Temperature Distribution Curve Analysis on Concrete through LS-DYNA
Abstract
:1. Introduction
Fire Curves Used for This Study
2. Experimental Materials and Methods
2.1. Materials and Mix Proportion
2.2. Experimental Method
2.3. Simulation Methods
3. Results
3.1. Experiment and Simulation
3.2. Simulation Results from Different Fire Curves
3.3. Simulation Results from Concrete and Fireproof Board
3.4. Thermal Conductivity of Concrete
3.5. Thermal Conductivity of Calcium Silicate Fireproof Board
4. Discussion
5. Conclusions
- In experimental and simulation results, the concrete blocks prepared by mixing materials exceeded the ITA’s temperature limit up to a depth of 40 mm. When a fire occurred, in all cases, temperatures at a depth of 20 mm surpassed the permissible ITA limit of 380 °C. However, it is worth noting that except for the RABT_car case, temperatures at a depth of 40 mm exceeded the ITA’s permissible limit of 380 °C during the fire incidents.
- Among international fire curves studied through simulation at a concrete depth of 20 mm, the temperature is over 380 °C, which exceeds the ITA’s permissible limit except for RABT_car and RABT_train.
- During the ISO-843 fire curve with a fireproof board, the temperature at a depth of 20 mm at 160 min is 379 °C, whereas, without a fireproof board at 46 min, the temperature at 20 mm is 379 °C. It was concluded that using a fireproof board increases the time to cross the ITA’s structure temperature limit.
- In the simulation of international fire curves, the modified hydrocarbon exhibited elevated temperature at various depths within the concrete. Interestingly, when subjected to fire, the modified hydrocarbon and RWS displayed a comparable temperature increase at different depths. However, it is worth noting that the RABT_car and RABT_train fire curves tended to decrease the temperature after 63 and 78 min, respectively, specifically at a concrete depth of 20 mm. This temperature decrease is attributed to the inherent characteristics of the fire curve. In contrast, the temperature at other depths continued to rise steadily.
- For concrete and fireproof boards, the selection of low-conductivity materials is directly proportional to the low thermal effect on tunnel lining due to fire accidents. Numerical simulation results confirmed that reducing the conductivity of the fireproof board led to a decrease in the fire’s effect on the concrete. This study confirms that selecting a 24 mm thick fireproof board with a conductivity of less than 0.12 J/ms·°C was suitable for reducing the negative temperature effect on concrete.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Fire Curve | Time (min) | Temperature °C |
---|---|---|
RABT_train | 0 | 15 |
5 | 1200 | |
60 | 1200 | |
170 | 15 | |
RABT_car | 0 | 15 |
5 | 1200 | |
30 | 1200 | |
140 | 15 | |
RWS | 0 | 20 |
3 | 890 | |
5 | 1140 | |
10 | 1200 | |
30 | 1300 | |
60 | 1350 | |
90 | 1300 | |
120 | 1200 | |
180 | 1200 |
Variable | W/C (%) | S/a (%) | Unit Weight (kg/m2) | ||||
---|---|---|---|---|---|---|---|
W | C | F.A. | C.A. | AE | |||
Concrete | 50 | 42 | 167 | 334 | 739 | 1048 | 1.002 |
Fire Curve | Thickness of Fireproof Board Plate (mm) | Time to Cross ITA’s Limit (min) | Remarks |
---|---|---|---|
ISO-834 | Without fireproof board | 46.5 | Cross ITA’s temperature limit |
24 | 160 | ||
30 | - | Below ITA’s temperature limit | |
35 | - | ||
40 | - | ||
RABT_car | Without fireproof board | 25 | Cross ITA’s temperature limit |
24 | - | Below ITA’s temperature limit | |
30 | - | ||
35 | - | ||
40 | - | ||
RABT_train | Without fireproof board | 25 | Cross ITA’s temperature limit |
24 | - | Below ITA’s temperature limit | |
30 | - | ||
35 | - | ||
40 | - | ||
Hydrocarbon | Without fireproof board | 28.5 | Cross ITA’s temperature limit |
24 | 133 | ||
30 | 169 | ||
35 | - | Below ITA’s temperature limit | |
40 | - | ||
Modified Hydrocarbon | Without fireproof board | 23 | Cross ITA’s temperature limit |
24 | 103.5 | ||
30 | 131.5 | ||
35 | 156 | ||
40 | - | Below ITA’s temperature limit | |
RWS | Without fireproof board | 24.5 | Cross ITA’s temperature limit |
24 | 103.5 | ||
30 | 133.5 | ||
35 | 162 | ||
40 | - | Below ITA’s temperature limit |
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Oli, T.; Ha, D.; Jang, T.; Park, C.; Kim, G.; Kim, S. Temperature Distribution Curve Analysis on Concrete through LS-DYNA. Fire 2024, 7, 15. https://doi.org/10.3390/fire7010015
Oli T, Ha D, Jang T, Park C, Kim G, Kim S. Temperature Distribution Curve Analysis on Concrete through LS-DYNA. Fire. 2024; 7(1):15. https://doi.org/10.3390/fire7010015
Chicago/Turabian StyleOli, Topendra, Dongsoo Ha, Taejin Jang, Cheolwoo Park, Gihyun Kim, and Seungwon Kim. 2024. "Temperature Distribution Curve Analysis on Concrete through LS-DYNA" Fire 7, no. 1: 15. https://doi.org/10.3390/fire7010015
APA StyleOli, T., Ha, D., Jang, T., Park, C., Kim, G., & Kim, S. (2024). Temperature Distribution Curve Analysis on Concrete through LS-DYNA. Fire, 7(1), 15. https://doi.org/10.3390/fire7010015