Liu Wenming, Jiang Xiaohui, Yu Zhiran, Pang Kai, Wang Jian, Peng Yuxin
Department of Sports Science, Zhejiang University, Hangzhou 310058, China.
The MOF Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, China.
Bioengineering (Basel). 2023 Mar 21;10(3):381. doi: 10.3390/bioengineering10030381.
Far-infrared (FIR) is considered to be an ideal method to promote fatigue recovery due to its high permeability and strong radiation. In this paper, we report a flexible and wearable graphene heating device to help fatigue recovery of human exercise by using its high FIR divergence property. This study compares two different fatigue recovery methods, graphene far-infrared heating device hot application and natural recovery, over a 20 min recovery time among the male colleges' exhaustion exercise. Experimental results show that the achieved graphene device holds excellent electro-thermal radiation conversion efficiency of 70% and normal total emissivity of 89%. Moreover, the graphene FIR therapy in our work is more energy-efficient, easy to use, and wearable than traditional fatigue recovery methods. Such an anti-fatigue strategy offers new opportunities for enlarging potential applications of graphene film in body science, athletic training recovery, and wearable devices.
由于远红外线(FIR)具有高渗透性和强辐射性,它被认为是促进疲劳恢复的理想方法。在本文中,我们报道了一种灵活可穿戴的石墨烯加热装置,利用其高FIR发散特性来帮助人体运动后的疲劳恢复。本研究比较了两种不同的疲劳恢复方法,即在男大学生力竭运动后的20分钟恢复时间内,使用石墨烯远红外线加热装置热敷与自然恢复。实验结果表明,所制备的石墨烯装置具有70%的优异电热辐射转换效率和89%的正常总发射率。此外,我们工作中的石墨烯FIR疗法比传统的疲劳恢复方法更节能、易于使用且可穿戴。这种抗疲劳策略为扩大石墨烯薄膜在人体科学、运动训练恢复和可穿戴设备中的潜在应用提供了新机会。