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Advanced kinetic tools for the evaluation of decomposition reactions - Determination of thermal stability of energetic materials

机译:先进的动力学工具,用于评估分解反应-测定高能材料的热稳定性

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An advanced kinetic study on the thermal behaviour of pyrotechnic ignition mixtures has been carried out by differential scanning calorimetry using different B/KNO3 mixtures (50:50, 30:70, 20:80) as a model reaction. The experimental conditions applied (isochoric conditions/closed crucibles and isobaric conditions/open crucibles) as well as the composition of the mixtures noticeably influences the relative thermal stabilities of the energetic materials. The kinetic study focused on the prediction of the thermal stability of the different mixtures both in extended temperature ranges and under temperature conditions at which ordinary investigation would be very difficult. Using advanced numerical tools [1], thermal ageing and influence of the complex thermal environment on the heat accumulation conditions were computed. This can be done for any surrounding temperature profile such as isothermal, non-isothermal, stepwise, modulated, shock, adiabatic conditions and additionally for temperature profiles reflecting real atmospheric temperature changes (yearly temperature profiles of different climates with daily minimal and maximal fluctuations). Applications of accurate decomposition kinetics enabled the determination of the time to maximum rate under adiabatic conditions (TMRad) with a precision given by the confidence interval of the predictions. This analysis can then be applied for the examination of the effects of the surrounding temperature for safe storage or transportation conditions (e.g. determination of the safe transport or storage temperatures).
机译:通过使用不同的B / KNO3混合物(50:50、30:70、20:80)作为模型反应的差示扫描量热法,对烟火点火混合物的热行为进行了高级动力学研究。所施加的实验条件(等速条件/密闭坩埚和等压条件/敞开坩埚)以及混合物的组成显着影响高能材料的相对热稳定性。动力学研究的重点是预测不同混合物在扩展温度范围内和在常规研究非常困难的温度条件下的热稳定性。使用先进的数值工具[1],计算了热老化和复杂热环境对蓄热条件的影响。可以针对任何周围的温度曲线(例如等温,非等温,逐步,调制,冲击,绝热条件)进行此操作,此外,还可以针对反映实际大气温度变化的温度曲线(不同气候的年度温度曲线,每天的最小和最大波动)进行此操作。精确分解动力学的应用使得能够确定绝热条件下最大速率的时间(TMRad),其精确度由预测的置信区间给出。然后可以将该分析用于检查环境温度对安全存储或运输条件的影响(例如确定安全运输或存储温度)。

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