Simulation of nanofluid as a two-phase flow in a distribution transformer

L. Raeisian, P. Werle, H. Niazmand
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Abstract

In this article, the natural convection heat transfer of Fe304/oil and graphene/oil nanofluids and mineral oil inside a 200 kVA distribution transformer is numerically studied. The Fe304/oil and graphene/oil nanofluids were simulated as a mixture two-phase flow where mineral oil was modeled as a single-phase flow with the temperature dependent thermophysical properties. Based on the simulation results, the nanoparticles when dispersed in oil enhance the convective heat transfer of oil and decrease its hotspot temperature. So that, the hotspot temperature of the Fe304/oil and graphene/oil were respectively 1 °C and 4.5 °C lower than that of the mineral oil. In addition, the transformer filled with graphene/oil nanofluid experienced considerably lower temperature in the thermally critical region. According to the obtained results, employing the nanofluid improves the cooling performance of the transformer, which leads to a more reliable operation and longer life.
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纳米流体在配电变压器中两相流动的模拟
本文对200kva配电变压器内Fe304/油、石墨烯/油纳米流体和矿物油的自然对流换热进行了数值研究。将Fe304/油和石墨烯/油纳米流体模拟为混合两相流,将矿物油模拟为具有温度相关热物理性质的单相流。模拟结果表明,纳米颗粒在油中的分散增强了油的对流换热,降低了油的热点温度。因此,Fe304/油和石墨烯/油的热点温度分别比矿物油低1℃和4.5℃。此外,填充石墨烯/油纳米流体的变压器在热临界区域的温度明显较低。研究结果表明,纳米流体的使用提高了变压器的冷却性能,从而提高了变压器的运行可靠性和使用寿命。
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