Heat Transfer Analysis and Performance Investigation of Generator Thermoelectric Applied in LPG Stove Waste Heat Recovery

被引:0
作者
Atmoko, Nugroho Tri [1 ]
Riyadi, Tri Widodo Besar [2 ]
Utomo, Bagus Radiant [2 ,3 ]
Jamaldi, Agus [1 ]
Nugroho, Arif Setyo [1 ]
机构
[1] Sekolah Tinggi Teknol Warga Surakarta, Mech Engn, Baki 57552, Sukoharjo, Indonesia
[2] Univ Muhammadiyah Surakarta, Fac Engn, Dept Mech Engn, Jl A Yani Tromol Pos 1, Kartasura 57102, Surakarta, Indonesia
[3] Univ Sebelas Maret, Res Ctr Sustainable Thermofluids, Jl Ir Sutami 36A, Kentingan 57126, Surakarta, Indonesia
来源
INTERNATIONAL JOURNAL OF RENEWABLE ENERGY RESEARCH | 2023年 / 13卷 / 01期
关键词
Waste heat; LPG stove; TEG; cooling system; heat transfer; PARAMETERS; DESIGN;
D O I
10.20508/ijrer.v13i1.13137.g8696
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
A thermoelectric generator (TEG) can convert heat from LPG gas stoves into electricity. The application of this conversion technology consists of three major components: a hot side heat exchanger, a TEG, and a cold side heat exchanger. This study investigates the effects of TEG cold surface cooling system variations on heat transfer and the thermoelectric generator module's electric performance when applied to convert liquefied petroleum gas (LPG) stove waste heat. Four thermoelectric generator modules are placed outside the plate and connected in series to take advantage of the waste heat. Three different cooling systems are used to cool the thermoelectric generator module's cold surface: a heatsink, a heatsink with a fan, and a water block cooling system. Measurement and data retrieval are performed using the temperature and electrical output from the TEG module. Temperature and electrical output from the thermoelectric generator module are measured and data retrieved, while the heat transfer that occurs in the cooling system is calculated using the formulation. The results indicate that the cooling system's heat absorption capacity increases by more than 300% when the heatsink with a fan is used. When compared to a heatsink with a fan cooling system (i.e., 47.09 J/s), using a water block as a cooling system can increase heat absorption by 27% or a value of 60.00 J/s. Based on the performance of the thermoelectric generator module in generating electricity, it is clear that when comparing an air-cooling system to a water block-based cooler, the water block-based cooler produces more power. Water cooling is the optimal method for obtaining a high-power output from the TEG module when this conversion technology is applied to convert LPG stove waste heat to electrical energy.
引用
收藏
页码:70 / 76
页数:7
相关论文
共 50 条
[31]   Investigation on waste heat recovery of a nearly kilowatt class thermoelectric generation system mainly based on radiation heat transfer [J].
Hu, Xiaoming ;
Jiang, Chengpeng ;
Fan, Xi'An ;
Feng, Bo ;
Liu, Peihai ;
Zhang, Yanglin ;
Li, Rusong ;
He, Zhu ;
Li, Guangqiang ;
Li, Yawei .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2025, 47 (01) :1176-1185
[32]   Performance analysis of a multilayer thermoelectric generator for exhaust heat recovery of a heavy-duty diesel engine [J].
He, Min ;
Wang, Enhua ;
Zhang, Yuanyin ;
Zhang, Wen ;
Zhang, Fujun ;
Zhao, Changlu .
APPLIED ENERGY, 2020, 274
[33]   Study of the performance of thermoelectric generator for waste heat recovery from chimney: impact of nanofluid-microchannel cooling system [J].
Ayman Eldesoukey ;
Hamdy Hassan .
Environmental Science and Pollution Research, 2022, 29 :74242-74263
[34]   Internal combustion engine waste heat recovery by a thermoelectric generator inserted at combustion chamber walls [J].
Al-Nimr, Moh'd A. ;
Alajlouni, Ahmed A. .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2018, 42 (15) :4853-4865
[35]   The development of a thermoelectric power generator dedicated to stove-fireplaces with heat accumulation systems [J].
Sornek, Krzysztof ;
Filipowicz, Mariusz ;
Rzepka, Kamila .
ENERGY CONVERSION AND MANAGEMENT, 2016, 125 :185-193
[36]   An Innovative Tubular Thermoelectric Generator (TTEG) for Enhanced Waste Heat Recovery in Industrial and Automotive Applications [J].
Du, Kung-Wen ;
Wu, Chun-, I .
APPLIED SCIENCES-BASEL, 2024, 14 (02)
[37]   Performance Analysis on Solar Concentrating Thermoelectric Generator Coupled with Heat Sink [J].
Koysal, Yavuz .
INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2019, 20 (02) :313-318
[38]   Experimental Investigation and CFD Analysis of Heat Transfer in Single Phase Subcooler of a Small Scale Waste Heat Recovery ORC [J].
Roumpedakis, Tryfon C. ;
Chapaloglou, Spiros ;
Pallis, Platon ;
Leontaritis, Aris-Dimitrios ;
Braimakis, Konstantinos ;
Karellasa, Sotirios ;
Vourliotis, Panagiotis .
4TH INTERNATIONAL SEMINAR ON ORC POWER SYSTEMS, 2017, 129 :487-494
[39]   Numerical analysis for the heat transfer behavior of steel ladle as the thermoelectric waste-heat source [J].
Lu, Baiyi ;
Meng, Xiangning ;
Zhu, Miaoyong .
CATALYSIS TODAY, 2018, 318 :180-190
[40]   Numerical and Experimental Investigation for Heat Transfer Enhancement by Dimpled Surface Heat Exchanger in Thermoelectric Generator [J].
Yiping Wang ;
Shuai Li ;
Xue Yang ;
Yadong Deng ;
Chuqi Su .
Journal of Electronic Materials, 2016, 45 :1792-1802