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Canola meal moisture-resistant fuel pellets: Study on the effects of process variables and additives on the pellet quality and compression characteristics

机译:低芥酸菜籽粕防潮燃料颗粒:研究工艺变量和添加剂对颗粒质量和压缩特性的影响

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This study focuses on pelletization of waste canola meal biomass to increase the bulk density, thereby reducing the transportation and storage costs, thus provide better material feeding in gasification reactors with less dust formation. The effects of feed constituents of canola meal such as protein, fiber, fat, lignin and feed moisture content as well as added binder, lubricant and densification process parameters on the strength and durability of the densified product are investigated. The increased durability (99%) of canola meal pellets was a result of added binder (5 wt%) and the inherent protein (40 wt%) and lignin (12 wt%) content in the feed. From the compression data at different temperature and pressure, Kawakita and Ludde model (1971) was developed to classify the feed material into groups. The R-2 value >= 0.999 showed good model fit. It was found that at temperature >70 degrees C, the particle undergoes rearrangement followed by fragmentation and particle plastic deformation during the compression process. The effects of coating agent on pellet durability, hardness and moisture uptake were studied to produce moisture. resistant pellets. Finally, the pellets were gasified in a fixed bed reactor using different gasifying agents such as steam, oxygen (O-2) and carbon dioxide (CO2) and their effects were assessed. Carbon dioxide was found to give maximum carbon efficiency (CE) up to 82.7% and 50.7 MJ/m(3) LHV of gas at a temperature of 750 degrees C and equivalence ratio (ER) of 0.4., whereas O-2 gave 66.5% of CE with 44.7 MJ/m(3) LHV of gas at 650 degrees C and 0.4 ER and steam produced gas with LHV 40.8 MJ/m(3) with CE 27.4% at 650 degrees C and 0.2 ER. Thus, by producing moisture-resistant canola meal pellets with reasonable fuel characteristics, pelletization of canola meal provides a promising alternative for the utilization of canola meal waste as an alternative source of renewable energy. (C) 2014 Elsevier B.V. All rights reserved.
机译:这项研究的重点是将芥花油菜粕生物质进行颗粒化以增加堆积密度,从而降低运输和存储成本,从而为气化反应器中更好的物料进料提供了更少的粉尘。研究了低芥酸菜粕的饲料成分,如蛋白质,纤维,脂肪,木质素和饲料中的水分含量,以及添加的粘合剂,润滑剂和致密化工艺参数对致密化产品强度和耐久性的影响。双低菜粕的耐用性提高(99%)是由于添加了粘合剂(5 wt%)和饲料中固有蛋白质(40 wt%)和木质素(12 wt%)的结果。根据不同温度和压力下的压缩数据,开发了Kawakita和Ludde模型(1971年)以将进料分为几类。 R-2值> = 0.999表明模型拟合良好。发现在> 70℃的温度下,颗粒在压缩过程中经历重排,随后碎裂和颗粒塑性变形。研究了包衣剂对颗粒耐久性,硬度和水分吸收的影响,以产生水分。抗药丸。最后,使用不同的气化剂(例如蒸汽,氧气(O-2)和二氧化碳(CO2))在固定床反应器中将颗粒气化,并评估其效果。发现在温度为750摄氏度,当量比(ER)为0.4时,二氧化碳的最大碳效率(CE)高达82.7%和50.7 MJ / m(3)气体的LHV,而O-2的最大碳效率为66.5。具有650°C和0.4 ER的44.7 MJ / m(3)LHV气体的CE的百分比,具有650°C和0.2 ER的CE 27.4%的LHV 40.8 MJ / m(3)的蒸汽产生的气体。因此,通过生产具有合理燃料特性的防潮油菜籽粒,油菜籽粒化为将油菜籽粕用作可再生能源的替代提供了有希望的选择。 (C)2014 Elsevier B.V.保留所有权利。

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