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Thermophysical characteristics and enhancement analysis of carbon-additives phase change mono and hybrid materials for thermal management of electronic devices

机译:碳添加剂相变电子元和混合材料的热理特性及增强分析,用于电子设备热管理

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摘要

A novel zero-noise and clean thermal management technology (TMT), based on phase-change thermal energy storage (TES) technology, has turned out the new vision for researchers and industrialist involved in electronics industry. Therefore, this paper highlights a new direction by developing the nano-enhanced phase change materials (NePCMs) by combining the carbon-additives with phase change material. Four different types of carbon-additives of multi-wall carbon nanotube (MWCNT), graphene oxide (GO), reduced graphene oxide (rGO) and graphene nanoplatelet (GNP) were dispersed in RT-35HC, used as a PCM, with the combinations of mono (MWCNT, GO, rGO and GNP) and hybrid (GO+MWCNT, rGO+MWCNT and GNP+MWCNT) nanoparticles. A constant mass percentage of 1.0 wt.% was selected for both mono and hybrid combinations of nanoparticles to explore the best type and dispersion scheme for productive and effective thermal management applications. All the synthesized NePCMs were characterized using various characterization methods to study microstructural features, surface chemistry, lattice dimensions, stability, thermal and phase-change TES characteristics. The key findings reveal the best chemical and thermal stability, uniform dispersion of carbon-based nanoparticles in RT-35HC without modifying the molecular structure. The highest thermal conductivity enhancements of 182.7%, 183.8% and 185.3%, and optimum value of enthalpy of fusions of 237.42, 235.35 and 230.82 J/g were achieved for hybrid NePCMGO+MWCNT, NePCMrGO+MWCNT, and NePCMGNP+MWCNT, respectively in comparison of mono NePCMs. The phenomenon of thermal conductivity and specific heat capacity were explained systematically. Conclusively, the minimum subcooling, specific heat capacity enhancement and smaller phase-transition temperature reveal that GNP+MWCNT dispersed hybrid NePCM can be potentially used for thermal management applications.
机译:基于相变热能存储(TES)技术的新型零噪声和清洁热管理技术(TMT)已向参与电子行业的研究人员和工业家的新愿景。因此,本文通过将碳添加剂与相变材料组合来开发纳米增强相变材料(NEPCM)来突出显示新方向。四种不同类型的多壁碳纳米管(MWCNT),石墨烯氧化物(GO),还原氧化物(RGO)和石墨烯纳米片(GNP)的碳添加剂分散在RT-35HC中,用作PCM,其中组合单声道(MWCNT,GO,RGO和GNP)和杂交(GO + MWCNT,RGO + MWCNT和GNP + MWCNT)纳米颗粒。为1.0重量%的恒定质量百分比。选择纳米颗粒的单体和杂种组合,以探讨生产性和有效的热管理应用的最佳类型和分散方案。使用各种特征方法的特征在于研究微观结构特征,表面化学,格子尺寸,稳定性,热和相变TES特性的所有合成的术。关键发现揭示了最佳的化学和热稳定性,在RT-35HC中均匀的碳纳米粒子分散而不改变分子结构。对于Hybrid Nepcmgo + MWCNT,Nepcmrgo + MWCNT,Nepcmgnp + MWCNT,最高导热性增强182.7%,183.8%和185.3%,以及237.42,235.35和230.82J / g的最佳值。单一NEPCMS的比较。系统地解释了导热性和特定热容量的现象。结论,最小过冷,特定的热容量增强和较小的相变温度显示,GNP + MWCNT分散的混合型NEPCM可能用于热管理应用。

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