乙醇-乙酸乙酯混合物在空气中的层流燃烧速度

IF 3.6 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Ernesto Salzano , Benedetta Anna De Liso , Francesco Cammarota , Valeria Di Sarli
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引用次数: 0

摘要

酒精、酯类及其混合物在加工工业中无处不在。然而,安全数据仍然有限,尤其是混合物。在这项工作中,通过使用三种不同的详细化学动力学机制进行计算,并根据密闭容器爆炸实验中记录的压力时间历程进行测量,研究了乙醇-乙酸乙酯混合物在空气中的层燃速度 Sl(90 °C 和大气压力下)。计算时,等效比 φ 从 0.6 到 1.7 不等,燃料混合物中乙醇的摩尔分数从 0(仅乙酸乙酯)到 1(仅乙醇)不等。所有系统的爆炸实验均在φ = 1.1 时进行,即根据计算,Sl 达到最大值时的成分。无论动力学机制如何,计算数据与实验数据(包括从文献中获取的乙醇和乙酸乙酯的实验数据)之间都存在合理的一致性。结果表明,乙醇-乙酸乙酯的行为介于乙醇和乙酸乙酯的行为之间,随着混合物中乙醇/乙酸乙酯的富集而接近前者/后者。在探究的整个等效比范围内,乙醇-乙酸乙酯的 Sl 值都小于根据乙醇和乙酸乙酯在燃料混合物中的摩尔比例平均相应值所得到的 Sl 值。实验也证实了这一点。一个简单的类似勒夏特列混合规则的公式被证明可以预测与计算数据和实验数据非常吻合的 Sl 值,这表明乙醇和乙酸乙酯之间的相互作用主要是热作用而不是化学作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laminar burning velocity of ethanol-ethyl acetate mixtures in air
Alcohols, esters, and their mixtures are ubiquitous in the process industry. However, safety data remain limited, especially for mixtures. In this work, the laminar burning velocity, Sl, of ethanol-ethyl acetate mixtures in air was investigated (at 90 °C and atmospheric pressure) through computations performed using three different detailed chemical kinetic mechanisms, and measurements obtained from pressure time histories recorded during closed vessel explosion experiments. Computations were run varying the equivalence ratio, φ, from 0.6 to 1.7, and the mole fraction of ethanol in the fuel mixture from 0 (only ethyl acetate) to 1 (only ethanol). For all systems, explosion experiments were carried out at φ = 1.1, i.e., the composition at which, according to calculations, Sl achieves its maximum value. Regardless of the kinetic mechanism, reasonable agreement is found between computed and experimental data, including experimental data retrieved from the literature for ethanol and ethyl acetate. Results show that the behavior of ethanol-ethyl acetate is bounded between the behaviors of ethanol and ethyl acetate, approaching the former/latter as the mixture is enriched in ethanol/ethyl acetate. Over the whole range of equivalence ratios explored, the values of Sl for ethanol-ethyl acetate are smaller than those obtained by averaging the corresponding values of ethanol and ethyl acetate according to their mole proportions in the fuel mixture. This is also confirmed experimentally. A simple Le Chatelier’s mixing rule-like formula is proved to predict values of Sl that closely match both computed and experimental data, suggesting that the nature of the interaction between ethanol and ethyl acetate is predominantly thermal rather than chemical.
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来源期刊
CiteScore
7.20
自引率
14.30%
发文量
226
审稿时长
52 days
期刊介绍: The broad scope of the journal is process safety. Process safety is defined as the prevention and mitigation of process-related injuries and damage arising from process incidents involving fire, explosion and toxic release. Such undesired events occur in the process industries during the use, storage, manufacture, handling, and transportation of highly hazardous chemicals.
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