Water injection for gasoline direct injection engines: fundamental investigations in an evaporation chamber

M. Helmich, D. Lejsek, A. Hettinger, E. Schünemann, C. Frank, S. Hüttig, H. Rottengruber
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引用次数: 2

Abstract

Today’s combustion engine development is strongly driven by reduction of \(\hbox {CO}_2\) and exhaust gas emissions. Modern turbocharged downsizing concepts with gasoline direct injection are well established in all major markets and contribute to current and future mobility as a cost attractive and efficient solution. Further improvement of gasoline engine efficiency and performance is mainly limited by knocking. Water injection (WI) has the potential to reduce knocking significantly. To improve the effectiveness of water injection, fundamental knowledge of the thermodynamic process has to be built up. Therefore, a zero dimensional evaporation model was developed and simulations were carried out. This model was derived and validated on the basis of measurements which were carried out on a specifically designed and assembled WI evaporation chamber. Conditions in terms of temperature and pressure were varied to determine the evaporation behaviour of water droplets influenced by temperatures of e.g. air or water. The model describes the process of droplet heating and finally the evaporation of the droplets depending on their size at relevant engine boundary conditions. The simulation results support interpretation of engine measurements and allow further optimization of water injection concepts.

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汽油直喷发动机的水喷射:在蒸发室中的基础研究
当今内燃机的发展主要是由\(\hbox)的减少所推动的{CO}_2\)以及废气排放。汽油直接喷射的现代涡轮增压小型化概念在所有主要市场都得到了很好的确立,并作为一种具有成本吸引力和高效的解决方案为当前和未来的移动性做出了贡献。汽油发动机效率和性能的进一步提高主要受到爆震的限制。注水(WI)具有显著减少爆震的潜力。为了提高注水的有效性,必须建立热力学过程的基础知识。因此,开发了一个零维蒸发模型并进行了模拟。该模型是在专门设计和组装的WI蒸发室上进行测量的基础上推导和验证的。改变温度和压力方面的条件,以确定受例如空气或水的温度影响的水滴的蒸发行为。该模型描述了液滴加热的过程,并最终根据液滴在相关发动机边界条件下的大小来蒸发液滴。模拟结果支持对发动机测量结果的解释,并允许进一步优化注水概念。
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