Research on the Effects of the High Temperature and Humidity Environment on Human Comfort in Coal Mine Emergency Refuge System
Abstract
:1. Introduction
2. Research Methods
2.1. Experimental Conditions
2.2. Methods
3. Results and Analysis
3.1. Effects of Temperature and Humidity on Comfort
3.2. The Temperature and Humidity Boundary Curves for Different Comfort Levels
3.3. The Relationship of Temperature and Humidity at the Same Comfort Level
3.4. Prediction Model of Apparent Temperature
4. Conclusions
- Under rescue conditions studied here, 27 °C is the dividing line of significant change in human comfort. When the temperature is below 27 °C, humidity has little effect on comfort and the overall fluctuation range is ±0.1. When the temperature is between 28 and 31 °C and the humidity is higher than 75%, comfort is reduced by 0.5 for each 10% increase in humidity. When the temperature is between 31 and 37 °C, the comfort is reduced by 0.7 for each 10% increase in humidity. To ensure the comfort of humans is stable, for each 10% increase in humidity, the temperature needs to drop by approximately 2 °C.
- This article identified the minimum conditions for life security for temperature and humidity in a confined space under rescue conditions in which the comfort score is sweltering (−2 points). The temperature range and humidity boundaries of (33 °C, 90% RH) to (36 °C, 70% RH) was obtained.
- The prediction function of apparent temperature in a high hot-humidity environment was obtained by fitting the data, and the fitting degree was 0.9638.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Li, J.; Jin, L.Z.; Wang, S.; Zhu, J. Respiratory quotient calculation of the human body at a confined space in coal mines. J. Univ. Sci. Technol. Beijing 2010, 32, 963–967. [Google Scholar]
- Li, J.; Jin, L.Z.; Wang, S. Research on the device of carbon dioxide purification in coal mine refuge chamber. Saf. Coal Mines 2010, 41, 1–4. [Google Scholar]
- Wang, S.; Jin, L.Z.; Li, J. The present statns of overseas mine emergency refuge chamber technology. J. Saf. Sci. Technol. 2010, 6, 119–123. [Google Scholar]
- Sun, J.P. Research on key technologies of emergency refuge system in underground coal mine. J. China Coal Soc. 2011, 36, 1890–1894. [Google Scholar]
- Li, J.; Jin, L.Z.; Wang, S. Research on the comfort degree of oxygen content in refuge chamber. J. China Coal Soc. 2013, 38, 2163–2167. [Google Scholar]
- State Administration of Work Safety Interim Provisions on the Construction Management of the Underground Fire Emergency Hazard System in Yinfa Coal Mine, Safety Supervision, Coal Loading [2011] No. 15. Available online: http://www.gov.cn/english/2005-10/20/content_80531.htm (accessed on 6 April 2019).
- Mors, S.T.; Hensen, J.L.M.; Loomans, M.G.L.C.; Boerstra, A.C. Adaptive thermal comfort in primary school classrooms: Creating and validating PMV-based comfort charts. Build Environ. 2011, 46, 2454–2461. [Google Scholar] [CrossRef] [Green Version]
- Muhič, S.; Butala, V. The influence of indoor environment in office buildings on their occupants: Expected–unexpected. Build Environ. 2004, 39, 289–296. [Google Scholar] [CrossRef]
- Jang, M.S.; Koh, C.D.; Moon, I.S. Review of thermal comfort design based on PMV/PPD in cabins of Korean maritime patrol vessels. Build Environ. 2007, 42, 55–61. [Google Scholar] [CrossRef]
- Pourshaghaghy, A.; Omidvari, M. Examination of thermal comfort in a hospital using PMV–PPD model. Appl. Erg. 2012, 43, 1089–1095. [Google Scholar] [CrossRef] [PubMed]
- Abbritti, G.; Muzi, G.; Accattoli, M.P.; Fiordi, T.; Dell’Omo, M.; Colangeli, C.; Gabrielli, A.R.; Fabbri, T.; D’Alessandro, A. High prevalence of sick building syndrome in a new air-conditioned building in Italy. Arch. Environ. Health 2016, 47, 16–22. [Google Scholar] [CrossRef] [PubMed]
- Ampofo, F.; Maidment, G.; Missenden, J. Underground railway environment in the UK Part 1: Review of thermal comfort. Appl. Eng. 2004, 24, 611–631. [Google Scholar] [CrossRef]
- Zhang, Z.; Zhang, Y.; Jin, L. Thermal comfort of rural residents in a hot–humid area. Build. Res. Inf. 2016, 45, 209–221. [Google Scholar] [CrossRef]
- Yong, L.; Yuan, Y.; Li, C.; Xu, H.; Zhang, X. Human responses to high air temperature, relative humidity and carbon dioxide concentration in underground refuge chamber. Build. Environ. 2018, 131, 53–62. [Google Scholar]
- Fan, J.; Zhou, Q. A review about thermal comfort in aircraft. J. Sci. 2019, 28, 169–183. [Google Scholar] [CrossRef]
- Wang, S. Research on Environmental Control and Life Support Technology for Mine Rescue Module. Ph.D. Thesis, University of Science & Technology, Beijing, China, 2011. [Google Scholar]
- Coal Safety Supervision Office. National Coal Mine Safety Supervision Office Notice of the Office of the State Administration of Coal Mine Safety Supervision on Forwarding the Acceptance Criteria and Grading Measures for the Six Systems of Coal Mine Underground Safety Hazard in Hebei Province (Trial); Coal Safety Supervision Office: Beijing, China, 2011.
