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A Model to Simulate Clinically Relevant Hypoxia in Humans
Published on: December 22, 2016
The effect of staged decompression while breathing 100% oxygen on altitude decompression sickness
J T Webb1, A A Pilmanis, N Kannan
1Air Force Research Laboratory in San Antonio, TX, USA. james.webb@brooks.af.mil
Aviation, Space, and Environmental Medicine
|July 21, 2000
Summary
Staged decompression at 16,000 feet or below effectively prevents decompression sickness during space missions. This method, using 100% oxygen, ensures astronaut safety at high altitudes.
Area of Science:
- Aerospace Medicine
- Physiological Adaptations to Spaceflight
- Decompression Physiology
Background:
- Space Shuttle extravehicular activity (EVA) requires significant pressure reduction from 14.7 psia to 4.3 psia.
- Current EVA protocols use a 12-36 hour staged decompression (SD) at 10.2 psia with an oxygen-enriched gas for denitrogenation.
- Denitrogenation is crucial for preventing decompression sickness (DCS) during EVA.
Purpose of the Study:
- To identify the maximum altitude for effective staged decompression using 100% oxygen (SD100).
- To assess DCS risk after decompression to 4.5 psia (29,500 ft) following SD100.
- To evaluate the efficacy of SD100 in preventing DCS symptoms.
Main Methods:
- 30 male subjects underwent 11 conditions, including exposures to 29,500 ft for 4 hours with mild exercise.
- Subjects received 15 minutes of ground-level (GL) preoxygenation plus 60 or 120 minutes of SD100 at altitudes from 8,000 to 18,000 ft.
- Venous gas emboli (VGE) were monitored using echo-imaging; control exposures used GL preoxygenation.
Main Results:
- One case of DCS occurred during SD100 at 18,000 ft; no DCS occurred at lower staging altitudes.
- Higher VGE levels were detected during SD100 at 18,000 ft compared to lower altitudes.
- SD100 at altitudes 16,000 ft and below did not result in increased DCS risk.
Conclusions:
- Staged decompression at 16,000 ft and below provides decompression risk similar to ground-level preoxygenation.
- SD100 at altitudes up to 16,000 ft is effective in preventing DCS for subsequent decompression to 29,500 ft.
- The findings support optimizing pre-EVA denitrogenation protocols for astronaut safety.
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