Space Efficiency in Contemporary Supertall Residential Buildings
Abstract
:1. Introduction
2. Research Methods
3. Findings
3.1. Main Design Considerations Affecting Space Efficiency
3.1.1. Core Planning
- Central core (central and central split);
- Atrium core (atrium and atrium split);
- External core (attached, detached, partial split, and full split);
- Peripheral core (partial peripheral, full peripheral, partial split, and full split).
3.1.2. Building Form
- Prismatic forms;
- Setback forms;
- Tapered forms;
- Twisted forms;
- Leaning/tilted forms;
- Free forms.
3.1.3. Structural System
- Shear-frame system;
- ○
- Shear-trussed frame;
- ○
- Shear-walled frame;
- Mega core system;
- Mega column system;
- Outriggered frame system;
- Tube system;
- ○
- Framed-tube system (with the subset of diagrid-framed-tube system);
- ○
- Trussed-tube system;
- ○
- Bundled-tube system;
- Buttressed core system.
3.1.4. Structural Material
3.2. Space Efficiency
3.3. Interrelations of Space Efficiency and Main Design Considerations
3.3.1. Interrelation of Space Efficiency and Building Height
3.3.2. Interrelation of Space Efficiency and Building Form
3.3.3. Interrelation of Space Efficiency and Structural System
4. Discussion and Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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# | Building Name | Country | City | Height (m) | # of Stories | Completion |
---|---|---|---|---|---|---|
1 | Chicago Spire | United States | Chicago | 609 | 150 | NC |
2 | Pentominium Tower | UAE | Dubai | 515 | 122 | OH |
3 | Central Park Tower | United States | New York | 472 | 98 | 2020 |
4 | Marina 106 | UAE | Dubai | 445 | 104 | OH |
5 | World One | Mumbai | India | 442 | 117 | NC |
6 | 111 West 57th Street | United States | New York | 435 | 84 | UC |
7 | 432 Park Avenue | United States | New York | 425 | 85 | 2015 |
8 | Princess Tower | UAE | Dubai | 413 | 101 | 2012 |
9 | 23 Marina | UAE | Dubai | 392 | 88 | 2012 |
10 | Burj Mohammed Bin Rashid | UAE | Abu Dhabi | 381 | 88 | 2014 |
11 | Elite Residence | UAE | Dubai | 380 | 87 | 2012 |
12 | II Primo Tower 1 | UAE | Dubai | 356 | 79 | UC |
13 | The Torch | UAE | Dubai | 352 | 86 | 2011 |
14 | NEVA TOWERS 2 | Russia | Moscow | 345 | 79 | 2020 |
15 | LCT The Sharp Residential Tower A | Korea | Busan | 339 | 85 | 2019 |
16 | DAMAC Heights | UAE | Dubai | 335 | 88 | 2018 |
17 | LCT The Sharp Residential Tower B | Korea | Busan | 333 | 85 | 2019 |
18 | Q1 Tower | Australia | Gold Coast | 322 | 78 | 2005 |
19 | Palace Royale | Mumbai | India | 320 | 88 | OH |
20 | 53 West 53 | United States | New York | 320 | 77 | 2019 |
21 | Australia 108 | Australia | Melbourne | 316 | 100 | 2020 |
22 | Ocean Heights | UAE | Dubai | 310 | 83 | 2010 |
23 | The One | Canada | Toronto | 308 | 85 | UC |
24 | Amna Tower | UAE | Dubai | 307 | 75 | 2020 |
25 | Noora Tower | UAE | Dubai | 307 | 75 | 2019 |
26 | Cayan Tower | UAE | Dubai | 306 | 73 | 2013 |
27 | Capital City Moscow Tower | Russia | Moscow | 301 | 76 | 2010 |
# | Building Name | Core Type | Building Form | Structural System | Structural Material |
---|---|---|---|---|---|
1 | Chicago Spire | Central | Twisted | Outriggered frame | RC |
2 | Pentominium Tower | Central | Free | Outriggered frame | RC |
3 | Central Park Tower | Central | Setback | Outriggered frame | RC |
4 | Marina 106 | Central | Prismatic | Framed-tube | RC |
5 | World One | Central | Setback | Buttressed core | RC |
6 | 111 West 57th Street | Peripheral | Setback | Outriggered frame | RC |
7 | 432 Park Avenue | Central | Prismatic | Framed-tube | RC |
8 | Princess Tower | Central | Prismatic | Framed-tube | RC |
9 | 23 Marina | Central | Prismatic | Outriggered frame | RC |
10 | Burj Mohammed Bin Rashid | Central | Free | Outriggered frame | RC |
11 | Elite Residence | Central | Prismatic | Framed-tube | RC |
12 | Il Primo Tower 1 | Central | Prismatic | Outriggered frame | RC |
13 | The Torch | Central | Prismatic | Outriggered frame | RC |
14 | NEVA TOWERS 2 | Central | Prismatic | Outriggered frame | RC |
15 | LCT The Sharp Residential Tower A | Central | Prismatic | Outriggered frame | RC |
16 | DAMAC Heights | Central | Tapered | Outriggered frame | RC |
17 | LCT The Sharp Residential Tower B | Central | Prismatic | Outriggered frame | RC |
18 | Q1 Tower | Central | Prismatic | Outriggered frame | RC |
19 | Palace Royale | Central | Prismatic | Outriggered frame | RC |
20 | 53 West 53 | Peripheral | Tapered | Diagrid-framed-tube | RC |
21 | Australia 108 | Central | Free | Outriggered frame | RC |
22 | Ocean Heights | Central | Tapered | Outriggered frame | RC |
23 | The One | Central | Prismatic | Outriggered frame | Composite |
24 | Amna Tower | Central | Prismatic | Outriggered frame | RC |
25 | Noora Tower | Central | Prismatic | Outriggered frame | RC |
26 | Cayan Tower | Central | Twisted | Framed-tube | RC |
27 | Capital City Moscow Tower | Central | Free | Outriggered frame | RC |
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Ilgın, H.E. Space Efficiency in Contemporary Supertall Residential Buildings. Architecture 2021, 1, 25-37. https://doi.org/10.3390/architecture1010004
Ilgın HE. Space Efficiency in Contemporary Supertall Residential Buildings. Architecture. 2021; 1(1):25-37. https://doi.org/10.3390/architecture1010004
Chicago/Turabian StyleIlgın, Hüseyin Emre. 2021. "Space Efficiency in Contemporary Supertall Residential Buildings" Architecture 1, no. 1: 25-37. https://doi.org/10.3390/architecture1010004
APA StyleIlgın, H. E. (2021). Space Efficiency in Contemporary Supertall Residential Buildings. Architecture, 1(1), 25-37. https://doi.org/10.3390/architecture1010004