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Acoustic Characterization of Automotive Mufflers - Part II: Validation of the Numerical Models by Means of Experimental Data

机译:汽车消声器的声学表征 - 第二部分:通过实验数据验证数值模型

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Increasing interest is being paid to noise pollution of internal combustion engines and as a result, recent international standards imposed more severe limitations to acoustic emissions on engine manufacturers. In particular, the noise coming from gas-dynamic interactions has an important influence in determining the final noise level of the engine; as a consequence, the muffler design is currently being considered as one of the most important research threads for engine companies. Within this context, the 1D approach to numerical simulations, which has been successfully applied by industrial designers to the fluid-dynamic design of the engine, is considered to be inaccurate in the evaluation of the acoustic behavior of the muffler for medium-high frequencies. On the other hand, an extension of the applicability of these codes in the medium-high frequencies would be desirable. The direct advantage would be the use of the same software for the simulation of both the fluid-dynamic and acoustic performance of the engine. On these bases, a commercial 1D numerical code was primarily analyzed in terms of accuracy, computational cost and modeling capability of mufflers from the acoustic point of view. As a second step, two non-conventional approaches were developed in order to improve the prediction capabilities of the 1D code and to widen its frequency range of validity, as well. The base scheme of these new approaches was to extend the application of the traditional 1D nonlinear equations not only in the axial direction but also in perpendicular directions within the cross-section of the muffler, achieving a simplified description of the acoustic phenomena in the whole volume. The 1D predictions using these new approaches were compared both with several sets of experimental data collected on a purposefully developed test rig and specific 3D simulations; as a result, their limits in terms of accuracy were highlighted. Moreover, the introduction of the new sub-models increased the accuracy of the simulations and the frequency range of validity, leading to notable results with respect to traditional formulations of the problem.
机译:越来越多的利益正在为内燃机的噪音污染,因此,最近的国际标准对发动机制造商的声排放产生了更严重的局限性。特别地,来自气体动态相互作用的噪声在确定发动机的最终噪声水平方面具有重要影响;因此,消声器设计目前被认为是发动机公司最重要的研究线程之一。在这种情况下,通过工业设计者成功地应用于发动机的流体动态设计的1D对数值模拟的方法,被认为是在中高频率的消声器的声学行为的评估中不准确。另一方面,期望在中高频率中的这些代码的适用性的延伸。直接优势将是使用相同的软件来模拟发动机的流体动态和声学性能。在这些基础上,商业1D数值代码主要根据声学观点的准确性,计算成本和模拟能力进行分析。作为第二步,开发了两种非传统方法,以改善1D代码的预测能力并扩大其频率范围的有效性。这些新方法的基础方案是不仅沿轴向方向延伸了传统的1D非线性方程的应用,而且在消声器的横截面内的垂直方向上延伸,实现了整个体积中的声学现象的简化描述。使用这些新方法的1D预测与有目的地开发的测试钻机和特定的3D模拟收集的几组实验数据进行了比较;结果,突出了它们在准确性方面的极限。此外,新子模型的引入提高了模拟的准确性和频率范围的有效性,导致关于问题的传统配方的显着结果。

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