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An experimental investigation of discharge/solidification cycle of paraffin in novel shell and tube with longitudinal fins based latent heat storage system

机译:基于纵向鳍片的潜热蓄热系统新型管壳中石蜡排放/凝固循环的实验研究

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摘要

In this article, the discharging cycles of paraffin in novel latent heat storage (LHS) unit are experimentally investigated. The novel LHS unit includes shell and tube With longitudinal fins based heat exchanger and paraffin as thermal energy storage material. The experimental investigations are focused on identifying the transient temperature performance, effective mode of heat transfer, accumulative thermal energy discharge and mean discharge power of paraffin in LHS unit. Moreover, the influences of operating conditions such as the inlet temperature and volume flow rate of heat transfer fluid (HTF) on thermal behaviour of LHS unit are experimentally studied. The transient temperature profiles and photographic characterisation of liquid-solid transition of paraffin in LHS unit provide a good understanding of temperature distribution and dominant mode of heat transfer. It is noticed that during discharging cycles, natural convection has an insignificant impact on thermal performance of LHS unit. However, due to inclusion of extended longitudinal fins, conduction is the dominant mode of heat transfer. It is noticed that due to the development of solidified paraffin around tubes and longitudinal fins, the overall thermal resistance is increased and thus, discharging rate is affected. However, by regulating the inlet temperature or volume flow rate of HTF, the influence of overall thermal resistance is minimised. Mean discharge power is enhanced by 36.05% as the inlet temperature is reduced from 15 degrees C to 5 degrees C. Likewise, the mean discharge power is improved by 49.75% as the volume flow rate is increased from 1.5 l/min to 3 l/min. Similarly, with an increase in volume flow rate, the discharge time of equal amount of thermal energy 12.09 MJ is reduced by 24%. It is established that by adjusting operating conditions, the required demand of output temperature and mean discharge power can be attained. Furthermore, this novel LHS unit can meet large scale thermal energy demands by connecting several units in parallel and thus, it has potential to be employed in wide-ranging domestic and commercial applications.
机译:在本文中,对新型潜热存储(LHS)单元中石蜡的排放循环进行了实验研究。新型的LHS装置包括带纵向翅片的热交换器和石蜡作为储热材料的壳管式。实验研究的重点是确定LHS装置中的瞬时温度性能,有效的传热模式,累积的热能排放和石蜡的平均排放功率。此外,实验研究了诸如传热流体的入口温度和体积流量等操作条件对LHS单元热性能的影响。 LHS单元中石蜡的瞬态温度曲线和液-固转变的照相特征可很好地理解温度分布和主要的传热模式。值得注意的是,在放电循环中,自然对流对LHS单元的热性能影响不大。然而,由于包括延伸的纵向鳍片,传导是传热的主要方式。注意到,由于在管和纵向翅片周围形成了凝固的石蜡,所以总的热阻增加,因此影响了排出速率。但是,通过调节HTF的入口温度或体积流量,可以将整体热阻的影响降到最低。随着入口温度从15摄氏度降低到5摄氏度,平均放电功率提高36.05%。同样,随着体积流量从1.5升/分钟增加到3升/分钟,平均放电功率提高49.75%。分钟同样,随着体积流量的增加,等量热能12.09 MJ的放电时间减少了24%。已经确定,通过调节操作条件,可以达到输出温度和平均放电功率的要求。此外,这种新型的LHS单元可以通过并联连接多个单元来满足大规模的热能需求,因此,它具有在广泛的家庭和商业应用中使用的潜力。

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