TY - GEN
T1 - Dynamic Modeling and Dynamic Response of the Coupled Propulsion Shaft-Shell System in an Underwater Vehicle
AU - Liu, Jianyu
AU - Li, Xinbin
AU - Xu, Yajun
AU - Liu, Jing
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2026.
PY - 2026
Y1 - 2026
N2 - The vibration generated by the propulsion system can substantially impact the stable navigation and acoustic stealth performance of the underwater vehicles. The coupling vibration between the propulsion shaft system and shell is pivotal to the characterization of the system’s dynamic response. Prior studies have mainly devoted attention to the propulsion shaft system or the shell vibrations, while the coupled shaft-shell dynamics has received limited attention. It is inadequate for accurately predicting the propulsion system vibration responses. Therefore, a coupled dynamics model of the propulsion shaft system and shell is constructed in the present work, in which the shaft-shell interaction is incorporated simultaneously. An experimental platform for the coupled system is constructed, and the proposed dynamics model’s correctness is assessed through a comparison between measured responses and numerical simulations. The effect of the shaft-shell connection stiffness on the various components’ vibrations in the propulsion system is further analyzed. The time and frequency domain analysis results in the propulsion system show that the shaft vibration level decreases monotonically as the connection stiffness increases. The shell vibration varies nonlinearly with the connection stiffness. Specifically, as the connection stiffness increases, the shell vibration first increases and then decreases. Connection stiffness has different effects on the propulsion system component’s vibration. The appropriate connection stiffness can simultaneously prevent excessive vibration in both the propulsion shaft system and shell. The research findings provide theoretical basis for the design and vibration mitigation of the underwater vehicle propulsion system.
AB - The vibration generated by the propulsion system can substantially impact the stable navigation and acoustic stealth performance of the underwater vehicles. The coupling vibration between the propulsion shaft system and shell is pivotal to the characterization of the system’s dynamic response. Prior studies have mainly devoted attention to the propulsion shaft system or the shell vibrations, while the coupled shaft-shell dynamics has received limited attention. It is inadequate for accurately predicting the propulsion system vibration responses. Therefore, a coupled dynamics model of the propulsion shaft system and shell is constructed in the present work, in which the shaft-shell interaction is incorporated simultaneously. An experimental platform for the coupled system is constructed, and the proposed dynamics model’s correctness is assessed through a comparison between measured responses and numerical simulations. The effect of the shaft-shell connection stiffness on the various components’ vibrations in the propulsion system is further analyzed. The time and frequency domain analysis results in the propulsion system show that the shaft vibration level decreases monotonically as the connection stiffness increases. The shell vibration varies nonlinearly with the connection stiffness. Specifically, as the connection stiffness increases, the shell vibration first increases and then decreases. Connection stiffness has different effects on the propulsion system component’s vibration. The appropriate connection stiffness can simultaneously prevent excessive vibration in both the propulsion shaft system and shell. The research findings provide theoretical basis for the design and vibration mitigation of the underwater vehicle propulsion system.
KW - connection stiffness
KW - coupling vibration
KW - dynamic characteristics
KW - Propulsion system
UR - https://www.scopus.com/pages/publications/105047659851
U2 - 10.1007/978-3-032-28967-4_7
DO - 10.1007/978-3-032-28967-4_7
M3 - 会议稿件
AN - SCOPUS:105047659851
SN - 9783032289667
T3 - Mechanisms and Machine Science
SP - 85
EP - 95
BT - Computational and Experimental Simulations in Engineering - Proceedings of ICCES 2026
A2 - Zhou, Kun
PB - Springer Science and Business Media B.V.
T2 - 32nd International Conference on Computational and Experimental Engineering and Sciences, ICCES 2026
Y2 - 7 August 2026 through 12 August 2026
ER -