introvoyz042's picture
Migrated from GitHub
5a600cf verified
Raw History Blame Contribute Delete
45.8 kB
/*---------------------------------------------------------------------------*\
========= |
\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
\\ / O peration | Website: https://openfoam.org
\\ / A nd | Copyright (C) 2011-2026 OpenFOAM Foundation
\\/ M anipulation |
-------------------------------------------------------------------------------
License
This file is part of OpenFOAM.
OpenFOAM is free software: you can redistribute it and/or modify it
under the terms of the GNU General Public License as published by
the Free Software Foundation, either version 3 of the License, or
(at your option) any later version.
OpenFOAM is distributed in the hope that it will be useful, but WITHOUT
ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
for more details.
You should have received a copy of the GNU General Public License
along with OpenFOAM. If not, see <http://www.gnu.org/licenses/>.
\*---------------------------------------------------------------------------*/
#include "fvMesh.H"
#include "volFields.H"
#include "surfaceFields.H"
#include "pointFields.H"
#include "slicedVolFields.H"
#include "slicedSurfaceFields.H"
#include "SubField.H"
#include "demandDrivenData.H"
#include "zonesGenerator.H"
#include "fvMeshLduAddressing.H"
#include "fvMeshTopoChanger.H"
#include "fvMeshDistributor.H"
#include "fvMeshMover.H"
#include "fvMeshStitcher.H"
#include "nonConformalFvPatch.H"
#include "polyFacesFvsPatchLabelField.H"
#include "polyTopoChangeMap.H"
#include "MapFvFields.H"
#include "fvMeshMapper.H"
#include "pointMesh.H"
#include "pointMeshMapper.H"
#include "MapPointField.H"
#include "meshObjects.H"
#include "HashPtrTable.H"
#include "CompactListList.H"
#include "fvcSurfaceIntegrate.H"
#include "fvcReconstruct.H"
#include "surfaceInterpolate.H"
// * * * * * * * * * * * * * * Static Data Members * * * * * * * * * * * * * //
namespace Foam
{
defineTypeNameAndDebug(fvMesh, 0);
}
const Foam::HashSet<Foam::word> Foam::fvMesh::geometryFields
{
"Vc",
"Vc0",
"Vc00",
"Sf",
"magSf",
"Cc",
"Cf",
"meshPhi",
"meshPhi_0"
};
const Foam::HashSet<Foam::word> Foam::fvMesh::curGeometryFields
{
"Vc",
"Sf",
"magSf",
"Cc",
"Cf"
};
// * * * * * * * * * * * * * Private Member Functions * * * * * * * * * * * //
void Foam::fvMesh::clearFvGeomNotOldVol()
{
DebugInFunction << "Clearing current-time FV geometry" << endl;
meshObjects::clearUpto
<
fvMesh,
DeletableMeshObject,
MoveableMeshObject
>(*this);
meshObjects::clearUpto
<
lduMesh,
DeletableMeshObject,
MoveableMeshObject
>(*this);
deleteDemandDrivenData(VPtr_);
deleteDemandDrivenData(SfSlicePtr_);
deleteDemandDrivenData(SfPtr_);
deleteDemandDrivenData(magSfSlicePtr_);
deleteDemandDrivenData(magSfPtr_);
deleteDemandDrivenData(CSlicePtr_);
deleteDemandDrivenData(CPtr_);
deleteDemandDrivenData(CfSlicePtr_);
deleteDemandDrivenData(CfPtr_);
}
void Foam::fvMesh::clearFvGeom()
{
DebugInFunction << "Clearing FV Geometry" << endl;
clearFvGeomNotOldVol();
deleteDemandDrivenData(phiPtr_);
deleteDemandDrivenData(V0Ptr_);
deleteDemandDrivenData(V00Ptr_);
}
void Foam::fvMesh::updateGeomNotOldVol()
{
bool haveV = (VPtr_ != nullptr);
bool haveSf = (SfSlicePtr_ != nullptr || SfPtr_ != nullptr);
bool haveMagSf = (magSfSlicePtr_ != nullptr || magSfPtr_ != nullptr);
bool haveCP = (CSlicePtr_ != nullptr || CPtr_ != nullptr);
bool haveCf = (CfSlicePtr_ != nullptr || CfPtr_ != nullptr);
clearFvGeomNotOldVol();
// Now recreate the fields
if (haveV)
{
(void)V();
}
if (haveSf)
{
(void)Sf();
}
if (haveMagSf)
{
(void)magSf();
}
if (haveCP)
{
(void)C();
}
if (haveCf)
{
(void)Cf();
}
}
void Foam::fvMesh::storeOldTimeFields()
{
storeOldTimeFields<PointField>();
storeOldTimeFields<VolField>();
storeOldTimeFields<SurfaceField>();
}
void Foam::fvMesh::nullOldestTimeFields()
{
nullOldestTimeFields<PointField>();
nullOldestTimeFields<VolField>();
nullOldestTimeFields<SurfaceField>();
}
void Foam::fvMesh::printAllocated() const
{
polyMesh::printAllocated();
Pout<< "fvMesh allocated :" << endl;
if (lduPtr_)
{
