The concrete columns as a sensible thermal energy storage medium and a heater

被引:0
作者
Sebahattin Ünalan
Evrim Özrahat
机构
[1] University of Erciyes,Department of Mechanical Engineering, Faculty of Engineering
[2] University of Bozok,Department of Biosystems Engineering, Faculty of Engineering and Architecture
来源
Heat and Mass Transfer | 2014年 / 50卷
关键词
Thermal Comfort; Thermal Fatigue; Energy Charge; Thermal Energy Storage; Concrete Column;
D O I
暂无
中图分类号
学科分类号
摘要
This study investigated storage possibility of sensible thermal energy in the concrete columns of multi-storey buildings and the heating performance of the indoors with the stored energy. In the suggested system, the dry air heated in an energy center will be circulated in stainless steel pipes through columns. The sensible thermal energy would firstly be stored by means of forced convection in column medium. Then, the stored thermal energy will transfer by natural convection and radiation from the column surfaces to indoor spaces. The transient thermal calculations are realized for a flat of the 11-storey building in Kayseri city of Turkey. The thermal energy requirement of the flat is nearby 5.3 kW as an average of a winter season. The simplified transient calculations were carried out over a concrete hollow cylindrical column having outer radius of 0.31 m and inner radius of 0.05 m corresponding an averaged column section in the sample flat. The flow temperature was selected between T = 350 and 500 K, which are considerably lower than the temperature of 573 K assumed as a limit for thermal strength of the concrete in the literature. The flow velocity ranges were selected between V = 1.0 and 5.0 m/s. The initial temperature was assumed as 293 K. After the first energy charging process of 23 h, for T = 350 K and V = 1.0 m/s, the total heat flux from the column surfaces into indoors are nearby 5.5 kW. The first charging time required to reach the energy requirement of 5.3 kW is decreased by increasing the flow velocity and temperature. Also for 5.0 m/s–350 K and 5.0 m/s–450 K, this time can decrease to 10 and 4.5 h, respectively. In addition, with 4.0 m/s–360 K or 2.0 m/s–400 K, after the energy charging of 8 h, the energy requirement of 5.3 kW can be provided by the energy discharging of 16 h and the energy charging of 8 h during 7 days. The results are very attractive in terms of the building heating systems of the future.
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页码:1037 / 1052
页数:15
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共 42 条
[1]  
Sharma A(2009)Review on thermal energy storage with phase change materials and applications Renew Sustain Energy Rev 13 318-345
[2]  
Tyagi VV(2009)Dynamic characteristics and energy performance of buildings using phase change materials: a review Energy Convers Manag 50 3169-3181
[3]  
Chen CR(2008)Phase change material-based building architecture for thermal management in residential and conversial establishments Renew Sustain Energy Rev 12 39-64
[4]  
Buddhi D(2007)PCM thermal storage in buildings: a state of art Renew Sustain Energy Rev 11 1146-1166
[5]  
Zhu N(2004)A review on energy conservation in building applications with thermal storage by latent heat using phase change materials Energy Convers Manag 45 263-275
[6]  
Ma Z(2004)A review on phase change energy storage: materials and applications Energy Convers Manag 45 1597-1615
[7]  
Wang S(2005)Micro-encapsulated phase-change materials integrated into construction materials Sol Energy Mater Sol Cells 89 297-306
[8]  
Pasupathy A(1999)Interaction of an air system with concrete core conditioning Energy Build 30 139-145
[9]  
Velraj R(2000)Use of a cellular clayey concrete for a wall specially fitted with water pipes Energy Build 31 89-95
[10]  
Seeniraj RV(2006)Solid media thermal storage for parabolic trough power plants Sol Energy 80 1283-1289