TY - JOUR
T1 - Design and Analysis of Energy Absorbent Bioinspired Lattice Structures
AU - Greco, Lucrezia
AU - Buccino, Federica
AU - Xu, Zhuo
AU - Vergani, Laura
AU - Berto, Filippo
AU - Guagliano, Mario
AU - Razavi, Seyyed Moahmmad Javad
AU - Bagherifard, Sara
N1 - Publisher Copyright:
© 2023, The Author(s).
PY - 2023/7
Y1 - 2023/7
N2 - The increasing demand for energy absorbent structures, paired with the need for more efficient use of materials in a wide range of engineering fields, has led to an extensive range of designs in the porous forms of sandwiches, honeycomb, and foams. To achieve an even better performance, an ingenious solution is to learn how biological structures adjust their configurations to absorb energy without catastrophic failure. In this study, we have attempted to blend the shape freedom, offered by additive manufacturing techniques, with the biomimetic approach, to propose new lattice structures for energy absorbent applications. To this aim we have combined multiple bio-inspirational sources for the design of optimized configurations under compressive loads. Periodic lattice structures are fabricated based on the designed unit cell geometries and studied using experimental and computational strategies. The individual effect of each bio-inspired feature has been evaluated on the energy absorbance performance of the designed structure. Based on the design parameters of the lattices, a tuning between the strength and energy absorption could be obtained, paving the way for transition within a wide range of real-life applicative scenarios.
AB - The increasing demand for energy absorbent structures, paired with the need for more efficient use of materials in a wide range of engineering fields, has led to an extensive range of designs in the porous forms of sandwiches, honeycomb, and foams. To achieve an even better performance, an ingenious solution is to learn how biological structures adjust their configurations to absorb energy without catastrophic failure. In this study, we have attempted to blend the shape freedom, offered by additive manufacturing techniques, with the biomimetic approach, to propose new lattice structures for energy absorbent applications. To this aim we have combined multiple bio-inspirational sources for the design of optimized configurations under compressive loads. Periodic lattice structures are fabricated based on the designed unit cell geometries and studied using experimental and computational strategies. The individual effect of each bio-inspired feature has been evaluated on the energy absorbance performance of the designed structure. Based on the design parameters of the lattices, a tuning between the strength and energy absorption could be obtained, paving the way for transition within a wide range of real-life applicative scenarios.
KW - Bio-inspiration
KW - Energy absorbance
KW - Fused deposition modeling
KW - Lattice structures
KW - Lightweight design
UR - https://www.scopus.com/pages/publications/85150076008
U2 - 10.1007/s42235-023-00358-6
DO - 10.1007/s42235-023-00358-6
M3 - Article
AN - SCOPUS:85150076008
SN - 1672-6529
VL - 20
SP - 1670
EP - 1686
JO - Journal of Bionic Engineering
JF - Journal of Bionic Engineering
IS - 4
ER -