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The characteristics of combustion reactions involving thermite under different shell materials

机译:不同壳材料下诱导燃烧反应的特征

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摘要

To study the influence of tubular shell materials on the combustion of thermite, numerical simulations and experimental comparisons of the combustion efficiencies of thermite with PVC and stainless-steel shell materials were carried out. The thermal conductivity coefficient and heat radiation correlation coefficient of a shell material directly affect heat transfer during a heat-transfer process, that is, the lower the thermal conductivity and the higher the heat radiation reflectance coefficient, the lower the heat flux through the material and the less heat is lost. The experimental results show that compared with the stainless-steel tube material, the temperature distribution of thermite is more concentrated and the effect of melting through a steel target plate is more apparent when PVC is used as the shell material. The simulation results show that thermite in the PVC shell can produce a higher temperature, reaching 2200 degrees C at the loading port and 1700 degrees C on the steel target plate, which is maintained for 0.9 s. However, the corresponding maximum temperatures for the stainless-steel shell are only 2000 degrees C and 1500 degrees C, not yet reaching the melting point of the steel plate. The simulation results are consistent with the experimental phenomena. This work is of great significance for improving the design of thermite shells, enhancing performance, and guiding future combustion process research.
机译:为研究管状壳材料对热电部件燃烧的影响,进行了用PVC和不锈钢壳材料燃烧燃烧效率的数值模拟和实验比较。壳材料的导热系数和热辐射相关系数在传热过程中直接影响传热,即导热率越低,热辐射反射系数越低,通过材料的热通量越低越少的热量丢失了。实验结果表明,与不锈钢管材料相比,热轧物的温度分布更浓缩,当PVC用作壳材料时,熔化通过钢靶板的效果更加明显。仿真结果表明,PVC壳中的热量可以产生较高的温度,在装载端口和1700摄氏度上达到2200℃,钢靶板保持在0.9秒。然而,不锈钢壳的相应最大温度仅为2000℃和1500摄氏度,尚未到达钢板的熔点。仿真结果与实验现象一致。这项工作对于改善热轧壳设计,增强性能和指导未来的燃烧过程研究具有重要意义。

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  • 来源
    《RSC Advances》 |2020年第56期|共8页
  • 作者单位

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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