Pout<< " Ldu Addressing" << endl;
}
if (polyFacesBfPtr_)
{
Pout<< " Poly-faces boundary field" << endl;
}
if (polyBFacePatchesPtr_)
{
Pout<< " Poly-boundary-face to fv-patch and fv-patch-face map"
<< endl;
}
if (ownerBfPtr_)
{
Pout<< " Owner boundary field" << endl;
}
if (V0Ptr_)
{
Pout<< " Old-time cell volumes field" << endl;
}
if (V00Ptr_)
{
Pout<< " Old-old-time cell volumes field" << endl;
}
if (SfPtr_)
{
Pout<< " Non-sliced face areas field" << endl;
}
if (magSfPtr_)
{
Pout<< " Non-sliced face area magnitudes field" << endl;
}
if (CPtr_)
{
Pout<< " Non-sliced cell centres field" << endl;
}
if (CfPtr_)
{
Pout<< " Non-sliced face centres field" << endl;
}
if (phiPtr_)
{
Pout<< " Mesh flux field" << endl;
}
surfaceInterpolation::printAllocated();
}
void Foam::fvMesh::clearGeom()
{
DebugInFunction << "Clearing geometry" << endl;
clearFvGeom();
polyMesh::clearGeom();
}
void Foam::fvMesh::clearAddressing(const bool isMeshUpdate)
{
DebugInFunction << "isMeshUpdate: " << isMeshUpdate << endl;
if (isMeshUpdate)
{
// Part of a mesh update. Keep meshObjects that have an topoChange
// callback
meshObjects::clearUpto
<
fvMesh,
DeletableMeshObject,
TopoChangeableMeshObject
>
(
*this
);
meshObjects::clearUpto
<
lduMesh,
DeletableMeshObject,
TopoChangeableMeshObject
>
(
*this
);
}
else
{
meshObjects::clear<fvMesh, DeletableMeshObject>(*this);
meshObjects::clear<lduMesh, DeletableMeshObject>(*this);
}
deleteDemandDrivenData(lduPtr_);
deleteDemandDrivenData(polyFacesBfIOPtr_);
deleteDemandDrivenData(polyFacesBfPtr_);
deleteDemandDrivenData(polyBFaceOffsetsPtr_);
deleteDemandDrivenData(polyBFaceOffsetPatchesPtr_);
deleteDemandDrivenData(polyBFaceOffsetPatchFacesPtr_);
deleteDemandDrivenData(polyBFacePatchesPtr_);
deleteDemandDrivenData(polyBFacePatchFacesPtr_);
deleteDemandDrivenData(ownerBfPtr_);
}
void Foam::fvMesh::clearOut()
{
clearFvGeom();
surfaceInterpolation::clearOut();
clearAddressing();
polyMesh::clearOut();
}
Foam::wordList Foam::fvMesh::polyFacesPatchTypes() const
{
wordList wantedPatchTypes
(
boundary().size(),
polyFacesFvsPatchLabelField::typeName
);
forAll(boundary(), patchi)
{
const fvPatch& fvp = boundary()[patchi];
if (isA<nonConformalFvPatch>(fvp))
{
wantedPatchTypes[patchi] =
refCast<const nonConformalFvPatch>(fvp).polyFacesType();
}
}
return wantedPatchTypes;
}
Foam::surfaceLabelField::Boundary& Foam::fvMesh::polyFacesBfRef()
{
if (!polyFacesBfPtr_)
{
polyFacesBf();
}
setPolyFacesBfInstance(time().name());
return *polyFacesBfPtr_;
}
// * * * * * * * * * * * * * * * * Constructors * * * * * * * * * * * * * * //
Foam::fvMesh::fvMesh
(
const IOobject& io,
const bool doPost
// const bool doZones
)
:
polyMesh(io),
surfaceMesh(*this),
surfaceInterpolation(*this),
boundary_(*this, poly().boundary()),
stitcher_(nullptr),
topoChanger_(nullptr),
distributor_(nullptr),
mover_(nullptr),
lduPtr_(nullptr),
polyFacesBfIOPtr_(nullptr),
polyFacesBfPtr_(nullptr),
polyBFaceOffsetsPtr_(nullptr),
polyBFaceOffsetPatchesPtr_(nullptr),
polyBFaceOffsetPatchFacesPtr_(nullptr),
polyBFacePatchesPtr_(nullptr),
polyBFacePatchFacesPtr_(nullptr),
ownerBfPtr_(nullptr),
curTimeIndex_(time().timeIndex()),
VPtr_(nullptr),
V0Ptr_(nullptr),
V00Ptr_(nullptr),
SfSlicePtr_(nullptr),
SfPtr_(nullptr),
magSfSlicePtr_(nullptr),
magSfPtr_(nullptr),
CSlicePtr_(nullptr),
CPtr_(nullptr),
CfSlicePtr_(nullptr),
CfPtr_(nullptr),
phiPtr_(nullptr)
{
DebugInFunction << "Constructing fvMesh from IOobject" << endl;
if (doPost)
{
postConstruct(true, true, stitchType::geometric);
}
}
Foam::fvMesh::fvMesh
(
const IOobject& io,
pointField&& points,
const cellShapeList& shapes,
const faceListList& boundaryFaces,
const wordList& boundaryPatchNames,
const PtrList<dictionary>& boundaryDicts,
const word& defaultBoundaryPatchName,
const word& defaultBoundaryPatchType,
const bool syncPar
)
:
polyMesh
(
io,
std::move(points),
shapes,
boundaryFaces,
boundaryPatchNames,
boundaryDicts,
defaultBoundaryPatchName,
defaultBoundaryPatchType,
syncPar
),
surfaceMesh(*this),
surfaceInterpolation(*this),
boundary_(*this, poly().boundary()),
stitcher_(nullptr),
topoChanger_(nullptr),
