机制(生物学)
推进
水下
联轴节(管道)
振动
声学
海洋工程
物理
有限元法
结构工程
工程类
材料科学
机械工程
振动控制
计算机科学
航空航天工程
隔振
机械系统
作者
Dingchang He,Yonggang Liu,Heng Jiang,Haitao Zhang,Pengchuan Wang,Jing Wei (127335)
标识
DOI:10.1016/j.oceaneng.2026.126305
摘要
Low-vibration design remains a critical challenge in underwater vehicle propulsion systems. Motor-gearbox integrated architectures improve power density but introduce strong electromechanical coupling due to motor excitation, gear meshing forces, and structural flexibility. This study proposes a novel bidirectionally coupled electromechanical rigid-flexible modeling framework for underwater propulsion systems. The model explicitly captures two-way interaction between electrical and mechanical domains, overcoming the limitation of conventional one-way or decoupled methods. Structural flexibility of the motor stator, gears, and motor-gearbox housing is incorporated using beam elements and substructure condensation. Experimental validation demonstrates that the proposed model achieves a vibration acceleration root mean square error of 8.9%, showing improved accuracy over conventional approaches. Results reveal that the 5th and 7th stator current harmonics and propeller excitation are the dominant coupled components. Furthermore, structural flexibility is found to weaken electromechanical coupling and reduce the transmission of inverter switching frequency into the mechanical system.
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