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Fuel nozzle geometry effects on cavitation and spray behavior at diesel engine conditions

机译:燃料喷嘴几何对柴油发动机条件下空化和喷雾行为的影响

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Cavitation dynamics of diesel and gasoline injection nozzles has been a topic of ongoing research due to the effect of cavitation on the characteristics of the fuel spray, including the discharge coefficient, outlet velocity, spray angle, and atomization process. Additionally, repeated collapse of vapor cavities can damage nozzle surfaces, permanently changing the boundary conditions of the fluid flow field. Understanding the evolution and behavior of cavitation can therefore allow more precise control over its presence, as well as improved predictability of the corresponding fuel spray distribution. Studies have shown that the inception and persistence of fuel vapor inside the spray hole is sensitive to geometric features of the injection nozzle, such as the degree of taper and inlet corner radius of curvature. For example, a hole with a cylindrical profile and sharp inlet comer more readily supports cavitation formation as compared to a monotonically converging hole with a rounded inlet. To better understand the effect of these geometric features on cavitation formation, and by extension, on the associated fuel spray, we compare the nozzle geometry and spray characteristics of two single-hole diesel injectors procured through collaboration with the Engine Combustion Network (ECN). The Spray C injector, specifically designed by the ECN for the express purpose of studying cavitating flows, features a cylindrical hole with a slight divergence near the outlet and a relatively sharp inlet corner. Its non-cavitating analog, the Spray D injector, contains a rounded inlet corner and a gently converging hole profile. High-resolution x-ray tomography measurements coupled with optical microscopy images of both injectors provide the nozzle ge-ometry with O( 1) μm spatial resolution. Analysis of the measured geometries reveal that the radius of curvature of the hole inlet varies azimuthally for the modestly hydroground Spray C injector. To elucidate the effect that this asymmetric inlet condition has on cavitation formation during operando conditions, the fuel flow inside the nozzle hole was recorded using high-speed x-ray phase contrast imaging. These images reveal the formation of an asymmetric sheath of fuel vapor that persists throughout the injection event. Complementary x-ray and optical diagnostics of the downstream fuel spray further highlight the effect that this cavitation layer has on the spreading angle of the spray in comparison to the non-cavitating Spray D injector.
机译:由于空化对燃料喷雾特性的影响,包括排放系数,出口速度,喷雾角和雾化过程,柴油和汽油喷嘴的空化动力学是一种持续研究的主题,包括放电系数,出口速度,喷雾角度和雾化过程。另外,反复坍塌的蒸气腔可以损坏喷嘴表面,永久地改变流体流场的边界条件。因此,理解空化的进化和行为可以在其存在下更精确地控制,以及改善相应燃料喷射分布的可预测性。研究表明,喷射孔内的燃料蒸汽的初始和持续存在对注射喷嘴的几何特征敏感,例如曲率的锥度和入口角半径的程度。例如,与具有圆形入口的单调会聚孔相比,具有圆柱形轮廓和尖锐入口分光的孔更容易支撑空化形成。为了更好地了解这些几何特征对空化形成的影响,并且通过延伸,在相关的燃料喷雾上,我们通过与发动机燃烧网络(ECN)合作采购的两个单孔柴油喷射器的喷嘴几何形状和喷射特性。由ECN专门设计的喷射C喷射器用于学习空腔流动的表达目的,具有圆柱孔,在出口附近具有轻微分歧的圆柱孔和相对尖锐的入口角。其非空腔模拟,喷射D注射器含有圆形入口角和轻微的会聚孔轮廓。高分辨率X射线断层扫描测量与两个喷射器的光学显微镜图像耦合,提供喷嘴GE-OMETRY,具有O(1)μm空间分辨率。测量几何形状的分析表明,对于适度的水流喷射C喷射器,孔入口的曲率半径方差异于四方。为了阐明这种不对称入口条件在操作组合条件期间对空化形成的影响,使用高速X射线相位对比度成像记录喷嘴孔内的燃料流动。这些图像揭示了在整个喷射事件中持续存在的燃料蒸汽的不对称护套的形成。下游燃料喷雾的互补X射线和光学诊断进一步突出了该空化层对喷雾的扩散角的效果相比,与非空化喷射D注射器相比。

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