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Optimization of synthesis gas production in the biomass chemical looping gasification process operating under auto-thermal conditions

机译:在自动热条件下,在生物质化学环状气化过程中优化合成气产量的优化

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Biomass Chemical Looping Gasification (BCLG) is a promising route to obtain N2 free high purity syngas. In this work, heat and mass balances were solved to determine the auto-thermal operation conditions that maximize the syngas yield in a BCLG system. A Fe-based oxygen carrier and pine wood as fuel were considered for the simulation. Two methods to control the transference of oxygen between the air reactor (AR) and fuel reactor (FR) were analysed. Syngas yield was higher controlling the oxygen fed to the AR by the air flow (OCM-1) than controlling the oxygen supplied to the FR by the oxygen carrier circulation flow (OCM-2).The influence of different operating parameters, such as oxygen carrier transport capacity, preheating of gases fed to the system, steam/biomass ratio, fuel reactor temperature, was also analysed. It is noteworthy that working with OCM-2 it is necessary to optimize the amount of active phase in synthetic oxygen carriers or to dilute the natural oxygen carriers (ores, wastes) with an inert material to maintain realistic temperature difference values between reactors. Therefore, it is recommended to operate with the OCM-1 as it has the advantages of a more flexible operation and the possibility of obtaining pure N2. (C) 2021 Elsevier Ltd. All rights reserved.
机译:生物质化学环状气化(BCLG)是获得N2自由高纯度合成气的有希望的途径。在这项工作中,解决了热量和质量平衡以确定最大化BCLG系统中的合成气产量的自动热操作条件。考虑了一种基于Fe的氧气载体和松木作为燃料进行了模拟。分析了控制空气反应器(Ar)和燃料反应器(FR)之间氧的转移的两种方法。通过空气流量(OCM-1)控制馈送到AR的氧气的合成气产率较高,而不是通过氧载流子循环流量(OCM-2)控制提供给FR的氧气。不同操作参数的影响,如氧气还分析了载体运输能力,对系统,蒸汽/生物质比,燃料反应器温度进行预热,蒸汽/生物质比,燃料反应器温度。值得注意的是,使用OCM-2,有必要优化合成氧载体中的活性相的量,或者用惰性材料稀释天然氧载体(矿石,废物)以保持反应器之间的现实温差值。因此,建议使用OCM-1操作,因为它具有更灵活的操作和获得纯N2的可能性。 (c)2021 elestvier有限公司保留所有权利。

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