Differences Research on Human Overall Comfort Under Low Pressure
Abstract
:1. Introduction
2. Method
2.1. Human Overall Comfort Evaluation Method
2.1.1. Single-Factor Dimensionless Processing and Weight Value
2.1.2. Overall Evaluation Model Synthesis Method
2.2. Experimental Research
2.2.1. Experimental Device
2.2.2. Experimental Design
3. Results
3.1. Thermal Experiment Results
3.2. Luminous Experiment Results
3.3. Acoustic Experiment Results
3.4. Human Overall Comfort Evaluation Model and Verification
4. Discussion
4.1. The Physiological Mechanisms That Affect Thermal, Luminous, and Acoustic Perception Under Low Pressure
4.1.1. Thermal Perception
4.1.2. Luminous Perception
4.1.3. Acoustic Perception
4.2. Single-Environment Differences Under Low Pressures
4.2.1. Thermal Environment Differences Under Low Pressure
4.2.2. Luminous Environment Differences Under Low Pressure
4.2.3. Acoustic Environment Differences Under Low Pressure
4.3. Differences Analysis in Human Overall Comfort Evaluation Under Low Pressure
4.3.1. The Influence of the Factor Unit Changes on the Overall Comfort
- (1)
- When ∆to = 1 °C, ∆E = 100 lx, and ∆N = 5 dB, the magnitude of the changes in POCVL caused under low pressure was equivalent. Thus, the order of influence of the operative temperature, illuminance, and noise level on POCVL can be determined: to > N > E.
- (2)
- The influence of operative temperature and illuminance on POCVL under low pressure was approximately twice as large as that under standard atmospheric pressure.
- (3)
- The dominant influencing factor for POCVL changed with the comfort states of other factors. The more a single factor deviated from the comfort zone, the greater the change in POCVL caused by its variation, and the more likely this factor became the dominant influencing factor for POCVL.
4.3.2. The Overall Comfort Peak and the Tolerable Zone
4.3.3. The Overall Comfortable Zone
5. Conclusions
- There were differences in comfort votes for individual environments under low pressure. At 80 kPa, the operative temperature of the comfort zone increased in winter. The luminous comfort zone narrowed, and the luminous comfort vote decreased. However, the acoustic comfort vote increased, indicating an enhanced noise tolerance.
- The ranking of the factors’ unit effects on the overall comfort vote was as follows: to > N > E. In the overall comfort zone, changes of 1 °C, 100 lx, or 5 dB caused comparable POCV/POCVL changes. When a certain factor deviated from the overall comfort zone, it became the dominant factor affecting POCV/POCVL.
- Under low pressure, energy-saving strategies were determined for the POCVL peak: selecting a relatively cold environment in winter and a relatively warm environment in summer. The illuminance selection shifted to the left side of the x-coordinate. The tolerable zone became smaller, making it easier to reach the lower limit.
- Nomograms of the commonly used overall comfort zone were drawn. Through parameter interactions, using “superior” parameters to compensate for “inferior” ones can improve the human overall comfort vote.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Symbol | Description (Unit) |
C | The overall evaluation value of the effective function |
The composite function of yi and | |
The single-factor weight value | |
y1~y3 (yi) | The dimensionless function of a single environment |
y′1~y′3 (y′i) | The dimensionless function of a single environment under low pressure |
L | The low evaluation index of a single environment |
to | Operative temperature () |
E | Illuminance (lx) |
N | Noise level (dB) |
POCV | The evaluation value of punitive substitution, namely the Predicted Overall Comfort Vote |
