
VL - 365
JO - Ocean Engineering
JF - Ocean Engineering
IS - P3
M1 - 127448
ER -