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Multi-fidelity optimization of a high-speed foil-assisted semi-planing catamaran for low wake

机译:高速铝箔辅助双滑双体船的低保真度的多保真度优化

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The wakes of high-speed passenger-only ferries that operated through Rich Passage, on the Seattle-Bremerton ferry route, caused beach erosion and damage to habitat. A task was initiated to design a low-wake highspeed vessel using multi-fidelity CFD based design optimization by using low-fidelity potential flow solvers for initial global design optimization and by using URANS solvers for high-fidelity tuning of the optimized design. This simulation based design process involved a close collaboration between ship designers, and hydrodynamics and CFD specialists, whose collective expertise guided the evolution of the design based on both hydrodynamic and structural aspects. The initial hull shape optimization using potential flow code was carried out by blending three different initial concepts provided by the designers. Subsequently, URANS was used to evaluate the potential flow optimized hull and to further optimize the hull configuration parameters, namely, the centre-of-gravity, demihull spacing, foil location, foil angle and slenderness ratio at different displacement conditions. The URANS based configuration optimization also took into account the far field wakes' energy spectrum with an objective of reducing the energetic, low frequency far field wakes which are associated with beach flattening on the mixed sand and gravel beaches. Calculation of the far field wake using URANS would-require? an unfeasibly large domain size; therefore, a Havelock code with a source distribution matching the URANS calculated near field wave elevation was used to propagate the wakes into the far field. The end result of the optimization was a design with significantly reduced far field wake, which is currently being built for experimental testing.
机译:西雅图-布雷默顿(Bremerton)轮渡路线上通过“富人通道”(Rich Passage)运营的仅载客高速渡轮的出现,造成了海滩侵蚀和对栖息地的破坏。通过使用基于低保真CFD的设计优化来设计低尾流高速船的任务开始了,通过使用低保真势流求解器进行初始全局设计优化,并使用URANS求解器对优化设计进行高保真调整。这种基于仿真的设计过程涉及船舶设计师与流体力学和CFD专家之间的密切合作,他们的共同专业知识指导了基于流体力学和结构方面的设计发展。通过将设计师提供的三种不同的初始概念进行融合,使用潜在的流程代码进行了初始船体形状优化。随后,URANS被用于评估可能的流量优化船体,并进一步优化船体配置参数,即在不同位移条件下的重心,反船体间距,箔位置,箔角和细长比。基于URANS的配置优化还考虑了远场尾流的能谱,目的是减少与混合沙子和砾石海滩上的海滩平坦化有关的高能,低频远场尾流。使用URANS计算远场唤醒是否需要?太大的域名;因此,使用了具有与URANS计算的近场波高程相匹配的源分布的Havelock代码将尾波传播到远场。优化的最终结果是设计了一种大大降低了远场唤醒的设计,该设计目前正在用于实验测试。

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