A bioinspired gradient curved auxetic honeycombs with enhanced energy absorption
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- @Article{Liu:2025:ijmecsci,
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author = "Jinlong Liu and Jiahui Liu and Kang Gao and
Iman Mohagheghian and Wei Fan and Jie Yang and
Zhangming Wu",
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title = "A bioinspired gradient curved auxetic honeycombs with
enhanced energy absorption",
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journal = "International Journal of Mechanical Sciences",
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year = "2025",
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volume = "291-292",
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pages = "110189",
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keywords = "genetic algorithms, genetic programming, Auxetic,
Bionics design, Energy absorption, Arc-Curved
Honeycomb, Fractal self-similar structure, Genetic
Programming-Symbolic regression",
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ISSN = "0020-7403",
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URL = "
https://www.sciencedirect.com/science/article/pii/S0020740325002759",
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DOI = "
doi:10.1016/j.ijmecsci.2025.110189",
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abstract = "Traditional auxetic honeycombs often exhibit reduced
energy absorption capabilities due to global
instability arising from shear band formation,
significantly limiting their practical applications. To
address this limitation, this study presents the
Auxetic Arc-Curved Honeycomb with a novel Bioinspired
Layering Gradient (BLG-AACH). The innovative gradient
design of the BLG-AACH is inspired by the dense
exterior and sparse interior characteristics of
biological tissues across multiple scales, using
fractal self-similar structure to achieve this
biological trait. The BLG-AACH facilitates induced
deformation in the intermediate layers, thereby
preventing overall global buckling and significantly
enhancing energy absorption properties. The compressive
behaviour of the BLG-AACH was investigated through both
experimental testing and finite element modelling. The
results demonstrate that the BLG-AACH structure
maintains a stable concave folding deformation mode and
exhibits multi-level energy absorption capabilities.
Its specific energy absorption and total energy
absorption are 5.81 and 10.74 times greater than those
of the homogeneous AACH, respectively, outperforming
other layered configurations. Moreover, the BLG-AACH is
highly programmable, enabling the adjustment of
mechanical properties such as initial stiffness,
plateau stress, and specific energy absorption by
varying parameters like cell angle and cell wall
thickness. Additionally, Genetic Programming-Symbolic
Regression (GP-SR) was innovatively employed to derive
a compact and scalable formula for calculating the
specific energy absorption of the BLG-AACH, achieving
an impressive R2 value of 0.99. These findings provide
a novel paradigm for enhancing the energy absorption
performance and its calculation in auxetic honeycombs",
- }
Genetic Programming entries for
Jinlong Liu
Jiahui Liu
Kang Gao
Iman Mohagheghian
Wei Fan
Jie Yang
Zhangming Wu
Citations