船用柴油机重油喷射现象建模研究

Changfu Han, Long Liu, Dai Liu, Yan Peng
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引用次数: 0

摘要

近年来,为满足国际海事组织(IMO)日益严格的船舶能效和污染物排放标准,二冲程低速柴油机的燃烧改进备受关注。现象学燃烧模型作为一种经济有效的方法,被广泛用于柴油机燃烧过程的参数化研究。然而,二冲程低速柴油机的燃油为重油,对重油喷雾的建模研究较少。因此,需要一种能够描述稠油喷雾演化的喷雾模型。本文基于动量通量和质量流率沿喷流轴的守恒,对稠油一维离散柴油喷流模型进行了修正。通过对柴油和重油物理性质的深入分析,发现粘度是造成燃油浓度和喷雾截面上速度分布差异的主要因素。根据湍流射流理论,表征质量和动量扩散能力的施密特数与燃油粘度呈负相关。为了将黏度效应纳入一维柴油喷雾模型,推导了黏度与施密特数的关系式,以反映燃油浓度和速度分布。实验数据验证了稠油喷雾穿透量的计算结果,结果表明改进的喷雾模型具有预测稠油喷雾扩散的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the Phenomenological Spray Modelling of Heavy Oil for Marine Diesel Engines
In recent years, to satisfy the more and more stringent energy efficiency and pollutants emission regulations of ship, which had been issued by the International Marine Organization (IMO), the combustion improvement of the two-stroke low-speed diesel engines has been paid much attention. The phenomenological combustion model, as an effective and economic approach, is widely used for parametric study on diesel engine combustion process. However, the fuel of two-stroke low-speed diesel engine is heavy oil, and there are few researches focused on the modeling of heavy oil spray. Therefore, a spray model that can describe the heavy oil spray evolution is needed. In this study, a one-dimensional discrete diesel spray model based on the conservation of the momentum flux and mass flow rate along the spray axis is modified for heavy oil. By in-depth analysis of physical properties of diesel and heavy oil, viscosity is found to be the main factor that results in the difference of the fuel concentration and velocity distribution over the spray cross-sectional area. According to the turbulent jet theory, the Schmidt number, which represents the capability of mass and momentum diffusion, proves to be inversely related to fuel viscosity. In order to involve the viscosity effects into the one-dimensional diesel spray model, the relation between viscosity and Schmidt number is derived as a simple formulation to account for the fuel concentration and velocity distribution. The calculation of heavy oil spray penetration is validated by the experiment data, and the results shows that the improved spray model has the capability to predict the propagation of heavy oil spray.
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