Effect of cohesion on the gravity-driven evacuation of metal powder through Triply-Periodic Minimal Surface structures

Fuente: arXiv
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Main Authors: Gupta, Aashish K, Ness, Christopher, Haeri, Sina
Format: Preprint
Published: 2025
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author Gupta, Aashish K
Ness, Christopher
Haeri, Sina
author_facet Gupta, Aashish K
Ness, Christopher
Haeri, Sina
contents Evacuating the powder trapped inside the complex cavities of Triply Periodic Minimal Surface (TPMS) structures remains a major challenge in metal-powder-based additive manufacturing. The Discrete Element Method offers valuable insights into this evacuation process, enabling the design of effective de-powdering strategies. In this study, we simulate gravity-driven evacuation of trapped powders from inside unit cells of various TPMS structures. We systematically investigate the role of cohesive energy density in shaping the discharge profile. Overall, we conclude that the Schwarz-P and Gyroid topologies enable the most efficient powder evacuation, remaining resilient to cohesion-induced flow hindrance. Furthermore, for the two unit cells, we analyse detailed kinematics and interpret the results in relation to particle overlaps and contact force distributions.
format Preprint
id arxiv_https___arxiv_org_abs_2511_19821
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Effect of cohesion on the gravity-driven evacuation of metal powder through Triply-Periodic Minimal Surface structures
Gupta, Aashish K
Ness, Christopher
Haeri, Sina
Computational Physics
Soft Condensed Matter
Evacuating the powder trapped inside the complex cavities of Triply Periodic Minimal Surface (TPMS) structures remains a major challenge in metal-powder-based additive manufacturing. The Discrete Element Method offers valuable insights into this evacuation process, enabling the design of effective de-powdering strategies. In this study, we simulate gravity-driven evacuation of trapped powders from inside unit cells of various TPMS structures. We systematically investigate the role of cohesive energy density in shaping the discharge profile. Overall, we conclude that the Schwarz-P and Gyroid topologies enable the most efficient powder evacuation, remaining resilient to cohesion-induced flow hindrance. Furthermore, for the two unit cells, we analyse detailed kinematics and interpret the results in relation to particle overlaps and contact force distributions.
title Effect of cohesion on the gravity-driven evacuation of metal powder through Triply-Periodic Minimal Surface structures
topic Computational Physics
Soft Condensed Matter
url https://arxiv.org/abs/2511.19821