Zhou Zaiwei, Chen Nuo, Zhong Hongchuan, Zhang Wanli, Zhang Yue, Yin Xiangyu, He Bingwei
College of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, China.
Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
Materials (Basel). 2021 Oct 14;14(20):6073. doi: 10.3390/ma14206073.
Innovations related to textiles-based sensors have drawn great interest due to their outstanding merits of flexibility, comfort, low cost, and wearability. Textile-based sensors are often tied to certain parts of the human body to collect mechanical, physical, and chemical stimuli to identify and record human health and exercise. Until now, much research and review work has been carried out to summarize and promote the development of textile-based sensors. As a feature, we focus on textile-based mechanical sensors (TMSs), especially on their advantages and the way they achieve performance optimizations in this review. We first adopt a novel approach to introduce different kinds of TMSs by combining sensing mechanisms, textile structure, and novel fabricating strategies for implementing TMSs and focusing on critical performance criteria such as sensitivity, response range, response time, and stability. Next, we summarize their great advantages over other flexible sensors, and their potential applications in health monitoring, motion recognition, and human-machine interaction. Finally, we present the challenges and prospects to provide meaningful guidelines and directions for future research. The TMSs play an important role in promoting the development of the emerging Internet of Things, which can make health monitoring and everyday objects connect more smartly, conveniently, and comfortably efficiently in a wearable way in the coming years.
基于纺织品的传感器相关创新因其具有柔韧性、舒适性、低成本和可穿戴性等突出优点而备受关注。基于纺织品的传感器通常连接到人体的某些部位,以收集机械、物理和化学刺激,从而识别和记录人体健康状况及运动情况。到目前为止,已经开展了大量研究和综述工作来总结和推动基于纺织品的传感器的发展。作为一个特色,在本综述中我们聚焦于基于纺织品的机械传感器(TMS),尤其关注其优点以及实现性能优化的方式。我们首先采用一种新颖的方法,通过结合传感机制、纺织品结构以及用于实现TMS的新型制造策略来介绍不同类型的TMS,并关注诸如灵敏度、响应范围、响应时间和稳定性等关键性能标准。接下来,我们总结它们相对于其他柔性传感器的巨大优势,以及它们在健康监测、运动识别和人机交互方面的潜在应用。最后,我们提出挑战和前景,为未来研究提供有意义的指导方针和方向。TMS在推动新兴物联网的发展中发挥着重要作用,在未来几年里,它能够以可穿戴的方式使健康监测与日常物品更智能、便捷且舒适地高效连接。