Droplet Breakup Model in Spray Combustion Simulation Based on Measurements of Droplet Disintegration Mechanisms

被引:0
|
作者
Yamashita T. [1 ]
Matsuda D. [1 ]
Kimura I. [1 ]
Nishimura K. [1 ]
Matsumura E. [2 ]
Senda J. [2 ]
机构
[1] Doshisha University, School of Engineering, Mechanical Engineering Major, 1-3 Miyakodani Tatara Kyotanabe-shi, Kyoto
[2] Doshisha University, Department of Science and Mechanical Engineering, 1-3 Miyakodani Tatara, Kyotanabe-shi, Kyoto
关键词
Breakup model; Droplet disintegration mechanisms; Mixture formation; Smd; Spray combustion simulation;
D O I
10.20485/JSAEIJAE.13.4_155
中图分类号
学科分类号
摘要
A breakup model used in spray combustion simulations was developed to predict the breakup process of spray droplets, which has large influences on the mixture formation and the combustion process in internal combustion engines. Taylor Analogy Breakup (TAB) Model is widely used as a droplet breakup model. Improved TAB (ITAB) Model has been developed by improving model constants and the breakup/non-breakup boundary condition of TAB Model. ITAB Model reproduces the dimensionless breakup time based on the observation results of the single droplet breakup behavior and CFD simulation results. In this study, calculation methods of droplet diameter and droplet velocity after breakup in ITAB Model are modified to avoid fitting model constants during spray analysis. Droplet diameter after breakup is determined by calculating Sauter Mean Diameter and using the droplet diameter distribution after breakup based on the observation results of the single droplet breakup behavior. The calculation constant for Sauter Mean Diameter is a function of Weber number to reproduce the breakup phenomenon of single droplets. Droplet velocity after breakup is calculated based on the energy conservation law of droplets used in Enhanced TAB Model. This model shows that Sauter Mean Diameter after breakup is almost same and perpendicular motion of droplets after breakup is more active than TAB Model. This model also considers the effects of the fuel physical properties on breakup characteristics. Model analysis shows that droplet diameter after breakup of the high boiling point component fuel is larger under same conditions and the effect of temperature change is larger than that of the low boiling point component fuel © 2022 Society of Automotive Engineers of Japan, Inc. This is an open access article under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike license
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页码:155 / 162
页数:7
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