OAK

TOPOLOGY OPTIMIZATION OF MULTIPLE DEGREES-OF-FREEDOM BREAKAWAY STRUCTURES

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Author(s)
Yan, Robin ZhexuanShepherd, MaxLee, JaewookSaitou, Kazuhiro
Type
Conference Paper
Citation
ASME 2025 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, IDETC-CIE 2025
Issued Date
2025-08-20
Abstract
Breakaway devices are mechanical “fuses” to protect critical components from damage caused by excessive loads. Current breakaway devices are designed by analytical or empirical approaches, resulting in complicated assemblies with limited degrees-of-freedom (DOF). While the stress-constrained topology optimization (TO) has been extensively studied for designing structures against failure, no prior work has utilized TO for designing breakaway structures that fail under prescribed loads. This work proposes a TO-based formulation for designing monolithic multi-DOF breakaway structures with embedded yield zones, regions intended for failure. Compared to the approach based on the conventional stress-constrained TO, the proposed method keeps the average stress in the yield zones below the material’s yield strength, ensuring consistent breakaway behaviors in the presence of modeling errors and manufacturing variations. Meta-design strategies are developed to facilitate the convergence: sliding loading surfaces to realize asymmetric responses in a single DOF, yield zone and domain separation to decouple responses among DOFs, and incremental addition of load cases for better response interpolation between load cases. Preliminary results demonstrate that the proposed formulation produces the structures that fail at multiple finite element nodes, indicating greater tolerance against modeling errors and manufacturing variations, and the meta-design strategies successfully enable the desired breakaway behaviors in multi-DOF space. © 2025 by ASME.
Publisher
American Society of Mechanical Engineers (ASME)
Conference Place
US
Anaheim
URI
https://scholar.gist.ac.kr/handle/local/33523
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