首页> 外文学位 >Direct and Indirect Determinations of Elementary Rate Constants H + O2: Chain Branching; the Dehydration of tertiary-Butanol; the Retro Diels-Alder Reaction of Cyclohexene; the Dehydration of Isopropanol.
【24h】

Direct and Indirect Determinations of Elementary Rate Constants H + O2: Chain Branching; the Dehydration of tertiary-Butanol; the Retro Diels-Alder Reaction of Cyclohexene; the Dehydration of Isopropanol.

机译:直接和间接确定基本速率常数H + O2:链支化;叔丁醇的脱水;环己烯的逆Diels-Alder反应;异丙醇的脱水。

获取原文
获取原文并翻译 | 示例

摘要

Due to growing environmental concern over the continued use of fossil fuels, methods to limit emissions and partially replace fossil fuel use with renewable biofuels are of considerable interest. Developing chemical kinetic models for the chemistry that affects combustion properties is important to understanding how new fuels affect combustion energy conversion processes in transportation devices. This thesis reports the experimental study of several important reactions (the H + O2 branching reaction, the key decomposition reactions of tertiary-butanol, the dehydration reaction of isopropanol, and the retro Diels-Alder reaction of cyclohexene) and develops robust analysis methods to estimate the absolute uncertainties of specific elementary rate constants derived from the experimental data. In the study of the above reactions, both a direct and indirect rate constant determination technique with associated uncertainty estimation methodologies are developed.;In the study of the decomposition reactions, a direct determination technique is applied to experimental data gathered in preparation of this thesis. In the case of the dehydration reaction of tertiary-butanol and the retro Diels-Alder reaction of cyclohexene, both of which are used as internal standards for relative rate studies (Herzler et al. 1997) and chemical thermometry (Rosado-Reyes et al. 2013) , analysis showed an ∼20 K difference in the reaction rate between the reported results and the previous recommendations. In light of these discrepancies, an uncertainty estimation of previous recommendations illuminated an uncertainty of at least 20 K for the dehydration reaction of tertiary-butanol and the retro Diels-Alder reaction of cyclohexene, thus resolving the discrepancies.;The determination of the H + O2 branching reaction and decomposition reactions of isopropanol used an indirect determination technique. The uncertainty of the H + O2 branching reaction rate is shown to be underestimated by previous analysis (Hong et al. 2011, Turanyi, et al. 2012), and the dehydration reaction of isopropanol is shown to be four times faster than theoretical predictions. Analyses of uncertainties for these reactions show that a linearized local sensitivity analysis does not completely capture uncertainties.;Appendix B in this thesis includes additional work conducted during the preparation of this thesis, namely the measurement of derived cetane numbers for jet fuel surrogates.
机译:由于对继续使用化石燃料的环境关注日益增加,限制排放并用可再生生物燃料部分替代化石燃料的使用的方法引起了人们的极大兴趣。为影响燃烧特性的化学物质开发化学动力学模型,对于理解新型燃料如何影响运输设备中的燃烧能量转换过程非常重要。本文报道了几个重要反应的实验研究(H + O 2支化反应,叔丁醇的关键分解反应,异丙醇的脱水反应和环己烯的逆Diels-Alder反应),并开发了可靠的分析方法来估算从实验数据中得出的特定基本速率常数的绝对不确定性。在上述反应的研究中,开发了直接和间接速率常数测定技术以及相关的不确定性估计方法。在分解反应的研究中,直接测定技术被用于准备本文的实验数据。在叔丁醇的脱水反应和环己烯的Diels-Alder逆反应的情况下,两者均用作相对速率研究(Herzler等,1997)和化学测温法(Rosado-Reyes等,1997)的内标。 2013年),分析显示报告的结果与先前的建议之间的反应速率相差约20K。鉴于这些差异,先前建议的不确定性估计表明,叔丁醇的脱水反应和环己烯的逆Diels-Alder反应的至少20 K的不确定性,从而解决了差异。异丙醇的O2支化反应和分解反应采用间接测定技术。 H + O 2支化反应速率的不确定性被先前的分析低估了(Hong等人,2011; Turanyi等人,2012),异丙醇的脱水反应比理论预测快了四倍。对这些反应的不确定性分析表明,线性化的局部敏感性分析不能完全捕获不确定性。本论文的附录B包括在本论文准备过程中进行的其他工作,即测量航空燃料替代物的十六烷值。

著录项

  • 作者

    Heyne, Joshua S.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Mechanical engineering.;Aerospace engineering.;Organic chemistry.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 268 p.
  • 总页数 268
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:32

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