- American Society of Heating, Refrigerating and Air-Conditioning Engineers. Thermal Environmental Conditions for Human Occupancy; ASHRAE5 5-1992; American Society of Heating, Refrigerating and Air Conditioning Engineers: Atlanta, GA, USA, 1992; p. 5. [Google Scholar]
- Wang, S.; Ren, T.; Zhang, T.; Liang, Y.; Zhe, X. Hot Environment—Estimation of Thermal Comfort in Deep Underground Mines; The University of Wollongong: Wollongong, Australia, 2012. [Google Scholar]
- Alahmer, A.; Omar, M.A.; Mayyas, A.; Shan, D. Effect of relative humidity and temperature control on in-cabin thermal comfort state: Thermodynamic and psychometric analyses. Appl. Eng. 2015, 31, 2636–2644. [Google Scholar] [CrossRef]
- Velt, K.B.; Daanen, H.A.M. Thermal sensation and thermal comfort in changing environments. J. Build. Eng. 2017, 10, 42–46. [Google Scholar] [CrossRef]
Number | Personnel | Age | Physical Conditions | Experiment Time | Comments |
---|---|---|---|---|---|
Experiment 1 | Mine rescue team and students (four) | 25–35 | Fine | 96 h | Clothes: uniforms; Activity: sit, replace the pharmacy and fill in the form occasionally |
Experiment 2 | Students and miners (eight) | 20–35 | Fine | 106 h | |
Experiment 3 | Eight miners | 20–35 | Fine | 106 h |
NO. | Temperature | Humidity |
---|---|---|
1 | 25–27 °C | 85–90% |
2 | 90–95% | |
3 | 27–29 °C | 85–90% |
4 | 90–95% | |
5 | 33–35 °C | 70–75% |
6 | 85–90% | |
7 | 90–95% | |
8 | 35–37 °C | 80–85% |
9 | 85–90% | |
10 | 90–95% |
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Li, J.; Yang, L.; Song, T.; Qi, R. Research on the Effects of the High Temperature and Humidity Environment on Human Comfort in Coal Mine Emergency Refuge System. Safety 2019, 5, 28. https://doi.org/10.3390/safety5020028
Li J, Yang L, Song T, Qi R. Research on the Effects of the High Temperature and Humidity Environment on Human Comfort in Coal Mine Emergency Refuge System. Safety. 2019; 5(2):28. https://doi.org/10.3390/safety5020028
Chicago/Turabian StyleLi, Jing, Lei Yang, Tianbao Song, and Ruikang Qi. 2019. "Research on the Effects of the High Temperature and Humidity Environment on Human Comfort in Coal Mine Emergency Refuge System" Safety 5, no. 2: 28. https://doi.org/10.3390/safety5020028
APA StyleLi, J., Yang, L., Song, T., & Qi, R. (2019). Research on the Effects of the High Temperature and Humidity Environment on Human Comfort in Coal Mine Emergency Refuge System. Safety, 5(2), 28. https://doi.org/10.3390/safety5020028