Self-Supporting Lamellae (2024-08)¶
, , ,
Journal Article - Additive Manufacturing, No. 104329
Abstract
3D Concrete Printing (3DCP) is considered a solution to confront both labor shortages and material waste in the construction industry. However, to realize non-standard, large-scale buildings, substantial amounts of supporting material and manual assembly are still required to print structures with significant overhangs, including the inclined structure and the cantilever structure. In response, the study draws inspiration from mushroom lamellae and proposes a geometry-based approach to adjusting the large-overhang shape into a self-supported one. This approach imitates lamella morphology by creating folds on the given geometry based on constraints established through empirical studies, thereby reducing overhangs and improving printability. Specifically, the proposed approach includes two shape variation methods. The first method generates lamellae perpendicular to the inclined shape, thereby providing lateral support to the filament. The second method creates lamellae under the cantilever, facilitating a seamless horizontal-to-vertical transition. The effectiveness of these methods is demonstrated through the generation and printing of four column capital samples. Upon evaluating the overhang mechanisms of these geometries, an approachable optimization method is also presented to further minimize the amplitude of lamellae while maintaining self-supporting ability. Compared with control groups that focus on either maximizing printability or minimizing material usage, the optimal result for the inclined structure prototype showcases an over 75% overhang reduction on the critical layer with just about 15% use of additional material. As for the cantilever prototype, an over 75% overhang reduction is achieved on the critical layer with about 35% additional material usage. Various large-scale structure examples are presented at the end of the research, illustrating the applicability and scalability of the lamella-inspired method in a wider range of building types.
¶
23 References
- Anton Ana-Maria, Bedarf Patrick, Yoo Angela, Dillenburger Benjamin et al. (2020-09)
Concrete Choreography:
Prefabrication of 3D Printed Columns - Anton Ana-Maria, Jipa Mihail-Andrei, Reiter Lex, Dillenburger Benjamin (2020-10)
Fast Complexity - Bhooshan Shajay, Ladinig Johannes, Mele Tom, Block Philippe (2018-09)
Function Representation for Robotic 3D Printed Concrete - Bhooshan Shajay, Mele Tom, Block Philippe (2017-09)
Equilibrium-Aware Shape Design for Concrete Printing - Bi Minghao, Tran Jonathan, Xia Lingwei, Ma Guowei et al. (2022-06)
Topology-Optimization for 3D Concrete Printing with Various Manufacturing-Constraints - Bi Minghao, Xia Lingwei, Tran Jonathan, Li Zhi et al. (2022-04)
Continuous Contour-Zigzag Hybrid Tool-Path for Large-Format Additive Manufacturing - Breseghello Luca, Talaei Ardeshir, Florenzano Daniele, Naboni Roberto (2023-09)
Shape-Env:
Camera-Enhanced Robotic Terrain-Shaping for Complex 3D Concrete Printing - Burger Joris, Lloret-Fritschi Ena, Taha Nizar, Scotto Fabio et al. (2020-07)
Design and Fabrication of a Non-Standard, Structural Concrete Column Using Eggshell:
Ultra-Thin, 3D Printed Formwork - Carneau Paul, Mesnil Romain, Roussel Nicolas, Baverel Olivier (2020-04)
Additive Manufacturing of Cantilever:
From Masonry to Concrete 3D Printing - Comminal Raphaël, Silva Wilson, Andersen Thomas, Stang Henrik et al. (2020-10)
Modelling of 3D Concrete Printing Based on Computational Fluid Dynamics - Gaudillière-Jami Nadja, Duballet Romain, Bouyssou Charles, Mallet Alban et al. (2018-09)
