计算流体动力学 (CFD) 验证和研究活塞缸几何形状对端口燃油喷射-均质充气压缩点火 (PFI-HCCI) 发动机性能的影响

Nik Muhammad Hafiz Nik Ab Rashid, Abdul Aziz Hairuddin, Khairil Anas Md Rezali, Siti Ujila Masuri, Al Anbagi Muntasser Abdulabbas Mossa, Jamiluddin Jaafar, Deni Fajar Fitriyana
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引用次数: 0

摘要

均质充量压缩点火(HCCI)是一种先进的燃烧策略,与传统的压缩点火相比,它能提供更高的效率和更低的排放。然而,HCCI 发动机的运行仍然面临着巨大的挑战。制备均质混合物和控制燃烧阶段是影响发动机性能的关键挑战。活塞缸的几何形状可通过改善流量和促进空气与燃料的混合来显著提高燃烧过程。因此,本研究利用 CFD 仿真方法分析了端口燃料喷射(PFI)模式下的 HCCI 燃烧,并评估了活塞缸几何形状对发动机性能的影响。为此,针对单缸四冲程 YANMAR 柴油发动机的 CFD 仿真结果与实验数据进行了验证。然后对具有相同容积、压缩比和当量比的不同活塞缸几何形状进行了数值研究。CFD 模拟的验证结果为继续研究不同的活塞缸几何形状提供了足够的信心。直喷(DI)发动机活塞缸的应用结果表明,缸内压力和热释放率变化不大。在端口燃油喷射发动机应用中采用的活塞缸设计显示出不同的燃烧阶段,但在获得缸内压力方面却表现出相似性。漩涡诱导活塞缸体设计的研究结果表明,螺旋冠几何模型的缸内压力有所提高,达到了 9.42 兆帕。研究结果表明,活塞缸的设计会影响 HCCI 发动机的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Fluid Dynamics (CFD) Validation and Investigation the Effect of Piston Bowl Geometries Performance on Port Fuel Injection-Homogeneous Charge Compression Ignition (PFI-HCCI) Engines
Homogeneous charge compression ignition (HCCI) is an advanced combustion strategy proposed to provide higher efficiency and lower emissions than conventional compression ignition. Nevertheless, the operation of HCCI engines still presents formidable challenges. Preparing homogeneous mixtures and controlling the combustion phase are crucial challenges in the context of engine performance. Piston bowl geometry significantly enhances the process by improving the flow and facilitating air-fuel mixing for combustion. On that note, this study utilised the CFD simulation methods to analyse HCCI combustion in port fuel injection (PFI) mode and evaluate the effect of piston bowl geometries on engine performance. For this purpose, the CFD simulation result for a single-cylinder, four-stroke YANMAR diesel engine was validated with experimental data. The different piston bowl geometries with the same volume, compression, and equivalence ratio were then investigated numerically. The validation result of the CFD simulation offers enough confidence to continue the study with different piston bowl geometries. The results attained from the Direct Injection (DI) engine piston bowl application demonstrate a minor change in in-cylinder pressure and heat release rate. The piston bowl design employed in a Port Fuel Injection engine application exhibited different combustion phases while demonstrating similarity in attaining in-cylinder pressure. The findings for swirl induce piston bowl design indicate an enhancement of in-cylinder pressure for the Spiral Crown geometry model, reaching 9.42 MPa. The results of the study demonstrated that the piston bowl's design affected the performance of an HCCI engine.
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