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Experimental investigation of solar-hydrogen energy system performance

机译:太阳能-氢能系统性能的实验研究

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Recently, the Solar-hydrogen energy system (SHES) becomes a reality thanks as well as a very common topic to energy research in Egypt as it is now being the key solution of different energy problems including global warming, poor air quality and dwindling reserves of liquid hydrocarbon fuels. Hydrogen is a flexible storage medium for energy and can be generated by the electrolysis of water. It is more particularly advantageous and efficient when the electrolyzer is simply coupled to a source of renewable electrical energy. This paper examines the operation of alkaline water electrolysis coupled with solar photovoltaic (PV) source for hydrogen generation with emphasis on the electrolyzer efficiency. PV generator is simulated using Matlab/Simulink to obtain its characteristics under different operating conditions with solar irradiance and temperature variations. The experimental alkaline water electrolysis system is built in the fluid mechanics laboratory of Menoufiya University and tested at certain input voltages and currents which are fed from the PV generator. The effects of voltage, solution concentration of electrolyte and the space between the pair of electrodes on the amount of hydrogen produced by water electrolysis as well as the electrolyzer efficiency are experimentally investigated. The water electrolysis of different potassium hydroxide aqueous solutions is conducted under atmospheric pressure using stainless steel electrodes. The experimental results showed that the performance of water electrolysis unit is highly affected by the voltage input and the gap between the electrodes. Higher rates of produced hydrogen can be obtained at smaller space between the electrodes and also at higher voltage input. The maximum electrolyzer efficiency is obtained at the smallest gap between electrodes, however, for a specified input voltage value within the range considered.
机译:最近,由于在埃及进行能源研究,太阳能和氢能系统(SHES)成为了现实,也是一个非常普遍的话题,因为它现已成为解决各种能源问题(包括全球变暖,空气质量差和储量减少的关键问题)的关键解决方案。液态烃燃料。氢是一种灵活的能量存储介质,可以通过水的电解产生。当电解槽简单地耦合到可再生电能源时,这是特别有利和有效的。本文考察了碱性水电解与太阳能光伏(PV)源结合产生氢气的操作,重点是电解效率。使用Matlab / Simulink对PV发电机进行仿真,以获得在不同工作条件下具有太阳辐照度和温度变化的特性。实验碱性水电解系统建立在Menoufiya大学的流体力学实验室中,并在从PV发生器馈入的某些输入电压和电流下进行了测试。实验研究了电压,电解质溶液浓度和一对电极之间的空间对水电解产生的氢气量以及电解效率的影响。使用不锈钢电极在大气压下进行不同氢氧化钾水溶液的水电解。实验结果表明,水电解装置的性能受电压输入和电极间间隙的影响很大。可以在电极之间的较小空间以及较高的电压输入下获得较高的氢气产生率。在规定的输入电压值范围内,在电极之间的最小间隙处可获得最大的电解效率。

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