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Co-production of syngas and zinc via combined solar-driven biomass gasification and ZnO carbo-thermal reduction in a continuously-operated solar reactor

机译:通过组合的太阳能生物量气化和ZnO Carbo - 热还原在连续运行的太阳能反应器中的合成气和锌的共同生产

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The solar thermochemical gasification of biomass with in-situ ZnO carbo-thermal reduction was carried out in a lab-scale (1.5 kW) continuously-fed solar reactor. The objective of this study was to demonstrate the feasibility of the combined process involving wood biomass gasification with ZnO as an oxidizing agent under continuous process operation for co-production of syngas and metallic Zn. A controlled mixture of biomass and ZnO particles was injected in a cavity-type receiver directly irradiated by concentrated solar radiation. The influence of temperature (1050-1250°C) on syngas production was experimentally investigated and compared to the case of a pyrolysis process (without any oxidizing agent). H_2 production increased drastically, CO production tended also to increase, while CH_4 and CO_2 concentrations decreased when increasing the temperature. The global syngas production of the combined gasification and ZnO carbo-thermal reduction was higher in comparison with pyrolysis. Collected products at the reactor outlet indicated high Zn content, with low recombination to ZnO in the solid products. The energy content of the feedstock was upgraded by the solar power input in the form of both syngas and Zn, thus outperforming pyrolysis in addition to delivering higher syngas output per unit of feedstock.
机译:具有原位ZnO碳热还原的生物质的太阳能热化学气化在实验室级(1.5 kW)连续喂食太阳能反应器中进行。本研究的目的是展示涉及用ZnO作为氧化剂的组合过程的可行性,该过程在连续工艺作用下为合成气和金属Zn的共同生产。将生物质和ZnO颗粒的受控混合物注入通过浓缩的太阳辐射直接照射的腔型接收器中。实验研究温度(1050-1250℃)对合成气产量的影响,并与热解过程(没有任何氧化剂)的情况进行比较。 H_2产量大幅增加,CO生产也趋于增加,而CH_4和CO_2浓度在增加温度时降低。与热解相比,全球合成气组合的气化和ZnO Carbo-散热减少较高。在反应器出口处收集的产品表示高Zn含量,在固体产物中具有低重组至ZnO。通过Syngas和Zn的形式的太阳能输入升级了原料的能量含量,因此除了提供每单位原料的更高的合成气输出之外,还优于热解。

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