Roumengous Thibault, Boutwell R Casey, Strohmaier Jason, Allen Jared, Goldbach Brett, Marotta Nicholas, Songkakul Tanner, Critcher Shelby, Morse Bria G, Beer Jeremy M A, Sherman Paul M
NIRSense Inc., Richmond, VA, United States.
Aerospace Environment Protection Lab, KBR Science and Space Government Solutions Group, San Antonio, TX, United States.
Front Neuroergon. 2024 Feb 23;5:1357905. doi: 10.3389/fnrgo.2024.1357905. eCollection 2024.
Real-time physiological episode (PE) detection and management in aircrew operating high-performance aircraft (HPA) is crucial for the US Military. This paper addresses the unique challenges posed by high acceleration (G-force) in HPA aircrew and explores the potential of a novel wearable functional near-infrared spectroscopy (fNIRS) system, named NIRSense Aerie, to continuously monitor cerebral oxygenation during high G-force exposure.
The NIRSense Aerie system is a flight-optimized, wearable fNIRS device designed to monitor tissue oxygenation 13-20 mm below the skin's surface. The system includes an optical frontend adhered to the forehead, an electronics module behind the earcup of aircrew helmets, and a custom adhesive for secure attachment. The fNIRS optical layout incorporates near-distance, middle-distance, and far-distance infrared emitters, a photodetector, and an accelerometer for motion measurements. Data processing involves the modified Beer-Lambert law for computing relative chromophore concentration changes. A human evaluation of the NIRSense Aerie was conducted on six subjects exposed to G-forces up to +9 Gz in an Aerospace Environmental Protection Laboratory centrifuge. fNIRS data, pulse oximetry, and electrocardiography (HR) were collected to analyze cerebral and superficial tissue oxygenation kinetics during G-loading and recovery.
The NIRSense Aerie successfully captured cerebral deoxygenation responses during high G-force exposure, demonstrating its potential for continuous monitoring in challenging operational environments. Pulse oximetry was compromised during G-loading, emphasizing the system's advantage in uninterrupted cerebrovascular monitoring. Significant changes in oxygenation metrics were observed across G-loading levels, with distinct responses in Deoxy-Hb and Oxy-Hb concentrations. HR increased during G-loading, reflecting physiological stress and the anti-G straining maneuver.
The NIRSense Aerie shows promise for real-time monitoring of aircrew physiological responses during high G-force exposure. Despite challenges, the system provides valuable insights into cerebral oxygenation kinetics. Future developments aim for miniaturization and optimization for enhanced aircrew comfort and wearability. This technology has potential for improving anti-G straining maneuver learning and retention through real-time cerebral oxygenation feedback during centrifuge training.
对于美国军方而言,在驾驶高性能飞机(HPA)的机组人员中进行实时生理事件(PE)检测和管理至关重要。本文探讨了HPA机组人员面临的高加速度(G力)带来的独特挑战,并探索了一种名为NIRSense Aerie的新型可穿戴功能近红外光谱(fNIRS)系统在高G力暴露期间持续监测脑氧合的潜力。
NIRSense Aerie系统是一种经过飞行优化的可穿戴fNIRS设备,旨在监测皮肤表面以下13 - 20毫米处的组织氧合。该系统包括一个粘贴在前额的光学前端、一个位于机组人员头盔耳罩后面的电子模块以及用于牢固附着的定制粘合剂。fNIRS光学布局包括近距离、中距离和远距离红外发射器、一个光电探测器以及一个用于运动测量的加速度计。数据处理涉及用于计算相对发色团浓度变化的修正比尔 - 朗伯定律。在航空航天环境保护实验室离心机中,对六名暴露于高达 +9 Gz G力的受试者进行了NIRSense Aerie的人体评估。收集fNIRS数据、脉搏血氧饱和度和心电图(HR),以分析G负荷和恢复期间的脑和浅表组织氧合动力学。
NIRSense Aerie在高G力暴露期间成功捕获了脑脱氧反应,证明了其在具有挑战性的操作环境中进行持续监测的潜力。在G负荷期间脉搏血氧饱和度受到影响,凸显了该系统在不间断脑血管监测方面的优势。在不同G负荷水平下观察到氧合指标的显著变化,脱氧血红蛋白(Deoxy - Hb)和氧合血红蛋白(Oxy - Hb)浓度有明显反应。HR在G负荷期间增加,反映了生理应激和抗G紧张动作。
NIRSense Aerie在高G力暴露期间对机组人员生理反应的实时监测方面显示出前景。尽管存在挑战,但该系统为脑氧合动力学提供了有价值的见解。未来的发展目标是实现小型化和优化,以提高机组人员的舒适度和可穿戴性。这项技术有可能通过在离心机训练期间的实时脑氧合反馈来改善抗G紧张动作的学习和保持。