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电介质二维纳米流体的电流体动力学分析

Electrohydrodynamics Analysis of Dielectric 2D Nanofluids.

作者信息

Maharana Mrutyunjay, Baruah Niharika, Nayak Sisir Kumar, Sahoo Niranjan, Wu Kai, Goswami Lalit

机构信息

School of Electrical Engineering, SKLIPE, Xi'an Jiaotong University, Xi'an 710049, China.

Departement of Mechanical Engineering, DRIEMS Cuttack, Cuttack 754022, India.

出版信息

Nanomaterials (Basel). 2022 Apr 27;12(9):1489. doi: 10.3390/nano12091489.

Abstract

The purpose of this present study is to prepare a stable mineral-oil (MO)-based nanofluid (NF) for usage as a coolant in a transformer. Nanoparticles (NPs) such as hexagonal boron nitride (h-BN) and titanium oxide (TiO) have superior thermal and electrical characteristics. Their dispersion into MO is likely to elevate the electrothermal properties of NFs. Therefore, different batches of NFs are prepared by uniformly dispersing the insulating h-BN and semiconducting TiO NP of different concentrations in MO. Bulk h-BN NP of size 1μm is exfoliated into 2D nanosheets of size 150-200 nm, subsequently enhancing the surface area of exfoliated h-BN (Eh-BN). However, from the zeta-potential analysis, NP concentration of 0.01 and 0.1 wt.% are chosen for further study. The thermal conductivity and ACBDV studies of the prepared NF are performed to investigate the cooling and insulation characteristics. The charging-dynamics study verifies the enhancement in ACBDV of the Eh-BN NF. Weibull statistical analysis is carried out to obtain the maximum probability of ACBDV failure, and it is observed that 0.01 wt.% based NF has superior cooling and insulation properties than MO and remaining batches of NFs.

摘要

本研究的目的是制备一种稳定的基于矿物油(MO)的纳米流体(NF),用作变压器中的冷却剂。诸如六方氮化硼(h-BN)和二氧化钛(TiO)之类的纳米颗粒(NP)具有优异的热学和电学特性。将它们分散到MO中可能会提高纳米流体的电热性能。因此,通过将不同浓度的绝缘h-BN和半导体TiO NP均匀分散在MO中来制备不同批次的纳米流体。将尺寸为1μm的块状h-BN NP剥离成尺寸为150 - 200nm的二维纳米片,随后增加了剥离后的h-BN(Eh-BN)的表面积。然而,通过zeta电位分析,选择0.01和0.1 wt.%的NP浓度进行进一步研究。对制备的纳米流体进行热导率和交流击穿电压(ACBDV)研究,以研究其冷却和绝缘特性。充电动力学研究验证了Eh-BN纳米流体的ACBDV有所增强。进行威布尔统计分析以获得ACBDV失效的最大概率,并且观察到基于0.01 wt.%的纳米流体比MO和其余批次的纳米流体具有更优异的冷却和绝缘性能。

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