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Novel intermittent solid slug feeder for fast pyrolysis reactors: Fundamentals and modeling

机译:快速热解反应器的新型间歇式固体团料进料器:基本原理和模型

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To prevent plugging and help the raw biomass particles effectively penetrate and spread into the pyrolysis fluidized beds, one could inject the particles using intermittent slugs created by propelling loosely packed particles with gas pulses and transporting them along horizontal or inclined feeding pipes into the fluidized bed section of the reactor; this would combine the advantages of the low gas consumption of the screw feeders and the short residence time in high temperature zones of dilute phase feeders. Dried distillers' grain (DDG) and meat and bone meal residues (MBM) were selected as model feedstocks for experimental testing and modeling of a novel intermittent solid slug feeder technology. These feedstocks were chosen as much work has been done to attempt to process them into value-added products via fast pyrolysis, but they also possess very challenging flow characteristics and properties that are very different from each other (particle size, cohesivity, temperature sensitivity, density). As a result, creating a predictive model that can successfully model these challenging feedstocks is the basis to model any biomass of interest. The biomass flow in the feeding tube begins as an induced dense-phase flow and develops into a high velocity 'aerated bed flow'. Gas leakage, solid friction and force-momentum balances were considered in the model. The model was developed from experimental data collected with simplified plugs (modified nylon ball), as well as real biomass slug flow. Several important variables were identified. They included the material flow properties, the gas capacitance pulse pressure and volume, and the length and material of feeding tube. The goals of this study were to (a) characterize the fundamental dynamic behavior of the biomass slugs in the feeder, (b) maximize the solid-to-gas feeding ratio, and thus minimize energy consumption, (c) minimize the accumulation of "straggler" biomass material in the feeding tube between pulses, and thus preventing biomass pre-cooking in the feeding tube and plugging (d) develop and validate a predictive model for the slug velocity at any point in the feeding tube (and thus the maximum feeding tube length), that can be applied for feeder and reactor design for any biomass feedstock, and (e) identify future areas of work for the ICFAR intermittent solid feeder.
机译:为了防止堵塞并帮助原始生物质颗粒有效地渗透和扩散到热解流化床中,可以使用间歇性塞子注入颗粒,该间歇性塞子是通过用气体脉冲推动松散堆积的颗粒并将其沿着水平或倾斜的进料管输送到流化床部分而产生的反应堆的;这将结合螺旋进料器的低气体消耗和在稀相进料器的高温区域中的短停留时间的优点。选择干酒糟(DDG)和肉骨粉残留物(MBM)作为模型原料,以进行新型间歇性固体团块给料器技术的实验测试和建模。选择这些原料是因为已经做了很多工作,试图通过快速热解将它们加工成增值产品,但是它们还具有非常具有挑战性的流动特性和性质,彼此之间有很大不同(粒径,内聚力,温度敏感性,密度)。结果,创建可以成功地对这些具有挑战性的原料进行建模的预测模型是对任何目标生物质进行建模的基础。进料管中的生物质流以诱导的密相流开始,并发展为高速“充气床流”。在模型中考虑了气体泄漏,固体摩擦和力-动量平衡。该模型是根据简化塞子(改性尼龙球)收集的实验数据以及实际的生物质团块流量开发的。确定了几个重要的变量。它们包括物料的流动特性,气体电容脉冲压力和体积以及进料管的长度和物料。这项研究的目标是(a)表征进料器中生物质团块的基本动态行为,(b)最大化固体/气体进料比,从而最小化能耗,(c)最小化“在脉冲之间在进料管中散布“生物量”的生物质,从而防止进料管中生物质的预蒸煮和堵塞(d)开发并验证进料管中任意点的塞子速度的预测模型(从而获得最大进料量)管长度),可用于任何生物质原料的进料器和反应器设计,并且(e)确定ICFAR间歇式固体进料器的未来工作领域。

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