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Original Articles

Thermal simulation outputs: exploring the concept of patterns in design decision-making

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Pages 30-49 | Received 25 Oct 2013, Accepted 21 Nov 2014, Published online: 10 Feb 2015

References

  • Alexander, C. 1979. The Timeless Way of Building. New York: Oxford University Press.
  • Alexander, C. 1999. “The Origins of Pattern Theory: The Future of the Theory, and the Generation of a Living World.” IEEE software 16 (5): 71–82. Institute of Electrical and Electronics Engineers. doi: 10.1109/52.795104
  • Alexander, C., S. Ishikawa, M. Silverstein, M. Jacobson, I. Fiksdahl-King, and S. Angel. 1977. A Pattern Language. New York: Oxford University Press.
  • Androutsopoulos, I., G. D. Ritchie, and P. Thanisch. 1995. “Natural Language Interfaces to Databases – An Introduction.” Natural Language Engineering 1 (1): 29–81. doi: 10.1017/S135132490000005X
  • Augenbroe, G. 1992. “Integrated Building Performance Evaluation in the Early Design Stages.” Building and Environment 27 (2): 149–161. doi: 10.1016/0360-1323(92)90019-L
  • Augenbroe, G. 2001. “Building Simulation Trends going into the New Millennium.” Building Simulation 01', Rio de Janeiro, 15–28.
  • Augenbroe, G., P. de Wilde, Hyeun Jun. Moon, and A. Malkawi. 2004. “An Interoperability Workbench for Design Analysis Integration.” Energy and Buildings 36 (8): 737–748. doi: 10.1016/j.enbuild.2004.01.049
  • BB101. 2006. “Building Bulletin 101: Ventilation of School Buildings. Regulations Standards Design Guidance, Version 1.4.” Education Funding Agency.
  • Bergin, J. 2000. “Fourteen Pedagogical Patterns.” Accessed July 15, 2013. http://csis.pace.edu/~bergin/PedPat1.3.html
  • Bhatt, R. 2010. “Christopher Alexander's Pattern Language: An Alternative Exploration of Space-making Practices.” The Journal of Architecture 15 (6): 711–729. doi: 10.1080/13602365.2011.533537
  • Bleil de Souza, C. 2009. “A Critical and Theoretical Analysis of Current Proposals for Integrating Building Thermal Simulation Tools into the Building Design Process.” Journal of Building Performance Simulation 2 (4): 283–297. doi: 10.1080/19401490903349601
  • Bleil de Souza, C. 2012. “Contrasting Paradigms of Design Thinking: The Building Thermal Simulation Tool Developer vs. the Building Designer.” Automation in Construction 22 (March): 112–122. doi: 10.1016/j.autcon.2011.09.008
  • Bleil de Souza, C., and S. Tucker. 2013. “Thermal Simulation Software Outputs: What Do Building Designers Propose?” Building Simulation ‘13, 470–477, Chambery, France.
  • Bleil de Souza, C., and S. Tucker. 2014. “Thermal Simulation Software Outputs: A Framework to Produce Meaningful Information for Design Decision Making.” Journal of Building Performance Simulation. http://dx.doi.org/10.1080/19401493.2013.872191
  • Borchers, J. O. 2001. “A Pattern Approach to Interaction Design.” AI & Society 15 (4): 359–376. doi: 10.1007/BF01206115
  • Bryman, A. 2012. Social Research Methods. Oxford: Open University Press.
  • Buschmann, F., R. Meunier, H. Rohnert, P. Sommerlad and M. Stad. 1996. Pattern-Oriented Software Architecture – A System of Patterns. New York: John Wiley.
  • CIBSE. 1998. CIBSE Applications Manual AM11: Building Energy and Environmental Modeling. London: The Chartered Institution of Building Services Engineers.
  • Clarke, J. A. 2001. Energy Simulation in Building Design. 2nd ed. Oxford: Butterworth and Heinemann.
