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Investigation of thermal aspects of building integrated photovoltaic/thermal solar collectors

机译:建筑一体化光伏/热太阳能集热器的热学研究

摘要

In this study a novel building integrated photovoltaic/thermal (BIPVT) solar collector was developed, tested, modelled and optimised both experimentally and theoretically. Experimental testing found that glazing the prototype collector improved the maximum thermal efficiency by approximately 25% and decreased heat loss, by a factor of two, relative to an unglazed collector. Additionally, the spectral absorptance of a photovoltaic (PV) cell and several coloured absorber samples were characterised.The experimental data was subsequently used in the development and validation of an optimisation model for BIPVT style collectors. Numerical optimisation showed that the collector thermal efficiency could be improved by maximising the geometric fin efficiency, reducing the thermal resistance between the PV cells and the absorber, and by increasing the transmittance-absorptance product of the PV cells and/or the absorber. The results showed that low cost materials, such as mild steel, could be used without significantly affecting the BIPVTs thermal efficiency. It was also shown that there was potential to develop coloured BIPVT collectors with acceptable thermal efficiencies. Finally, the model showed that potentially the air space in an attic could be used rather than traditional insulating materials.Subsequent computational and experimental fluid dynamics studies found that the heat transfer coefficients in a scale-model attic would result in R-values similar to mineral wool type insulation and therefore may provide sufficient insulation of a BIPVT in a cold roof building. In these studies the validity of an existing correlation for natural convection in an attic-shaped enclosure was extended to Grashof numbers in the range 10^7 to 10^9 from its previous range, 2.9 x 10^6 to 9 x 10^6. The use of a single vertically mounted baffle was also found to reduce the natural convection heat transfer coefficients in attic-shaped enclosures. This led to the development of a new generalised correlation that can be used to determine the Nusselt number in an attic-shaped enclosure with regard to the proportions of the baffle.This work has shown that it is possible to achieve satisfactory thermal performance from BIPVT style collectors fabricated from low cost materials such as colour coated mild steel. Further it has demonstrated that there is potential to reduce the cost of such systems by integrating them into a building rather than onto a building.
机译:在这项研究中,开发了一种新型建筑集成式光伏/热能(BIPVT)太阳能集热器,并通过实验和理论对其进行了测试,建模和优化。实验测试发现,相对于未上釉的收集器,对原型收集器进行上釉可将最大热效率提高约25%,并将热量损失减少两倍。此外,还表征了光伏(PV)电池和几个有色吸收体样品的光谱吸收率。随后将实验数据用于BIPVT样式收集器的优化模型的开发和验证。数值优化表明,通过最大化几何翅片效率,减小PV电池与吸收体之间的热阻以及增加PV电池和/或吸收体的吸收比吸收率,可以提高集热器的热效率。结果表明,可以使用低成本材料(例如低碳钢)而不会显着影响BIPVT的热效率。还显示出有潜力开发具有可接受的热效率的有色BIPVT集热器。最后,模型显示潜在地可以使用阁楼中的空间而不是传统的绝热材料。随后的计算和实验流体动力学研究发现,比例模型阁楼中的传热系数将导致类似于矿物的R值羊毛绝缘,因此可以在寒冷的屋顶建筑中提供BIPVT的充分绝缘。在这些研究中,将现有的对流在阁楼形罩中的自然对流的相关性的有效性,从其先前的2.9 x 10 ^ 6到9 x 10 ^ 6扩展到了Grashof数,范围为10 ^ 7至10 ^ 9。还发现使用单个垂直安装的挡板可以减少阁楼形外壳中的自然对流传热系数。这导致了新的广义相关性的发展,该相关性可用于确定折流板比例的阁楼形外壳中的努塞尔数。这项工作表明,通过BIPVT样式可以获得令人满意的热性能收集器由低成本材料制成,例如彩色涂层低碳钢。此外,已经表明,通过将这些系统集成到建筑物中而不是建筑物中,可以降低此类系统的成本。

著录项

  • 作者

    Anderson Timothy Nicholas;

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 en
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