首页> 外文会议>ASME Internal Combustion Engine Division Technical Conference >PREDICTION OF COMBUSTION VELOCITIES, INDICATED-CYCLE PRESSURE IN THE CLOSED-VALVE PHASE AND OPERATING CONDITION EFFECTS ON PERFORMANCE AND EMISSIONS OF CNG AND GASOLINE SI ENGINES
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PREDICTION OF COMBUSTION VELOCITIES, INDICATED-CYCLE PRESSURE IN THE CLOSED-VALVE PHASE AND OPERATING CONDITION EFFECTS ON PERFORMANCE AND EMISSIONS OF CNG AND GASOLINE SI ENGINES

机译:燃烧速度的预测,闭门阶段的指示循环压力以及CNG和汽油SI发动机性能和排放的操作条件效应

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The simulation of heat release, flame propagation speeds and pollutant formation was carried out in both a turbocharged CNG engine and a multivalve naturally-aspirated bi-fuel engine . running on either CNG or gasoline. The predictive tool used for investigation is based on an enhanced fractal geometry concept of the flame front which is able to capture the modulation of turbulent to laminar burning speed ratio throughout the overall combustion phase without introducing flame kernel growth or burn out sub-models. The fractal approach is coupled to a simple refined quasi-dimensional multizone combustion model, which includes specifically developed sub-models for evaluating CO and NO formation, in addition to a CAD procedure to determine the burned-gas front area and radius, as is detaild in [16]. An insight is also given into main features of in-cylinder turbulence modeling, as an easy and effective evaluation of the turbulence intensity is needed for an accurate computation of the turbulent burning speed. The predictive model was applied to a wide range of engine speeds (N = 2000-5500 rpm), loads (bmep = 200-790 kPa for the naturally-aspirated engine, bmep = 200-1400 kPa for the turbocharged one), relative air-fuel ratios (RAFR = 0.80-1.60) and spark advances (SA ranging from 8 deg of retard to 8 deg of advance from MBT), and the obtained results were compared to experimental data. These latter were extracted from measured in-cylinder pressure by an advanced diagnostics technique that was previously developed by the authors. The results confirmed a quite accurate prediction of burning speed even without any kind of tuning, with respect to different currently available fractal as well as non-fractal approaches for the simulation of flame-turbulence interaction. Furthermore, the authors' computational code showed to be capable of capturing the effects of fuel composition, different combustion-chamber concepts, and operating conditions on engine performance and emissions.
机译:热释放,火焰传播速度和污染物形成的模拟是在两者中进行涡轮增压CNG发动机和阀组自然吸气双燃料发动机。在任CNG或汽油运行。用于调查的预测工具是基于火焰前,它能够捕捉到动荡的调制层流燃烧速度比整个整体燃烧阶段不引入焰核的增长或烧坏子模型的增强分形几何的概念。分形的方法被连接到一个简单的精制准二维多区燃烧模型,其中包括特别发达的子模型,用于评估的CO和NO的形成中,除了一个CAD程序,以确定燃烧气体前部区域和半径,作为是detaild在[16]。见识也给出入缸内湍流模型的主要特征,因为需要用于湍流燃烧速度的精确计算的紊流强度的一个简单而有效的评估。预测模型应用于宽范围的发动机速度(N = 2000-5500转),负载(BMEP = 200-790千帕的自然吸气发动机,BMEP = 200-1400千帕的涡轮增压之一),相对空气 - 燃料比(RAFR = 0.80-1.60)和火花提前(SA范围从8度延迟的到8度从MBT提前的),以及所获得的结果进行比较,以实验数据。这些后面的是从测量汽缸内压力通过先前由作者开发的高级诊断技术萃取。结果证实燃烧速度的相当准确的预测,即使没有任何形式的调教,相对于不同现有的分形以及火焰湍流相互作用的模拟非分形方法。此外,作者的计算代码显示为能够捕捉燃料组合物,不同的燃烧腔室的概念的影响,以及操作上的发动机性能和排放条件。

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