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A study on pulverized coal ignition using a two-stage flat-flame burner with a transition from a reducing environment to oxidizing environment

机译:从还原环境向氧化环境过渡的两级平焰燃烧器燃烧煤粉的研究

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Coal particles experience a transition from a reducing to oxidizing environment in the near-burner region of pulverized coal (pc) burners. For the first time, we report a fundamental study of ignition of a coal-particle stream experiencing a flame environment that transitions from a reducing to an oxidizing environment (termed reducing-to-oxidizing transition). High-speed videography is used to observe the particles in situ, and scanning electron microscopy is used to characterize the sampled particles. The effects of particle size on ignition are presented for four size bins for PRB subbituminous coal at nominal gas temperatures of 1800 K. The results show that the ignition behavior of particles in reducing-to-oxidizing conditions is different from that in purely oxidizing conditions. The reducing-to-oxidizing transition increases ignition delay time, on average, by more than 100% over those of oxidizing conditions. However, for particles below 150 um diameter, ignition delay time is relatively independent of particle size in either oxidizing or reducing-to-oxidizing conditions due to high heating rate. Hetero-homogeneous ignition mode is dominant in both environment, except for the 125-149 urn particle size range in oxidizing environment, where homogeneous-to-heterogeneous ignition occurs.
机译:在煤粉燃烧器附近的燃烧器区域,煤颗粒经历了从还原到氧化的转变。我们首次报告了对煤颗粒流着火的基础研究,该煤颗粒流经历了从还原环境转变为氧化环境(称为还原转变为氧化转变)的火焰环境。高速摄影术用于原位观察颗粒,而扫描电子显微镜则用于表征采样的颗粒。给出了公称气体温度为1800 K时PRB亚烟煤的4个粒度仓的粒度对着火的影响。结果表明,在还原氧化条件下,粒子的着火行为与纯氧化条件下的着火行为不同。与氧化条件相比,还原到氧化的过渡过程平均会使点火延迟时间增加100%以上。但是,对于直径小于150微米的颗粒,由于高加热速率,在氧化或还原-氧化条件下,点火延迟时间相对独立于颗粒尺寸。在这两种环境中,异质均相点火模式均占主导地位,但在氧化环境中会发生均相至异相点火,但粒径范围在125-149之间。

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