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http://dx.doi.org/10.9711/KTAJ.2017.19.1.029

A numerical study of the effects of the ventilation velocity on the thermal characteristics in underground utility tunnel  

Yoo, Ji-Oh (Dep. of Automotive Engineering, Shin-Han University)
Kim, Jin-Su (Fire Disaster Prevention Research Center, Incheon National University)
Ra, Kwang-Hoon (EUM Enginerring)
Publication Information
Journal of Korean Tunnelling and Underground Space Association / v.19, no.1, 2017 , pp. 29-39 More about this Journal
Abstract
In this research, thermal design data such as heat transfer coefficient on the wall surface required for ventilation system design which is to prevent the temperature rise in the underground utility tunnel that three sides are adjoined with the ground was investigated in numerical analalysis. The numerical model has been devised including the tunnel lining of the underground utility tunnel in order to take account for the heat transfer in the tunnel walls. The air temperature in the tunnel, wall temperature, and the heating value through the wall based on heating value(117~468 kW/km) of the power cable installed in the tunnel and the wind speed in the tunnel(0.5~4.0 m/s) were calculated by CFD simulation. In addition, the wall heat transfer coefficient was computed from the results analysis, and the limit distance used to keep the air temperature in the tunnel stable was examined through the research. The convective heat transfer coefficient at the wall surface shows unstable pattern at the inlet area. However, it converges to a constant value beyond approximately 100 meter. The tunnel wall heat transfer coefficient is $3.1{\sim}9.16W/m^2^{\circ}C$ depending on the wind speed, and following is the dimensionless number:$Nu=1.081Re^{0.4927}({\mu}/{\mu}_w)^{0.14}$. This study has suggested the prediction model of temperature in the tunnel based on the thermal resistance analysis technique, and it is appraised that deviation can be used in the range of 3% estimation.
Keywords
Underground utility model; Convective heat transfer coefficient on the wall; Utility tunnel ventilation;
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