Pseudo Bond Graph Model of Thermal Transfers Supported by an Outside Cold Airflow of a Refrigerator to Improve Its Performance

Author:

Aridhi Emna12,Abbes Mehdi1,Mami Abdelkader1

Affiliation:

1. Laboratoire d’Application de l’Efficacité Énergétique et des, Énergies Renouvelables-LAPER, Faculté des Sciences de Tunis, Université de Tunis El Manar, Campus Universitaire Farhat Hached, 1068 Tunis, Tunisie

2. Université de Carthage, Ecole National e des Sciences et Technologies, Avancées de Borj Cédria, Tunisie

Abstract

This paper aims to prove the efficiency of using the naturally free and abundant cold airflow to improve the cooling inside a household refrigerator and to reduce the energy consumption in Nordic and high altitude countries. The cold airflow is spread out in a cavity covering the side wall of the appliance. This cavity is also connected to the cold outdoor environment through inlet and outlet ducts. For that purpose, a pseudo bond graph (BG) model is proposed to model this installation. It represents the thermal transfers by forced convection in the cavity and the ducts with the ambient and outdoor surroundings. The internal air temperature is computed according to the evaporator temperature and the outside cold airflow that is also computed according to the outside temperature. The simulation results show that the cooling process was speeded up by about 39% and the duration of the compressor functioning was reduced by about 10[Formula: see text]h and 8[Formula: see text]min, which allows reducing the total energy use by 0.88[Formula: see text]kWh, and thus achieving an energy saving of about 34.61%. Experimental data of the outside airflow temperature in Canada during 28 hours in January 2017 are used in the model and allow an energy saving of about 40%.

Publisher

Springer Science and Business Media LLC

Subject

Fluid Flow and Transfer Processes,Renewable Energy, Sustainability and the Environment,Control and Systems Engineering

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