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/* |
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* Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. |
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* |
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* The University of Notre Dame grants you ("Licensee") a |
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* non-exclusive, royalty free, license to use, modify and |
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* redistribute this software in source and binary code form, provided |
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* that the following conditions are met: |
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* |
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* 1. Redistributions of source code must retain the above copyright |
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* notice, this list of conditions and the following disclaimer. |
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* |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in the |
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* documentation and/or other materials provided with the |
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* distribution. |
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* |
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* This software is provided "AS IS," without a warranty of any |
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* kind. All express or implied conditions, representations and |
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* warranties, including any implied warranty of merchantability, |
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* fitness for a particular purpose or non-infringement, are hereby |
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* excluded. The University of Notre Dame and its licensors shall not |
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* be liable for any damages suffered by licensee as a result of |
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* using, modifying or distributing the software or its |
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* derivatives. In no event will the University of Notre Dame or its |
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* licensors be liable for any lost revenue, profit or data, or for |
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* direct, indirect, special, consequential, incidental or punitive |
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* damages, however caused and regardless of the theory of liability, |
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* arising out of the use of or inability to use software, even if the |
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* University of Notre Dame has been advised of the possibility of |
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* such damages. |
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* |
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* SUPPORT OPEN SCIENCE! If you use OpenMD or its source code in your |
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* research, please cite the appropriate papers when you publish your |
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* work. Good starting points are: |
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* |
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* [1] Meineke, et al., J. Comp. Chem. 26, 252-271 (2005). |
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* [2] Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006). |
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* [3] Sun, Lin & Gezelter, J. Chem. Phys. 128, 234107 (2008). |
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* [4] Kuang & Gezelter, J. Chem. Phys. 133, 164101 (2010). |
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* [5] Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). |
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*/ |
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|
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#ifdef IS_MPI |
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#include <mpi.h> |
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#endif //is_mpi |
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|
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#include <math.h> |
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#include <iostream> |
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|
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#include "brains/Thermo.hpp" |
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#include "primitives/Molecule.hpp" |
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#include "utils/simError.h" |
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#include "utils/PhysicalConstants.hpp" |
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#include "types/FixedChargeAdapter.hpp" |
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#include "types/FluctuatingChargeAdapter.hpp" |
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#include "types/MultipoleAdapter.hpp" |
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#ifdef HAVE_QHULL |
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#include "math/ConvexHull.hpp" |
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#include "math/AlphaHull.hpp" |
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#endif |
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|
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using namespace std; |
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namespace OpenMD { |
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|
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RealType Thermo::getTranslationalKinetic() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasTranslationalKineticEnergy) { |
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SimInfo::MoleculeIterator miter; |
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vector<StuntDouble*>::iterator iiter; |
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Molecule* mol; |
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StuntDouble* sd; |
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Vector3d vel; |
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RealType mass; |
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RealType kinetic(0.0); |
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|
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for (mol = info_->beginMolecule(miter); mol != NULL; |
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mol = info_->nextMolecule(miter)) { |
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|
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for (sd = mol->beginIntegrableObject(iiter); sd != NULL; |
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sd = mol->nextIntegrableObject(iiter)) { |
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|
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mass = sd->getMass(); |
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vel = sd->getVel(); |
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|
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kinetic += mass * (vel[0]*vel[0] + vel[1]*vel[1] + vel[2]*vel[2]); |
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|
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} |
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} |
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|
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#ifdef IS_MPI |
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MPI_Allreduce(MPI_IN_PLACE, &kinetic, 1, MPI_REALTYPE, |
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MPI_SUM, MPI_COMM_WORLD); |
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#endif |
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|
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kinetic = kinetic * 0.5 / PhysicalConstants::energyConvert; |
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|
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|
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snap->setTranslationalKineticEnergy(kinetic); |
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} |
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return snap->getTranslationalKineticEnergy(); |
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} |
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|
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RealType Thermo::getRotationalKinetic() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasRotationalKineticEnergy) { |
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SimInfo::MoleculeIterator miter; |
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vector<StuntDouble*>::iterator iiter; |
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Molecule* mol; |
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StuntDouble* sd; |
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Vector3d angMom; |
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Mat3x3d I; |
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int i, j, k; |
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RealType kinetic(0.0); |
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|
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for (mol = info_->beginMolecule(miter); mol != NULL; |
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mol = info_->nextMolecule(miter)) { |
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|
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for (sd = mol->beginIntegrableObject(iiter); sd != NULL; |
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sd = mol->nextIntegrableObject(iiter)) { |
