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Modeling pyrolysis-induced microstructural changes in biomass: A cellular automata approach

机译:模拟热解引起的生物质微结构变化:一种细胞自动机方法

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Lignocellulosic biomass is a chemically and morphologically heterogeneous material. This heterogeneity is in part responsible for the vast number of thermal decomposition products seen in pyrolysis events. While modeling of biomass pyrolysis has been a subject of much research in past years at length-scales ranging from macro to molecular, the majority of these works have focused on a range of continuum-based approaches. Though effective at capturing global outcomes, these approaches are less tractable as frameworks for capturing microstructural effects and upscaling molecular information. This work demonstrates the use of kinetic-cellular automata (k-CA) as an alternative platform for the modeling and simulation of biomass pyrolysis. Asides from being effective at capturing transport and chemical processes in highly heterogeneous system, k-CA is capable of modeling microstructural changes that occur as a result of chemical and physical transformations. A number of benchmark trials demonstrated the convergence of the k-CA to global continuum outcomes. Application of the k-CA to actual two-dimensional (2-D) biomass microstructures show promise for this platform as an intermediate length-scale tool capable of predicting char morphologies that mimic experimental outcomes at length-scales between those of atomistic events and those governed by macroscopically averaged approaches.
机译:木质纤维素生物质是化学和形态上异质的材料。这种异质性部分地导致了热解事件中看到的大量热分解产物。尽管过去几年来生物质热解建模一直是许多研究的主题,其长度范围从宏观到分子,但这些工作大多数都集中在一系列基于连续介质的方法上。这些方法虽然可以有效地获取全球成果,但作为捕获微观结构效应和扩大分子信息规模的框架,其处理方法却较难处理。这项工作演示了动力学细胞自动机(k-CA)作为生物质热解建模和仿真的替代平台的使用。除了可以有效捕获高度异构系统中的运输和化学过程外,k-CA还能够对由于化学和物理转化而发生的微观结构变化进行建模。许多基准试验证明了k-CA与全球连续性结果的融合。 k-CA在实际的二维(2-D)生物量微观结构中的应用表明该平台有望作为一种中间长度尺度工具,能够预测炭原子形态,以模拟原子结果与原子事件之间的长度尺度的实验结果。由宏观平均方法控制。

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