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Cold model testing of an innovative dual bubbling fluidized bed steam gasifier

机译:一种创新的双泡流化床蒸汽气化器的冷模型测试

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Biomass gasification by a dual fluidized bed reactor is a very promising process to produce a hydrogen rich syngas from biomass wastes. In this process, the bed material circulation must be enough to transport heat from the combustor to the steam gasifier, and at the same time siphons/loop-seals must be properly designed to avoid gas leakage between the two reactor chambers (such as N-2 from the combustor to the gasifier). A cold model of an innovative pilot scale dual bubbling fluidized bed gasifier (100 kWth as biomass input) has been realized. The Hybrid Lagrangian Particle Tracking (HLPT) technique and tracer gas analysis, both applied to the cold model, have been used to evaluate the flow rate of bed material circulation and the gas leakage between the steam gasification and the combustion chambers. The results have shown that the bed material circulation is 2-3 times the minimum required to assure allothermal gasification, while gas leakage is negligible for every operating condition evaluated experimentally.
机译:双流量化床反应器的生物质气化是一种非常有前途的方法,可以从生物质废物中产生富含氢的合成气。在该过程中,床材料循环必须足以将热量从燃烧器输送到蒸汽气化器,同时必须适当地设计SIPHONS /环 - 密封,以避免两个反应器室之间的气体泄漏(例如N- 2从燃烧器到气化器)。已经实现了一种创新的飞行员标尺双鼓泡流化床气化器(作为生物质输入100 kWth)的冷模型。施加到冷模型的混合拉格朗日粒子跟踪(HLPT)技术和示踪气体分析已被用于评估床材料循环的流速和蒸汽气化与燃烧室之间的气体泄漏。结果表明,保证液体气化所需的最小值的床材料循环是2-3倍,同时对实验评估的每种操作条件漏气可忽略不计。

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