单孔与多孔喷雾特性的比较分析与归一化:喷雾特性比较第一篇报告

Chang Zhai , Junyu Zhang , Kuichun Li , Pengbo Dong , Yu Jin , Feixiang Chang , Hongliang Luo
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引用次数: 0

摘要

单孔喷射器以其设计简单、测量方便等优点在光学喷雾实验中得到广泛应用;然而,多孔喷油器通常应用于实际发动机应用中。两者之间的结构差异导致了喷雾特性的变化。这一系列研究基于相似性和归一化原理,提出了不同孔数喷射器之间喷雾特性转换的理论。第一篇研究了超高注入压力条件下不同孔数喷射器的喷射特性。采用扩散背景成像(DBI)方法,实验压力范围为100 ~ 300 MPa。研究表明,单孔喷油器的初始注入延迟较短,而多孔喷油器的注入流量更稳定,穿透能力更强。在更高的压力下,速度增加,特别是在300mpa时。较高的环境密度对喷雾速度有抑制作用,并改变了喷雾形态。此外,虽然单孔喷射器的初始喷射速度相对较高,但在后期,多孔喷射器的穿透力明显超过单孔喷射器。对于多孔喷射器,相邻喷雾之间的相互作用导致喷雾角相对较窄。两个喷射器的喷射角与锥角之比几乎不受密度和喷射压力变化的影响。一般来说,Naber和Siebers模型更适合在高密度和超高注入压力(200 ~ 300MPa)条件下预测单孔喷射器的侵透。该研究不仅突出了超高压工况下独特的喷淋特性,而且为柴油机优化设计提供了有价值的理论基础和实验见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Comparative analysis and normalization of single-hole vs. multi-hole spray characteristics: 1st report on spray characteristic comparison

Comparative analysis and normalization of single-hole vs. multi-hole spray characteristics: 1st report on spray characteristic comparison
The single hole injector, known for its simple design and ease of measurement, is widely utilized in optical spray experiments; however, multi-hole injectors are commonly applied in real engine applications. The structural differences between the two leads to variations in spray characteristics. This series of studies, based on the principles of similarity and normalization, proposes a theory for the transformation of spray characteristics between different hole numbers injectors. The 1st report investigates the spray characteristics of different hole numbers injectors under super high injection pressure conditions. Using the Diffuser Background Imaging (DBI) method, the experimental pressure range covers 100∼300 MPa. The research indicate that the single-hole injector exhibits a shorter initial injection delay, while the multi-hole injector demonstrates a more stable injection flow rate and greater penetration. At higher pressures, the velocity increase, especially at 300 MPa. Higher ambient density has a suppressive effect on spray tip velocity and alters spray morphology. Moreover, it was observed that while the initial spray velocity of the single-hole injector is relatively higher, the penetration of the multi-hole injector significantly exceeds that of the single-hole injector in the later stages. For multi-hole injectors, interactions between adjacent sprays lead to a relatively narrower spray angle. The ratio of spray angle to cone angle for both injectors remain nearly unaffected by changes in density and injection pressure. In general, the Naber and Siebers model is better suited for predicting penetration in single-hole injectors under conditions of high density and ultra-high injection pressure (200∼300MPa). This study not only highlights the distinctive spray characteristics under super high pressure conditions but also offers valuable theoretical foundations and experimental insights for optimizing diesel engine design.
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