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生物质在循环多隔室鼓泡流化床气化炉/燃烧器中的热载蒸汽气化-新型反应器概念。

Allothermal steam gasification of biomass in cyclic multi-compartment bubbling fluidized-bed gasifier/combustor - new reactor concept.

机构信息

Department of Chemical Engineering, Laval University, Québec, Canada G1V 0A6.

出版信息

Bioresour Technol. 2010 May;101(9):3194-208. doi: 10.1016/j.biortech.2009.12.023. Epub 2010 Jan 13.

Abstract

A new reactor concept of allothermal cyclic multi-compartment fluidized bed steam biomass gasification is proposed and analyzed numerically. The concept combines space and time delocalization to approach an ideal allothermal gasifier. Thermochemical conversion of biomass in periodic time and space sequences of steam biomass gasification and char/biomass combustion is simulated in which the exothermic combustion compartments provide heat into an array of interspersed endothermic steam gasification compartments. This should enhance unit heat integration and thermal efficiency and procure N(2)-free biosyngas with recourse neither to oxygen addition in steam gasification nor contact between flue and syngas. The dynamic, one-dimensional, multi-component, non-isothermal model developed for this concept accounts for detailed solid and gas flow dynamics whereupon gasification/combustion reaction kinetics, thermal effects and freeboard-zone reactions were tied. Simulations suggest that allothermal operation could be achieved with switch periods in the range of a minute supporting practical feasibility for portable small-scale gasification units.

摘要

提出并数值分析了一种新的热循环多区流化床蒸汽生物质气化的反应堆概念。该概念结合了空间和时间的离域化,以接近理想的热气化炉。在蒸汽生物质气化和炭/生物质燃烧的周期性时间和空间序列中模拟生物质的热化学转化,其中放热燃烧区为一系列交错的吸热蒸汽气化区提供热量。这应该提高单位热集成和热效率,并获得不含 N(2)的生物合成气,既不需要在蒸汽气化中添加氧气,也不需要烟道气和合成气之间接触。为这个概念开发的动态、一维、多组分、非等温模型考虑了详细的固体和气体流动动力学,在此基础上,结合了气化/燃烧反应动力学、热效应和自由空域区反应。模拟表明,热操作可以在一分钟的范围内实现,这为便携式小规模气化装置的实际可行性提供了支持。

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