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Assessment of an integrated solar hydrogen system for electrochemical synthesis of ammonia

机译:评估用于氨的电化学合成的集成太阳能氢系统

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In this paper, a solar based electrochemical system is designed, built and tested to synthesize ammonia and hydrogen from nitrogen and saturated steam. Ammonia can serve as a sustainable fuel and is in heavy demand by the fertilizer industry. However, the conventional methods rely on hydrogen produced from fossil fuels. Hydrogen can be supplied back by implementing fuel cells and feeding electricity back to the system, directed to the conventional ammonia production methods as a reactant, or sold as a fuel. A simple and direct system is studied to pose a sustainable option for ammonia and hydrogen production. Very high concentrations of Nano iron catalyst are used to promote the concentration of ammonia at the output. The reactor is designed for continuous flow and can be disassembled for varying tests and scenarios. The maximum concentration of ammonia is found to be 950 ppm measured with excess reactant supply. Increasing nitrogen flow rates along with decreasing steam flow rates render increasing concentration results. The system at optimum conditions consumes 650 mA at 1.7 V. The low power requirements and valuable products of the system encourage further studies. Additionally, a solar energy based system is proposed as a renewable approach to ammonia synthesis with a fuel cell component to increase the efficiency by reducing the power consumption to 60% of its original value. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在本文中,设计,构建并测试了基于太阳能的电化学系统,以从氮气和饱和蒸汽中合成氨和氢。氨可以用作可持续燃料,化肥行业对此有大量需求。然而,常规方法依赖于由化石燃料产生的氢。氢气可通过实施燃料电池并将电力反馈给系统,直接作为常规氨的生产方法作为反应物或作为燃料出售而提供。研究了一种简单直接的系统,为氨和氢气的生产提供了可持续的选择。使用非常高浓度的纳米铁催化剂来提高输出端氨的浓度。该反应器专为连续流动而设计,可拆卸进行各种测试和方案。发现在过量反应物供应下测得的氨的最大浓度为950 ppm。氮气流量的增加,以及蒸汽流量的减少,都会导致浓缩结果的增加。在最佳条件下,系统在1.7 V时消耗650 mA的电流。系统的低功耗要求和有价值的产品鼓励进行进一步的研究。另外,提出了基于太阳能的系统作为氨燃料合成的可再生方法,其具有燃料电池组件,以通过将功耗降低至其原始值的60%来提高效率。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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