4.7 Article

Cooling performance analysis of nanofluid assisted novel photovoltaic thermoelectric air conditioner for energy efficient buildings

Journal

APPLIED THERMAL ENGINEERING
Volume 213, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.applthermaleng.2022.118691

Keywords

Nanofluid assisted thermoelectric air conditioner (NTEAC); Photovoltaic; Nanofluid; Coefficient of performance; Energy saving; CO2 emission

Funding

  1. Universiti Teknologi PETRONAS [YUTP FRG 015LC0- 118]
  2. YUTP [YUTP FRG 015LC0- 118]

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This research proposes the use of nanofluid as a coolant and a nanofluid cooled radiator to enhance the heat transfer rate of thermoelectric air conditioners. Experimental results show that the newly designed system performs best at 6A input current, with a lower temperature drop, higher cooling capacity, and coefficient of performance. Compared to conventional air conditioners, this system achieves significant energy saving and CO2 emission reduction.
Carbon emissions and excessive power usage are addressed by applying thermoelectric cooling, which benefits from its ability to be portable, economical, and reliable. However, a conventional thermoelectric air conditioner's coefficient of performance (COP) is much less due to the sustained heat generated on the thermoelectric module's hot side. This work presents a novel idea of utilizing a nanofluid cooled radiator as an external cooling jacket around the thermoelectric module's hot side to enhance the heat transfer rate of thermoelectric air conditioners. In this research, the performance of a newly designed thermoelectric air conditioner (TEAC) powered by photovoltaic systems (PV) installed in a residential building is analyzed using nanofluid as a coolant. Furthermore, by supplying different input currents (2-6A), the cooling characteristics and performance of the newly designed nanofluid assisted thermoelectric air conditioner (NTEAC) system were experimentally studied in a test room of 25.6 m(3) volume in Malaysia's tropical climate. The system's best performance was at 6A, with a maximum temperature drop of 4.9 degrees C, a cooling capacity of 571 W, and a coefficient of performance of 1.27. In addition, the NTEAC system showed an energy saving of 67% and CO2 emission mitigation of 76% when compared with a conventional split air conditioner. Thus, an alternative to the traditional air conditioning system was developed from this research, which is Freon free. This system is expected to consume less energy and emit less CO2 for the tropical climatic conditions.

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