distributor_(nullptr),
mover_(nullptr),
lduPtr_(nullptr),
polyFacesBfIOPtr_(nullptr),
polyFacesBfPtr_(nullptr),
polyBFaceOffsetsPtr_(nullptr),
polyBFaceOffsetPatchesPtr_(nullptr),
polyBFaceOffsetPatchFacesPtr_(nullptr),
polyBFacePatchesPtr_(nullptr),
polyBFacePatchFacesPtr_(nullptr),
ownerBfPtr_(nullptr),
curTimeIndex_(time().timeIndex()),
VPtr_(nullptr),
V0Ptr_(nullptr),
V00Ptr_(nullptr),
SfSlicePtr_(nullptr),
SfPtr_(nullptr),
magSfSlicePtr_(nullptr),
magSfPtr_(nullptr),
CSlicePtr_(nullptr),
CPtr_(nullptr),
CfSlicePtr_(nullptr),
CfPtr_(nullptr),
phiPtr_(nullptr)
{
DebugInFunction << "Constructing fvMesh from shapes" << endl;
}
Foam::fvMesh::fvMesh
(
const IOobject& io,
pointField&& points,
faceList&& faces,
labelList&& allOwner,
labelList&& allNeighbour,
const bool syncPar
)
:
polyMesh
(
io,
std::move(points),
std::move(faces),
std::move(allOwner),
std::move(allNeighbour),
syncPar
),
surfaceMesh(*this),
surfaceInterpolation(*this),
boundary_(*this, poly().boundary()),
stitcher_(nullptr),
topoChanger_(nullptr),
distributor_(nullptr),
mover_(nullptr),
lduPtr_(nullptr),
polyFacesBfIOPtr_(nullptr),
polyFacesBfPtr_(nullptr),
polyBFaceOffsetsPtr_(nullptr),
polyBFaceOffsetPatchesPtr_(nullptr),
polyBFaceOffsetPatchFacesPtr_(nullptr),
polyBFacePatchesPtr_(nullptr),
polyBFacePatchFacesPtr_(nullptr),
ownerBfPtr_(nullptr),
curTimeIndex_(time().timeIndex()),
VPtr_(nullptr),
V0Ptr_(nullptr),
V00Ptr_(nullptr),
SfSlicePtr_(nullptr),
SfPtr_(nullptr),
magSfSlicePtr_(nullptr),
magSfPtr_(nullptr),
CSlicePtr_(nullptr),
CPtr_(nullptr),
CfSlicePtr_(nullptr),
CfPtr_(nullptr),
phiPtr_(nullptr)
{
DebugInFunction << "Constructing fvMesh from components" << endl;
}
Foam::fvMesh::fvMesh
(
const IOobject& io,
pointField&& points,
faceList&& faces,
cellList&& cells,
const bool syncPar
)
:
polyMesh
(
io,
std::move(points),
std::move(faces),
std::move(cells),
syncPar
),
surfaceMesh(*this),
surfaceInterpolation(*this),
boundary_(*this),
stitcher_(nullptr),
topoChanger_(nullptr),
distributor_(nullptr),
mover_(nullptr),
lduPtr_(nullptr),
polyFacesBfIOPtr_(nullptr),
polyFacesBfPtr_(nullptr),
polyBFaceOffsetsPtr_(nullptr),
polyBFaceOffsetPatchesPtr_(nullptr),
polyBFaceOffsetPatchFacesPtr_(nullptr),
polyBFacePatchesPtr_(nullptr),
polyBFacePatchFacesPtr_(nullptr),
ownerBfPtr_(nullptr),
curTimeIndex_(time().timeIndex()),
VPtr_(nullptr),
V0Ptr_(nullptr),
V00Ptr_(nullptr),
SfSlicePtr_(nullptr),
SfPtr_(nullptr),
magSfSlicePtr_(nullptr),
magSfPtr_(nullptr),
CSlicePtr_(nullptr),
CPtr_(nullptr),
CfSlicePtr_(nullptr),
CfPtr_(nullptr),
phiPtr_(nullptr)
{
DebugInFunction << "Constructing fvMesh from components" << endl;
}
Foam::fvMesh::fvMesh(fvMesh&& mesh)
:
polyMesh(Foam::move(mesh)),
surfaceMesh(*this),
surfaceInterpolation(Foam::move(mesh)),
boundary_(Foam::move(mesh.boundary_)),
stitcher_(Foam::move(mesh.stitcher_)),
topoChanger_(Foam::move(mesh.topoChanger_)),
distributor_(Foam::move(mesh.distributor_)),
mover_(Foam::move(mesh.mover_)),
lduPtr_(Foam::move(mesh.lduPtr_)),
polyFacesBfIOPtr_(Foam::move(mesh.polyFacesBfIOPtr_)),
polyFacesBfPtr_(Foam::move(mesh.polyFacesBfPtr_)),
polyBFaceOffsetsPtr_(Foam::move(mesh.polyBFaceOffsetsPtr_)),
polyBFaceOffsetPatchesPtr_(Foam::move(mesh.polyBFaceOffsetPatchesPtr_)),
polyBFaceOffsetPatchFacesPtr_
(
Foam::move(mesh.polyBFaceOffsetPatchFacesPtr_)
),
polyBFacePatchesPtr_(Foam::move(mesh.polyBFacePatchesPtr_)),
polyBFacePatchFacesPtr_(Foam::move(mesh.polyBFacePatchFacesPtr_)),
ownerBfPtr_(Foam::move(mesh.ownerBfPtr_)),
curTimeIndex_(mesh.curTimeIndex_),
VPtr_(Foam::move(mesh.VPtr_)),
V0Ptr_(Foam::move(mesh.V0Ptr_)),
V00Ptr_(Foam::move(mesh.V00Ptr_)),
SfSlicePtr_(Foam::move(mesh.SfSlicePtr_)),
SfPtr_(Foam::move(mesh.SfPtr_)),
magSfSlicePtr_(Foam::move(mesh.magSfSlicePtr_)),
magSfPtr_(Foam::move(mesh.magSfPtr_)),
CSlicePtr_(Foam::move(mesh.CSlicePtr_)),
CPtr_(Foam::move(mesh.CPtr_)),
CfSlicePtr_(Foam::move(mesh.CfSlicePtr_)),
CfPtr_(Foam::move(mesh.CfPtr_)),
phiPtr_(Foam::move(mesh.phiPtr_))
{
DebugInFunction << "Move-constructing fvMesh" << endl;
}
// * * * * * * * * * * * * * * * * Destructor * * * * * * * * * * * * * * * //
