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Investigation on the thermal performance of a high temperature packed bed thermal energy storage system containing carbonate salt based composite phase change materials

机译:含碳酸盐基复合相变材料的高温包装床热能储存系统热性能研究

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This paper concerns the thermal performance of a high temperature packed bed thermal energy storage (TES) system containing carbonate salt based composite phase change materials (CPCMs) that made of a eutectic carbonate salt of NaLiCO3 (phase change material, PCM), MgO (ceramic skeleton material, CSM) and graphite flakes (thermal conductivity enhancement material, TCEM). A rectangular packed bed configuration containing CPCMs bricks is built and a three-dimensional computational model is established to study the thermal performance of the system. The enthalpy-porosity approach and surface-to-surface (S2S) radiation model are respectively adopted to model the phase change process and the radiation heat transfer inside the system. A ferric oxide is also used as the sensible heat storage material to compare with the CPCMs based system. The numerical model is first compared with the published experimental data and reasonably good agreements are obtained, indicating the confidence of the model. Extensive modelling is then performed under different conditions to investigate the effects of various parameters including the radiation heat transfer, TCEM mass loading and heat transfer fluid (HTF) operation conditions on the system performance. The results indicate that the system containing CPCMs shows better charging and discharging performance in comparison with the system containing ferric oxide due to the large energy storage density and high thermal conductivity. The thermal radiation has an important influence on the system performance. The system heat transfer efficiency is apparently enhanced when the radiation heat transfer influence is taken into consideration. When the emissivity is at delta = 1, the total charging period of the system is respectively shortened by 10.6% and 25.7% than that of the emissivities at delta = 0.5 and delta = 0. The use of TCEM in the CPCMs significantly enhances the heat transfer performance of the system. An increase in the TCEM loading from 0% to 30% respectively leads to the reduction in charging and discharging processes by almost 30.3% and 29.2%. The results also indicate that, for a fixed charging/discharging power, both the overall charging and discharging periods of the system decrease with the increase of Re number or decrease of Ste number since an increase in the Re number (decrease in the Ste number) leads to an overall enhancement of the heat transfer between the HTF and the CPCMs bricks and hence an overall improvement in the charging and discharging rates.
机译:本文涉及含有碳酸盐基复合相变材料(CPCMS)的高温填充床热能储存(TES)系统的热性能,所述复合相变材料(CPCMS)由Nalico3(相变材料,PCM),MgO(陶瓷)制成骨架材料,CSM)和石墨薄片(导热率增强材料,TCEM)。构建了包含CPCMS砖块的矩形包装床配置,建立了三维计算模型来研究系统的热性能。分别采用焓 - 孔隙率接近和表面到表面(S2S)辐射模型来建模相变过程和系统内部的辐射热传递。氧化铁还用作可显着的储热材料,以与基于CPCMS的系统进行比较。首先与公布的实验数据相比,获得了数值模型,并获得了合理的协议,表明模型的置信度。然后在不同的条件下进行广泛的建模,以研究各种参数的效果,包括辐射传热,TCEM质量加载和传热流体(HTF)操作条件对系统性能。结果表明,含有CPCMS的系统显示出更好的充电和放电性能,与含有大量的储能密度和高导热率为具有氧化铁的系统相比。热辐射对系统性能具有重要影响。当考虑辐射传热影响时,系统传热效率显然增强。当发射率处于Δ= 1时,系统的总充电周期分别比Delta = 0.5和Delta = 0的发射率的总充电周期分别缩短了10.6%和25.7%。在CPCMS中使用TCEM的使用显着增强了热量系统转移性能。从0%到30%的TCEM负荷的增加分别导致充电和放电过程的降低近30.3%和29.2%。结果还表明,对于固定充电/放电功率,系统的整体充电和放电周期随着RE编号的增加(STE数减少)的RE数或STE数减小的增加而降低导致HTF与CPCMS砖之间的热传递的总体增强,从而整体改善充电和放电速率。

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