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|
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if (sd->isDirectional()) { |
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angMom = sd->getJ(); |
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I = sd->getI(); |
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|
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if (sd->isLinear()) { |
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i = sd->linearAxis(); |
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j = (i + 1) % 3; |
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k = (i + 2) % 3; |
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kinetic += angMom[j] * angMom[j] / I(j, j) |
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+ angMom[k] * angMom[k] / I(k, k); |
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} else { |
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kinetic += angMom[0]*angMom[0]/I(0, 0) |
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+ angMom[1]*angMom[1]/I(1, 1) |
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+ angMom[2]*angMom[2]/I(2, 2); |
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} |
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} |
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} |
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} |
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|
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#ifdef IS_MPI |
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MPI_Allreduce(MPI_IN_PLACE, &kinetic, 1, MPI_REALTYPE, |
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MPI_SUM, MPI_COMM_WORLD); |
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#endif |
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|
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kinetic = kinetic * 0.5 / PhysicalConstants::energyConvert; |
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|
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snap->setRotationalKineticEnergy(kinetic); |
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} |
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return snap->getRotationalKineticEnergy(); |
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} |
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|
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|
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|
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RealType Thermo::getKinetic() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasKineticEnergy) { |
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RealType ke = getTranslationalKinetic() + getRotationalKinetic(); |
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snap->setKineticEnergy(ke); |
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} |
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return snap->getKineticEnergy(); |
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} |
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|
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RealType Thermo::getPotential() { |
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|
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// ForceManager computes the potential and stores it in the |
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// Snapshot. All we have to do is report it. |
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|
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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return snap->getPotentialEnergy(); |
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} |
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|
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RealType Thermo::getTotalEnergy() { |
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|
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasTotalEnergy) { |
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snap->setTotalEnergy(this->getKinetic() + this->getPotential()); |
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} |
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|
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return snap->getTotalEnergy(); |
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} |
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|
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RealType Thermo::getTemperature() { |
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|
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasTemperature) { |
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|
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RealType temperature = ( 2.0 * this->getKinetic() ) |
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/ (info_->getNdf()* PhysicalConstants::kb ); |
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|
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snap->setTemperature(temperature); |
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} |
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|
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return snap->getTemperature(); |
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} |
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|
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RealType Thermo::getElectronicTemperature() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasElectronicTemperature) { |
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|
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SimInfo::MoleculeIterator miter; |
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vector<Atom*>::iterator iiter; |
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Molecule* mol; |
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Atom* atom; |
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RealType cvel; |
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RealType cmass; |
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RealType kinetic(0.0); |
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RealType eTemp; |
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|
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for (mol = info_->beginMolecule(miter); mol != NULL; |
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mol = info_->nextMolecule(miter)) { |
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|
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for (atom = mol->beginFluctuatingCharge(iiter); atom != NULL; |
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atom = mol->nextFluctuatingCharge(iiter)) { |
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|
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cmass = atom->getChargeMass(); |
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cvel = atom->getFlucQVel(); |
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|
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kinetic += cmass * cvel * cvel; |
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|
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} |
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} |
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|
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#ifdef IS_MPI |
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MPI_Allreduce(MPI_IN_PLACE, &kinetic, 1, MPI_REALTYPE, |
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MPI_SUM, MPI_COMM_WORLD); |
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#endif |
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|
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kinetic *= 0.5; |
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eTemp = (2.0 * kinetic) / |
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(info_->getNFluctuatingCharges() * PhysicalConstants::kb ); |
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|
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snap->setElectronicTemperature(eTemp); |
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} |
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|
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return snap->getElectronicTemperature(); |
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} |
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|
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|
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RealType Thermo::getVolume() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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return snap->getVolume(); |
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} |
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|
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RealType Thermo::getPressure() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasPressure) { |
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// Relies on the calculation of the full molecular pressure tensor |
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|
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Mat3x3d tensor; |
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RealType pressure; |
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|
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tensor = getPressureTensor(); |
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|
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pressure = PhysicalConstants::pressureConvert * |
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(tensor(0, 0) + tensor(1, 1) + tensor(2, 2)) / 3.0; |
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|
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snap->setPressure(pressure); |
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} |
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|
