Continuity

or, using the substantive derivative:

For an incompressible fluid,
is constant, hence the velocity field must be divergence-free:

Momentum
(Also known as the Navier-Stokes equation.)

or, using the substantive derivative:

where
is a volumetric force (e.g.
for gravity), and
is the stress tensor.
Another form of the equation, more similar in form to the continuity equation, stresses the fact that the momentum density is conserved. For each of the three Cartesian coordinates
:

In vector form:

The term
is a dyad (direct tensor product).
Stress
The vector quantity Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \nabla \cdot \mathbb {T} }
is the shear stress. For a Newtonian incompressible fluid,
- Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \nabla \mathbb {T} =\mu \nabla ^{2}\mathbf {v} ,}
with
being the (dynamic) viscosity.
For an inviscid fluid, the momentum equation becomes Euler's equation for ideal fluids:
- Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \rho \left({\frac {D\mathbf {v} }{Dt}}\right)=-\nabla p+\mathbf {f} .}
References