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Probing the low-temperature chemistry of di-n-butyl ether: Detection of previously unobserved intermediates

机译:探测二正丁醚的低温化学性质:检测以前未观察到的中间体

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Di-n-butyl ether (DBE, C8H18O) has been proposed as a promising biofuel for diesel engines, but details of its low-temperature (LT) oxidation chemistry are not well understood. This paper reports new speciation data obtained in the temperature range of 400-1100 K at phi=1 and nearly-atmospheric pressure, using a plug flow reactor combined with electron ionization molecular-beam mass spectrometry (MBMS) and two different jet-stirred reactors coupled with either online gas chromatography or tunable synchrotron vacuum ultraviolet photoionization-MBMS.The experimental results confirm that DBE is very reactive and exhibits two negative-temperature coefficient (NTC) zones around 500-550K and 650-750K. Speciation data with about 40 C-0-C-8 species are presented, including about 20 LT species not reported previously. Among those, fuel-specific C8H16O2 cyclic ethers were quantified. Also, butanoic acid, which is present in highest amounts among the detected LT intermediates, and C8H14O3 diones, were found to peak already near 500K, suggesting their importance in the LT chemistry of DBE. Signals of several highly oxygenated peroxides (e.g., C8H14O5 and C8H O-16(6)) were detected, indicating third O-2 addition steps. Respective reaction pathways are suggested and discussed based on these experimental results.To better understand the LT chemistry of DBE, the present data were compared to two recent DBE models (Cai et al., 2014; Thion et al., 2017). Significant discrepancies between the experimental data and both models were found for important LT intermediates, of which many were not included in the respective mechanisms. The results reported in the present study thus provide new opportunities for refining DBE kinetic models. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:二正丁基醚(DBE,C8H18O)已被提出作为柴油发动机的有前途的生物燃料,但其低温(LT)氧化化学的细节尚未得到很好的理解。本文报告了使用活塞流反应器结合电子电离分子束质谱(MBMS)和两个不同的喷射搅拌反应器在phi = 1和接近大气压下在400-1100 K的温度范围内获得的新的形态数据实验结果证实DBE具有很高的反应活性,并在500-550K和650-750K左右具有两个负温度系数(NTC)区。提供了约40个C-0-C-8物种的物种数据,其中包括之前未报道的约20种LT物种。其中,对燃料专用的C8H16O2环状醚进行了定量。另外,发现丁酸(在检测到的LT中间体和C8H14O3二酮中含量最高)已达到接近500K的峰值,表明它们在DBE的LT化学中很重要。检测到几种高度氧化的过氧化物(例如C8H14O5和C8H O-16(6))的信号,表明第三次O-2添加步骤。根据这些实验结果,建议并讨论了各自的反应途径。为了更好地了解DBE的LT化学,将当前数据与两个最近的DBE模型进行了比较(Cai等人,2014年; Thion等人,2017年)。对于重要的LT中间体,发现实验数据与两个模型之间存在显着差异,其中许多均未包含在各自的机理中。因此,本研究报告的结果为完善DBE动力学模型提供了新的机会。 (C)2019燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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