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废气再循环率和温度对以加氢处理植物油为燃料的压燃式发动机燃烧及排放特性的影响

Effects of EGR Rate and Temperature on Combustion and Emissions Characteristics of Compression Ignition Engines Fueled with Hydrotreated Vegetable Oil.

作者信息

Li Juan, Huang Zhaoming, Tao Binbin, Sun Xiaodong, Pan Jinyuan

机构信息

School of Intelligent Manufacturing, Huainan Union University, Huainan 232001, China.

School of Mechanical Engineering, Wanjiang University of Technology, Ma'anshan 243031, China.

出版信息

ACS Omega. 2025 Jan 9;10(2):2081-2091. doi: 10.1021/acsomega.4c08533. eCollection 2025 Jan 21.

Abstract

This study investigates the effects of varying exhaust gas recirculation (EGR) rates and temperatures on the combustion and emissions characteristics of a compression ignition engine fueled with hydrotreated vegetable oil (HVO). Understanding these effects is essential for optimizing renewable fuel applications in compression ignition engines, contributing to cleaner combustion, and supporting sustainable transportation initiatives. The experiments revealed that increasing the EGR rate to 20% not only reduces NOx emissions by approximately 25% but also increases smoke by around 15%, highlighting a trade-off between NOx and particulate matter control. When EGR temperature is increased from 130 to 220 °C, NOx emissions rise by about 10%, accompanied by a 12% increase in smoke emissions, indicating that elevated EGR temperatures can counteract the NOx-reducing benefits of EGR by raising the overall combustion temperature. Additionally, a higher EGR rate shifts particle size distributions, reducing nucleation mode particles by about 30% while increasing accumulation mode particles, with peak concentrations moving toward larger diameters. These findings suggest that precise control of EGR parameters is essential for optimizing emissions performance and ensuring the feasibility of HVO as an alternative fuel in compression ignition engines.

摘要

本研究调查了不同废气再循环(EGR)率和温度对以加氢处理植物油(HVO)为燃料的压燃式发动机燃烧和排放特性的影响。了解这些影响对于优化可再生燃料在压燃式发动机中的应用、促进更清洁的燃烧以及支持可持续交通倡议至关重要。实验表明,将EGR率提高到20%不仅可使氮氧化物排放量降低约25%,还会使烟雾增加约15%,这凸显了氮氧化物与颗粒物控制之间的权衡。当EGR温度从130℃提高到220℃时,氮氧化物排放量增加约10%,同时烟雾排放量增加12%,这表明升高的EGR温度会提高整体燃烧温度,从而抵消EGR降低氮氧化物的益处。此外,较高的EGR率会改变粒径分布,使核模态颗粒减少约30%,同时增加积聚模态颗粒,峰值浓度向更大直径移动。这些发现表明,精确控制EGR参数对于优化排放性能以及确保HVO作为压燃式发动机替代燃料的可行性至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f49d/11755148/3fd11410dab7/ao4c08533_0001.jpg

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