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Assessment of URANS surface effect ship models for calm water and head waves

机译:乌拉斯表面效应船型的评估,用于平静的水和头部波浪

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Surface effect ship (SES) air cushion and seal models are implemented in an URANS hydrodynamics solver. The air cushion is modeled either as a prescribed pressure patch, or as a compressible isothermal/adiabatic ideal stagnant air with fan and leakage flows. The seals are either discretized as hinged bodies or modeled as 2D planing surfaces with hydrodynamic interaction. Verification and validation studies are performed using T-Craft experimental data for calm water resistance, sinkage and trim, at Froude number (Fr) = 0.1-0.6; impulsive heave and pitch decay at Fr= 0; and wave-induced resistance and motion predictions in head waves at Fr= 0 and 0.6. The compressible air cushion model with fan and leakage flows perform better than those without the fan and leakage flows and the prescribed pressure patch model. The hinged seal model performs better than the 2D planing surface model, but is computationally expensive for time accurate simulations. Therefore, the 2D planing surface model is used for the validation studies. SES simulations on grids with 5.3 M cells show grid verification intervals of 6%, which are comparable to those reported for displacement and semi-planing hull studies on similar grid sizes. On an average calm water and impulsive motion predictions compare within 8.5% of the experimental data, and wave-induced motion predictions show somewhat larger error of 13.5%. The errors levels are mostly comparable to those for displacement and semi-planing and planing hulls. The study identifies that most critical advancement needed for SES simulations is the seal modeling including fluid structure interaction. (C) 2017 Elsevier Ltd. All rights reserved.
机译:表面效应船(SES)气垫和密封模型在urans流体动力学求解器中实现。气垫以规定的压力贴片建模,或者作为具有风扇和泄漏流动的可压缩等温/绝热的理想停滞空气。密封件被离散化为铰链体或用流体动力学相互作用为2D刨表面。使用T-Craft实验数据进行验证和验证研究,用于平静的耐水性,下沉和装饰,在Froude号码(FR)= 0.1-0.6;在FR = 0时冲动升降和俯仰衰减;波浪诱导的电阻和FR = 0和0.6的头部波的电阻和运动预测。具有风扇和泄漏流的可压缩空气垫模型比没有风扇和泄漏流量的更好,并且具有规定的压力补丁模型更好。铰接密封型模型比2D刨花表面模型更好,但随时准确模拟计算昂贵。因此,2D刨花表面模型用于验证研究。 SES仿真在5.3米的电池上显示出6%的网格验证间隔,与据报道的位移和半刨船体研究的血管研究相当。在平均平坦的水和冲动运动预测中,比较在实验数据的8.5%以内,波动的运动预测显示出略大误差为13.5%。错误水平主要与位移和半刨和刨壳的相当。该研究确定了SES模拟所需的最关键的进步是包括流体结构相互作用的密封建模。 (c)2017 Elsevier Ltd.保留所有权利。

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