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Investigation of renewable, coupled solar-hydrogen fuel generation with thermal management systems suitable for equatorial regions

机译:使用适用于赤道地区的热管理系统研究可再生,耦合的太阳能氢燃料发电

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摘要

Solar Energy and Hydrogen (energy carrier) are possible replacement options for fossil fuel and its associated problems of availability and high prices which are devastating small, developing, oil-importing economies. But a major drawback to the full implementation of solar energy, in particular photovoltaic (PV), is the lowering of conversion efficiency of PV cells due to elevated cell temperatures while in operation. Also, hydrogen as an energy carrier must be produced in gaseous or liquid form before it can be used as fuel; but its‟ present major conversion process produces an abundance of carbon dioxide which is harming the environment through global warming. In search of resolutions to these issues, this research investigated the application of Thermal Management to Photovoltaic (PV) modules in an attempt to reverse the effects of elevated cell temperature. The investigation also examined the effects of coupling the thermally managed PV modules to a proton exchange membrane (PEM) Hydrogen Generator for the production of hydrogen gas in an environmentally friendly and renewable way. The research took place in Kingston, Jamaica. The thermal management involved the application of two cooling systems which are Gravity-Fed Cooling (GFC) and Solar-Powered Adsorption Cooling (SPAC) systems. In both systems Mathematical Models were developed as predictive tools for critical aspects of the systems. The models were validated by the results of experiments. The results of the investigation showed that both cooling systems stopped the cells temperatures from rising, reversed the negative effects on conversion efficiency, and increased the power output of the module by as much as 39%. The results also showed that the thermally managed PV module when coupled to the hydrogen generator impacted positively with an appreciably increase of up to 32% in hydrogen gas production. The results of this work can be applied to the equatorial belt but also to other regions with suitable solar irradiation. The research has contributed to the wider community by the development of practical, environmentally friendly, cost effective Thermal Management Systems that guarantee improvement in photovoltaic power output, by introducing a novel way to use renewable energy that has potential to be used by individual household and/or as cottage industry, and by the development of Mathematical Tools to aid in photovoltaic power systems designs.
机译:太阳能和氢(能源载体)是化石燃料及其相关的可用性和高价格问题的可能替代选择,这些问题正在破坏发展中的石油进口小国。但是,太阳能,特别是光伏(PV)的全面实施的主要缺点是,由于工作时电池温度升高,PV电池的转换效率降低。另外,作为能量载体的氢气在用作燃料之前必须以气态或液态形式产生。但是其目前的主要转化过程会产生大量的二氧化碳,这些二氧化碳正在通过全球变暖危害环境。为了解决这些问题,本研究调查了热管理在光伏(PV)模块中的应用,以试图扭转电池温度升高的影响。该调查还研究了将热管理PV组件与质子交换膜(PEM)氢气发生器耦合以产生环保且可再生的方式生产氢气的影响。该研究在牙买加金斯敦进行。热管理涉及两个冷却系统的应用,这两个系统是重力进给冷却(GFC)和太阳能吸附冷却(SPAC)系统。在两个系统中,数学模型都是作为系统关键方面的预测工具而开发的。实验结果验证了模型的正确性。调查结果表明,两个冷却系统均阻止了电池温度的升高,消除了对转换效率的负面影响,并将模块的功率输出提高了39%。结果还表明,与氢气发生器耦合使用时,热管理型光伏组件产生了积极的影响,氢气产量明显增加了32%。这项工作的结果可以应用于赤道带,也可以应用于具有适当太阳辐射的其他区域。这项研究通过开发一种实用的,环境友好的,具有成本效益的热管理系统,通过引入一种新颖的使用可再生能源的方法来保证光伏发电量的提高,从而保证了光伏发电量的增加,该方法有可能被个人和/或家庭使用。或作为家庭手工业,并通过开发数学工具来辅助光伏电源系统设计。

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