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Multi-Scale Modelling of Biomass Pyrolysis Processes

机译:生物质热解过程的多尺度建模

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Thermo-chemical decomposition of biomass to bio-energy via pyrolysis is a complex process. Several pyrolysis models have been proposed for predicting the yields of desired components as a function of operating conditions. These models, however, have not considered the overall effect of process parameters and hence, are not capable of accurately predicting product yields with variation in operating conditions. Consequently, there is requirement for developing comprehensive multi-scale models for studying the combined impact of various parameters during biomass conversion. In this study, a detailed particle scale model has been developed by coupling two-stage reaction mechanism with transport phenomena to account for the combined impact of different parameters on the conversion process. Simulations have been conducted for validating this model and analysing the effect of operating temperature and particle size variation on the biomass conversion time. Based on results, it has been concluded that both particle size and operating temperature affects the rate of biomass decomposition and it is required to optimally choose these parameters with other operating conditions for getting complete conversion of biomass.
机译:通过热解的生物质对生物能的热化学分解是一种复杂的方法。已经提出了几种热解模型,用于预测所需组分的产量作为操作条件的函数。然而,这些模型尚未考虑过程参数的整体效果,因此,不能精确地预测产品产量,在操作条件下变化。因此,有要求开发综合多尺度模型,用于研究生物量转换期间各种参数的组合影响。在该研究中,通过将两级反应机制与运输现象耦合,以考虑不同参数对转换过程的综合影响而开发了详细的粒子规模模型。已经进行了用于验证该模型的仿真,并分析工作温度和粒度变化对生物质转换时间的影响。基于结果,已经得出结论认为,粒度尺寸和工作温度都会影响生物量分解的速率,并且需要在其他操作条件下最佳选择这些参数以完全转换生物质。

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