mirror of
https://develop.openfoam.com/Development/openfoam.git
synced 2025-11-28 03:28:01 +00:00
ENH: Various improvements.
+ No fatal error on triSurfaceTools::surfaceSide, commented out WarningIn.
+ Make cellSizeControlSurfaces look for a GREAT span for the nearest surface
point.
+ Identify and limit filtering on single internal face cells in polyMesh
quality assessment.
+ Create cellSet of remaining protruding cells after polyMesh creation.
+ Implemented wellOutside function by generalising wellInside to
wellInOutSide.
This commit is contained in:
@ -97,6 +97,53 @@ void deleteBox
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}
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void drawHitProblem
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(
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label fI,
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const triSurface& surf,
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const pointField& start,
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const pointField& faceCentres,
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const pointField& end,
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const List<pointIndexHit>& hitInfo
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)
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{
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Info<< nl << "# findLineAll did not hit its own face."
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<< nl << "# fI " << fI
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<< nl << "# start " << start[fI]
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<< nl << "# f centre " << faceCentres[fI]
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<< nl << "# end " << end[fI]
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<< nl << "# hitInfo " << hitInfo
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<< endl;
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meshTools::writeOBJ(Info, start[fI]);
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meshTools::writeOBJ(Info, faceCentres[fI]);
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meshTools::writeOBJ(Info, end[fI]);
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Info<< "l 1 2 3" << endl;
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meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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Info<< "f 4 5 6" << endl;
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forAll(hitInfo, hI)
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{
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label hFI = hitInfo[hI].index();
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][2]]);
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Info<< "f "
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<< 3*hI + 7 << " "
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<< 3*hI + 8 << " "
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<< 3*hI + 9
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<< endl;
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}
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}
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scalarField curvature(const triSurface& surf)
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{
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scalarField k(surf.points().size(), 0);
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@ -598,23 +645,24 @@ int main(int argc, char *argv[])
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if (hitInfo.size() < 1)
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{
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Info<< nl << "# fI " << fI
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<< nl << "# start " << start[fI]
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<< nl << "# f centre " << faceCentres[fI]
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<< nl << "# end " << end[fI]
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<< endl;
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drawHitProblem(fI, surf, start, faceCentres, end, hitInfo);
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// Info<< nl << "# fI " << fI
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// << nl << "# start " << start[fI]
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// << nl << "# f centre " << faceCentres[fI]
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// << nl << "# end " << end[fI]
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// << endl;
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meshTools::writeOBJ(Info, start[fI]);
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meshTools::writeOBJ(Info, faceCentres[fI]);
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meshTools::writeOBJ(Info, end[fI]);
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// meshTools::writeOBJ(Info, start[fI]);
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// meshTools::writeOBJ(Info, faceCentres[fI]);
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// meshTools::writeOBJ(Info, end[fI]);
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Info<< "l 1 2 3" << endl;
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// Info<< "l 1 2 3" << endl;
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meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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Info<< "f 4 5 6" << endl;
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// Info<< "f 4 5 6" << endl;
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FatalErrorIn(args.executable())
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<< "findLineAll did not hit its own face."
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@ -630,40 +678,42 @@ int main(int argc, char *argv[])
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}
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else if (hitInfo[0].index() != fI)
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{
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Info<< nl << "# findLineAll did not hit its own face."
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<< nl << "# fI " << fI
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<< nl << "# start " << start[fI]
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<< nl << "# f centre " << faceCentres[fI]
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<< nl << "# end " << end[fI]
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<< nl << "# hitInfo " << hitInfo
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<< endl;
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drawHitProblem(fI, surf, start, faceCentres, end, hitInfo);
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meshTools::writeOBJ(Info, start[fI]);
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meshTools::writeOBJ(Info, faceCentres[fI]);
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meshTools::writeOBJ(Info, end[fI]);
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// Info<< nl << "# findLineAll did not hit its own face."
