基于黏势流耦合的船舶运动仿真计算效能分析

Computational efficiency analysis of ship-motion predictions based on viscous–potential-flow coupling method

  • 摘要: 【目的】为提高船舶运动预报效率、解决黏流数值仿真在船型设计中计算资源消耗大、耗时过长的问题,通过结合势流与黏流理论,建立了一种黏势流耦合方法来预报船舶运动,并对该方法在不同波浪环境下的计算效能优势进行了系统的分析。【方法】以Wigley船为例,通过将船体周边流场分为内外域,并通过设置黏势流的耦合区实现了波浪的高效传递和船舶运动的求解。【结果】通过分析不同波高、波长下的波浪、船舶垂荡与纵摇,并与模型试验、黏流仿真结果相对比,验证了采用黏势流耦合方法来预报船舶运动的可靠性。同时,通过统计计算时长、网格需求量、计算效率以及加速比等效能指标,论证了黏势流耦合方法在船舶运动仿真上的计算效能优势。此外,通过分析不同波陡下效能指标的分布特征,进一步说明了该方法效能优势的环境敏感性。【结论】黏势流耦合方法的计算效能分析将有助于在未来船型优化中构建精度-计算资源的自主权衡机制,为黏势流耦合方法的广泛应用提供技术支持。

     

    Abstract: Objectives To improve the efficiency of ship motion prediction and address the issues of high computational resource consumption and long time-consuming in ship design using viscous flow simulation, a viscous-potential flow coupling method was established to predict ship motion by combining potential flow and viscous flow theories. Moreover, a systematic analysis of the computational efficiency advantages of this method in different wave environments was conducted. Methods Taking the Wigley ship as an example, the flow field around the hull was divided into inner and outer domains. The efficient transmission of waves and the solution of ship motion were achieved by setting up the coupling region of viscous-potential flow. Results By analyzing the waves, heave and pitch under different wave heights and wavelengths, and comparing them with the results of model tests and viscous flow simulations, the reliability of the viscous-potential flow coupling method to predict ship motion was verified. Meanwhile, by statistically calculating efficiency indicators such as computation time, grid requirements, computational efficiency, and speed-up ratio, the computational efficiency advantages of this viscous-potential flow coupling method in ship motion simulation were demonstrated. In addition, by analyzing the distribution characteristics of efficiency indicators under different wave slopes, the environmental sensitivity of the computational efficiency advantages on this method was further illustrated. Conclusions The energy-efficiency analysis of the viscous-potential flow coupling method will contribute to the establishment of an autonomous trade-off mechanism between accuracy and computational resources in future ship optimization, providing technical support for the widespread application of the viscous-potential flow coupling method.

     

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