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Ball-Milled and Acid-Treated Mineral Activated Carbon as Hydrogen Storage Material

机译:球磨和酸处理的矿物活性炭作为储氢材料

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For several decades, carbon allotropes, including graphitic nanofibres and other nanostructures, have been studied as hydrogen storage materials. In this paper, activated mineral carbon (bituminous) was used for the hydrogen storage process. For 3 h, the carbon particle size was continuously reduced by mechanical milling, and the carbon was subsequently refluxed with concentrated nitric acid. Microstructural characterisation and evaluation of the hydrogenation behaviour of the chemically treated and milled mineral were performed. Hydrogen adsorption/desorption experiments were carried out using two methods: the first one using a thermogravimetric analysis (TGA) system with a hydrogen atmosphere during the process of adsorption and nitrogen as carrier gas in the desorption and the second method of hydrogenation was performed in the microreactor (MR) varying pressure, temperature and contact time. On the other hand, ten cycles of adsorption/desorption of hydrogen were performed with each method. The qualitative analysis for hydrogen identification was carried out with a gas chromatograph and the same thermogravimetric analyser with nitrogen used as the carrier gas. The hydrogen absorption capacity in powder samples was 0.45±0.01 and 1.38±0.05 wt% hydrogen in the TGA system and in the MR respectively, according to these results the best method for hydrogen adsorption was using the MR because the pressure applied was higher.
机译:几十年来,碳同素异形体,包括石墨纳米纤维和其他纳米结构,已被研究作为储氢材料。在本文中,活性矿物碳(沥青)用于储氢过程。 3小时后,通过机械研磨连续减小碳的粒径,随后将碳与浓硝酸回流。进行了化学处理和研磨的矿物的微观结构表征和氢化行为的评估。氢气的吸附/解吸实验采用两种方法进行:一种是在热重分析(TGA)系统中采用氢气氛进行吸附,另一种方法是在解吸过程中使用氮气作为载气,微反应器(MR)改变压力,温度和接触时间。另一方面,每种方法进行十次氢的吸附/解吸循环。用气相色谱仪和相同的以氮为载气的热重分析仪进行氢气鉴定的定性分析。在TGA系统和MR中,粉末样品中的氢吸收容量分别为0.45±0.01和1.38±0.05 wt%氢,根据这些结果,由于施加的压力较高,最佳的氢吸附方法是使用MR。

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