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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.
Logarithmic Differentiation01:28

Logarithmic Differentiation

When a car’s weight and driving forces act on a tire, they impose an external load on the rubber material. This load is resisted internally by forces distributed throughout the tire structure, which are defined as stress. The resulting deformation of the rubber due to this stress is quantified as strain. The relationship between stress and strain governs how the tire deforms under load and is central to understanding its mechanical response during operation.Rubber exhibits a nonlinear...
Classification and Mechanical Properties of Synthetic Polymers01:28

Classification and Mechanical Properties of Synthetic Polymers

Synthetic polymers are classified as elastomers, fibers, or plastics based on their crystallinity. Crystallinity, the degree of long-range order in the solid state, influences the mechanical properties (stretching or contracting) of elastomers. Elastomers are flexible polymers that can expand or contract easily upon the application of an external force. They have numerous crosslinks that pull them back into their original shape when stress is removed. Silicones, for instance, are highly elastic...
Poisson's Ratio01:23

Poisson's Ratio

Poisson's ratio is a material property that indicates their stress response. It explains the connection between the elongation or compression a material undergoes in the direction of an applied force and the contraction or expansion it experiences perpendicular to that force. When a slender bar is loaded axially, it stretches in the direction of the force and contracts laterally. Poisson's ratio is the negative ratio of this lateral contraction to the axial elongation. The negative sign ensures...
Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity01:15

Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity

Deformation occurs in axial and transverse directions when an axial load is applied to a slender bar. This deformation impacts the cubic element within the bar, transforming it into either a rectangular parallelepiped or a rhombus, contingent on its orientation. This transformation process induces shearing strain. Axial loading elicits both shearing and normal strains. Applying an axial load instigates equal normal and shearing stresses on elements oriented at a 45° angle to the load axis.
Plastic Deformation in Circular Shafts01:20

Plastic Deformation in Circular Shafts

When materials are subjected to forces that surpass their yield strength, they undergo a process known as plastic deformation. This results in a permanent alteration or strain in their structure. This concept can be specifically applied to circular shafts, where the deformation leads to a change in its shape. The precise evaluation of this plastic deformation requires understanding the stress distribution within the circular shaft, which is achieved by calculating the maximum shearing stress in...

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Updated: May 30, 2026

The Preparation and Properties of Thermo-reversibly Cross-linked Rubber Via Diels-Alder Chemistry
07:02

The Preparation and Properties of Thermo-reversibly Cross-linked Rubber Via Diels-Alder Chemistry

Published on: August 25, 2016

Radiation-induced mechanical property changes in filled rubber.

A Maiti1, T H Weisgraber, R H Gee

  • 1Lawrence Livermore National Laboratory, Livermore, CA 94550, USA. amaiti@llnl.gov

Physical Review. E, Statistical, Nonlinear, and Soft Matter Physics
|July 30, 2011
PubMed
Summary

This study investigates the mechanical properties of filled elastomers under radiation and strain. Radiation causes hardening, while strain induces softening, with a model explaining the combined effects on elastic modulus.

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Area of Science:

  • Polymer Science
  • Materials Science
  • Radiation Physics

Background:

  • Previous work characterized radiation effects on elastomer cross-linking and molecular weight.
  • Understanding material behavior under combined mechanical and radiation stress is crucial for applications.

Purpose of the Study:

  • To measure the mechanical response of filled elastomers exposed to radiation while under finite strain.
  • To investigate the interplay between radiation-induced hardening and strain-induced softening (Mullins effect).
  • To develop a model explaining the observed elastic modulus dependence on radiation, strain, and history.

Main Methods:

  • Mechanical response measurements of filled elastomers.
  • Controlled exposure to radiation under finite, non-zero strain.
  • Application of Tobolsky's two-stage independent network theory.

Main Results:

  • Observed hysteretic behavior and material softening characteristic of the Mullins effect.
  • Observed radiation-induced material hardening.
  • Elastic modulus is a function of radiation dosage, strain level, and strain-cycling history.

Conclusions:

  • A model based on Tobolsky's theory quantitatively interprets the elastic modulus under combined radiation and strain.
  • The model successfully explains the dependence of elastic modulus on radiation dosage, strain, and material history.