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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >A numerical investigation of the regeneration characteristics of diesel particulate filters under simulated transient exhaust conditions
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A numerical investigation of the regeneration characteristics of diesel particulate filters under simulated transient exhaust conditions

机译:模拟瞬态排气条件下柴油机颗粒过滤器再生特性的数值研究

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摘要

Particulate emissions from diesel engines, which have hazardous effects on living beings and environment, can be controlled by employing diesel particulate filters (DPFs). The DPF cleans the exhaust by physical trapping of the particulates. A major challenge in developing a DPF with wider applications is its lower durability. The filter durability may be increased by careful design of regeneration (soot oxidation) strategies, which restrict the peak filter temperature to below 900-1000 ° C. The regeneration characteristics of a DPF under steady state conditions are well known. However, during a typical driving cycle, a DPF is subjected to various transient conditions owing to changes in driving modes. These transients result in fluctuations of exhaust flowrate, gas composition, and temperature, which strongly influence the DPF performance and regeneration characteristics. The objective of this paper is to investigate the thermal and catalytic fuel additive-assisted regeneration characteristics of a DPF computationally under simulated time-varying exhaust conditions. The time-varying conditions were simulated by considering sinusoidal modulations in exhaust gas temperature and the mass flowrate at the filter inlet. The study employed a one-dimensional mathematical model, which was validated with experimental measurements under different operating conditions. The results showed that the filter dynamic behaviour is different from that under steady state conditions, and it is strongly influenced by the soot loading and the exhaust flow characteristics. The imposed modulation is found to initiate soot oxidation at a lower mean temperature and thus to have a positive effect on the filter regeneration efficiency (soot oxidation rate) for both thermal and catalytic fuel additive-assisted regeneration mechanisms. The modulation effects are found to be important at low frequencies, which gradually disappear at higher frequencies. [PUBLICATION ABSTRACT]
机译:可以通过使用柴油机微粒过滤器(DPF)来控制柴油机产生的对人体和环境有有害影响的颗粒物排放。 DPF通过物理捕集微粒来净化废气。开发具有更广泛应用的DPF的主要挑战是其耐久性较低。可以通过精心设计的再生(烟尘氧化)策略来提高过滤器的耐用性,该策略将峰值过滤器温度限制在900-1000°C以下。稳定状态下DPF的再生特性是众所周知的。然而,在典型的驾驶循环中,由于驾驶模式的改变,DPF经受各种瞬态条件。这些瞬变会导致排气流量,气体成分和温度的波动,从而极大地影响DPF的性能和再生特性。本文的目的是在模拟时变排气条件下,通过计算研究DPF的热和催化燃料添加剂辅助再生特性。通过考虑废气温度和过滤器入口处的质量流量的正弦调制来模拟时变条件。该研究采用了一维数学模型,该模型已在不同操作条件下通过实验测量得到验证。结果表明,滤清器的动态行为不同于稳态条件下的动态行为,并且受烟灰负荷和排气流动特性的强烈影响。发现所施加的调制在较低的平均温度下启动了烟灰氧化,因此对热和催化燃料添加剂辅助的再生机理的过滤器再生效率(烟灰氧化速率)产生了积极影响。发现调制效应在低频下很重要,而在高频下逐渐消失。 [出版物摘要]

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