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Energy conservative air conditioning system using silver nano-based PCM thermal storage for modern buildings

机译:使用银纳米基PCM蓄热器的节能保守型空调系统,用于现代建筑

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摘要

This work aims at improving the thermal performance and energy efficiency of chilled water based variable air volume air conditioning system integrated with the silver nanoparticles embedded latent thermal energy storage system. The latent thermal energy storage air conditioning system incorporated with the demand controlled ventilation and the economizer cycle ventilation schemes were experimentally investigated for the year-round building air conditioning application. Phase change material embedded with silver nanoparticles enabled it to exhibit improved heat transfer mechanisms in charging and discharging cycles. Experimental results suggest that the proposed air conditioning system achieved an on-peak and per day average energy savings potential of 36-58% and 24-51%, respectively, for year round operation while compared to the conventional air conditioning system. Similarly, while compared with a basically similar variable air volume air conditioning system, the proposed air conditioning system yielded 7.5-18.6% and 7.9-17.8% of on-peak and per day average energy conservative potential, respectively. Furthermore, test results infer that the combined effects produced by the silver nanoparticles embedded latent thermal energy storage system with the ventilation techniques augmented the overall thermal performance of the system. In total, the combined air conditioning system would be beneficial in terms of accomplishing good thermal comfort, acceptable indoor air quality and energy redistribution needs in buildings without sacrificing energy efficiency.
机译:这项工作旨在提高与银纳米粒子嵌入式潜热能存储系统集成的基于冷水的可变风量空调系统的热性能和能效。结合需求控制通风和省煤器循环通风方案的潜热储能空调系统,针对全年的建筑空调应用进行了实验研究。嵌入银纳米颗粒的相变材料使其在充电和放电循环中表现出改进的传热机理。实验结果表明,与常规空调系统相比,全年运行的空调系统在峰值和每天平均节能潜力分别为36-58%和24-51%。同样,与基本类似的可变风量空调系统相比,拟议的空调系统分别产生了7.5-18.6%和7.9-17.8%的峰值和每天平均能量保守潜力。此外,测试结果推断,嵌入银纳米颗粒的潜热储能系统与通风技术所产生的综合效果增强了系统的整体热性能。总体而言,组合式空调系统在不牺牲能源效率的情况下,在实现良好的热舒适性,可接受的室内空气质量和建筑物中的能量重新分配需求方面将是有益的。

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