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The Effects of Injector Temperature on Spray Characteristics in Heavy-Duty Diesel Sprays

机译:注射器温度对重型柴油喷雾剂喷射特性的影响

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This work investigates the impact of injector temperature on the characteristics of high-pressure n-dodecane sprays under conditions relevant to heavy-duty diesel engines. Sprays are injected from a pair of single-hole diesel injectors belonging to the family of “Spray C” and “Spray D” Engine Combustion Network (ECN) injectors. Low and high injector temperature conditions are achieved by activating or deactivating a cooling jacket. We quantify spray spreading angle and penetration using high-speed shadowgraphy and long-distance microscopy imaging. We evaluate differences in fuel/air mixture formation at key timings through one-dimensional modeling. Injections from a cooled injector penetrate faster than those from a higher temperature injector, especially for an injector already prone to cavitation (Spray C). When uncooled, Spray C exhibited a time-varying spreading angle at early times during the injection event, which exacerbates the reduction in initial penetration rate relative to the cooled injector. Changes in fuel density alone cannot account for the observed trends, and we show that implementing a transient spreading angle in the model (guided by the time-sequenced images) is an effective solution to match experimental penetration characteristics. Time- and axially resolved radial mixture fractions derived from the model reveal that failure to account for early spreading angle transients and their impact on penetration and mixture formation leads to erroneous mixture fraction distributions at key timings associated with first- and second-stage ignition. Such oversights could lead the community toward incorrect model calibrations.
机译:这项工作调查了注射器温度对重型柴油发动机相关条件下的高压N-十二烷喷雾特性的影响。喷射从属于“喷雾C”和“喷雾D”发动机燃烧网络(ECN)喷射器的家庭的一对单孔柴油喷射器注入。通过激活或停用冷却夹套来实现低和高的喷射温度条件。使用高速影像和长距离显微镜成像来量化喷雾扩散角度和渗透。通过一维建模,我们评估关键时间燃料/空气混合物形成的差异。从冷却的注射器注入比来自更高温度注射器的喷射器的速度更快,特别是对于已经容易受到空化的喷射器(喷雾C)。当加工时,喷射C在注射事件期间在早期展示时变的扩散角,这加剧了相对于冷却的注射器的初始穿透速率的降低。单独的燃料密度的变化不能解释所观察到的趋势,我们表明在模型中实现瞬态扩散角(由时序图像引导)是匹配实验穿透特性的有效解决方案。从模型中衍生的时间和轴向分辨的径向混合物馏分揭示了未解释早期扩散角瞬变及其对渗透和混合物形成的影响导致与第一和第二级点火相关的关键时机处的错误混合分数分布。这种监督可能导致社区朝着不正确的模型校准。

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