Environmental Design Guidelines for Digital Fabrication (2016-11)¶
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Journal Article - Journal of Cleaner Production, Vol. 142, pp. 2780-2791
Abstract
Digital fabrication represents an innovative technology with the potential of expanding the boundaries of architecture. The potential to fabricate elements directly from design information is transforming many design and production disciplines. In particular, 3D printing has become the key of modern product development. As the use of additive manufacturing grows, research into large-scale processes is beginning to reveal potential applications in construction. The combined methods of computational design and robotic fabrication have the well-demonstrated potential to create formal and structural advances in architecture. However, their potential contribution to the improvement of sustainability in construction must be evaluated. In this study, we identified environmental guidelines to be considered during the design of digitally fabricated architecture. The key parameters were extracted from the Life Cycle Assessment (LCA) of three case studies. The environmental assessment performed indicated that the relative sustainability of the projects depended primarily on the building material production. Specifically, the impact of digital fabrication processes was negligible compared to the materials manufacturing process. Furthermore, the study highlighted the opportunities of integrating additional functions in structural elements with digital fabrication to reduce the overall environmental impact of these multi-functional elements. Finally, the analysis proved the potential of digital fabrication to reduce the amount of highly industrialized materials in a project, which are associated with high environmental impacts.
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Additive Manufacturing in Construction - Muñoz Ivan, Madrid Javier, Muñiz Manuel, Uhart Maylis et al. (2021-01)
Life Cycle Assessment of Integrated Additive-Subtractive Concrete 3D Printing - Mohammad Malek, Masad Eyad, Ghamdi Sami (2020-12)
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3D Concrete Printing for Sustainable Construction - Joh Changbin, Lee Jungwoo, Bui The, Park Jihun et al. (2020-11)
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A State of the Art Review - Hossain Md., Zhumabekova Altynay, Paul Suvash, Kim Jong (2020-10)
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3D Printed Concrete for Large-Scale Buildings:
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Applications, Material and Process Technology - Menna Costantino, Mata-Falcón Jaime, Bos Freek, Vantyghem Gieljan et al. (2020-04)
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Nailing of Layers:
A Promising Way to Reinforce Concrete 3D Printing Structures - Kontovourkis Odysseas, Tryfonos George (2019-11)
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Additive Manufacturing Processes for Infrastructure Construction:
A Review - Wangler Timothy, Roussel Nicolas, Bos Freek, Salet Theo et al. (2019-06)
Digital Concrete:
A Review - Kontovourkis Odysseas, Tryfonos George, Georgiou Christos (2019-06)
Robotic Additive Manufacturing (RAM) with Clay Using Topology-Optimization Principles for Tool-Path-Planning:
The Example of a Building Element - Perrot Arnaud, Rangeard Damien (2019-04)
3D Printing with Concrete:
Impact and Designs of Structures - Geneidy Omar, Ismaeel Walaa, Abbas Ayman (2019-04)
A Critical Review for Applying Three-Dimensional Concrete Wall Printing Technology in Egypt - Agustí-Juan Isolda, Jipa Mihail-Andrei, Habert Guillaume (2018-11)
Environmental Assessment of Multi-Functional Building Elements Constructed with Digital Fabrication Techniques - Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
Vision of 3D Printing with Concrete:
Technical, Economic and Environmental Potentials - Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
Particle-Bed 3D Printing in Concrete Construction:
Possibilities and Challenges - Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2018-06)
The Role of Early-Age Structural Build-Up in Digital Fabrication with Concrete - Soto Borja, Agustí-Juan Isolda, Hunhevicz Jens, Joss Samuel et al. (2018-05)
Productivity of Digital Fabrication in Construction:
Cost and Time-Analysis of a Robotically Built Wall - Rippmann Matthias, Liew A., Mele Tom, Block Philippe (2018-03)
Design, Fabrication and Testing of Discrete 3D Sand-Printed Floor Prototypes - Kontovourkis Odysseas, Tryfonos George (2017-07)
Integrating Parametric Design with Robotic Additive Manufacturing for 3D Clay Printing:
An Experimental Study - Loveridge Russell, Coray Tanja (2017-04)
Robots on Construction Sites:
The Potential and Challenges of On-Site Digital Fabrication - Agustí-Juan Isolda, Müller Florian, Hack Norman, Wangler Timothy et al. (2017-04)
Potential Benefits of Digital Fabrication for Complex Structures:
Environmental Assessment of a Robotically Fabricated Concrete Wall
BibTeX
@article{agus_habe.2017.EDGfDF,
author = "Isolda Agustí-Juan and Guillaume Habert",
title = "Environmental Design Guidelines for Digital Fabrication",
doi = "10.1016/j.jclepro.2016.10.190",
year = "2017",
journal = "Journal of Cleaner Production",
volume = "142",
pages = "2780--2791",
}
Formatted Citation
I. Agustí-Juan and G. Habert, “Environmental Design Guidelines for Digital Fabrication”, Journal of Cleaner Production, vol. 142, pp. 2780–2791, 2017, doi: 10.1016/j.jclepro.2016.10.190.
Agustí-Juan, Isolda, and Guillaume Habert. “Environmental Design Guidelines for Digital Fabrication”. Journal of Cleaner Production 142 (2017): 2780–91. https://doi.org/10.1016/j.jclepro.2016.10.190.