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In-nozzle flash boiling flow of multi-component fuel and its effect on near-nozzle spray

机译:多组分燃料的喷嘴内闪蒸沸腾流动及其对近喷嘴喷雾的影响

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In comparison with single-component fuel spray, the atomization and evaporation of multi-component fuel spray is more complex due to the physical property difference among the fuel components. This complexity is more significant when the fuel spray is formed under flash boiling condition. Therefore, the investigation of atomization and evaporation of multi-component fuel has recently become a practical research focus. However, due to the lack of related experiments and theoretical explanations, the spray formation under flash boiling condition has yet to be fully revealed. To address such challenges, this study is focused on high-speed optical investigation of multi-component flash boiling spray phenomena. Test fluids were gasoline surrogate fuels composed of three components (n-pentane, iso-octane, and n-decane). A scaled-up transparent two-dimensional nozzle was fabricated for the optical investigation. The droplet diameter was also measured using Phase Doppler Interferometry (PDI). Experimental results show that mixing of high volatility fuel with low volatility fuel can significantly enhance the generation of flash-boiling bubbles in the internal flow inside the nozzle (in-nozzle flow). Meanwhile, the increase of flash boiling bubbles can promote fuel breakup in the near-nozzle region, resulting in fuel droplets of smaller SMD with more uniform distributions. Besides, proper mixing ratio of high volatility fuel and low volatility fuel can moderate the layered structure (bubble and liquid flows) inside the nozzle and therefore can stabilize the breakup process from liquid ligaments into fuel spray with low variation of spray geometry.
机译:与单组分燃油喷雾相比,多组分燃油喷雾的雾化和蒸发由于燃料组分之间的物理性质差异而更加复杂。当在急速沸腾条件下形成燃油喷雾时,这种复杂性尤为重要。因此,近来多组分燃料的雾化和蒸发的研究已成为实际的研究重点。然而,由于缺乏相关实验和理论解释,在闪蒸条件下的喷雾形成尚未完全揭示。为了解决这些挑战,本研究着重于对多组分闪蒸沸腾现象的高速光学研究。测试流体是由三种成分(正戊烷,异辛烷和正癸烷)组成的汽油替代燃料。制造放大的透明二维喷嘴用于光学研究。液滴直径也使用相位多普勒干涉仪(PDI)测量。实验结果表明,高挥发性燃料与低挥发性燃料的混合可以显着增强喷嘴内部流(喷嘴内流)中闪蒸气泡的产生。同时,闪蒸气泡的增加可促进在近喷嘴区域的燃料分解,从而导致具有更均匀分布的SMD较小的燃料滴。此外,高挥发性燃料和低挥发性燃料的适当混合比可以缓和喷嘴内的分层结构(气泡和液体流),因此可以稳定从液体韧带到燃料喷雾的分解过程,并且喷雾几何形状的变化很小。

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