Bård Skaflestad 75156cd872 Unconditionally Calculate PI at End of Timestep
This commit ensures that we calculate the well and connection level
per-phase steady-state productivity index (PI) at the end of a
completed time step (triggered from endTimeStep()).

We add a new data member,

    BlackoilWellModel<>::prod_index_calc_

which holds one WellProdIndexCalculator for each of the process'
local wells and a new interface member function

    WellInterface::updateProductivityIndex

which uses a per-well PI calculator to actually compute the PI
values and store those in the WellState.  Implement this member
function for both StandardWell and MultisegmentWell.  Were it not
for 'getMobility' existing only in the derived classes, the two
equal implementations could be merged and moved to the interface.

We also add a new data member to the WellStateFullyImplicitBlackoil
to hold the connection-level PI values.  Finally, remove the
conditional PI calculation from StandardWell's well equation
assembly routine.
2020-11-24 21:53:58 +01:00
2020-11-17 18:07:33 +01:00
2020-02-28 14:42:16 +01:00
2020-04-22 13:22:54 +02:00
2015-11-11 16:50:25 +01:00
2020-11-06 08:59:27 +01:00

Open Porous Media Simulators and Automatic Differentiation Library

CONTENT

opm-simulators contains simulator programs for porous media flow. The most important (and tested) part is the Flow reservoir simulator, which is a fully implicit black-oil simulator that also supports solvent and polymer options. It is built using automatic differentiation, using the local AD class Evaluation from opm-material.

LICENSE

The library is distributed under the GNU General Public License, version 3 or later (GPLv3+).

PLATFORMS

The opm-simulators module is designed to run on Linux platforms. It is also regularly run on Mac OS X. No efforts have been made to ensure that the code will compile and run on windows platforms.

REQUIREMENTS

opm-simulators requires several other OPM modules, see http://opm-project.org/?page_id=274. In addition, opm-simulators requires Dune and some other software to be available, for details see https://opm-project.org/?page_id=239.

DOWNLOADING

For a read-only download: git clone git://github.com/OPM/opm-simulators.git

If you want to contribute, fork OPM/opm-simulators on github.

BUILDING

See build instructions at http://opm-project.org/?page_id=36

DOCUMENTATION

Efforts have been made to document the code with Doxygen. In order to build the documentation, enter the command

make doc

in the topmost directory.

REPORTING ISSUES

Issues can be reported in the Git issue tracker online at:

https://github.com/OPM/opm-simulators/issues

To help diagnose build errors, please provide a link to a build log together with the issue description.

You can capture such a log from the build using the `script' utility, e.g.:

LOGFILE=$(date +%Y%m%d-%H%M-)build.log ;
cmake -E cmake_echo_color --cyan --bold "Log file: $LOGFILE" ;
script -q $LOGFILE -c 'cmake ../opm-core -DCMAKE_BUILD_TYPE=Debug' &&
script -q $LOGFILE -a -c 'ionice nice make -j 4 -l 3' ||
cat CMakeCache.txt CMakeFiles/CMake*.log >> $LOGFILE

The resulting file can be uploaded to for instance gist.github.com.

Description
Simulator programs and utilities for automatic differentiation.
Readme 70 MiB
Languages
C++ 78.3%
ECL 17.7%
CMake 1.8%
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