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Performance analysis and optimal charging time investigation of solar air heater with packed bed sensible heat storage device

机译:用填充床合理蓄热装置的太阳能空气加热器的性能分析及最优充电时间调查

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摘要

The amount of stored thermal energy and the stratification in the packed bed thermal energy storage systems decrease in the afternoon because of the reduction in the solar power and solar-air heater panel's collector outlet temperature, so the charging process must be ceased at a particular instant. The optimal charging period is determined by considering the degree of stratification, energy/exergy stored, and the energy discharged during the 6 h of space heating. The proposed packed bed is divided into three sections lengthwise. Different bed materials have been placed separately in these regions regarding their volumetric heat capacity to promote stratification and sensible heat storage during charging. The bed's stratification level is determined via an exergy analysis to evaluate the discharge efficiency of the bed. The particle diameter and discharge air velocity on the system's thermal and hydrodynamic performance are inspected. The fan energy consumption during the discharge process is evaluated in the analyses. Distinctively, the air velocity is varied to obtain a minimum heat load of 18 kW for 6 h discharge process. A transient, one-dimensional finite-difference model is developed and validated with an experimental study conducted in the literature. Thermal energy storage and the stratification level are improved thanks to segmented bed by 85% and 135%, respectively.
机译:储存的热能和包装床热能存储系统中的分层的数量在下午减少,因为太阳能和太阳能加热器面板的收集器出口温度降低,因此必须在特定的瞬间停止充电过程。通过考虑分层,能量/漏洞的程度来确定最佳充电时段,以及在空间加热的6小时内排出的能量。拟议的填充床纵向分为三个部分。在这些区域中分别放置了不同的床材料,其有关其体积热容量,以促进充电期间的分层和明智的蓄热。床的分层水平是通过Deerteny分析确定的,以评估床的放电效率。检查了系统热和流体动力学性能的粒径和放电空气速度。在分析中评估放电过程中的风扇能量消耗。显着地,变化空气速度以获得6小时放电过程的最小热负荷为18 kW。通过在文献中进行的实验研究开发和验证了瞬态一维有限差异模型。由于分段床分别提高了85%和135%,提高了热能储存和分层水平。

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