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用于热管理的聚偏氟乙烯/相变材料复合纤维的喷射注射原位生产

Jet-Injection In Situ Production of PVDF/PCM Composite Fibers for Thermal Management.

作者信息

Duran Mikel, Nikulin Artem, Serrano Angel, Dauvergne Jean-Luc, Grosu Yaroslav, Labidi Jalel, Del Barrio Elena Palomo

机构信息

Centre for Cooperative Research on Alternative Energies (CIC energiGUNE), Basque Research and Technology Alliance (BRTA), Alava Technology Park, Albert Einstein 48, 01510 Vitoria-Gasteiz, Spain.

University of the Basque Country (UPV/EHU), Plaza Europa, 1, 20018 Donostia-San Sebastián, Gipuzkoa, Spain.

出版信息

ACS Omega. 2023 Jul 12;8(29):26136-26146. doi: 10.1021/acsomega.3c02318. eCollection 2023 Jul 25.

Abstract

Thermal management protects against external agents and increases the lifetime and performance of the devices in which it is implemented. Because of their ability to store and release a high amount of energy at a nearly constant temperature, phase change materials (PCMs) are promising thermoregulatory materials. Thus, the manufacture of PVDF fibers containing PCMs has advantages since PVDF is already used in elements that are susceptible to thermal management as a binder in batteries or as a base material for fabrics. This work presents a simple, versatile, in situ, cost-effective, and easy-to-scale-up method to produce PVDF-based fibers containing paraffin RT-28HC for thermal management. To achieve that goal, the microfluidic approach of coaxial flows was simplified to gravity-aided laminar jet injection into a bulk fluid, where fibers were produced by the solvent extraction mechanism. With this methodology, hollow PVDF fibers and core-shell PVDF fibers containing paraffin RT-28HC have been produced. The proposed approach resulted in fibers with up to 98 J/g of latent heat, with a hierarchical porous structure. SEM study of the fiber morphology has shown that PCM is in the form of slugs along the fibers. Such PCM distribution is maintained until the first melting cycle, when molten PCM spreads within the fiber under capillary forces, which was observed by an infrared camera. Manufactured composite fibers have shown low thermal conductivity and high elasticity, which suggest their potential application as a thermal insulation material with thermal buffer properties. Leakage tests revealed outstanding retention capacity with only 3.5% mass loss after 1000 melting/crystallization cycles. Finally, tensile tests were carried out to evaluate the mechanical properties of the fibers before and after thermal cycling.

摘要

热管理可抵御外部因素,并延长其应用设备的使用寿命,提升设备性能。相变材料(PCM)能够在近乎恒定的温度下储存和释放大量能量,因此是很有前景的温度调节材料。鉴于聚偏氟乙烯(PVDF)已在电池粘合剂或织物基材等热管理敏感元件中得到应用,制造含PCM的PVDF纤维具有诸多优势。本文介绍了一种简单、通用、原位、经济高效且易于放大的方法,用于制备含石蜡RT - 28HC的PVDF基纤维以实现热管理。为实现这一目标,将同轴流的微流体方法简化为重力辅助层流喷射到本体流体中,通过溶剂萃取机制生产纤维。采用这种方法,制备出了含石蜡RT - 28HC的中空PVDF纤维和核壳结构PVDF纤维。所提出的方法制备出的纤维潜热高达98 J/g,具有分级多孔结构。对纤维形态的扫描电子显微镜(SEM)研究表明,PCM呈团块状沿纤维分布。这种PCM分布在首次熔化循环之前保持不变,直至熔化的PCM在毛细管力作用下在纤维内扩散,这一过程通过红外摄像机进行了观察。所制造的复合纤维显示出低导热性和高弹性,这表明它们作为具有热缓冲性能的隔热材料具有潜在应用价值。泄漏测试显示,经过1000次熔化/结晶循环后,质量损失仅为3.5%,具有出色的保持能力。最后,进行了拉伸试验,以评估热循环前后纤维的力学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7722/10373176/ab36e43cb50a/ao3c02318_0002.jpg

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