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Co-Design Methods for Non-Standard Multi-Storey Timber Buildings

Author

Listed:
  • Luis Orozco

    (Institute for Computational Design and Construction (ICD), University of Stuttgart, 70174 Stuttgart, Germany
    Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany)

  • Anna Krtschil

    (Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany
    Institute of Building Structures and Structural Design (ITKE), University of Stuttgart, 70174 Stuttgart, Germany)

  • Hans Jakob Wagner

    (Institute for Computational Design and Construction (ICD), University of Stuttgart, 70174 Stuttgart, Germany
    Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany)

  • Simon Bechert

    (Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany
    Institute of Building Structures and Structural Design (ITKE), University of Stuttgart, 70174 Stuttgart, Germany)

  • Felix Amtsberg

    (Institute for Computational Design and Construction (ICD), University of Stuttgart, 70174 Stuttgart, Germany
    Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany)

  • Jan Knippers

    (Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany
    Institute of Building Structures and Structural Design (ITKE), University of Stuttgart, 70174 Stuttgart, Germany)

  • Achim Menges

    (Institute for Computational Design and Construction (ICD), University of Stuttgart, 70174 Stuttgart, Germany
    Cluster of Excellence Integrative Computational Design and Construction for Architecture (IntCDC), University of Stuttgart, 70174 Stuttgart, Germany)

Abstract

To meet climate change goals and respond to increased global urbanisation, the building industry needs to improve both its building technology and its design methods. Constrained urban environments and building stock extensions are challenges for standard timber construction. Co-design promises to better integrate disciplines and processes, promising smaller feedback loops for design iteration and building verification. This article describes the integrated design, fabrication, and construction processes of a timber building prototype as a case study for the application of co-design methods. Emphasis is placed on the development of design and engineering methods, fabrication and construction processes, and materials and building systems. The development of the building prototype builds on previous research in robotic fabrication (including prefabrication, task distribution, and augmented reality integration), agent-based modelling (ABM) for the design and optimisation of structural components, and the systematisation of timber buildings and their components. The results presented in this article include a functional example of co-design from which best practises may be extrapolated as part of an inductive approach to design research. The prototype, with its co-designed process and resultant flat ceilings, integrated services, wide spans, and design adaptability for irregular column locations, has the potential to expand the design potential of multi-storey timber buildings.

Suggested Citation

  • Luis Orozco & Anna Krtschil & Hans Jakob Wagner & Simon Bechert & Felix Amtsberg & Jan Knippers & Achim Menges, 2023. "Co-Design Methods for Non-Standard Multi-Storey Timber Buildings," Sustainability, MDPI, vol. 15(23), pages 1-19, November.
  • Handle: RePEc:gam:jsusta:v:15:y:2023:i:23:p:16178-:d:1284902
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    References listed on IDEAS

    as
    1. Howard Ashcraft, 2022. "Transforming project delivery: integrated project delivery [‘A Case Study Performance Analysis of Design–Build and Integrated Project Delivery Methods’]," Oxford Review of Economic Policy, Oxford University Press and Oxford Review of Economic Policy Limited, vol. 38(2), pages 369-384.
    2. Joseph Abed & Scott Rayburg & John Rodwell & Melissa Neave, 2022. "A Review of the Performance and Benefits of Mass Timber as an Alternative to Concrete and Steel for Improving the Sustainability of Structures," Sustainability, MDPI, vol. 14(9), pages 1-24, May.
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