Critical analysis of the T-history method: A fundamental approach

被引:36
作者
Badenhorst, Heinrich [1 ]
Cabeza, Luisa F. [2 ]
机构
[1] Univ Pretoria, Dept Chem Engn, Lynnwood Rd, ZA-0083 Pretoria, South Africa
[2] Univ Lleida, GREA Innovacio Concurrent, Edifici CREA ,Pere Cabrera S-N, Lleida 25001, Spain
基金
欧盟地平线“2020”;
关键词
T-history; Phase change; Convective heat transfer; PHASE-CHANGE MATERIALS; THERMAL-ENERGY STORAGE; HEAT-TRANSFER; GRAPHITE NANOPLATELETS; TEMPERATURE CURVES; ENTHALPY; CONDUCTIVITY; IMPROVEMENT; FOAMS;
D O I
10.1016/j.tca.2017.02.005
中图分类号
O414.1 [热力学];
学科分类号
摘要
Energy storage is a key challenge to a sustainable energy supply. To design new storage systems accurate and representative thermal property measurements are essential. The T-history method is quick and uncomplicated, however numerous adaptations have been proposed over the years. In this study these methods have been classified and critically assessed based on their mathematical formulation and experimental configuration. They can be broadly categorized according to one of three assumptions regarding the heat transfer coefficient for natural convection: it is constant either as a function of time or temperature, or it is negligible. This work proves in addition that the heat transfer coefficient for natural convection, varies both as a function of time and temperature. This is demonstrated both experimentally and through rigorous simulation of the proposed configurations. Thus T-history methods which show the most promise for precise and unambiguous measurements eliminate convection by making conduction the dominant thermal resistance in the system. These techniques can be tailored to different materials and do not require a simultaneous reference due to the use of a rigorous fundamental model compared to the lumped parameter approximation. The addition of heat flux sensors to quantify actual heat losses is recommended for absolute measurement certainty. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:95 / 105
页数:11
相关论文
共 34 条
[1]  
[Anonymous], 2007, Introduction to Heat Transfer
[2]   Application of the transient hot-wire technique to the measurement of the thermal conductivity of solids [J].
Assael, MJ ;
Dix, M ;
Gialou, K ;
Vozar, L ;
Wakeham, WA .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2002, 23 (03) :615-633
[3]   The use of graphite foams for simultaneous collection and storage of concentrated solar energy [J].
Badenhorst, Heinrich ;
Fox, Natasha ;
Mutalib, Ashraf .
CARBON, 2016, 99 :17-25
[4]   Performance comparison of three models for thermal property determination from experimental phase change data [J].
Badenhorst, Heinrich .
THERMOCHIMICA ACTA, 2015, 616 :69-78
[5]   Comparative analysis of graphite oxidation behaviour based on microstructure [J].
Badenhorst, Heinrich ;
Focke, Walter .
JOURNAL OF NUCLEAR MATERIALS, 2013, 442 (1-3) :75-82
[6]   Effects of various carbon nanofillers on the thermal conductivity and energy storage properties of paraffin-based nanocomposite phase change materials [J].
Fan, Li-Wu ;
Fang, Xin ;
Wang, Xiao ;
Zeng, Yi ;
Xiao, Yu-Qi ;
Yu, Zi-Tao ;
Xu, Xu ;
Hu, Ya-Cai ;
Cen, Ke-Fa .
APPLIED ENERGY, 2013, 110 :163-172
[7]   Increased Thermal Conductivity of Eicosane-Based Composite Phase Change Materials in the Presence of Graphene Nanoplatelets [J].
Fang, Xin ;
Fan, Li-Wu ;
Ding, Qing ;
Wang, Xiao ;
Yao, Xiao-Li ;
Hou, Jian-Feng ;
Yu, Zi-Tao ;
Cheng, Guan-Hua ;
Hu, Ya-Cai ;
Cen, Ke-Fa .
ENERGY & FUELS, 2013, 27 (07) :4041-4047
[8]  
Gschwander S., 2011, IEA SOLAR HEATING CO
[9]   Accuracy improvement of T-history method for measuring heat of fusion of various materials [J].
Hong, H ;
Kim, SK ;
Kim, YS .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2004, 27 (04) :360-366
[10]   Design and Validation of a High-Temperature Comparative Thermal-Conductivity Measurement System [J].
Jensen, C. ;
Xing, C. ;
Folsom, C. ;
Ban, H. ;
Phillips, J. .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2012, 33 (02) :311-329