Skip to main content
Log in

Application of dual throttling air-conditioning system to explosion-proof frequency converter

  • Published:
Transactions of Tianjin University Aims and scope Submit manuscript

Abstract

An explosion-proof dual throttling air-conditioning system was put forward to solve the heat dissipation and internal dewing problems of explosion-proof frequency converter in the underground coal mine. This study investigated the feasibility and benefits of explosion-proof dual throttling cooling and dehumidification air-conditioning system applied to the explosion-proof frequency converter. The physical model of dual throttling air-conditioning system was established and its performance parameter was described by mathematical method. The design calculation of the system has also been done. The experimental result showed that the system reached the steady state at the refrigeration mode after running 45 min, and the maximum internal temperature of the flame-proof cavity was 31.0 °C. The system reached the steady state at the dehumidification mode after running 37 min. The maximum internal relative humidity and temperature of the flame-proof cavity were 33.4% and 36.3 °C, respectively. Therefore, the proposed system had excellent ability of heat dissipation and avoided internal dewing. Compared with water cooling system, it was more energy-saving and economical. The airflow field of dual throttling air-conditioning system was also studied by CFD simulation. It was found that the result of CFD numerical simulation was highly consistent with the experimental data.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  1. Du Dayong. The application of explosion-proof inverter in the coal mine production[J]. Mining & Processing Equipment, 2005, 33(9): 132 (in Chinese).

    Google Scholar 

  2. Mao Xin. Status quo and development of frequency conversion technology and explosion-proof converter[J]. Electric Switchgear, 2009(6): 13–14 (in Chinese).

    Google Scholar 

  3. Jef S, John E, Jerome R et al. Advances in dust explosion protection techniques: Flameless venting[J]. Procedia Engineering, 2012(45): 403–413.

    Google Scholar 

  4. Yuan Chunmiao, Li Chang, Li Gang. Coal dust explosion prevention and protection based on inherent safety [J]. Procedia Engineering, 2011(26): 1517–1525.

    Google Scholar 

  5. Qi Zhang, Wei Li, Liang Huimin. Effect of spark duration on explosion parameters of methane/air mixtures in closed vessels [J]. Safety Science, 2012, 50(9): 1715–1721.

    Article  Google Scholar 

  6. Wu Huailiang, Dou Ziming. Analyzing reasons of dewing in under-mine explosion-proof inverter[J]. Coal Mine Machinery, 2011, 32(4): 198–200 (in Chinese).

    Google Scholar 

  7. Fu Lin, Huang Wentao. Selection of mining flameproof inverter heat dissipation model [J]. The World of Inverters, 2009(7): 79–81 (in Chinese).

    Google Scholar 

  8. Minsub H, Sudong L, Chunsuk Y et al. Development of water-cooled heat sink for high-power IGBT inverter [C]. In: 7th International Conference on Power Electronics, ICPE’07. 2008: 295–299.

    Google Scholar 

  9. Zhang Kecheng. Application of middle voltage large power inverter in coal mine transport explosion-proof inverter’s drive system[J]. Electric Explosion Protection, 2009(3): 21–23 (in Chinese).

    Google Scholar 

  10. Zhu Longji, Zhang Xuli. Key technologies of explosionproof frequency converter applied in coal mine [J]. Industry and Mine Automation, 2012, 38(2): 19–22.

    Google Scholar 

  11. Wu Baozong, Shao Rong, Chen Jiepin et al. Application of heat pipe technology in mine-used explosion-proof electrical equipment[J]. Safety in Coal Mines, 2004, 35(8): 30–31 (in Chinese).

    Google Scholar 

  12. Thomas G O. Some observations on explosion development in process pipelines and implications for the selection and testing of explosion protection devices[J]. Process Safety and Environmental Protection, 2008, 86(3): 153–162.

    Article  Google Scholar 

  13. Aristov Yu I, Restuccia G, Cacciola G et al. A family of new working materials for solid sorption air conditioning systems[J]. Applied Thermal Engineering, 2002, 22(2): 191–204.

