Previously, we exported an unordered map containing all names of
wells that are not present in the local part of the grid.
As we envision to have wells that are distributed across multiple
processors, this information does not seem to be enough. We need
to be able to set up communication for each well. To do this we need
to find out who handles perforations of each well.
We now export a full list of well name together with a boolean
indicating whether it perforates local cells (vector of pair of string
and bool).
FiedlPropsManager::keys() list the FieldProperties needed by the
TransCalculator, but these cannot be queried the normal way as this
raises exceptions and results in a deadlock. Hence we use the new
funtionality to get also the unsupported ones, by passing true to
get_double_field_data.
As the ErrorGuard also dumps warnings we now always dump
it (previously only on error) to get these messages in the
console.
If there are error encountered, we log a meaningful error
message (the real cause was missing previously) and do a
graceful exit after MPI_Finalize.
For PINCH(5)==ALL, we take the minimum of MULTZ+ and ignore MULTZ-.
We also prepare for PINCH(5)==TOP taking only the toplevel MULTZ+
value.
For non-vertical directions we use both MULTZ+ and MULTZ-
We used a method isGlobalIdxOnThisRank to determine whether to write
an entry for a summary keyword (like BPR). Unfortunately, this did
exactly what the name suggested, but we actually passed a cartesian
index to it. That meant that a lower cartesian index might have found on
many processes (with different cartesian index and hence resulting in
wrong values), while higher for ones no process would have been found
with it (resulting in writing zeros).
With this commit we store a sorted list of cartesian indices and query
that in the renamed and restructured function isCartesianidxOnThisRank.
Most probably this broke during refactoring.
Closes#2665
This will process the same faces in serial and parallel.
Hence it make the silent assumption that we only process faces
from low cartesian index to high cartesian index hold again.
This should fix PINCH MULTZ ALL in parallel.
These codes are reimplemented in the ebos simulator and should
be reused, instead. This commit factilitates this and starts
reusing the logging setup code in ebos. Hence reduces code duplication.
Before this we had a set of external*_ variabales (unique_ptrs), a set of
internal_*_ variables (unique_ptrs) and another set of pointers that
point to the pointers actually used. That seemed a bit much. With this
commit skip the internal variables and use unique_ptrs for all
others. In the constructor either the external*_ gets moved or the
objects are directly created as unique_ptrs.
We resort to consistently use unique_ptrs in EclBaseVanguard for
the data read from ECL files or set externally. This means that
during the simulation EclBaseVanguard owns this data and not Main
or the ebos setup functions. This ownership transfer becomes
transparent due to std::move.
This came up when trying to fix the parallel runs of ebos and during
that removing some code duplication.
That was removed before in lieu of the fraction of cells that
violate CNV.
This change should make the results as before unless somebody changes
maxStrictIter or RelaxedMaxPvFraction
We hold a shared pointer to the umpfack solver that gets reset
whenever the matrix is changed. When applying the decomposition
we will be recomputed if the solver pointer is null.
Previously we used relaxed tolerance once a certain number of Newton
steps was exceeded. Now we check for all cells violating CNV locally
and if their pore volume is less than a certaun fraction (default 3%)
we use the relaxed tolerance (default: 1e9)
Original idea originated from Norce.
With multisegment wells we allocate WellContributions::hx and hy with
`CudaMallocHost`. Yet we tried to deallocate them with
`delete[]`. This caused segementation faults e.g. for
model1/MSW_MODEL_1. Now we use `CudaFreeHost` for freeing if we used
CUDA.
Closes#2719
Up to now We always assumed that cardDims[i]>1 holds. which it does for most
of the cases. But when e.g. simulating a vertical stack of 5 cells
flow would report the transmissibilities in the Z direction in TRANX
and output TRANZ as zero. Similar problems should be there for 2D grids.
With this commit we actually check whether there can be neighbours in
the X and Z direction to prevent this behavior.
Previously only the master process was aware of the error and flow did
deadlock in parallel runs if there were parser errors
encountered. With this commit all processes are made aware of the
problem and flow aborts with an error code.
boost::property_try::get without a defaults throws an exception. As
result the nonlinear solver and timestepper think that there is a
problem with solving and chop the timnestep until they give up.
This commit fixes this by using a default and falling back to the
command line specified value for the default solvers.