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Improvement of bio-oil yield and quality in co-pyrolysis of corncobs and high density polyethylene in a fixed bed reactor at low heating rate

机译:在低加热速率下改善固定床反应器中玉米饼和高密度聚乙烯的共热分解的生物油产量和质量

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Over the past few decades, interest in developing biomass-derived fuel has been increasing rapidly due to the decrease in fossil fuel reserves. Bio-oil produced by biomass pyrolysis however contains high oxygen compounds resulting in low calorific-value fuel and therefore requiring upgrading. In co-pyrolysis of the feed blend of plastics of High Density Polyethylene (HDPE) and biomass of corn cob particles, at some compositions free radicals from plastic decomposition containing more hydrogen radicals are able to bond oxygen radicals originating from biomass to reduce oxygenate compounds in the bio-oil thus increasing bio-oil quality. This phenomenon is usually called synergetic effect. In addition to that, the pattern of heating of the feed blend in the pyrolysis reactor is predicted to affect bio-oil quality and yield. In a batch reactor, co-pyrolysis of corncobs and HDPE requires low heating rate to reach a peak temperature at temperature rise period followed by heating for some time at peak temperature called holding time at constant temperature period. No research has been carried out to investigate how long holding time is set in co-pyrolysis of plastic and biomass to obtain high yield of bio-oil. Holding time may affect either crosslinking of free radicals in gas phase, which increases char product, or secondary pyrolysis in the gas phase, which increases non-condensable gas in the gas phase of pyrolysis reactor, both of which reduce bio-oil yield. Therefore, holding time of co-pyrolysis affects the mass rate of bio-oil formation as the pyrolysis proceeds and quality of the bio-oil. In the present work, effects of holding time on the yield and quality of bio-oil have been investigated using horizontal fixed bed of the feed blends at heating rate of 5°C, peak temperature of 500°C and N2 flow rate of 700 ml/minute. Holding time was varied from 0 to 70 minutes with 10 minutes interval. To investigate the effects of holding time, the composition of HDPE in the feed blend was varied 0, 50 and 100%, while the synergetic effect was investigated by varying the composition of HDPE in the feed blend 0, 25, 50, 75, and 100%. The results show that synergetic effect for non-oxygenate compound production started to work at 63% HDPE in the feed blend and beyond. It was observed that extension of holding time exceeding 0 minutes allowed increase of bio-oil production rate followed reduction of the rate. Pyrolysis of both the corncob feed and the feed blend containing 50% HDPE equally reached maximum bio-oil production rate at holding time of 50 minutes, while that of HDPE feed at 30 minutes. The result pertaining to holding time indicates that biomass in the feed blend governs crosslinking - secondary pyrolysis in the co-pyrolysis.
机译:在过去的几十年里,由于化石燃料储备的减少,开发生物质衍生燃料的兴趣已经迅速增加。然而,通过生物质热解产生的生物油含有高氧化合物,导致低热值燃料,因此需要升级。在高密度聚乙烯(HDPE)塑料的饲料混合物和玉米棒颗粒的生物质的共热分解中,在一些组合物中,含有更多氢自由基的塑料分解的自由基能够粘合源自生物质以减少含氧化合物的氧气。生物油因此增加生物油质量。这种现象通常称为协同作用。除此之外,预计热解反应器中的进料混合物的加热模式将影响生物油质和产率。在批量反应器中,玉米浦和HDPE的共热解需要低加热速率以在温度上升时段的峰值温度下达到峰值温度,然后在恒定温度期间在称为保持时间的峰值温度下加热一段时间。没有进行研究以研究塑料和生物质的共热分解中的长度保持时间,以获得高产的生物油。保持时间可能影响气相中自由基的交联,其增加了气相中的炭产物,或在气相中的次级热解,这增加了热解反应器的气相中的不可冷凝气体,这两者都会降低生物油产率。因此,持续的共热解的时间会影响生物油的质量率,因为生物油的热解继续和质量。在本作本作的情况下,使用5°C,峰值温度为500℃,N2流速为700毫升的饲料混合物的水平固定床,对生物油的产量和质量进行了对生物油的产量和质量的影响。 /分钟。保持时间从0到70分钟变化,10分钟间隔。为了研究保持时间的效果,进料混合物中HDPE的组成变化为0,50和100%,而通过改变饲料混合物0,25,50,75和100%。结果表明,非含氧化合物生产的协同作用开始在饲料混合物及超过63%HDPE下工作。观察到延长保持时间超过0分钟,允许增加生物油生产率,然后减少速率。玉米芯饲料的热解和含有50%HDPE的进料混合物在保持时间为50分钟时同样达到最大生物油生产速率,而HDPE饲料在30分钟内达到最大的生物油生产速率。与保持时间有关的结果表明饲料混合物中的生物质治理共热分解中的交联次级热解。

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