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Experimental operating cell temperature assessment of BIPV with different installation configurations on roofs under Mediterranean climate

机译:地中海气候下屋顶上不同安装配置的BIPV的实验操作室温度评估

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摘要

The presence of an air gap between a photovoltaic (PV) module and roof facilitates ventilation cooling under the device and consequently reduces cell temperature and improves its performance. In case of rack-mounted PV installation, the Nominal Operating Cell Temperature (NOCT) method could be effectively used to predict the temperature of the module for various environmental conditions. Many countries, for esthetic purposes, offer economic advantages (tax deductions, incentives, etc..) for the installation of building integrated photovoltaic modules (BIPV), with water-tightness capability and adequate mechanical resistance in order to substitute tile covering or part of it. Nevertheless, poor or absent ventilation under BIPV panels could cause them to overheat and reduce their efficiency. Lack of validated predictive tools for the evaluation of BIVP energy performance could be another barrier to their widespread application. In this study, we investigated the thermal performance of PV modules installed in a real scale experimental building over a traditional clay tile pitched roof in Italy for almost one year (from August 2009 to June 2010). One PV module was rack-mounted over the roof covering with a 0.2 m air gap; the others were fully integrated and installed at the same level of the roof covering (one with an air gap of 0.04 m, the other mounted directly in contact with the insulation). Temperature and heat flux measurements for each panel, and environmental parameters were recorded. Two temperature prediction models, NOCT model and SNL (Sandia National Laboratory) model were used to predict BIPV temperature and energy efficiency so that their suitability for BIPV could be evaluated. SNL model takes into account also the wind speed. Experimental results demonstrate that even though the rack-mounted PV module constantly maintains cell temperature below that of the other full-building integrated modules, due to the presence of a higher air gap, the difference in the energy produced by the BIPV modules estimated for the entire monitoring period is less than 4%. The two predictive models, NOCT and SNL, cause the differences in predicted and calculated temperature up to 10 ℃. However, subsequent percentage variations on the energy predicted compared to that arising from the temperature measured generally turn out to be lower than 5%. An optimization of empirical coefficients used for calculations based on the SNL method allows for the reduction of this value below 2.5%.
机译:光伏(PV)模块和屋顶之间存在气隙,有利于设备下方的通风冷却,因此降低了电池温度并改善了其性能。如果是机架安装式光伏装置,则可以有效地使用标称工作电池温度(NOCT)方法来预测各种环境条件下模块的温度。许多国家出于审美目的,为安装集成光伏模块(BIPV)提供了经济优势(减税,激励措施等),这些模块具有水密性和足够的机械阻力,可以替代瓷砖覆盖物或部分瓷砖它。但是,BIPV面板下通风不良或缺乏通风会导致面板过热并降低其效率。缺乏用于评估BIVP能源绩效的经过验证的预测工具可能是其广泛应用的另一个障碍。在这项研究中,我们调查了在意大利传统粘土砖斜屋顶上的实际规模实验建筑中安装的光伏模块的热性能近一年(2009年8月至2010年6月)。一个光伏模块以0.2 m的空气间隙机架安装在屋顶上。其余的则完全集成并安装在与屋顶覆盖物相同的高度上(一个空隙为0.04 m,另一个直接与隔热层接触)。记录每个面板的温度和热通量以及环境参数。使用两个温度预测模型(NOCT模型和SNL(桑迪亚国家实验室)模型)预测BIPV温度和能源效率,以便评估它们对BIPV的适用性。 SNL模型还考虑了风速。实验结果表明,即使机架式光伏组件始终将电池温度保持在低于其他完整建筑集成组件的温度之下,但由于存在较高的气隙,BIPV组件所产生的能量差异估计为整个监测期不到4%。两种预测模型,NOCT和SNL,导致了高达10℃的预测和计算温度的差异。但是,与由测得的温度产生的能量相比,预测能量的随后百分比变化通常小于5%。基于SNL方法的计算中使用的经验系数的优化允许将该值降低到2.5%以下。

著录项

  • 来源
    《Renewable energy》 |2014年第8期|378-396|共19页
  • 作者单位

    Construction, Civil Engineering and Architecture Department, Universita Politecnica delle Marche, Via Brecce Bianche, 60131 Ancona, Italy;

    Industrial Engineering and Mathematics Sciences Department, Universita Politecnica delle Marche, Via Brecce Bianche, 60131 Ancona, Italy;

    Construction, Civil Engineering and Architecture Department, Universita Politecnica delle Marche, Via Brecce Bianche, 60131 Ancona, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photovoltaic; BIPV; Cell temperature; NOCT; Sandia National Laboratory model;

    机译:光伏BIPV;电池温度;NOCT;桑迪亚国家实验室模型;

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