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CFD Investigation of the Effect of Fluid-Structure Interaction on the Transmission Loss of ICE Silencers

机译:CFD研究流固耦合对ICE消声器传递损失的影响

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摘要

In the last decades numerical simulations have become reliable tools for the design and the optimization of silencers for internal combustion engines. Different approaches, ranging from simple 1D models to detailed 3D models, are nowadays commonly applied in the engine development process, with the aim to predict the acoustic behavior of intake and exhaust systems. However, the acoustic analysis is usually performed under the hypothesis of infinite stiffness of the silencer walls. This assumption, which can be regarded as reasonable for most of the applications, can lose validity if low wall thickness are considered. This consideration is even more significant if the recent trends in the automotive industry are taken into account: in fact, the increasing attention to the weight of the vehicle has lead to a general reduction of the thickness of the metal sheets, due also to the adoption of high-strength steels, making the vibration of the components a non negligible issue. In this work, a CFD compressible solver capable to describe the fluid-structure interaction problem has been implemented and validated. The approach is based on the adoption of two different domains for the solution of the governing equation for the fluid and for the structure. At each time-step, the pressure field computed on the fluid domain is used as an input for the solution of the displacement of the structure. A mesh motion strategy is adopted, for both the fluid and solid domain, in order to describe the deformation of the walls. The solver has been applied for the simulation of the acoustic behavior of a simple expansion chamber, considering different wall thickness, in order to investigate the effect of the structure vibration on the transmission loss. Results have been validated resorting to experimental measurements available in the literature.
机译:在过去的几十年中,数值模拟已成为用于内燃机消音器设计和优化的可靠工具。如今,从简单的1D模型到详细的3D模型,各种方法已普遍应用于发动机开发过程中,目的是预测进气和排气系统的声学性能。然而,声学分析通常在消音器壁的无限刚度的假设下进行。如果考虑到低壁厚,则对于大多数应用而言可以认为是合理的这一假设可能会失去有效性。如果考虑到汽车行业的最新趋势,这一考虑就更加重要:实际上,由于对汽车重量的日益关注,对汽车重量的普遍关注已导致金属板的厚度普遍减少。高强度钢的制造,使组件的振动成为不可忽略的问题。在这项工作中,已经实现并验证了能够描述流体-结构相互作用问题的CFD可压缩求解器。该方法基于采用两个不同的域来求解流体和结构的控制方程。在每个时间步长,在流体域上计算出的压力场都用作解决结构位移的输入。为了描述壁的变形,对于流体域和固体域都采用了网格运动策略。为了研究结构振动对传输损耗的影响,该求解器已被应用到模拟简单膨胀腔室的声学行为中,考虑了不同的壁厚。结果已通过文献中的实验测量得到验证。

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