Difference between revisions of "Conservation Laws and Boundary Conditions"
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− | The Ocean Environment | + | ==The Ocean Environment |
− | Non Linear Free-surface Condition | + | ===Non Linear Free-surface Condition |
− | (X,Y,Z): Earth Fixed Coordinate System | + | <math>\bullet (X,Y,Z)</math>: Earth Fixed Coordinate System \br |
− | X: Fixed Eulerian Vector | + | <math>\vec X</math>: Fixed Eulerian Vector |
− | + | <math>\vec V</math>: Flow Velocity Vector at <math>\vec X</math> | |
− | : Free Surface Elevation | + | <math>\zeta</math>: Free Surface Elevation |
Assume ideal fluid (No shear stresses) and irrotational flow: | Assume ideal fluid (No shear stresses) and irrotational flow: | ||
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<center><math> \frac{\partial^2 \Phi}{\partial X^2} + \frac{\partial^2\Phi}{\partial Y^2} + \frac{\partial^2\Phi}{\partial Z^2} = 0, \quad \mbox{Laplace Equation} </math></center> | <center><math> \frac{\partial^2 \Phi}{\partial X^2} + \frac{\partial^2\Phi}{\partial Y^2} + \frac{\partial^2\Phi}{\partial Z^2} = 0, \quad \mbox{Laplace Equation} </math></center> | ||
+ | |||
+ | <math>\bullet</math> Conservation of Linear momentum. Euler's Equation in the Absence of Viscosity. |
Revision as of 05:27, 17 January 2007
==The Ocean Environment
===Non Linear Free-surface Condition
[math]\displaystyle{ \bullet (X,Y,Z) }[/math]: Earth Fixed Coordinate System \br [math]\displaystyle{ \vec X }[/math]: Fixed Eulerian Vector [math]\displaystyle{ \vec V }[/math]: Flow Velocity Vector at [math]\displaystyle{ \vec X }[/math] [math]\displaystyle{ \zeta }[/math]: Free Surface Elevation
Assume ideal fluid (No shear stresses) and irrotational flow:
Let:
Where [math]\displaystyle{ \Phi(\overrightarrow{X},t) }[/math] is the velocity potential assumed sufficiently continuously differentiable.
Potential flow model of surface wave propagation and wave-body interactions very accurate. Few important exceptions will be noted.
Conservation of mass:
or
[math]\displaystyle{ \bullet }[/math] Conservation of Linear momentum. Euler's Equation in the Absence of Viscosity.