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Experimental and Numerical Investigation of Vapor Formation in a Fuel Rail

机译:燃油导轨中蒸汽形成的实验和数值研究

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Recently, additional scrutiny is being placed on all vapor releases to the environment from the fuel system of an automobile. In an effort to lower the overall release of fuel vapor, a preliminary study of the vapor formation processes that occur in a low pressure supply fuel rail was undertaken. The first objective of this work was to determine the means by which fuel vapor is generated within the fuel rail, particularly during hot soak conditions. Then, using this information, the next task was to develop a computational fluid dynamics (CFD) code which would model the vapor formation in the rail. An investigation of the fuel rail material and design revealed that the probable mechanism for vapor formation is nucleate boiling from cavities in the fuel rail surface and at the o-ring connections with the fuel injectors. Therefore, an experiment was constructed to investigate the vapor formation from artificial cavities on a metallic surface and at an o-ring interface. The data collected from the experiment included the departure diameter of the vapor bubbles, the bubble frequency, and the bubble rise velocity. These values, which are used to determine the vapor generation rate, were compared to the results predicted by various correlations available in the literature. Subsequently, a CFD model was constructed of the fuel rail, using Star-CD, by incorporating the appropriate vapor generation correlations as user-defined subroutines. The experimental observations clearly demonstrated that a large amount of vapor was generated at the o-ring interface and, to a lesser degree, from the cavities in the metallic surface. A CFD model was constructed to predict the vapor generated in a fuel rail from these cavities. Existing correlations that describe nucleate boiling adequately model this generation mechanism in the fuel rail. This CFD code can be used to determine the amount of vapor formed under various hot soak conditions. An analytical means of predicting the vapor formation at the o-ring interface will have to be developed in order to complete the CFD model.
机译:近来,对从汽车的燃料系统释放到环境中的所有蒸气的释放进行了进一步的审查。为了降低燃料蒸气的总释放量,对低压供应燃料导轨中发生的蒸气形成过程进行了初步研究。这项工作的首要目标是确定在燃油轨内产生燃油蒸气的方法,特别是在热浸条件下。然后,使用此信息,下一个任务是开发计算流体动力学(CFD)代码,该代码将对钢轨中的蒸汽形成进行建模。对燃油导轨材料和设计的研究表明,可能形成蒸气的机理是由于燃油导轨表面以及与喷油器的O形圈连接处的空腔产生的核沸腾。因此,构建了一个实验来研究在金属表面和O形圈界面处由人造腔形成的蒸汽。从实验中收集的数据包括汽泡的离开直径,汽泡频率和汽泡上升速度。将这些用于确定蒸气产生速率的值与文献中各种相关性预测的结果进行比较。随后,通过将适当的蒸气生成相关性作为用户定义的子例程,使用Star-CD构建了燃油导轨的CFD模型。实验观察清楚地表明,在O形圈界面处产生了大量的蒸汽,而在较小程度上是从金属表面的空腔中产生的。构建了CFD模型以预测从这些型腔在燃油导轨中产生的蒸气。描述核沸腾的现有相关性可以充分模拟燃料轨中的这种生成机理。该CFD代码可用于确定在各种热浸条件下形成的蒸汽量。为了完善CFD模型,必须开发一种预测O型圈界面处蒸汽形成的分析方法。

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