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April 7, 2026Biomimetics1 citationsOpen Access

Three-Dimensional Printing Biomimetic Ceramic Composites Inspired by the Desert Scorpion with Excellent Erosion Wear Resistance

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ZWZhaozhi WangWWWeicong WangXDXinhui Duan

Key Points

  • To develop and evaluate biomimetic ZTA ceramic composites inspired by the desert scorpion's armor for improved erosion resistance.
  • Developed three biomimetic configurations through direct ink writing 3D printing.
  • Conducted gas–solid two-phase erosion tests at various impact angles from 15° to 90°.
  • Performed erosion morphology, actual impact angle, and stress-wave propagation analyses.
  • Erosion rate varied with impact angle, peaking around 60°.
  • CH-O outperformed control sample under high-angle conditions, showing 18.39–32.54% better erosion resistance.
  • CH-CS showed enhanced resistance with 14.31–53.92% improvements at low angles and 24.57–35.17% at high angles.
  • CH-HS provided the best overall resistance, improving by 9.22–32.16% over CH-CS.

Abstract

Inspired by the erosion-resistant dorsal armor of the desert scorpion, this study developed biomimetic ZTA ceramic composites with enhanced resistance to solid particle erosion. Three biomimetic configurations, namely convex-bump (CH-O), convex-curved-surface (CH-CS), and convex hybrid rigid–flexible (CH-HS) structures, were fabricated by direct ink writing (DIW) 3D printing. Their erosion performance was evaluated by gas–solid two-phase erosion tests at impact angles ranging from 15° to 90°, and the underlying mechanisms were elucidated through erosion morphology analysis, actual impact angle analysis, and stress-wave propagation analysis. The results showed that the erosion rate of all samples first increased and then decreased with increasing impact angle, reaching a maximum at around 60°. Compared with the smooth control sample, CH-O exhibited lower erosion resistance under low-angle erosion conditions but showed clear improvement under high-angle erosion conditions, with the erosion resistance increased by 18.39–32.54%. CH-CS further improved the erosion resistance of CH-O, with enhancements of 14.31–53.92% at low impact angles and 24.57–35.17% at high impact angles. Among all the biomimetic designs, CH-HS exhibited the best overall erosion resistance, showing an additional improvement of 9.22–32.16% over CH-CS across the tested impact angle range. The superior erosion resistance was attributed to the synergistic effects of convex-bump morphology, curved-surface-induced particle deflection, and rigid–flexible coupling. These biomimetic features modified the actual impact angle of the particles, deflected their trajectories, reduced direct particle impact, and generated a shadow effect, while the flexible layer dissipated impact energy through reflection unloading at the rigid–flexible interface. This study provides a novel strategy for the biomimetic design of erosion-resistant ceramic composites and offers new insights into mitigating erosion damage in ceramic-based mechanical components.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69d49fa9b33cc4c35a228160https://doi.org/10.3390/biomimetics11040248
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