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Experimental analysis of the temperature and concentration profiles in a salinity gradient solar pond with, and without a liquid cover to suppress evaporation

机译:在盐度梯度太阳塘中(不带液盖抑制蒸发)的温度和浓度分布的实验分析

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摘要

Solar ponds offer an effective way to collect and store incident solar radiation, making them an attractive alternative to photovoltaic systems for applications which require low-grade heat to operate. If these ponds are to be implemented successfully, then a more complete understanding of the mechanisms and phenomena governing their behaviour is required. Evaporation has been shown previously to be the dominant mode of heat loss from the pond surface, and the fresh water that would need to be added to maintain the pond’s inventory could potentially add significantly to operating costs. To this end, an experimental unit was constructed to examine and observe the behaviour of a salinity gradient solar pond (SGSP) before and after covering the pond with a thin layer (0.5 cm) of paraffin, with the aim of eliminating evaporation. The unit was run for 71 days in Nasiriyah, Iraq. This is the first study to attempt to completely eliminate the harmful effects of evaporation on solar pond performance using a liquid layer. The layer successfully eliminated the significant evaporation observed from the uncovered pond and crucially, while the salinity gradient through the non-convective zone remained substantially intact over the course of the study, the temperature profile became approximately uniform throughout the entire pond after about 50 days. This behaviour has significant implications for the construction of the pond, as it may mean that if evaporation can be largely suppressed, the salinity gradient may not be necessary for the pond to capture and efficiently store heat. Furthermore, the effects on evaporation of different climatic factors such as relative humidity, wind speed, ambient temperature and solar radiation were considered by analysing data measured on-site and longer-term meteorological data. The results showed that ambient temperature, solar radiation and humidity have a significant correlation with the evaporation rate; and their impact varies seasonally. A more comprehensive multiple regression analysis showed that ambient temperature has the highest impact on evaporation, while the effect of the incident solar radiation is insignificant. Such insights are vital in the design and siting of solar ponds, and can be used to minimise evaporative losses.
机译:太阳池提供了一种收集和存储入射太阳辐射的有效方法,使其成为需要低热量运行的光伏系统的有吸引力的替代方案。如果要成功实施这些池塘,则需要对控制其行为的机制和现象有更全面的了解。以前已经证明蒸发是池塘表面热量散失的主要方式,而为了维持池塘的存量而需要添加的淡水可能会显着增加运营成本。为此,建立了一个实验单元,以检查和观察盐度梯度太阳能池(SGSP)在用薄层石蜡(0.5 cm)覆盖池之前和之后的行为,目的是消除蒸发。该部队在伊拉克的纳西里耶运行了71天。这是首次尝试使用液体层完全消除蒸发对日光池性能的有害影响的研究。该层成功地消除了从裸露的池塘中观察到的大量蒸发,并且至关重要的是,在整个研究过程中,通过非对流区的盐度梯度基本上保持不变,而温度曲线在整个池塘中变得大致均匀。这种行为对池塘的建设具有重要意义,因为这可能意味着如果可以大大抑制蒸发,则盐度梯度对于池塘捕获和有效储热可能不是必需的。此外,通过分析现场测得的数据和长期的气象数据,考虑了不同气候因素(例如相对湿度,风速,环境温度和太阳辐射)对蒸发的影响。结果表明,环境温度,太阳辐射和湿度与蒸发速率具有显着的相关性。其影响随季节而变化。更全面的多元回归分析表明,环境温度对蒸发的影响最大,而入射太阳辐射的影响则微不足道。这些见解对于太阳能池的设计和选址至关重要,可用于最大程度地减少蒸发损失。

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