Microgeneración eléctrica con una celda termogeneradora optimizada
Resumen
Este trabajo propone un diseño de aplicación para convertir la energía térmica en energía eléctrica, con una célda termogeneradora optimizada (TEG). La conversión se basa en el efecto Seebeck, con una configuración electrónica que genera alrededor de 3.3W; el prototipo de pequeña escala y baja temperatura trabaja a partir de la recuperación del calor residual de una fuente térmica, que mediante un tubo de metal del lado caliente de TEG, recupera el calor por radiación, y del lado frío un intercambiador de calor tipo carcasa, que mantiene el flujo del refrigerante con el efecto termosifón, provocando la caída necesaria de temperatura para el funcionamiento del sistema de microgeneración eléctrica (ÑT).
Descargas
Citas
- Astrain D, Vián JG, Albizua J. Computational model for refrigerators based on Peltier effect application. Appl Therm Eng 2005;25(17–18):3149–62.
- Zhu L, Tan H, Yu J. Analysis on optimal heat exchanger size of thermoelectric cooler for electronic cooling applications. Energy Convers Manage 2013;76:685–90.
- Lin X, Mo S, Jia L, et al. Experimental study and Taguchi analysis on LED cooling by thermoelectric cooler integrated with microchannel heat sink. Appl Energy 2019;242:232–8.
- Angelica Buzinaro Avaci, Samuel Nelson, Melegari de Souza, Ivan Werncke; Financial economic scenario for the microgeneration of electric energy from swine culture-originated biogas; Volume 25, September 2013.
- Alias Sonnet T. Eldho, Jacob Thampi Paul, Kurian John, Joseph Jose Brijesh Paul; Design and analysis of a smart-attachment to jacket and helmet used by two-wheeler riders using Peltier-module; https://doi.org/10.1016/j.matpr.2020.11.718
- Jun Wang, Peiguo Cao, Xingjun, Xiangxiang Song, Chuang Zhao, Lei Zhu; Experimental study on the influence of Peltier effect on the output performance of thermoelectric generator and deviation of maximum power point; Volume 200, 15 November 2019, 112074.
- Liao M, He Z, Jiang C, et al. A three-dimensional model for thermoelectric generator and the influence of Peltier effect on the performance and heat transfer. Appl Therm Eng 2018;133:493–500.
- Li G, Zhang G, He W, et al. Performance analysis on a solar concentrating thermoelectric generator using the micro-channel heat pipe array. Energy Convers
- Kraemer D, Poudel B, Feng HP, et al. High-performance flat-panel solar thermo- electric generators with high thermal concentration. Nat Mater 2011;10(7):532.
- Ahiska R, Mamur H. Design and implementation of a new portable thermoelectric generator for low geothermal temperatures. IET Renew Power Generator 2013;7(6):700–6.
- Dell R, Wei CS, Petralia MT, et al. Thermoelectric Powered Security Systems in Iceland Using a Geothermal Steam Pipe as a Heat Source. Multidisciplinary Digital Publishing Institute Proceedings. 2018;2(8):440.
- Zhao Y, Wang S, Ge M, et al. Performance analysis of automobile exhaust ther- moelectric generator system with media fluid. Energy Convers Manage 2018;171:427–37.
- Nithyanandam K, Mahajan RL. Evaluation of metal foam based thermoelectric generators for automobile waste heat recovery. Int J Heat Mass Transf 2018;122:877–83.
- Fisac M, Villasevil FX, López AM. High-efficiency photovoltaic technology including thermoelectric generation. J Power Sources 2014;252:264–9.
- Bell LE. Cooling, heating, generating power, and recovering waste heat with ther- moelectric systems. Science 2008;321(5895):1457–61.
- Hazama H, Masuoka Y, Suzumura A, et al. Cylindrical thermoelectric generator with water heating system for high solar energy conversion efficiency. Appl Energy 2018;226:381–8.
- Kinsella CE, O’Shaughnessy SM, Deasy MJ, et al. Battery charging considerations in small scale electricity generation from a thermoelectric module. Appl Energy 2014;114:80–90.
- Wang J, Li Y, Zhao C, et al. An optimization study of structural size of para- meterized thermoelectric generator module on performance. Energy Convers Manage 2018;160:176–81.
- Wang X, Wang H, Su W, et al. Geometric structural design for lead tellurium thermoelectric power generation application. Renewable Energy 2019;141:88–95.
- G.Casano, S.Piva; Experimental investigation of a Peltier cells cooling system for a Switch-Mode Power Supply; Microelectronics Reliability Volume 79, December 2017, Pages 426-432.
- He W, Zhang G, Li G, et al. Analysis and discussion on the impact of non-uniform input heat flux on thermoelectric generator array. Energy Convers Manage 2015;98:268–74.
- Jun Wang, Peiguo Cao, Xingjun Li, Xiangxiang Song, Chuang Zhao, Lei Zhu, Experimental study on the influence of Peltier effect on the output performance of thermoelectric generator and deviation of maximum power point, Energy Conversion and Management, https://doi.org/10.1016/j.enconman.2019.112074
- Goldsmid HJ. Thermoelectric Properties of Metals and Semiconductors. Berlin Heidelberg: Springer; 2010.
- Torrecilla MC, Montecucco A, Siviter J, et al. Transient response of a thermoelectric generator to load steps under constant heat flux. Appl Energy 2018;212:293–303.
- Liao M, He Z, Jiang C, et al. A three-dimensional model for thermoelectric generator and the influence of Peltier effect on the performance and heat transfer. Appl Therm Eng 2018;133:493–500.
- StephenLucasSaifulBari, Cooling by Peltier Effect and Active Control Systems to Thermally Manage Operating Temperatures of Electrical Machines (Motors and Generators), https://doi.org/10.1016/j.tsep.2021.100990
- He W, Zhang G, Li G, et al. Analysis and discussion on the impact of non-uniform input heat flux on thermoelectric generator array. Energy Convers Manage 2015;98:268–74.
Derechos de autor 2026 Christian Ramón Covarrubias Constantino

Esta obra está bajo licencia internacional Creative Commons Reconocimiento 4.0.









.png)
















.png)
1.png)