Foam::fvMesh::~fvMesh()
{
clearOut();
}
// * * * * * * * * * * * * * * * Member Functions * * * * * * * * * * * * * //
void Foam::fvMesh::postConstruct
(
const bool changers,
const bool zones,
const stitchType stitch
)
{
// Construct the stitcher
stitcher_.set(fvMeshStitcher::New(*this, changers).ptr());
// Stitch or Re-stitch if necessary
if (stitch != stitchType::none)
{
stitcher_->connect(false, stitch == stitchType::geometric, true);
}
// Construct changers
if (changers)
{
topoChanger_.set(fvMeshTopoChanger::New(*this).ptr());
distributor_.set(fvMeshDistributor::New(*this).ptr());
mover_.set(fvMeshMover::New(*this).ptr());
// Check the existence of the cell volumes and read if present
// and set the storage of V00
if (fileHandler().isFile(time().timePath()/"Vc0"))
{
V0Ptr_ = new DimensionedField<scalar, fvMesh>
(
IOobject
(
"Vc0",
time().name(),
*this,
IOobject::MUST_READ,
IOobject::NO_WRITE,
true
),
*this,
dimensions::volume
);
V00();
}
// Check the existence of the mesh fluxes and read if present
if (fileHandler().isFile(time().timePath()/"meshPhi"))
{
phiPtr_ = new surfaceScalarField
(
IOobject
(
"meshPhi",
time().name(),
*this,
IOobject::MUST_READ,
IOobject::NO_WRITE,
true
),
*this,
dimensions::volumetricFlux
);
}
}
// Generate the zones after the mesh manipulators have been constructed
// to support motion-specific zone generators requiring access to the mover
if (zones)
{
zonesGenerator::New(*this);
}
}
bool Foam::fvMesh::topoChanging() const
{
return topoChanger_.valid() && topoChanger_->dynamic();
}
bool Foam::fvMesh::distributing() const
{
return distributor_.valid() && distributor_->dynamic();
}
bool Foam::fvMesh::dynamic() const
{
return
(topoChanger_.valid() && topoChanger_->dynamic())
|| (mover_.valid() && mover_->dynamic());
}
bool Foam::fvMesh::update()
{
if
(
stitcher_->stitches()
|| topoChanger_->dynamic()
|| distributor_->dynamic()
)
{
nullOldestTimeFields();
}
// Remove the oldest cell volume field
if (V00Ptr_)
{
nullDemandDrivenData(V00Ptr_);
}
else
{
nullDemandDrivenData(V0Ptr_);
}
// Remove the oldest mesh flux field
if (phiPtr_)
{
phiPtr_->nullOldestTime();
}
// Set topoChanged_ false before any mesh change. Topo-changing can switch
// on and off during a run.
topoChanged_ = false;
topoChanged_ = topoChanger_->update();
const bool distributed = distributor_->update();
return topoChanged_ || distributed;
}
bool Foam::fvMesh::move()
{
// Do not set moving_ false before any mesh motion. Once the mesh starts
// moving it is considered to be moving for the rest of the run.
const bool moved = mover_->update();
curTimeIndex_ = time().timeIndex();
stitcher_->connect(true, true, false);
return moved;
}
void Foam::fvMesh::addFvPatches
(
const List<polyPatch*>& p,
const bool validBoundary
)
{
if (boundary().size())
{
FatalErrorInFunction
<< " boundary already exists"
<< abort(FatalError);
}
// first add polyPatches
addPatches(p, validBoundary);
boundary_.addPatches(poly().boundary());
}
void Foam::fvMesh::removeFvBoundary()
{
DebugInFunction << "Removing boundary patches." << endl;
// Remove fvBoundaryMesh data first.
boundary_.clear();
boundary_.setSize(0);
polyMesh::removeBoundary();
clearOut();
}
void Foam::fvMesh::swap(fvMesh& otherMesh)
{
// Clear the sliced fields
clearFvGeom();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
polyMesh::swap(otherMesh);
auto updatePatches = []
(
const polyPatchList& patches,
fvBoundaryMesh& boundaryMesh
)
{
boundaryMesh.setSize(patches.size());
forAll(patches, patchi)
{
// Construct new processor patches, as the decomposition may have
// changed. Leave other patches as is.
if (isA<processorPolyPatch>(patches[patchi]))
{
boundaryMesh.set
(
patchi,
fvPatch::New
(
patches[patchi],
boundaryMesh
)
);
}
}
};
updatePatches(poly().boundary(), boundary_);
updatePatches(otherMesh.poly().boundary(), otherMesh.boundary_);
}
Foam::fvMesh::readUpdateState Foam::fvMesh::readUpdate
(
const stitchType stitch
)
{
// Determine if this update moves forward in time. If so, searching back in
// time for data files will only go back as far as the previous instance.