  • Clarke, J. A., J. Cockroft, J. W. Hand, A. Samuel, P. A. Strachan, and P. Tuohy. 2012. “Embedding Building Simulation Constructs within Focussed Applications.” First Building Simulation and Optimization Conference, Loughborough, UK, September 10–11, 325–331.
  • Clarke, J. A., J. W. Hand, J. L. M. Hensen, K. Johnsen, K. Wittchen, C. Madsen, and R. Compagnon. 1996. “Integrated Performance Appraisal of Daylight-Europe Case Study Buildings.” Proc. 4th European conference on Solar Energy in Architecture and Urban Planning, Berlin.
  • Clarke, J. A., J. W. Hand, D. F. MacRandal, and P. Strachan. 1995. “The Development of an Intelligent, Integrated Building Design System Within the European COMBINE Project.” Building Simulation 95’, Madison, 444–453.
  • Clarke, J. A., and D. F. MacRandal. 1993. “Implementation of Simulation Based Design Tools in Practice.” Building Simulation 93’, Adelaide, Australia, 93–102.
  • Cooper, A., R. Reimann, and D. Cronin. 2007. About Face 3: The Essentials of Interaction Design. Indianapolis: John Wiley & Sons.
  • Fowler, M. 1997. Analysis Patterns: Reusable Object Models. Reading, MA: Addison-Wesley.
  • Franconi, E. 2011. “Introducing a Framework for Advancing Building Energy Modelling Methods and Procedures.” Building Simulation 2011, Sydney, Australia, 8–15.
  • Gamma, E., R. Helm, R. Johnson, and J. Vlissides. 1995. Design Patterns: Elements of Reusable Object-Oriented Software. Reading, MA: Addison-Wesley.
  • Goldblatt Anthony, D. L. 1995. “Patterns for Classroom Education.” Proceedings of Pattern Languages for Programming (PLoP) ‘95. Accessed August 12, 2013. http://ianchaiwriting.50megs.com/classroom-ed.html
  • Granlund, A., D. Lafreniere, and D. Carr. 2001. “A Pattern-supported Approach to the User Interface Design Process.” HCI International 2001 9th international conference of Human-Computer Interaction, New Orleans, USA, 1–5.
  • Hand, J. 1998. “Removing Barriers to the Use of Simulation in the Building Design Professions.” Unpublished PhD, Energy Systems Research Unit, Department of Mechanical Engineering, University of Strathclyde, Glasgow, UK.
  • Hand, J. 2011. THE ESP-r COOKBOOK: Strategies for Deploying Virtual Representations of the Built Environment. Glasgow: Energy Systems Research Unit, Department of Mechanical Engineering, University of Strathclyde.
  • Hensen, J. L. M., and R. Lamberts, eds. 2011. Building Performance Simulation for Design and Operation. Abingdon: Spon Press.
  • IES. 2014. “Integrated Environmental Solutions Virtual Environment.” Accessed July 1. http://www.iesve.com/
  • Laurillard, D. 2012. Teaching as a Design Science: Building Pedagogical Patterns for Learning and Technology. Abingdon: Routledge.
  • Macdonald, I. A. 2002. “Quantifying the Effects of Uncertainty in Building Simulation.” Unpublished PhD, Energy Systems Research Unit, Strathclyde University.
  • Mahdavi, A. 1999. “A Comprehensive Computational Environment for Performance Based Reasoning in Building Design and Evaluation.” Automation in Construction 8 (4): 427–435. doi: 10.1016/S0926-5805(98)00089-2
  • Mahdavi, A. 2004. “Reflections on Computational Building Models.” Building and Environment 39 (8): 913–925. 913–925. doi: 10.1016/j.buildenv.2004.01.016
  • Mahdavi, A., J. Bachinger, and G. Suter. 2005. “Towards a Unified Information Space for the Specification of Building Performance Simulation Results.” Building Simulation '05, Montreal, Canada. 671–676.
