TL;DR
This paper introduces a novel formulation for coupled magma/mantle dynamics that effectively handles zero melt regions, enabling efficient large-scale 3-D simulations with improved computational performance.
Contribution
The authors develop a new rescaling approach for the compaction pressure, addressing degeneracy issues and enhancing simulation efficiency in magma/mantle models.
Findings
Improved computational efficiency over previous methods.
Effective handling of zero melt fraction regions.
Successful large-scale 3-D modeling of mid-ocean ridges.
Abstract
Many open problems in the Earth sciences can only be understood by modelling the porous flow of melt through a viscously deforming solid rock matrix. However, the system of equations describing this process becomes mathematically degenerate in the limit of vanishing melt fraction. Numerical methods that do not consider this degeneracy or avoid it solely by regularising specific material properties generally become computationally expensive as soon as the melt fraction approaches zero in some part of the domain. Here, we present a new formulation of the equations for coupled magma/mantle dynamics that addresses this problem, and allows it to accurately compute large-scale 3-D magma/mantle dynamics simulations with extensive regions of zero melt fraction. We achieve this by rescaling one of the solution variables, the compaction pressure, which ensures that for vanishing melt fraction,…
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