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Autoignition and front propagation in low temperature combustion engine environments

机译:低温内燃机环境中的自燃和前部传播

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In this paper, we computationally investigate the fundamental aspects of autoignition and subsequent combustion phenomena in low temperature combustion (LTC) engine environments using direct numerical simulations (DNS). In particular, the effects of thermal and equivalence ratio stratification on the autoignition and subsequent front propagation in high pressure and stratified hydrogen-air turbulent mixtures are studied using detailed chemistry. Depending on fuel injection timing, exhaust gas recircu-lation, and wall heat loss, different correlations between temperature (T) - equivalence ratio (φ) fields can exist prior to the major heat release event. Here, we investigate three cases with different initial T-φ correlations: (A) a baseline case of a uniform composition with temperature inhomogeneities only, (B) uncorrelated T-φ fields, and (C) negatively-correlated T- fields. Numerical diagnostics are developed based on an appropriately defined Damkohler number to distinguish different modes of heat release. It is found that the majority of heat release in the baseline case and the uncorrelated case occurs during the front propagation in the form of both spontaneous ignition fronts as well as deflagration waves, whereas the negatively correlated case ignites predominantly homogeneously.
机译:在本文中,我们使用直接数值模拟(DNS)对低温燃烧(LTC)发动机环境中自燃和随后燃烧现象的基本方面进行了计算研究。特别是,使用详细的化学方法研究了热和当量比分层对自燃以及随后在高压和分层氢-空气湍流混合物中的前部传播的影响。取决于燃料喷射正时,废气再循环和壁热损失,在主要的放热事件之前,温度(T)-当量比(φ)场之间可能存在不同的相关性。在这里,我们研究了三种具有不同初始T-φ相关性的情况:(A)仅具有温度不均匀性的均匀成分的基线情况;(B)不相关的T-φ场;以及(C)负相关的T- 场。基于适当定义的Damkohler数来开发数字诊断程序,以区分不同的放热模式。发现在基线情况下和不相关情况下的绝大部分热量释放是在前部传播过程中以自发着火锋和爆燃波的形式发生的,而负相关情况则主要均匀地着火。

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