/* This file is part of the OpenLB library * * Copyright (C) 2012 Jonas Kratzke, Mathias J. Krause * E-mail contact: info@openlb.net * The most recent release of OpenLB can be downloaded at * * * This program 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 2 * of the License, or (at your option) any later version. * * This program 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 this program; if not, write to the Free * Software Foundation, Inc., 51 Franklin Street, Fifth Floor, * Boston, MA 02110-1301, USA. */ /** \file * A helper for initialising 3D boundaries -- generic implementation. */ #ifndef SUPER_OFF_BOUNDARY_CONDITION_3D_HH #define SUPER_OFF_BOUNDARY_CONDITION_3D_HH #include #include #include "offBoundaryCondition3D.h" #include "superOffBoundaryCondition3D.h" #include "core/superLattice3D.h" #include "core/util.h" #include "functors/analytical/analyticalF.h" #include "functors/lattice/indicator/superIndicatorF3D.h" namespace olb { ///////// class superOffBoundaryCondition3D /////////////////////////////// template sOffLatticeBoundaryCondition3D::sOffLatticeBoundaryCondition3D( SuperLattice3D& sLattice, T epsFraction ) : clout(std::cout,"sOffLatticeBoundaryCondition3D"), _sLattice(sLattice), _epsFraction(epsFraction), _output(false) {} template sOffLatticeBoundaryCondition3D::sOffLatticeBoundaryCondition3D( sOffLatticeBoundaryCondition3D const& rhs) : clout(std::cout,"sOffLatticeBoundaryCondition3D"), _sLattice(rhs._sLattice), _epsFraction(rhs._epsFraction), _output(false) { _blockBCs = rhs._blockBCs; _overlap = rhs._overlap; } template sOffLatticeBoundaryCondition3D sOffLatticeBoundaryCondition3D::operator=( sOffLatticeBoundaryCondition3D rhs) { sOffLatticeBoundaryCondition3D tmp(rhs); return tmp; } template sOffLatticeBoundaryCondition3D::~sOffLatticeBoundaryCondition3D() { for (unsigned iC=0; iC<_blockBCs.size(); iC++) { delete _blockBCs[iC]; } } template void sOffLatticeBoundaryCondition3D::addVelocityBoundary( FunctorPtr>&& boundaryIndicator, FunctorPtr>&& bulkIndicator, IndicatorF3D& geometryIndicator) { if (_output) { clout << "epsFraction=" << _epsFraction << std::endl; clout.setMultiOutput(true); } for (int iCloc = 0; iCloc < _sLattice.getLoadBalancer().size(); ++iCloc) { if (_output) { clout << "Cuboid globiC " << _sLattice.getLoadBalancer().glob(iCloc) << " starts to read distances for Velocity Boundary..." << std::endl; } _blockBCs[iCloc]->addVelocityBoundary( boundaryIndicator->getExtendedBlockIndicatorF(iCloc), bulkIndicator->getExtendedBlockIndicatorF(iCloc), geometryIndicator); if (_output) { clout << "Cuboid globiC " << _sLattice.getLoadBalancer().glob(iCloc) << " finished reading distances for Velocity Boundary." << std::endl; } } if (_output) { clout.setMultiOutput(false); } addPoints2CommBC(std::forward(boundaryIndicator)); } template void sOffLatticeBoundaryCondition3D::addVelocityBoundary( SuperGeometry3D& superGeometry, int material, IndicatorF3D& geometryIndicator, std::vector bulkMaterials) { addVelocityBoundary(superGeometry.getMaterialIndicator(material), superGeometry.getMaterialIndicator(std::move(bulkMaterials)), geometryIndicator); } template void sOffLatticeBoundaryCondition3D::addZeroVelocityBoundary( FunctorPtr>&& boundaryIndicator, FunctorPtr>&& bulkIndicator, IndicatorF3D& geometryIndicator) { if (_output) { clout << "epsFraction=" << _epsFraction << std::endl; clout.setMultiOutput(true); } for (int iCloc = 0; iCloc < _sLattice.getLoadBalancer().size(); ++iCloc) { if (_output) { clout << "Cuboid globiC " << _sLattice.getLoadBalancer().glob(iCloc) << " starts to read distances for ZeroVelocity Boundary..." << std::endl; } _blockBCs[iCloc]->addZeroVelocityBoundary( boundaryIndicator->getExtendedBlockIndicatorF(iCloc), bulkIndicator->getExtendedBlockIndicatorF(iCloc), geometryIndicator); if (_output) { clout << "Cuboid globiC " << _sLattice.getLoadBalancer().glob(iCloc) << " finished reading distances for ZeroVelocity Boundary." << std::endl; } } if (_output) { clout.setMultiOutput(false); } addPoints2CommBC(std::forward(boundaryIndicator)); } template void sOffLatticeBoundaryCondition3D::addZeroVelocityBoundary( FunctorPtr>&& boundaryIndicator, IndicatorF3D& geometryIndicator, std::vector bulkMaterials) { SuperGeometry3D& superGeometry = boundaryIndicator->getSuperGeometry(); addZeroVelocityBoundary( std::forward(boundaryIndicator), superGeometry.getMaterialIndicator(std::move(bulkMaterials)), geometryIndicator); } template void sOffLatticeBoundaryCondition3D::addZeroVelocityBoundary( SuperGeometry3D& superGeometry, int material, IndicatorF3D& geometryIndicator, std::vector bulkMaterials) { addZeroVelocityBoundary(superGeometry.getMaterialIndicator(material), geometryIndicator, bulkMaterials); } template void sOffLatticeBoundaryCondition3D::defineU( FunctorPtr>&& boundaryIndicator, FunctorPtr>&& bulkIndicator, AnalyticalF3D& u) { for (int iCloc = 0; iCloc < _sLattice.getLoadBalancer().size(); ++iCloc) { _blockBCs[iCloc]->defineU(boundaryIndicator->getExtendedBlockIndicatorF(iCloc), bulkIndicator->getExtendedBlockIndicatorF(iCloc), u); } } template void sOffLatticeBoundaryCondition3D::defineU( FunctorPtr>&& boundaryIndicator, AnalyticalF3D& u, std::vector bulkMaterials) { defineU(std::forward(boundaryIndicator), boundaryIndicator->getSuperGeometry().getMaterialIndicator(std::move(bulkMaterials)), u); } template void sOffLatticeBoundaryCondition3D::defineU( SuperGeometry3D& superGeometry, int material, AnalyticalF3D& u, std::vector bulkMaterials) { defineU(superGeometry.getMaterialIndicator(material), u, bulkMaterials); } template void sOffLatticeBoundaryCondition3D::addPoints2CommBC( FunctorPtr>&& indicator) { if (_overlap == 0) { return; } SuperGeometry3D& superGeometry = indicator->getSuperGeometry(); for (int iCloc = 0; iCloc < _sLattice.getLoadBalancer().size(); ++iCloc) { const int nX = superGeometry.getBlockGeometry(iCloc).getNx(); const int nY = superGeometry.getBlockGeometry(iCloc).getNy(); const int nZ = superGeometry.getBlockGeometry(iCloc).getNz(); for (int iX=-_overlap; iX nX - 1 || iY < 0 || iY > nY - 1 || iZ < 0 || iZ > nZ - 1 ) { // is inside boundary int found = false; if (superGeometry.getBlockGeometry(iCloc).getMaterial(iX,iY,iZ) != 0) { for (int iXo=-_overlap; iXo<=_overlap && !found; ++iXo) { for (int iYo=-_overlap; iYo<=_overlap && !found; ++iYo) { for (int iZo=-_overlap; iZo<=_overlap && !found; ++iZo) { const int nextX = iXo + iX; const int nextY = iYo + iY; const int nextZ = iZo + iZ; if (indicator->getBlockIndicatorF(iCloc)(nextX, nextY, nextZ)) { _sLattice.get_commBC().add_cell(iCloc, iX, iY, iZ); found = true; } } } } } } } } } } } template void sOffLatticeBoundaryCondition3D::addPoints2CommBC( SuperGeometry3D& superGeometry, int material) { addPoints2CommBC(superGeometry.getMaterialIndicator(material)); } template SuperLattice3D& sOffLatticeBoundaryCondition3D::getSuperLattice() { return _sLattice; } template std::vector* >& sOffLatticeBoundaryCondition3D::getBlockBCs() { return _blockBCs; } template int sOffLatticeBoundaryCondition3D::getOverlap() { return _overlap; } template void sOffLatticeBoundaryCondition3D::setOverlap(int overlap) { _overlap = overlap; } template void sOffLatticeBoundaryCondition3D::outputOn() { _output = true; int nC = _sLattice.getLoadBalancer().size(); for (int iCloc = 0; iCloc < nC; iCloc++) { _blockBCs[iCloc]->outputOn(); } } template void sOffLatticeBoundaryCondition3D::outputOff() { _output = false; int nC = _sLattice.getLoadBalancer().size(); for (int iCloc = 0; iCloc < nC; iCloc++) { _blockBCs[iCloc]->outputOff(); } } ////////////////// Factory functions ////////////////////////////////// template void createBouzidiBoundaryCondition3D(sOffLatticeBoundaryCondition3D& sBC) { int nC = sBC.getSuperLattice().getLoadBalancer().size(); sBC.setOverlap(1); for (int iC=0; iC* blockBC = createBouzidiBoundaryCondition3D(sBC.getSuperLattice().getExtendedBlockLattice(iC)); sBC.getBlockBCs().push_back(blockBC); } } } // namespace olb #endif