Literature DB >> 27793720

Moisture, anisotropy, stress state, and strain rate effects on bighorn sheep horn keratin mechanical properties.

K L Johnson1, M W Trim2, D K Francis3, W R Whittington3, J A Miller3, C E Bennett4, M F Horstemeyer5.   

Abstract

This paper investigates the effects of moisture, anisotropy, stress state, and strain rate on the mechanical properties of the bighorn sheep (Ovis Canadensis) horn keratin. The horns consist of fibrous keratin tubules extending along the length of the horn and are contained within an amorphous keratin matrix. Samples were tested in the rehydrated (35wt% water) and ambient dry (10wt% water) conditions along the longitudinal and radial directions under tension and compression. Increased moisture content was found to increase ductility and decrease strength, as well as alter the stress state dependent nature of the material. The horn keratin demonstrates a significant strain rate dependence in both tension and compression, and also showed increased energy absorption in the hydrated condition at high strain rates when compared to quasi-static data, with increases of 114% in tension and 192% in compression. Compressive failure occurred by lamellar buckling in the longitudinal orientation followed by shear delamination. Tensile failure in the longitudinal orientation occurred by lamellar delamination combined with tubule pullout and fracture. The structure-property relationships quantified here for bighorn sheep horn keratin can be used to help validate finite element simulations of ram's impacting each other as well as being useful for other analysis regarding horn keratin on other animals. STATEMENT OF SIGNIFICANCE: The horn of the bighorn sheep is an anisotropic composite composed of keratin that is highly sensitive to moisture content. Keratin is also found in many other animals in the form of hooves, claws, beaks, and feathers. Only one previous study contains high rate experimental data, which was performed in the dry condition and only in compression. Considering the bighorn sheep horns' protective role in high speed impacts along with the moisture and strain rate sensitivity, more high strain rate data is needed to fully characterize and model the material. This study provides high strain rate results demonstrating the effects of moisture, anisotropy, and stress state. As a result, the comprehensive data allows modeling efforts to be greatly improved.
Copyright © 2016 Acta Materialia Inc. All rights reserved.

Entities:  

Keywords:  Keratin; Mechanical properties; Sheep horn; Strain rate dependence; Stress state dependence; Structure-property relations

Mesh:

Substances:

Year:  2016        PMID: 27793720     DOI: 10.1016/j.actbio.2016.10.033

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  5 in total

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Authors:  D Arola; S Ghods; C Son; S Murcia; E A Ossa
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2.  Microstructure and mechanical properties of different keratinous horns.

Authors:  Yuchen Zhang; Wei Huang; Cheryl Hayashi; John Gatesy; Joanna McKittrick
Journal:  J R Soc Interface       Date:  2018-06       Impact factor: 4.118

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Authors:  Pablo A Gallina; Sebastián Apesteguía; Juan I Canale; Alejandro Haluza
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4.  The Study of Mechanical Behaviors of Caprinae Horn Sheath under Pendulum Impact.

Authors:  Kang Yang; Nannan Qin; Changgeng Zhou; Bing Wang; Haotian Yu; Haotong Li; Haiyun Yu; Hailiang Deng
Journal:  Polymers (Basel)       Date:  2022-08-11       Impact factor: 4.967

Review 5.  Unconventional animal models for traumatic brain injury and chronic traumatic encephalopathy.

Authors:  Nicole L Ackermans; Merina Varghese; Bridget Wicinski; Joshua Torres; Rita De Gasperi; Dylan Pryor; Gregory A Elder; Miguel A Gama Sosa; Joy S Reidenberg; Terrie M Williams; Patrick R Hof
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  5 in total

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