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Engineering Elasticity: Elasticity with less Stress and Strain

ISBN-13: 9783031091568 / Angielski / Twarda / 2022 / 271 str.

Humphrey Hardy
Engineering Elasticity: Elasticity with less Stress and Strain Humphrey Hardy 9783031091568 Springer - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Engineering Elasticity: Elasticity with less Stress and Strain

ISBN-13: 9783031091568 / Angielski / Twarda / 2022 / 271 str.

Humphrey Hardy
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This textbook aimed at upper-level undergraduate and graduate engineering students who need to describe the large deformation of elastic materials like soft plastics, rubber, and biological materials.  The classical approaches to finite deformations of elastic materials describe a dozen or more measures of stress and strain.  These classical approaches require an in-depth knowledge of tensor analysis and provide little instruction as to how to relate the derived equations to the materials to be described.  This text, by contrast, introduces only one strain measure and one stress measure.  No tensor analysis is required.  The theory is applied by showing how to measure material properties and to perform computer simulations for both isotropic and anisotropic materials.  The theory can be covered in one chapter for students familiar with Euler-Lagrange techniques, but is also introduced more slowly in several chapters for students not familiar with these techniques.  The connection to linear elasticity is provided along with a comparison of this approach to classical elasticity.

This textbook aimed at upper-level undergraduate and graduate engineering students who need to describe the large deformation of elastic materials like soft plastics, rubber, and biological materials.  The classical approaches to finite deformations of elastic materials describe a dozen or more measures of stress and strain.  These classical approaches require an in-depth knowledge of tensor analysis and provide little instruction as to how to relate the derived equations to the materials to be described.  This text, by contrast, introduces only one strain measure and one stress measure.  No tensor analysis is required.  The theory is applied by showing how to measure material properties and to perform computer simulations for both isotropic and anisotropic materials.  The theory can be covered in one chapter for students familiar with Euler-Lagrange techniques, but is also introduced more slowly in several chapters for students not familiar with these techniques.  The connection to linear elasticity is provided along with a comparison of this approach to classical elasticity.

Kategorie:
Technologie
Kategorie BISAC:
Technology & Engineering > Materials Science - General
Technology & Engineering > Mechanical
Science > Mechanics - General
Wydawca:
Springer
Język:
Angielski
ISBN-13:
9783031091568
Rok wydania:
2022
Dostępne języki:
Ilość stron:
271
Oprawa:
Twarda

Getting ready (mostly review).- Deformations.- Forces.- Force-energy relationships.- Isotropic materials.- Minimizing energy.- Simulations.- Quasi-static simulation examples.- The invariants.- Experiments.- Time dependent simulations.- Anisotropic Materials.- Plot deformation, displacements, and forces.- Euler-Lagrange elasticity.- Linear elasticity.- Classical finite elasticity .- Appendix A Deformation in jig coordinates.- Appendix B Origins of Anisotropic Invariants.- Appendix C Euler-Lagrange equations.- Appendix D Project Ideas.

Dr. Humphrey Hardy is a retired Professional Engineer and Engineering Professor. He has 24 years of industry research in oil industry and 18 years of teaching undergraduate physics to engineering and physics students.



​This textbook aimed at upper-level undergraduate and graduate engineering students who need to describe the large deformation of elastic materials like soft plastics, rubber, and biological materials.  The classical approaches to finite deformations of elastic materials describe a dozen or more measures of stress and strain.  These classical approaches require an in-depth knowledge of tensor analysis and provide little instruction as to how to relate the derived equations to the materials to be described.  This text, by contrast, introduces only one strain measure and one stress measure.  No tensor analysis is required.  The theory is applied by showing how to measure material properties and to perform computer simulations for both isotropic and anisotropic materials.  The theory can be covered in one chapter for students familiar with Euler-Lagrange techniques, but is also introduced more slowly in several chapters for students not familiar with these techniques.  The connection to linear elasticity is provided along with a comparison of this approach to classical elasticity.

  • Explains ably simulation of materials undergoing large deformations
  • Illustrates a simpler mathematical base to build thermodynamic and viscoelastic theories
  • Describes how experimenters can make better numerical descriptions of deformable bodies



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