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A Low-Power and Portable Biomedical Device for Respiratory Monitoring with a Stable Power Source

机译:低功率便携式生物医学设备用于具有稳定电源的呼吸监测

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摘要

Continuous respiratory monitoring is an important tool for clinical monitoring. Associated with the development of biomedical technology, it has become more and more important, especially in the measuring of gas flow and CO2 concentration, which can reflect the status of the patient. In this paper, a new type of biomedical device is presented, which uses low-power sensors with a piezoresistive silicon differential pressure sensor to measure gas flow and with a pyroelectric sensor to measure CO2 concentration simultaneously. For the portability of the biomedical device, the sensors and low-power measurement circuits are integrated together, and the airway tube also needs to be miniaturized. Circuits are designed to ensure the stability of the power source and to filter out the existing noise. Modulation technology is used to eliminate the fluctuations at the trough of the waveform of the CO2 concentration signal. Statistical analysis with the coefficient of variation was performed to find out the optimal driving voltage of the pressure transducer. Through targeted experiments, the biomedical device showed a high accuracy, with a measuring precision of 0.23 mmHg, and it worked continuously and stably, thus realizing the real-time monitoring of the status of patients.
机译:连续呼吸监测是临床监测的重要工具。随着生物医学技术的发展,它变得越来越重要,尤其是在可以反映患者状况的气体流量和二氧化碳浓度的测量中。在本文中,提出了一种新型的生物医学设备,该设备使用低功率传感器和压阻硅压差传感器来测量气体流量,并使用热释电传感器来同时测量CO2浓度。为了生物医学设备的便携性,将传感器和低功率测量电路集成在一起,并且还需要使气道导管小型化。电路的设计可确保电源的稳定性并滤除现有噪声。调制技术用于消除CO2浓度信号波形波谷处的波动。用变化系数进行统计分析,以找出压力传感器的最佳驱动电压。通过有针对性的实验,该生物医学设备显示出较高的准确性,测量精度为0.23 mmHg,并且连续且稳定地工作,从而实现了对患者状况的实时监控。

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