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A Computational Approach to Evaluate the Vehicle Interior Noise from Greenhouse Wind Noise Sources - Part II

机译:从温室风噪声源评估车辆内部噪声的计算方法 - 第二部分

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For most car manufacturers, aerodynamic noise is becoming the dominant high frequency noise source (> 500 Hz) at highway speeds. Design optimization and early detection of issues related to aeroacoustics remain mainly an experimental art implying high cost prototypes, expensive wind tunnel sessions, and potentially late design changes. To reduce the associated costs as well as development times, there is strong motivation for the development of a reliable numerical prediction capability. This paper presents a computational approach that can be used to predict the vehicle interior noise from the greenhouse wind noise sources, during the early stages of the vehicle developmental process so that design changes can be made to improve the wind noise performance of the vehicle. This method is based on coupling an unsteady Computational Fluid Dynamics (CFD) solver for the wind noise excitation to a Statistical Energy Analysis (SEA) solver for the structural acoustic behavior; both the CFD and SEA codes are well-validated industry standard tools. In this paper this computational approach is applied on a real production vehicle to predict the noise contribution from the green house region for different yaw conditions. These predictions are validated against the wind tunnel test measurements. Application of this approach to predict the interior noise for different speeds and mirrors was published in a previous paper.
机译:对于大多数汽车制造商,空气动力噪音正在成为在高速行驶的主导高频噪声源(> 500赫兹)。优化设计和早期发现的涉及气动声学问题主要仍然是一个实验性艺术意味着高成本的原型,昂贵的风洞会议,并有可能后期的设计变更。为了降低相关的成本以及开发时间,对开发可靠的数值预测能力具有很强的动机。本文提出了可用于预测从温室风噪声源的车内噪音,在车辆发育过程的早期阶段,这样的设计更改可提高车辆的风噪声性能的计算方法。这种方法是基于耦合的风噪声激励到一个统计能量分析(SEA)解算器的结构声行为不稳定的计算流体动力学(CFD)求解;无论是CFD和SEA码充分验证的行业标准工具。在本文中这种计算方法被应用在实际生产车辆预测由温室区针对不同的偏航条件的噪声贡献。这些预测被证实对风洞试验的测量。这种方法的预测不同的速度和后视镜车内噪音的应用发表在以前的论文。

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