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Enhanced Acoustic Performance using Key Design Parameters of Headliners

机译:使用备线仪的关键设计参数增强了声学性能

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Sound absorption materials can be key elements for mass-efficient vehicle noise control. They are utilized at multiple locations in the interior and one of the most important areas is the roof. At this location, the acoustic treatment typically comprises a headliner and an air gap up to the body sheet metal. The acoustic performance requirement for such a vehicle subsystem is normally a sound absorption curve. Based on headliner geometry and construction, the sound absorption curve shape can be adjusted to increase absorption in certain frequency ranges. In this paper an overall acoustic metric is developed to relate design parameters to an absorption curve shape which results in improved in-vehicle performance. This metric is based on sound absorption coefficient and articulation index. Johnson-Champoux-Allard equivalent fluid model and diffuse field equations are used. The results are validated using impedance tube measurements. It is shown the specific airflow resistance of the headliner is a primary governing factor to improve in-vehicle acoustic performance. The relationship between airflow resistance, air gap and headliner thickness is also explored.
机译:吸音材料可以是批量效率的车辆噪声控制的关键要素。它们在内部的多个位置使用,最重要的区域之一是屋顶。在该位置,声学处理通常包括顶线和达到身体金属板金属的气隙。这种车辆子系统的声学性能要求通常是吸音曲线。基于头条内衬几何和结构,可以调节吸声曲线形状以增加某些频率范围的吸收。在本文中,开发了一种整体声学度量以将设计参数与吸收曲线形状相关,这导致车载性能改善。该度量基于声音吸收系数和关节指数。使用Johnson-Champoux-Allard等效流体模型和漫射场方程。使用阻抗管测量验证结果。示出了头部内衬的特定气流电阻是改善车载声学性能的主要管制因素。还探讨了气流电阻,气隙和前线厚度之间的关系。

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