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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Numerical study of the effect of thermal boundary conditions and porous medium properties on the combustion in a combined porous-free flame burner
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Numerical study of the effect of thermal boundary conditions and porous medium properties on the combustion in a combined porous-free flame burner

机译:热边界条件和多孔介质特性对组合式无孔火焰燃烧器燃烧影响的数值研究

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摘要

The effect of wall thermal conditions, pre-heating of the inlet air–fuel mixture ( T_(in) ), and pore density of the porous medium (λ) on the stability limit and NO emission in a porous-free flame burner is numerically investigated. A reduced chemical mechanism and realizable k-ɛ turbulence model are used for the simulation. The numerical simulation is validated with the experimental data. The results show that the flame stability limit is extended with increasing the pore density while the maximum and minimum NO emissions are produced in pore densities of 8 ppc and 16 ppc, respectively. It is observed that the use of insulated wall condition causes the flame blow-off to occur at higher inlet velocities compared to that of the constant wall temperature condition. On the other hand, the use of constant wall temperature condition (cooled wall), causes flashback to occur in lower inlet velocities compared to that of the insulated wall. Constant wall temperature condition decreases NO emission in comparison with the insulated wall condition approximately by 18%. The flame stabilizes at higher inlet velocities and so stability limit is extended when inlet mixture temperature increases. This also causes NO emission to increase.
机译:在无孔火焰燃烧器中,壁热条件,进气空气-燃料混合物的预热(T_(in))和多孔介质的孔密度(λ)对稳定性极限和NO排放的影响是数字化的调查。模拟使用简化的化学机理和可实现的k-ɛ湍流模型。数值模拟得到了实验数据的验证。结果表明,随着孔密度的增加,火焰稳定极限得到扩展,而在8 ppc和16 ppc的孔密度下分别产生最大和最小NO排放。可以看出,与恒定壁温条件相比,使用绝缘壁条件会导致在更高的入口速度下发生火焰吹扫。另一方面,使用恒定壁温条件(冷却壁)会导致与绝缘壁相比较低的入口速度发生回火。恒定壁温条件与绝缘壁条件相比可减少NO排放约18%。火焰以较高的入口速度稳定,因此当入口混合物温度升高时,稳定性极限会延长。这也导致NO排放增加。

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