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首页> 外文期刊>Journal of Vibration and Acoustics >Vibro-Acoustic Design Optimization Study to Improve the Sound Pressure Level Inside the Passenner Cabin
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Vibro-Acoustic Design Optimization Study to Improve the Sound Pressure Level Inside the Passenner Cabin

机译:振动声学设计优化研究,以提高乘客舱内的声压级

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The interior noise inside the passenger cabin of automobiles can be classified as structure-borne or airborne. In this study, we investigate the structure-borne noise, which is mainly caused by the vibrating panel's enclosing the vehicle. Excitation coming from the engine causes the panels to vibrate at their resonance frequencies. These vibrating panels cause a change in the sound pressure level within the passenger cabin, and consequently generating an undesirable booming noise. It is critical to understand the dynamics of the vehicle, and more importantly, how it interacts with the air inside the cabin. Two methodologies were used by coupling them to predict the sound pressure level inside the passenger cabin of a commercial vehicle. The Finite Element Method (FEM) was used for the structural analysis of the vehicle, and the Boundary Element Method (BEM) was integrated with the results obtained from FEM for the acoustic analysis of the cabin. The adopted FEM-BEM approach can be utilized to predict the sound pressure level inside the passenger cabin, and also to determine the contribution of each radiating panel to the interior noise level. The design parameters of the most influential radiating panels (i.e., thickness) can then be optimized to reduce the interior noise based on the three performance metrics. A structured parametric study, based on techniques from the field of industrial design of experiments (DOE) was employed to understand the relationship between the design parameters and the performance metrics. A DOE study was performed for each metric to identify the components that have the highest contribution to the sound pressure levels inside the cabin. For each run, the vibro-acoustic analysis of the system is performed, the sound pressure levels are calculated as a function of engine speed and then the performance metrics are calculated. The highest contributors (design parameters) to each performance metric are identified and regression models are built to be used for optimization studies. Then, preliminary optimization runs are employed to improve the interior sound pressure levels by finding the optimum configurations for the panel thicknesses. Our results show that the methodology developed in this study can be effectively used for improving the design of the panels to reduce interior noise when the vibro-acoustic response is chosen as the performance criteria.
机译:汽车乘客舱内的内部噪声可分为结构传播或空气传播。在这项研究中,我们调查了结构传播的噪声,该噪声主要是由振动面板包围车辆引起的。来自发动机的激励导致面板以其共振频率振动。这些振动板引起客舱内声压级的改变,并因此产生不希望的隆隆声。了解车辆的动力至关重要,更重要的是,了解车辆如何与驾驶室内的空气相互作用。通过结合使用两种方法来预测商用车乘客舱内的声压级。有限元方法(FEM)用于车辆的结构分析,边界元方法(BEM)与从FEM获得的结果集成在一起,用于车厢的声学分析。所采用的FEM-BEM方法可用于预测客舱内部的声压级,并还可确定每个散热板对内部噪声级的影响。然后,可以基于三个性能指标优化最有影响力的散热板的设计参数(即厚度),以减少内部噪音。基于实验工业设计(DOE)领域的技术,进行了结构化的参数研究,以了解设计参数和性能指标之间的关系。针对每个指标进行了DOE研究,以确定对机舱内部声压水平有最大贡献的组件。对于每次运行,都要进行系统的振动声学分析,并根据发动机转速计算声压级,然后计算性能指标。确定每个性能指标的最高贡献者(设计参数),并建立回归模型以用于优化研究。然后,通过寻找面板厚度的最佳配置,进行初步的优化运行以改善内部声压级。我们的结果表明,当选择振动声响应作为性能标准时,本研究开发的方法可以有效地用于改进面板的设计,以减少内部噪音。

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