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Biomass fast pyrolysis in screw reactors: Prediction of spent coffee grounds bio-oil production through a monodimensional model

机译:螺杆反应器中的生物质快速热解:通过一维模型预测咖啡渣中的生物油产量

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In the context of renewable sources exploitation, the thermochemical conversion of biomass may give a significant contribution to the flexible and programmable production of electric and thermal power. From this perspective, the biomass fast pyrolysis conversion process is more than a promising technology but only few models have been developed so far to describe the behavior of a screw reactor system. This paper is thus focused on numerical modeling of a shaftless screw fast pyrolyzer with special attention on the residence time distribution and the definition of the kinetic framework, as well as the heat and mass transfer phenomena representation. A steady-state model with constant wall temperature has been developed to generate temperature profile and conversion patterns along the reactor. Residence Time Distribution evaluation has been developed as well to take into account non-ideal mass conveying characteristics of the proposed reactor design. The reaction framework, considering the conductive, convective and radiative heat transfer mechanisms, is based on a 4 parallel Distributed Activation Energy Model. The structure includes the three major biomass pseudo-component occurring in the biomass thermal degradation, namely cellulose hemicellulose and lignin, together with the moisture evaporation process. The numerical results are compared with results collected experimentally from the fast pyrolysis of spent coffee grounds in a lab-scale screw reactor. Numerical temperature profiles for both the gas and solid phase are in good agreement with the experimental ones. The peak bio-oil production has been observed in the range of 500 degrees C. The results also show a strong dependence of results on wall temperature and gas-solid heating rate.
机译:在可再生能源开发的背景下,生物质的热化学转化可为灵活和可编程的电力和热力生产做出重大贡献。从这个角度来看,生物质快速热解转化过程不只是一种有前途的技术,但到目前为止,只有很少的模型可以描述螺杆反应器系统的行为。因此,本文着重于无轴螺杆快速热解器的数值模型,特别关注停留时间分布和动力学框架的定义,以及传热和传质现象的表示。已经开发了具有恒定壁温的稳态模型,以沿反应器生成温度曲线和转换模式。还已经开发了停留时间分布评估,以考虑拟议的反应堆设计的非理想传质特性。考虑到传导,对流和辐射传热机理的反应框架基于4个并行的分布式活化能模型。该结构包括生物质热降解中发生的三种主要生物质假组分,即纤维素半纤维素和木质素,以及水分蒸发过程。将数值结果与在实验室规模的螺旋反应器中通过快速热解废咖啡渣得到的实验结果进行比较。气相和固相的数值温度曲线与实验结果吻合良好。在500摄氏度的范围内观察到生物油的峰值产量。结果还显示结果对壁温和气固加热速率的强烈依赖性。

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