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Experimental Method Extracting Dominant Acoustic Mode Shapes for Automotive Interior Acoustic Field Coupled with the Body Structure

机译:车体内部声场结合车身结构提取主导声模形状的实验方法

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摘要

For a numerical model of vibro-acoustic coupling analysis, such as a vehicle noise and vibration, both structural and acoustical dynamic characteristics are necessary to replicate the physical phenomenon. The accuracy of the analysis is not enough for substituting a prototype phase with a digital phase in the product development phases. One of the reasons is the difficulty of addressing the interior acoustical characteristics due to the complexity of the acoustical transfer paths, which are a duct and a small hole of trim parts in a vehicle. Those complex features affect on the nodal locations and the body coupling surface of acoustic mode shapes. In order to improve the accuracy of the analysis, the physical mechanisms of those features need to be extracted from experimental testing. The accuracy of the vibro-acoustic coupled system model for the low frequency range depends on how accurately modal characteristics are represented at the input, output, and the structure-acoustic coupling surface. Therefore, this study focus on extracting the detailed acoustic mode shapes on the coupling surface for the improvement of the model accuracy. The non-linear least square method as the one utilized in the previous study was applied to the new test data sets of an actual vehicle. In the previous study, it had one remaining issue, which was how to extract acoustic mode shapes in the frequency range of higher damping and higher acoustic modal densities. In order to solve this issue, the number of acoustic excitation was increased considering acoustic mode shapes. The eight loudspeakers were utilized as an acoustical excitation to excite acoustic modes evenly in the acoustic interior dimensions for higher frequency. With the results of this testing, the acoustic modes of an actual vehicle with heavy damping were accurately extracted as the complex mode shapes of no phase lag between nodes, which looks similar the un-coupled normal modes without rotation in animation up to 200Hz. The synthesized FRFs were replicated well with only the extracted several dominant acoustic mode shapes.
机译:对于诸如汽车噪声和振动之类的振动声耦合分析的数值模型,结构和声学动态特性都是复制物理现象所必需的。分析的准确性不足以在产品开发阶段将原型阶段替换为数字阶段。原因之一是由于声学传递路径的复杂性而难以解决内部声学特性,声学传递路径是车辆中的装饰件的管道和小孔。这些复杂的特征影响声学模式形状的节点位置和身体耦合表面。为了提高分析的准确性,需要从实验测试中提取这些特征的物理机制。低频声振动耦合系统模型的精度取决于在输入,输出和结构声耦合表面上表示模态特性的精度。因此,本研究着重于提取耦合表面上的详细声模形状以提高模型精度。先前研究中使用的非线性最小二乘法被应用于实际车辆的新测试数据集。在先前的研究中,它还有一个问题,就是如何在较高阻尼和较高声模密度的频率范围内提取声模形状。为了解决这个问题,考虑了声模形状,增加了声激发的数量。八个扬声器被用作声学激励,以在内部声学尺寸中均匀激发声模,以获得更高的频率。通过此测试的结果,可以准确地提取出具有高阻尼的实际车辆的声学模式,因为节点之间没有相位滞后的复杂模式形状,看上去与未耦合的正常模式相似,动画中的旋转高达200Hz。合成的FRF仅使用提取的几种主要的声模形状进行了很好的复制。

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