Bioinspired fabric architecture harnessing anisotropy for omnidirectional mechanical protection

Powder bed fusion (PBF)-printed fiber-reinforced composites often exhibit powder-recoating-induced anisotropy, resulting in direction-dependent mechanical behavior that limits reliability under multidirectional loading. Inspired by the surface-following alignment of enamel rods in tooth enamel, we develop a fabric architecture that integrates build-orientation-controlled fiber alignment with a staggered interlocking topology of cubic unit cells. By optimizing build orientation and leveraging its shape-adaptive structural feature, this bioinspired architecture enables surface-following reinforcement, thereby harnessing anisotropy and achieving spatially uniform mechanical enhancement. Vacuum-confinement-induced jamming further enhances strength and energy absorption, while shifting the postyield response from bending-dominated deformation to friction-governed tilting of the interlocked unit cells, improving recovery ratio and overcoming the conventional trade-off between strength and recoverability. Consequently, this architecture demonstrates 1.85× higher specific strength and 1.92× higher specific energy absorption than the nonoptimized reference without vacuum confinement, ranking it among the leading lightweight load-bearing and energy-absorbing architectures. Additionally, the proposed fabric architecture delivers spatially uniform mechanical protection, a capability that remains challenging to achieve using conventional PBF-printed fiber-reinforced architectures. This work introduces a synergistic strengthening strategy that integrates structural design, process control, and external confinement. Importantly, we propose a general architecture-driven design paradigm that transforms mechanical anisotropy from a limitation into a performance advantage. The resulting fabric architecture delivers high-performance omnidirectional mechanical protection across diverse applications, such as protective casings of sensitive underwater systems and shape-adaptive protective covers.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-14
DOI
https://doi.org/10.1073/pnas.2608431123
Primary Topic
Mechanical Behavior of Composites
Type
article
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Bioinspired fabric architecture harnessing anisotropy for omnidirectional mechanical protection

Yuanyuan Tian, Jingbo Fan, Wei Shian Tey, Zuoqi Zhang et al.
Proceedings of the National Academy of Sciences
Mechanical Behavior of Composites
article

Bioinspired fabric architecture harnessing anisotropy for omnidirectional mechanical protection

Yuanyuan Tian, Jingbo Fan, Wei Shian Tey, Zuoqi Zhang, Kun Zhou, Jerry Qi, Zheng Han Lim, Hanzhi Chi, Adrian Ong
article en

Abstract

Powder bed fusion (PBF)-printed fiber-reinforced composites often exhibit powder-recoating-induced anisotropy, resulting in direction-dependent mechanical behavior that limits reliability under multidirectional loading. Inspired by the surface-following alignment of enamel rods in tooth enamel, we develop a fabric architecture that integrates build-orientation-controlled fiber alignment with a staggered interlocking topology of cubic unit cells. By optimizing build orientation and leveraging its shape-adaptive structural feature, this bioinspired architecture enables surface-following reinforcement, thereby harnessing anisotropy and achieving spatially uniform mechanical enhancement. Vacuum-confinement-induced jamming further enhances strength and energy absorption, while shifting the postyield response from bending-dominated deformation to friction-governed tilting of the interlocked unit cells, improving recovery ratio and overcoming the conventional trade-off between strength and recoverability. Consequently, this architecture demonstrates 1.85× higher specific strength and 1.92× higher specific energy absorption than the nonoptimized reference without vacuum confinement, ranking it among the leading lightweight load-bearing and energy-absorbing architectures. Additionally, the proposed fabric architecture delivers spatially uniform mechanical protection, a capability that remains challenging to achieve using conventional PBF-printed fiber-reinforced architectures. This work introduces a synergistic strengthening strategy that integrates structural design, process control, and external confinement. Importantly, we propose a general architecture-driven design paradigm that transforms mechanical anisotropy from a limitation into a performance advantage. The resulting fabric architecture delivers high-performance omnidirectional mechanical protection across diverse applications, such as protective casings of sensitive underwater systems and shape-adaptive protective covers.

Proceedings of the National Academy of SciencesVol. 123(38)
Georgia Institute of Technology (US), Nanyang Technological University (SG)
Affordable and clean energy
Openalex Percentile: Top 20%
Mechanical Behavior of Composites
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