Toward improving efficiency and mitigating emissions in a natural gas/diesel direct injection dual fuel engine using EGR

IF 2.2 4区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Engine Research Pub Date : 2024-07-24 DOI:10.1177/14680874241261003
Youcef Sehili, Lyes Tarabet, Mahfoudh Cerdoun, Khaled Loubar, Clément Lacroix
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Abstract

As emissions regulations become more and more stringent and conventional fuel sources rarefaction, new alternatives are emerging to address this situation. Dual fuel engines are among the promising solutions, offering both ecological and economic advantages. However, these engines often confront constraints linked to high levels of unburnt hydrocarbons (HC) at low loads and NOx emissions at high loads. To overcome these problems and guarantee high-efficiency overall operating loads, exhaust gas recirculation (EGR) is a potential solution. In the present experimental study, appropriate modifications have been carried out to a single-cylinder diesel engine to ensure dual fuel operation with EGR. Natural gas and diesel are used as the primary and pilot fuel, respectively. At low load operations, the EGR rate is increased up to 35% until the reduction of unburnt hydrocarbons. However, at high loads, the EGR rate is carefully adjusted, as the combustion efficiency easily deteriorates due to oxygen amount lack in the combustion chamber. Also, minimizing NOx emissions is prioritized in all load conditions while keeping thermal efficiency in sight. In addition, the variation in the amount of pilot fuel is studied for improving the combination of dual fuel engine operation with the EGR technique. This made it possible to determine the influence of load, EGR rate, and pilot fuel quantity on the engine in response to the triple challenges of reducing NOx and HC and improving thermal efficiency. The results show that an adequate EGR rate of 30%, depending on the operating conditions, can reduce HC emissions by >25% while increasing thermal efficiency by around 20%. This result is accompanied by a significant reduction, over 90%, in NOx emissions.
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利用 EGR 提高天然气/柴油直喷双燃料发动机的效率并减少排放
随着排放法规越来越严格,传统燃料越来越少,新的替代品应运而生。双燃料发动机是很有前途的解决方案之一,具有生态和经济优势。然而,这些发动机往往面临着低负荷时未燃烧碳氢化合物(HC)含量高和高负荷时氮氧化物排放量高的限制。为了克服这些问题并保证高效的总体工作负荷,废气再循环(EGR)是一种潜在的解决方案。在本实验研究中,对单缸柴油发动机进行了适当改装,以确保使用 EGR 的双燃料运行。天然气和柴油分别用作主燃料和先导燃料。在低负荷运行时,EGR 率增加到 35%,直到未燃烧的碳氢化合物减少。但是,在高负荷运行时,EGR 率需要仔细调整,因为燃烧室内氧气量不足很容易导致燃烧效率降低。同时,在保证热效率的前提下,在所有负荷条件下都要优先考虑尽量减少氮氧化物的排放。此外,还研究了先导燃料量的变化,以改进双燃料发动机运行与 EGR 技术的结合。这使得确定负荷、EGR 率和先导燃料量对发动机的影响成为可能,以应对减少氮氧化物和 HC 以及提高热效率的三重挑战。结果表明,根据工作条件,30% 的适当 EGR 率可减少 25% 的 HC 排放,同时提高约 20% 的热效率。与此同时,氮氧化物排放量也大幅减少了 90%以上。
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来源期刊
International Journal of Engine Research
International Journal of Engine Research 工程技术-工程:机械
CiteScore
6.50
自引率
16.00%
发文量
130
审稿时长
>12 weeks
期刊介绍: The International Journal of Engine Research publishes high quality papers on experimental and analytical studies of engine technology.
期刊最新文献
Development of a semi-empirical physical model for transient NOx emissions prediction from a high-speed diesel engine. Transient NOx emission modeling of a hydrogen-diesel engine using hybrid machine learning methods An efficient product design tool for aftertreatment system Computational investigation of a methanol compression ignition engine assisted by a glow plug A consistent model of the initiation, early expansion, and possible extinction of a spark-ignited flame kernel
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