POCVL | The evaluation value of punitive substitution under low pressure, namely the Predicted Overall Comfort Vote Low |
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Cx | 0 | −1 | −2 | −3 | −4 |
---|---|---|---|---|---|
Thermal Comfort | Comfort | Slightly Uncomfortable | Uncomfortable | Very Uncomfortable | Unbearable |
Luminous Comfort | Comfort | Slightly Brighter (Dim) | Bright (Dark) | Very Bright (Dark) | Unbearable Bright (Dark) |
Acoustic Comfort | Comfort | Slightly Uncomfortable | Uncomfortable | Very Uncomfortable | Unbearable (Caused by noise) |
Overall Comfort | Comfort | Slightly Uncomfortable | Uncomfortable | Very Uncomfortable | Unbearable |
Sex | Maximum | Minimum | Average | Standard Deviation | |
---|---|---|---|---|---|
Age | Male | 26 | 23 | 24 | 1.08 |
Female | 26 | 19 | 24 | 1.39 | |
Height/cm | Male | 181 | 170 | 174.6 | 3.34 |
Female | 170 | 150 | 162.5 | 6.85 | |
Weight/kg | Male | 100 | 54 | 71.1 | 13.65 |
Female | 65 | 46 | 52.8 | 5.72 |
Sample Size Calculation | Statistical Power Analysis | ||
---|---|---|---|
Test Family: | F Tests | Test Family: | F Tests |
Statistical test: | Linear multiple regression | Statistical test: | Linear multiple regression |
Effect Size f2 | 0.35 | Effect Size f2 | 0.35 |
An error probability | 0.05 | An error probability | 0.05 |
Number of predictors | 1 | Number of predictors | 1 |
Power (1 − ) | 0.8 | N’ | 60 |
N | 24 | Power (1 −) | 1 (100%) |
Equipment | Name | City | Country |
---|---|---|---|
Agilent34980A | Keysihgt Technoligies | Santa Rosa | America |
TJ-103 | Tianjin Hongda Instrument Factory | Tianjin | China |
KANOMAX 6004 | Kanomax Japan Inc. | Osaka | Japan |
SIMAA AS803 | Sima Instrument Group Co., Ltd. | Dongguan | China |
AWA6291 | Hangzhou Aihua Instrument Co., Ltd. | Hangzhou | China |
Pressure (kPa) | Season | Function | p | |
---|---|---|---|---|
101 | Winter | 0.771 | 0.001 ** | |
Summer | 0.947 | 0.012 * | ||
80 | Winter | 0.925 | 0.00 ** | |
Summer | 0.869 | 0.048 * |
Pressure (kPa) | Function | p | |
---|---|---|---|
101 | 0.756 | 0.000 ** | |
80 | 0.705 | 0.000 ** |
Pressure (kPa) | Function | R2 | p |
---|---|---|---|
101 | 0.939 | 0.001 ** | |
80 | 0.874 | 0.006 ** |
Pressure (kPa) | Thermal Level | Winter (°C) | Transitional Seasons (°C) | Summer (°C) |
---|---|---|---|---|
101 | I II | 19.1~21.6 17.2~19.1 | 21.6~24.6 24.0~24.5 | 24.6~26.0 26.0~27.0 |
80 | I II | 20.8~24.0 18.9~20.8 | 24.5~26.0 26.0~26.8 |
Pressure (kPa) | Peak Luminous (lx) | Comfort Luminous Zones (lx) |
---|---|---|
101 80 | 652 551 | 460~843 382~720 |
Pressure (kPa) | Comfort Level | Noise (dB) |
---|---|---|
101 | I | ≤64.0 |
II | ≤69.0 | |
80 | I | ≤64.8 |
II | ≤71.0 |
Pressure (kPa) | Operative Temperature (°C) Winter/Summer | Illuminance (lx) | Noise (dB) | POCV(POCVL) Winter/Summer |
---|---|---|---|---|
101 | 21.6/24.6 | 652 | 60 | −0.325/−0.295 |
80 | 22.4/25 | 551 | 60 | −0.366/−0.399 |
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Guo, T.; Hu, S.; Li, Q. Differences Research on Human Overall Comfort Under Low Pressure. Appl. Sci. 2025, 15, 3815. https://doi.org/10.3390/app15073815
Guo T, Hu S, Li Q. Differences Research on Human Overall Comfort Under Low Pressure. Applied Sciences. 2025; 15(7):3815. https://doi.org/10.3390/app15073815
Chicago/Turabian StyleGuo, Tieming, Songtao Hu, and Qingqing Li. 2025. "Differences Research on Human Overall Comfort Under Low Pressure" Applied Sciences 15, no. 7: 3815. https://doi.org/10.3390/app15073815
APA StyleGuo, T., Hu, S., & Li, Q. (2025). Differences Research on Human Overall Comfort Under Low Pressure. Applied Sciences, 15(7), 3815. https://doi.org/10.3390/app15073815