Estimation of the Hazardous Chemical Leakage Scale Inside Buildings Using CFD

Author:

Kim Kisung12ORCID,Song Dongwoo2

Affiliation:

1. Korea Fire & Explosion Solutions Corporation, 22 Misagangbyeonseo-ro, Hanam-si 12918, Republic of Korea

2. Department of Fire and Disaster Prevention Engineering, Halla University, 28 Halladae-gil, Heunge-op-myeon, Wonju-si 26404, Republic of Korea

Abstract

Increased industrialization and aging infrastructure have resulted in leaks of hazardous chemicals, such as CO. Leak modeling is crucial to developing emergency response strategies. Therefore, we simulated the time to criticality (TTC), which is the time to reach the threshold limit for occupational exposure, of a CO leak. The basis of the study is a fire dynamics simulator, a computational fluid dynamics model that was used to investigate the movement of CO in various scenarios, including using different building layouts and areas, temperatures, and leak diameters. Multiple regression analysis was performed to obtain regression equations for the TTC as a function of the independent variables. Ultimately, we found that the type of dispersion varies with respect to the temperature-dependent density of CO, and, among the independent variables, the leak diameter had the strongest effect on the TTC. The regression equations with logarithmic conversion were validated and found to have higher accuracy than those without logarithmic conversion. The findings provide useful information for developing emergency response plans regarding leak size in the case of hazardous chemical leakage. However, empirical studies of different gas types and leakage scenarios are required.

Funder

Ministry of Interior and Safety

Publisher

MDPI AG

Reference20 articles.

1. National Chemicals Information System (2023, January 12). Current Status and Cases of Chemical Accidents. Available online: https://icis.me.go.kr/pageLink.do.

2. A Study on the Necessity of Manhole Management System for the Prevention of Asphyxiation Disaster;Ryoo;J. Korea Acad. Coop. Soc.,2023

3. Ruan, H.L., Deng, W.S., Wang, Y., Chen, J.B., Hong, W.L., Ye, S.S., and Hu, Z.J. (2021). Carbon Monoxide Poisoning: A Prediction Model Using Meteorological Factors and Air Pollutant. BMC Proc., 15.

4. Modeling the Effect of Hypothetical Chlorine Leakage from Malay-Sino Chemical Industries Using ALOHA Software and Development of an Emergency Evacuation Route around Teluk Kalong Industrial Area;Law;IOP Conf. Ser. Mater. Sci. Eng.,2020

5. Risk Analysis of Gas Leakage in Gas Pressure Reduction Station and Its Consequences: A Case Study for Zahedan;Dadkani;Heliyon,2021

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