Mechanics of Biological Systems and Materials, Volume 7: by Francois Barthelat, Chad Korach, Pablo Zavattieri, Barton C.
By Francois Barthelat, Chad Korach, Pablo Zavattieri, Barton C. Prorok, K. Jane Grande-Allen
Mechanics of organic platforms and Materials, quantity 7: complaints of the 2014 Annual convention on Experimental and utilized Mechanics, the 7th quantity of 8 from the convention, brings jointly contributions to this significant sector of study and engineering. the gathering offers early findings and case reports on a variety of parts, together with:
Soft Tissues Mechanics
Natural fabrics & Bio-Inspiration
Read or Download Mechanics of Biological Systems and Materials, Volume 7: Proceedings of the 2014 Annual Conference on Experimental and Applied Mechanics PDF
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Additional resources for Mechanics of Biological Systems and Materials, Volume 7: Proceedings of the 2014 Annual Conference on Experimental and Applied Mechanics
The pattern search optimization process was used to find out the best fit parameters of viscoelastic mechanical model of cervine enamel under bending load. 3 Results and Discussion The force-time curves of cervine enamel specimens under ramp-hold three point bending tests are shown in Fig. 4a and the average long-term elastic modulus computed from the force–deflection relation at the end of ramp-hold experiments (200 s) is about 19 GPa (n ¼ 3). This value is lower than the elastic modulus of cervine enamel reported by using nanoindenter.
12] performed experiments on four types of soft tissue: stomach, liver, heart and lung. The tissues were put under hydrostatic compression and simple shear test to get the dynamic response. 34 MPa. In terms of shearing, the liver tissue was found to be stiffest while the lung tissue was the softest. However, the dynamic bulk moduli vary from 150 to 500 MPa, the stomach being the stiffest and the lung again was the softest. In addition, it is stated that these tissues do not possess linear elastic behaviour and the results are just an approximation.
S. Liou Abstract This work investigated the time dependent mechanical properties of cervine enamel. Three point bending tests were used to investigate mechanical properties of cervine enamel. The specimens of enamel were prepared from cervine incisors and the ramp-hold three point bending tests were performed to acquire the force-time and displacement-time relation of enamel specimens under three point bending load. The finite element analysis of specimen under three point bending load was performed by applying the three point bending ramp-hold displacement-time boundary condition to the plane strain finite element model of specimen and the reaction force of the loading tip was recorded.