液氨直喷在内燃机中的应用综述

IF 5 Q2 ENERGY & FUELS
Christine Mounaïm-Rousselle , Camille Hespel , Utkarsha Sonawane
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引用次数: 0

摘要

自20世纪20年代以来,鉴于氨的广泛潜在应用,从船舶领域到越野机械,人们对氨作为一种有价值的内燃机零碳燃料重新产生了兴趣。氨的燃料特性与传统的碳氢化合物燃料有很大的不同。它的相变特性使液相氨喷射成为一种很有前途的方法,因为高压喷射液氨可以实现高效和清洁的燃烧。高压直接燃油喷射的优点是通过液滴破碎来改善雾化。这些雾化液滴的后续蒸发对于燃料蒸气的空间分布、局部空气/氨混合、点火和燃烧发展至关重要。然而,在与内燃机相关的喷射条件下,氨倾向于经历闪沸。一般来说,快沸雾化增强液体蒸发,减小液滴尺寸,增加喷雾速度,并导致更长的喷雾穿透。由于氨的热值大约是传统燃料的一半,所以建议使用更大直径的喷嘴和多孔喷油器。闪蒸对单孔喷射器和多孔喷射器都有相似的影响,但多孔喷射器的喷射特性在很大程度上受羽间相互作用的影响。因此,建议将喷雾崩塌和瞬沸雾化分开研究,因为它们是相互关联但又截然不同的现象。喷注前期和后期氨雾发展特征有显著差异,说明闪沸与常规沸腾的影响机制完全不同。本文综述了近年来用于发动机相关条件的最先进的液氨喷射,重点介绍了闪蒸雾化和一些新的光学技术,这些技术不仅需要在宏观尺度上表征,还需要在微观尺度上表征,以帮助开发准确的建模工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Liquid ammonia direct injection for internal combustion engine application: A review
Since the 2020s, there has been renewed interest in ammonia as a valuable zero-carbon fuel for Internal combustion engines, given its wide range of potential applications, from the marine sector to off-road machinery. Ammonia's fuel characteristics differ significantly from those of conventional hydrocarbon fuels. Its phase-change properties make liquid-phase ammonia injection a promising approach, as high-pressure injection of liquid ammonia enables efficient and cleaner combustion. High-pressure direct fuel injection offers the advantage of improved atomization through droplet breakup. The subsequent evaporation of these atomized droplets is crucial for the spatial distribution of fuel vapour, local air/ammonia mixing, ignition, and combustion development. However, ammonia tends to undergo flash boiling under injection conditions relevant for an internal combustion engine. In general, flash-boiling atomization enhances liquid evaporation, reduces droplet size, increases spray velocity, and results in longer spray penetration. Since the calorific value of ammonia is approximately half that of conventional fuels, the use of larger nozzle diameters and multi-hole injectors is recommended. While flash boiling has similar effects on both single- and multi-hole injectors, the spray characteristics of multi-hole injectors are largely influenced by plume-to-plume interactions. Therefore, it is recommended to study spray collapse and flash-boiling atomization separately, as they are related but distinct phenomena. The ammonia spray development characteristics are significantly different in the early and later stages of injection, indicating that the influence mechanisms of flash boiling and conventional boiling are completely different. This review summarizes the recent state-of-the-art liquid ammonia injection for engine-relevant conditions, focusing on flash boiling atomization and some discussions about novel optical techniques needed to characterize not only at the macroscopic scale but also at the microscopic scale, to help the development of accurate modelling tools.
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