论文标题

高压冲击管中N-己烷氧化的双相机高速成像

Dual-camera high-speed imaging of n-hexane oxidation in a high-pressure shock tube

论文作者

Figueroa-Labastida, Miguel, Kashif, Touqeer Anwar, Farooq, Aamir

论文摘要

休克管广泛用于化学动力学研究。它的好处依赖于几乎理想的冲击加热过程,该过程在有限的测试时间内为化学系统提供了高温和压力。就像任何反应堆一样,冲击管不能免疫非理想的效应。因此,对可能偏离理想条件的条件的研究至关重要。高速成像已被证明是一个强大的副词,用于分析冲击管中的非理想 /非遗传燃烧。在这项工作中,在高压冲击管(HPST)中以10、15和20 bar进行了双相机高速成像实验。将光学部分设计为HPST的扩展,该扩展可以从末端墙壁和冲击管驱动部分的侧壁同时可视化。 N-己烷是一种具有负温度系数(NTC)行为的燃料,已被识别为容易发生非遗传点火的燃料,被用作测试燃料。选择反应性混合物和热力学条件,以在高温,NTC和低温方向上进行视觉分析点火过程。非均匀点火主要是在IDT的局部最大值上观察到的,这由高温和NTC区域组成。具有高燃料载荷(5%N-己烷)的化学计量N-己烷混合物表现出与恒定体积化学动力学模拟的最高偏差。测试了将氦气作为浴气来减轻置换,并表明它可以提高混合物发展反应方面的敏感性。测试了用于识别冲击管中点火模式的修改后的Sankaran标准,并显示了针对实验观察的总体良好一致性。

Shock tubes are widely used in the study of chemical kinetics. Its benefits rely on the almost ideal shock-heating process that provides high temperatures and pressures to a chemical system for a limited test time. Just like any reactor, shock tubes are not immune to non-ideal effects. The study of conditions that might deviate experiments from ideal conditions is thus of the utmost importance. High-speed imaging has been proven to be a powerful bytool to analyze non-ideal / non-homogenous combustion in shock tubes. In this work, dual-camera high-speed imaging experiments were performed at 10, 15 and 20 bar in a high-pressure shock tube (HPST). An optical section was designed as an extension of the HPST which enabled simultaneous visualization from the endwall and the sidewall of the driven section of the shock tube. n-Hexane, a fuel with a negative temperature coefficient (NTC) behavior that has been identified as prone to non-homogenous ignition, is used as a test fuel. Reactive mixtures and thermodynamic conditions were selected to visually analyze ignition processes at the high-temperature, NTC and low-temperature regimes. Non-homogeneous ignition was observed mostly at the local maximum of the IDT, which is comprised by the high-temperature and NTC regions. Stoichiometric n-hexane mixture with high fuel loading (5% n-hexane) presented the highest deviation from constant volume chemical kinetic simulations. The inclusion of helium as a bath gas to mitigate preignition was tested and it showed to improve the susceptibility of the mixtures to develop reaction fronts. The modified Sankaran criterion for the identification of ignition regimes in shock tubes was tested and it showed an overall good agreement against the experimental observations.

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