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A geometry-driven optimization framework for tuning cyclic stiffness and dissipative response in additively manufactured implant-like lattices

delete2026-06-19
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PRE
AI
I
Ibrahim T. Teke *
A
Ahmet H. Ertas
DOI:10.1016/j.jmbbm.2026.107504delete
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Abstract

Abstract

En 中文
This study presents a geometry-driven optimization framework for additively manufactured implant-like lattice architectures, focusing on the control of architecture-dependent cyclic mechanical response. The proposed Manufacturability-Aware Surrogate-Assisted Topology Optimization framework integrates a genetic algorithm, a Gaussian-process surrogate model, and gradient-based refinement within a unified pipeline that enforces additive manufacturing constraints. The framework uses a deformation-derived mechanical response proxy to guide the ranking of manufacturable lattice architectures according to their expected stiffness-related and dissipation-related behavior. Optimized M-88 and M-2525 architectures were fabricated from PLA and evaluated under quasi-static and cyclic compression. The finer M-2525 architecture exhibited higher quasi-static stiffness and a more storage-dominated cyclic response, whereas the coarser M-88 architecture showed a stronger loss-modulus contribution and more dissipative cyclic behavior. These cyclic trends were consistent with the quasi-static compression results, indicating that geometry-driven design can shift the response of lattice architectures between stiff elastic behavior and more viscous or dissipative behavior. Overall, the proposed framework provides a computational–experimental route for tuning geometry-dependent cyclic response in manufacturable additively manufactured lattices.

Journal

Journal of the Mechanical Behavior of Biomedical Materials cover
Journal of the Mechanical Behavior of Biomedical Materials
IF:
3.5
Papers:
6.7K
Citations:
2.1W

Organization

B
Biruni University
Scholars:
891
Papers: 801
Citations: 547
B
bursa technical university
Scholars:
265
Papers: 174
Citations: 10
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