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Burning velocity measurements of methane-oxygen-argon mixtures and an application to extend methane-air burning velocity measurements

机译:甲烷-氧气-氩气混合物的燃烧速度测量及其在扩展甲烷-空气燃烧速度测量中的应用

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摘要

Burning velocities of methane-oxygen-argon mixtures have been measured in two matched constant-volume chambers, one spherical and one cylindrical. Burning velocities in the spherical chamber were determined from the pressure rise using a thermodynamic model based on the conservation of mass and energy. Photographic observations made through end windows in the cylindrical chamber at early times were used to study the effects of flame curvature and stretch on the flame speed under constant pressure conditions. The cylindrical chamber was also used to investigate flame shape, cracking and wrinkling. Substitution of argon for the nitrogen in air increased the range of pressure and temperature at which measurements could be made. A correlation for the burning velocity of methane-oxygen-argon mixtures has been developed for the range of pressures from 1 to 40 atmospheres, unburned gas temperatures from 298 to 650 K and fuel-air equivalence ratios from 0.8 to 1.2. Using this correlation and previous results for methaneair mixtures, the burning velocities of methane-air mixtures have been extended to higher temperatures. The results are compared to other experimental measurements and theoretical predictions.
机译:甲烷-氧气-氩气混合物的燃烧速度已在两个匹配的恒定容积室(一个球形和一个圆柱形)中进行了测量。使用基于质量和能量守恒的热力学模型,根据压力上升来确定球形室中的燃烧速度。早期通过圆柱室中的端窗进行的摄影观察被用于研究在恒定压力条件下火焰曲率和拉伸对火焰速度的影响。圆柱室还用于研究火焰的形状,破裂和起皱。用氩气代替空气中的氮气会增加可进行测量的压力和温度范围。甲烷-氧气-氩气混合物的燃烧速度的相关性已针对1至40个大气压,298至650 K的未燃烧气体温度和0.8至1.2的燃料-空气当量比范围进行了开发。使用这种相关性和甲烷空气混合物的先前结果,甲烷空气混合物的燃烧速度已扩展到更高的温度。将结果与其他实验测量结果和理论预测值进行比较。

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