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Dynamics Analysis of a Jet-Fuel Surrogate and Development of a Skeletal Mechanism for Computational Fluid Dynamic Applications

机译:喷射燃料替代与计算流体动力学应用骨骼机制的动态分析

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The autoignition dynamics of a three-component surrogate jet fuel (66.2% n-dodecane, 15.8% n-proplylbenzene, 18.0% 1,3,5-trimethylcyclohexane) suitable for usage as Jet A-1 and RP-3 aviation fuels are analyzed, using the detailed mechanism of Liu et al. (2019). The conditions considered are relevant to the operation of gas turbines and the analysis is performed using mathematical tools of the computational singular perturbation (CSP) method. The key chemical pathways and species are identified in the analysis of a homogeneous adiabatic and constant pressure ignition system for a wide range of initial conditions. In particular, the key role of hydrogen and CO-related chemistry is highlighted, with an increasing importance as the initial temperature increases. The C2H4 - C2H3 - CH2CHO pathway is also identified as playing a secondary but nonnegligible role with an importance increasing with initial temperature, favoring the system's explosive dynamics and, thus, promoting ignition. Finally, C2H4 is identified as being a species with a key (secondary) role to the system's explosive dynamics, but its role is replaced by C3H6 and, eventually, by O-2 as the initial temperature increases. In the second part of the current work, a 58-species skeletal mechanism is generated using a previously developed algorithmic process based on CSP. The developed skeletal mechanism was tested in a wide range of initial conditions, including both ignition delay time and laminar flame speed calculations. For the conditions that were of interest in the current work, the skeletal mechanism approximated the detailed mechanism with very small error. The 58-species skeletal mechanism is shown to be ideal for use in computational fluid dynamics applications not only because of its small size but also because of its sufficiently slow associated fast timescale. (c) 2020 American Society of Civil Engineers.
机译:分析了适用于射流A-1和RP-3航空燃料的三组分代理喷射燃料(66.2%N-十二烷,15.8%N-丙烯苯,18.0%1,3,5-三甲基环己烷)的自燃动力学,使用Liu等人的详细机制。 (2019)。所考虑的条件与燃气轮机的操作相关,并且使用计算奇异扰动(CSP)方法的数学工具进行分析。在均匀的绝热和恒压点火系统的分析中鉴定了关键化学途径和物种,用于各种初始条件。特别地,突出的氢和共型化学的关键作用,随着初始温度的增加,越来越重要。 C2H4 - > C 2 H 3 - > CH2CHO途径也被识别为播放次要但非不可止的角色,其重视随着初始温度的增加,有利于系统的爆炸性动态,从而促进点火。最后,C2H4被识别为具有对系统爆炸性动态的关键(次要)角色的物种,但其作用被C3H6所取代,并且最终通过O-2随着初始温度的增加。在当前工作的第二部分中,使用基于CSP的先前显影的算法过程生成58种骨架机制。在宽范围的初始条件下测试了所发育的骨骼机制,包括点火延迟时间和层状火焰速度计算。对于对当前工作感兴趣的条件,骨骼机制近似于误差非常小的具体机制。 58种骨骼机制被证明是在计算流体动力学应用中的理想选择不仅是因为它的尺寸小,而且因为它足够慢的相关快速时间尺度。 (c)2020年美国土木工程师协会。

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  • 来源
    《Journal of Energy Engineering》 |2020年第6期|04020064.1-04020064.11|共11页
  • 作者单位

    Univ Highlands & Isl Perth Coll Crieff Rd Perth PH1 2NX Scotland;

    Univ Highlands & Isl Perth Coll Crieff Rd Perth PH1 2NX Scotland|Edinburgh Napier Univ Sch Engn & Built Environm Edinburgh EH10 5DT Midlothian Scotland;

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