Abstract Experimental and numerical study of solidifying phase-change material in a triplex-tube heat exchanger with longitudinal/triangular fins
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Experimental and numerical study of solidifying phase-change material in a triplex-tube heat exchanger with longitudinal/triangular fins

机译:具有纵向/三角形翅片的三重管式换热器中凝固相变材料的实验和数值研究

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AbstractLatent heat thermal energy storage (LHTES) system uses a large triplex-tube heat exchanger (TTHX) with internal longitudinal fins incorporating phase-change material (PCM) was experimentally designed, tested, and evaluated. The PCM was entirely solidified using the both-sides freezing, as a main method under the influence of average discharging temperature was at 65°C. The changes in the mass flow rates of 16.2, 29.4, and 37.5min/kg were investigated. The solidification rate increased, as the mass flow rate increased, therefore the mass flow rate at 37.4kg/min consumed a short time, compared with the 16.2 and 29.4kg/min. Furthermore, the PCM completely solidified, as fast as at position B than position A from the entrance of the HTF-tube because of temperature variations in axial and angular direction during discharging process. Two types of extended surfaces, namely the longitudinal and triangular fins in various configuration were numerically studied. A significant enhancement was observed using internal, internal-external, and external triangular fins at 14%, 16%, and 18% respectively, compared to longitudinal fins configuration. Consequently, the external triangular finned tube has been considered the most efficient for the brief solidification PCM (630min). The total energy released for the both types of fins were compared. The simulation results were agreed well with the experimental results.HighlightsThe PCM solidification for both-sides freezing was experimentally accomplished at 65°C.Longitudinal and triangular fins model of the TTHX were numerically studied.The influence of change in the mass flow rates during discharging process was investigated.External triangular fins model was the most efficient for shorter solidification time (630min).
机译: 摘要 潜热热能存储(LHTES)系统使用大型三重管式热交换器(TTHX),内部纵向翅片具有相变材料(PCM)经过实验设计,测试和评估。 PCM通过双面冷冻完全固化,因为在平均放电温度的影响下,主要方法是在65°C。研究了质量流率分别为16.2、29.4和37.5min / kg的变化。凝固速率随质量流量的增加而增加,因此与16.2和29.4kg / min相比,质量流量在37.4kg / min时消耗的时间较短。此外,由于在放电过程中轴向和角度方向的温度变化,PCM从HTF管的入口开始完全固化,与位置B相比,位置A的固化要快于位置A。数值研究了两种类型的延伸表面,即各种结构的纵向鳍和三角形鳍。与纵向鳍片配置相比,使用内部,内部-外部和外部三角形鳍片分别观察到了显着增强,分别为14%,16%和18%。因此,外部三角形翅片管被认为是短暂固化PCM(630分钟)最有效的方法。比较了两种鳍片释放的总能量。仿真结果与实验结果吻合良好。 突出显示 双面冻结的PCM固化均在65°C下通过实验完成。 对TTHX的纵向和三角形鳍模型进行了数值研究。 在此期间质量流量变化的影响研究了放电过程。 外部三角鳍模型为缩短凝固时间(630分钟)最有效。

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