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Pyrolysis of switchgrass (Panicum virgatum) harvested at several stages of maturity

机译:在成熟的几个阶段收获的柳枝((Panicum virgatum)的热解

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The pyrolysis of switchgrass (Panicum virgatum) of the cultivar, "Cave-in-Rock" harvested at three stages of physiological maturity was studied in a PY-GC/MS system at the 600-1050℃ temperature range. Under these conditions, the decomposition was complete within 20 s yielding char, and two sets of pyrolysis gas, condensable and non-condensable. The former consisted of acetaldehyde (CH_3CHO), acetic acid (CH_3COOH) and higher molecular weight compounds possibly from the hydroxyl group and from the methoxy groups of the cell wall components. The non-condensable gases were mainly CO, CO_2 and C_1-C_3 hydrocarbons. For these, there was a 900℃ temperature boundary where dramatic change occurred in their evolution rates. Below this temperature, CO_2 decreased but CO and the C_1-C_3 hydrocarbons increased almost linearly with temperature. Above this temperature boundary, the hydrocarbons leveled off but there was a rapid rise in CO and CO2 evolution at a constant CO/CO_2 ratio. These suggest the appearance of secondary or tertiary pyrolysis reactions involving rearrangement and release of CO and hydrocarbons prior to this temperature boundary and the release of CO and CO_2 from the tightly bond oxygen functionalities including C-C bonds thereafter. At < 750℃, there were modest increases in condensable gas yield and decrease in non-condensable gas due to differences in plant maturity at harvest. However, the effect of switchgrass physiological maturity on gas yield was statistically insignificant at high temperatures. The energy content of the non-condensable gas measured was about 68% of the gross energy content of the biomass for the early harvest crop and 80% for the mature crop. The activation energy for the decomposition, estimated assuming first order reaction kinetics, showed a linear increase with plant physiological maturity. The results demonstrate that physiological maturity at harvest of switchgrass biomass can result in different concentrations of pyrolysis products at different temperatures. These results also demonstrate the need for additional research with a broader array of herbaceous biomass materials to develop a better understanding of the synergies of crop cultivation, harvesting and processing of dedicated herbaceous biomass energy crops during their thermochemical conversion.
机译:在600-1050℃的温度范围内,在PY-GC / MS系统中研究了在生理成熟的三个阶段收获的柳枝switch(Panicum virgatum)的热解过程。在这些条件下,分解在20 s内完成,生成了焦炭和两组热解气,可冷凝和不可冷凝。前者由乙醛(CH_3CHO),乙酸(CH_3COOH)和更高分子量的化合物组成,这些化合物可能来自细胞壁成分的羟基和甲氧基。不可凝气体主要为CO,CO_2和C_1-C_3碳氢化合物。对于这些,有一个900℃的温度边界,其演化速率发生了巨大变化。在此温度以下,CO_2降低,但CO和C_1-C_3碳氢化合物几乎随温度线性增加。在此温度边界之上,碳氢化合物趋于平稳,但在恒定的CO / CO_2比下,CO和CO2的释放量迅速增加。这些表明出现第二或第三级热解反应,涉及在该温度边界之前重排和释放CO和烃,以及随后从包括C-C键的紧密键合的氧官能团释放CO和CO_2。在<750℃时,由于收获时植物成熟度的差异,可凝性气体产量适度增加,而不可凝性气体则有所减少。但是,柳枝physiological生理成熟度对产气量的影响在高温下在统计学上不显着。测得的不可冷凝气体的能量含量约为早期收获作物的生物质总能量的68%,成熟作物约为80%。假定一级反应动力学估计的分解活化能随植物生理成熟度呈线性增加。结果表明,柳枝biomass生物量收获时的生理成熟可以导致在不同温度下不同浓度的热解产物。这些结果还表明,需要对更多种类的草本生物量材料进行更多研究,以更好地理解作物种植,收获和专用草本生物量能源作物在热化学转化过程中的协同作用。

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