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Theoretical and Experimental Study on Nonlinear Hydroelastic Responses and Slamming Loads of Ship Advancing in Regular Waves

机译:非线性液体液体响应的理论与实验研究及普通波线推进船闸的抨击

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Wave loads estimation and structural strength evaluation are the fundamental work at the ship design stage. The hydroelastic responses and slamming strength issues are also concerned especially for large-scale high-speed ships sailing in harsh waves. To accurately predict the wave-induced motions and loads acting on the ship sailing in regular waves, a fully coupled 3D time-domain nonlinear hydroelasticity theory is developed in this paper. The vibration modal characteristics of the flexible hull structure derived by the 3D finite element method (FEM) and simplified 1D nonuniform Timoshenko beam theory are firstly described. The hydrostatic restoring force and hydrodynamic wave force are calculated on the real-time wetted surface of hull to address geometric nonlinearity due to the steep wave and large amplitude motions. The bow slamming and green water loads acting on the ship in severe regular waves are estimated by the momentum impact method and dam-breaking method, respectively. Moreover, a small-scaled segmented ship model is designed, constructed, and tested in a laboratory wave basin to validate the hydroelasticity algorithm. The results predicted by theoretical and experimental approaches are systemically compared and analyzed. Finally, future work for predictions of ship hydroelasticity and slamming loads in irregular waves is prospected.
机译:波浪负荷估计和结构强度评估是船舶设计阶段的基本工作。液压弹性响应和恐怖强度问题也尤其关注,特别是对于在恶劣的波浪中航行的大型高速船舶。为了准确地预测,在本文中开发了一种完全耦合的3D时域非线性水力弹性理论,可以准确地预测作用在船舶上的船舶上的动作和负载。首先描述了由3D有限元方法(FEM)和简化的1D非均匀Timoshko光束理论导出的柔性船体结构的振动模态特性。在船体的实时润湿表面上计算静液压恢复力和流体动力波力,以解决由于陡峭的波和大的振幅运动而地址的几何非线性。通过动量影响方法和坝断裂法估算了在严重常规波上作用在船上的弓形和绿水载荷。此外,在实验室波盆地设计,构造和测试小缩放的分段船模型,以验证水力弹性算法。通过理论和实验方法预测的结果在系统性上进行了系统和分析。最后,展望了未来的船舶水力弹性的预测和不规则波中扰动负荷的工作。

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