Infrared Experimental Investigations on the Effects of Direct Water Injection in an Optical Engine

Amer Farhat, Taewon Kim, Ming-Chia Lai, M. Jansons, Xin Yu
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Abstract

The effects of water injection on combustion characteristics were investigated in an optically-accessible light-duty engine retrofitted with a side-mounted water injector. The main objective was to study the effect of water injection on autoignition and subsequent combustion process in compression ignition engines. Numerical zero-dimensional simulations were first performed to separate the thermal from the kinetic effects of water on the ignition delay and maximum temperature reached by a reacting mixture. Then, experimental investigations were performed at different intake temperatures and levels of thermal stratification achieved via direct water injection. Combustion analysis was performed on cylinder pressure data to study the effect of water injection on the overall combustion process. Infrared imaging was performed to provide insight to how water injection and the resulting water distributions affect thermal stratification, autoignition, and combustion characteristics. A new method in quantifying the water distributions is suggested. The results show that the overall level of stratification is sensitive to water injection timing and pressure, where increased water injection pressures and advanced injection timings result in more homogenous distributions. Moreover, water injection was found to affect the location of ignition kernels and the local presence of water suppressed ignition. The level of water stratification was also observed to affect the combustion process, where more homogenous distributions lost their ability to influence ignition locations. Finally, the infrared images showed high levels of residual water left over from prior water-injected cycles, suggesting that hardware configurations and injection strategies must be optimized to avoid wall wetting for stable engine operation.
光学发动机直接注水效果的红外实验研究
在一台装有侧装式喷水器的轻型发动机上,研究了注水对发动机燃烧特性的影响。主要目的是研究注水对压缩点火发动机自燃及后续燃烧过程的影响。首先进行了数值零维模拟,以分离水对着火延迟和反应混合物达到的最高温度的热和动力学影响。然后,在不同的进气温度和通过直接注水实现的热分层水平下进行了实验研究。对气缸压力数据进行燃烧分析,研究注水对整个燃烧过程的影响。通过红外成像,可以深入了解注水及其水分布如何影响热分层、自燃和燃烧特性。提出了一种新的定量水分布的方法。结果表明,整体层序水平对注水时间和注水压力敏感,注水压力越大,注水时间越早,层序分布越均匀。此外,注水还会影响点火核的位置和水抑制点火的局部存在。还观察到水分层水平影响燃烧过程,其中更均匀的分布失去了影响点火位置的能力。最后,红外图像显示了之前注水循环留下的大量残余水,这表明必须优化硬件配置和注入策略,以避免发动机稳定运行的壁面润湿。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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