Simulation Study on Suppressing Shielded Fires by Water Mist Systems
Abstract
:1. Introduction
2. Methodology
2.1. Numerical Procedure in FDS
2.2. Simulation Model
3. Results and Discussion
3.1. Grid Sensitivity Analysis
3.2. Model Validation
3.2.1. Dry Test Validation
3.2.2. Wet Test Validation
3.3. HRR and Temperature Fields
4. Conclusions
- The maximum deviation in O2 concentration between the FDS predictions and the experimental measurements was 1% for the dry test and less than 5% for the wet test. Moreover, the discrepancy in the temperature values did not exceed about 18 °C in both cases;
- The first two nozzles (nozzles 1 and 2) were able to suppress the fire completely in the absence of obstacles in a very short time. However, all three nozzles failed to suppress the shielded fire where the obstacle size was 1 m × 1 m, located at any distance from the nozzle;
- The high-pressure spray system performed better in terms of the extinguishing time of the shielded fire compared to nozzles 2 and 3, where the obstacle sizes were 25 cm × 25 cm and 50 cm × 50 cm. However, the suppression time using nozzle 2 (low-pressure) was close to nozzle 1 (high-pressure) due to the higher flow rate;
- Although nozzles 2 and 3 had the same pressure (10 bar) and almost the same droplet size, nozzle 3 had a longer extinguishing time due to a lower flow rate;
- In the successful cases of extinguishment, the temperature inside the enclosure decreased sharply after nozzle activation;
- The obstacle size, its distance from the nozzle, and the nozzle characteristics are critical parameters in the study of shielded fire suppression;
- When the fire is not fully covered by the obstacle, a portion of droplets can penetrate the flame by overcoming the plume thrust and bypassing the obstacle.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Material | Conductivity (k) W/mk | Specific Heat (cp) j/kgk | Density (ρ) kg/m3 |
---|---|---|---|
Concrete | 1.575 | 1000 | 2100 |
glass | 1 | 750 | 2500 |
steel | 50 | 450 | 7800 |
wood | 0.13 | 1600 | 500 |
Common Formula | Heat of Combustion (ΔHc) kj/kg | Soot Yield kg/kg | |
---|---|---|---|
Diesel | C12H23 | 42,200 | 0.059 |
Nozzle 1 | Nozzle 2 | Nozzle 3 |
---|---|---|
D = 46 µm | D = 124.6 µm | D = 112 µm |
Operating pressure = 100 bar | Operating pressure = 10 bar | Operating pressure: 10 bar |
Flow rate = 11.9 L/min | Flow rate = 22.8 L/min | Flow rate: 6.3 L/min |
Velocity = 10 m/s | Velocity = 42.5 m/s | Nozzle exit diameter: 0.0008 m |
Cone angle = 0–48° | Cone angle = 0–90° | half injection angle: 65° |
K factor = 1.9 L/min/bar1/2 | K factor = 7.2 L/min/bar1/2 | K factor: 1.9 L/min/bar1/2 |
Category | Case No. | Obstacle No. | Distance between Obstacle and Floor | Nozzle Number | Activation Time |
---|---|---|---|---|---|
Validation | I—dry validation | - | - | - | - |
II—wet validation | - | - | 3 | 540 s | |
III | - | - | 1 | 75 s | |
N1H1 | IV | 1 | H1 | 1 | 75 s |
V | 2 | H1 | 1 | 75 s | |
VI | 3 | H1 | 1 | 75 s | |
VII | - | - | 2 | 75 s | |
N2H1 | VIII | 1 | H1 | 2 | 75 s |
IX | 2 | H1 | 2 | 75 s | |
X | 3 | H1 | 2 | 75 s | |
XI | - | - | 3 | 75 s | |
N3H1 | XII | 1 | H1 | 3 | 75 s |
XIII | 2 | H1 | 3 | 75 s | |
XIV | 3 | H1 | 3 | 75 s | |
N1H2 | XV | 1 | H2 | 1 | 75 s |
XVI | 2 | H2 | 1 | 75 s | |
XVII | 3 | H2 | 1 | 75 s | |
N2H2 | XVIII | 1 | H2 | 2 | 75 s |
XIX | 2 | H2 | 2 | 75 s | |
XX | 3 | H2 | 2 | 75 s | |
N3H2 | XXI | 1 | H2 | 3 | 75 s |
XXII | 2 | H2 | 3 | 75 s | |
XXIII | 3 | H2 | 3 | 75 s |
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Hamzehpour, A.; Verda, V.; Borchiellini, R. Simulation Study on Suppressing Shielded Fires by Water Mist Systems. Fire 2023, 6, 129. https://doi.org/10.3390/fire6040129
Hamzehpour A, Verda V, Borchiellini R. Simulation Study on Suppressing Shielded Fires by Water Mist Systems. Fire. 2023; 6(4):129. https://doi.org/10.3390/fire6040129
Chicago/Turabian StyleHamzehpour, Azad, Vittorio Verda, and Romano Borchiellini. 2023. "Simulation Study on Suppressing Shielded Fires by Water Mist Systems" Fire 6, no. 4: 129. https://doi.org/10.3390/fire6040129
APA StyleHamzehpour, A., Verda, V., & Borchiellini, R. (2023). Simulation Study on Suppressing Shielded Fires by Water Mist Systems. Fire, 6(4), 129. https://doi.org/10.3390/fire6040129