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Maximising the energy output of a PVT air system

机译:最大化PVT空气系统的能量输出

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Simultaneously generating both electricity and low grade heat, photovoltaic thermal (PVT) systems maximise the solar energy extracted per unit of collector area and have the added benefit of increasing the photovoltaic (PV) electrical output by reducing the PV operating temperature. A graphical representation of the temperature rise and rate of heat output as a function of the number of transfer units NTUs illustrates the influence of fundamental parameter values on the thermal performance of the PVT collector. With the aim of maximising the electrical and thermal energy outputs, a whole of system approach was used to design an experimental, unglazed, single pass, open loop PVT air system in Sydney. The PVT collector is oriented towards the north with a tilt angle of 34°, and used six 110 Wp frameless PV modules. A unique result was achieved whereby the additional electrical PV output was in excess of the fan energy requirement for air mass flow rates in the range of 0.03-0.05 kg/s m~2. This was made possible through energy efficient hydraulic design using large ducts to minimise the pressure loss and selection of a fan that produces high air mass flow rates (0.02-0.1 kg/ s m~2) at a low input power (4-85 W). The experimental PVT air system demonstrated increasing thermal and electrical PV efficiencies with increasing air mass flow rate, with thermal efficiencies in the range of 28-55% and electrical PV efficiencies between 10.6% and 12.2% at midday.
机译:光伏热(PVT)系统同时发电和产生低级热量,可最大程度地提高每单位收集器面积提取的太阳能,并具有通过降低PV工作温度来增加光伏(PV)电输出的额外好处。温度升高和热量输出速率作为传输单元NTU数量的函数的图形表示形式说明了基本参数值对PVT收集器的热性能的影响。为了使电能和热能输出最大化,整个系统方法用于设计悉尼的实验性,无釉,单程,开环PVT空气系统。 PVT收集器朝北,倾斜角度为34°,并使用了六个110 Wp无框PV模块。获得了一个独特的结果,即额外的PV电气输出超出了空气质量流量在0.03-0.05 kg / s m〜2范围内的风扇能量需求。通过使用大型管道的节能液压设计,最大程度地减少了压力损失,并选择了在低输入功率(4-85 W)下产生高空气质量流量(0.02-0.1 kg / sm〜2)的风扇,这才得以实现。实验性PVT空气系统显示出随着空气质量流量的增加,热和电PV效率不断提高,中午时热效率在28-55%之间,电PV效率在10.6%和12.2%之间。

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