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Thermodynamic Modeling and Validation of In-Cylinder Flow in Diesel Engines

机译:柴油机缸内流动的热力学建模与验证

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The formation of a suitable air and fuel mixture in diesel engines is one of the most important factors in quality of combustion and engine exhaust emissions. The mixture formation depends on mass transfer phenomenon inside the combustion chamber. This study presents a new thermodynamic model to simulate the mass transfer phenomenon in diesel engines. Diesel engine is simulated utilizing a thermodynamic multi zone model coupled to a semi-detailed chemical kinetics mechanism. Heat and mass transfer submodels are linked to the multi zone model. Bulk flow and diffusion mass transfer between zones are considered in the mass transfer submodel. Bulk mass transfer simulates fluid motion between different zones caused by piston speed and difference in zonal temperature and pressure. Diffusion mass transfer occurs due only to difference in composition of different zones. The results indicate diesel engine performance and exhaust emissions can be predicted accurately applying mass transfer submodels. Bulk mass transfer mechanism has more significant effects on engine performance and emission compared to diffusion mechanism. Neglecting mass transfer submodels, calculated in-cylinder peak pressure is under predicted and both of exhaust NOx and soot are over predicted. The rates of soot oxidation reactions decrease and rates of NOx important reactions increase when mass transfer submodels are ignored. (c) 2019 American Institute of Chemical Engineers Environ Prog, 38:e13146, 2019
机译:柴油发动机中合适的空气和燃料混合物的形成是燃烧质量和发动机废气排放的最重要因素之一。混合物的形成取决于燃烧室内部的传质现象。这项研究提出了一个新的热力学模型来模拟柴油发动机的传质现象。柴油发动机是利用热力学多区域模型与半详细化学动力学机制耦合来模拟的。传热和传质子模型链接到多区域模型。在传质子模型中考虑了区域之间的整体流动和扩散传质。批量传质模拟了由活塞速度以及区域温度和压力差异引起的不同区域之间的流体运动。仅由于不同区域的组成不同而发生扩散传质。结果表明,使用传质子模型可以准确预测柴油机的性能和废气排放。与扩散机制相比,本体传质机制对发动机性能和排放具有更大的影响。忽略传质子模型,计算出的缸内峰值压力低于预测,排气NOx和烟灰均超标。当忽略传质子模型时,烟尘氧化反应的速率降低,NOx重要反应的速率提高。 (c)2019美国化学工程师学会Environ Prog,38:e13146,2019

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