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Investigation of the Acoustic Performance of After Treatment Devices

机译:治疗装置后声学性能的研究

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Diesel engines produce harmful exhaust emissions and high exhaust noise levels. One way of mitigating both exhaust emissions and noise is via the use of after treatment devices such as Catalytic Converters (CC), Selective Catalytic Reducers (SCR), Diesel Oxidation Catalysts (DOC), and Diesel Particulate Filters (DPF). The objective of this investigation is to characterize and simulate the acoustic performance of different types of filters so that maximum benefit can be achieved. A number of after treatment device configurations for trucks were selected and measured. A measurement campaign was conducted to characterize the two-port transfer matrix of these devices. The simulation was performed using the two-port theory where the two-port models are limited to the plane wave range in the filter cavity. These models are implemented in SIDLAB Software for the simulation of low frequency sound propagation in ducts, and SIDLAB was used to predict the transfer matrix of the tested configurations. This paper presents guidelines for dividing these complicated systems into a number of simple 1D elements. Specifically, strategies for modeling the side inlet and outlet end caps are documented. The model takes about 15 minutes to set-up and 15 seconds to solve which demonstrates the power of using two-port techniques in modeling exhaust systems. The comparisons show good agreement between the measured and simulated transmission loss in the plane wave region.
机译:柴油发动机产生有害排放和高排气噪音水平。减轻废气排放和噪声的一种方法是通过在诸如催化转化器(CC),选择性催化还原剂(SCR),柴油氧化催化剂(DOC)和柴油颗粒过滤器(DPF)中使用后的一种方法。该研究的目的是表征和模拟不同类型过滤器的声学性能,以便可以实现最大效益。选择并测量卡车的一些处理装置配置。进行测量活动以表征这些设备的双端口传输矩阵。使用双端口理论执行模拟,其中双端口模型限于过滤腔中的平面波范围。这些模型在SIDLAB软件中实现,用于模拟管道中的低频声音传播,并且SIDLAB用于预测测试配置的传输矩阵。本文介绍了将这些复杂系统分成多个简单1D元素的指导方针。具体地,记录了用于建模侧入口和出口端盖的策略。该模型大约需要15分钟到设置和15秒才能解决,这证明了在建模排气系统中使用双端口技术的功率。比较在平面波区域中的测量和模拟传输损耗之间显示出良好的一致性。

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