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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Amorphous graphene - Transformer oil nanofluids with superior thermal and insulating properties
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Amorphous graphene - Transformer oil nanofluids with superior thermal and insulating properties

机译:无定形石墨烯 - 变压器油纳米流体,具有优异的热和绝缘性能

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摘要

Nanofluids has emerged as a prominent and promising substitution of liquid dielectrics in industrial applications. Nevertheless, their sedimentation has been a consequential stumbling block for extensive and effective exploitation. Present work reports, stable, surfactant free and dilute homogeneous dispersion of a novel 2D dielectric nanomaterial: "Amorphous Graphene Sheets" (a-GS; with high ID/IG ratio), in transformer oil (TO) at lower nanofiller (0.0012-0.01 wt %) concentration. Nanofluids smartly address the much needed efficient thermal and electrical management with high resistivity and low loss compared to base oil. Persistent and high degrees of enhancement in the breakdown strength (40%) is observed. The electric double layer (EDL) development and prompted polarization (under electric stress), of the material leads to efficient charge trapping and de-detrapping in non-localized states. This phenomena uplifts the breakdown voltage and other electrical parameters than base TO. Lattice vibration of nanostructure along with EDL and cluster formation explains thermal transport phenomena at the nanoscale. Whereas confirmation of superior heat conduction by a-GS NEs were obtained by surface imaging and systematic study of spatial heat flow distribution. Hence the proposed hybrid nanofluid holds great promise for utilizing in the field of high voltage electrical insulation application. (C) 2018 Published by Elsevier Ltd.
机译:纳米流体已成为工业应用中的突出和有前景的液体电介质替代。尽管如此,他们的沉降是一种相应的肢体障碍,用于广泛且有效的剥削。目前的工作报告,稳定,表面活性剂自由和稀释的新型2D介电纳米材料:“无定形石墨烯片”(A-GS;具有高/ IG比),在较低纳米填充物(0.0012-0.01)中的变压器油(至) wt%)浓度。与基础油相比,纳米流体巧妙地解决了具有高电阻率和低损耗的急需高效热和电气管理。观察到击穿强度(40%)的持续和高度的增强。电动双层(EDL)开发和提示偏振(在电力应力下),导致非局部状态的有效电荷捕获和去脱落。这种现象升高了比基部的击穿电压和其他电参数。纳米结构的晶格振动以及EDL和簇形成解释了纳米级的热传输现象。虽然通过表面成像和空间热流分布的表面成像和系统研究,获得了A-GS NE的卓越热传导的。因此,所提出的杂交纳米流体在利用高压电绝缘应用领域具有很大的希望。 (c)2018由elestvier有限公司出版

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