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// << nl << "# fI " << fI
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// << nl << "# start " << start[fI]
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// << nl << "# f centre " << faceCentres[fI]
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// << nl << "# end " << end[fI]
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// << nl << "# hitInfo " << hitInfo
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// << endl;
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Info<< "l 1 2 3" << endl;
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// meshTools::writeOBJ(Info, start[fI]);
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// meshTools::writeOBJ(Info, faceCentres[fI]);
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// meshTools::writeOBJ(Info, end[fI]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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// Info<< "l 1 2 3" << endl;
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Info<< "f 4 5 6" << endl;
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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forAll(hitInfo, hI)
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{
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label hFI = hitInfo[hI].index();
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// Info<< "f 4 5 6" << endl;
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][2]]);
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// forAll(hitInfo, hI)
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// {
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// label hFI = hitInfo[hI].index();
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Info<< "f "
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<< 3*hI + 7 << " "
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<< 3*hI + 8 << " "
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<< 3*hI + 9
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<< endl;
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}
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][0]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][1]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][2]]);
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// Info<< "f "
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// << 3*hI + 7 << " "
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// << 3*hI + 8 << " "
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// << 3*hI + 9
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// << endl;
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// }
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// FatalErrorIn(args.executable())
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// << "findLineAll did not hit its own face."
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// << exit(FatalError);
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@ -687,40 +737,41 @@ int main(int argc, char *argv[])
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if (ownHitI < 0)
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{
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Info<< nl << "# findLineAll did not hit its own face."
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<< nl << "# fI " << fI
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<< nl << "# start " << start[fI]
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<< nl << "# f centre " << faceCentres[fI]
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<< nl << "# end " << end[fI]
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<< nl << "# hitInfo " << hitInfo
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<< endl;
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drawHitProblem(fI, surf, start, faceCentres, end, hitInfo);
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// Info<< nl << "# findLineAll did not hit its own face."
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// << nl << "# fI " << fI
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// << nl << "# start " << start[fI]
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// << nl << "# f centre " << faceCentres[fI]
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// << nl << "# end " << end[fI]
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// << nl << "# hitInfo " << hitInfo
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// << endl;
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meshTools::writeOBJ(Info, start[fI]);
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meshTools::writeOBJ(Info, faceCentres[fI]);
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meshTools::writeOBJ(Info, end[fI]);
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// meshTools::writeOBJ(Info, start[fI]);
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// meshTools::writeOBJ(Info, faceCentres[fI]);
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// meshTools::writeOBJ(Info, end[fI]);
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Info<< "l 1 2 3" << endl;
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// Info<< "l 1 2 3" << endl;
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meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][0]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][1]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[fI][2]]);
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Info<< "f 4 5 6" << endl;
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// Info<< "f 4 5 6" << endl;
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forAll(hitInfo, hI)
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{
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label hFI = hitInfo[hI].index();
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// forAll(hitInfo, hI)
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// {
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// label hFI = hitInfo[hI].index();
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][0]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][1]]);
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meshTools::writeOBJ(Info, surf.points()[surf[hFI][2]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][0]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][1]]);
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// meshTools::writeOBJ(Info, surf.points()[surf[hFI][2]]);
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Info<< "f "
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<< 3*hI + 7 << " "
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<< 3*hI + 8 << " "
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<< 3*hI + 9
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<< endl;
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}
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// Info<< "f "
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// << 3*hI + 7 << " "
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// << 3*hI + 8 << " "
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// << 3*hI + 9
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// << endl;
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// }
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// FatalErrorIn(args.executable())
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// << "findLineAll did not hit its own face."
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@ -301,7 +301,7 @@ Foam::scalar Foam::cellSizeControlSurfaces::cellSize
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cvMesh_.geometryToConformTo().findSurfaceNearest
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(
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pt,
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cvMesh_.geometryToConformTo().spanMagSqr(),
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sqr(GREAT),
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surfHit,
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hitSurface
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);
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@ -316,11 +316,7 @@ Foam::scalar Foam::cellSizeControlSurfaces::cellSize
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"bool isSurfacePoint"
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") const"
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)
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<< "Point " << pt << "was not within "
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<< cvMesh_.geometryToConformTo().spanMag()
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<< " of the surface." << nl
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<< "findSurfaceNearest did not find a hit across the span "
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<< "of the surfaces."
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<< "Point " << pt << " did not find a nearest surface point"
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<< nl << exit(FatalError) << endl;
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}
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else
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@ -64,6 +64,7 @@ SourceFiles
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#include "HashSet.H"
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#include "memInfo.H"
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#include "point.H"
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#include "cellSet.H"
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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@ -797,6 +798,10 @@ public:
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// target cell volume, actual cell volume and equivalent
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// actual cell size (cbrt(actual cell volume)).
