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首页> 外文期刊>Applied Energy >Investigation of microwave-assisted pyrolysis of biomass with char in a rectangular waveguide applicator with built-in phase-shifting
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Investigation of microwave-assisted pyrolysis of biomass with char in a rectangular waveguide applicator with built-in phase-shifting

机译:内置相移的矩形波导管中微波辅助炭生物质热解的研究

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摘要

Fast biomass pyrolysis is a promising technique for thermochemical conversion of biomass into chemicals and biofuels (bio-oil and syngas). Microwave heating can increase process efficiency. The effect of microwave absorber and microwave power level are studied for their effect on pyrolysis process temperature, product yields, and product composition. A novel microwave system was designed with a continuous sliding short enabling phase shifting to mitigate standing wave effects in the low loss load. Pyrolysis experiments on pine sawdust were carried out at varying microwave input powers (600, 900, 1200, and 1500 W) and with varying amounts of biochar added to the feedstock (0, 10, and 20% by weight) in a 4 x 3 full factorial experimental design. Pine sawdust without the aid of microwave absorber failed to reach pyrolysis temperatures by dielectric heating, only reaching 200 degrees C even at 1500 W power. Pyrolysis yields were correlated to absorbed power rather than input power as temperature is more strongly correlated to absorbed power. Addition of biochar was found to have a significant effect on the absorbed powers and resulting pyrolysis temperatures, increasing temperatures 4 fold from 0% to 10% char, however, no significant difference was found when char mixture was increased from 10 to 20%. Yields of char decreased with increasing absorbed microwave power, while non-condensable gas increased, indicating increased thermal cracking to non-condensable gases with increasing process temperature. Water-free bio-oil yields were found to increase with absorbed power. The liquid product from microwave pyrolysis of pine sawdust is composed primarily of phenols, with little changes in yield at all absorbed powers. Carbonyl functional groups and furans decreased while polyaromatics increased with increasing absorbed power due to the increased decomposition of lignin. The greatest net energy yields were observed for pyrolysis run at 900 W applied microwave power and 20% char.
机译:快速生物质热解是一种将生物质热化学转化为化学物质和生物燃料(生物油和合成气)的有前途的技术。微波加热可以提高工艺效率。研究了微波吸收剂和微波功率水平对热解过程温度,产物收率和产物组成的影响。设计了一种新颖的微波系统,该系统具有连续的滑动短路,可实现相移,以减轻低损耗负载下的驻波效应。松木屑的热解实验是在不同的微波输入功率(600、900、1200和1500 W)下进行的,并以4 x 3的比例向原料中添加了不同量的生物炭(0、10和20%重量)。全析因实验设计。没有微波吸收器的松木屑无法通过介电加热达到热解温度,即使在1500 W功率下也只能达到200摄氏度。热解产率与吸收功率而不是输入功率相关,因为温度与吸收功率更紧密相关。发现添加生物炭对吸收功率和产生的热解温度有显着影响,将温度从0%增至10%的碳增加4倍,但是,当炭混合物从10%增至20%时,没有发现显着差异。焦炭的收率随吸收微波功率的增加而降低,而不可冷凝的气体则增加,这表明随着过程温度的升高,对不可冷凝的气体的热裂解增加。发现无水生物油产量随着吸收功率的增加而增加。松木屑微波热解产生的液体产物主要由酚组成,在所有吸收功率下收率变化很小。由于木质素分解的增加,羰基官能团和呋喃减少,而多环芳烃随着吸收能力的增加而增加。在900 W施加的微波功率和20%的炭含量下进行热解时,观察到最大的净能量产率。

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