Yuan Yueyang, Zhang Zhongping, Xie Lixin, Huang Haoxuan, Liu Wei
Innovation Base of Intelligent Diagnostic and Therapeutic in Respiration, Hunan City University, Yiyang, Hunan 413099, P. R. China.
Department of Respiratory and Critical Care Medicine, Chinese PLA General Hospital, Beijing 100853, P. R. China.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2025 Aug 25;42(4):733-738. doi: 10.7507/1001-5515.202407055.
In order to accurately capture the respiratory muscle movement and extract the synchronization signals corresponding to the breathing phases, a comprehensive signal sensing system for sensing the movement of the respiratory muscle was developed with applying the thin-film varistor FSR402 IMS-C07A in this paper. The system integrated a sensor, a signal processing circuit, and an application program to collect, amplify and denoise electronic signals. Based on the respiratory muscle movement sensor and a STM32F107 development board, an experimental platform was designed to conduct experiments. The respiratory muscle movement data and respiratory airflow data were collected from 3 healthy adults for comparative analysis. In this paper, the results demonstrated that the method for determining respiratory phase based on the sensing the respiratory muscle movement exhibited strong real-time performance. Compared to traditional airflow-based respiratory phase detection, the proposed method showed a lead times ranging from 33 to 210 ms [(88.3 ± 47.9) ms] for expiration switched into inspiration and 17 to 222 ms [(92.9 ± 63.8) ms] for inspiration switched into expiration, respectively. When this system is applied to trigger the output of the ventilator, it will effectively improve the patient-ventilator synchrony and facilitate the ventilation treatment for patients with respiratory diseases.
为了准确捕捉呼吸肌运动并提取与呼吸阶段对应的同步信号,本文应用薄膜压敏电阻FSR402 IMS-C07A开发了一种用于感知呼吸肌运动的综合信号传感系统。该系统集成了传感器、信号处理电路和应用程序,用于采集、放大和去噪电子信号。基于呼吸肌运动传感器和STM32F107开发板,设计了一个实验平台来进行实验。从3名健康成年人身上采集了呼吸肌运动数据和呼吸气流数据进行对比分析。本文结果表明,基于感知呼吸肌运动来确定呼吸阶段的方法具有很强的实时性能。与传统的基于气流的呼吸阶段检测相比,该方法在呼气转换为吸气时的提前时间为33至210毫秒[(88.3±47.9)毫秒],在吸气转换为呼气时的提前时间分别为17至222毫秒[(92.9±63.8)毫秒]。当该系统应用于触发呼吸机输出时,将有效提高患者与呼吸机的同步性,便于对呼吸系统疾病患者进行通气治疗。