Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.ijmecsci.2022.108092
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dc.titleTPMS-based interpenetrating lattice structures: Design, mechanical properties and multiscale optimization
dc.contributor.authorZhao, M
dc.contributor.authorLi, X
dc.contributor.authorZhang, DZ
dc.contributor.authorZhai, W
dc.date.accessioned2023-07-21T08:15:09Z
dc.date.available2023-07-21T08:15:09Z
dc.date.issued2023-04-15
dc.identifier.citationZhao, M, Li, X, Zhang, DZ, Zhai, W (2023-04-15). TPMS-based interpenetrating lattice structures: Design, mechanical properties and multiscale optimization. International Journal of Mechanical Sciences 244 : 108092-108092. ScholarBank@NUS Repository. https://doi.org/10.1016/j.ijmecsci.2022.108092
dc.identifier.issn0020-7403
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/243313
dc.description.abstractCompared to single-phase structures, interpenetrating lattice structures display the potential to achieve a wide range of tailorable physical and mechanical properties. Herein, we present a novel class of interpenetrating lattice structures based on triply periodic minimal surfaces. Using representative volume elements applied with the periodic boundary conditions, the contributions of the volume fraction and the interpenetrating parameter, a measure of the ratio of the two phases, on the mechanical properties and deformation behavior of the interpenetrating lattice structures are investigated. Results show that the mechanical properties are highly dependent on the interpenetrating parameter, and isotropic elasticity can be achieved at a particular value. Moreover, the uniaxial and shear deformation mechanisms (bending or stretching behavior) can be easily changed by adjusting the interpenetrating parameter. Our new interpenetrating lattice designs are experimentally validated using 3D-printed samples. Finally, a new multiscale optimization framework, based on simultaneously optimizing the distribution of the volume fraction and the interpenetrating parameter, is developed. Compared to the traditional optimized designs that only consider the volume fraction, the proposed optimized design reduces the structural compliance by more than 10.85%, confirming the effectiveness of the proposed optimization framework for lightweight applications.
dc.publisherElsevier BV
dc.sourceElements
dc.typeArticle
dc.date.updated2023-07-21T05:28:57Z
dc.contributor.departmentMECHANICAL ENGINEERING
dc.description.doi10.1016/j.ijmecsci.2022.108092
dc.description.sourcetitleInternational Journal of Mechanical Sciences
dc.description.volume244
dc.description.page108092-108092
dc.published.statePublished
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