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void writeCellSizes(const fvMesh& mesh) const;
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//- Find the cellSet of the boundary cells which have points that
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// protrude out of the surface beyond a tolerance.
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void findRemainingProtrusionSet(const fvMesh& mesh) const;
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};
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@ -1531,29 +1531,76 @@ Foam::labelHashSet Foam::conformalVoronoiMesh::checkPolyMeshQuality
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wrongFaces
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);
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label nInvalidPolyhedra = 0;
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const cellList& cells = pMesh.cells();
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forAll(cells, cI)
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{
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if (cells[cI].size() < 4 && cells[cI].size() > 0)
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// Check for cells with more than 1 but fewer than 4 faces
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label nInvalidPolyhedra = 0;
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const cellList& cells = pMesh.cells();
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forAll(cells, cI)
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{
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// Info<< "cell " << cI << " " << cells[cI]
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// << " has " << cells[cI].size() << " faces."
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// << endl;
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nInvalidPolyhedra++;
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forAll(cells[cI], cFI)
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if (cells[cI].size() < 4 && cells[cI].size() > 0)
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{
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wrongFaces.insert(cells[cI][cFI]);
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// Info<< "cell " << cI << " " << cells[cI]
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// << " has " << cells[cI].size() << " faces."
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// << endl;
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nInvalidPolyhedra++;
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forAll(cells[cI], cFI)
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{
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wrongFaces.insert(cells[cI][cFI]);
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}
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}
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}
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Info<< " cells with more than 1 but fewer than 4 faces : "
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<< nInvalidPolyhedra << endl;
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// Check for cells with one internal face only
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labelList nInternalFaces(pMesh.nCells(), 0);
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for (label fI = 0; fI < pMesh.nInternalFaces(); fI++)
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{
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nInternalFaces[pMesh.faceOwner()[fI]]++;
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nInternalFaces[pMesh.faceNeighbour()[fI]]++;
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}
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const polyBoundaryMesh& patches = pMesh.boundaryMesh();
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forAll(patches, patchI)
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{
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if (patches[patchI].coupled())
|
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{
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const labelUList& owners = patches[patchI].faceCells();
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forAll(owners, i)
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{
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nInternalFaces[owners[i]]++;
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}
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}
|
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}
|
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|
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label oneInternalFaceCells = 0;
|
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|
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forAll(nInternalFaces, cI)
|
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{
|
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if (nInternalFaces[cI] <= 1)
|
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{
|
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oneInternalFaceCells++;
|
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|
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forAll(cells[cI], cFI)
|
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{
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wrongFaces.insert(cells[cI][cFI]);
|
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}
|
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}
|
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}
|
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|
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Info<< " cells with with zero or one non-boundary face : "
|
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<< oneInternalFaceCells << endl;
|
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}
|
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|
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Info<< "Cells with more than 1 but fewer than 4 faces : "
|
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<< nInvalidPolyhedra << endl;
|
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|
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PackedBoolList ptToBeLimited(pts.size(), false);
|
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|
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|
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@ -328,6 +328,8 @@ void Foam::conformalVoronoiMesh::writeMesh
|
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// cellCs.write();
|
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|
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writeCellSizes(mesh);
|
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|
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findRemainingProtrusionSet(mesh);
|
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}
|
||||
|
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|
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@ -512,4 +514,69 @@ void Foam::conformalVoronoiMesh::writeCellSizes
|
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}
|
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|
