Abstract
Geophysical mass flows - debris flows, avalanches, landslides - can contain O(106-1010) m3 or more of material, often a mixture of soil and rocks with a significant quantity of interstitial fluid. These flows can be tens of meters in depth and hundreds of meters in length. The range of scales and the rheology of this mixture presents significant modelling and computational challenges. This paper describes a depth-averaged 'thin layer' model of geophysical mass flows containing a mixture of solid material and fluid. The model is derived from a 'two-phase' or 'two-fluid' system of equations commonly used in engineering research. Phenomenological modelling and depth averaging combine to yield a tractable set of equations, a hyperbolic system that describes the motion of the two constituent phases. If the fluid inertia is small, a reduced model system that is easier to solve may be derived.
| Original language | English |
|---|---|
| Pages (from-to) | 1573-1601 |
| Number of pages | 29 |
| Journal | Philosophical transactions. Series A, Mathematical, physical, and engineering sciences |
| Volume | 363 |
| Issue number | 1832 |
| DOIs | |
| State | Published - Jul 15 2005 |
Keywords
- Avalanche flow
- Debris flow
- Mixture theory
- Two-phase flows
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