Metamodels for Rapid Analysis of Large Sets of Building Designs for Robotic Constructability (2022-04)¶
Muthumanickam Naveen, , ,
Contribution - Earth and Space 2022, pp. 871-884
Abstract
Disruptive robotic construction technologies such as additive deposition of cementitious materials like concrete (or “3D concrete printing”) require the synchronous operation of multiple pieces of equipment in the production setup. In such an environment, it is crucial to simulate the robotic motions (for toolpath clashes) and the cementitious material behavior (for toolpath failures) to ensure fail-proof constructability of the envisioned building geometry. However, toolpath clash detection requires 4D simulations of the production setup, which are computationally graphics intensive, whereas toolpath failure detection requires actual 3D printing of test parts from the geometry to identify areas prone to failure while 3D printing, which is physically tedious. Both these processes, being computationally and physically intensive, have largely curtailed designers from simulating and exploring large sets of design options with varying geometries and toolpath configurations. To overcome this and allow designers to explore large sets of design possibilities, this paper proposes two novel computational metamodels capable of performing robotic toolpath clash detection and failure detection with significantly reduced times than the earlier approaches. The developed metamodels were used to rapidly simulate large sets of building design options for robotic constructability in the NASA 3D-Printed Mars Habitat Challenge.
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5 References
- Ashrafi Negar, Duarte José, Nazarian Shadi, Meisel Nicholas (2018-10)
Evaluating the Relationship Between Deposition and Layer-Quality in Large-Scale Additive Manufacturing of Concrete - Breseghello Luca, Sanin Sandro, Naboni Roberto (2021-04)
Tool-Path Simulation, Design and Manipulation in Robotic 3D Concrete Printing - Brun Francis, Gaspar Florindo, Mateus Artur, Vitorino João et al. (2020-07)
Experimental Study on 3D Printing of Concrete with Overhangs - Comminal Raphaël, Silva Wilson, Andersen Thomas, Stang Henrik et al. (2020-10)
Modelling of 3D Concrete Printing Based on Computational Fluid Dynamics - Zareiyan Babak, Khoshnevis Behrokh (2017-08)
Effects of Interlocking on Inter-Layer Adhesion and Strength of Structures in 3D Printing of Concrete
BibTeX
@inproceedings{muth_duar_naza_bile.2023.MfRAoLSoBDfRC,
author = "Naveen Kumar Muthumanickam and José Pinto Duarte and Shadi Nazarian and Sven G. Bilén",
title = "Metamodels for Rapid Analysis of Large Sets of Building Designs for Robotic Constructability: Technology Demonstration Using the NASA 3D Printed Mars Habitat Challenge",
doi = "10.1061/9780784484470.073",
year = "2023",
pages = "871--884",
booktitle = "Earth and Space 2022",
editor = "Christopher B. Dreyer and Justin D. Littell",
}
Formatted Citation
N. K. Muthumanickam, J. P. Duarte, S. Nazarian and S. G. Bilén, “Metamodels for Rapid Analysis of Large Sets of Building Designs for Robotic Constructability: Technology Demonstration Using the NASA 3D Printed Mars Habitat Challenge”, in Earth and Space 2022, 2023, pp. 871–884. doi: 10.1061/9780784484470.073.
Muthumanickam, Naveen Kumar, José Pinto Duarte, Shadi Nazarian, and Sven G. Bilén. “Metamodels for Rapid Analysis of Large Sets of Building Designs for Robotic Constructability: Technology Demonstration Using the NASA 3D Printed Mars Habitat Challenge”. In Earth and Space 2022, edited by Christopher B. Dreyer and Justin D. Littell, 871–84, 2023. https://doi.org/10.1061/9780784484470.073.