Large-Scale Additive Manufacturing of Ultra-High-Performance Concrete of Integrated Formwork for Truss-Shaped Pillars - Gosselin Clément, Duballet Romain, Roux Philippe, Gaudillière-Jami Nadja et al. (2016-03)
Large-Scale 3D Printing of Ultra-High-Performance Concrete:
A New Processing Route for Architects and Builders - Hack Norman, Dörfler Kathrin, Walzer Alexander, Wangler Timothy et al. (2020-03)
Structural Stay-in-Place Formwork for Robotic In-Situ Fabrication of Non-Standard Concrete Structures:
A Real-Scale Architectural Demonstrator - Huang Shuyi, Xu Weiguo, Yin Yudong (2023-03)
Improving the Overhang of 3D Printed Concrete Shells by Wrinkle Structures - Li Yu, Wu Hao, Xie Xinjie, Zhang Liming et al. (2024-02)
FloatArch:
A Cable-Supported, Unreinforced, and Re-Assemblable 3D Printed Concrete Structure Designed Using Multi-Material Topology-Optimization - Liu Junli, Li Shuai, Fox Kate, Tran Jonathan (2021-12)
3D Concrete Printing of Bio-Inspired Bouligand Structure:
A Study on Impact-Resistance - Moini Mohamadreza, Olek Jan, Youngblood Jeffrey, Magee Bryan et al. (2018-08)
Additive Manufacturing and Performance of Architectured Cement-Based Materials - Nguyen Vuong, Li Shuai, Liu Junli, Nguyen Kien et al. (2022-11)
Modelling of 3D Concrete Printing Process:
A Perspective on Material and Structural Simulations - Panda Biranchi, Tan Ming (2018-03)
Experimental Study on Mix Proportion and Fresh Properties of Fly-Ash-Based Geopolymer for 3D Concrete Printing - Tay Yi, Li Mingyang, Tan Ming (2019-04)
Effect of Printing Parameters in 3D Concrete Printing:
Printing Region and Support Structures - Vantyghem Gieljan, Corte Wouter, Shakour Emad, Amir Oded (2020-01)
3D Printing of a Post-Tensioned Concrete Girder Designed by Topology-Optimization - Wan Qian, Yang Wenwei, Wang Li, Ma Guowei (2023-04)
Global Continuous Path-Planning for 3D Concrete Printing Multi-Branched Structure - Wolfs Robert, Salet Theo, Roussel Nicolas (2021-10)
Filament-Geometry-Control in Extrusion-Based Additive Manufacturing of Concrete:
The Good, the Bad and the Ugly
4 Citations
- Liu Xiongfei, Wang Haonan, Chen Jinnan, Sun Yuhang et al. (2025-11)
Fiber Orientation Control in Spray-Based 3D Printed Steel Fiber Reinforced Concrete - Zhang Hui, Wu Jie, Huang Bo-Tao, Yu Rena et al. (2025-11)
Cross-Scale Mechanisms of Anisotropy in 3D-Printed Ultra-High-Performance Concrete - Gonsalves Nicolas, Morgan Ashlei, Thiele Heidi, Olarra Andre et al. (2025-10)
3D Printing of Sustainable Infrastructure Using Rapid-Set Clay Concrete with Biobased Additives - Lin Wenyu, Wang Li, Li Zhijian, Bai Gang et al. (2025-06)
Multi-Scale Fabrication and Challenges in 3D Printing of Special -Shaped Concrete Structures
BibTeX
@article{huan_xu_anto_dill.2024.SSL,
author = "Shuyi Huang and Weiguo Xu and Ana-Maria Anton and Benjamin Dillenburger",
title = "Self-Supporting Lamellae: Shape Variation Methods for the 3D Concrete Printing of Large Overhang Structures",
doi = "10.1016/j.addma.2024.104329",
year = "2024",
journal = "Additive Manufacturing",
pages = "104329",
}
Formatted Citation
S. Huang, W. Xu, A.-M. Anton and B. Dillenburger, “Self-Supporting Lamellae: Shape Variation Methods for the 3D Concrete Printing of Large Overhang Structures”, Additive Manufacturing, p. 104329, 2024, doi: 10.1016/j.addma.2024.104329.
Huang, Shuyi, Weiguo Xu, Ana-Maria Anton, and Benjamin Dillenburger. “Self-Supporting Lamellae: Shape Variation Methods for the 3D Concrete Printing of Large Overhang Structures”. Additive Manufacturing, 2024, 104329. https://doi.org/10.1016/j.addma.2024.104329.