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Accuracy of Heat-Release Rate Measured in Microscale Combustion Calorimetry

机译:微量燃烧量热法测量的放热速率精度

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The ASTM standard method for measuring heats of combustion of plastics in microscale combustion calorimetry (MCC) by the oxygen-consumption principle uses only the volumetric flow rate and oxygen volume fraction exiting a premixed combustor in the calculation. The carbon dioxide (CO_2) generated by complete combustion replaces some or all of the oxygen consumed from the dry gas stream depending on the atomic composition of the fuel, so it can change the volumetric flow rate and affect the flow-meter response, which is typically calibrated for pure nitrogen. Consequently, the presence of CO_2 in the combustion stream causes a systematic error (bias) in the heat-of-combustion measurement that increases monotonically with the initial oxygen concentration. Accounting for volume changes using the combustion stoichiometry is sensitive to the atomic composition of the fuel and is still subject to the CO_2 bias in flow-meter response, which can be up to 3 %. Accounting for volume changes using both the initial and final flow rates in the calculation and correcting the flow-meter response for CO_2 using an average combustion stoichiometry is more accurate and less sensitive to material composition. Heats of combustion computed by the new method are in quantitative agreement with theoretical values.
机译:在ASTM标准方法中,通过耗氧原理在微型燃烧量热法(MCC)中测量塑料的燃烧热,在计算中仅使用离开预混燃烧器的体积流量和氧气体积分数。完全燃烧产生的二氧化碳(CO_2)替代了干燥气流中消耗的部分或全部氧气,具体取决于燃料的原子组成,因此它可以改变体积流量并影响流量计的响应,即通常针对纯氮气进行校准。因此,燃烧流中CO_2的存在会导致燃烧热测量中的系统误差(偏差),该误差随初始氧气浓度单调增加。使用燃烧化学计量法来计算体积变化对燃料的原子组成很敏感,并且流量计响应中的CO_2偏差仍可能高达3%。在计算中使用初始流量和最终流量来考虑体积变化,并使用平均燃烧化学计量法校正CO_2的流量计响应更加准确,并且对材料成分的敏感性降低。用新方法计算出的燃烧热与理论值在数量上是一致的。

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