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首页> 外文期刊>International journal of hydrogen energy >Effect of pore characteristics on hydrogen reduction kinetics based on a novel analysis approach combined model-fitting and iso-conversion
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Effect of pore characteristics on hydrogen reduction kinetics based on a novel analysis approach combined model-fitting and iso-conversion

机译:基于新型分析方法的耐氢动力学孔隙特性对模型拟合和异载性的影响

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摘要

Carbon reductant used in metallurgy industry is a considerable source of carbon dioxide emissions. Growing concerns over greenhouse effect have urgently prompted research in the application of hydrogen energy as an alternative. However, some basic kinetic problems in the hydrogen reduction process have not been clarified and resolved yet, such as the activation energy fluctuations caused by neglect of pore characteristics, along with the overly subjective division of the whole reaction process to analyze rate limiting mechanisms. In this study, a novel approach for acquiring instantaneous activation energy is proposed that is able to identify the activation energy at every reaction moment and thereby provide a quantitative basis for kinetics segmentation and rate-limiting mechanism determination. Moreover, due to the space requirements, the activation energy for the reaction stage controlled by nucleation and nuclei growth has a strong correlation with specific surface area. Whereas the restriction mechanisms of chemical reaction and diffusion are closely related to the average pore size. These results reveal that the different pore characteristics and changes in value have a direct influence on the corresponding rate limiting mechanisms and restriction degrees. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:冶金工业中使用的碳还原剂是具有相当大的二氧化碳排放来源。对温室效应的日益令人担忧迫切地促使研究氢能作为替代方案的研究。然而,尚未澄清和解决了氢气还原过程中的一些基本动力学问题,例如通过忽视孔隙特性引起的激活能量波动,以及整个反应过程的过度主观分析分析速率限制机制。在该研究中,提出了一种获取瞬时激活能量的新方法,其能够在每个反应力矩中识别激活能量,从而为动力学分割和限速机制确定提供定量基础。此外,由于空间要求,由成核和核生长控制的反应阶段的活化能量与特定表面积具有很强的相关性。虽然化学反应和扩散的限制机制与平均孔径密切相关。这些结果表明,不同的孔隙特性和价值的变化对相应的速率限制机制和限制度具有直接影响。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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