A formula is derived for the stress intensity factor at the rim of a penny-shaped crack in an infinite solid in which there is an axisymmetric distributing of body forces acting in a direction normal to the original crack surfaces. An expression for the surface displacement of the crack is also give
Computation of shape and drag of a deforming elastic body under fluid dynamic force
โ Scribed by Tomohisa Hashimoto; Koji Morinishi; Nobuyuki Satofuka
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 632 KB
- Volume
- 38
- Category
- Article
- ISSN
- 0045-7930
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โฆ Synopsis
This paper describes numerical simulations for the shape and its drag of an elastic body deforming under the fluid dynamic force. The simulations were carried out by coupling the Navier-Stokes equations and the equations of motion of the elastic body. The equations of motion are formulated for an elastic shell model which is composed of material particles connected with elastic springs and dampers. The relation between deforming elastic body shape in response to the fluid dynamic force and its drag force was investigated under the constraint of constant volume and fixed center of gravity of the elastic body for incompressible and compressible supersonic flows. In these simulations, an initial shape of the elastic body is a circular cylinder and starts deformation under the fluid dynamic force.
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