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Potential of cascaded phase change materials in enhancing the performance of solar domestic hot water systems

机译:级联相变材料在增强太阳能家用热水系统性能方面的潜力

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The current paper explores a multi-tank thermal storage system for multi-residential solar domestic hot water applications. The thermal storage system includes phase change materials (PCMs) of different melting temperatures incorporated in the tanks. The PCMs are introduced as vertical cylindrical modules and water flowing along the length of tank is used as the heat transfer fluid. An enthalpy porosity model was developed to solve for the phase change process within the PCM modules. The model was validated and verified with previous work and predictions were in good agreement (less than 5% deviation). The hybrid tank model was linked with the collector performance. Typical Canadian weather data and a dispersed demand profile for a multi-residential building were considered. The performance of the hybrid system was judged based on the maximum possible storage volume reduction compared to the water only system with the same benefit to the end user. PCM maintains cooler water temperature entering the collector which results in a reduction of collector losses and extension of pump activation time. This increases the delivered energy to the load and hence increases the solar fraction. It was found that cascading four 75 L tanks containing PCMs of melting temperatures 54 degrees C, 42 degrees C, 32 degrees C and 16 degrees C gives a similar solar fraction to that for a 630 L water only tank. The multi-tank hybrid system thus allowed for over 50% reduction in the required storage volume.
机译:本论文探索了一种用于多住宅太阳能家用热水应用的多储罐蓄热系统。储热系统包括并入罐中的具有不同熔化温度的相变材料(PCM)。 PCM作为垂直圆柱形模块引入,沿水箱长度流动的水用作传热流体。为了解决PCM模块内的相变过程,开发了焓孔隙度模型。该模型已通过先前的工作进行了验证和验证,并且预测结果吻合良好(偏差小于5%)。混合罐模型与收集器的性能有关。考虑了加拿大的典型天气数据和多栋住宅的分散需求情况。混合动力系统的性能是根据与纯水系统相比对最终用户具有相同利益的最大可能存储量减少来判断的。 PCM保持进入收集器的水温较低,从而减少了收集器的损失并延长了泵的启动时间。这增加了传递到负载的能量,因此增加了太阳能比例。已发现,将四个熔融温度分别为54摄氏度,42摄氏度,32摄氏度和16摄氏度的PCM的75 L储罐级联,可以得到与630 L纯水储罐相似的太阳能分数。因此,多罐混合动力系统可将所需的存储量减少50%以上。

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