Battery-Free, Wireless Multi-Modal Sensor, and Actuator Array System for Pressure Injury Prevention

Simultaneous monitoring of critical parameters (e.g., pressure, shear, and temperature) at bony prominences is essential for the prevention of pressure injuries in a systematic manner. However, the development of wireless sensor array for accurate mapping of risk factors has been limited due to the...

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Published inSmall (Weinheim an der Bergstrasse, Germany) p. e2405493
Main Authors Han, Hyeonseok, Park, Hyunwoo, Cho, Seokjoo, Lee, Sung-Uk, Choi, Jungrak, Ha, Ji-Hwan, Park, Jaeho, Jung, Young, Kim, Hyunjin, Ahn, Junseong, Kwon, Yeong Jae, Oh, Yong Suk, Je, Minkyu, Park, Inkyu
Format Journal Article
LanguageEnglish
Published Germany 01.08.2024
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Summary:Simultaneous monitoring of critical parameters (e.g., pressure, shear, and temperature) at bony prominences is essential for the prevention of pressure injuries in a systematic manner. However, the development of wireless sensor array for accurate mapping of risk factors has been limited due to the challenges in the convergence of wireless technologies and wearable sensor arrays with a thin and small form factor. Herein, a battery-free, wireless, miniaturized multi-modal sensor array is introduced for continuous mapping of pressure, shear, and temperature at skin interfaces. The sensor array includes an integrated pressure and shear sensor consisting of 3D strain gauges and micromachined components. The mechanically decoupled design of the integrated sensor enables reliable data acquisition of pressure and shear at skin interfaces without the need for additional data processing. The sensor platform enables the analysis of interplay among localized pressure, shear, and temperature in response to changes in the patient's movement, posture, and bed inclination. The validation trials using a novel combination of wireless sensor arrays and customized pneumatic actuator demonstrate the efficacy of the platform in continuous monitoring and efficient redistribution of pressure and shear without repositioning, thereby improving the patient's quality of life.
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ISSN:1613-6810
1613-6829
1613-6829
DOI:10.1002/smll.202405493