    Article  Google Scholar 

  14. Hu Chunsheng, Zhou Xiulong. Compressed air refrigeration technology applied to Barapukuria Mine in Bangladesh [J]. Coal Mine Engineering, 2005(11): 35–37.

    Google Scholar 

  15. Uchino K, Inoue M. Improved practical method for calculation of air temperature and humidity along a roadway under complicated conditions: The influence of moisture on the underground environment in mines (3th Report) [J]. Journal of the Mining and Materials Processing Institute of Japan, 1990, 106(1): 7–12.

    Google Scholar 

  16. Alexander K, Martin S, Olaf M et al. Dust concentration measurements during filling of a silo and CFD modeling of filling processes regarding exceeding the lower explosion limit [J]. Journal of Loss Prevention in the Process Industries, 2014(29): 122–137.

    Google Scholar 

  17. Fuqiang G, Ruibin M, Lei Z et al. Evaluation of thermal comfort in an air conditioning room using a CFD model [J]. Progress in Power and Electrical Engineering, 2012, 354: 717–721.

    Google Scholar 

  18. Hampel Alfred R. Secondary dedusting systems with highperformance gas cooling and explosion-proof design[C]. In: AISTech — Iron and Steel Technology Conference Proceedings. 2007, 1: 1233–1244.

    Google Scholar 

  19. Yang Zhao, Liu Huanwei, Wu Xi. Theoretical and experimental study of the inhibition and inert effect of HFC125, HFC227ea and HFC13l1 on the flammability of HFC32[J]. Process Safety and Environmental Protection, 2012, 90(4): 311–316.

    Article  Google Scholar 

  20. Wang H. Explosion-proof frequency converter cabinet equipped with radiating substrate and heat pipe radiator: CN202503428-U. 24[P]. 2012-10 (in Chinese).

    Google Scholar 

  21. Snoeys J, Going J, John E. Flame arresting devices for dust explosion[C]. In: 8th International Symposium on Hazards. Prevention and Mitigation of Industrial Explosions. Yokohama, Japan, 2010: 87.

    Google Scholar 

  22. Lin B, Jiang B, Zhu C et al. Influence of initial spherical flame radius on the explosion-proof safety distance, the flameproof distance, and the propagation characteristics of gas deflagrations[J]. Research Journal of Chemistry and Environment, 2013, 17(1): 143–150.

    Google Scholar 

  23. National Quality Technical Supervise Department. GB3836. 1–2000 Electrical Equipments Used in Explosive Gas Environment(first part): General Requirements [S]. China Standards Press, Beijing, 2000 (in Chinese).

    Google Scholar 

  24. International Organization for Standardization. ISO 6184/1-1985 Explosion Protection Systems. Method for Determination of Explosion Indices of Combustible Dusts in Air [S]. China Standards Press, Beijing, 1985.

    Google Scholar 

  25. National Coal Mine Safety Supervision Bureau. Coal Mine Safety Regulation [M]. Coal Industry Publishing House, Beijing, 2011 (in Chinese).

    Google Scholar 

  26. Wang Xiaolei, Wu Birui, Jiang Qun et al. The study of temperature and humidity monitoring and optical fiber communication systems in coal mine underground [J]. Industry and Mine Automation, 2008(6): 63–65 (in Chinese).

    Google Scholar 

  27. Lu Yankui. The Air Conditioning Design Manual[M]. 2nd ed. China Building Industry Press, Beijing, 2013 (in Chinese).

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Ying Sheng  (盛颖).

Additional information

Supported by the National Basic Research Program of China (“973” Program, No.2009CB219907).

Zhang Yufeng, born in 1954, male, Dr, Prof.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Zhang, Y., Gao, Y. & Sheng, Y. Application of dual throttling air-conditioning system to explosion-proof frequency converter. Trans. Tianjin Univ. 21, 95–103 (2015). https://doi.org/10.1007/s12209-015-2466-0

Download citation

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s12209-015-2466-0

Keywords

Navigation