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Numerical study on thermal oxidation of lean coal mine methane in a thermal flow-reversal reactor

机译:热流转反应器中瘦煤矿甲烷热氧化的数值研究

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摘要

This paper presents a three-dimensional numerical investigation on thermal oxidation of lean coal mine methane in a thermal flow-reversal reactor by the finite volume method. The effects of channel length, feed methane concentration, inlet velocity and cycle time on the reactor behavior were analyzed. Results show that the temperature distributions and methane concentration profiles in the reverse-flow semicycle are mirror images of the ones in the forward-flow semicycle. Thus the cycle for the cyclic steady state is symmetrical. The maximum temperature of the reactor rises significantly with the increases of methane concentration and inlet velocity, and it is nearly unchanged with the increases of the channel length and cycle time. Long channel length, high feed methane concentration, low inlet velocity and short cycle time could achieve a wider high temperature zone in the reactor. The minimum feed methane concentration for self-maintained running rises dramatically with the decrease of channel length and the increase of inlet velocity, and it is almost not affected by the change in cycle time. For a desired minimum feed methane concentration of 0.18 vol.% when v(in) = 1 m/s, the required channel length should not be less than 1.8 m.
机译:本文提出了通过有限体积法在热流转反应器中瘦煤矿甲烷热氧化的三维数值研究。分析了通道长度,进料甲烷浓度,入口速度和循环时间对反应器行为的影响。结果表明,逆流半覆盖的温度分布和甲烷浓度曲线是正向流动半循环中的镜像。因此,循环稳态的循环是对称的。随着甲烷浓度和入口速度的增加,反应器的最高温度显着上升,并且随着通道长度和循环时间的增加几乎不变。长通道长度,高进料甲烷浓度,低入口速度和短循环时间可以在反应器中实现更宽的高温区。自维持运行的最小饲料甲烷浓度随着通道长度的降低和入口速度的增加而显着升高,并且几乎不受循环时间变化的影响。对于所需的最小饲料甲烷浓度为0.18体积%。当V(in)= 1 m / s时%时,所需的通道长度不应小于1.8米。

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