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|
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void Foam::conformalVoronoiMesh::findRemainingProtrusionSet
|
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(
|
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const fvMesh& mesh
|
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) const
|
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{
|
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timeCheck("Start findRemainingProtrusionSet");
|
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|
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const polyBoundaryMesh& patches = mesh.boundaryMesh();
|
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|
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labelHashSet protrudingBoundaryPoints;
|
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|
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forAll(patches, patchI)
|
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{
|
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const labelList& patchLocalPtIs = patches[patchI].boundaryPoints();
|
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|
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forAll(patchLocalPtIs, ppI)
|
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{
|
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label meshPtI = patches[patchI].meshPoints()[patchLocalPtIs[ppI]];
|
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|
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const Foam::point& pt = mesh.points()[meshPtI];
|
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|
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if
|
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(
|
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geometryToConformTo_.wellOutside
|
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(
|
||||
pt,
|
||||
sqr(2.0*maxSurfaceProtrusion(pt))
|
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)
|
||||
)
|
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{
|
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protrudingBoundaryPoints.insert(meshPtI);
|
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}
|
||||
}
|
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}
|
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|
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cellSet protrudingCells
|
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(
|
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mesh,
|
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"cvMesh_remainingProtrusions",
|
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mesh.nCells()/1000
|
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);
|
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|
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forAllConstIter(labelHashSet, protrudingBoundaryPoints, iter)
|
||||
{
|
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const label pointI = iter.key();
|
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const labelList& pCells = mesh.pointCells()[pointI];
|
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|
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forAll(pCells, pCellI)
|
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{
|
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protrudingCells.insert(pCells[pCellI]);
|
||||
}
|
||||
}
|
||||
|
||||
if (!protrudingCells.empty())
|
||||
{
|
||||
Info<< nl << "Found " << protrudingCells.size()
|
||||
<< " cells protruding from the surface, writing cellSet "
|
||||
<< protrudingCells.name()
|
||||
<< endl;
|
||||
|
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protrudingCells.write();
|
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}
|
||||
}
|
||||
|
||||
|
||||
// ************************************************************************* //
|
||||
|
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@ -329,10 +329,11 @@ bool Foam::conformationSurfaces::outside
|
||||
}
|
||||
|
||||
|
||||
Foam::Field<bool> Foam::conformationSurfaces::wellInside
|
||||
Foam::Field<bool> Foam::conformationSurfaces::wellInOutSide
|
||||
(
|
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const pointField& samplePts,
|
||||
const scalarField& testDistSqr
|
||||
const scalarField& testDistSqr,
|
||||
bool testForInside
|
||||
) const
|
||||
{
|
||||
List<List<searchableSurface::volumeType> > surfaceVolumeTests
|
||||
@ -360,7 +361,7 @@ Foam::Field<bool> Foam::conformationSurfaces::wellInside
|
||||
// reference value and if the points are inside the surface by a given
|
||||
// distanceSquared
|
||||
|
||||
Field<bool> insidePoints(samplePts.size(), true);
|
||||
Field<bool> inOutSidePoint(samplePts.size(), true);
|
||||
|
||||
//Check if the points are inside the surface by the given distance squared
|
||||
|
||||
@ -384,23 +385,39 @@ Foam::Field<bool> Foam::conformationSurfaces::wellInside
|
||||
|
||||
if (pHit.hit())
|
||||
{
|
||||
insidePoints[i] = false;
|
||||
// If the point is within range of the surface, then it can't be
|
||||
// well (in|out)side
|
||||
inOutSidePoint[i] = false;
|
||||
|
||||
continue;
|
||||
}
|
||||
|
||||
forAll(surfaces_, s)
|
||||
{
|
||||
// If one of the pattern tests is failed, then the point cannot be
|
||||
// inside, therefore, if this is a testForInside = true call, the
|
||||
// result is false. If this is a testForInside = false call, then
|
||||
// the result is true.
|
||||
if (surfaceVolumeTests[s][i] != referenceVolumeTypes_[s])
|
||||
{
|
||||
insidePoints[i] = false;
|
||||
inOutSidePoint[i] = !testForInside;
|
||||
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
return insidePoints;
|
||||
return inOutSidePoint;
|
||||
}
|
||||
|
||||
|
||||
Foam::Field<bool> Foam::conformationSurfaces::wellInside
|
||||
(
|
||||
const pointField& samplePts,
|
||||
const scalarField& testDistSqr
|
||||
) const
|
||||
{
|
||||
return wellInOutSide(samplePts, testDistSqr, true);
|
||||
}
|
||||
|
||||
|
||||
@ -420,9 +437,7 @@ Foam::Field<bool> Foam::conformationSurfaces::wellOutside
|
||||
const scalarField& testDistSqr
|
||||
) const
|
||||
{
|
||||
notImplemented("Field<bool> Foam::conformationSurfaces::wellOutside");
|
||||
|
||||
return Field<bool>(samplePts.size(), true);
|
||||
return wellInOutSide(samplePts, testDistSqr, false);
|
||||
}
|
||||
|
||||
|
||||
|
||||
@ -176,6 +176,16 @@ public:
|
||||
//- Check if point is outside surfaces to conform to
|
||||
bool outside(const point& samplePt) const;
|
||||
|
||||
//- Check if point is closer to the surfaces to conform to than
|
||||
// testDistSqr, in which case return false, otherwise assess in or
|
||||
// outside and erturn a result depending on the testForInside flag
|
||||
Field<bool> wellInOutSide
|
||||
(
|
||||
const pointField& samplePts,
|
||||
const scalarField& testDistSqr,
|
||||
bool testForInside
|
||||
) const;
|
||||
|
||||
//- Check if point is inside surfaces to conform to by at least
|
||||
// testDistSqr
|
||||
Field<bool> wellInside
|
||||
|
||||
@ -2,7 +2,7 @@
|
||||
========= |
|
||||
\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
|
||||
\\ / O peration |
|
||||
\\ / A nd | Copyright (C) 2004-2010 OpenCFD Ltd.
