Enhanced performances of macro-encapsulated phase change materials (PCMs) by intensification of the internal effective thermal conductivity

被引:59
作者
Calvet, Nicolas [1 ]
Py, Xavier [1 ]
Olives, Regis [1 ]
Bedecarrats, Jean-Pierre [2 ]
Dumas, Jean-Pierre [2 ]
Jay, Frederic [3 ]
机构
[1] Univ Perpignan Via Domitia, PROMES CNRS Lab, Tecnosud, F-66100 Perpignan, France
[2] Univ Pau & Pays Adour, LaTEP EA 1932, Lab Therm Energet & Proc, ENSGTI, F-64075 Pau, France
[3] CRISTOPIA Energy Syst, F-06140 Vence, France
关键词
Phase change materials (PCMs); Thermal energy storage (TES); Heat transfer enhancement; Macro-encapsulation; Thermal conductivity; Graphite; HEAT-TRANSFER ENHANCEMENT; ENERGY-STORAGE; GRAPHITE; CAPSULES; DESIGN;
D O I
10.1016/j.energy.2013.03.078
中图分类号
O414.1 [热力学];
学科分类号
070201 [理论物理];
摘要
Performances of spherical macrocapsules (nodules) currently used in latent heat-based thermal energy storage (TES) industrial units have been enhanced by the addition of graphite particles to the phase change material (PCM). Two different graphite types, namely graphite flakes (GF) and expanded natural graphite (ENG), have been tested at constant PCM content in the nodule. Using water as PCM, both graphite types have been proven to lead to significant reduction in storage/discharge durations (up to 35% and 58% for a graphite load of only 13%(wt)) without reduction in storage capacity. Therefore, enhancement using ENG greatly enhances efficiency, but it is also more expensive. GF maybe preferred, considering both its ease of use and economical issues. At the highest experimented graphite load (13%wt) the overall thermal behavior of the nodule is advantageously improved, with simultaneously no apparent supercooling,a very stable phase change plateau, and very sharp and straight sensible heat exchange periods. The graphites induce both extensive thermal power enhancement and improvement in thermal behaviors. These experimental results have been simulated using numerical Comsol (R)-based models with success. The simulated charge/discharge steps have shown that the air gap present in the nodules induces modifications in the phase change front profile only at the beginning of the periods. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:956 / 964
页数:9
相关论文
共 24 条
[1]
A review of materials, heat transfer and phase change problem formulation for latent heat thermal energy storage systems (LHTESS) [J].
Agyenim, Francis ;
Hewitt, Neil ;
Eames, Philip ;
Smyth, Mervyn .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (02) :615-628
[2]
[Anonymous], RENEWABLE ENERGY ITS
[3]
Study of a phase change energy storage using spherical capsules. Part II: Numerical modelling [J].
Bedecarrats, J. P. ;
Castaing-Lasvignottes, J. ;
Strub, F. ;
Dumas, J. P. .
ENERGY CONVERSION AND MANAGEMENT, 2009, 50 (10) :2537-2546
[4]
Materials used as PCM in thermal energy storage in buildings: A review [J].
Cabeza, L. F. ;
Castell, A. ;
Barreneche, C. ;
de Gracia, A. ;
Fernandez, A. I. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2011, 15 (03) :1675-1695
[5]
Heat transfer enhancement in water when used as PCM in thermal energy storage [J].
Cabeza, LF ;
Mehling, H ;
Hiebler, S ;
Ziegler, F .
APPLIED THERMAL ENGINEERING, 2002, 22 (10) :1141-1151
[6]
Use of microencapsulated PCM in concrete walls for energy savings [J].
Cabeza, Luisa F. ;
Castellon, Cecilia ;
Nogues, Miquel ;
Medrano, Marc ;
Leppers, Ron ;
Zubillaga, Oihana .
ENERGY AND BUILDINGS, 2007, 39 (02) :113-119
[7]
Heat transfer enhancement in energy storage in spherical capsules filled with paraffin wax and metal beads [J].
Ettouney, H ;
Alatiqi, I ;
Al-Sahali, M ;
Al-Hajirie, K .
ENERGY CONVERSION AND MANAGEMENT, 2006, 47 (02) :211-228
[8]
High performance storage composite for the enhancement of solar domestic hot water systems Part 1: Storage material investigation [J].
Haillot, D. ;
Goetz, V. ;
Py, X. ;
Benabdelkarim, M. .
SOLAR ENERGY, 2011, 85 (05) :1021-1027
[9]
Thermal response in thermal energy storage material around heat transfer tubes: effect of additives on heat transfer rates [J].
Hamada, Y ;
Ohtsu, W ;
Fukai, J .
SOLAR ENERGY, 2003, 75 (04) :317-328
[10]
Hartmann N., 2012, APPL ENERG, V93, P541