const fileName instance0 = instance();
const bool forward = readUpdateIsForward();
// Update the polyMesh and the mesh instance
const polyMesh::readUpdateState state = polyMesh::readUpdate();
DebugInFunction << "Updating the fvMesh:" << endl;
if (debug)
{
switch (state)
{
case polyMesh::TOPO_PATCH_CHANGE:
Info<< " Boundary and topological change" << endl;
break;
case polyMesh::TOPO_CHANGE:
Info<< " Topological change" << endl;
break;
case polyMesh::POINTS_MOVED:
Info<< " Point motion" << endl;
break;
default:
Info<< " No change" << endl;
break;
}
}
const bool reStitch =
stitcher_.valid()
&& stitcher_->stitches()
&& stitch != stitchType::none
&& (
!conformal()
|| time().findInstance
(
dbDir()/typeName,
"polyFaces",
IOobject::READ_IF_PRESENT,
forward ? word(instance0) : word::null
)
!= (forward ? instance0 : polyFacesBfIOPtr_->instance())
);
if (reStitch)
{
stitcher_->disconnect(false, false);
}
else if (state != polyMesh::UNCHANGED)
{
conform();
}
switch (state)
{
case polyMesh::TOPO_PATCH_CHANGE:
boundary_.readUpdate(poly().boundary());
clearOut();
break;
case polyMesh::TOPO_CHANGE:
clearOut();
break;
case polyMesh::POINTS_MOVED:
clearFvGeom();
break;
default:
break;
}
if (reStitch && stitch != stitchType::none)
{
stitcher_->connect(false, stitch == stitchType::geometric, true);
}
// Return the corresponding fvMesh read update state
switch (state)
{
case polyMesh::UNCHANGED:
return reStitch ? STITCHED : UNCHANGED;
case polyMesh::POINTS_MOVED:
return reStitch ? STITCHED : POINTS_MOVED;
case polyMesh::TOPO_CHANGE:
return TOPO_CHANGE;
case polyMesh::TOPO_PATCH_CHANGE:
return TOPO_PATCH_CHANGE;
}
return UNCHANGED;
}
const Foam::fvBoundaryMesh& Foam::fvMesh::boundary() const
{
return boundary_;
}
const Foam::lduAddressing& Foam::fvMesh::lduAddr() const
{
if (!lduPtr_)
{
lduPtr_ = new fvMeshLduAddressing(*this);
}
return *lduPtr_;
}
bool Foam::fvMesh::conformal() const
{
return !(polyFacesBfPtr_ && SfPtr_);
}
const Foam::surfaceLabelField::Boundary& Foam::fvMesh::polyFacesBf() const
{
if (!polyFacesBfPtr_)
{
polyFacesBfIOPtr_ =
new IOobject
(
"polyFaces",
facesInstance(),
typeName,
*this,
IOobject::NO_READ,
IOobject::NO_WRITE,
false
);
polyFacesBfPtr_ =
new surfaceLabelField::Boundary
(
boundary(),
surfaceLabelField::null(),
polyFacesPatchTypes(),
poly().boundary().types()
);
}
return *polyFacesBfPtr_;
}
const Foam::UCompactListList<Foam::label>&
Foam::fvMesh::polyBFacePatches() const
{
if (!polyBFacePatchesPtr_)
{
const label nPolyBFaces = nFaces() - nInternalFaces();
// Count face-poly-bFaces to get the offsets
polyBFaceOffsetsPtr_ = new labelList(nPolyBFaces + 1, 0);
labelList& offsets = *polyBFaceOffsetsPtr_;
forAll(boundary(), patchi)
{
forAll(boundary()[patchi], patchFacei)
{
const label polyBFacei =
(
polyFacesBfPtr_
? (*polyFacesBfPtr_)[patchi][patchFacei]
: boundary()[patchi].start() + patchFacei
)
- nInternalFaces();
offsets[polyBFacei + 1] ++;
}
}
for (label polyBFacei = 0; polyBFacei < nPolyBFaces; ++ polyBFacei)
{
offsets[polyBFacei + 1] += offsets[polyBFacei];
}
// Set the poly-bFace patches and patch-faces, using the offsets as
// counters
polyBFaceOffsetPatchesPtr_ = new labelList(offsets.last());
polyBFaceOffsetPatchFacesPtr_ = new labelList(offsets.last());
labelUList& patches = *polyBFaceOffsetPatchesPtr_;
labelUList& patchFaces = *polyBFaceOffsetPatchFacesPtr_;
forAll(boundary(), patchi)
{
forAll(boundary()[patchi], patchFacei)
{
const label polyBFacei =
(
polyFacesBfPtr_
? (*polyFacesBfPtr_)[patchi][patchFacei]
: boundary()[patchi].start() + patchFacei
)
- nInternalFaces();
patches[offsets[polyBFacei]] = patchi;
patchFaces[offsets[polyBFacei]] = patchFacei;
offsets[polyBFacei] ++;
}
}
// Restore the offsets by removing the count
for
(
label polyBFacei = nPolyBFaces - 1;
polyBFacei >= 0;
-- polyBFacei
)
{
offsets[polyBFacei + 1] = offsets[polyBFacei];
}
offsets[0] = 0;
// List-lists
polyBFacePatchesPtr_ =
new UCompactListList<label>(offsets, patches);
polyBFacePatchFacesPtr_ =
new UCompactListList<label>(offsets, patchFaces);
}
return *polyBFacePatchesPtr_;
}
const Foam::UCompactListList<Foam::label>&
Foam::fvMesh::polyBFacePatchFaces() const
{
if (!polyBFacePatchFacesPtr_)
{
polyBFacePatches();
}
return *polyBFacePatchFacesPtr_;
}
const Foam::surfaceLabelField::Boundary& Foam::fvMesh::ownerBf() const
{
if (!ownerBfPtr_)
{
ownerBfPtr_ =
new surfaceLabelField::Boundary
(
boundary(),
surfaceLabelField::null(),
wordList
(
boundary().size(),
calculatedFvsPatchLabelField::typeName
),
poly().boundary().types()
);
forAll(boundary(), patchi)
{
(*ownerBfPtr_)[patchi] =
labelField(faceOwner(), polyFacesBf()[patchi]);
}
}
return *ownerBfPtr_;
}
const Foam::fvMeshStitcher& Foam::fvMesh::stitcher() const
{
return stitcher_();
}
Foam::fvMeshStitcher& Foam::fvMesh::stitcher()
{
return stitcher_();
}
const Foam::fvMeshTopoChanger& Foam::fvMesh::topoChanger() const
{
return topoChanger_();
}
const Foam::fvMeshDistributor& Foam::fvMesh::distributor() const
{
return distributor_();
}
const Foam::fvMeshMover& Foam::fvMesh::mover() const
{
return mover_();
}
void Foam::fvMesh::mapFields(const polyTopoChangeMap& map)
{
DebugInFunction
<< " nOldCells:" << map.nOldCells()
<< " nCells:" << nCells()
<< " nOldFaces:" << map.nOldFaces()
<< " nFaces:" << nFaces()
<< endl;
// We require geometric properties valid for the old mesh
if
(
map.cellMap().size() != nCells()
|| map.faceMap().size() != nFaces()
)
{
FatalErrorInFunction
<< "polyTopoChangeMap does not correspond to the old mesh."
