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Autonomous hydrogen production system

机译:自主制氢系统

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A system for hydrogen production via water electrolysis using solar energy has been designed and is presented in this paper. Investigations were related to the experimental measurements and modeling of the 60W electrolyzer and 100W PV module separately and, subsequently, as coupled system. The goal of this paper was to increase system efficiency while simplifying the system's design. Electrolyzer features related to operating temperature, voltage and electric current were investigated in detail. In the mathematical model of the electrolyzer, important parameters were determined based on UI characteristics, which included the electrolyte ohmic resistance, the electrode overvoltage, and the electrode active surface. Experimentation allowed the authors to improve the mathematical model of the electrolyzer. It clear explains phenomena of variable temperature in real conditions due to the new steady state and higher temperature profile developing as process continues. This statement presents the main contribution of this work. It is supported with experiments and explained in detail through the paper. With efficiency of 77.06% the experimental systems of the electrolyzer and PV module are designed to be roughly compatible with each other. The emphasis is to describe the important parameters in both systems. All mathematical models were programmed in Simulink/MATLAB software. Copyright (c) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:设计并提出了一种利用太阳能通过水电解生产氢气的系统。研究分别与60W电解槽和100W PV模块以及随后作为耦合系统的实验测量和建模有关。本文的目的是在简化系统设计的同时提高系统效率。详细研究了与工作温度,电压和电流有关的电解槽功能。在电解器的数学模型中,根据UI特性确定了重要的参数,包括电解质欧姆电阻,电极过电压和电极活性表面。实验允许作者改进电解器的数学模型。它清楚地说明了由于新的稳态和随着过程的继续发展而产生的更高温度曲线,在实际条件下温度变化的现象。该声明介绍了这项工作的主要贡献。它得到了实验的支持,并在本文中进行了详细说明。电解器和PV组件的实验系统的效率为77.06%,设计为彼此大致兼容。重点是描述两个系统中的重要参数。所有数学模型均在Simulink / MATLAB软件中编程。 Hydrogen Energy Publications,LLC版权所有(c)2015。由Elsevier Ltd.出版。保留所有权利。

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