Folder in cimlib tests
cimlib\tests\modele\Binary_DirectionalSolidification\Temperature_gsTabule
Note:
Changes to do to transform the test case to an Exercice and obtain outputs corresponding to curves below:
In Maillage.mtc: change the value of TemperatureInitialeC from 620 to 800
In Increment.mtc: change the value of TempsFin from 1.1 to 1000
Results of reference for the long simulation are available in the test folder
Explanation
Table of caracteristics of the model
Temperature_gsTabule | ||||
---|---|---|---|---|
Material | ||||
Structure | Dendrite | No Envelope | ✔ | |
Implicite Envelope (Mean field) | ||||
Explicite envelope (CA) | No parabola | |||
Explicite envelope (CA) | Explicite parabola | |||
Interdendritic eutectic | Implicite (no dedicated structure in the code) | |||
Facetted full grain | ||||
Non-facetted full grain | ||||
Nucleation | Volume | |||
Surface | Implicite (No nucleation process in the code) | |||
Single grain | ||||
Twin | ||||
Transfer | ||||
Heat Transfer | Heat solver | NonLinearTsolver | ||
Microsegregation solver | ISMicrosegregation | |||
Convective Transfer | ||||
Chemical Transfer | ||||
Mass Transfer |
In this model, the solid fraction is linked to the temperature through a tabulation. For temperatures is the mushy zone, this tabulation corresponds to the Gulliver-Scheil model ($f_S = 1- \left(\frac{T_M-T}{T_M-T_L}\right)^{1/(k-1)} $ where $k$ is the segregation coefficient; $T_M$ is the melting temperature and $T_L$ is the liquidus temperature corresponding to the nominal composition). For temperatures under the eutectic temperature, the solid fraction is equal to $1$.
Outputs
In the simulation, the temperature field and the solid fraction field are recorded on sensors which are placed every 2 cm along the z direction. In the following figures, solid lines correspond to outputs of the simulation on these sensors and dotted lines correspond to results of the fornt tracking model presented on page Front tracking 1D (for interfaces with low undercoolings).