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首页> 外文期刊>Fuel Processing Technology >CFD simulation and experimental validation of co-combustion of chicken litter and MBM with pulverized coal in a flow reactor
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CFD simulation and experimental validation of co-combustion of chicken litter and MBM with pulverized coal in a flow reactor

机译:流化床中鸡粪和MBM与煤粉混合燃烧的CFD模拟和实验验证

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摘要

The influence of co-combustion of solid biomass fuels with pulverized coal on burnout and CO emissions was studied using a flow reactor. The thermal input on a fuel feeding basis of the test rig was approximately 7 kW. Accompanied with the measurements, a reactor model using the CFD code AIOLOS was set up and first applied for two pure coal flames (with and without air staging). Reasonable agreement between measurements and simulations was found. An exception was the prediction of the CO concentration under sub-stoichiometric conditions (primary zone). As model input for the volatile matter release, the HTVM (high temperature volatile matter as defined by IFRF [IFRF, www.handbook.ifrf.net/handbook/ glossary.html. [1]]) was used. Furthermore, a relatively slow CO oxidation rate obtained from the literature and the ERE (Extended Resistance Equation) model for char combustion were selected. Furthermore, the model was used for simulating co-firing of coal with chicken litter (CL) and meat and bone meal (MBM). The conditions applied are relevant for future co-firing practice with high thermal shares of secondary fuels (larger than 20%). The major flue gas concentrations were quite well described, however, CO emission predictions were only qualitatively following the measured trends when O2 is available and severely under-predicted under substoichiometric conditions. However, on an engineering level of accuracy, and concerning burnout, this work shows that co-combustion of the fuels can reasonably well be described with coal combustion sub-models.
机译:使用流动反应器研究了固体生物质燃料与煤粉共燃烧对燃尽和CO排放的影响。以测试设备的燃料供给为基础的热输入约为7 kW。伴随这些测量,建立了使用CFD代码AIOLOS的反应堆模型,该模型首先应用于两个纯煤火焰(有和没有空气分级)。发现测量和模拟之间有合理的一致性。一个例外是在低于化学计量比的条件下(主要区域)对CO浓度的预测。作为挥发性物质释放的模型输入,使用了HTVM(IFRF [IFRF,www.handbook.ifrf.net / handbook / lossary.html。[1]]定义的高温挥发性物质)。此外,选择了从文献获得的相对较慢的CO氧化速率和用于焦炭燃烧的ERE(扩展电阻方程)模型。此外,该模型还用于模拟煤与鸡粪(CL)和肉骨粉(MBM)共烧。所应用的条件与将来的二次燃烧实践有关,二次燃烧的热份额较高(大于20%)。主要烟气浓度已被很好地描述,但是,当有氧气存在时,CO排放预测仅定性地遵循所测得的趋势,并且在亚化学计量条件下严重低估了排放量。但是,就工程精度而言,并涉及燃尽,这项工作表明,可以用煤燃烧子模型合理地描述燃料的共燃烧。

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