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Development in paraffin based thermal storage system through shell and tubes heat exchanger with vertical fins

机译:通过带垂直翅片的管壳式热交换器开发基于石蜡的储热系统

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摘要

Researchers are committed to develop robust and responsive technologies for renewable energy sources to avert from reliance on fossil fuels, which is the main cause of global warming and climate change. Solar energy based renewable energy technologies are valued as an important substitute to bridge the gap between energy demand and generation. However, due to varying and inconsistent nature of solar energy during weather fluctuations, seasonal conditions and night times, the complete utilisation of technology is not guaranteed. Therefore thermal energy storage (TES) system is considered as an imperative technology to be deployed within solar energy systems or heat recovery systems to maximise systems’ efficiency and to compensate for varying thermal irradiance. TES system can capture and store the excess amount of thermal energy during solar peak hours or recover from systems that would otherwise discard this excess amount of thermal energy. This stored energy is then made available to be utilised during solar off peak hours or night times. Phase change material (PCM) based TES system is appraised as a viable option due to its excellent adoption to solar and heat recovery systems, higher thermal storage density and wide range of materials availability. However, due to its low thermal conductivity (≅ 0.2 W/mK), the rapid charging and discharging of TES system is a challenge. Therefore, there is a need for efficient and responsive heat exchange mechanism to boost the heat transfer within PCM. In this study, transient analysis of two-dimensional computational model of vertical shell and tube based TES system is conducted. Commercial grade paraffin (RT44HC) is employed in shell as thermal storage material due to its higher thermal storage density, thermo-physical stability and compatibility with container material. Water is made to flow in tubes as heat transfer fluid. In this numerical study, the parametric investigations are performed to determine the enhancement in charging rate, discharging rate and thermal storage capacity of TES system. The parametric investigations involve geometrical orientations of tubes in shell with and without fins, inlet temperature and mass flow rate of HTF. It is evident from numerical results that due to increase in effective surface area for heat transfer by vertical fins, the charging and discharging rate of paraffin based TES system can be significantly increased. Due to inclusion of vertical fins, conduction heat transfer is dominant mode of heat transfer in both charging and discharging processes. Furthermore, vertical fins do not restrict natural convection or buoyancy driven flow as compared to horizontal fins. Similarly, the inlet temperature has a noticeable impact on both charging and discharging process. In melting process, the sensible enthalpy is boosted due to rise in inlet temperature and thus the whole system thermal storage capacity is enhanced. Likewise, the effect of mass flow rate of HTF on charging and discharging rate is moderate as compared to inlet temperature of HTF. The numerical results are validated by experimental results. To conclude, these findings present an understanding into how to increase charging and discharging rate of TES system so as to provide feasible design solutions for widespread domestic and commercial utilisation of TES technology.
机译:研究人员致力于为可再生能源开发可靠的响应技术,以避免对化石燃料的依赖,而化石燃料是造成全球变暖和气候变化的主要原因。基于太阳能的可再生能源技术被认为是弥合能源需求与发电之间差距的重要替代品。但是,由于在天气波动,季节性条件和夜间,太阳能的性质不同且不一致,因此无法保证技术的完全利用。因此,热能存储(TES)系统被认为是部署在太阳能系统或热回收系统中以使系统效率最大化并补偿变化的热辐射的必要技术。 TES系统可以在太阳高峰时段捕获并存储多余的热能,或者从系统中回收,否则这些系统将丢弃这些多余的热能。然后,该存储的能量可用于在非高峰时段或夜间使用。基于相变材料(PCM)的TES系统因其在太阳能和热回收系统中的出色采用,更高的储热密度和广泛的材料可用性而被认为是可行的选择。但是,由于其低的导热系数(≅0.2 W / mK),TES系统的快速充电和放电是一个挑战。因此,需要有效且响应迅速的热交换机制来促进PCM内的热传递。在这项研究中,进行了基于垂直壳管式TES系统的二维计算模型的瞬态分析。商业级石蜡(RT44HC)由于具有较高的储热密度,热物理稳定性以及与容器材料的相容性,因此在外壳中用作储热材料。使水作为传热流体在管中流动。在此数值研究中,进行参数研究以确定TES系统的充电率,放电率和储热能力的提高。参数研究涉及带或不带散热片的壳体中管的几何方向,HTF的入口温度和质量流率。从数值结果可以明显看出,由于垂直翅片的有效传热表面积增加,基于石蜡的TES系统的充放电速率可以大大提高。由于包括垂直散热片,因此传导热传递是充电和放电过程中热传递的主要方式。此外,与水平翅片相比,垂直翅片不限制自然对流或浮力驱动的流动。同样,入口温度对充电和放电过程都有显着影响。在熔化过程中,由于进口温度的升高,显热焓提高,从而提高了整个系统的蓄热能力。同样,与HTF的入口温度相比,HTF的质量流量对充放电速率的影响适中。实验结果验证了数值结果。综上所述,这些发现为如何提高TES系统的充放电速率提供了一种理解,从而为TES技术在国内和商业上的广泛应用提供了可行的设计解决方案。

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