Piezoelectric-Based Respiratory Monitoring: Towards Self-Powered Implantables for the Airways

Luis Javier Lopez Ruiz, V. Lin, Lucy Fitzgerald, Joe Zhu, L. Borish, Daniel Quinn, J. Lach
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引用次数: 2

Abstract

Wearable and implantable technology for respiratory monitoring has created the potential for continuous collection of respiratory parameters for healthcare and other applications. However, battery life, form factor, and user burden impose practical constraints that affect user acceptance and therefore clinical utility. This work introduces a wireless self-powered sensing system for airway monitoring that uses an array of piezoelectric cantilevers that functions as both the respiratory flow sensor and the energy harvester that powers the system. The cantilevers are excited by airflow in the airway, and the harvested energy from the cantilevers is stored in a capacitor. Once a threshold energy is available in the capacitor, a load switch closes and enables a low frequency oscillator that functions as a data-less transmitter. The signal coming from the sensing system is received by an external software-defined radio (SDR), and the rate at which this signal is received is mapped to the respiratory conditions in the airway. A benchtop testing system that incorporates a lung simulator, a data acquisition system, and a hot wire anemometer was created to validate the sensor. Results show that the signal reception rate is affected by the breathing rate and volume, demonstrating the potential for a self-powered, miniaturized, passive implantable device for continuous respiratory health monitoring.
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基于压电的呼吸监测:为气道提供自供电的植入式设备
呼吸监测的可穿戴和植入式技术为医疗保健和其他应用创造了连续收集呼吸参数的潜力。然而,电池寿命、外形因素和用户负担构成了实际限制,影响了用户的接受度,从而影响了临床应用。这项工作介绍了一种用于气道监测的无线自供电传感系统,该系统使用一组压电悬臂梁作为呼吸流量传感器和能量收集器,为系统供电。悬臂梁被气道中的气流激发,从悬臂梁收集的能量存储在电容器中。一旦阈值能量在电容器中可用,负载开关关闭并启用作为无数据发射器的低频振荡器。来自传感系统的信号由外部软件定义无线电(SDR)接收,并将接收信号的速率映射到气道中的呼吸状况。为了验证传感器的有效性,研究人员创建了一个包含肺模拟器、数据采集系统和热线风速计的台式测试系统。结果表明,信号接收速率受呼吸频率和呼吸量的影响,显示了一种自供电、小型化、无源植入式连续呼吸健康监测装置的潜力。
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