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An alternative approach for assessing the benefit of phase change materials in solar domestic hot water systems

机译:评估相变材料在太阳能家用热水系统中的优势的另一种方法

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Phase change materials (PCM) for thermal energy storage in solar energy systems have been the subject of a great deal of research in the literature. Despite this, the research results pertaining to the efficacy of PCMs in enhancing system solar fraction are mixed. The current paper explores this issue numerically within a systems context. A typical solar domestic hot water system is considered. The PCMs are introduced as vertical cylindrical modules contained within the water tank, thus forming a hybrid PCM/water thermal storage. Water flowing along the length of tank is used as the heat transfer fluid. A model was developed based on the enthalpy-porosity method to solve for the phase change process within the PCM modules. The model was thoroughly validated and verified and predictions were in good agreement (less than 5% deviation) with results from the literature. The hybrid tank model was linked with the collector performance and the system was tested for typical days of Canadian weather with a dispersed demand profile. The solar fraction of the hybrid system was compared to that for an identical system using water-only as the thermal storage medium. The system analysis explores the impact of storage volume on solar fraction for systems with and without PCMs included. The systems approach is critical since it allows for the coupled effects of the thermal storage, solar collector, and household load to be incorporated. The analysis clearly shows that incorporation of PCMs into the thermal storage results in enhanced solar,fraction at undersized tank volumes relative to the demand. In contrast, as the tank volume is increased, the benefit of the PCMs diminishes and identical performance is obtained between the two systems at large volumes. An energy balance of the system shows that, despite marginally increased heat losses from the hybrid tank, the benefits of the hybrid storage at small storage volumes are due to the reduction in the collector fluid inlet temperature which increases the pump run time and thus the solar energy collected and reduction of collector losses.
机译:在太阳能系统中用于热能存储的相变材料(PCM)已成为文献中大量研究的主题。尽管如此,有关PCM增强系统太阳能分数的功效的研究结果还是混杂的。本论文在系统上下文中以数字方式探讨了这个问题。考虑一种典型的太阳能家用热水系统。 PCM作为包含在水箱中的垂直圆柱形模块引入,因此形成了PCM /水混合蓄热装置。沿水箱长度流动的水用作传热流体。基于焓-孔隙度方法开发了一个模型,以解决PCM模块内的相变过程。该模型经过了充分验证和验证,并且预测与文献结果相吻合(偏差小于5%)。混合罐模型与收集器的性能有关,并且针对加拿大天气的典型日子(需求分布分散)对系统进行了测试。将混合系统的太阳能份额与仅使用水作为蓄热介质的相同系统的太阳能份额进行了比较。系统分析探讨了存储容量对带有或不带有PCM的系统的太阳能份额的影响。该系统方法至关重要,因为它允许将蓄热,太阳能集热器和家庭负载结合在一起。分析清楚地表明,相对于需求,在尺寸过小的储罐容积中,将PCM结合到储热器中会导致太阳分馏增加。相反,随着储罐容积的增加,PCM的优势将减少,并且两个系统在大容积下可获得相同的性能。系统的能量平衡表明,尽管混合罐的热量损失略有增加,但在小存储量下混合存储的好处是由于收集器流体入口温度降低,这增加了泵的运行时间,从而增加了太阳能收集能量并减少收集器损失。

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