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基于光纤布拉格光栅的传感器,用于监测磁共振成像检查期间的呼吸和心脏活动。

Fiber Bragg grating-based sensor for monitoring respiration and heart activity during magnetic resonance imaging examinations.

机构信息

Military Institute of Aviation Medicine, Technical Department of Aeromedical Research and Flight Simulators, ul. Zygmunta Krasińskiego 54/56, 01-755 Warszawa, Poland.

出版信息

J Biomed Opt. 2013 May;18(5):57006. doi: 10.1117/1.JBO.18.5.057006.

Abstract

We present a fiber-optic sensor for monitoring respiration and heart activity designed to operate in the magnetic resonance imaging (MRI) environment. The sensor employs a Plexiglas springboard, which converts movements of the patient's body lying on the board (i.e., lung- and heart-induced vibrations) to strain, where a fiber Bragg grating attached to the board is used to measure this strain. Experimental studies are carried out during thoracic spine MRI examinations. The presence of the metal-free sensor construction in the MRI environment does not pose a threat to the patient and has no influence over the quality of imaging, and the signal is identical to that obtained without any electromagnetic interference. The results show that the sensor is able to accurately reflect the ballistocardiographic signal, enabling determinations of the respiration rate (RR) and heart rate (HR). The data delivered by the sensor are normally distributed on the Bland-Altman plot for the characteristic point determination and exhibit clear dependence on the RR and HR values for the RR and HR determinations, respectively. Measurement accuracies are better than 7% of the average values, and thus, with further development, the sensor will be implemented in routine MRI examinations.

摘要

我们提出了一种用于监测呼吸和心脏活动的光纤传感器,旨在磁共振成像(MRI)环境中运行。该传感器采用有机玻璃跳板,将躺在跳板上的患者身体的运动(即肺部和心脏引起的振动)转换为应变,其中附着在跳板上的光纤布拉格光栅用于测量这种应变。实验研究是在胸脊柱 MRI 检查期间进行的。在 MRI 环境中,无金属传感器结构不会对患者构成威胁,也不会对成像质量产生影响,并且信号与没有任何电磁干扰时获得的信号相同。结果表明,该传感器能够准确地反映心冲击图信号,从而能够确定呼吸率(RR)和心率(HR)。传感器提供的数据在特征点确定的 Bland-Altman 图上呈正态分布,并且RR 和 HR 分别分别显示出与 RR 和 HR 值的明显依赖性。测量精度优于平均值的 7%,因此,随着进一步的发展,该传感器将在常规 MRI 检查中得到实施。

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