在沙特阿拉伯推进绿色制氢:利用太阳能和海水电解

ossam S. AbdelMeguid, Hossam F. Al-johani, Zakariya F. Saleh, Abdulmalk A. Almalki, Abdulaziz M. Almalki
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引用次数: 0

摘要

向清洁和可持续能源过渡对于应对气候变化带来的挑战至关重要。绿色氢是通过可再生能源驱动的电解生产的,作为一种可行的清洁能源载体具有重要的前景。该研究介绍了一种利用丰富的太阳能并利用海水作为电解原料的系统,可能提供一种具有成本效益的解决方案。利用MATLAB实现的综合数学模型对所提出的绿色制氢系统的设计和运行效率进行了仿真。该系统的核心组件包括作为清洁能源的太阳能电池板,确保向电解槽提供最佳电力的先进MPPT充电控制器,以及作为电解液来源的海水水箱。该模型结合了这些元素,允许连续运行和高效制氢,解决了对能源损失和成本效益的担忧。结果表明了太阳辐照度对系统性能的影响,揭示了在设计绿色制氢设施时需要考虑季节变化。理论实验是为了评估锂电池的性能,锂电池对于稳定系统输出和确保低太阳辐射期间的连续运行至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing Green Hydrogen Production in Saudi Arabia: Harnessing Solar Energy and Seawater Electrolysis
The transition to clean and sustainable energy sources is crucial for combating the challenges posed by climate change. Green hydrogen, produced through renewable energy-driven electrolysis, holds significant promise as a viable clean energy carrier. The study introduces a system that leverages abundant solar energy and utilizes seawater as the feedstock for electrolysis, potentially offering a cost-effective solution. A comprehensive mathematical model, implemented in MATLAB, is employed to simulate the design and operational efficiency of the proposed green hydrogen production system. The system’s core components include solar panels as a clean energy source, an advanced MPPT charge controller ensuring optimal power delivery to the electrolyzer, and a seawater tank serving as the electrolyte source. The model combines these elements, allowing for continuous operation and efficient hydrogen production, addressing concerns about energy losses and cost-effectiveness. Results demonstrate the influence of solar irradiance on the system’s performance, revealing the need to account for seasonal variations when designing green hydrogen production facilities. Theoretical experiments are conducted to evaluate the behavior of a lithium battery, essential for stabilizing the system’s output and ensuring continuous operation during periods of low solar radiation.
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