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Increased charcoal yield & production of lighter oils from the slow pyrolysis of biomass

机译:由于生物质的缓慢热解,提高了木炭的产量并生产了轻质油

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摘要

In an effort to reduce CO2 emissions from solid fuels, a considerable amount of research is going into how improve the manufacturing processes and product properties of the products from pyrolysis. One aspect that is often overlooked is the production of charcoal for cooking and soil remediation, which is an inefficient conversion process. There is considerable interest into using additives to increase charcoal yields, and based on the observation from fast pyrolysis work that certain catalyst tar cracking pathways can deposit considerable amounts of coke on the surface of the catalyst, there is a potential application to slow pyrolysis processes producing charcoal. Alumino-silicate catalysts have been shown to have a relatively high tendency to do this. This work hypothesises that this catalysation can be applied to slow pyrolysis, with low cost alumino-silicate minerals, specially bentonite clay, which has been added to pine pyrolysis in concentrations up to 60% wt (against input biomass) at temperatures 300–700 °C.\ud\udThis study has shown that the use of bentonite clay minerals can be beneficial to the process, as there is an increase in the charcoal yield from biomass, whilst the proximate analysis of the charcoal shows little change from levels expected from biomass only pyrolysis. The conversion of oil to charcoal was more effective at high temperatures due to higher levels of oil cracking. At 700 °C with 60% clay loading, charcoal yield increased 16%wt (dry ash free basis) was seen, while at the same time 19% extra gas was produced at the expense of 35% of the oil from raw pine pyrolysis. This indicates fuel properties of the charcoal are predictable, and changes in yield considerable. At the same time, the abundance of lower molecular weight oils is increased (relative to 4-methyl phenol). It is though that pyrolysis oil reacts with the clay, causing the heavier tars to disproportionate into charcoal and gas.
机译:为了减少固体燃料的二氧化碳排放量,正在进行大量研究,以研究如何改善热解产物的制造工艺和产物性能。通常被忽视的一个方面是用于烹饪和土壤修复的木炭生产,这是一种效率低下的转化过程。使用添加剂来提高木炭收率引起了极大的兴趣,并且根据快速热解工作的观察结果,某些催化剂的焦油裂解途径会在催化剂表面沉积大量的焦炭,因此有可能应用于缓慢的热解过程中木炭。铝硅酸盐催化剂已显示出具有较高的这样做趋势。这项工作的假设是,这种催化作用可用于缓慢的热解过程,其中包括低成本的铝硅酸盐矿物,特别是膨润土,这种粘土在300-700°C的温度下以高达60%wt(相对于输入生物质)的浓度被添加到松木热解中。 C. \ ud \ ud这项研究表明,膨润土粘土矿物的使用可能有益于该工艺,因为生物质的木炭产量增加,而对木炭的近期分析表明,与生物质预期的水平相比变化不大只有热解。由于较高程度的油裂化,在高温下将油转化为木炭更有效。在700℃,粘土含量为60%的情况下,木炭收率提高了16%wt(基于无灰分),而同时又产生了19%的额外气体,而原始松木的热解却消耗了35%的油。这表明木炭的燃料性质是可预测的,并且产率的变化相当大。同时,低分子量油的含量增加了(相对于4-甲基苯酚)。尽管热解油会与粘土发生反应,从而使较重的焦油不成比例地分解为木炭和气体。

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