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Study of a pilot photovoltaic-electrolyser-fuel cell power system for a geothermal heat pump heated greenhouse and evaluation of the electrolyser efficiency and operational mode

机译:地热热泵加热温室光伏光电电解燃料电池先导系统的研究及电解效率和运行方式的评估

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The intrinsic factor of variability of renewable energy sources often limits their broader use. The photovoltaic solar systems can be provided with a power back up based on a combination of an electrolyser and a fuel cell stack. The integration of solar hydrogen power systems with greenhouse heating equipment can provide a possible option for powering stand-alone greenhouses. The aim of the research under development at the experimental farm of Department of Agro-Environmental Sciences of the University of Bari Aldo Moro is to investigate on the suitable solutions of a power system based on photovoltaic energy and on the use of hydrogen as energy vector, integrated with a ground source heat pump for greenhouse heating in a self sustained way. The excess energy produced by a purpose-built array of solar photovoltaic modules supplies an alkaline electrolyser; the produced hydrogen gas is stored in pressured storage tank. When the solar radiation level is insufficient to meet the heat pump power demand, the fuel cell starts converting the chemical energy stored by the hydrogen fuel into electricity. This paper reports on the description of the realised system. Furthermore the efficiency and the operational mode of the electrolyser were evaluated during a trial period characterised by mutable solar radiant energy. Anyway the electrolyser worked continuously in a transient state producing fluctuations of the hydrogen production and without ever reaching the steady-state conditions. The Faradic efficiency, evaluated by means of an empirical mathematic model, highlights that the suitable working range of the electrolyser was 1.5÷2.5 kW and then for hydrogen production more than 0.21 Nm3h–1.
机译:可再生能源可变性的内在因素通常会限制其广泛使用。可以基于电解器和燃料电池堆的组合为光伏太阳能系统提供备用电源。将太阳能氢能系统与温室供暖设备集成在一起可以为独立温室提供动力。巴里阿尔多莫罗大学农业环境科学系的实验农场正在开展的研究目的是研究基于光伏能量的电力系统的合适解决方案,并研究使用氢作为能量载体,与地源热泵集成在一起,以自给自足的方式为温室供暖。特制的太阳能光伏模块阵列产生的多余能量将提供碱性电解槽;产生的氢气被储存在压力储存罐中。当太阳辐射水平不足以满足热泵功率需求时,燃料电池开始将氢燃料存储的化学能转化为电能。本文报告了对已实现系统的描述。此外,在以可变的太阳辐射能为特征的试验期内,评估了电解池的效率和运行模式。无论如何,电解器在过渡状态下连续工作,产生氢产量的波动并且从未达到稳态条件。通过经验数学模型评估的法拉第效率表明,该电解槽的合适工作范围为1.5÷2.5 kW,然后制氢超过0.21 Nm3h-1。

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