Saved in:
Bibliographic Details
Main Authors: Kawabe, Hiroki, Ohtani, Kaito, Yang, Yusibo, Ali, Musaddiq Al, Yaji, Kentaro
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2605.06011
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866918487921786880
author Kawabe, Hiroki
Ohtani, Kaito
Yang, Yusibo
Ali, Musaddiq Al
Yaji, Kentaro
author_facet Kawabe, Hiroki
Ohtani, Kaito
Yang, Yusibo
Ali, Musaddiq Al
Yaji, Kentaro
contents This paper presents a homogenized topology optimization (TO) method for spatially optimizing cell-size distribution of triply-periodic minimal surface (TPMS) structures, with high accuracy in the optimized structural response after de-homogenization. To achieve this, we introduce a novel de-homogenization technique that directly minimizes the difference between the wavenumbers obtained from the target and actual size distributions. This minimization problem is efficiently solved as a typical Poisson's equation utilizing the discrete cosine transform. We first verify the proposed de-homogenization method through numerical examples, showcasing its capability in significantly reducing the known distortion of the de-homogenized TPMS structures from the conventional periodic modulation (PM) method. Then, we apply the proposed method to a stiffness maximization problem, to demonstrate its effectiveness in improving the structural response compared to the PM method. The proposed method successfully reduced the distortion of the de-homogenized structures compared to the PM method, leading to 0.8% difference in the strain energy compared to the homogenized model, as opposed to 63.6% difference in the PM method. The optimized structure from the proposed method shows a significant improvement in the strain energy by 50.1% compared to the uniform case in the FE analysis on the de-homogenized models, while the PM method results in a significant decrease of 45.8%. The experimental validation shows that the effective stiffness of the optimized structure from the proposed method is 54.2% higher than that of the uniform case, while the PM method results in a significant decrease by 77.3%. These results exhibit the proposed method effectively increases the accuracy of the de-homogenization, thereby maximizing the potential of the homogenized TO for the spatial cell-size optimization of TPMS structures.
format Preprint
id arxiv_https___arxiv_org_abs_2605_06011
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Distortion-minimized de-homogenization for optimization of cell-size distribution in TPMS structures
Kawabe, Hiroki
Ohtani, Kaito
Yang, Yusibo
Ali, Musaddiq Al
Yaji, Kentaro
Optimization and Control
This paper presents a homogenized topology optimization (TO) method for spatially optimizing cell-size distribution of triply-periodic minimal surface (TPMS) structures, with high accuracy in the optimized structural response after de-homogenization. To achieve this, we introduce a novel de-homogenization technique that directly minimizes the difference between the wavenumbers obtained from the target and actual size distributions. This minimization problem is efficiently solved as a typical Poisson's equation utilizing the discrete cosine transform. We first verify the proposed de-homogenization method through numerical examples, showcasing its capability in significantly reducing the known distortion of the de-homogenized TPMS structures from the conventional periodic modulation (PM) method. Then, we apply the proposed method to a stiffness maximization problem, to demonstrate its effectiveness in improving the structural response compared to the PM method. The proposed method successfully reduced the distortion of the de-homogenized structures compared to the PM method, leading to 0.8% difference in the strain energy compared to the homogenized model, as opposed to 63.6% difference in the PM method. The optimized structure from the proposed method shows a significant improvement in the strain energy by 50.1% compared to the uniform case in the FE analysis on the de-homogenized models, while the PM method results in a significant decrease of 45.8%. The experimental validation shows that the effective stiffness of the optimized structure from the proposed method is 54.2% higher than that of the uniform case, while the PM method results in a significant decrease by 77.3%. These results exhibit the proposed method effectively increases the accuracy of the de-homogenization, thereby maximizing the potential of the homogenized TO for the spatial cell-size optimization of TPMS structures.
title Distortion-minimized de-homogenization for optimization of cell-size distribution in TPMS structures
topic Optimization and Control
url https://arxiv.org/abs/2605.06011