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A Novel, eco-friendly combined solar cooling and heating system, powered by hybrid Photovoltaic thermal (PVT) collector for domestic application

机译:一种新颖的环保组合太阳能冷却和加热系统,由混合光伏热(PVT)收集器供电用于国内应用

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摘要

Solar heating and cooling technologies can have a vital role to play in understanding the targets in energy security, economic development, and mitigating climate change. This study aimed to investigate the performance of the combined solar cooling/heating system using a Photovoltaic Thermal collector (PVT) for residential applications. The main advantage of using PVT is the conversion of the maximum amount of solar energy into electricity and thermal energy. In this work, water is used to cool the panel and, consequently, increase the efficiency. The cooling cycle comprises a hybrid ejector-compression refrigeration cycle with two evaporator temperatures. To reduce the effect of the global warming phenomenon, two different refrigerants with lower Global Warming Potential (GWP), such as R600a and R290, are used instead of R134a. The inlet water does not only gain heat from the PVT but also the collector output water is heated in a condenser and heater. The results indicate that increasing the water mass flow rate from 0.011 kg/s to 0.03 kg/s (39-108 Lit/h) at solar intensity (G) of 945 W/m(2) results in enhancing the overall efficiency of the PVT system from 66.7% to 75.8%. In terms of the highest Coefficient of performance (COP) and the lowest exergy destruction, R290 shows better performance comparing to the other refrigerants. In more details, using R290, instead of R134a, results in up to 7.5% enhancement in the COP of the cycle. The water mass flow rate is optimized at m(w)=0.013 kg/s to achieve the highest COP and the lowest exergy destruction. Also, it is reported that the temperature of the outlet water from the system varies between 31.72 degrees C to 46.73 degrees C during the day. Finally, it is revealed that using R290 for the refrigeration cycle and cooling the panel result in enhancing the COP of the cycle by 11.1%, increasing the temperature of the outlet water from the system by 9.17 degrees C and decreasing the refrigerant flow rate by 60.17%, in comparison with a system without panel cooling which uses R134a refrigerant.
机译:在理解能源安全,经济发展和缓解气候变化的目标方面,太阳能加热和冷却技术可以发挥重要作用。本研究旨在研究使用用于住宅应用的光伏热集电极(PVT)的组合太阳能冷却/加热系统的性能。使用PVT的主要优点是将最大太阳能量转换为电力和热能。在这项工作中,水用于冷却面板,从而提高效率。冷却循环包括具有两个蒸发器温度的混合喷射器压缩制冷循环。为了减少全球变暖现象的效果,使用具有较低的全球变暖电位(GWP)的不同制冷剂,例如R600a和R290,代替R134a。入口水不仅从PVT获得热量,而且还可以在冷凝器和加热器中加热集电极输出水。结果表明,在945W / m(2)的太阳能(G)的0.011kg / s至0.03kg / s(39-108升/ h)的水质量流量导致提高整体效率PVT系统从66.7%到75.8%。就最高的性能系数(COP)和最低的驱动破坏而言,R290显示与其他制冷剂相比的更好的性能。更详细地,使用R290而不是R134A,导致循环COP的增强高达7.5%。水质量流量在M(W)= 0.013kg / s的优化以实现最高的警察和最低的驱动破坏。此外,据报道,在当天,来自系统的出口水的温度在31.72摄氏度至46.73摄氏度之间变化。最后,揭示了使用R290进行制冷循环和冷却面板导致将循环的COP增强11.1%,从系统增加出口水的温度,并将制冷剂流速降低60.17与使用R134A制冷剂的没有面板冷却的系统相比,%相比。

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