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A Sensor for Spirometric Feedback in Ventilation Maneuvers during Cardiopulmonary Resuscitation Training

机译:心肺复苏训练期间通气动作中的肺量反馈传感器

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摘要

This work proposes adapting an existing sensor and embedding it on mannequins used in cardiopulmonary resuscitation (CPR) training to accurately measure the amount of air supplied to the lungs during ventilation. Mathematical modeling, calibration, and validation of the sensor along with metrology, statistical inference, and spirometry techniques were used as a base for aquiring scientific knowledge of the system. The system directly measures the variable of interest (air volume) and refers to spirometric techniques in the elaboration of its model. This improves the realism of the dummies during the CPR training, because it estimates, in real-time, not only the volume of air entering in the lungs but also the Forced Vital Capacity (FVC), Forced Expiratory Volume (FEVt) and Medium Forced Expiratory Flow (FEF ). The validation of the sensor achieved results that address the requirements for this application, that is, the error below 3.4% of full scale. During the spirometric tests, the system presented the measurement results of (305 ± 22, 450 ± 23, 603 ± 24, 751 ± 26, 922 ± 27, 1021 ± 30, 1182 ± 33, 1326 ± 36, 1476 ± 37, 1618 ± 45 and 1786 ± 56) × 10 m for reference values of (300, 450, 600, 750, 900, 1050, 1200, 1350, 1500, 1650 and 1800) × 10 m , respectively. Therefore, considering the spirometry and pressure boundary conditions of the manikin lungs, the system achieves the objective of simulating valid spirometric data for debriefings, that is, there is an agreement between the measurement results when compared to the signal generated by a commercial spirometer (Koko brand). The main advantages that this work presents in relation to the sensors commonly used for this purpose are: (i) the reduced cost, which makes it possible, for the first time, to use a respiratory volume sensor in medical simulators or training dummies; (ii) the direct measurement of air entering the lung using a noninvasive method, which makes it possible to use spirometry parameters to characterize simulated human respiration during the CPR training; and (iii) the measurement of spirometric parameters (FVC, FEVt, and FEF ), in real-time, during the CPR training, to achieve optimal ventilation performance. Therefore, the system developed in this work addresses the minimum requirements for the practice of ventilation in the CPR maneuvers and has great potential in several future applications.
机译:这项工作提出了对现有传感器的改造,并将其嵌入心肺复苏(CPR)训练中使用的人体模型上,以准确测量通气过程中供应给肺部的空气量。传感器的数学建模,校准和验证以及计量,统计推断和肺活量测定技术被用作获取系统科学知识的基础。该系统直接测量感兴趣的变量(风量),并在详细说明其模型时参考肺活量测定技术。这可以提高心肺复苏术训练过程中假人的真实性,因为它不仅可以实时估计进入肺部的空气量,还可以估计出肺活量(FVC),强迫呼气量(FEVt)和中等强迫呼气流量(FEF)。传感器的验证达到了满足该应用要求的结果,即误差低于满量程的3.4%。在肺活量测试期间,系统显示的测量结果为(305±22,450±23,603±24,751±26,922±27,1021±30,1182±33,1326±36,1476±37,1618参考值分别为(300、450、600、750、900、1050、1200、1350、1500、1650和1800)×10 m的±45和1786±56)×10 m。因此,考虑人体模型肺的肺活量测定法和压力边界条件,该系统达到了模拟有效的肺活量测定数据以进行汇报的目的,也就是说,与商用肺活量计产生的信号进行比较,测量结果之间存在一致性。牌)。这项工作相对于通常用于此目的的传感器的主要优点是:(i)成本降低,这使得首次在医疗模拟器或训练假人中使用呼吸量传感器成为可能; (ii)使用非侵入性方法直接测量进入肺的空气,这使得可以在CPR训练期间使用肺活量测定参数来表征模拟的人类呼吸; (iii)在进行心肺复苏术训练期间实时测量肺活量参数(FVC,FEVt和FEF),以达到最佳的通气性能。因此,这项工作中开发的系统满足了CPR操作中通风操作的最低要求,并且在未来的一些应用中具有很大的潜力。

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