  • Mahdavi, A., and B. Gurtekin. 2001. “Computational Support for the Generation and Exploration of the Design-performance Space.” Building Simulation 2001, Rio de Janeiro, Brazil, 669–676.
  • Mahdavi, A., and G. Suter. 1998. “On the Implications of Design Process Views for the Development of Computational Design Support Tools.” Automation in Construction 7 (2–3): 189–204. doi: 10.1016/S0926-5805(97)00060-5
  • Marsh, A., and F. Haghperast. 2004. “The Application of Computer-optimised Solutions to Tightly Defined Design Problems.” Proceedings of the 21st Passive and low energy architecture conference, Eindhoven, Netherlands, September 19–22.
  • Morbitzer, C. 2003. “Towards the Integration of Simulation into the Building Design Process.” Unpublished PhD, Energy Systems Research Unit, University of Strathclyde.
  • Papamichael, K. 1999. “Application of Information Technologies in Building Design Decisions.” Building Research and Information 27 (1): 20–34. doi: 10.1080/096132199369624
  • Papamichael, K., J. LaPorta, and H. Chauvet. 1997. “Building Design Advisor: Automated Integration of Multiple Simulation Tools.” Automation in Construction 6 (4): 341–352. doi: 10.1016/S0926-5805(97)00043-5
  • Prazeres, L. M. R. 2006. “An Exploratory Study about the Benefits of Targeted Data Perceptualisation Techniques and Rules in Building Simulation.” Unpublished PhD, Energy Systems Research Unit, University of Strathclyde.
  • Qian, Z. C. 2009. “Design Patterns: Augmenting Design Practice in Parametric CAD Systems.” Unpublished PhD, Simon Fraser University.
  • Rogers, Y., H. Sharp, and J. Preece. 2011. Interaction Design: Beyond Human-Computer Interaction. 3rd ed. Chichester: John Wiley & Sons.
  • Schon, D. A. 1988. “Designing: Rules, Types and Worlds.” Design Studies 9 (3): 181–190. doi: 10.1016/0142-694X(88)90047-6
  • Schon, D. A. 1991. The Reflective Practitioner: How Professionals Think in Action. 3rd (1st edition 1983) ed. Farnham, Surrey: Ashgate.
  • Shneiderman, B. 1996. “The Eyes Have It: A Task by Data Type Taxonomy for Information Visualizations.” Proceedings of the 1996 IEEE Symposium on Visual Languages. Accessed August 12, 2013. http://drum.lib.umd.edu/bitstream/1903/5784/1/TR_96_66.pdf
  • Soebarto, V., and T. Williamson. 1999. “Designer Oriented Performance Evaluation of Buildings.” Building Simulation ‘99, Kyoto, Japan, 225–232.
  • Stevens, P., and R. Pooley. 2000. Using UML: Software Engineering with Object and Components. Boston: Addison-Wesley Longman.
  • Ternoey, S., L. Bickle, C. Robbins, R. Busch, and K. McCord. 1985. The Design of Energy-responsive Commercial Buildings New York: John Wiley and Sons/Solar Energy Research Institute.
  • Tidwell, J. 1999. “Common Ground: A Pattern Language for Human-Computer Interface Design, MIT.” http://www.mit.edu/~jtidwell/interaction_patterns.html
  • Tidwell, J. 2011. Designing Interfaces. 2nd ed. Farnham: O'Reilly.
  • Tucker, S. 2012. “Report for ECD Architects. Design for Future Climate: Adapting Buildings.” London, Technology Strategy Board project 3097–23303.
  • Tucker, S., and C. Bleil de Souza. 2013. “Thermal Simulation Software Outputs: Patterns for Decision Making.” Building Simulation ‘13, Chambery, France, 396–403.
  • de Wilde, P., and M. van der Voorden. 2004. “Providing Computational Support for the Selection of Energy Saving Building Components.” Energy and Buildings 36 (8): 749–758.