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基于光纤布拉格光栅的体外脊髓损伤生物力学动力学敏感快速研究。

A Sensitive and Fast Fiber Bragg Grating-Based Investigation of the Biomechanical Dynamics of In Vitro Spinal Cord Injuries.

机构信息

École de Technologie Supérieure, 1100 Notre-Dame Street West, Montreal, QC H3C 1K3, Canada.

Hôpital du Sacré-Cœur de Montréal, 5400 Gouin Boul. West, Montreal, QC H4J 1C5, Canada.

出版信息

Sensors (Basel). 2021 Mar 1;21(5):1671. doi: 10.3390/s21051671.

Abstract

To better understand the real-time biomechanics of soft tissues under sudden mechanical loads such as traumatic spinal cord injury (SCI), it is important to improve in vitro models. During a traumatic SCI, the spinal cord suffers high-velocity compression. The evaluation of spinal canal occlusion with a sensor is required in order to investigate the degree of spinal compression and the fast biomechanical processes involved. Unfortunately, available techniques suffer with drawbacks such as the inability to measure transverse compression and impractically large response times. In this work, an optical pressure sensing scheme based on a fiber Bragg grating and a narrow-band filter was designed to detect and demonstrate the transverse compression inside a spinal cord surrogate in real-time. The response time of the proposed scheme was 20 microseconds; a five orders of magnitude enhancement over comparable schemes that depend on costly and slower optical spectral analyzers. We further showed that this improvement in speed comes with a negligible loss in sensitivity. This study is another step towards better understanding the complex biomechanics involved during a traumatic SCI, using a method capable of probing the related internal strains with high-spatiotemporal resolution.

摘要

为了更好地理解创伤性脊髓损伤 (SCI) 等突发机械负荷下软组织的实时生物力学特性,改进体外模型非常重要。在创伤性 SCI 中,脊髓会受到高速压缩。需要使用传感器评估椎管阻塞情况,以研究脊柱压缩程度和涉及的快速生物力学过程。然而,现有的技术存在一些缺点,例如无法测量横向压缩和响应时间过长。在这项工作中,设计了一种基于光纤布拉格光栅和窄带滤波器的光学压力传感方案,用于实时检测和演示脊髓替代物内部的横向压缩。所提出方案的响应时间为 20 微秒,比依赖昂贵且较慢的光学频谱分析仪的可比方案快五个数量级。我们还表明,这种速度上的提高几乎不会降低灵敏度。这项研究是朝着使用能够以高时空分辨率探测相关内部应变的方法更好地理解创伤性 SCI 中涉及的复杂生物力学迈出的又一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e6d/7957506/66899e949895/sensors-21-01671-g001.jpg

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