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首页> 外文期刊>Combustion Science and Technology >Influence of Antimony-Halogen Additives on Flame Propagation
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Influence of Antimony-Halogen Additives on Flame Propagation

机译:锑-卤素添加剂对火焰传播的影响

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摘要

A kinetic model for flame inhibition by antimony-halogen compounds in hydrocarbon flames is developed. Thermodynamic data for the relevant species are assembled from the literature, and calculations are performed for a large set of additional species of Sb-Br-C-H-O system. The main Sb- and Br-containing species in the combustion products and reaction zone are determined using flame equilibrium calculations with a set of possible Sb-Br-C-H-O species, and these are used to develop the species and reactions in a detailed kinetic model for antimony flame inhibition. The complete thermodynamic data set and kinetic mechanism are presented. Laminar burning velocity simulations are used to validate the mechanism against available data in the literature, as well as to explore the relative performance of the antimony-halogen compounds. Further analysis of the premixed flame simulations has unraveled the catalytic radical recombination cycle of antimony. It includes (primarily) the species Sb, SbO, SbO2, and HOSbO, and the reactions: Sb + O + M=SbO + M; Sb + O-2 + M=SbO2 + M; SbO + H=Sb + OH; SbO + O=Sb + O-2; SbO + OH + M=HOSbO + M; SbO2 + H2O=HOSbO + OH; HOSbO + H=SbO + H2O; SbO + O + M=SbO2 + M. The inhibition cycles of antimony are shown to be more effective than those of bromine, and intermediate between the highly effective agents CF3Br and trimethylphosphate. Preliminary examination of a Sb/Br gas-phase system did not show synergism in the gas-phase catalytic cycles (i.e., they acted essentially independently).
机译:建立了碳氢化合物火焰中锑-卤素化合物抑制火焰的动力学模型。相关物种的热力学数据是从文献中收集的,并对大量其他物种的Sb-Br-C-H-O系统进行了计算。使用一组可能的Sb-Br-CHO物种进行火焰平衡计算,确定燃烧产物和反应区中主要的Sb和Br物种,并将其用于详细的动力学模型中发展该物种和反应。锑火焰抑制。介绍了完整的热力学数据集和动力学机理。层流燃烧速度模拟用于对照文献中的可用数据验证该机理,并探讨锑-卤化物的相对性能。对预混合火焰模拟的进一步分析揭示了锑的催化自由基复合循环。它包括(主要)Sb,SbO,SbO2和HOSbO物种,以及反应:Sb + O + M = SbO + M; Sb + O-2 + M = SbO2 + M; SbO + H = Sb + OH; SbO + O = Sb + O-2; SbO + OH + M = HOSbO + M; SbO2 + H2O = HOSbO + OH; HOSbO + H = SbO + H2O; SbO + O + M = SbO2 +M。显示出锑的抑制周期比溴的抑制周期更有效,并且位于高效试剂CF3Br和磷酸三甲酯之间。对Sb / Br气相系统的初步检查未显示出气相催化循环中的协同作用(即它们基本上独立地起作用)。

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