Huang Leping, Chen Ying, Xu Zhaobao, He Cui, Li Youmu, Zhao Jinchao, Tang Youhong
College of Materials Science and Engineering, Wuhan Textile University, Wuhan 430200, China.
Hubei Provincial Engineering Laboratory for Clean Production and High Value Utilization of Bio-Based Textile Materials, Wuhan Textile University, Wuhan 430200, China.
Nanomaterials (Basel). 2023 Aug 12;13(16):2313. doi: 10.3390/nano13162313.
To address the thermal comfort needs of the human body, the development of personal thermal management textile is critical. Phase change materials (PCMs) have a wide range of applications in thermal management due to their large thermal storage capacity and their isothermal properties during phase change. However, their inherent low thermal conductivity and susceptibility to leakage severely limit their application range. In this study, polyethylene glycol (PEG) was used as the PCM and polyacrylonitrile (PAN) as the polymer backbone, and the thermal conductivity was increased by adding spherical nano-alumina (AlO). Utilizing coaxial electrospinning technology, phase-change thermoregulated nanofiber membranes with a core-shell structure were created. The study demonstrates that the membranes perform best in terms of thermal responsiveness and thermoregulation when 5% AlO is added. The prepared nanofiber membranes have a melting enthalpy of 60.05 J·g and retain a high enthalpy after 50 cycles of cold and heat, thus withstanding sudden changes in ambient temperature well. Additionally, the nanofiber membranes have excellent air permeability and high moisture permeability, which can increase wearer comfort. As a result, the constructed coaxial phase change thermoregulated nanofiber membranes can be used as a promising textile for personal thermal management.
为满足人体的热舒适需求,开发个人热管理纺织品至关重要。相变材料(PCM)因其巨大的蓄热能力以及相变过程中的等温特性,在热管理领域有着广泛应用。然而,其固有的低导热性和易泄漏性严重限制了其应用范围。在本研究中,聚乙二醇(PEG)被用作相变材料,聚丙烯腈(PAN)作为聚合物主链,并通过添加球形纳米氧化铝(AlO)来提高导热性。利用同轴静电纺丝技术,制备出了具有核壳结构的相变调温纳米纤维膜。研究表明,当添加5%的AlO时,该膜在热响应性和温度调节方面表现最佳。所制备的纳米纤维膜的熔化焓为60.05 J·g,在50次冷热循环后仍保持较高焓值,因此能很好地抵御环境温度的突然变化。此外,纳米纤维膜具有优异的透气性和高透湿性,可提高穿着者的舒适度。因此,所构建的同轴相变调温纳米纤维膜有望成为用于个人热管理的纺织品。