Experimental and numerical investigation of a real-scale air to multiple PCM heat exchanger

被引:5
作者
Kareem, Bashir Eskander [1 ]
Adham, Ahmed Mohammed [1 ]
Yaqob, Banipal Nanno [1 ]
机构
[1] Erbil Polytech Univ, Erbil Tech Engn Coll, Dept Tech Mech & Energy Engn, Erbil, Iraq
来源
JOURNAL OF BUILDING ENGINEERING | 2024年 / 89卷
关键词
Phase change materials; Multiple PCM-To-air heat exchanger; Latent heat storage system; Free cooling; SYSTEM; HOT;
D O I
10.1016/j.jobe.2024.109323
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Energy consumption by residential sectors has proliferated due to urbanization and lifestyle changes. Passive cooling and heating systems can reduce energy consumption and CO2 emissions in residential and commercial sectors. Phase change materials provide an efficient solution for passive energy storage, addressing a building's needs for free cooling and heating. These materials absorb and release heat energy, enhancing the overall efficiency of the energy management system. By employing energy storage devices, it becomes feasible to reduce and shift peak loads to off-peak hours. This study optimized the size and configuration of air-to-multiple PCM heat exchanger through the utilization of a 2D ANSYS (Fluent 19.2) model. This study employs multiple phase change materials (PCMs) with varying melting temperatures as a heat transfer technique to reduce the melting and solidifying times of the PCMs. Furthermore, it was observed that the arrangement of PCMs in series affected melting and solidification times, so two scenarios have been examined. The air-to-multiple PCM system has been investigated through numerical simulations and experimental analyses, focusing on the liquid fractions within the PCM and the outlet air temperatures across the air channels. The total time for entirely melting PCMs RT25HC and RT21HC is less than 4 h, but the solidification time for PCM-RT21HC needs more than 12 h. In both scenarios, PCM-RT21HC melted first, while PCM-RT25HC solidified first.
引用
收藏
页数:15
相关论文
共 50 条
[41]   Development of PCM-to-air heat exchanger for integration in building envelope-modeling and validation [J].
Dardir, Mohamed ;
El Mankibi, Mohamed ;
Haghighat, Fariborz ;
Klimes, Lubomir .
SOLAR ENERGY, 2019, 190 :367-385
[42]   Performance Analysis of PCM Ceiling Coupling with Earth-Air Heat Exchanger for Building Cooling [J].
Lu, Shilei ;
Liang, Bin ;
Li, Xinhua ;
Kong, Xiangfei ;
Jia, Wei ;
Wang, Lu .
MATERIALS, 2020, 13 (13) :1-17
[43]   Heat transfer enhancement in an air to water heat exchanger with discontinuous helical turbulators; experimental and numerical studies [J].
Sheikholeslami, M. ;
Ganji, D. D. .
ENERGY, 2016, 116 :341-352
[44]   Numerical and experimental investigation of a PCM-based thermal storage unit for solar air systems [J].
Charvat, Pavel ;
Klimes, Lubomir ;
Ostry, Milan .
ENERGY AND BUILDINGS, 2014, 68 :488-497
[45]   NUMERICAL SIMULATION OF A COMPOSITE METAL FOAM-PCM AIR HEAT EXCHANGER USING ROD PTC HEATING ELEMENTS [J].
Sardari, Pouyan Talebizadeh ;
Giddings, Donald ;
Walker, Gavin S. ;
Gillott, Mark ;
Grant, David .
PROCEEDINGS OF THE ASME 13TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, 2019, 2019,
[46]   Experimental investigation of the effect of dynamic melting in a cylindrical shell-and-tube heat exchanger using water as PCM [J].
Gasia, Jaume ;
Tay, N. H. Steven ;
Belusko, Martin ;
Cabeza, Luisa F. ;
Bruno, Frank .
APPLIED ENERGY, 2017, 185 :136-145
[47]   NUMERICAL STUDY OF TUBE DIAMETER EFFECTS ON SOLIDIFICATION OF PCM IN A COMPACT HEAT EXCHANGER [J].
Sharma, Amrita ;
Patel, Parth ;
Singh, Shobhana ;
Sharma, Manvendra ;
Mondal, Bobin ;
Kothadia, Hardik .
JOURNAL OF ENHANCED HEAT TRANSFER, 2022, 29 (03) :33-49
[48]   Numerical investigation on conventional and PCM heat sinks under constant and variable heat flux conditions [J].
Prasad, J. Sunku ;
Anandalakshmi, R. ;
Muthukumar, P. .
CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2021, 23 (04) :1105-1120
[49]   Experimental and numerical investigation on the novel latent heat exchanger with paraffin/expanded graphite composite [J].
Lin, Wenzhu ;
Wang, Qianhao ;
Fang, Xiaoming ;
Gao, Xuenong ;
Zhang, Zhengguo .
APPLIED THERMAL ENGINEERING, 2018, 144 :836-844
[50]   Investigation of the performance of a cylindrical PCM-to-air heat exchanger (PAHE) for free ventilation cooling in fluctuating ambient environments [J].
Yang, Dong ;
Shi, Rui ;
Wei, Haibin ;
Du, Jinhui ;
Wang, Jilibo .
SUSTAINABLE CITIES AND SOCIETY, 2019, 51