Space Efficiency in North American Skyscrapers
Abstract
:1. Introduction
2. Literature Survey
3. The Research Method
4. Results
4.1. Main Architectural Design Parameters: Core Planning and Building Form
4.2. Main Structural Design Parameters: Structural Material and System
4.3. Space Efficiency in North American Skyscrapers
4.3.1. Interrelation of Space Efficiency and Building Completion Period
4.3.2. Interrelation of Space Efficiency and Core Planning
4.3.3. Interrelation of Space Efficiency and Form
4.3.4. Interrelation of Space Efficiency and Structural System
4.3.5. Interrelation of Space Efficiency and Structural Material
5. Discussion
- Urban Planning and Smart Cities [52,53,54]: (a) Vertical Urbanism: Investigating high-density vertical cities with integrated residential, commercial, and recreational spaces to minimize land use. (b) Mixed-Use Developments: Researching designs that combine residential, commercial, and industrial spaces in a single area to reduce sprawl and improve efficiency. (c) Public Transportation Systems: Developing advanced public transportation networks to reduce the need for personal vehicle space and enhance urban mobility.
- Sustainable Architecture [55,56,57]: (a) Green Building Materials: Exploring innovative, sustainable building materials that can improve insulation, reduce footprint, and integrate renewable energy systems. (b) Modular Construction: Advancing modular and prefabricated building techniques to enhance efficiency in both construction time and space usage.
- Land Use Policy and Zoning [58,59,60]: (a) Adaptive Reuse of Buildings: Studying policies and methods for repurposing old buildings and spaces for new uses, reducing the need for new construction. (b) Zoning Reforms: Investigating zoning laws that promote higher density living and mixed-use developments.
- Technology Integration [61,62,63]: (a) Internet of Things (IoT): Researching how IoT can optimize building operations and space usage, such as smart lighting, heating, and security systems. (b) Big Data and AI: Utilizing big data and AI to analyze and predict urban growth, traffic patterns, and optimize space utilization in real-time.
- Environmental and Energy Efficiency [64,65,66]: (a) Green Roofs and Vertical Gardens: Exploring the use of green roofs and vertical gardens to enhance space efficiency while providing environmental benefits. (b) Energy-Efficient Building Designs: Studying passive and active energy-efficient designs that reduce the energy footprint of buildings.
- Community and Social Aspects [67,68,69]: (a) Co-living and Co-working Spaces: Researching the viability and social impact of shared living and working spaces to maximize space usage. (b) Inclusive Design: Ensuring that space-efficient designs are accessible and beneficial to diverse populations, including low-income and marginalized communities.
- Infrastructure Innovations [70,71,72]: (a) Underground Development: Investigating the potential of underground spaces for parking, storage, or even residential and commercial use to free up surface space. (b) Multi-purpose Infrastructure: Designing infrastructure that serves multiple functions, such as parks that double as flood control areas.
- Renewable Energy and Microgrids [73,74,75]: (a) Distributed Energy Resources (DERs): Researching the integration of DERs in urban areas to enhance energy efficiency and reduce space required for large power plants. (b) Microgrids: Studying the implementation of localized microgrids that can operate independently, increasing energy resilience and efficiency. These research directions aim to address the challenges of urbanization, resource constraints, and environmental sustainability, promoting a more efficient use of space in North America.
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A. North American Skyscrapers
# | Name | Country | City | Height (Meters) | # of Stories | Completion Date |
---|---|---|---|---|---|---|
1 | Chicago Spire | USA | Chicago | 609 | 150 | Never Completed |
2 | One World Trade Center | USA | New York | 541 | 94 | 2014 |
3 | Torre Rise | Mexico | Monterrey | 475 | 88 | Under Construction |
4 | Central Park Tower | USA | New York | 472 | 98 | 2020 |
5 | 111 West 57th Street | USA | New York | 435 | 84 | 2021 |
6 | One Vanderbilt Avenue | USA | New York | 427 | 62 | 2020 |
7 | 432 Park Avenue | USA | New York | 426 | 85 | 2015 |
8 | Trump International Hotel & Tower | USA | Chicago | 423 | 98 | 2009 |
9 | JPMorgan Chase World Headquarters | USA | New York | 423 | 60 | Under Construction |
10 | 30 Hudson Yards | USA | New York | 387 | 73 | 2019 |
11 | Bank of America Tower | USA | New York | 366 | 55 | 2009 |
12 | The St. Regis Chicago | USA | Chicago | 363 | 101 | 2020 |
13 | SkyTower at Pinnacle One Yonge | Canada | Toronto | 345 | 105 | Under Construction |
14 | Comcast Technology Center | USA | Philadelphia | 339 | 59 | 2018 |
15 | Wilshire Grand Center | USA | Los Angeles | 335 | 62 | 2017 |
16 | 3 World Trade Center | USA | New York | 329 | 69 | 2018 |
17 | Salesforce Tower | USA | San Francisco | 326 | 61 | 2018 |
18 | The Brooklyn Tower | USA | New York | 325 | 74 | 2023 |
19 | 740 8th Avenue | USA | New York | 325 | 52 | Under Construction |
20 | 53 West 53 | USA | New York | 320 | 77 | 2019 |
