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Using CFD flow fields to inform acoustic finite element models of complex mufflers with thermal and flow effects

机译:使用CFD流场与热量和流动效果通知复杂消声器的声学有限元模型

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Many actual muffler systems with complex geometry have large temperature variations and large variations in the flow field under normal operating conditions. Often perforated regions and other complex design elements complicate the flow patterns. The temperature and flow strongly affects the acoustic performance and these parameters must be addressed in acoustic models to accurately predict the performance of complex muffler designs. The temperature variation and the time-average flow patterns can be predicted with computational fluid dynamics (CFD) simulations. This paper describes an automated process for using an open source computational fluid dynamics (CFD) solver to compute the temperature variations and flow field. These results are then used in an acoustic finite element (FE) model to predict the acoustic performance of the muffler. A validation case study demonstrating the process to obtain accurate muffler predictions by chaining a CDF prediction to an acoustic FE prediction is presented. The model predictions are compared with some simple experimental results demonstrating the accuracy for a muffler with non-zero mean flow and perforated elements.
机译:许多具有复杂几何形状的实际消声器系统具有大的温度变化和正常操作条件下流场的大变化。通常穿孔区域和其他复杂的设计元素使流动模式复杂化。温度和流量强烈影响声学性能,并且必须在声学模型中寻址这些参数,以准确地预测复杂的消声器设计的性能。可以通过计算流体动力学(CFD)模拟来预测温度变化和时间平均流量模式。本文介绍了使用开源计算流体动力学(CFD)求解器来计算温度变化和流场的自动化过程。然后将这些结果用于声学有限元(Fe)模型中以预测消声器的声学性能。呈现了通过将CDF预测链接到声学Fe预测来获得准确消声器预测的过程的验证案例研究。将模型预测与一些简单的实验结果进行了比较,证明了具有非零平均流动和穿孔元件的消声器的精度。

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