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Multi-fluid CFD modeling of biomass gasification in polydisperse fluidized-bed gasifiers

机译:多分散流化床气化炉中生物质气化的多流体CFD建模

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This work presents an Eulerian computational fluid dynamics (CFD) model of biomass gasification for use in fluidized-bed gasifier (FBG) simulations. The physical and chemical processes of particle gasification and their interaction with the reactive gas flow are modeled within a multi-fluid framework derived from kinetic theory of granular flows. The transport equations of continuous solid phases and species mass fraction of CO, CO2, CH4, H2, H2O,O2, N2, tar, char, and ash are coupled with chemical kinetic models, which describe moisture vaporization, particle devolatilization, homogeneous volatile reaction, heterogeneous char oxidation and char gasification. Continuously variable particle density due to volatilization of lighter components and chemical reactions is implemented to account for the evolution of reacting particles' physical properties. A time-splitting method is employed for decoupling the chemical source from convection. A time-step adaption and restart procedure is implemented to provide the solution stability for strong chemical reaction and to achieve numerical solution efficiency for energy reactor simulations in the time-splitting approach. The chemical source terms based on chemical kinetics are implemented with first-order accuracy in the finite-volume framework. The CFD model is used to simulate wood gasification using air as a fluidization agent in a lab-scale FBG. The simulation results provide detailed information on the dynamic particle processes, char elutriation, and gas composition at the reactor outlet Operating conditions of different air/biomass mass flow ratio, reactor temperature, and biomass moisture content are simulated and analyzed as to their influence on gas composition and product yields at the gasifier outlet
机译:这项工作提出了一种用于流化床气化炉(FBG)模拟的生物质气化的欧拉计算流体动力学(CFD)模型。颗粒气化的物理和化学过程及其与反应气流的相互作用是在多流体框架内建模的,该框架源自颗粒流的动力学理论。连续固相的输运方程和CO,CO2,CH4,H2,H2O,O2,N2,焦油,木炭和灰分的物质质量分数与化学动力学模型耦合,该模型描述了水分蒸发,颗粒挥发,均匀挥发反应,异质炭氧化和炭气化。由于较轻组分的挥发和化学反应,可实现连续可变的颗粒密度,以说明反应颗粒物理性质的演变。采用时间分割方法将化学源与对流分离。实施了时间步调整和重新启动程序,以提供强化学反应的解稳定性,并在时间分割方法中为能源反应器仿真实现数值解效率。基于化学动力学的化学源项在有限体积框架中以一阶精度实现。 CFD模型用于在实验室规模的FBG中使用空气作为流化剂来模拟木材的气化。仿真结果提供了有关反应器出口处动态粒子过程,炭析出和气体成分的详细信息,模拟并分析了不同空气/生物质质量比,反应器温度和生物质水分含量对气体的影响气化炉出口处的成分和产品产量

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