Experimental study on the influence of porous foam metal filled in the core flow region on the performance of thermoelectric generators

被引:57
作者
Li, Yanzhe
Wang, Shixue [1 ]
Zhao, Yulong
Lu, Chi
机构
[1] Tianjin Univ, Sch Mech Engn, Tianjin, Peoples R China
关键词
Thermoelectricity; Metal foam; Waste heat recovery; Heat-transfer enhancement; Core flow; ROLL CAKE TYPE; POWER-GENERATION; MATHEMATIC SIMULATION; HEAT-EXCHANGERS; TEMPERATURE; TUBES; OPTIMIZATION; DESIGN; SYSTEM; MEDIA;
D O I
10.1016/j.apenergy.2017.06.089
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
Semiconductor thermoelectric generator technology is a new type of power generation technology. The use of semiconductor thermoelectric power generation technology for automobile exhaust heat recovery and utilization can effectively improve energy efficiency. In this study, a test system is set up to simulate the automobile exhaust, and the effect of core flow heat-transfer enhancement on the performance of the thermoelectric generator is investigated using thermoelectric module Bi2Te3 to recover the waste heat from automobile exhaust and convert it into electrical energy. The results show that filling foam metal can significantly improve the performance of the generator. The convective heat-transfer coefficient of the channel increases by four times, and the output power of the thermoelectric generator is doubled when the intake flow rate is 120 m(3)/h, the inlet temperature is 300 degrees C, the pore density of the foam metal is 20 pores per inch, and the filling rate of the foam metal is 75%. In addition, the improvement in the performance of the generator is different under different intake air flows, different foam-metal filling rates, and different pore densities. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:634 / 642
页数:9
相关论文
共 23 条
[1]   Model of Heat Exchangers for Waste Heat Recovery from Diesel Engine Exhaust for Thermoelectric Power Generation [J].
Baker, Chad ;
Vuppuluri, Prem ;
Shi, Li ;
Hall, Matthew .
JOURNAL OF ELECTRONIC MATERIALS, 2012, 41 (06) :1290-1297
[2]  
Birkholz U., 1988, PROC 7 INT C THERMOE, P124
[3]   Performance optimization of a two-stage semiconductor thermoelectric-generator [J].
Chen, LG ;
Li, J ;
Sun, FR ;
Wu, C .
APPLIED ENERGY, 2005, 82 (04) :300-312
[4]   Modelling heat exchangers for thermoelectric generators [J].
Esarte, J ;
Min, G ;
Rowe, DM .
JOURNAL OF POWER SOURCES, 2001, 93 (1-2) :72-76
[5]   Modeling a Thermoelectric Generator Applied to Diesel Automotive Heat Recovery [J].
Espinosa, N. ;
Lazard, M. ;
Aixala, L. ;
Scherrer, H. .
JOURNAL OF ELECTRONIC MATERIALS, 2010, 39 (09) :1446-1455
[6]   Modeling, experimental study and optimization on low-temperature waste heat thermoelectric generator system [J].
Gou, Xiaolong ;
Xiao, Heng ;
Yang, Suwen .
APPLIED ENERGY, 2010, 87 (10) :3131-3136
[7]   Influence of different cooling methods on thermoelectric performance of an engine exhaust gas waste heat recovery system [J].
He, Wei ;
Wang, Shixue ;
Lu, Chi ;
Zhang, Xing ;
Li, Yanzhe .
APPLIED ENERGY, 2016, 162 :1251-1258
[8]   Experiments and simulations on low-temperature waste heat harvesting system by thermoelectric power generators [J].
Hsu, Cheng-Ting ;
Huang, Gia-Yeh ;
Chu, Hsu-Shen ;
Yu, Ben ;
Yao, Da-Jeng .
APPLIED ENERGY, 2011, 88 (04) :1291-1297
[9]   Thermoelectric module and generator for gasoline engine vehicles [J].
Ikoma, K ;
Munekiyo, M ;
Furuya, K ;
Kobayashi, M ;
Izumi, T ;
Shinohara, K .
XVII INTERNATIONAL CONFERENCE ON THERMOELECTRICS, PROCEEDINGS ICT 98, 1998, :464-467
[10]   Analysis and modeling of effective temperature differences and electrical parameters of thermoelectric generators [J].
Kim, Shiho .
APPLIED ENERGY, 2013, 102 :1458-1463