21 | New York Times Tower | USA | New York | 319 | 52 | 2007 |
22 | Waldorf Astoria Hotel and Residences Miami | USA | Miami | 317 | 98 | Under Construction |
23 | The Spiral | USA | New York | 314 | 65 | 2022 |
24 | Waterline | USA | Austin | 311 | 74 | Under Construction |
25 | The One | Canada | Toronto | 309 | 85 | Under Construction |
26 | One57 | USA | New York | 306 | 75 | 2014 |
27 | 35 Hudson Yards | USA | New York | 305 | 72 | 2019 |
28 | T.Op Corporativo | Mexico | Monterrey | 305 | 62 | 2020 |
29 | 520 Fifth Avenue | USA | New York | 305 | 76 | Under Construction |
30 | One Manhattan West | USA | New York | 304 | 67 | 2019 |
31 | Concord Sky | Canada | Toronto | 300 | 85 | Under Construction |
Appendix B. North American Skyscrapers by Building Form, Core Type, Structural System, and Structural Material
# | Name | Building Form | Core Type | Structural System | Structural Material |
---|---|---|---|---|---|
1 | Chicago Spire | Twisted | Central | Outriggered frame | Concrete |
2 | One World Trade Center | Tapered | Central | Outriggered frame | Composite |
3 | Torre Rise | Prismatic | Central | Shear walled frame | Concrete |
4 | Central Park Tower | Setback | Central | Outriggered frame | Concrete |
5 | 111 West 57th Street | Setback | Peripheral | Outriggered frame | Concrete |
6 | One Vanderbilt Avenue | Tapered | Central | Outriggered frame | Composite |
7 | 432 Park Avenue | Prismatic | Central | Framed-tube | Concrete |
8 | Trump International Hotel & Tower | Setback | Central | Outriggered frame | Concrete |
9 | JPMorgan Chase World Headquarters | Setback | Central | Outriggered frame | Composite |
10 | 30 Hudson Yards | Tapered | Central | Outriggered frame | Steel |
11 | Bank of America Tower | Free | Central | Framed-tube | Composite |
12 | The St. Regis Chicago | Free | Central | Outriggered frame | Concrete |
13 | SkyTower at Pinnacle One Yonge | Prismatic | Central | Shear walled frame | Concrete |
14 | Comcast Technology Center | Setback | Central | Trussed-tube | Composite |
15 | Wilshire Grand Center | Tapered | Central | Outriggered frame | Composite |
16 | 3 World Trade Center | Setback | Central | Trussed-tube | Composite |
17 | Salesforce Tower | Tapered | Central | Shear walled frame | Composite |
18 | The Brooklyn Tower | Setback | Central | Mega core system | Concrete |
19 | 740 8th Avenue | Free | Central | Shear walled frame | Concrete |
20 | 53 West 53 | Tapered | Peripheral | Framed-tube | Concrete |
21 | New York Times Tower | Prismatic | Central | Outriggered frame | Steel |
22 | Waldorf Astoria Hotel and Residences Miami | Prismatic | Central | Shear walled frame | Concrete |
23 | The Spiral | Free | Central | Shear walled frame | Composite |
24 | Waterline | Prismatic | Central | Shear walled frame | Concrete |
25 | The One | Prismatic | Central | Shear walled frame | Composite |
26 | One57 | Free | Peripheral | Outriggered frame | Composite |
27 | 35 Hudson Yards | Setback | Central | Outriggered frame | Concrete |
28 | T.Op Corporativo | Prismatic | Central | Shear walled frame | Concrete |
29 | 520 Fifth Avenue | Setback | Central | Shear walled frame | Concrete |
30 | One Manhattan West | Tapered | Central | Shear walled frame | Composite |
31 | Concord Sky | Free | Central | Shear walled frame | Concrete |
Appendix C. Space Efficiency and Core/GFA of North American Skyscrapers
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Findings | Asian Towers | Middle Eastern Towers | |
---|---|---|---|
Core type | Central (90%) | Central (99%) | Central (96%) |
Peripheral (10%) | External (1%) | External (4%) | |
Form | Prismatic (26%) Setback (29%) Tapered (26%) Free (19%) | Prismatic (23%) Setback (13%) Tapered (36%) Twisted (1%) Free (27%) | Prismatic (45%) Setback (7%) Tapered (7%) Twisted (4%) Free (37%) |
Findings | Asian Towers | Middle Eastern Towers | |
---|---|---|---|
Structural material | Concrete (55%) Composite (39%) Steel (6%) | Concrete (18%) Composite (79%) Steel (3%) | Concrete (70%) Composite (30%) |
Structural system | Outriggered frame (42%) Tube (16%) Mega core (3%) Shear walled frame (39%) | Outriggered frame (76%) Tube (17%) Buttressed core (3%) Mega column & core (3%) Shear-frame (1%) | Outriggered frame (44%) Tube (26%) Buttressed core (4%) Mega column & core (15%) Shear-frame (11%) |
Findings | Asian Towers | Middle Eastern Towers | |
---|---|---|---|
Average space efficiency | 76% (max. 84%, min. 62%) | 67.5% (max. 82%, min. 56%) | 75.5% (max. 84%, min. 63%) |
Average ratio of core to GFA | 21% (max. 31%, min. 13%) | 29.5% (max. 38%, min. 14%) | 21.3% (max. 36%, min. 11%) |
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Ilgın, H.E.; Aslantamer, Ö.N. Space Efficiency in North American Skyscrapers. Buildings 2024, 14, 2382. https://doi.org/10.3390/buildings14082382
Ilgın HE, Aslantamer ÖN. Space Efficiency in North American Skyscrapers. Buildings. 2024; 14(8):2382. https://doi.org/10.3390/buildings14082382
Chicago/Turabian StyleIlgın, Hüseyin Emre, and Özlem Nur Aslantamer. 2024. "Space Efficiency in North American Skyscrapers" Buildings 14, no. 8: 2382. https://doi.org/10.3390/buildings14082382
APA StyleIlgın, H. E., & Aslantamer, Ö. N. (2024). Space Efficiency in North American Skyscrapers. Buildings, 14(8), 2382. https://doi.org/10.3390/buildings14082382