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Using fire dynamics simulator to reconstruct a hydroelectric power plant fire accident.

Jen-Hao Chi1, Sheng-Hung Wu, Chi-Min Shu

  • 1Department of Fire Science, Wu Feng University, 117 Jianguo Rd, Sec 2, Minsyong, Chiayi 62153, Taiwan. chi.jen-hao@wfu.edu.tw

Journal of Forensic Sciences
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Hydroelectric power plant fires pose significant risks. Fire simulation revealed escape times are dangerously short, highlighting the urgent need for improved safety measures in power plant fire evacuation.

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Area of Science:

  • Fire Safety Engineering
  • Risk Assessment in Industrial Facilities
  • Computational Fluid Dynamics (CFD) Modeling

Background:

  • Hydroelectric power plants present unique fire risks due to their location and operational hazards.
  • Transformer oil fires, with high heat release rates (11.5 MW/m²), can rapidly escalate, endangering occupants.
  • Previous incidents indicate serious casualties, necessitating a detailed analysis of fire dynamics and escape routes.

Purpose of the Study:

  • To reconstruct a fire incident at the Taiwan Dajia-River hydroelectric power plant using fire dynamics simulation (FDS).
  • To analyze the impact of key fire hazard factors (temperature, radiant heat, CO, O2) on escape routes.
  • To determine simulated safe escape times and compare them with actual evacuation durations.

Main Methods:

  • Utilized the Fire Dynamics Simulator (FDS) software to model the transformer oil fire scenario.
  • Calculated the heat release rate of transformer oil at 11.5 MW/m² for accurate simulation input.
  • Monitored variations in temperature, radiant heat, carbon monoxide, and oxygen levels along the escape route.

Main Results:

  • Simulated safe escape times were significantly shorter than the actual evacuation time (302 sec).
  • Calculated escape times ranged from 155 sec (radiant heat) to 260 sec (carbon monoxide).
  • Fire dynamics simulation confirmed the severe hazard posed by fire conditions to occupant safety.

Conclusions:

  • The study underscores the inadequacy of current escape options in hydroelectric power plant fires.
  • Urgent improvements in evacuation strategies and safety protocols are required for such facilities.
  • CFD modeling is a valuable tool for assessing fire risks and validating safety measures in industrial settings.