Biochar chemical-looping gasification for hydrogen-rich syngas production in solid-solid reaction: O, H and CaO of carbide slag effect NiFe2O4 oxygen carrier.

IF 8 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Chenlong Liu, Wenqiang Tang, Xuechen Zhang, Siddig Abuelgasim, Chenghua Xu, Rui Liu, Hengyi Xie, Fan Jiang
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Abstract

Biomass chemical-looping gasification represents a promising technology for the production of hydrogen-rich syngas, wherein the yield of gas is contingent upon the rate of solid-solid reactions. In this study, the incorporation of carbide slag as an oxygen carrier, hydrogen carrier, and in-situ carbon capture agent, as well as the modification of the synthesis method for the NiFe2O4 oxygen carrier, were specifically targeted to enhance the solid-solid reaction activity. The results indicate that the reactivity can be significantly improved by synthesizing NiFe2O4 using the sol-gel method with varying ratios of citric acid. Specifically, a citric acid ratio of 1:3 demonstrated a substantial hydrogen gas yield of 0.032 Nm3/kg, although CO remained the predominant product. The addition of carbide slag markedly enhanced the H2 gas yield. Notably, the incorporation of 4g of carbide slag exhibited a pronounced synergistic effect with the NiFe2O4 oxygen carrier, resulting in a H2 gas yield improvement that exceeded fivefold compared to the NiFe2O4 sample alone. The formation of the Ca2Fe2O5 phase was identified as one of the key factors contributing to the enhanced activity of hydrogen production. Regarding the reaction temperature, an optimal H2 gas yield of 0.169 Nm3/kg was achieved at 800 °C. According to Pearson correlation coefficient analysis, both reaction temperature and the amount of carbide slag were identified as the primary parameters influencing hydrogen-rich syngas production. Additionally, the production of H2 was attributed to reforming reactions, while the production of CO was attributed to gasification processes. Ultimately, the possible reaction mechanism involving the interaction between carbide slag and NiFe2O4 was elucidated.

生物质化学循环气化是生产富氢合成气的一项前景广阔的技术,而合成气的产量取决于固-固反应的速率。在本研究中,为了提高固-固反应活性,特别加入了电石渣作为氧载体、氢载体和原位碳捕获剂,并改进了 NiFe2O4 氧载体的合成方法。结果表明,采用不同柠檬酸比例的溶胶-凝胶法合成 NiFe2O4 可以显著提高反应活性。具体而言,柠檬酸比例为 1:3 时,氢气产量高达 0.032 Nm3/kg,但主要产物仍然是 CO。加入碳化物渣可显著提高氢气产量。值得注意的是,加入 4 克碳化物渣与 NiFe2O4 氧载体有明显的协同效应,与单独的 NiFe2O4 样品相比,氢气产率提高了五倍以上。Ca2Fe2O5 相的形成被认为是提高制氢活性的关键因素之一。在反应温度方面,800 °C 时的最佳氢气产量为 0.169 Nm3/kg。根据皮尔逊相关系数分析,反应温度和碳化物熔渣量被确定为影响富氢合成气产量的主要参数。此外,H2 的产生归因于重整反应,而 CO 的产生归因于气化过程。最后,还阐明了涉及电石渣和 NiFe2O4 之间相互作用的可能反应机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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