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首页> 外文期刊>Finite Elements in Analysis and Design >Finite element based acoustic analysis of dissipative silencers with high temperature and thermal-induced heterogeneity
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Finite element based acoustic analysis of dissipative silencers with high temperature and thermal-induced heterogeneity

机译:基于高温和热致异质性的消声器的有限元声学分析

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A mixed finite element model has been derived for the acoustic analysis of perforated dissipative silencers including several effects simultaneously: (1) High temperature and thermal gradients in the central duct and the outer absorbent material; (2) a perforated passage carrying non-Uniform axial mean Row. For such a combination, the properties of sound propagation media and flow are inhomogeneous and vary with position. The material of the outer chamber can be modelled by its complex equivalent acoustic properties, which completely determine the propagation of sound waves in the air contained in the absorbent medium. Temperature gradients introduce variations in these properties that can be evaluated through a heterogeneous temperature-dependent resistivity in combination with material models obtained at room temperature. A pressure-based wave equation for stationary medium is then used with the equivalent density and speed of sound of the absorbent material varying as functions of the spatial coordinates. Regarding the central air passage, a wave equation in terms of acoustic velocity potential can be used to model the non-uniform moving medium since the presence of temperature variations introduce not only heterogeneous acoustic properties of the air but also a gradient in the mean flow velocity. The acoustic connection between the central passage and the outer chamber is given by the acoustic impedance of the perforated duct. This impedance depends on the heterogeneous properties of the absorbent material and the non-uniform mean flow, leading to a spatial variation of the acoustic coupling and also to additional convective terms in the governing equations. The results presented show the influence of temperature, thermal gradients and mean flow on the transmission loss of automotive silencers, It has been found that high temperature and thermal-induced heterogeneity can have a significant influence on the acoustic attenuation of an automotive silencer and so should be included in theoretical models. In some particular configurations it may be relatively accurate to approximate the temperature field by using a uniform profile with an average value, specially for low resistivity materials, It has been shown, however, that this is not always possible and attenuation overestimation is likely to be predicted, mainly for high radial thermal gradients and high material flow resistivities, if the temperature distribution is not taken into account. (C) 2015 Elsevier B.V All rights reserved.
机译:导出了一个混合有限元模型,用于穿孔耗散消音器的声学分析,同时包括以下几种影响:(1)中央管道和外部吸收材料中的高温和热梯度; (2)带有非均匀轴向均值行的穿孔通道。对于这样的组合,声音传播介质和流动的特性是不均匀的,并随位置而变化。外部腔室的材料可以通过其复杂的等效声学特性进行建模,这些特性完全决定了声波在吸收介质中所含空气中的传播。温度梯度会导致这些特性发生变化,可以通过与温度相关的异质电阻率与在室温下获得的材料模型相结合来进行评估。然后使用固定介质的基于压力的波动方程,吸收材料的等效密度和声速随空间坐标的变化而变化。关于中央空气通道,可以使用以声速势为单位的波动方程来对非均匀运动介质进行建模,因为温度变化的存在不仅会引入空气的异质声学特性,还会引入平均流速的梯度。中央通道和外部腔室之间的声学​​连接由穿孔管的声阻抗给出。该阻抗取决于吸收性材料的异质性和不均匀的平均流量,从而导致声耦合的空间变化以及控制方程式中的其他对流项。给出的结果表明温度,热梯度和平均流量对汽车消声器的传输损耗的影响,已发现高温和热引起的异质性可能对汽车消声器的声衰减产生重大影响,因此应该包括在理论模型中。在某些特定配置中,尤其是对于低电阻率的材料,通过使用具有平均值的均匀轮廓来近似估计温度场可能相对准确。但是,这表明并非总是可能的,并且衰减高估可能是如果不考虑温度分布,则主要针对高径向热梯度和高材料流动电阻率进行预测。 (C)2015 Elsevier B.V保留所有权利。

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