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Development of a real-size optical injector nozzle for studies of cavitation, spray formation and flash-boiling at conditions relevant to direct-injection spark-ignition engines

机译:开发真实尺寸的光学注射器喷嘴,用于研究与直接喷射火花点火发动机相关的空化,喷雾形成和闪蒸

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摘要

High-pressure multi-hole injectors for direct-injection spark-ignition engines have shown enhanced fuel atomisation and flexibility in fuel targeting by selection of the number and angle of the nozzle holes. The nozzle internal flow is known to influence the characteristics of spray formation; hence, understanding its mechanisms is essential for improving mixture preparation. However, currently, no data exist for fuel temperatures representative of real engine operation, especially at low-load high-temperature conditions with early injection strategies that can lead to phase change due to fuel flash-boiling upon injection. This challenge is further complicated by the predicted fuel stocks, which may include new (e.g. bio-derived) components. The physical/chemical properties of such components can differ markedly from gasoline, and it is important to have the capability to study their effects on in-nozzle flow and spray formation, taking under consideration their different chemical compatibilities with optical materials as well. The current article presents the design and development of a real-size quartz optical nozzle, 200 µm in diameter, suitable for high-temperature applications and also compatible with new fuels such as alcohols. First, the internal geometry of a typical real multi-hole injector was analysed by electron microscopy. Mass flow was measured, and relevant fluid mechanics dimensionless parameters were derived. Laser and mechanical drilling of the quartz nozzle holes were compared. Abrasive flow machining of the optical nozzles was also performed and analysed by microscopy in comparison to the real injector. Initial validation results with a high-speed camera showed successful imaging of microscopic in-nozzle flow and cavitation phenomena, coupled to downstream spray formation, under a variety of conditions including high fuel temperature flash-boiling effects. The current work used gasoline and iso-octane to provide proof-of-concept images of the optical nozzle, and future work will include testing of a range of fuels, some of which will also be bio-derived.
机译:通过选择喷嘴孔的数量和角度,用于直喷式火花点火发动机的高压多孔喷油器显示出增强的燃料雾化和燃料瞄准的灵活性。已知喷嘴的内部流动会影响喷雾形成的特性。因此,了解其机理对于改善混合物制备至关重要。但是,目前尚无代表真实发动机运行的燃油温度数据,尤其是在采用早期喷射策略的低负荷高温条件下,由于喷射时燃油闪沸,可能导致相变。预计的燃料库存可能使新的(例如生物来源的)成分变得更加复杂,从而使这一挑战更加复杂。这些成分的物理/化学性质可能与汽油明显不同,因此,有必要研究其对喷嘴内流动和喷雾形成的影响,同时还要考虑它们与光学材料的不同化学相容性,这一点很重要。本文介绍了直径为200μm的实际尺寸石英光学喷嘴的设计和开发,该喷嘴适用于高温应用,并且还与新燃料(例如醇)兼容。首先,通过电子显微镜分析了典型的真实多孔注射器的内部几何形状。测量质量流量,并得出相关的流体力学无量纲参数。比较了石英喷嘴孔的激光和机械钻孔。与真实的喷射器相比,还对光学喷嘴进行了磨料流加工并通过显微镜进行了分析。高速摄像头的初步验证结果表明,在包括高燃油温度闪蒸效应在内的各种条件下,微观喷嘴内流动和气蚀现象以及下游喷雾形成的成功成像。当前的工作使用汽油和异辛烷来提供光学喷嘴的概念验证图像,未来的工作将包括对一系列燃料的测试,其中一些燃料还将是生物衍生的。

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