Highly conductive composites made of phase change materials and graphite for thermal storage

被引:296
作者
Pincemin, S. [1 ]
Olives, R. [1 ]
Py, X. [1 ]
Christ, M. [2 ]
机构
[1] Univ Perpignan, PROc Mat & Solar Energy Lab, CNRS, UPR 8521,PROMES, F-66100 Perpignan, France
[2] SGL Technol GmbH Postfach, D-86400 Meitingen, Germany
关键词
phase change materials (PCM); graphite; latent heat storage; simulation;
D O I
10.1016/j.solmat.2007.11.010
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Conventional phase change materials (PCMs) are already well known for their high thermal capacity and constant working temperature for thermal storage applications. Nevertheless, their low thermal conductivity (around 1 W m(-1) K-1) leads to low and decreasing heat storage and discharge powers. Up to now, this major drawback has drastically inhibited their possible applications in industrial or domestic fields. The use of graphite to enhance the thermal conductivity of those materials has been already proposed in the case of paraffin but the corresponding applications are restricted to low-melting temperatures (below 150 C). For many applications, especially for solar concentrated technologies, this temperature range is too low. In the present paper, new composites made of salts or eutectics and graphite flakes, in a melting temperature range of 200-300 degrees C are presented in terms of stability, storage capacity and thermal conductivity. The application of those materials to thermal storage is illustrated through simulated results according to different possible designs. The synergy between the storage composite properties and the interfacial area available for heat transfer with the working fluid is presented and discussed. (c) 2008 Elsevier B.V. All rights reserved.
引用
收藏
页码:603 / 613
页数:11
相关论文
共 21 条
[1]  
[Anonymous], 1970, THERMOPHYSICAL PROPE
[2]  
[Anonymous], **NON-TRADITIONAL**
[3]   A review on phase change energy storage: materials and applications [J].
Farid, MM ;
Khudhair, AM ;
Razack, SAK ;
Al-Hallaj, S .
ENERGY CONVERSION AND MANAGEMENT, 2004, 45 (9-10) :1597-1615
[4]   Thermal conductivity measurement of a PCM based storage system containing carbon fibers [J].
Frusteri, F ;
Leonardi, V ;
Vasta, S ;
Restuccia, G .
APPLIED THERMAL ENGINEERING, 2005, 25 (11-12) :1623-1633
[5]   Thermal conductivity enhancement of energy storage media using carbon fibers [J].
Fukai, J ;
Kanou, M ;
Kodama, Y ;
Miyatake, O .
ENERGY CONVERSION AND MANAGEMENT, 2000, 41 (14) :1543-1556
[6]   LAMINAR FORCED-CONVECTION HEAT-TRANSFER IN MICROCAPSULATED PHASE-CHANGE MATERIAL SUSPENSIONS [J].
GOEL, M ;
ROY, SK ;
SENGUPTA, S .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1994, 37 (04) :593-604
[7]   THE PHASE-DIAGRAM OF THE SYSTEM NANO3-KNO3 STUDIES BY DIFFERENTIAL SCANNING CALORIMETRY [J].
GREIS, O ;
BAHAMDAN, KM ;
UWAIS, BM .
THERMOCHIMICA ACTA, 1985, 86 (APR) :343-350
[8]   Review on sustainable thermal energy storage technologies, part I: Heat storage materials and techniques [J].
Hasnain, SM .
ENERGY CONVERSION AND MANAGEMENT, 1998, 39 (11) :1127-1138
[9]   Two-tank molten salt storage for parabolic trough solar power plants [J].
Herrmann, U ;
Kelly, B ;
Price, H .
ENERGY, 2004, 29 (5-6) :883-893
[10]   CHARACTERIZATION OF ALKANES AND PARAFFIN WAXES FOR APPLICATION AS PHASE-CHANGE ENERGY-STORAGE MEDIUM [J].
HIMRAN, S ;
SUWONO, A ;
MANSOORI, GA .
ENERGY SOURCES, 1994, 16 (01) :117-128