Case Studies on Evacuation Elevator Systems in Supertall Buildings
Abstract
:1. Introduction
2. Comparison of the Major Requirements on Means of Egress in IBC, Chinese GB 55037 and KBC
2.1. Vestibules at Exit Stairs and Stair Pressurization Systems
2.2. Refuge Floors and the Segmentation of Each Exit Stair
2.3. Fire Standpipes and Indoor Fire Hydrants
2.4. Fire Service Elevators
2.5. Evacuation Elevators
3. Egress Modeling Simulations on Supertall Buildings
3.1. The Simulated Building in China
- 1.
- Design of the Building in China
- 2.
- Evacuation Elevator in the Building (China)
- 3.
- The simulated scenarios (China)
- C1
- Two (2) exit stairs are available, no evacuation elevator.
- C2
- One additional exit stair is provided per the No. 57 Ordinance, totaling three exit stairs.
- C3
- One of the three exit stairs is blocked between two refuge floors (F22–F31), with no evacuation elevator.
- C4
- One exit stair is blocked between two refuge floors, and one evacuation elevator is provided.
3.2. The Simulated Building in Korea
- 1.
- Design of the Building in Korea
- 2.
- Evacuation elevator in the building (Korea)
- 3.
- The simulated scenarios (Korea)
- K1
- Entire building evacuation; all three exit stairs are available, no elevators.
- K2
- A total of 50% of the occupant load used the exit stairs and the remaining 50% of the occupants used lifeboat elevators.
- K3
- A total of 35% of the occupant load used the exit stairs and the remaining 65% of the occupants used lifeboat elevators.
4. Simulation Results
4.1. The Building Simulated (China)
4.2. The Simulated Building (Korea)
5. Monitoring and Control of the Evacuation Elevators
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Evacuation Elevator | High Speed Elevator |
---|---|
Nominal Load | 25 persons |
Maximum Velocity | 10 m/s |
Acceleration | 2.5 m/s2 |
Door Open + Close Time | 7.0 s |
Elevator Door Width | 1.25 m |
Refuge Floor | Elev. Capacity (Persons) | Acceleration (m/s2) | Max. Velocity (m/s) | Open/Close Time (s) |
---|---|---|---|---|
102 | 27 | 13 | 10 | 2.8/3.9 |
83 | 30 | 11.7 | 9 | 2.8/3.9 |
58 | 30 | 11.7 | 9 | 2.8/3.9 |
33 | 30 | 7.9 | 6 | 2.8/3.9 |
07 | 27 | 6.9 | 5 | 2.8/3.9 |
Scenarios | Note | Evacuation Time |
---|---|---|
C1 | Ordinary Evacuation: Two stairs available | 14,268 [s] = 238 min. |
C2 | Ordinary Evacuation: Three stairs available | 10,188 [s] = 170 min. |
C3 | One of three stairs is blocked between Floors 22–32, no elevator | 11,187 [s] = 186.5 min |
C4 | One of three stairs is blocked between Floors 22–32, one evacuation elevator used | 9880 [s] = 165 min |
Refuge Floor (Evacuation Elevators) | Occupant Loads (Total Loads Served by the Elevators) | Evacuation Time of the Floor |
---|---|---|
102 | 903 | 1635 (s) = 27.0 min. |
83 | 3221 | 4016 (s) = 67.0 min. |
58 | 4293 | 4701 (s) = 78.5 min |
33 | 4271 | 3537 (s) = 59 min. |
07 | 4491 | 3028 (s) = 50.5 min. |
Total | 17179 | 98 min |
Scenarios | Description | Total Evacuation Time |
---|---|---|
K1 | 100% of occupants using three exit stairs. | 163 min |
K2 | 50%/50% of occupants using stairs and lifeboat elevators, respectively. | 109 min |
K3 | 30%/70% of occupants using stairs and lifeboat elevators, respectively. | 98 min |
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Huan, S.; Yun, A.; Cui, E. Case Studies on Evacuation Elevator Systems in Supertall Buildings. Buildings 2024, 14, 3164. https://doi.org/10.3390/buildings14103164
Huan S, Yun A, Cui E. Case Studies on Evacuation Elevator Systems in Supertall Buildings. Buildings. 2024; 14(10):3164. https://doi.org/10.3390/buildings14103164
Chicago/Turabian StyleHuan, Shiyu, AYoung Yun, and Ervin Cui. 2024. "Case Studies on Evacuation Elevator Systems in Supertall Buildings" Buildings 14, no. 10: 3164. https://doi.org/10.3390/buildings14103164
APA StyleHuan, S., Yun, A., & Cui, E. (2024). Case Studies on Evacuation Elevator Systems in Supertall Buildings. Buildings, 14(10), 3164. https://doi.org/10.3390/buildings14103164