首页> 外文期刊>Combustion and Flame >An experimental and kinetic modeling study of the oxidation of hexane isomers: Developing consistent reaction rate rules for alkanes
【24h】

An experimental and kinetic modeling study of the oxidation of hexane isomers: Developing consistent reaction rate rules for alkanes

机译:己烷异构体氧化的实验和动力学建模研究:建立一致的烷烃反应速率规则

获取原文
获取原文并翻译 | 示例
           

摘要

Alkanes are key components in gasoline, jet and diesel fuels and considerably influence the combustion behavior of these fuels because of their wide range of reactivity. An improved understanding of their combustion behavior and the development of chemical kinetic models that can accurately simulate their combustion behavior are important for the development of next-generation internal-combustion and gas-turbine engines. The current work provides improved insight into oxidation mechanisms of a representative family of hydrocarbon fuels, specifically the hexane isomers: n-hexane, 2-methylpentane, 3-methylpentane, 2,2-dimethylbutane and 2,3-dimethylbutane. These isomers provide carbon "skeletons" ranging from straight-chained to highly-branched and provide a framework for the subsequent development of kinetic mechanisms for larger alkanes. New ignition delay times for the four branched hexane isomers were measured in a high-pressure shock tube and in a rapid compression machine, both at stoichiometric conditions (phi= 1), p =15 bar and X-O2 = 21% over temperatures from 600 to1300 K. These data were combined with previously published measurements under the same conditions for the remaining n-hexane isomer to provide a complete body of experimental data for kinetic modeling analysis. In addition, very recent experimental measurements of individual intermediate chemical species concentrations from all five hexane isomers in a jet-stirred reactor are also included and provide another family of data for further assessment of hexane isomer reactivity. Different reactivities were observed for each hexane isomer in each experimental facility, resulting from differences in their molecular structures. Consistent reaction rate rules have been applied to develop a combined detailed chemical kinetic model for all five hexane isomers. Kinetic model validation studies are reported to show that the current model reproduces well the ignition delay times of all five alkane isomers, as well as their variations in reactivity over a wide range of temperatures and other operating conditions. Equally important, these results show that it is not necessary to have a separate, different kinetic model for each isomer of a family of alkane fuels and that a single, coherent, integrated set of reaction rate classes and rules is sufficient to accurately describe combustion rates of combustion of straight-chain n-alkanes and branched-chain alkane fuels. This suggests strongly that a single set of reaction classes and rate rules should be sufficient to describe combustion kinetics of alkane fuels of any size and degree of branching. Published by Elsevier Inc. on behalf of The Combustion Institute.
机译:烷烃是汽油,喷气燃料和柴油燃料中的关键成分,由于其广泛的反应性,因此会大大影响这些燃料的燃烧性能。对它们的燃烧行为的更好的理解以及可以精确模拟其燃烧行为的化学动力学模型的发展对于下一代内燃机和燃气涡轮发动机的发展至关重要。当前的工作提供了对代表性的烃类燃料,特别是己烷异构体:正己烷,2-甲基戊烷,3-甲基戊烷,2,2-二甲基丁烷和2,3-二甲基丁烷的氧化机理的深入了解。这些异构体提供了从直链到高支链的碳“骨架”,并为后续开发更大链烷烃的动力学机理提供了框架。在化学计量比(phi = 1),p = 15 bar和X-O2 = 21%的温度下,在高压冲击管和快速压缩机中测量了四种支链己烷异构体的新点火延迟时间600至1300K。将这些数据与先前发布的测量结果在相同条件下用于剩余的正己烷异构体相结合,以提供用于动力学模型分析的完整实验数据。另外,还包括喷射搅拌反应器中来自所有五个己烷异构体的各个中间化学物质浓度的最新实验测量值,并为进一步评估己烷异构体反应性提供了另一组数据。在每种实验设备中,每种正己烷异构体均会观察到不同的反应性,这是由于它们的分子结构不同所致。已应用一致的反应速率规则来开发所有五个己烷异构体的组合详细化学动力学模型。据报道,动力学模型验证研究表明,当前模型很好地再现了所有五个烷烃异构体的点火延迟时间,以及它们在很宽的温度范围和其他操作条件下的反应性变化。同样重要的是,这些结果表明,不必为一族烷烃燃料的每个异构体建立单独的,不同的动力学模型,并且反应速率类别和规则的单一,一致且完整的集合足以准确描述燃烧速率直链正构烷烃和支链烷烃燃料的燃烧这强烈表明,一组反应类别和速率规则应足以描述任何大小和支化度的烷烃燃料的燃烧动力学。由Elsevier Inc.代表燃烧研究所出版。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号