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Coupled longitudinal-transverse dynamics of a marine propulsion shafting under primary and internal resonances

机译:一次和内部共振作用下船舶推进轴系的纵向-横向耦合动力学

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In this study, the longitudinal primary resonance of a marine propulsion shafting is investigated with special consideration of the internal resonance between the longitudinal and transverse directions (the first longitudinal natural frequency is approximately equal to the sum of the first transverse forward and backward frequencies). A coupled longitudinal-transverse dynamic model is established by using the extended Hamilton's principle and discretized by Galerkin method. First, the multiple scales method to solve these discretized equations is used, and then, the steady-state response and its stability are analyzed. Our results show that the first transverse forward and backward modes could be excited if the longitudinal excitation load is larger than the critical load, even though there is no excitation in the transverse direction. A saturation phenomenon is observed with the longitudinal motion and the extra energy is transferred to the transverse modes. The energy distribution ratio between the forward and backward modes is inversely proportional to their frequency ratio. The effects of damping ratio and frequency detuning parameters on the critical load are discussed. Results obtained by using the perturbation method are validated by numerical simulations. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,研究了船舶推进轴系的纵向主共振,并特别考虑了纵向和横向之间的内部共振(第一纵向固有频率大约等于第一横向前进和后退频率之和)。利用扩展的汉密尔顿原理建立了耦合的横向-横向动力学模型,并通过Galerkin方法进行离散化。首先,使用多尺度方法求解这些离散方程,然后分析稳态响应及其稳定性。我们的结果表明,即使纵向没有激发,如果纵向激发载荷大于临界载荷,也可以激发第一个横向前进和后退模式。随着纵向运动观察到饱和现象,并且多余的能量转移到横向模式。前向和后向模式之间的能量分配比与它们的频率比成反比。讨论了阻尼比和频率失谐参数对临界载荷的影响。通过微扰方法获得的结果通过数值模拟得到了验证。 (C)2016 Elsevier Ltd.保留所有权利。

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