论文标题

新开发的无隔膜冲击管中的甲烷和N-己烷点火

Methane and n-hexane ignition in a newly developed diaphragmless shock tube

论文作者

Subburaj, Janardhanraj, Kashif, Touqeer Anwar, Farooq, Aamir

论文摘要

休克管通常被用于生成可靠的化学动力学数据以用于气相化学。用于冲击管操作的常规隔膜破裂模式提出了许多挑战,这些挑战最终可能影响化学动力学数据的质量。已经开发了许多无隔膜概念,以克服使用隔膜的缺点。这些无隔膜设计中的大多数都需要在冲击管的驱动器部分进行重大更改,在某些情况下,无法与操作的隔膜模式的性能相匹配。在目前的工作中,现有的隔膜型休克管经过快速作用阀进行了翻新,并评估了无隔膜无冲击管的性能,以研究甲烷和N-己烷的点火。此处报道的无隔膜减震管具有许多优势,例如消除使用隔膜的使用,避免在实验中进行大量手动努力,自动化减震管设施,对驾驶员条件具有良好的控制以及可靠的可靠性重复性,以实现可靠的气体化学化学化学化学动力学研究。点火延迟时间测量已在无隔膜的无冲击管中进行,用于三种甲烷混合物和两种$ p_5 $ = 10-20 bar和$ t_5 $ = 738-1537 k的N-HEXANE混合物。用于燃料,富含燃料,燃料 - 液体和氧气(未燃料的)混合物的结果(以前报道的型号和0.AR)的结果(以前报道的效果良好)(以前报道的效果数据和文献3. [1]用于甲烷和Zhang等人[2]。该研究提出了一种简单而简单的方法,可以将常规冲击管升级为无隔膜的操作模式,并为可靠的化学动力学研究打开了新的可能性。

Shock tubes have been routinely used to generate reliable chemical kinetic data for gas-phase chemistry. The conventional diaphragm-rupture mode for shock tube operation presents many challenges that may ultimately affect the quality of chemical kinetics data. Numerous diaphragmless concepts have been developed to overcome the drawbacks of using diaphragms. Most of these diaphragmless designs require significant alterations in the driver section of the shock tube and, in some cases, fail to match the performance of the diaphragm-mode of operation. In the present work, an existing diaphragm-type shock tube is retrofitted with a fast-acting valve, and the performance of the diaphragmless shock tube is evaluated for investigating the ignition of methane and n-hexane. The diaphragmless shock tube reported here presents many advantages, such as eliminating the use of diaphragms, avoiding substantial manual effort during experiments, automating the shock tube facility, having good control over driver conditions, and obtaining good repeatability for reliable gas-phase chemical kinetic studies. Ignition delay time measurements have been performed in the diaphragmless shock tube for three methane mixtures and two n-hexane mixtures at $P_5$ = 10 - 20 bar and $T_5$ = 738 - 1537 K. The results obtained for fuel-rich, fuel-lean, and oxygen-rich (undiluted) mixtures show very good agreement with previously reported experimental data and literature kinetic models (AramcoMech 3.0 [1] for methane and Zhang et al. mechanism [2] for n-hexane). The study presents an easy and simple method to upgrade conventional shock tubes to a diaphragmless mode of operation and opens new possibilities for reliable chemical kinetics investigations.

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