首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2011 >SYSTEMATIC STUDY OF THE HYDRODYNAMIC FORCES ON A SAILING YACHT HULL USING PARAMETRIC DESIGN AND CFD
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SYSTEMATIC STUDY OF THE HYDRODYNAMIC FORCES ON A SAILING YACHT HULL USING PARAMETRIC DESIGN AND CFD

机译:参数化设计与CFD对帆船游艇船体水动力的系统研究

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In order to predict the velocity and attitude of a sailing yacht travelling in a given wind speed and wind angle, the hydrodynamic problem and the aerodynamic problem need most of the time to be decoupled. Two matrices are built to characterize the hydrodynamic and the aerodynamic behavior separately. Then a Velocity Prediction Program (VPP) interpolates the matrices and finds the equilibrium between the forces acting on the hull and appendages on one side, and the forces acting on the sails on the other side. This gives the velocity and attitude of the yacht depending on the wind speed and wind angle. Two main approaches are currently used to build the hydrodynamic matrix. The first method is to build a reduced or a virtual model with the proper hull shape and test it in a towing tank or a Computational Fluid Dynamics (CFD) program. This approach can lead to a very precise estimation of the matrix for a given hull shape, but it is time consuming and gives no indication on other possible hull shapes. The second method is to build and test various hull shapes and use this database to build analytical formulas describing the evolution of the hydrodynamic forces depending on the speed and attitude, but also on the hull shape, via several "shape parameters". During the early stage of design, numerous hulls are to be evaluated, and it is very valuable to understand the influence of the design parameters on hydrodynamic efficiency of the hull. Therefore, the second method should be much more efficient at this stage of the design process. The most used regressions have been provided by J.A. Keuning et al., based on the Delft Systematic Yacht Hull Series, [1], [2]. This work began in 1971; the sailing yacht hull shapes have changed a lot since then. The aim of the present work is to enhance these regressions, by using new shapes in the database and by adding new "shape parameters" to describe the hulls. A powerful loop driven by the commercial software ModeFrontier has been developed in order to build a database by means of CFD. Systematic morphing of the hull shapes, parallel computing, automatic meshing and automatic post-treatment will provide a large database in a relatively short time. The aim of the ongoing work is to improve the accuracy and sensitivity of the prediction of yacht hull performance during the early stages of the design process. The study will focus on flat water, steady predictions. The following results concern exclusively bare hulls, the interaction between the hull and its appendages will be treated separately.
机译:为了预测在给定的风速和风角下航行的游艇的速度和姿态,流体动力学问题和空气动力学问题需要大部分时间去耦合。建立了两个矩阵来分别表征流体动力学和空气动力学行为。然后,速度预测程序(VPP)对矩阵进行插值,并求出作用在船体和附件上的力在一侧与作用在帆上的力在另一侧之间的平衡。这将根据风速和风向角给出游艇的速度和姿态。当前使用两种主要方法来建立流体动力矩阵。第一种方法是建立具有适当船体形状的简化模型或虚拟模型,并在拖船或计算流体力学(CFD)程序中对其进行测试。对于给定的船体形状,该方法可以导致对矩阵的非常精确的估计,但是这很耗时,并且没有给出其他可能的船体形状的指示。第二种方法是构建和测试各种船体形状,并使用该数据库来构建解析公式,该公式通过速度和姿态(也取决于船体形状)通过几个“形状参数”描述流体动力的演变。在设计的早期阶段,将评估许多船体,了解设计参数对船体流体动力效率的影响非常有价值。因此,第二种方法应该在设计过程的这个阶段更加有效。 J.A.提供了最常用的回归。 Keuning等人,基于代尔夫特系统游艇船体系列,[1],[2]。这项工作始于1971年;从那时起,帆船游艇的船体形状发生了很大变化。本工作的目的是通过在数据库中使用新形状并通过添加新的“形状参数”来描述船体来增强这些回归。为了通过CFD建立数据库,已经开发了由商业软件ModeFrontier驱动的强大循环。船体形状的系统变形,并行计算,自动网格划分和自动后处理将在相对较短的时间内提供大型数据库。正在进行的工作的目的是在设计过程的早期阶段提高预测游艇船体性能的准确性和敏感性。该研究将集中在平坦的水面,稳定的预测上。以下结果仅涉及裸露的船体,将单独处理船体及其附件之间的相互作用。

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