This is an early access version, the complete PDF, HTML, and XML versions will be available soon.
Open AccessArticle
Tailoring Energy Absorption of Curved-Beam Lattices Through a Data-Driven Approach
by
Pengting Xiang
Pengting Xiang †,
Xian Liu
Xian Liu †,
Xiang Chen
Xiang Chen and
Chuang Liu
Chuang Liu *
College of Civil Engineering, Nanjing Tech University, Nanjing 211816, China
*
Author to whom correspondence should be addressed.
†
These authors contributed equally to this work.
Materials 2025, 18(23), 5377; https://doi.org/10.3390/ma18235377 (registering DOI)
Submission received: 1 November 2025
/
Revised: 26 November 2025
/
Accepted: 27 November 2025
/
Published: 28 November 2025
Abstract
Programmable mechanical metamaterials demonstrate significant potential for realizing high-performance mechanical responses, particularly in the field of energy absorption. In this study, a novel curved-beam thickness gradient lattice structure (CBTGLS) is proposed. Based on an intelligent inverse design framework integrating deep learning and genetic algorithms, the beam thickness and curved-beam control points of the CBTGLS were optimized to maximize its total energy absorption (EA) and specific energy absorption (SEA). Furthermore, this research employed interpretability methods, such as Shapley Additive Explanations (SHAP) and Partial Dependence Plot (PDP), to analyze the influence mechanism of geometric parameters on energy absorption performance, aiming to enhance design efficiency and establish a clear design rationale. The results indicate that the optimized CBTGLS exhibits significant improvements in both EA and SEA. Specifically, compared to a baseline straight-beam lattice structure possessing an identical thickness gradient, SEA of the optimized CBTGLS was enhanced by 49.12%. Among the investigated parameters, beam thickness was identified as having a particularly significant impact on performance. Furthermore, it was observed that a curvature profile bending more towards the outer side of the unit cell is more beneficial for enhancing the energy absorption capabilities of the lattice structure.
Share and Cite
MDPI and ACS Style
Xiang, P.; Liu, X.; Chen, X.; Liu, C.
Tailoring Energy Absorption of Curved-Beam Lattices Through a Data-Driven Approach. Materials 2025, 18, 5377.
https://doi.org/10.3390/ma18235377
AMA Style
Xiang P, Liu X, Chen X, Liu C.
Tailoring Energy Absorption of Curved-Beam Lattices Through a Data-Driven Approach. Materials. 2025; 18(23):5377.
https://doi.org/10.3390/ma18235377
Chicago/Turabian Style
Xiang, Pengting, Xian Liu, Xiang Chen, and Chuang Liu.
2025. "Tailoring Energy Absorption of Curved-Beam Lattices Through a Data-Driven Approach" Materials 18, no. 23: 5377.
https://doi.org/10.3390/ma18235377
APA Style
Xiang, P., Liu, X., Chen, X., & Liu, C.
(2025). Tailoring Energy Absorption of Curved-Beam Lattices Through a Data-Driven Approach. Materials, 18(23), 5377.
https://doi.org/10.3390/ma18235377
Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details
here.
Article Metrics
Article metric data becomes available approximately 24 hours after publication online.