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Particulate characteristics of laser ignited hydrogen enriched compressed natural gas engine

机译:激光点燃氢气富集压缩天然气发动机的颗粒状特征

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Laser ignition (LI) is emerging as a strong technology to control the oxides of nitrogen (NOx) emissions from spark ignition (SI) engines without the need for any significant exhaust gas after-treatment and is an appropriate technology for meeting future emission norms in the automotive sector. In this study, particulate characteristics of LI engine fuelled with different compressed natural gas (CNG) and hydrogen mixtures [100% CNG, 10HCNG (10% v/v hydrogen with 90% v/v CNG), 30HCNG (30% v/v hydrogen with 70% v/v CNG), 50HCNG (50% v/v hydrogen with 50% v/v CNG) and 100% hydrogen] were investigated. Experiments were performed in a suitably modified single cylinder engine, which operated in LI mode at constant engine speed (1500 rpm) at five different engine loads (5, 10, 15, 20 and 25 Nm). Particulate characteristics were determined using an engine exhaust particle sizer (EEPS). Results showed that particle number concentration increased with increasing engine load. Number-size, surface area-size and mass-size distributions of particulates reflected that addition of hydrogen in the CNG improved particulate emission characteristics especially in nucleation mode particle (NMP) size range (10 nm Dp 50 nm). Among the test fuels, hydrogen-fuelled engine emitted the lowest number of particles. It was observed that the difference between particulate characteristics emitted by different test fuels reduced at higher engine loads. Significant contribution of lubricating oil in particulate emissions from both hydrogen as well as HCNG fuelled LI engine was an important finding of this study. Dominant contribution of larger particles (Dp 50 nm) in total particle mass (TPM) was an important observation of this study. The qualitative correlation between total particle number (TPN) and TPM indicated that suitable fuel composition at different engine loads yielded cleaner exhaust from the LI engine. Overall, this study demonstrated that addition of hydrogen in CNG is advantageous from particulate reduction point of view, however, optimum fuel composition should be adjusted according to engine operating condition in order to reduce particulate emissions. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:激光点火(LI)作为一种强大的技术,可以控制来自火花点火(Si)发动机的氮气(NOx)排放的氧化物,而无需任何显着的废气后处理,并且是满足未来排放规范的适当技术汽车行业。在本研究中,利用不同压缩天然气(CNG)和氢气混合物的锂发动机的颗粒特性[100%CNG,10HCNG(10%V / V氢气,90%V / V CNG),30HCNG(30%v / v研究了70%v / v CNG的氢气),研究了50HCNG(50%v / v氢气50%v / v CNG)和100%氢气]。在适当改进的单缸发动机中进行实验,其在恒定发动机速度(1500rpm)以5个不同的发动机负载(5,10,15,20和25nm)以Li模式操作。使用发动机排气颗粒Sizer(EEP)测定颗粒状特性。结果表明,粒子数浓度随着发动机负荷的增加而增加。颗粒物的数量,表面积尺寸和质量分布反映了在CNG中加入氢气改善的颗粒发射特性,尤其是成核模式颗粒(NMP)尺寸范围(10nm 50nm)的显性贡献是本研究的重要观察。总粒子数(TPN)和TPM之间的定性相关性表明,不同发动机负荷下的合适的燃料组合物从LI发动机产生净化器。总体而言,该研究证明CNG中的氢气从颗粒减少观点中的有利是有利的,然而,应根据发动机操作条件调节最佳燃料组合物,以减少颗粒排放。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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