传感器在柔性可穿戴电子壳体结构系统中的应用

M. V. Byrdina, M. Mitsik, I. M. Maltsev, V. S. Belysheva
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引用次数: 0

摘要

柔性可穿戴电子产品在机器人、工业、农业、服装、医药等领域的使用是由不断增长的需求引起的。基于环保、柔性和耐用材料的各种传感器和设备可以安全地安装在机器人的外壳结构中或附着在人体皮肤表面,从而可以提取和分析许多重要的技术和医学指标。重要参数包括温度、压力、负载值、空气成分、环境参数、医疗指标等。本文提出了一种方法来描述可穿戴电子设备的类型,用于监测生产中涉及的机器人物体的状态信息,或者一个人,关于他的健康,环境监测,压力传感器,各种类型的变形,力传感器,可以与温度传感器,生理和生化传感器相结合,也可以包括在多功能传感器中。一个传感器网络是必要的,以确定壳结构在其运行过程中的参数,以监测机器人或人的状态。多层保护壳的技术参数可以是壳体上的分布荷载、压力、拉伸或弯曲变形等的局部值。考虑了嵌入柔性多层保护壳结构中的传感器和变送器的一般工作原理,并提出了结构创新方案。该论文考虑的功能模块将使可穿戴电子产品更适合真实的技术对象和人类。介绍了可穿戴电子产品的发展及其在柔性智能外壳结构建模中的应用中出现的一些问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Sensors in the System of Shell Structures with Flexible Wearable Electronics
The use of flexible wearable electronics in robotics, industry, agriculture, clothing, medicine, etc. is caused by an ever-increasing need. Various sensors and devices for reading and transmitting information based on environmentally friendly, flexible and durable materials can be securely mounted in the shell structure of the robot or attached to the surface of human skin, which will allow extracting and analyze a number of important technical and medical indicators. Important parameters include temperature, pressure, load values, air composition, environmental parameters, medical indicators, etc. The paper proposes an approach to describing the types of wearable electronics for monitoring information about the state of robotic objects involved in production, or a person, about his health, environmental monitoring, pressure sensors, various types of deformation, force sensors that can be combined with temperature sensors, physiological and biochemical sensors, and can also be included in multifunctional sensors. A network of sensors is necessary to determine the parameters of the shell structure during its operation, to monitor the state of a robot or a person. The technical parameters of the multilayer protective shell can be local values of the distributed load on the shell, pressure, tensile or bending deformation, etc. The general principles of operation of sensors and transmitters embedded in a flexible multilayer protective shell structure are considered, and structural innovations are also proposed. The paper considers functional modules that will make wearable electronics more adequate to real technical objects and for humans. A number of problems that arise in the development of wearable electronics and its application for modeling flexible intelligent shell structures are described.
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