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A novel 1D approach for the simulation of unsteady reacting flows in diesel exhaust after-treatment systems

机译:一种新颖的一维方法,用于模拟柴油机排气后处理系统中的不稳定反应流

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摘要

A new one-dimensional approach, based on the solution of the governing equations for unsteady, reacting and compressible flows has been developed for the simulation of the hydrodynamics, the transient filtration/loading and the catalytic/N0_2-assisted regeneration occurring in diesel particulate filters (DPF). The model is able to keep track of the chemical compounds, of the amount of soot transported by the flow, and it can estimate the increasing of back-pressure occurring in the exhaust system, due to the permeability variation of the porous wall and to the soot cake building up on the DPF porous surface. Further, a prediction of the oxidation of the deposited particulate induced by the Oxygen (collected in the exhaust gas), by the nitrogen dioxide (NO_2), by the carbon oxide (CO) and by the hydrocarbons (HC) converted along the diesel oxidation catalysts (DOC) is given. A first validation of the code has been performed by the comparison with the results coming from computational fluid dynamics (CFD) and with experimental measurements published in literature. The proposed model has been included in an engine simulation code, in order to perform a simulation of a complete engine; results coming from an optimization work recently carried out on a 1.9 L JTD turbocharged diesel engine, equipped with a complex after-treatment system, are presented.
机译:已经开发了一种新的一维方法,该方法基于不稳定,反应性和可压缩流控制方程的解,用于模拟柴油机颗粒过滤器中的流体动力学,瞬态过滤/装填和催化/ NO 2辅助再生(DPF)。该模型能够跟踪化学化合物,由流传输的烟尘量,并且可以估计由于多孔壁的渗透率变化和排气孔壁的渗透率变化而在排气系统中产生的背压的增加。在DPF多孔表面上堆积的烟灰饼。此外,预测由氧气(收集在废气中),二氧化氮(NO_2),碳氧化物(CO)和沿柴油氧化转化的碳氢化合物(HC)诱导的沉积颗粒的氧化给出了催化剂(DOC)。通过与来自计算流体力学(CFD)的结果以及文献中公布的实验测量值的比较,对代码进行了首次验证。提议的模型已包含在发动机仿真代码中,以便执行完整发动机的仿真。介绍了最近对配备了复杂后处理系统的1.9升JTD涡轮增压柴油发动机进行的优化工作得出的结果。

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