<< " nCells:" << nCells()
<< " cellMap:" << map.cellMap().size()
<< " nOldCells:" << map.nOldCells()
<< " nFaces:" << nFaces()
<< " faceMap:" << map.faceMap().size()
<< " nOldFaces:" << map.nOldFaces()
<< exit(FatalError);
}
// Create a fv mapper
const fvMeshMapper fvMap(*this, map);
// Map all the volFields in the objectRegistry
#define mapVolFieldType(Type, nullArg) \
MapGeometricFields<Type, fvMeshMapper, fvMesh>(fvMap);
FOR_ALL_FIELD_TYPES(mapVolFieldType);
// Map all the surfaceFields in the objectRegistry
#define mapSurfaceFieldType(Type, nullArg) \
MapGeometricFields<Type, fvMeshMapper, surfaceMesh>(fvMap);
FOR_ALL_FIELD_TYPES(mapSurfaceFieldType);
// Map all the dimensionedFields in the objectRegistry
#define mapVolInternalFieldType(Type, nullArg) \
MapDimensionedFields<Type, fvMeshMapper, fvMesh>(fvMap);
FOR_ALL_FIELD_TYPES(mapVolInternalFieldType);
if (pointMesh::found(*this))
{
// Create the pointMesh mapper
const pointMeshMapper mapper(pointMesh::New(*this), map);
#define mapPointFieldType(Type, nullArg) \
MapGeometricFields<Type, pointMeshMapper, pointMesh>(mapper);
FOR_ALL_FIELD_TYPES(mapPointFieldType);
}
}
void Foam::fvMesh::preChange()
{
stitcher_->disconnect(true, true);
}
void Foam::fvMesh::setPoints(const pointField& p)
{
polyMesh::setPoints(p);
clearFvGeom();
// Update other local data
surfaceInterpolation::movePoints();
meshObjects::movePoints<fvMesh>(*this);
meshObjects::movePoints<lduMesh>(*this);
const_cast<Time&>(time()).functionObjects().movePoints(*this);
}
Foam::tmp<Foam::scalarField> Foam::fvMesh::movePoints(const pointField& p)
{
preChange();
// Set the mesh to be moving. This remains true for the rest of the run.
moving_ = true;
// Create old-time volumes, if necessary, at the start of a new timestep
if (curTimeIndex_ < time().timeIndex())
{
if (V00Ptr_ && notNull(V00Ptr_))
{
FatalErrorInFunction
<< "Old-old volumes should not be maintained across mesh "
<< "changes" << exit(FatalError);
}
// If old-old-volumes are necessary then copy them from the old-volumes
if (Foam::isNull(V00Ptr_))
{
V00Ptr_ = new DimensionedField<scalar, fvMesh>
(
IOobject
(
"Vc00",
time().name(),
*this,
IOobject::NO_READ,
IOobject::NO_WRITE,
true
),
V0()
);
}
// Copy old-volumes from the volumes
if (!V0Ptr_ || Foam::isNull(V0Ptr_))
{
V0Ptr_ = new DimensionedField<scalar, fvMesh>
(
IOobject
(
"Vc0",
time().name(),
*this,
IOobject::NO_READ,
IOobject::NO_WRITE,
true
),
V()
);
}
else
{
V0Ptr_->scalarField::operator=(V().primitiveField());
}
}
// Create mesh motion flux, if necessary
if (!phiPtr_)
{
phiPtr_ = new surfaceScalarField
(
IOobject
(
"meshPhi",
this->time().name(),
*this,
IOobject::NO_READ,
IOobject::NO_WRITE,
true
),
*this,
dimensions::volumetricFlux,
fvsPatchField<scalar>::calculatedType()
);
}
else
{
phiPtr_->storeOldTimes();
}
surfaceScalarField& phi = *phiPtr_;
// Move the polyMesh and set the mesh motion fluxes to the swept-volumes
scalar rDeltaT = 1.0/time().deltaTValue();
tmp<scalarField> tsweptVols = polyMesh::movePoints(p);
scalarField& sweptVols = tsweptVols.ref();
phi.primitiveFieldRef() =
scalarField::subField(sweptVols, nInternalFaces());
phi.primitiveFieldRef() *= rDeltaT;
const fvPatchList& patches = boundary();
surfaceScalarField::BoundaryField& phibf = phi.boundaryFieldRef();
forAll(patches, patchi)
{
phibf[patchi] = patches[patchi].patchSlice(sweptVols);
phibf[patchi] *= rDeltaT;
}
// Update or delete the local geometric properties as early as possible so
// they can be used if necessary. These get recreated here instead of
// demand driven since they might do parallel transfers which can conflict
// with when they're actually being used.
