在湿惰性气体环境下燃烧合成硫化锌过程中的热辐射模拟

A. Markov, I. A. Filimonov
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引用次数: 2

摘要

本文给出了在湿惰性气体环境下,利用ZnS燃烧合成模型计算得到的数值结果。该模型是对先前建立的氩气燃烧合成ZnS模型的改进。计算结果使我们能够在数值上和高精度地分别估计在标题所述条件下燃烧过程中对流、传导和热辐射的传热。因此,我们不仅能够比较对流、传导和热辐射的换热,而且还详细研究了在所考虑的燃烧系统中辐射换热相对于对流小得多的原因。我们的研究结果一方面与对流、传导和辐射换热的相对数值相吻合,另一方面使我们能够更精确、合理地准确地说明辐射换热小的原因。我们得出的结论是,这是一种热薄的水蒸汽云,在点火点附近形成,吸收辐射,并防止绿色混合物的另一部分被辐射点燃,以及随后在辐射传热的基础上燃烧的传播。本文对前人的研究结果进行了修正,考虑了硫化锌合成过程中水蒸气对辐射换热过程的影响。在足够高的蒸汽浓度下,该模型解释了在不考虑指示效应的情况下计算的有效气体渗透系数值异常低。本文给出了在湿惰性气体环境下,利用ZnS燃烧合成模型计算得到的数值结果。该模型是对先前建立的氩气燃烧合成ZnS模型的改进。计算结果使我们能够在数值上和高精度地分别估计在标题所述条件下燃烧过程中对流、传导和热辐射的传热。因此,我们不仅能够比较对流、传导和热辐射的换热,而且还详细研究了在所考虑的燃烧系统中辐射换热相对于对流小得多的原因。我们的研究结果一方面与对流、传导和辐射换热的相对数值相吻合,另一方面使我们能够更精确、合理地准确地说明辐射换热小的原因。我们的结论是……
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of thermal radiation during zinc sulfide synthesis via combustion in a wet inert gas environment
We have presented the numerical results of calculations obtained with the help of a model of the ZnS combustion synthesis in a wet inert gas environment. The model was a modification of the model of the ZnS combustion synthesis on argon developed earlier. The results let us numerically and with the high accuracy estimate separately the heat transfers by both convection, conduction and thermal radiation during the combustion under the conditions stated in the heading. As a result, we are not only able to compare the heat transfers by the convection, conduction and thermal radiation, but also investigate in details the reason of much smaller heat transfer by radiation with respect to convection in the combustion system considered. On one hand, our results agree with data on relative values of heat transfer by convection, conduction and radiation, and on the other hand, they allow us to specify accurately the reason of a smallness of heat transfer by radiation more precisely and reasonably. We have concluded that this is a hot thin cloud of water vapors that is formed in a close vicinity of the igniter, absorbs radiation and prevents the other part of green mixture both from ignition by radiation and the subsequent propagation of the combustion on the basis of radiation heat transfer. In the presented paper a modification of the previous research results was carried out which allows taking into account the influence of water vapor on the radiation heat transfer process during the synthesis of zinc sulfide. At sufficiently high concentration of vapors the model explains the abnormally low values of effective gas permeability coefficients calculated without taking into account the indicated effect.We have presented the numerical results of calculations obtained with the help of a model of the ZnS combustion synthesis in a wet inert gas environment. The model was a modification of the model of the ZnS combustion synthesis on argon developed earlier. The results let us numerically and with the high accuracy estimate separately the heat transfers by both convection, conduction and thermal radiation during the combustion under the conditions stated in the heading. As a result, we are not only able to compare the heat transfers by the convection, conduction and thermal radiation, but also investigate in details the reason of much smaller heat transfer by radiation with respect to convection in the combustion system considered. On one hand, our results agree with data on relative values of heat transfer by convection, conduction and radiation, and on the other hand, they allow us to specify accurately the reason of a smallness of heat transfer by radiation more precisely and reasonably. We have concluded...
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