Performance optimization of a thermoelectric energy harvesting system utilizing waste heat from an internal combustion engine

(1) * Baribuma Gbaarabe Mail (Rivers State University, Port Harcourt, Nigeria)
(2) John I. Sodiki Mail (Rivers State University, Port Harcourt, Nigeria)
(3) Barinaadaa Thaddeus Lebele-Alawa Mail (Rivers State University, Port Harcourt, Nigeria)
(4) Barinyima Nkoi Mail (Rivers State University, Port Harcourt, Nigeria)
*corresponding author

Abstract


This study presents the performance optimization of a Thermoelectric Energy Harvesting (TEH) system designed to recover waste heat from Internal Combustion Engines (ICEs). It includes optimizing the energy conversion efficiency of the thermoelectric module (TEM), optimizing the design of the Plate Heat Exhcanger (PHE), and simulation-based validation. The optimization process, conducted using Python optimization code developed for the study, yielded an energy conversion efficiency of 7.209%, marking a 56% improvement over the experimentally measured efficiency of 4.63%. The optimized PHE design, incorporate finless triangular-rectangular composite duct. The analysis showed a fully turbulent flow within the PHE, which significantly enhances convective heat transfer coefficients, improve the  heat exchange between the exhaust gas and heat exchanger surfaces, and reduces the risk of fouling and clogging. The exhaust gas contained 1792W of waste heat, with 230W transferred to the hot side of the TEM. This corresponds to a heat exchanger effectiveness of 0.13, indicating that only 13% of the available waste heat in the exhaust gas is utilized by the TEM. The overall TEH system efficiency was determined to be 0.94%, which, despite being relatively modest, yields considerable energy savings in large-scale applications where waste heat is abundant. Computational simulations, using a CAD model in SOLIDWORKS, validated the TEH system’s optimized performance, by ensuring the desired temperature gradient is maintained across the TEM, given that the power output of the TEH is directly proportional to the temperature gradient across the thermoelectric couples in the TEM

Keywords


Design and Performance Optimization Plate Heat Exchanger (PHE) Thermoelectric Module (TEM) Thermoelectric Energy Harvesting (TEH) System Waste Heat from Internal Combustion Engines (ICEs

   

DOI

https://doi.org/10.31763/aet.v4i2.2093
      

Article metrics

10.31763/aet.v4i2.2093 Abstract views : 0 | PDF views : 0

   

Cite

   

Full Text

Download

References


[1] I. Johnson, W. Choate, and A. Davidson, “Waste Heat Recovery. Technology and Opportunities in U.S. Industry,” Mar. 2008. doi: 10.2172/1218716.

[2] C. Forman, I. K. Muritala, R. Pardemann, and B. Meyer, “Estimating the global waste heat potential,” Renew. Sustain. Energy Rev., vol. 57, pp. 1568–1579, May 2016, doi: 10.1016/j.rser.2015.12.192.

[3] D. M. Rowe, Thermoelectrics Handbook. CRC Press, 2018, doi: 10.1201/9781420038903.

[4] P. Christodoulides, R. Agathokleous, L. Aresti, S. A. Kalogirou, S. A. Tassou, and G. A. Florides, “Waste Heat Recovery Technologies Revisited with Emphasis on New Solutions, Including Heat Pipes, and Case Studies,” Energies, vol. 15, no. 1, p. 384, Jan. 2022, doi: 10.3390/en15010384.

[5] S. Davis, “Power Management Series,” Electronic Design, 2022. [Online]. https://www.electronicdesign.com/technologies/power/article/21212387/electronic-design-power-management-series.

[6] K.-T. Lee et al., “An overview of commercialization and marketization of thermoelectric generators for low-temperature waste heat recovery,” iScience, vol. 26, no. 10, p. 107874, Oct. 2023, doi: 10.1016/j.isci.2023.107874.

[7] A. Montecucco, J. Siviter, and A. R. Knox, “Constant heat characterisation and geometrical optimisation of thermoelectric generators,” Appl. Energy, vol. 149, pp. 248–258, Jul. 2015, doi: 10.1016/j.apenergy.2015.03.120.

[8] D. Champier, “Thermoelectric generators: A review of applications,” Energy Convers. Manag., vol. 140, pp. 167–181, May 2017, doi: 10.1016/j.enconman.2017.02.070.

[9] Y. J. Kim et al., “High-performance self-powered wireless sensor node driven by a flexible thermoelectric generator,” Energy, vol. 162, pp. 526–533, Nov. 2018, doi: 10.1016/j.energy.2018.08.064.

