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Methane decomposition with a minimal catalyst: An optimization study with response surface methodology over Ni/SiO_2 nanocatalyst

机译:用最小催化剂的甲烷分解:用Ni / SiO_2纳米催化剂的响应面方法进行优化研究

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Nowadays, methane cracking in the presence of an efficient catalyst is one of the most investigating areas aiming hydrogen and nanocarbon synthesis. This research contribution systematically investigated the influence of methane partial pressure (P-C(H4)), decomposition temperature, and weight of Ni/SiO2 nanocatalyst (n-Ni/SiO2) on carbon nanotube (CNT) yield. The optimum reaction condition for optimal methane cracking resulted in maximum CNT yield is derived using Design Expert Software. A series of experiments conducted to develop a quadratic polynomial model for CNT yield using response surface methodology. Surprisingly, the optimum catalyst quantity was the lowest (0.30 g) in the experimented parameter range, which exhibited the highest CNT production at 610 degrees C temperature and 0.8 atm P-C(H4). The minimal catalyst quantity for the optimum CNT production, which needs only 0.26% of the total volume of the pilot plant reactor, is a breakthrough finding in methane cracking research. It could help to overcome the reactor blockage limitation issues of the process in large scale applications. Thanks to the uniquely supported n-Ni/SiO2 catalyst prepared via co-precipitation cum modified Stober method. The fresh and used catalysts investigated using different types of characterization techniques such as XRD, BET, Raman spectra, HRTEM, and FESEM-EDX. Characterization results evidenced the presence of differently structured CNTs formed at optimum reaction conditions. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:如今,在高效催化剂存在下甲烷裂化是旨在催化氢和纳米碳合成的最多的研究区域之一。该研究贡献系统地研究了甲烷分压(P-C(H4)),分解温度和Ni / SiO2纳米催化剂(N-Ni / SiO2)的重量对碳纳米管(CNT)产率的影响。使用设计专家软件导出最佳甲烷裂化的最佳反应条件,得到最大CNT产量。使用响应面方法,对CNT产量的二次多项式模型进行了一系列实验。令人惊讶的是,最佳催化剂量是实验参数范围内最低(0.30g),其在610℃温度和0.8atm P-C(H4)中表现出最高的CNT产生。最佳CNT生产的最小催化剂量,仅需要50.26%的试验厂反应器总量的0.26%,是甲烷开裂研究中的突破性。它可以有助于克服大规模应用中该过程的反应堆阻塞问题。由于通过共析出暨改性的阶梯方法制备了唯一支持的N-Ni / SiO 2催化剂。使用不同类型的表征技术(如XRD,BET,RAMAN),HRTEM和FESEM-EDX等不同类型的表征技术研究了新鲜和使用的催化剂。表征结果证明了在最佳反应条件下形成的不同结构化CNT的存在。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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