|
||||
\\ / A nd | Copyright (C) 2004-2011 OpenCFD Ltd.
|
||||
\\/ M anipulation |
|
||||
-------------------------------------------------------------------------------
|
||||
License
|
||||
@ -2209,38 +2209,45 @@ Foam::triSurfaceTools::sideType Foam::triSurfaceTools::surfaceSide
|
||||
{
|
||||
vector sampleNearestVec = (sample - nearestPoint);
|
||||
|
||||
scalar magSampleNearestVec = mag(sampleNearestVec);
|
||||
|
||||
// Nearest to face interior. Use faceNormal to determine side
|
||||
scalar c = sampleNearestVec & surf.faceNormals()[nearestFaceI];
|
||||
|
||||
// If the sample is essentially on the face, do not check for
|
||||
// it being perpendicular.
|
||||
|
||||
if (magSampleNearestVec > 10*SMALL)
|
||||
{
|
||||
c /= magSampleNearestVec*mag(surf.faceNormals()[nearestFaceI]);
|
||||
// if (debug)
|
||||
// {
|
||||
// scalar magSampleNearestVec = mag(sampleNearestVec);
|
||||
|
||||
if (mag(c) < 0.99)
|
||||
{
|
||||
FatalErrorIn("triSurfaceTools::surfaceSide")
|
||||
<< "nearestPoint identified as being on triangle face "
|
||||
<< "but vector from nearestPoint to sample is not "
|
||||
<< "perpendicular to the normal." << nl
|
||||
<< "sample: " << sample << nl
|
||||
<< "nearestPoint: " << nearestPoint << nl
|
||||
<< "sample - nearestPoint: " << sample - nearestPoint << nl
|
||||
<< "normal: " << surf.faceNormals()[nearestFaceI] << nl
|
||||
<< "mag(sample - nearestPoint): "
|
||||
<< mag(sample - nearestPoint) << nl
|
||||
<< "normalised dot product: " << c << nl
|
||||
<< "triangle vertices: " << nl
|
||||
<< " " << points[f[0]] << nl
|
||||
<< " " << points[f[1]] << nl
|
||||
<< " " << points[f[2]] << nl
|
||||
<< abort(FatalError);
|
||||
}
|
||||
}
|
||||
// if (magSampleNearestVec > SMALL)
|
||||
// {
|
||||
// c /=
|
||||
// magSampleNearestVec
|
||||
// *mag(surf.faceNormals()[nearestFaceI]);
|
||||
|
||||
// if (mag(c) < 0.99)
|
||||
// {
|
||||
// WarningIn("triSurfaceTools::surfaceSide")
|
||||
// << "nearestPoint identified as being on triangle "
|
||||
// << "face but vector from nearestPoint to sample is "
|
||||
// << "not perpendicular to the normal." << nl
|
||||
// << "sample: " << sample << nl
|
||||
// << "nearestPoint: " << nearestPoint << nl
|
||||
// << "sample - nearestPoint: "
|
||||
// << sample - nearestPoint << nl
|
||||
// << "normal: "
|
||||
// << surf.faceNormals()[nearestFaceI] << nl
|
||||
// << "mag(sample - nearestPoint): "
|
||||
// << mag(sample - nearestPoint) << nl
|
||||
// << "normalised dot product: " << c << nl
|
||||
// << "triangle vertices: " << nl
|
||||
// << " " << points[f[0]] << nl
|
||||
// << " " << points[f[1]] << nl
|
||||
// << " " << points[f[2]] << nl
|
||||
// << endl;;
|
||||
// }
|
||||
// }
|
||||
// }
|
||||
|
||||
if (c > 0)
|
||||
{
|
||||
|
||||
Reference in New Issue
Block a user