In-cylinder spray evolution in a motored central-injection gasoline engine: Imaging and simulating the effects of flash-boiling and intake crossflow

IF 2.2 4区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Engine Research Pub Date : 2024-02-22 DOI:10.1177/14680874241231623
Hengjie Guo, Roberto Torelli, Namho Kim, David L Reuss, Magnus Sjöberg
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Abstract

Accurate predictions of fuel spray behavior and mixture formation in simulations of direct-injection spark-ignition (DISI) engines are fundamental to ensure proper description of all subsequent processes including ignition, combustion, and emissions. In this work, the spray evolution in a single-cylinder optical DISI engine was studied experimentally and numerically with the goal of enabling predictive computational fluid dynamics (CFD) modeling of in-cylinder sprays. The authors explored a wide range of operating conditions characterized by several fuel injection temperatures and engine speeds, using a well-characterized nine-component gasoline surrogate known as PACE-20. The effect of flash boiling and intake crossflow on the spray is discussed, with a focus on evaluating the ability of the spray models to capture highly transient spray behavior. In the experiments, the fuel temperature was varied between 20°C and 80°C, allowing for non-flash- to flash-boiling transition to emerge with enhanced flashing intensity at the highest temperatures. Spray collapse resulted in vapor-rich regions, owing to the locally lower inertia of the fluid. Varying the engine speed from 650 to 1950 rpm promoted increasingly more turbulent in-cylinder crossflow which interacted with the spray during the injection event and resulted in enhanced spray dispersion. The CFD model was able to capture the spray morphology transition at different fuel temperatures and engine speeds adequately. It is shown that the spray breakup model could capture the transitional spray behavior induced by flash boiling atomization and intake flow via proper initialization of the spray cone angle and calibration of the spray models’ constants.
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发动机中央喷射汽油机的气缸内喷雾演变:闪沸与进气横流的影响成像与模拟
在模拟直喷火花点火(DISI)发动机时,对燃料喷射行为和混合气形成的准确预测是确保正确描述点火、燃烧和排放等所有后续过程的基础。在这项工作中,对单缸光学 DISI 发动机中的喷射演变进行了实验和数值研究,目的是对缸内喷射进行预测性计算流体动力学 (CFD) 建模。作者使用一种被称为 PACE-20 的特性良好的九组份汽油替代物,探索了以多种燃油喷射温度和发动机转速为特征的多种工作条件。讨论了闪沸和进气横流对喷雾的影响,重点评估了喷雾模型捕捉高瞬态喷雾行为的能力。在实验中,燃料温度在 20°C 和 80°C 之间变化,使非闪蒸到闪蒸沸腾的过渡得以出现,并在最高温度下增强了闪蒸强度。由于流体的局部惯性较低,喷雾溃散导致富含蒸汽的区域。将发动机转速从 650 转/分提高到 1950 转/分,可使气缸内横流的湍流程度越来越高,在喷射过程中与喷雾相互作用,从而增强了喷雾的分散性。CFD 模型能够充分捕捉不同燃料温度和发动机转速下的喷雾形态变化。研究表明,通过适当初始化喷雾锥角和校准喷雾模型常数,喷雾破裂模型可以捕捉闪沸雾化和进气流引起的过渡喷雾行为。
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来源期刊
International Journal of Engine Research
International Journal of Engine Research 工程技术-工程:机械
CiteScore
6.50
自引率
16.00%
发文量
130
审稿时长
>12 weeks
期刊介绍: The International Journal of Engine Research publishes high quality papers on experimental and analytical studies of engine technology.
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