A system to measure a pilot's temporal pulse pressure during acceleration
J R LaCourse1, K Sivaprasad, D B Rogers
1Department of Electrical and Computer Engineering, University of New Hampshire, Durham 03824.
Aviation, Space, and Environmental Medicine
|April 1, 1991
Summary
A new noninvasive system monitors pilot pulse pressure during high-G acceleration to detect G-induced Loss of Consciousness (G-LOC). This Piezoelectric Pulse Pressure Monitoring System (P3) shows potential for aircraft autorecovery systems.
Area of Science:
- Aerospace Medicine
- Biomedical Engineering
- Physiological Monitoring
Background:
- Monitoring pilot physiological status during high-G maneuvers is critical for flight safety.
- G-induced Loss of Consciousness (G-LOC) is a significant risk in high-performance aircraft.
- Noninvasive methods for real-time physiological monitoring are needed in aviation.
Purpose of the Study:
- To describe the design and capabilities of a novel noninvasive system for recording superficial temporal artery (STA) pulse pressure.
- To evaluate the system's utility in monitoring pilots during simulated diving and high-G acceleration scenarios.
- To assess the potential of the system for determining G-LOC conditions and integration into aircraft safety systems.
Main Methods:
- Development of the Piezoelectric Pulse Pressure Monitoring System (P3) utilizing an array of piezoelectric benders.
- Recording the optimal pulse pressure waveform from the STA during +1 Gz acceleration.
- Continuous monitoring of the STA pulse pressure during sustained +Gz acceleration to identify G-LOC precursors.
Main Results:
- The P3 system successfully recorded superficial temporal artery pulse pressure waveforms.
- The system demonstrated capability for monitoring during simulated high-G acceleration relevant to aviation.
- Preliminary results suggest the P3 system can aid in the determination of G-LOC conditions.
Conclusions:
- The Piezoelectric Pulse Pressure Monitoring System (P3) is a viable noninvasive tool for monitoring pilot physiological responses in cockpit environments.
- The P3 system holds potential as a controller for an aircraft autorecovery system to mitigate G-LOC events.
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