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Experimental and numerical investigation of smoke dynamics in vertical cylinders and open-air environment

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posted on 2019-04-09, 00:00 authored by Chan-Sol Ahn, Chan-Woo Park, Min-Woo Kim, Tae-Gun Kim, Scott C. James, Youngbin Yoon, Alexander L. Yarin, Sam S. Yoon
Smoke rise in elevator shafts and stairwells is a primary risk from fires. Information on temperature and smoke velocity is necessary for safety evaluation and evacuation guidelines when designing high-rise buildings. Small-scale experiments were performed to measure smoke rise in open-ended, 2-m cylinders with diameters D = 1, 0.5, and 0.14 m and heating powers Qz = 32, 144, and 220 W. When D  0.5 m, smoke characteristics resembled those under open-air conditions for all values of Qz with minor deviations. When D = 0.14 m, smoke velocity decreased due to the increased relative boundary-layer thickness. For this narrowest cylinder, smoke temperature also decreased because of the relative increase of cool air drawn through the cylinder bottom. The overall mass flow rate was lowest through the smallest cylinder because of the reduced axial velocity and cross-sectional diameter. The axial velocity became fully developed toward the cylinder top; however, the velocity decreased again when the smoke exited to satisfy continuity. Temperature distributions were also uniform at the cylinder outlet because of the fully developed flow field. Increase in Qz increased temperature and velocity for all cylinders. Both the analytical solution from the open-air plume theory and numerical simulations using Fire Dynamics Simulator were compared against experimental data.

Funding

This work was supported by the National Research Council of Science & Technology (NST) grant by the Korea government (MSIP) (No. CRC-16-02-KICT), Advanced Research Center Program (NRF-2013R1A5A1073861), and NRF-2016M1A2A2936760.

History

Citation

Ahn, C. S., Park, C. W., Kim, M. W., Kim, T. G., James, S. C., Yoon, Y., . . . Yoon, S. S. (2019). Experimental and numerical investigation of smoke dynamics in vertical cylinders and open-air environment. International Journal of Heat and Mass Transfer, 135, 985-995. doi:10.1016/j.ijheatmasstransfer.2019.02.046

Publisher

Elsevier

Language

  • en

issn

0017-9310

Issue date

2019-06-01

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