The Boussinesq approximation requires . The reference mass density can then be used in inertia, while the small density excess is retained in buoyancy. Dilute particle volume fraction alone does not suffice if is exceptionally large. Define , so the reduced gravity is .
The shallow water equations require depth small compared with the horizontal evolution scale, weak vertical acceleration and approximately hydrostatic pressure. Here the ambient is deep and quiescent, so its leading contribution is a hydrostatic reference pressure; the excess pressure in the layer is . The model also needs nearly uniform streamwise velocity across the section and the stated absence of secondary circulation. The advancing gravity current nose is a separate region where these assumptions can fail.
A nearly uniform particle volume fraction can be maintained by turbulent mixing with eddy diffusivity , provided and the mixing time is short compared with horizontal advection and bulk evolution. Equivalently, keeps the bulk settling-induced gradient small. The particles should respond rapidly enough to follow the mixing motions. A thin boundary layer adjacent to the absorbing bed or walls need not be well mixed.
Uniform bulk concentration does not imply zero sedimentation. The relative downward particle velocity still supplies a particle deposition flux of approximately to an absorbing boundary. Mixing redistributes the remaining particles and maintains the bulk concentration profile while its overall level decreases; it need not suspend every particle indefinitely. Deposition requires negligible resuspension in the model.

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