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Utilizing spectral analysis to quantify resolution of low frequency behavior in testing commercial vehicles

机译:利用光谱分析来量化测试商用车辆中低频行为的分辨率

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Despite the recent broadening of acceptable test methods for certifying aerodynamic performance, there has been little attention on how to determine the time averaging window used for providing mean forces. This is of particular relevance to the assessment of commercial vehicles as they are significantly affected by low-frequency patterns that are hard to predict and vary with different geometry configurations. Published guidelines in the industry suggest that good engineering judgement be used and a qualitative assessment of force histories is adequate. These suggested methods leave the accuracy of the time averaging to the experience and judgement of the user and is highly dependent on the specific characteristics of the benchmark case. Furthermore these methods are not able to quantify the error present due to motions slower than length of the sampled data. In order to robustly determine appropriate averaging window a new method is proposed which utilizes spectral analysis of the drag. By investigating changes in the power spectral density for different averaging windows it is possible to determine adequate averaging time as well as to assess the error introduced by selecting a particular averaging window. The method detailed presently is applied to both wind tunnel measurements and computation fluid dynamics simulations.
机译:尽管最近扩大了可接受的用于认证空气动力学性能的测试方法,但如何重视如何确定用于提供均值的时间平均窗口。这与商用车辆的评估特别相关,因为它们受到难以预测和随不同的几何配置而变化的低频模式的显着影响。公布的行业指南表明,使用良好的工程判断,对力历史的定性评估是充足的。这些建议的方法留下了对用户的经验和判断的时间的准确性,并且高度依赖于基准情况的具体特征。此外,这些方法不能通过比采样数据的长度慢的动作量量化所存在的错误。为了稳健地确定适当的平均窗口,提出了一种新方法,该方法利用拖动的光谱分析。通过研究不同平均窗口的功率谱密度的变化,可以确定足够的平均时间以及通过选择特定的平均窗口来评估引入的错误。目前详述的方法应用于风洞测量和计算流体动力学模拟。

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