id |
caadria2011_002 |
authors |
Bernal, Marcelo |
year |
2011 |
title |
Analysis model for incremental precision along design stages |
doi |
https://doi.org/10.52842/conf.caadria.2011.019
|
source |
Proceedings of the 16th International Conference on Computer Aided Architectural Design Research in Asia / The University of Newcastle, Australia 27-29 April 2011, pp. 19-18 |
summary |
With current energy analysis tools, architects and engineers cannot rely on the results of energy analyses because they do not report their level of precision. In addition, current tools also do not deliver feedback in real time. Thus, this research addresses the challenge of obtaining feedback in real-time while gradually increasing precision along design stages. For this purpose, this study merges parametric modelling (PM) technologies and the performance-based design (PBD) paradigm into a general design model. The model is based on a parametric and an energy analysis model that share the parameters of a building. The modular architecture of the model involves four main function types: an input processor, optional analysis functions embedding different calculation methods, a decision-maker, and a report generator function. For every step of the design evolution, the decisionmaker function generates a specific tree of analysis functions. |
keywords |
Performance; decision-making; extensibility; knowledgebased design; design automation |
series |
CAADRIA |
email |
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full text |
file.pdf (730,623 bytes) |
references |
Content-type: text/plain
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Becker, R. (2008)
Fundamentals of performance-based building design
, Building Simulation Journal, 1(4), 356–371
|
|
|
|
Bliss, R. W. (1961)
Atmospheric radiation near the surface of the ground: A summary for engineers
, Solar Energy, 5(3), 103–120
|
|
|
|
de Wit, S. and Augenbroe, G. (2002)
Analysis of uncertainty in building design evaluations and its implications
, Energy and Buildings, 34(9): 951–958
|
|
|
|
Eastman, C. (1999)
Information exchange architectures
, Eastman, C. (ed), Building product models, CRC Press, Boca Raton, Florida, 321–349
|
|
|
|
Hagentoft, C.E. (2001)
Introduction to building physics
, Studentlitteratur AB Press, Lund, Sweden
|
|
|
|
Idso, S. and Jackson, R. (1968)
Significance of fluctuations in sky radiant emittance for infrared thermometry
, Agronomy Journal, 60(4), 388–392
|
|
|
|
Kalay, Y. (1999)
Performance-based design
, Automation in Construction, 8, 395–409
|
|
|
|
Lee, G., Sacks, R., and Eastman, C. (2005)
Specifying parametric building object behavior (BOB) for building information modelling system
, Automation in construction. 15(6), 758–776
|
|
|
|
Paredis C. (2007)
Slides from ME6105 Modeling and Simulation in Design
, Schools of Mechanical Engineering, Georgia Institute of Technology. Atlanta, Georgia
|
|
|
|
Parnas D.L. (1972)
Some conclusion from an experiment in software engineering techniques
, AFIPS Joint Computer Conferences Proceedings. Anaheim, California
|
|
|
|
Parnas, D.L. (1972)
On the criteria to be used in decomposing systems into modules
, Communications of the ACM, 15, 12
|
|
|
|
Sanguinetti, P., Bernal, M., El-Khaldi, M. and Erwing, M. (2010)
Real-time design feedback: Coupling Performance-Knowledge with Design
, Proceedings of Symposium on Simulation for Architecture and Urban Design, Orlando, Florida, 23–30
|
|
|
|
Shaefer, D. (2010)
Slides from ME6102 Open engineering systems
, Schools of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia
|
|
|
|
Shea, K., Aish, R. and Gourtovaia, M. (2003)
Towards Integrated Performance-Based Generative Design Tools
, Proceedings of the 21th Conference in Educationand Reaseach in Computer Aided Design in Europe, eCAADe 2003, Graz, Austria, 553–560
|
|
|
|
Szokolay, S.V. (2008)
Introduction to architectural science
, Architectural Press, Oxford, UK
|
|
|
|
last changed |
2022/06/07 07:52 |
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