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Article

Full-Scale Experimental Investigation of Temperature Distribution and Smoke Flow in a Road Tunnel with a Novel Water Mist Fire Fighting System

1
Department of Geotechnical Engineering, College of Civil Engineering, Tongji University, Shanghai 200092, China
2
Anhui Zhongyi New Material Science and Technology Co., Ltd., Chuzhou 239500, China
3
School of Civil Engineering, Shanghai Normal University, Shanghai 201418, China
*
Author to whom correspondence should be addressed.
Fire 2025, 8(6), 216; https://doi.org/10.3390/fire8060216
Submission received: 27 April 2025 / Revised: 22 May 2025 / Accepted: 27 May 2025 / Published: 28 May 2025

Abstract

This study presents a novel water mist fire fighting system that integrates water mist sprays and water mist curtains, designed to achieve simultaneous fire suppression, thermal insulation, and smoke control. Three full-scale experiments were conducted under various fire scenarios, and the changes in fire behavior and heat release rate were examined to evaluate the effectiveness of the water mist system in extinguishing fires. Additionally, the spatiotemporal changes in ceiling temperature were monitored to assess the cooling and protective effects of the water mist. The thermal insulation capability of the system was also investigated by detecting the temperature distribution inside the tunnel. Moreover, the smoke conditions upstream and downstream of the tunnel were analyzed to evaluate the smoke-blocking performance of the water mist system. The findings demonstrate that the water mist fire fighting system is highly efficient in attenuating the fire and restricting its progression. Within the water mist spray section, the average ceiling temperature decreased exponentially during both the initial and steady burning phases across all tested fire scenarios. Nonetheless, the smoke-carrying capacity of the water mist spray is limited. Fortunately, the dispersed smoke was diluted by water mist, markedly enhancing visibility and mitigating the impact of smoke on tunnel illumination.
Keywords: road tunnel; water mist; full-scale fire test; temperature distribution; smoke flow road tunnel; water mist; full-scale fire test; temperature distribution; smoke flow

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MDPI and ACS Style

Feng, S.; Kan, D.; Guo, C. Full-Scale Experimental Investigation of Temperature Distribution and Smoke Flow in a Road Tunnel with a Novel Water Mist Fire Fighting System. Fire 2025, 8, 216. https://doi.org/10.3390/fire8060216

AMA Style

Feng S, Kan D, Guo C. Full-Scale Experimental Investigation of Temperature Distribution and Smoke Flow in a Road Tunnel with a Novel Water Mist Fire Fighting System. Fire. 2025; 8(6):216. https://doi.org/10.3390/fire8060216

Chicago/Turabian Style

Feng, Shouzhong, Deyuan Kan, and Chao Guo. 2025. "Full-Scale Experimental Investigation of Temperature Distribution and Smoke Flow in a Road Tunnel with a Novel Water Mist Fire Fighting System" Fire 8, no. 6: 216. https://doi.org/10.3390/fire8060216

APA Style

Feng, S., Kan, D., & Guo, C. (2025). Full-Scale Experimental Investigation of Temperature Distribution and Smoke Flow in a Road Tunnel with a Novel Water Mist Fire Fighting System. Fire, 8(6), 216. https://doi.org/10.3390/fire8060216

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