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Sorption enhanced gasification (SEG) of biomass for tailored syngas production with in-situ CO_2 capture: Current status, process scale-up experiences and outlook

机译:吸附增强的气化(SEG)生物量用于定制合成气生产,具有原位CO_2捕获:当前状态,过程扩大体验和前景

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Sorption Enhanced Gasification (SEG) is being considered as a promising solid fuel conversion and carbon capture and sequestration technology since it can produce tailored syngas coupled with in-situ CO2 capture. Over the years, considerable research has been conducted with high grade biomass in laboratory and pilot scale facilities targeting technical and process scale-up viabilities of the SEG process. SEG has successfully been tested at semi industrial scale which demonstrates further scale-up potential (e.g. commercial demonstration plant) of this innovative technology. The results showed that the operation window of SEG laid at a gasification temperature ranging from 600 degrees C to 750 degrees C. By optimizing the process parameters, H-2-rich syngas (70 vol %(db)) and desired H-2/CO ratios can be attained. Also, the total tar content of the optimized process is reported to be low compared to those obtained from classical fluidized bed gasification processes. So far, wood is mostly used as the feedstocks while tests with wastes including solid recovered fuels (SRFs) have also been conducted. Cheap and readily available natural sorbents (such as limestone) enable a satisfactory operation, however, issues associated with attrition and deactivation still need to be addressed. Accordingly, natural sorbents with improved properties, synthetic CaO-based sorbents as well as pre-treated natural sorbents are considered to overcome these limitations. This paper therefore discusses the current status of the SEG technology with an emphasis on its industrial applications for flexible syngas production with in-situ CO2 reduction. Moreover, challenges, process scale-up experiences and research gaps for the commercialization of this novel technology are identified in this review.
机译:吸附增强的气化(SEG)被认为是有希望的固体燃料转换和碳捕获和封存技术,因为它可以产生与原位二氧化碳捕获相结合的定制合成气。多年来,在实验室和飞行员规模设施中具有高级生物量,针对SEG过程的技术和过程扩大的能力,在高级生物量进行了相当大的研究。 SEG已成功地以半工业规模进行了测试,这表明了这种创新技术的进一步扩大潜力(例如商业示范工厂)。结果表明,通过优化工艺参数,H-2的合成气(> 70 Vol%(dB))和所需的H-2),SEG的操作窗口铺设在10℃至750℃的气化温度范围内。 / CO比率可以获得。而且,与从经典流化床气化过程中获得的那些相比,据报道,优化过程的总焦油含量低。到目前为止,木材大多用作原料,同时还进行了用包括固体回收燃料(SRF)的废物的测试。廉价且易于使用的自然吸附剂(例如石灰石)使得能够令人满意的操作,然而,需要解决与消耗和停用的问题仍然需要解决。因此,认为具有改善的性质,合成的CaO基吸附剂以及预处理的天然吸附剂的天然吸附剂被认为克服了这些限制。因此,本文讨论了SEG技术的当前状态,重点是其具有原位二氧化碳的柔性合成气生产的工业应用。此外,在本综述中确定了这种新技术商业化的挑战,过程扩大经验和研究差距。

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