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Energy and exergy analyses of a nanofluid based solar cooling and hydrogen production combined system

机译:基于纳米流体的太阳能冷却和制氢联合系统的能量和火用分析

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A nanofluid is used as working fluid in a solar parabolic trough collector (PTC) for solar cooling and hydrogen production. The combined system is composed of five sub-systems including PTC, Rankine cycle, thermal energy storage, triple effect absorption cooling system (TEACS), and proton exchange membrane (PEM) electrolyzer. The results of the thermodynamic model for the hybrid PTC/Rankine cycle, TEACS and PEM electrolyzer subsystem are validated. Furthermore, the effects of ambient temperature, solar irradiation and nanofluid volume fraction on the hydrogen production, COP and exergy efficiency of TEACS, and the overall energy and exergy efficiency of the hybrid system are examined. We found that the rate of hydrogen production increases at higher solar radiation intensity because the Rankine cycle delivers more power to the PEM electrolyzer. Exergy analysis reveals that the efficiency of the hybrid system increases approximately by 9% by increase of ambient temperature from 5 to 40 degrees C. The power generation by Rankine cycle and hydrogen production by electrolyzer increases using higher volume fraction of nanoparticles. The overall energy and exergy efficiency of the hybrid system with the nanoparticles volume fraction of 0 are 1.55 and 1.4 times more than the nanoparticles volume fraction of 0.03 at solar intensity of 600 Wm(-2). (C) 2019 Elsevier Ltd. All rights reserved.
机译:纳米流体被用作太阳能抛物槽收集器(PTC)中的工作流体,用于太阳能冷却和制氢。该组合系统由五个子系统组成,包括PTC,朗肯循环,热能存储,三效吸收冷却系统(TEACS)和质子交换膜(PEM)电解器。验证了PTC / Rankine混合循环,TEACS和PEM电解器子系统的热力学模型的结果。此外,还研究了环境温度,太阳辐射和纳米流体体积分数对制氢效率,COPACS和TEACS的火用效率以及混合系统的总能和火用效率的影响。我们发现,由于兰金循环为PEM电解槽提供了更多的功率,因此在较高的太阳辐射强度下氢气的产生速率会增加。火用分析表明,通过将环境温度从5升高到40摄氏度,混合系统的效率大约提高9%。使用更高体积分数的纳米颗粒,朗肯循环的发电量和电解池的氢气产生量得以提高。在600 Wm(-2)的太阳强度下,纳米粒子体积分数为0的混合系统的总能量和火用效率分别为0.03的1.55和1.4倍。 (C)2019 Elsevier Ltd.保留所有权利。

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