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Two-Stage Ignition and NTC Phenomenon in a Dual Fuel Diesel Engine

机译:双燃料柴油发动机中的两阶段点火和NTC现象

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Two-stage ignition and NTC phenomenon in diesel sprays is investigated by performing 3-D two-phase reacting flow simulations in a dual-fuel engine. Spray processes modeled include fuel atomization, droplet distortion, droplet drag, turbulent dispersion, droplet interactions in terms of collision and coalescence, vaporization, and spray-wall interaction. A validated reaction mechanism is implemented in the CFD solver, which has previously been validated for both evaporating and reacting sprays. For single-fuel cases, the effect of temperature on two-stage ignition is examined by varying the start of injection (SOI). Results indicate global similarities between the two-stage ignition processes in diesel sprays and homogeneous mixtures. However, there are also noticeable differences due to the temporally and spatially evolving temperature and species fields in the spray case. For instance, both the first and second ignition delays are higher for the spray cases compared to homogeneous mixtures. Second, while ignition delay for homogeneous mixtures exhibits a NTC region, that for sprays indicate a ZTC region. In addition, the first-and second-stage ignitions for the spray occur over a wide Φ range, and at different locations in the spray, implying a spatially wide ignition kernel. Results with dual fuel indicate that the two-stage ignition behavior remains intact even at high molar fractions of methane. The addition of methane increases ignition delays for both sprays and homogeneous mixtures, and can be attributed to the reduction in O_2 and the chemical effect of methane. The sensitivity analysis indicated that the chemical effect is primarily due to reaction CH_4 + OH= CH_3 + H_2O.
机译:通过在双燃料发动机中执行3-D两相反应流动模拟来研究柴油喷雾中的两阶段点火和NTC现象。喷射过程建模包括燃料雾化,液滴变形,液滴阻力,湍流分散,碰撞和聚结,蒸发和喷射壁相互作用。经过验证的反应机理在CFD求解器中实施,该求解器先前已被验证以蒸发和反应喷雾。对于单燃料,通过改变注射的开始(SOI)来检查温度对两级点火的影响。结果表明柴油喷雾剂和均匀混合物中两级点火过程之间的全局相似性。然而,由于喷雾盒中的时间上和空间的温度和物种场,也存在显着的差异。例如,与均匀混合物相比,喷涂箱的第一和第二点火延迟都较高。其次,虽然均匀混合物的点火延迟表现出NTC区域,用于喷射表示ZTC区域。另外,喷雾的第一和第二级点火发生在宽φ范围内,并且在喷雾中的不同位置处,暗示​​了空间宽的点火核。具有双燃料的结果表明,即使在甲烷的高摩尔分数下,两级点火行为也保持完整。添加甲烷增加了喷雾和均匀混合物的点火延迟,并且可归因于O_2的还原和甲烷的化学效果。敏感性分析表明化学效果主要是由于反应CH_4 + OH = CH_3 + H_2O。

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