noncompressible elastic material - traduzione in russo
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noncompressible elastic material - traduzione in russo

MATERIAL FOR WHICH THE STRESS–STRAIN RELATIONSHIP DERIVES FROM A STRAIN ENERGY DENSITY FUNCTION
Green elastic material; Green elastic; Hyperelasticity; St. Venant-Kirchhoff; Hyperelastic solid; Saint Venant-Kirchhoff model

noncompressible elastic material      
несжимаемый упругий материал
elastic tissue         
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  • Thick elastic fibers from the [[visceral pleura]] (outer lining) of the human [[lung]]
EXTRACELLULAR MATRIX PART THAT CONSISTS OF AN INSOLUBLE CORE OF POLYMERIZED TROPOELASTIN MONOMERS AND A SURROUNDING MANTLE OF MICROFIBRILS
Elastic Fibre; Yellow elastic fibers; Elastic connective tissue; Elastic tissue; Elastic fibers; Elastic Fibers; Elastic fibres; Elastic fibre; Yellow fibre; Elastogenesis
[анат.] эластичная соединительная ткань
elastic tissue         
  • 100px
  • 190px
  • 190px
  • 190px
  • Thick elastic fibers from the [[visceral pleura]] (outer lining) of the human [[lung]]
EXTRACELLULAR MATRIX PART THAT CONSISTS OF AN INSOLUBLE CORE OF POLYMERIZED TROPOELASTIN MONOMERS AND A SURROUNDING MANTLE OF MICROFIBRILS
Elastic Fibre; Yellow elastic fibers; Elastic connective tissue; Elastic tissue; Elastic fibers; Elastic Fibers; Elastic fibres; Elastic fibre; Yellow fibre; Elastogenesis

общая лексика

эластическая соединительная ткань

Definizione

Elastically
·adv In an elastic manner; by an elastic power; with a spring.

Wikipedia

Hyperelastic material

A hyperelastic or Green elastic material is a type of constitutive model for ideally elastic material for which the stress–strain relationship derives from a strain energy density function. The hyperelastic material is a special case of a Cauchy elastic material.

For many materials, linear elastic models do not accurately describe the observed material behaviour. The most common example of this kind of material is rubber, whose stress-strain relationship can be defined as non-linearly elastic, isotropic and incompressible. Hyperelasticity provides a means of modeling the stress–strain behavior of such materials. The behavior of unfilled, vulcanized elastomers often conforms closely to the hyperelastic ideal. Filled elastomers and biological tissues are also often modeled via the hyperelastic idealization.

Ronald Rivlin and Melvin Mooney developed the first hyperelastic models, the Neo-Hookean and Mooney–Rivlin solids. Many other hyperelastic models have since been developed. Other widely used hyperelastic material models include the Ogden model and the Arruda–Boyce model.

Traduzione di &#39noncompressible elastic material&#39 in Russo