// Note that between above "polyMesh::movePoints(p)" and here nothing
// should use the local geometric properties.
updateGeomNotOldVol();
// Update other local data
surfaceInterpolation::movePoints();
meshObjects::movePoints<fvMesh>(*this);
meshObjects::movePoints<lduMesh>(*this);
const_cast<Time&>(time()).functionObjects().movePoints(*this);
return tsweptVols;
}
void Foam::fvMesh::topoChange(const polyTopoChangeMap& map)
{
if (!conformal())
{
FatalErrorInFunction
<< "The mesh was not disconnected prior to topology change"
<< exit(FatalError);
}
// Update polyMesh. This needs to keep volume existent!
polyMesh::topoChange(map);
// Clear the sliced fields
clearFvGeomNotOldVol();
// Check that we're not trying to maintain old-time mesh geometry
if (V0Ptr_ && Foam::notNull(V0Ptr_))
{
FatalErrorInFunction
<< "It is not possible to use mesh motion, topology change, and "
<< "second order time schemes simultaneously"
<< exit(FatalError);
}
// Map all fields
mapFields(map);
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
meshObjects::topoChange<fvMesh>(*this, map);
meshObjects::topoChange<lduMesh>(*this, map);
const_cast<Time&>(time()).functionObjects().topoChange(map);
if (stitcher_.valid())
{
stitcher_->topoChange(map);
}
if (topoChanger_.valid())
{
topoChanger_->topoChange(map);
}
if (distributor_.valid())
{
distributor_->topoChange(map);
}
if (mover_.valid())
{
mover_->topoChange(map);
}
}
void Foam::fvMesh::mapMesh(const polyMeshMap& map)
{
if (!conformal())
{
FatalErrorInFunction
<< "The mesh was not disconnected prior to mesh-to-mesh mapping"
<< exit(FatalError);
}
// Distribute polyMesh data
polyMesh::mapMesh(map);
// Clear the sliced fields
clearFvGeomNotOldVol();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
meshObjects::mapMesh<fvMesh>(*this, map);
meshObjects::mapMesh<lduMesh>(*this, map);
const_cast<Time&>(time()).functionObjects().mapMesh(map);
stitcher_->mapMesh(map);
topoChanger_->mapMesh(map);
distributor_->mapMesh(map);
mover_->mapMesh(map);
}
void Foam::fvMesh::distribute(const polyDistributionMap& map)
{
if (!conformal())
{
FatalErrorInFunction
<< "The mesh was not disconnected prior to distribution"
<< exit(FatalError);
}
// Distribute polyMesh data
polyMesh::distribute(map);
// Clear the sliced fields
clearFvGeomNotOldVol();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
meshObjects::distribute<fvMesh>(*this, map);
meshObjects::distribute<lduMesh>(*this, map);
const_cast<Time&>(time()).functionObjects().distribute(map);
stitcher_->distribute(map);
topoChanger_->distribute(map);
distributor_->distribute(map);
mover_->distribute(map);
}
void Foam::fvMesh::setPolyFacesBfInstance(const fileName& inst)
{
if (!polyFacesBfPtr_)
{
return;
}
polyFacesBfIOPtr_->instance() = inst;
polyFacesBfIOPtr_->writeOpt() = IOobject::AUTO_WRITE;
}
const Foam::fileName& Foam::fvMesh::polyFacesBfInstance() const
{
if (!polyFacesBfPtr_)
{
return facesInstance();
}
return polyFacesBfIOPtr_->instance();
}
void Foam::fvMesh::conform(const surfaceScalarField& phi)
{
// Clear the geometry fields
clearFvGeomNotOldVol();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
// Modify the mesh fluxes, if necessary
if (notNull(phi) && phiPtr_)
{
for (label i = 0; i <= phi.nOldTimes(); ++ i)
{
phiRef().oldTimeRef(i) == phi.oldTime(i);
}
}
}
void Foam::fvMesh::unconform
(
const surfaceLabelField::Boundary& polyFacesBf,
const surfaceVectorField& Sf,
const surfaceVectorField& Cf,
const surfaceScalarField& phi,
const bool sync
)
{
// Clear the geometry fields
clearFvGeomNotOldVol();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
// Create non-sliced copies of geometry fields
SfRef();
magSfRef();
CRef();
CfRef();
// Set the topology
forAll(polyFacesBf, patchi)
{
polyFacesBfRef()[patchi].reset(polyFacesBf[patchi]);
}
// Set the face geometry
SfRef() == Sf;
magSfRef() == max(mag(Sf), dimensionedScalar(dimensions::area, rootVSmall));
CRef().boundaryRef() == Cf.boundary();
CfRef() == Cf;
// Communicate processor-coupled cell geometry. Cell-centre processor patch
// fields must contain the (transformed) cell-centre locations on the other
// side of the coupling. This is so that non-conformal patches can
// construct weights and deltas without reference to the poly mesh
// geometry.
//
// Note that the initEvaluate/evaluate communication does a transformation,
// but it is wrong in this instance. A vector field gets transformed as if
// it were a displacement, but the cell-centres need a positional
// transformation. That's why there's the un-transform and re-transform bit
// below just after the evaluate call.
//
// This transform handling is a bit of a hack. It would be nicer to have a
// field attribute which identifies a field as needing a positional
// transformation, and for it to apply automatically within the coupled
// patch field. However, at the moment, the cell centres field is the only
// vol-field containing an absolute position, so the hack is functionally
// sufficient for now.
