Highly enhanced thermoelectric energy harvesting from a high-temperature heat source by boosting thermal interface conduction

被引:21
作者
Kim, Duckjong [1 ]
Kim, Chihyun [1 ,2 ]
Park, Jinsung [2 ]
Kim, Tae Young [3 ]
机构
[1] KIMM, Dept Appl Nano Mech, 156 Gajeongbuk Ro, Daejeon 34103, South Korea
[2] Korea Univ, Dept Control & Instrumentat Engn, 2511 Sejong Ro, Sejong 30019, South Korea
[3] Chonbuk Natl Univ, Div Mech Syst Engn, 567 Baekje Daero, Jeonju Si 54896, Jeollabuk Do, South Korea
基金
新加坡国家研究基金会;
关键词
CONTACT RESISTANCE; PERFORMANCE; STRENGTH; PASTE;
D O I
10.1016/j.enconman.2018.12.108
中图分类号
O414.1 [热力学];
学科分类号
摘要
Thermoelectricity is regarded as one of the promising waste heat recovery candidates. A fundamental but effective method for the best use of thermoelectric generators (TEGs) is to maximize the heat flow crossing thermoelectric materials. The main focus of the present study was to develop a thermal interface material (TIM) with high thermal conductivity and temperature resistance as the key to minimizing the overall thermal resistance of the heat flow path of a TEG module operating under high-temperature conditions. In combination with a polyimide matrix and a multi-dimensional filler compound, a new TIM having stable heat conduction behavior at high temperatures was produced. The developed TIM was stable without losing mass up to similar to 500 degrees C, and its thermal conductivity reached 81.4 W/m.K. It was applied to the interface between a TEG and a heat source whose temperature ranged from 100 to 300 degrees C and, the effect of the thermal conductivity and interface thermal resistance of the TIM on thermoelectric power generation performance during onsite curing of the TIM was investigated. Reduction of the interface thermal resistance by the new TIM improved the power generation by, at most, 132.3 and 38.6% compared to cases without a TIM and with a conventional graphite foil TIM, respectively. In terms of energy conversion efficiency, the TEG with the new TIM showed maximum improvements of 73.2 and 20.9% over the cases without a TIM and with a graphite TIM for the same temperature difference across the TEG, respectively. In addition, thermal cyclic testing confirmed the long-lasting heat-conducting feature of the developed TIM. The present work clearly shows the potentially significant influence that TIMs have on the waste heat recovery performance of TEGs.
引用
收藏
页码:360 / 368
页数:9
相关论文
共 27 条
[1]  
[Anonymous], 2010, STANDARD TEST METHOD
[2]  
Beckwith T., 2007, Mechanical Measurements
[3]   Praseodymium Telluride: A High-Temperature, High-ZT Thermoelectric Material [J].
Cheikh, Dean ;
Hogan, Brea E. ;
Vo, Trinh ;
Von Allmen, Paul ;
Lee, Kathleen ;
Smiadak, David M. ;
Zevalkink, Alexandra ;
Dunn, Bruce S. ;
Fleurial, Jean-Pierre ;
Bux, Sabah K. .
JOULE, 2018, 2 (04) :698-709
[4]   Precise measurement of the performance of thermoelectric modules [J].
Diaz-Chao, Pablo ;
Muniz-Piniella, Andres ;
Selezneva, Ekaterina ;
Cuenat, Alexandre .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2016, 27 (08)
[5]   A review on nanostructures of high-temperature thermoelectric materials for waste heat recovery [J].
Fitriani ;
Ovik, R. ;
Long, B. D. ;
Barma, M. C. ;
Riaz, M. ;
Sabri, M. F. M. ;
Said, S. M. ;
Saidur, R. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 64 :635-659
[6]   Shear rheology of hard-sphere, dispersed, and aggregated suspensions, and filler-matrix composites [J].
Genovese, Diego B. .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2012, 171 :1-16
[7]   Implications of Interfacial Bond Strength on the Spectral Contributions to Thermal Boundary Conductance across Solid, Liquid, and Gas Interfaces: A Molecular Dynamics Study [J].
Giri, Ashutosh ;
Braun, Jeffrey L. ;
Hopkins, Patrick E. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (43) :24847-24856
[8]   Characterization of vertically oriented carbon nanotube arrays as high-temperature thermal interface materials [J].
Hao, Menglong ;
Huang, Zhengxing ;
Saviers, Kimberly R. ;
Xiong, Guoping ;
Hodson, Stephen L. ;
Fisher, Timothy S. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 106 :1287-1293
[9]  
I. AI Technology, 2012, TECHN DAT SHEET ME 8
[10]  
I. AI Technology, 2016, TECHN DAT SHEET TC 2