Simulating Material Flow and Extrusion Dynamics in 3D Concrete Printing (2025-11)¶
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Journal Article - Computer Methods in Applied Mechanics and Engineering, Vol. 449, No. 118575
Abstract
We present an advanced 3D virtual printing framework for simulating material flow and extrusion dynamics in 3D concrete printing (3DCP), specifically addressing critical layer transition challenges. Central to the framework is a gradually-rising printing-start model, which dynamically adjusts deposition to eliminate sharp discontinuities between layers. Computationally, the framework couples δ-smoothed particle hydrodynamics (δ-SPH) with a regularized Bingham model to accurately capture deformation and pressure fields of extruded concrete. An alternating particle generation algorithm further enhances efficiency by enabling on-demand creation of fluid and wall particles, with parallelization supporting scalable simulations. Benchmark validations confirm the framework’s accuracy in modeling Bingham fluid behavior and its computational robustness. Results indicate that initial nozzle pressure strongly influences extrudability, with higher pressures producing greater layer deformation. The gradually rising deposition model aligns closely with theoretical predictions, expanding the transition zone and improving interlayer bonding. Beyond predictive failure analysis, this framework facilitates optimization of 3DCP parameters, paving the way for more reliable and scalable additive construction processes.
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13 References
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Layer Pressing in Concrete Extrusion-Based 3D Printing:
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Computational Modeling of Fiber Orientation During 3D Concrete Printing - Reinold Janis, Nerella Venkatesh, Mechtcherine Viktor, Meschke Günther (2022-02)
Extrusion-Process-Simulation and Layer-Shape-Prediction During 3D Concrete Printing Using the Particle-Finite-Element-Method - Rizzieri Giacomo, Ferrara Liberato, Cremonesi Massimiliano (2023-07)
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Modeling Extrusion-Process and Layer-Deformation in 3D Concrete Printing via Smoothed Particle-Hydrodynamics
BibTeX
@article{yu_zhan_liew_yin.2026.SMFaEDi3CP,
author = "Hao Yu and Weiwei Zhang and Jia Xiang Liew and Binbin Yin and Kim Meow Liew",
title = "Simulating Material Flow and Extrusion Dynamics in 3D Concrete Printing",
doi = "10.1016/j.cma.2025.118575",
year = "2026",
journal = "Computer Methods in Applied Mechanics and Engineering",
volume = "449",
pages = "118575",
}
Formatted Citation
H. Yu, W. Zhang, J. X. Liew, B. Yin and K. M. Liew, “Simulating Material Flow and Extrusion Dynamics in 3D Concrete Printing”, Computer Methods in Applied Mechanics and Engineering, vol. 449, p. 118575, 2026, doi: 10.1016/j.cma.2025.118575.
Yu, Hao, Weiwei Zhang, Jia Xiang Liew, Binbin Yin, and Kim Meow Liew. “Simulating Material Flow and Extrusion Dynamics in 3D Concrete Printing”. Computer Methods in Applied Mechanics and Engineering 449 (2026): 118575. https://doi.org/10.1016/j.cma.2025.118575.