Potential Maneuvers for Providing Optimal Tidal Volume Using the One-Handed EC Technique
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design
2.2. Participants and Setting
2.3. Ethical Consideration and Data Collection
2.4. Experimental Setting and Variables
2.5. Tidal Volume and Peak Pressure
2.6. Four-Spot Adhesion Strength
2.7. Data Analyses
3. Results
3.1. General Characteristics
3.2. Correlation between Vt, PP, and 4-Spot Adhesion Strengths
3.3. Factors Influencing Vt
4. Discussion
Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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N (%) | ||
---|---|---|
Sex | Male | 41 (46.1) |
Female | 48 (53.9) | |
School year | Sophomore | 28 (31.5) |
Junior | 31 (34.8) | |
Senior | 30 (33.7) | |
Hand holding the mask | Left | 82 (92.1) |
Right | 7 (7.9) |
N | (%) | Mean (±SD) | Measuring Range | |||
---|---|---|---|---|---|---|
General characteristics as the control variables | Sex | Male | 764 | (50.1) | ||
Female | 760 | (49.9) | ||||
School year | Sophomore | 519 | (34.1) | |||
Junior | 552 | (36.2) | ||||
Senior | 453 | (29.7) | ||||
Hand holding the mask | Left | 1411 | (92.6) | |||
Right | 113 | (7.4) | ||||
PP (cmH2O) | 15.56 (±5.62) | 5–200 cmH2O/L/s | ||||
Experimental variables | 4-spot adhesion strength -ln(apex) (N) | 0.03 (±0.07) | 0–100 N | |||
4-spot adhesion strength- ln(bottom) (N) | 0.17 (±0.29) | 0–100 N | ||||
4-spot adhesion strength- left (N) | 0.62 (±0.49) | 0–100 N | ||||
4-spot adhesion strength- right (N) | 0.69 (±0.63) | 0–100 N | ||||
Dependent variable | Tidal Volume (mL) | 415.98 (±102.4) | 0–1200 mL |
r | (p) | |
---|---|---|
Tidal Volume | 1 | |
PP | 0.744 *** | (<0.001) |
ln(apex) | 0.083 ** | (0.001) |
ln(bottom) | −0.057 * | (0.025) |
Left | 0.280 *** | (<0.001) |
Right | 0.227 *** | (<0.001) |
B | S.E. | β | t | p | |
---|---|---|---|---|---|
(constant) | 199.804 | 6.053 | 33.011 *** | <0.001 | |
ln(apex) | −32.060 | 25.522 | −0.021 | −1.256 | 0.209 |
ln(bottom) | −65.440 | 5.781 | −0.186 | −11.320 *** | <0.001 |
Left | 35.766 | 3.576 | 0.172 | 10.002 *** | <0.001 |
Right | −20.156 | 3.281 | −0.123 | −6.144 *** | <0.001 |
PP | 14.519 | 0.315 | 0.797 | 46.084 *** | <0.001 |
Sex (male = ref.) | |||||
Female | −27.241 | 3.430 | −0.133 | −7.942 *** | <0.001 |
School year (sophomore = ref.) | |||||
Junior | 22.574 | 3.918 | 0.106 | 5.761 *** | <0.001 |
Senior | −1.082 | 4.387 | −0.005 | −0.247 | 0.805 |
Hand holding the mask (left = ref.) | |||||
Right | −4.643 | 6.205 | −0.012 | −0.748 | 0.454 |
F = 302.865 ***, R2(adjR2) = 0.643 (0.641) |
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Uhm, D.; Kim, A. Potential Maneuvers for Providing Optimal Tidal Volume Using the One-Handed EC Technique. Healthcare 2022, 10, 1365. https://doi.org/10.3390/healthcare10081365
Uhm D, Kim A. Potential Maneuvers for Providing Optimal Tidal Volume Using the One-Handed EC Technique. Healthcare. 2022; 10(8):1365. https://doi.org/10.3390/healthcare10081365
Chicago/Turabian StyleUhm, Dongchoon, and Ajung Kim. 2022. "Potential Maneuvers for Providing Optimal Tidal Volume Using the One-Handed EC Technique" Healthcare 10, no. 8: 1365. https://doi.org/10.3390/healthcare10081365
APA StyleUhm, D., & Kim, A. (2022). Potential Maneuvers for Providing Optimal Tidal Volume Using the One-Handed EC Technique. Healthcare, 10(8), 1365. https://doi.org/10.3390/healthcare10081365