纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 252-261.doi: 10.13475/j.fzxb.20250102902
徐雪1, 韩非2, 李发学1, 王学利3, 高婷婷1,3(
), 丁彬3,4, 俞建勇3
XU Xue1, HAN Fei2, LI Faxue1, WANG Xueli3, GAO Tingting1,3(
), DING Bin3,4, YU Jianyong3
摘要:
为降低建筑采暖空调能耗,提升人体在复杂环境下的热舒适性,发展低功耗甚至零功耗的个体热调控策略至关重要。首先系统阐释了个人热管理的核心概念与基本机制,并结合人体的主要散热路径,梳理了近年来针对不同服役场景的热管理功能织物的构建策略。在此基础上,重点综述了基于热传导调控、热辐射工程、蒸发冷却以及双模式/多模式协同调温等纺织品的最新研究进展,深入剖析了各类技术的典型应用场景、核心优势及当前面临的瓶颈。最后指出,尽管个人热管理纺织品展现出广阔的应用前景,但其在服用舒适性、色彩丰富度、智能响应水平,以及动态/湿态环境下的标准化评价体系等方面仍面临显著挑战。未来,该领域的研究应聚焦于服用性能优化、多功能智能集成与仿生结构设计,以推动个人热管理技术向更高效、智能、实用的方向迈进。
中图分类号:
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