首页> 外文会议>Design, Application, Performance and Emissions of Modern Internal Combustion Engine Systems and Components >OPEN CHAMBER SPARK IGNITED COMBUSTION SYSTEM DEVELOPMENT FOR HIGH POWER DENSITY AND LOW EMISSIONS
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OPEN CHAMBER SPARK IGNITED COMBUSTION SYSTEM DEVELOPMENT FOR HIGH POWER DENSITY AND LOW EMISSIONS

机译:高功率密度和低排放的开放式室火花点火燃烧系统开发

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High power density and thermal efficiency combined with very low NOx exhaust emissions are main challenges in today's gas engine development programmes. Until recently open chamber combustion systems using traditional spark ignition were considered to be limited by knock and misfire in their potential to achieve the above mentioned goals. The main task of the work reported here was to achieve a stable, knock-free combustion using a knock-prone gas fuel of 70 methane number for a specific power density of 25 kW/L at 250 mg/m_N~3 NO_x emission according to the TA Luft. The combustion system development was carried out on a single cylinder engine (SCE), thus, a special aspect of the work was to ensure transferability of the single cylinder engine combustion system development results to the targeted V12 multi-cylinder engine. Prior to engine testing, intensive simulation work was undertaken to specify the most promising engine hardware configurations. The main emphasis was on the 3D CFD analysis of the in-cylinder charge motion and its interaction with carefully chosen combustion chamber geometry variants. The ultimate scope was to generate high local turbulence levels during combustion, enabling a short combustion duration with low variation coefficients. The experimental phase included engine tests for several combustion relevant parameters and the detailed combustion analysis with respect to flame propagation and knock centre location using the optical combustion diagnosis system AVL VISIOLUTION. This paper describes the overall work procedure as well as the analytical and experimental methods and tools employed in the combustion system development programme. It also gives information on engine test results, the value and contribution of combustion visualisation, as well as on the engine performance which could be finally reached.
机译:高功率密度和热效率以及极低的NOx排放量是当今燃气发动机开发计划中的主要挑战。直到最近,使用传统火花点火的开室燃烧系统仍被认为受到爆震和失火的限制,以实现上述目标。此处报告的工作的主要任务是使用250毫克/立方米〜3 NO_x排放的比功率密度为25 kW / L的70甲烷易爆气体燃料实现稳定,无爆震燃烧。 TA Luft。燃烧系统的开发是在单缸发动机(SCE)上进行的,因此,工作的一个特殊方面是确保单缸发动机燃烧系统的开发结果可移植到目标V12多缸发动机上。在发动机测试之前,需要进行大量的仿真工作来指定最有希望的发动机硬件配置。主要重点是对缸内充气运动及其与精心选择的燃烧室几何形状变量的相互作用进行3D CFD分析。最终的范围是在燃烧过程中产生高的局部湍流水平,从而使燃烧持续时间短,变异系数低。实验阶段包括使用光学燃烧诊断系统AVL VISIOLUTION对发动机的几个燃烧相关参数进行测试,并针对火焰传播和爆震中心位置进行详细的燃烧分析。本文介绍了整个工作流程以及燃烧系统开发计划中采用的分析和实验方法以及工具。它还提供有关发动机测试结果,燃烧可视化的价值和贡献以及最终可以达到的发动机性能的信息。

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