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Further study on wall film effects and flame quenching under engine thermodynamic conditions

机译:发动机热力学条件下的壁膜效应和火焰淬火的进一步研究

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In direct-injection engines, the formation of fuel wall film on piston surface and liner wall is a primary cause for emissions of unburnt hydrocarbons and particulate matter. It is therefore important to investigate the behavior and effect of a wall fuel film under typical engine conditions. Following our previous study of wall film effects on flame propagation and quenching under constant thermodynamic conditions (Tao et al. IJER, 2018), more complexities rooted in real engine conditions have been considered in the current work, including two real engine in-cylinder thermodynamic trajectories occurring at catalyst warming (CW) and low-speed high-load (LSHL) conditions, varying fuel wall film thickness accounting for both vaporization and condensation, and the stagnation boundary layer flow over the wall film. To shed light on the role of wall heat transfer, parameter sweeping of wall temperature is conducted from 303 K to 363 K. Two representative wall film models using empirical vaporization rate and gas-liquid interface heat flux are compared with our numerical simulation. A good correlation between vapor boundary thickness and quenching distance has been found. Competition between enhanced vaporization due to tangential convection and aggravate condensation from elevated pressure is also demonstrated. The results lead to useful insights into the behavior of a wall film in real engine in-cylinder thermodynamic conditions and could be used to construct low dimensional empirical wall film models in three-dimensional engine combustion modeling. (C) 2020 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在直喷发动机中,活塞表面和衬垫壁上的燃料壁膜的形成是未燃烧烃和颗粒物质的发射的主要原因。因此,重要的是要研究壁燃料膜在典型发动机条件下的行为和效果。遵循我们以前研究墙膜膜对恒定热力学条件下火焰传播和淬火的影响(Tao等人,2018),目前的工作中已经考虑了在实际发动机条件下植根的更多复杂性,包括两个真正的缸内热力学热力学在催化剂变暖(CW)和低速高负荷(LSHL)条件下发生的轨迹,不同的燃料壁膜厚度占汽化和冷凝,以及在壁膜上流动的停滞边界层流动。为了阐明壁传热的作用,壁温的参数从303 k到363k进行。使用经验汽化速率和气液界面热通量的两个代表性壁膜模型与我们的数值模拟进行比较。已经找到了蒸气边界厚度与淬火距离之间的良好相关性。还证明了由于切向对流引起的增强汽化与升高的压力凝结的竞争。结果导致实际发动机在缸内热力学条件中的墙膜行为的有用见解,并且可用于构建三维发动机燃烧建模中的低维经验壁膜模型。 (c)2020燃烧研究所。由elsevier Inc.出版的所有权利保留。

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