[10] N. T. Atmoko, T. W. B. Riyadi, B. R. Utomo, A. Jamaldi, and A. S. Nugroho, “Heat Transfer Analysis and Performance Investigation of Generator Thermoelectric Applied in LPG Stove Waste Heat Recovery,” Int. J. Renew. Energy Res., vol. 13, no. V13i1, pp. 70–76, Mar. 2023, doi: 10.20508/ijrer.v13i1.13137.g8696.

[11] Z. Wehbi, R. Taher, J. Faraj, C. Castelain, and M. Khaled, “Hybrid thermoelectric generators-renewable energy systems: A short review on recent developments,” Energy Reports, vol. 8, pp. 1361–1370, Nov. 2022, doi: 10.1016/j.egyr.2022.08.068.

[12] Baribuma Gbaarabe and John I. Sodiki, “Hybridization of energy systems for air conditioning application in an educational building,” Glob. J. Eng. Technol. Adv., vol. 16, no. 2, pp. 092–105, Aug. 2023, doi: 10.30574/gjeta.2023.16.2.0137.

[13] R. B. Smriti et al., “Thermoelectric Energy Harvesting for Exhaust Waste Heat Recovery: A System Design,” ACS Appl. Mater. Interfaces, vol. 17, no. 3, pp. 4904–4912, Jan. 2025, doi: 10.1021/acsami.4c18023.

[14] B. Gbaarabe, “Development of a Large-Scale Thermoelectric Energy Harvesting System Utilizing Waste Heat from Thermal Power Plants,” Univ., Port Harcourt, Nigeria, 2025.

[15] M. Groten and S. Gallego-García, “A Systematic Improvement Model to Optimize Production Systems within Industry 4.0 Environments: A Simulation Case Study,” Appl. Sci., vol. 11, no. 23, p. 11112, Nov. 2021, doi: 10.3390/app112311112.

[16] G. . Rogers and Y. Mayhew, Engineering thermodynamics : work and heat transfer. Pearson India Education Services, 2006. [Online]. Available at: https://dokumen.pub/engineering-thermodynamics-work-and-heat-transfer-4nbsped-8131702065-9788131702062.html.

[17] H. G. Zhang et al., “Performance Analysis And Experimental Investigation On Exhaust Gas Heat Recovery For IC Engines Using Shell And Tube Heat Exchanger,” Int. J. Eng. Appl. Sci., vol. 4, no. 7, p. 257415, 2017. [Online]. Available at: https://www.neliti.com/publications/257415/.

[18] F. M. White and H. Xue, Fluid Mechanics Textbook, Ninth Edit. 2021. [Online]. Available at: https://studylib.net/doc/26335616/white-xue-fluid-mechanics-9th-edition.

[19] H. Jouhara et al., “Thermoelectric generator (TEG) technologies and applications,” Int. J. Thermofluids, vol. 9, p. 100063, Feb. 2021, doi: 10.1016/j.ijft.2021.100063.

[20] M. Bukowska, K. Nowak, D. Proszak-Mi?sik, and S. Rabczak, “Concept of Heat Recovery from Exhaust Gases,” IOP Conf. Ser. Mater. Sci. Eng., vol. 245, no. 5, p. 052057, Oct. 2017, doi: 10.1088/1757-899X/245/5/052057.

[21] X. Qian, S. W. Lee, and Y. Yang, “Heat Transfer Coefficient Estimation and Performance Evaluation of Shell and Tube Heat Exchanger Using Flue Gas,” Processes, vol. 9, no. 6, p. 939, May 2021, doi: 10.3390/pr9060939.

[22] B. Ryu et al., “Best thermoelectric efficiency of ever-explored materials,” iScience, vol. 26, no. 4, p. 106494, Apr. 2023, doi: 10.1016/j.isci.2023.106494.

[23] Z. Liu et al., “Demonstration of ultrahigh thermoelectric efficiency of ?7.3% in Mg3Sb2/MgAgSb module for low-temperature energy harvesting,” Joule, vol. 5, no. 5, pp. 1196–1208, May 2021, doi: 10.1016/j.joule.2021.03.017.

[24] W. M. . Kays, M. E. . Crawford, and B. Weigand, Convective heat and mass transfer. McGraw-Hill Higher Education, 2005.

[25] M. Mobedi and G. Gediz Ilis, Fundamentals of Heat Transfer. 2023, doi: 10.1007/978-981-99-0957-5.


Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 Baribuma Gbaarabe, John I. Sodiki, Barinaadaa Thaddeus Lebele-Alawa, Barinyima Nkoi

Creative Commons License
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.


Applied Engineering and Technology
ISSN: 2829-4998
Email: aet@ascee.org | andri.pranolo.id@ieee.org
Published by: Association for Scientic Computing Electronics and Engineering (ASCEE)
Organized by: Association for Scientic Computing Electronics and Engineering (ASCEE), Universitas Negeri Malang, Universitas Ahmad Dahlan

View My Stats AET
Creative Commons License
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.