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Numerical Study of Biomass Gasification in 3D Full-loop Circulating Fluidized Beds using a Eulerian Multi-fluid Model

机译:欧拉多流体模型在3D全回路循环流化床中生物质气化的数值研究

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A three-dimensional Eulerian Multi-Fluid Model (MFM) of biomass gasification in full-loop Circulating Fluidized Beds (CFBs) has been developed. The conservation equations of mass, momentum, and energy are solved by well-known Navier-Stokes formulation types. The Kinetic Theory of Granular Flow (KTGF), common chemical reactions in biomass gasification, and standard k-? turbulence model are considered. These equations are used to describe the spatial velocity, temperature, and concentration for each phase and species. The inter-solid phase heat-transfer mechanisms, which consist of direct solid-solid conduction and solid-solid conduction through fluid medium, are also considered. The results are compared to existing experimental data. It is demonstrated that the model which considers all inter-solid phase heat-transfer mechanisms provides better predictions in terms of synthetic gas (syngas) compositions than the model considering direct solid-solid conduction through contact area only and the model without solid-solid heat-transfer mechanisms. From this, hydrodynamics and heat and mass transfer inside this complex system are analyzed. The results can be useful for better design and optimization of biomass gasification in CFBs.
机译:建立了全循环循环流化床(CFB)中生物质气化的三维欧拉多流体模型(MFM)。质量,动量和能量的守恒方程由著名的Navier-Stokes公式类型求解。颗粒流动力学理论(KTGF),生物质气化中的常见化学反应和标准k-?考虑湍流模型。这些方程式用于描述每个相和每个物种的空间速度,温度和浓度。还考虑了固相间的传热机制,该机制包括直接固-固传导和通过流体介质的固-固传导。将结果与现有实验数据进行比较。结果表明,考虑到所有固相间传热机制的模型比仅考虑通过接触区域直接进行固-固传导和没有固-固热的模型提供了更好的关于合成气(合成气)组成的预测。 -转移机制。由此,分析了这个复杂系统内部的流体动力学以及传热和传质。该结果对于更好地设计和优化CFB中生物质气化很有用。

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