Suppr超能文献

天然气发动机中被动和主动预燃室喷射点火运行特性的数值研究

Numerical Investigation of the Operating Characteristics of the Passive and Active Prechamber Jet Ignition in a Natural Gas Engine.

作者信息

Yang Xue, Li Guanguan, Wang Pengcheng, Cheng Yong, Zhao Yanlei

机构信息

School of Electrical and Electronic Engineering, Shandong University of Technology, Zibo, Shandong 255000, China.

China National Heavy Duty Truck Group Co., Ltd., Jinan, Shandong 250001, China.

出版信息

ACS Omega. 2024 Jul 11;9(29):31933-31945. doi: 10.1021/acsomega.4c03587. eCollection 2024 Jul 23.

Abstract

Prechamber jet ignition is a promising technology that enables stable ignition and fast combustion by combining thermal effects, chemical kinetics, and turbulent disturbance. The development and application of the prechamber ignition require a comprehensive and in-depth understanding of the operating characteristics of the prechamber ignition in the real engine working cycle. Therefore, numerical simulations are conducted to explore the operating performance of the prechamber ignition applied to a large-bore natural gas engine in this study. The differences between the passive prechamber (PPRE) and active prechamber (APRE) near the lean burn limit are compared. The results show that the jet ignition performance of the PPRE is hampered by the high residual gas coefficient and lean mixture in the prechamber under lean burn conditions. The ignition mode of the PPRE is similar to torch ignition, and the combustion process in the main chamber is mainly turbulent flame propagation. The ignition mechanism of the APRE is flame jet ignition. The main chamber combustion process presents a two-stage heat release characteristic, which can be subdivided into three phases: the initial flame development phase, the rapid combustion phase, and the late combustion phase. The heat release rate during the initial flame development phase depends on the physical and chemical properties of the prechamber jet and the mixture conditions in the main chamber. During the rapid combustion phase, the flame propagation along the radial direction of the jet largely depends on the time scale of the chemical reaction. The heat release rate depends on the coverage area of the jet, the jet residual momentum, and the turbulent flame speed. During the late combustion phase, the flame propagation is mainly affected by the turbulent flame speed. These results provide theoretical guidance for the subsequent application of prechamber ignition systems in various powertrains.

摘要

预燃室喷射点火是一项很有前景的技术,它通过结合热效应、化学动力学和湍流扰动来实现稳定点火和快速燃烧。预燃室点火的开发和应用需要全面深入地了解其在实际发动机工作循环中的运行特性。因此,本研究通过数值模拟来探究应用于大口径天然气发动机的预燃室点火的运行性能。比较了接近稀薄燃烧极限时被动预燃室(PPRE)和主动预燃室(APRE)之间的差异。结果表明,在稀薄燃烧条件下,预燃室内的高残余气体系数和稀薄混合气会阻碍PPRE的喷射点火性能。PPRE的点火模式类似于火炬点火,主燃烧室内的燃烧过程主要是湍流火焰传播。APRE的点火机制是火焰喷射点火。主燃烧室内的燃烧过程呈现出两阶段放热特性,可细分为三个阶段:初始火焰发展阶段、快速燃烧阶段和后期燃烧阶段。初始火焰发展阶段的放热率取决于预燃室射流的物理和化学性质以及主燃烧室内的混合气条件。在快速燃烧阶段,火焰沿射流径向的传播很大程度上取决于化学反应的时间尺度。放热率取决于射流的覆盖面积、射流剩余动量和湍流火焰速度。在后期燃烧阶段,火焰传播主要受湍流火焰速度的影响。这些结果为预燃室点火系统在各种动力总成中的后续应用提供了理论指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ad3/11270718/1af81204d7d2/ao4c03587_0001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验