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Multi-objective optimization of the engine performance and emissions for a hydrogen/ gasoline dual-fuel engine equipped with the port water injection system

机译:用于氢气/汽油双燃料发动机的发动机性能和排放的多目标优化,配备了端口注水系统

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Hydrogen is one of the most promising options being considered as the fuel of future. However, injection of hydrogen into modern gasoline fueled engines can cause some issues such as power loss. This study, therefore, aims to address this challenge in a simulated hydrogen/gasoline dual-fueled engine by developing a novel and innovative approach without possible side effects such as NOx increment. To achieve this goal, the impacts of water injection and the start of the combustion (SOC) modification in a gasoline/hydrogen duel fueled engine have been rigorously investigated. In current methodology, an engine is simulated using AVL BOOST software and the model is validated against the experimental data. The Latin Hypercube design of experiments method was employed to determine the design points in 3-dimensional space. Due to the existing trade-off between NOx and BMEP, multi-objective optimization using genetic algorithm (GA) was implemented to determine the optimum values of water injection and SOC in various hydrogen energy shares and the effects of optimum design parameters on the main engine performance and emission parameters were investigated. The results showed that the proposed solution could recover the brake mean effective pressure (BMEP) and in some hydrogen energy shares even increase it above the level of single fueled gasoline engine with the added benefit of there being no increase in NOx compared to the original level. Furthermore, other emissions and engine performance parameters are improved including the engine equivalent Brake specific fuel consumption (BSFC) which was shown to increased up to 4.61%. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢是最有前途的选择之一被认为是未来的燃料。然而,将氢注入现代汽油燃料发动机可能导致一些问题,例如功率损失。因此,这项研究旨在通过开发一种新颖的和创新的方法,在模拟氢气/汽油双燃料发动机中解决这一挑战,而没有可能的副作用,例如NOx增量。为了实现这一目标,在汽油/氢决斗发动机中,注水和燃烧开始(SOC)改性的影响已经严格研究。在目前的方法中,使用AVL Boost软件模拟发动机,并且该模型针对实验数据验证。采用实验方法的拉丁超立方体设计来确定三维空间中的设计点。由于NOx和BMEP之间的现有权衡,利用遗传算法(GA)的多目标优化来确定,以确定各种氢能量股中的水注射和SOC的最佳值以及主发动机上的最佳设计参数的影响调查了性能和发射参数。结果表明,该解决方案可以恢复制动器平均有效压力(BMEP),并且在一些氢能量中甚至将其增加到单一燃料汽油发动机水平,与原始水平没有增加NOx的额外益处。此外,改善了其他排放和发动机性能参数,包括发动机等效制动特定的燃料消耗(BSFC),其显示出增加至4.61%。 (c)2021氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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