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Knock in an Ethanol Fueled Spark Ignition Engine: Detection Methods with Cycle-Statistical Analysis and Predictions Using Different Auto-Ignition Models

机译:敲入乙醇燃料火花点火发动机:使用不同自动点火模型的循环统计分析和预测的检测方法

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Knock is studied in a single cylinder direct injection spark ignition engine with variable intake temperatures at wide open throttle and stoichiometric premixed ethanol-air mixtures. At different speeds and intake temperatures spark angle sweeps have been performed at non-knocking conditions and varying knock intensities. Heat release rates and two zone temperatures are computed for both the mean and single cycle data. The in-cylinder pressure traces are analyzed during knocking combustion and have led to a definition of knocking conditions both for every single cycle as well as the mean engine cycle of a single operating point. The timing for the onset of knock as a function of degree crank angle and the mass fraction burned is determined using the "knocking" heat release and the pressure oscillations typical for knocking combustion. A detailed chemical kinetic model for ethanol combustion is used to compute ignition delay times (IDT) for stoichiometric ethanol-air mixtures at pressures and temperatures relevant to the conditions measured on the engine test bench. A multi-step Arrhenius type correlation has been fit to the data including the observed flattening of the IDT for ethanol at relatively low temperatures (<850K) and compared to other data available in literature. Empirical knock prediction models available in literature are tested against the available measurement data and improvements to the models are formulated. The importance of accurate IDT values as well as a model for the reducing probability of knock towards the end of combustion for the precision of a knock model is illustrated.
机译:敲在节气门全开和化学计量的预混乙醇 - 空气混合物与可变进气的温度的单个缸内直喷火花点火式发动机进行了研究。以不同的速度和进气温度火花角扫描已经在非敲击条件和不同的爆震强度被执行。热释放速率和两个区温度计算两者的平均值和单周期的数据。爆震燃烧过程中缸内压力迹线进行了分析,并导致爆震的条件都为每一个周期以及一个单一的操作点的平均发动机循环的定义。爆震的发生为度曲柄角的函数,并且该质量分数的定时燃烧时使用“爆震”放热和压力振荡的典型爆震燃烧确定。对于乙醇燃烧的详细化学动力学模型用于计算点火延迟时间(IDT)在压力和相关的发动机试验台上测量的条件下的化学计量的乙醇 - 空气混合物。一种多步骤的Arrhenius型的相关性已被拟合到数据包括IDT为乙醇的在较低温度下观察到的展平(<850K),并与在文献中可获得的其它数据。在文献中可获得的经验爆震预测模型是针对可用的测量数据和改进模型配制测试。准确IDT值的重要性以及为爆震的朝向为燃烧爆震模型的精度的端部的可能性减少的模型被示出。

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