Moved file path handling to regIOobject and made it type specific so now every object can have its own rules. Examples: - faceZones are now processor local (and don't search up anymore) - timeStampMaster is now no longer hardcoded inside IOdictionary (e.g. uniformDimensionedFields support it as well) - the distributedTriSurfaceMesh is properly processor-local; no need for fileModificationChecking manipulation.
239 lines
7.1 KiB
C
239 lines
7.1 KiB
C
/*---------------------------------------------------------------------------*\
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========= |
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\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
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\\ / O peration |
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\\ / A nd | Copyright (C) 2011-2015 OpenFOAM Foundation
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\\/ M anipulation |
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-------------------------------------------------------------------------------
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License
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This file is part of OpenFOAM.
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OpenFOAM is free software: you can redistribute it and/or modify it
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under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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OpenFOAM is distributed in the hope that it will be useful, but WITHOUT
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ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License
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along with OpenFOAM. If not, see <http://www.gnu.org/licenses/>.
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Application
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applyBoundaryLayer
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Description
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Apply a simplified boundary-layer model to the velocity and
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turbulence fields based on the 1/7th power-law.
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The uniform boundary-layer thickness is either provided via the -ybl option
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or calculated as the average of the distance to the wall scaled with
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the thickness coefficient supplied via the option -Cbl. If both options
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are provided -ybl is used.
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\*---------------------------------------------------------------------------*/
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#include "fvCFD.H"
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#include "singlePhaseTransportModel.H"
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#include "turbulentTransportModel.H"
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#include "wallDist.H"
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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// turbulence constants - file-scope
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static const scalar Cmu(0.09);
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static const scalar kappa(0.41);
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int main(int argc, char *argv[])
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{
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argList::addNote
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(
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"apply a simplified boundary-layer model to the velocity and\n"
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"turbulence fields based on the 1/7th power-law."
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);
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argList::addOption
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(
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"ybl",
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"scalar",
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"specify the boundary-layer thickness"
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);
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argList::addOption
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(
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"Cbl",
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"scalar",
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"boundary-layer thickness as Cbl * mean distance to wall"
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);
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argList::addBoolOption
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(
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"writenut",
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"write nut field"
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);
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#include "setRootCase.H"
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if (!args.optionFound("ybl") && !args.optionFound("Cbl"))
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{
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FatalErrorIn(args.executable())
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<< "Neither option 'ybl' or 'Cbl' have been provided to calculate "
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<< "the boundary-layer thickness.\n"
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<< "Please choose either 'ybl' OR 'Cbl'."
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<< exit(FatalError);
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}
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else if (args.optionFound("ybl") && args.optionFound("Cbl"))
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{
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FatalErrorIn(args.executable())
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<< "Both 'ybl' and 'Cbl' have been provided to calculate "
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<< "the boundary-layer thickness.\n"
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<< "Please choose either 'ybl' OR 'Cbl'."
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<< exit(FatalError);
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}
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#include "createTime.H"
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#include "createMesh.H"
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#include "createFields.H"
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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// Modify velocity by applying a 1/7th power law boundary-layer
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// u/U0 = (y/ybl)^(1/7)
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// assumes U0 is the same as the current cell velocity
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Info<< "Setting boundary layer velocity" << nl << endl;
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scalar yblv = ybl.value();
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forAll(U, cellI)
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{
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if (y[cellI] <= yblv)
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{
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mask[cellI] = 1;
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U[cellI] *= ::pow(y[cellI]/yblv, (1.0/7.0));
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}
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}
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mask.correctBoundaryConditions();
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Info<< "Writing U\n" << endl;
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U.write();
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// Update/re-write phi
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#include "createPhi.H"
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phi.write();
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singlePhaseTransportModel laminarTransport(U, phi);
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autoPtr<incompressible::turbulenceModel> turbulence
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(
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incompressible::turbulenceModel::New(U, phi, laminarTransport)
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);
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if (isA<incompressible::RASModel>(turbulence()))
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{
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// Calculate nut - reference nut is calculated by the turbulence model
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// on its construction
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tmp<volScalarField> tnut = turbulence->nut();
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volScalarField& nut = tnut();
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volScalarField S(mag(dev(symm(fvc::grad(U)))));
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nut = (1 - mask)*nut + mask*sqr(kappa*min(y, ybl))*::sqrt(2)*S;
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// do not correct BC - wall functions will 'undo' manipulation above
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// by using nut from turbulence model
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if (args.optionFound("writenut"))
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{
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Info<< "Writing nut" << endl;
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nut.write();
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}
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//--- Read and modify turbulence fields
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// Turbulence k
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tmp<volScalarField> tk = turbulence->k();
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volScalarField& k = tk();
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scalar ck0 = pow025(Cmu)*kappa;
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k = (1 - mask)*k + mask*sqr(nut/(ck0*min(y, ybl)));
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// do not correct BC - operation may use inconsistent fields wrt these
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// local manipulations
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// k.correctBoundaryConditions();
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Info<< "Writing k\n" << endl;
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k.write();
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// Turbulence epsilon
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tmp<volScalarField> tepsilon = turbulence->epsilon();
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volScalarField& epsilon = tepsilon();
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scalar ce0 = ::pow(Cmu, 0.75)/kappa;
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epsilon = (1 - mask)*epsilon + mask*ce0*k*sqrt(k)/min(y, ybl);
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// do not correct BC - wall functions will use non-updated k from
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// turbulence model
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// epsilon.correctBoundaryConditions();
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Info<< "Writing epsilon\n" << endl;
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epsilon.write();
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// Turbulence omega
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IOobject omegaHeader
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(
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"omega",
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runTime.timeName(),
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mesh,
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IOobject::MUST_READ,
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IOobject::NO_WRITE,
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false
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);
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if (omegaHeader.typeHeaderOk<volScalarField>(true))
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{
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volScalarField omega(omegaHeader, mesh);
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dimensionedScalar k0("VSMALL", k.dimensions(), VSMALL);
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omega = (1 - mask)*omega + mask*epsilon/(Cmu*k + k0);
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// do not correct BC - wall functions will use non-updated k from
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// turbulence model
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// omega.correctBoundaryConditions();
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Info<< "Writing omega\n" << endl;
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omega.write();
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}
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// Turbulence nuTilda
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IOobject nuTildaHeader
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(
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"nuTilda",
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runTime.timeName(),
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mesh,
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IOobject::MUST_READ,
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IOobject::NO_WRITE,
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false
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);
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if (nuTildaHeader.typeHeaderOk<volScalarField>(true))
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{
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volScalarField nuTilda(nuTildaHeader, mesh);
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nuTilda = nut;
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// do not correct BC
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// nuTilda.correctBoundaryConditions();
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Info<< "Writing nuTilda\n" << endl;
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nuTilda.write();
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}
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}
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Info<< nl << "ExecutionTime = " << runTime.elapsedCpuTime() << " s"
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<< " ClockTime = " << runTime.elapsedClockTime() << " s"
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<< nl << endl;
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Info<< "End\n" << endl;
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return 0;
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}
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// ************************************************************************* //
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