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Simulation of biomass gasification in a BFBG using chemical equilibrium model and restricted chemical equilibrium method

机译:使用化学平衡模型和限制化学平衡法在BFBG中的生物质气化模拟

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Biomass gasification in fluidized beds is a promising thermo-chemical conversion technology. Bubbling fluidized bed gasifier (BFBG) is considered in the present study, to specify an appropriate model for almond shell gasification. Therefore, the chemical equilibrium model (CEM) and restricted chemical equilibrium method (RCEM) are developed using Aspen Plus. Then, the accuracy of the results obtained from these two modelling approaches is evaluated by comparing with the experimental data. More consistent results are obtained by using RCEM. A sensitivity analysis study is also performed with the specified modelling approach (RCEM) to investigate the effect of operating parameters on the gasification performance. For this purpose, the range of the gasification temperature and steam to biomass ratio are extended and a new parameter (biomass moisture content) is incorporated into the parametric study. Increasing temperature is shown to have a positive effect on cold gas efficiency (CGE) while it has a negative effect on lower heating value (LHV). There is no considerable change in gas heating value and CGE above 850 degrees C. Both steam to biomass (S/B) ratio and biomass moisture content have a favorable effect on H-2 production. However, these parameters have adverse effect on gas heating value and CGE. LHV and CGE reach maximum values for S/B ratio of 0.5 and moisture content of 0.
机译:流化床中的生物质气化是一种有前途的热化学转换技术。在本研究中考虑鼓泡流化床气化器(BFBG),以指定适当的杏仁壳气化模型。因此,使用Aspen Plus开发了化学平衡模型(CEM)和受限制的化学平衡方法(RCEM)。然后,通过与实验数据进行比较来评估从这两个建模方法获得的结果的准确性。通过使用RCEM获得更一致的结果。还使用指定的建模方法(RCEM)进行敏感性分析研究,以研究操作参数对气化性能的影响。为此目的,延长了气化温度和蒸汽的气化温度和蒸汽的范围,并将新参数(生物量水分含量)结合到参数研究中。显示温度越来越大,对冷气效率(CGE)具有积极影响,而对较低的加热值(LHV)具有负面影响。在850℃以上的气体加热值和CGE没有相当大的变化。蒸汽到生物质(S / B)的比例和生物量水分含量对H-2产生有利影响。然而,这些参数对气体加热值和CGE具有不利影响。 LHV和CGE达到S / B比为0.5和含水量为0的最大值。

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