A stress-based poro-damage phase field model for hydrofracturing of creeping glaciers and ice shelves

08/01/2022
by   T. Clayton, et al.
0

There is a need for computational models capable of predicting meltwater-assisted crevasse growth in glacial ice. Mass loss from glaciers and ice sheets is the largest contributor to sea-level rise and iceberg calving due to hydrofracture is one of the most prominent yet less understood glacial mass loss processes. To overcome the limitations of empirical and analytical approaches, we here propose a new phase field-based computational framework to simulate crevasse growth in both grounded ice sheets and floating ice shelves. The model incorporates the three elements needed to mechanistically simulate hydrofracture of surface and basal crevasses: (i) a constitutive description incorporating the non-linear viscous rheology of ice, (ii) a phase field formulation capable of capturing cracking phenomena of arbitrary complexity, such as 3D crevasse interaction, and (iii) a poro-damage representation to account for the role of meltwater pressure on crevasse growth. A stress-based phase field model is adopted to reduce the length-scale sensitivity, as needed to tackle the large scales of iceberg calving, and to adequately predict crevasse growth in tensile stress regions of incompressible solids. The potential of the computational framework presented is demonstrated by addressing a number of 2D and 3D case studies, involving single and multiple crevasses, and considering both grounded and floating conditions. The computational framework presented opens new horizons in the modelling of iceberg calving and, due to its ability to incorporate incompressible behaviour, can be readily incorporated into numerical ice sheet models for projecting sea-level rise.

READ FULL TEXT
research
12/15/2021

Modelling fatigue crack growth in Shape Memory Alloys

We present a phase field-based framework for modelling fatigue damage in...
research
03/02/2022

Micromechanics-based phase field fracture modelling of CNT composites

We present a novel micromechanics-based phase field approach to model cr...
research
04/03/2023

An FFT-based crystal plasticity phase-field model for micromechanical fatigue cracking based on the stored energy density

A novel FFT-based phase-field fracture framework for modelling fatigue c...
research
08/30/2021

A phase field model for hydrogen-assisted fatigue

We present a new theoretical and numerical phase field-based formulation...
research
06/25/2022

A coupled phase field formulation for modelling fatigue cracking in lithium-ion battery electrode particles

Electrode particle cracking is one of the main phenomena driving battery...
research
04/22/2023

Biomimetic IGA neuron growth modeling with neurite morphometric features and CNN-based prediction

Neuron growth is a complex, multi-stage process that develops sophistica...
research
07/28/2021

A mechanism-based multi-trap phase field model for hydrogen assisted fracture

We present a new mechanistic, phase field-based formulation for predicti...

Please sign up or login with your details

Forgot password? Click here to reset