if (sync && time().completeCase())
{
volVectorField::BoundaryField& CBf = CRef().boundaryFieldRef();
const label nReq = Pstream::nRequests();
forAll(CBf, patchi)
{
if (isA<processorFvPatch>(CBf[patchi].patch()))
{
CBf[patchi].initEvaluate(Pstream::defaultCommsType);
}
}
if
(
Pstream::parRun()
&& Pstream::defaultCommsType == Pstream::commsTypes::nonBlocking
)
{
Pstream::waitRequests(nReq);
}
forAll(CBf, patchi)
{
if (isA<processorFvPatch>(CBf[patchi].patch()))
{
CBf[patchi].evaluate(Pstream::defaultCommsType);
const transformer& t =
refCast<const processorFvPatch>(CBf[patchi].patch())
.transform();
t.invTransform(CBf[patchi], CBf[patchi]);
t.transformPosition(CBf[patchi], CBf[patchi]);
}
}
}
// Modify the mesh fluxes, if necessary
if (notNull(phi) && phiPtr_)
{
for (label i = 0; i <= phi.nOldTimes(); ++ i)
{
phiRef().oldTimeRef(i) == phi.oldTime(i);
}
}
}
void Foam::fvMesh::addPatch
(
const label insertPatchi,
const polyPatch& patch
)
{
// Remove my local data (see topoChange)
// Clear mesh motion flux
deleteDemandDrivenData(phiPtr_);
// Clear the sliced fields
clearFvGeomNotOldVol();
// Clear the current volume and other geometry factors
surfaceInterpolation::clearOut();
// Clear any non-updateable addressing
clearAddressing(true);
const label boundarySize0 = boundary_.size();
polyMesh::addPatch(insertPatchi, patch);
boundary_.setSize(boundarySize0 + 1);
boundary_.set
(
insertPatchi,
fvPatch::New
(
poly().boundary()[insertPatchi],
boundary_
)
);
#define AddPatchFieldsType(Type, FieldType, DefaultPatchFieldType) \
AddPatchFields<FieldType<Type>> \
( \
const_cast<objectRegistry&>(db()), \
insertPatchi, \
DefaultPatchFieldType \
);
FOR_ALL_FIELD_TYPES
(
AddPatchFieldsType,
VolField,
extrapolatedCalculatedFvPatchField<scalar>::typeName
);
FOR_ALL_FIELD_TYPES
(
AddPatchFieldsType,
SurfaceField,
calculatedFvsPatchField<scalar>::typeName
);
#undef AddPatchFieldsType
}
void Foam::fvMesh::reorderPatches
(
const labelUList& newToOld,
const bool validBoundary
)
{
polyMesh::reorderPatches(newToOld, validBoundary);
boundary_.shuffle(newToOld, validBoundary);
#define ReorderPatchFieldsType(Type, FieldType) \
ReorderPatchFields<FieldType<Type>> \
( \
const_cast<objectRegistry&>(db()), \
newToOld \
);
FOR_ALL_FIELD_TYPES(ReorderPatchFieldsType, VolField);
FOR_ALL_FIELD_TYPES(ReorderPatchFieldsType, SurfaceField);
#undef ReorderPatchFieldsType
}
bool Foam::fvMesh::writeObject
(
IOstream::streamFormat fmt,
IOstream::versionNumber ver,
IOstream::compressionType cmp,
const bool write
) const
{
bool ok = true;
if (!conformal() && polyFacesBfIOPtr_->writeOpt() == IOobject::AUTO_WRITE)
{
// Create a full surface field with the polyFacesBf boundary field to
// write to disk. Make the internal field uniform to save disk space.
surfaceLabelField polyFaces
(
*polyFacesBfIOPtr_,
*this,
dimless,
labelField(nInternalFaces(), -1),
*polyFacesBfPtr_
);
ok = ok & polyFaces.write(write);
}
// Write geometry out at a higher precision
unsigned int precision0 =
IOstream::defaultPrecision(IOstream::fullPrecision());
// Write the mesh flux if old-old-time volumes exist
if (phiPtr_ && V00Ptr_)
{
ok = ok && phiPtr_->write(write);
}
// Write old-time volumes if old-old-time volumes exist
if (V0Ptr_ && V00Ptr_)
{
ok = ok && V0Ptr_->write(write);
}
// Restore the default precision
IOstream::defaultPrecision(precision0);
if (stitcher_.valid())
{
stitcher_->write(write);
}
if (topoChanger_.valid())
{
topoChanger_->write(write);
}
if (distributor_.valid())
{
distributor_->write(write);
}
if (mover_.valid())
{
mover_->write(write);
}
return ok && polyMesh::writeObject(fmt, ver, cmp, write);
}
bool Foam::fvMesh::writeMesh() const
{
bool ok = true;
if (!conformal() && polyFacesBfIOPtr_->writeOpt() == IOobject::AUTO_WRITE)
{
// Create a full surface field with the polyFacesBf boundary field to
// write to disk. Make the internal field uniform to save disk space.
surfaceLabelField polyFaces
(
*polyFacesBfIOPtr_,
*this,
dimless,
labelField(nInternalFaces(), -1),
*polyFacesBfPtr_
);
ok = ok & polyFaces.write();
}
return ok && polyMesh::writeMesh();
}
template<>
typename Foam::pTraits<Foam::sphericalTensor>::labelType
Foam::fvMesh::validComponents<Foam::sphericalTensor>() const
{
return Foam::pTraits<Foam::sphericalTensor>::labelType(1);
}
const Foam::fvSchemes& Foam::fvMesh::schemes() const
{
if (!fvSchemes_.valid())
{
fvSchemes_ = new fvSchemes(*this);
}
return fvSchemes_;
}
const Foam::fvSolution& Foam::fvMesh::solution() const
{
if (!fvSolution_.valid())
{
fvSolution_ = new fvSolution(*this);
}
return fvSolution_;
}
// * * * * * * * * * * * * * * * Member Operators * * * * * * * * * * * * * //
bool Foam::fvMesh::operator!=(const fvMesh& bm) const
{
return &bm != this;
}
bool Foam::fvMesh::operator==(const fvMesh& bm) const
{
return &bm == this;
}
// * * * * * * * * * * * * * * * Global Functions * * * * * * * * * * * * * //
const Foam::fvMesh& Foam::region(const dictionary& dict)
{
const IOobject& io = refCast<const IOobject>(dict);
return refCast<const fvMesh>(io.db());
}
// ************************************************************************* //