Designing a large-scale complex system, such as a city of the future, with a focus on sustainability requires a systematic approach toward integrated design of all subsystems. Domains such as buildings, transportation, energy, and water are all coupled. Designing each one in isolation can lead to suboptimality where sustainability is achieved in one aspect but at the expense of other aspects. Traditional ad hoc allocations of design parameter precedence and dependence cannot be used for cases where new (instead of only mature) architectures are to be explored. A methodology is introduced for addressing design problems of complex sustainable systems that is comprised of, on the one hand, a hierarchical decomposition that includes multilevel abstraction and design parameter identification, and on the other hand, a multidomain formulation, which includes parameter dependency identification, design cycle identification and decision structuring, and scoping. The application of the methodology for the design of a new urban development, Masdar City in Abu Dhabi, with over 220 different form and behavior parameter sets is shown.
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e-mail: anas@mit.edu
e-mail: siddiqi@mit.edu
e-mail: charbelr@sloan.mit.edu
e-mail: deweck@mit.edu
e-mail: dsvetinovic@masdar.ae
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September 2010
Research Papers
Hierarchical Decomposition and Multidomain Formulation for the Design of Complex Sustainable Systems
Anas Alfaris,
e-mail: anas@mit.edu
Anas Alfaris
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139
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Afreen Siddiqi,
e-mail: siddiqi@mit.edu
Afreen Siddiqi
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139
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Charbel Rizk,
e-mail: charbelr@sloan.mit.edu
Charbel Rizk
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139
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Olivier de Weck,
e-mail: deweck@mit.edu
Olivier de Weck
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139
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Davor Svetinovic
e-mail: dsvetinovic@masdar.ae
Davor Svetinovic
MASDAR Institute of Science and Technology
, P.O. Box 54224, Abu Dhabi, UAE
Search for other works by this author on:
Anas Alfaris
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139e-mail: anas@mit.edu
Afreen Siddiqi
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139e-mail: siddiqi@mit.edu
Charbel Rizk
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139e-mail: charbelr@sloan.mit.edu
Olivier de Weck
MIT Engineering Systems Division
, Building E40-261, 77 Massachusetts Avenue, Cambridge, MA 02139e-mail: deweck@mit.edu
Davor Svetinovic
MASDAR Institute of Science and Technology
, P.O. Box 54224, Abu Dhabi, UAEe-mail: dsvetinovic@masdar.ae
J. Mech. Des. Sep 2010, 132(9): 091003 (13 pages)
Published Online: September 16, 2010
Article history
Received:
January 2, 2010
Revised:
July 6, 2010
Online:
September 16, 2010
Published:
September 16, 2010
Citation
Alfaris, A., Siddiqi, A., Rizk, C., de Weck, O., and Svetinovic, D. (September 16, 2010). "Hierarchical Decomposition and Multidomain Formulation for the Design of Complex Sustainable Systems." ASME. J. Mech. Des. September 2010; 132(9): 091003. https://doi.org/10.1115/1.4002239
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