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Plastic Behavior01:21

Plastic Behavior

A material's elastic behavior is characterized by the disappearance of stress once the load is removed, allowing the material to return to its original state. However, when stress surpasses the yield point, yielding commences, marking the onset of plastic deformation or permanent set. This change from elastic to plastic behavior is influenced by the peak stress value and the duration before the load is removed. An intriguing observation occurs when a specimen is loaded, unloaded, and reloaded.
Elastic Strain Energy for Shearing Stresses01:20

Elastic Strain Energy for Shearing Stresses

As discussed in previous lessons, strain energy in a material is the energy stored when it is elastically deformed, a concept crucial in materials science and mechanical engineering. This energy results from the internal work done against the cohesive forces within the material. When a material undergoes shearing stress and corresponding shearing strain, the strain energy density, which is the energy stored per unit volume, is calculated. Within the elastic limit, where the stress is...
Shearing Strain01:20

Shearing Strain

The shearing strain represents a cubic element's angular change when subjected to shearing stress. This type of stress can transform a cube into an oblique parallelepiped without influencing normal strains. The cubic element experiences a significant transformation when exposed solely to shearing stress. Its shape alters from a perfect cube into a rhomboid, clearly demonstrating the effect of shearing strain. The degree of this strain is considered positive if it reduces the angle between the...
Normal Strain under Axial Loading01:20

Normal Strain under Axial Loading

Normal strain under axial loading is an important concept in the field of mechanics of materials. Axial loading implies the application of a force along the axis of a material, like a column or bar. This force can either compress or stretch the material. In the context of axial loading, normal strain is the deformation experienced by the material in the direction of the loading force. It's calculated as the change in length divided by the original length of the material. This unitless ratio...
Shearing Stress01:18

Shearing Stress

Shearing stress, denoted by the Greek letter tau (τ), is stress caused by forces acting transversely on an object. These forces create internal ones within the entity in the plane where the external forces are applied. The resultant of these internal forces is the shear in the section.
The average shearing stress can be calculated by dividing the shear by the area of the cross-section.
Stress-Strain Diagram - Ductile Materials01:24

Stress-Strain Diagram - Ductile Materials

The stress-strain relationship in ductile materials such as structural steel or aluminium is intricate and progresses through several stages. When a specimen is loaded, it initially exhibits a linear length increase, depicted by a steep straight line on the stress-strain diagram. It indicates the material is elastically deforming and will return to its original shape once unloaded. However, when a critical stress value is reached, plastic deformation begins. This stage sees substantial...

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Related Experiment Video

Updated: May 16, 2026

Imaging of the Microstructural Failure Mechanism in the Human Hip
08:43

Imaging of the Microstructural Failure Mechanism in the Human Hip

Published on: September 29, 2023

Progressive post-yield behavior of human cortical bone in shear.

Xuanliang N Dong1, Qing Luo, Xiaodu Wang

  • 1Department of Health and Kinesiology, The University of Texas at Tyler, Tyler, TX, USA.

Bone
|December 11, 2012
PubMed
Summary

This study investigated human cortical bone

Area of Science:

  • Biomechanics
  • Materials Science
  • Orthopedics

Background:

  • Bone fragility is significantly influenced by post-yield behavior, where most energy dissipation occurs.
  • Previous research explored progressive changes in human cortical bone's post-yield behavior under tension and compression.
  • Limited information exists regarding bone's post-yield behavior specifically in shear loading conditions.

Purpose of the Study:

  • To investigate the progressive changes in the post-yield behavior of human cortical bone under shear loading.
  • To compare shear loading behavior with previously observed behaviors in tension and compression.

Main Methods:

  • Utilized an inclined double notch shear configuration for bone specimen testing.
  • Employed a novel progressive loading protocol to assess post-yield deformation.

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Last Updated: May 16, 2026

Imaging of the Microstructural Failure Mechanism in the Human Hip
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Published on: September 29, 2023

Mouse Lumbar Vertebra Uniaxial Compression Testing with Embedding of the Loading Surface
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Fragility Assessment of Bovine Cortical Bone Using Scratch Tests
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  • Analyzed shear modulus degradation, strain relationships, and viscous responses.
  • Main Results:

    • The shear modulus of bone decreased with applied strain, with a degradation rate approximately 50% lower than in compression and tension.
    • A quasi-linear relationship between plastic and applied strains was observed in shear, mirroring findings in other loading modes.
    • Slight differences in viscous responses (relaxation time constants, stress magnitude) were noted in shear compared to tension and compression.

    Conclusions:

    • The intrinsic mechanisms governing plastic deformation in human cortical bone may be consistent across different loading modes (shear, tension, compression).
    • Shear loading reveals distinct yet comparable post-yield characteristics to other modes, contributing to a comprehensive understanding of bone mechanics.
    • Findings suggest a unified underlying mechanism for bone's plastic deformation, irrespective of the applied load type.