Ceratocanthinae beetle, Elytra, Surface texture, Friction, Design optimization, Puncture-resistance
," /> Ceratocanthinae beetle, Elytra, Surface texture, Friction, Design optimization, Puncture-resistance
,"/> Ceratocanthinae beetle, Elytra, Surface texture, Friction, Design optimization, Puncture-resistance
,"/> Optimized Biological Texture Design, Frictional Anisotropy, Puncture/Wear Resistance and Strength of Conglobated and Non-conglobated Ceratocanthus Beetle Elytra

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Journal of Bionic Engineering ›› 2025, Vol. 22 ›› Issue (5): 2561-2582.doi: 10.1007/s42235-025-00738-0

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Optimized Biological Texture Design, Frictional Anisotropy, Puncture/Wear Resistance and Strength of Conglobated and Non-conglobated Ceratocanthus Beetle Elytra

Vivek Kashyap1; Nicola Maria Pugno1,2   

  1. 1 Laboratory for Bioinspired, Bionic, Nano, Meta Materialsand Mechanics, Department of Civil, Environmental andMechanical Engineering, University of Trento, Via Mesiano77, 38123 Trento, Italy
    2 School of Engineering and Materials Science, Queen MaryUniversity of London, Mile End Road, London E1 4NS, UK
  • Online:2025-10-15 Published:2025-11-19
  • Contact: Nicola Maria Pugno1,2 E-mail:nicola.pugno@unitn.it
  • About author:Vivek Kashyap1; Nicola Maria Pugno1,2

Abstract: Surface morphology of Ceratocanthus beetle elytra was investigated for spike surface texture and its geometry using Scanning Electron Microscopy (SEM). Material properties were analyzed for both surface and cross-section of elytra using nano-indentation technique. The spike texture was significantly rigid compared with the non-textured zone; a bi-layer system of E and H was identified at the elytra cross-section. Normal load acting on spike texture during free-fall conditions was estimated analytically and deflection equation was derived. The design of spike texture with conical base was studied for minimization of deflection and volume using the Non-dominated Sorting Genetic Algorithm (NSGA-II) optimization technique, confirming the smart design of the natural solution. The frictional behavior of elytra was studied using fundamental tribology test and the role of the oriented spike texture was investigated for frictional anisotropy. Compression resistance of full beetle was evaluated for both conglobated and non-conglobated configuration and tensile strengths were compared using Brazilian test. Puncture and wear resistance of full elytra were characterized and correlated with its defense mechanism.

Key words: Ceratocanthinae beetle')">Ceratocanthinae beetle, Elytra, Surface texture, Friction, Design optimization, Puncture-resistance