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首页> 外文期刊>Journal of offshore mechanics and arctic engineering >Revealing Nonlinear Dynamics Phenomena in Mooring Due to Slowly-Varying Drift
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Revealing Nonlinear Dynamics Phenomena in Mooring Due to Slowly-Varying Drift

机译:缓慢变化的漂移引起的系泊非线性动力学现象的揭示

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The effects of slowly-varying wave drift forces on the nonlinear dynamics of mooring systems have been studied extensively in the past 30 years. It has been concluded that slowly-varying wave drift may resonate with mooring system natural frequencies. In recent work, we have shown that this resonance phenomenon is only one of several possible nonlinear dynamic interactions between slowly-varying wave drifts and mooring systems. We were able to reveal new phenomena, based on the design methodology developed at the University of Michigan for autonomous mooring systems, and treating slowly-varying wave drift as an external time-varying force in systematic simulations. This methodology involves exhaustive search regarding the nonautonomous excitation, however, and approximations in defining response bifurcations. In this paper, a new approach is developed, based on the harmonic balance method, where the response to the slowly-varying wave drift spectrum is modeled by limit cycles of frequency, estimated from a limited number of simulations. Thus, it becomes possible to rewrite the nonautonomous system as autonomous and reveal stability properties of the nonautonomous response. Catastrophe sets of the symmetric principal equilibrium, serving as design charts, define regions in the design space where the trajectories of the mooring system are asymptotically stable, limit cycles, or nonperiodic. This methodology reveals and proves that mooring systems subjected to slowly-varying wave drift exhibit many nonlinear phenomena, which lead to motions with amplitudes two to three orders of magnitude larger than those resulting from linear resonance. A turret mooring system (TMS) is used to demonstrate the harmonic balance methodology developed. The produced catastrophe sets are then compared with numerical results obtained from systematic simulations of the TMS dynamics.
机译:在过去的30年中,已经广泛研究了缓慢变化的波浪漂移力对系泊系统非线性动力学的影响。已经得出结论,波速缓慢变化可能会与系泊系统的固有频率产生共振。在最近的工作中,我们已经表明,这种共振现象只是缓变波漂移和系泊系统之间几种可能的非线性动力相互作用之一。基于密歇根大学为自主系泊系统开发的设计方法,我们能够揭示新现象,并且在系统仿真中将缓慢变化的波漂移视为外部时变力。此方法涉及有关非自主激励的详尽搜索,以及定义响应分歧的近似方法。在本文中,基于谐波平衡方法,开发了一种新方法,其中通过有限数量的仿真估算出的频率极限循环来模拟对缓慢变化的波漂移频谱的响应。因此,可以将非自治系统改写为自治系统,并揭示非自治响应的稳定性。对称主平衡的突变集(用作设计图)定义了设计空间中系泊系统的轨迹渐近稳定,极限环或非周期性的区域。这种方法揭示并证明了系泊系统受到缓慢变化的波漂移的影响,表现出许多非线性现象,它们导致的运动幅度比线性共振引起的幅度大2-3个数量级。炮塔系泊系统(TMS)用于演示开发的谐波平衡方法。然后将产生的灾难集与从TMS动力学的系统仿真获得的数值结果进行比较。

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