The objective of Volume II is to show how asymptotic methods, with the thickness as the small
parameter, indeed provide a powerful means of justifying two-dimensional plate theories. More specifically, without any recourse to any a priori assumptions of a geometrical or mechanical nature, it is shown that in the linear case, the three-dimensional displacements, once properly scaled, converge in H1 towards a limit that satisfies the well-known two-dimensional equations of the linear Kirchhoff-Love theory; the convergence of stress is also established.
In the nonlinear case, again after ad hoc scalings have been performed, it is shown that the leading term of a formal asymptotic expansion of the three-dimensional solution satisfies well-known two-dimensional equations, such as those of the nonlinear Kirchhoff-Love theory, or the von Kármán equations. Special attention is also given to the first convergence result obtained in this case, which leads to two-dimensional large deformation, frame-indifferent, nonlinear membrane theories. It is also demonstrated that asymptotic methods can likewise be used for justifying other lower-dimensional equations of elastic shallow shells, and the coupled pluri-dimensional equations of elastic multi-structures, i.e., structures with junctions. In each case, the existence, uniqueness or multiplicity, and regularity of solutions to the limit equations obtained in this fashion are also studied.
| ISBN: | 9780444825704 |
| Publication date: | 22nd July 1997 |
| Author: | Philippe G Ciarlet |
| Publisher: | North Holland an imprint of Elsevier Science |
| Format: | Hardback |
| Pagination: | 497 pages |
| Series: | Studies in Mathematics and Its Applications |
| Genres: |
Geometry Differential calculus and equations Algebra Mechanical engineering |
The objective of Volume II is to show how asymptotic methods, with the thickness as the small parameter, indeed provide a powerful means of justifying two-dimensional plate theories. More specifically, without any recourse to any a priori assumptions of a geometrical or mechanical nature, it is shown that in the linear case, the three-dimensional displacements, once properly scaled, converge in H1 towards a limit that satisfies the well-known two-dimensional equations of the linear Kirchhoff-Love theory; the convergence of stress is also established.In the nonlinear case, again after ad hoc scalings have been performed, it is shown that the leading term of a formal asymptotic expansion of the three-dimensional solution satisfies well-known two-dimensional equations, such as those of the nonlinear Kirchhoff-Love theory, or the von Kármán equations.
Mathematical Elasticity features in the following genres: Geometry, Differential calculus and equations, Algebra, Mechanical engineering
Paperback, Hardback. Not Available.
Mathematical Elasticity was written by Philippe G Ciarlet and published by North Holland an imprint of Elsevier Science
Mathematical Elasticity has 497 pages
Yes it is part of Studies in Mathematics and Its Applications series