DOI: 10.3390/asi9080168 ISSN: 2571-5577

Optimizing Peltier Cooling Performance in Hot Environments: A Comparative Study of Python Empirical Modeling and MATLAB Simulink

Miguel Antonio Domínguez-Crespo, Aidé Minerva Torres-Huerta, Héctor Yahir Álvarez-Olvera, Aida Medina-González, Facundo Joaquín Márquez-Rocha

This study presents a comparative analysis of the energy and thermal behavior of a Peltier module operating in hot environments (28 °C to 40 °C) using Python and MATLAB/Simulink. A theoretical block model was developed to define governing equations, while an empirical Python-based framework was implemented to capture real-world non-linearities. Results demonstrate that heat absorption is fundamentally dependent on efficient heat dissipation; a maximum coefficient of performance (COP) of 3.1 was achieved at 1 A. However, operation in hot environments necessitates increased current to maintain low absorption temperatures, leading to a critical “thermal runaway” threshold beyond 5 A where internal Joule heating (scaling quadratically) outweighs the Peltier cooling effect (scaling linearly). While both platforms effectively evaluate heat transfer, the Python-based empirical model provided a more realistic description of cold-side absorption with prediction errors as low as 0.14%. These findings offer a robust pathway for optimizing Peltier cooling with potential industrial applications.

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