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Parametric Study Of Instantaneous Heat Transfer Based on Multidimensional Model in Direct-Injection Hydrogen-Fueled Engine

机译:基于多维模型的直喷氢燃料发动机瞬时传热参数研究

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摘要

This paper presents a parametric study on instantaneous heat transfer of a direct-injection hydrogen-fueled engine using a multidimensional model. A simplified single-step mechanism was considered for estimating the reaction rate of hydrogen oxidation. The modified wall-function was used for resolving the near-wall transport. An arbitrary Lagrangian–Eulerian algorithm was adopted for solving the governing equations. Experimental measurements were implemented to verify the developed model. They show that the instantaneous heat-transfer model is sufficiently accurate. The influence of engine speed, equivalence ratio, and the start of injection timing were investigated. The flow fields appeared to have greater size vectors and coarser distribution with an increase of engine speed. A heterogeneous distribution was obtained for an ultra-lean mixture condition (φ ≤ 0.5), which decreased with an increase of equivalence ratio. There was no pronounced influence of the start of injection on the flow field pattern and mixture homogeneity. Thermal field analysis was used to demonstrate trends in the instantaneous heat transfer. It was observed that there was a crucial distinction between the lean and ultra-lean mixtures as well as the engine speed. Furthermore, a non-uniform behavior was found for the impact of the equivalence ratio on temperature distribution. It is clear that the developed models are powerful tools for estimating the heat transfer of the hydrogen-fueled engine. The developed predictive correlation is highly accurate in predicting the heat transfer of the hydrogen-fueled engine, focusing on the equivalence ratio as a governing variable.
机译:本文使用多维模型对直喷式氢燃料发动机的瞬时传热进行了参数研究。考虑一种简化的单步机制来估计氢氧化反应的速率。修改后的墙函数用于解决近墙运输。采用任意的拉格朗日-欧拉算法求解控制方程。进行实验测量以验证开发的模型。他们表明瞬时传热模型是足够准确的。研究了发动机转速,当量比和喷射正时的影响。随着发动机转速的增加,流场似乎具有更大的尺寸矢量和更粗糙的分布。对于超稀混合气条件(φ≤0.5),获得了非均质分布,该分布随着当量比的增加而减小。注射开始对流场模式和混合物均匀性没有明显影响。热场分析用于证明瞬时传热的趋势。据观察,稀薄和超稀薄混合物以及发动机转速之间存在关键区别。此外,发现当量比对温度分布的影响是不均匀的。显然,所开发的模型是用于估算氢燃料发动机的热传递的有力工具。所建立的预测相关性在预测氢燃料发动机的传热方面非常准确,重点是当量比作为控制变量。

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