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◆ Materials & Design2026-01-30· Periodic boundary conditions

TPMS-based mechanical bonding structures optimized by FEM with periodic boundary conditions

Renbo Su, Tao Liu, T. S. Zhang, Yingjun Tian, Romain Hautier, Weiming Wang, Charlie C.L. Wang

原始摘要(英文原文)· Original abstract
Mechanical Bonding Structures (MBS) provide a reliable alternative to chemical bonding for joining dissimilar materials, enhancing mechanical performance and broadening design flexibility. This study introduces a novel approach to optimizing Triply Periodic Minimal Surfaces (TPMS)-based MBS using Finite Element Method (FEM) with Periodic Boundary Conditions (PBC). A hybrid TPMS-based representation is proposed, enabling topological and geometric variation to improve mechanical bonding performance. To address the challenges of non-periodic mesh and partial periodicity in FEA, a new PBC tool is developed, ensuring accurate numerical modeling of MBS. A data-driven optimization framework, incorporating Bayesian optimization, is applied to maximize the tensile strength of TPMS-based MBS. The proposed method is validated through mechanical tests on dual-material specimens fabricated via various manufacturing processes. Results demonstrate up to 109.5% improvement in tensile strength across different material combinations, confirming the effectiveness of the optimization strategy. This work provides a generalizable approach for designing high-performance MBS in multi-material manufacturing. • This study introduces a novel Periodic Boundary Condition (PBC) tool and a data-driven optimization framework to enhance the tensile strength of Triply Periodic Minimal Surface (TPMS)-based Mechanical Bonding Structures (MBS), achieving up to a 102.7% improvement across various material combinations.
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