Rollinson Andrew N, Williams Orla
Department of Engineering , University of Nottingham , Energy Technologies Building, Innovation Park, Triumph Road, Nottingham NG7 2TU , UK.
R Soc Open Sci. 2016 May 25;3(5):150578. doi: 10.1098/rsos.150578. eCollection 2016 May.
Samples of torrefied wood pellet produced by low-temperature microwave pyrolysis were tested through a series of experiments relevant to present and near future waste to energy conversion technologies. Operational performance was assessed using a modern small-scale downdraft gasifier. Owing to the pellet's shape and surface hardness, excellent flow characteristics were observed. The torrefied pellet had a high energy density, and although a beneficial property, this highlighted the present inflexibility of downdraft gasifiers in respect of feedstock tolerance due to the inability to contain very high temperatures inside the reactor during operation. Analyses indicated that the torrefaction process had not significantly altered inherent kinetic properties to a great extent; however, both activation energy and pre-exponential factor were slightly higher than virgin biomass from which the pellet was derived. Thermogravimetric analysis-derived reaction kinetics (CO2 gasification), bomb calorimetry, proximate and ultimate analyses, and the Bond Work Index grindability test provided a more comprehensive characterization of the torrefied pellet's suitability as a fuel for gasification and also other combustion applications. It exhibited significant improvements in grindability energy demand and particle size control compared to other non-treated and thermally treated biomass pellets, along with a high calorific value, and excellent resistance to water.
通过一系列与当前及近期废物能源转化技术相关的实验,对低温微波热解生产的烘焙木质颗粒样品进行了测试。使用现代小型下行式气化炉评估运行性能。由于颗粒的形状和表面硬度,观察到了优异的流动特性。烘焙颗粒具有高能量密度,尽管这是一个有益的特性,但这突出了下行式气化炉目前在原料耐受性方面的不灵活性,因为在运行期间无法在反应器内承受非常高的温度。分析表明,烘焙过程在很大程度上没有显著改变其固有动力学特性;然而,活化能和指前因子均略高于制成颗粒的原始生物质。热重分析得出的反应动力学(二氧化碳气化)、弹式量热法、近似分析和最终分析以及邦德功指数可磨性测试,更全面地表征了烘焙颗粒作为气化燃料以及其他燃烧应用的适用性。与其他未处理和热处理的生物质颗粒相比,它在可磨性能量需求和粒度控制方面有显著改善,同时具有高热值和优异的耐水性。