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Aerodynamic-structural model of offwind yacht sails.

机译:顺风游艇帆的气动结构模型。

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摘要

An aerodynamic-structural model of offwind yacht sails was created that is useful in predicting sail forces. Two sails were examined experimentally and computationally at several wind angles to explore a variety of flow regimes. The accuracy of the numerical solutions was measured by comparing to experimental results.; The two sails examined were a Code 0 and a reaching asymmetric spinnaker. During experiment, balance, wake, and sail shape data were recorded for both sails in various configurations. Two computational steps were used to evaluate the computational model. First, an aerodynamic flow model that includes viscosity effects was used to examine the experimental flying shapes that were recorded. Second, the aerodynamic model was combined with a nonlinear, structural, finite element analysis (FEA) model. The aerodynamic and structural models were used iteratively to predict final flying shapes of offwind sails, starting with the design shapes.; The Code 0 has relatively low camber and is used at small angles of attack. It was examined experimentally and computationally at a single angle of attack in two trim configurations, a baseline and overtrimmed setting. Experimentally, the Code 0 was stable and maintained large flow attachment regions. The digitized flying shapes from experiment were examined in the aerodynamic model. Force area predictions matched experimental results well. When the aerodynamic-structural tool was employed, the predictive capability was slightly worse.; The reaching asymmetric spinnaker has higher camber and operates at higher angles of attack than the Code 0. Experimentally and computationally, it was examined at two angles of attack. Like the Code 0, at each wind angle, baseline and overtrimmed settings were examined. Experimentally, sail oscillations and large flow detachment regions were encountered. The computational analysis began by examining the experimental flying shapes in the aerodynamic model. In the baseline setting, the computational force predictions were fair at both wind angles examined. Force predictions were much improved in the overtrimmed setting when the sail was highly stalled and more stable. The same trends in force prediction were seen when employing the aerodynamic-structural model. Predictions were good to fair in the baseline setting but improved in the overtrimmed configuration.
机译:建立了顺风游艇帆的空气动力学结构模型,该模型可用于预测帆力。在几个风向角上对两个风帆进行了实验和计算检查,以探索各种流动状态。通过与实验结果比较来测量数值解的准确性。检查的两个帆分别是Code 0和不对称的大三角帆。在实验过程中,记录了两种帆在各种配置下的平衡,尾流和帆形状数据。使用两个计算步骤来评估计算模型。首先,使用包含粘性效应的空气动力学模型来检查记录的实验飞行形状。其次,将空气动力学模型与非线性,结构,有限元分析(FEA)模型相结合。从设计形状开始,反复使用空气动力学和结构模型来预测顺风帆的最终飞行形状。代号0的外倾角较小,用于小迎角。在两个调整配置(基线和过度修剪的设置)下,以单个迎角对实验和计算进行了检查。在实验上,代码0是稳定的,并维持较大的流量附加区域。在空气动力学模型中检查了来自实验的数字化飞行形状。力区域的预测与实验结果非常吻合。当使用气动结构工具时,其预测能力稍差。与代码0相比,到达的非对称大三角帆具有更高的外倾角和更高的攻角。在实验和计算上,它在两个攻角下进行了检查。像代码0一样,在每个风向角,都要检查基线和过度修剪设置。在实验中,遇到风帆振荡和大的流分离区域。通过分析空气动力学模型中的实验飞行形状开始进行计算分析。在基线设置中,计算力的预测在所检查的两个风向角都是合理的。当帆高度失速且更稳定时,在过度修剪的环境中,力的预测将大大改善。当采用空气动力学结构模型时,可以看到力预测的相同趋势。预测在基线设置中很好,但在过度修剪的配置中有所改善。

著录项

  • 作者

    Mairs, Christopher M.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Engineering Aerospace.; Engineering Marine and Ocean.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 220 p.
  • 总页数 220
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;海洋工程;
  • 关键词

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