首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Cellulosic scaffolds doped with boron nitride nanosheets for shape-stabilized phase change composites with enhanced thermal conductivity
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Cellulosic scaffolds doped with boron nitride nanosheets for shape-stabilized phase change composites with enhanced thermal conductivity

机译:纤维素支架掺杂有硼氮化硼纳米片,用于具有增强的导热率的形状稳定的相变复合材料

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摘要

Phase change materials (PCMs), widely used in thermal management filed, can store or release thermal energy during phase-changing processes, but the inherent low thermal conductivity and leakage problem restrict their practical applications. Herein, boron nitride nanosheets (BNNSs) doped cellulosic scaffolds (CS) were used as novel support materials to construct shape-stabilized PCM with enhanced thermal conductivity. The composite PCM exhibits excellent shape stability against pressure, tension and bending (90 degrees) even at high loading of the solid-liquid PCM polyethylene glycol (PEG) (95.6 wt%). The resulting composite PCMs have enthalpy capacity (Delta H-m/Delta H-c) ranged from 1653 J g(-1)/169.3 J g(-1) to 169.1 J g(-1)/ 176.1 J g(-1) with stable cycling reliability. Moreover, the thermal conductivity of the composite PCM could increase by 42.8% at a low loading of BNNSs (1.9 wt%), without affecting its electrical insulation properties (over 10(7) Omega cm). The thermally-conductive shape-stabilized PCM composite prepared by this feasible method have great potential in thermal management of electronics. (C) 2020 Elsevier B.V. All rights reserved.
机译:相变材料(PCM)广泛用于热管理,可以在相变过程中存储或释放热能,但固有的低导热率和泄漏问题限制了其实际应用。这里,氮化硼纳米片(BNNS)掺杂纤维素支架(CS)用作新的载体材料,以构建具有增强的导热性的形状稳定的PCM。即使在高负载的固体液体PCM聚乙二醇(PEG)(95.6wt%)的高负载下,复合PCM也表现出优异的压力,张力和弯曲(90度)的形状稳定性。得到的复合PCM具有焓容量(Delta HM / Delta HC),范围为1653Jg(-1)/169.3Jg(-1)至169.1Jg(-1)/ 176.1Jg(-1),稳定循环可靠性。此外,在低负荷(1.9wt%)的低负荷下,复合PCM的导热率可能会增加42.8%,而不会影响其电绝缘性能(超过10(7)毫米CM)。通过这种可行方法制备的导热形状稳定的PCM复合材料具有很大的热管理电子设备的潜力。 (c)2020 Elsevier B.v.保留所有权利。

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