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return snap->getPressure(); |
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} |
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|
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Mat3x3d Thermo::getPressureTensor() { |
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// returns pressure tensor in units amu*fs^-2*Ang^-1 |
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// routine derived via viral theorem description in: |
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// Paci, E. and Marchi, M. J.Phys.Chem. 1996, 100, 4314-4322 |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
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|
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if (!snap->hasPressureTensor) { |
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|
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Mat3x3d pressureTensor; |
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Mat3x3d p_tens(0.0); |
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RealType mass; |
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Vector3d vcom; |
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|
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SimInfo::MoleculeIterator i; |
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vector<StuntDouble*>::iterator j; |
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Molecule* mol; |
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StuntDouble* sd; |
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for (mol = info_->beginMolecule(i); mol != NULL; |
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mol = info_->nextMolecule(i)) { |
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|
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for (sd = mol->beginIntegrableObject(j); sd != NULL; |
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sd = mol->nextIntegrableObject(j)) { |
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|
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mass = sd->getMass(); |
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vcom = sd->getVel(); |
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p_tens += mass * outProduct(vcom, vcom); |
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} |
297 |
} |
298 |
|
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#ifdef IS_MPI |
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MPI_Allreduce(MPI_IN_PLACE, p_tens.getArrayPointer(), 9, |
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MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
302 |
#endif |
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|
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RealType volume = this->getVolume(); |
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Mat3x3d stressTensor = snap->getStressTensor(); |
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|
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pressureTensor = (p_tens + |
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PhysicalConstants::energyConvert * stressTensor)/volume; |
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|
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snap->setPressureTensor(pressureTensor); |
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} |
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return snap->getPressureTensor(); |
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} |
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|
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|
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|
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|
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Vector3d Thermo::getSystemDipole() { |
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Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
320 |
|
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if (!snap->hasSystemDipole) { |
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SimInfo::MoleculeIterator miter; |
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vector<Atom*>::iterator aiter; |
324 |
Molecule* mol; |
325 |
Atom* atom; |
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RealType charge; |
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Vector3d ri(0.0); |
328 |
Vector3d dipoleVector(0.0); |
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Vector3d nPos(0.0); |
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Vector3d pPos(0.0); |
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RealType nChg(0.0); |
332 |
RealType pChg(0.0); |
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int nCount = 0; |
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int pCount = 0; |
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|
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RealType chargeToC = 1.60217733e-19; |
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RealType angstromToM = 1.0e-10; |
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RealType debyeToCm = 3.33564095198e-30; |
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|
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for (mol = info_->beginMolecule(miter); mol != NULL; |
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mol = info_->nextMolecule(miter)) { |
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|
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for (atom = mol->beginAtom(aiter); atom != NULL; |
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atom = mol->nextAtom(aiter)) { |
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|
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charge = 0.0; |
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|
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FixedChargeAdapter fca = FixedChargeAdapter(atom->getAtomType()); |
349 |
if ( fca.isFixedCharge() ) { |
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charge = fca.getCharge(); |
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} |
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|
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FluctuatingChargeAdapter fqa = FluctuatingChargeAdapter(atom->getAtomType()); |
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if ( fqa.isFluctuatingCharge() ) { |
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charge += atom->getFlucQPos(); |
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} |
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|
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charge *= chargeToC; |
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|
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ri = atom->getPos(); |
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snap->wrapVector(ri); |
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ri *= angstromToM; |
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|
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if (charge < 0.0) { |
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nPos += ri; |
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nChg -= charge; |
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nCount++; |
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} else if (charge > 0.0) { |
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pPos += ri; |
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pChg += charge; |
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pCount++; |
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} |
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|
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if (atom->isDipole()) { |
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dipoleVector += atom->getDipole() * debyeToCm; |
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} |
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} |
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} |
379 |
|
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|
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#ifdef IS_MPI |
382 |
MPI_Allreduce(MPI_IN_PLACE, &pChg, 1, MPI_REALTYPE, |
383 |
MPI_SUM, MPI_COMM_WORLD); |
384 |
MPI_Allreduce(MPI_IN_PLACE, &nChg, 1, MPI_REALTYPE, |
385 |
MPI_SUM, MPI_COMM_WORLD); |
386 |
|
387 |
MPI_Allreduce(MPI_IN_PLACE, &pCount, 1, MPI_INTEGER, |
388 |
MPI_SUM, MPI_COMM_WORLD); |
389 |
MPI_Allreduce(MPI_IN_PLACE, &nCount, 1, MPI_INTEGER, |
390 |
MPI_SUM, MPI_COMM_WORLD); |
391 |
|
392 |
MPI_Allreduce(MPI_IN_PLACE, pPos.getArrayPointer(), 3, |
393 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
394 |
MPI_Allreduce(MPI_IN_PLACE, nPos.getArrayPointer(), 3, |
395 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
396 |
|
397 |
MPI_Allreduce(MPI_IN_PLACE, dipoleVector.getArrayPointer(), |
398 |
3, MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
399 |
#endif |
400 |
|
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// first load the accumulated dipole moment (if dipoles were present) |
402 |
Vector3d boxDipole = dipoleVector; |
403 |
// now include the dipole moment due to charges |
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// use the lesser of the positive and negative charge totals |
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RealType chg_value = nChg <= pChg ? nChg : pChg; |
406 |
|
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// find the average positions |
408 |
if (pCount > 0 && nCount > 0 ) { |
409 |
pPos /= pCount; |
410 |
nPos /= nCount; |
411 |
} |
412 |
|
413 |
// dipole is from the negative to the positive (physics notation) |
414 |
boxDipole += (pPos - nPos) * chg_value; |
415 |
snap->setSystemDipole(boxDipole); |
416 |
} |
417 |
|
418 |
return snap->getSystemDipole(); |
419 |
} |
420 |
|
421 |
// Returns the Heat Flux Vector for the system |
422 |
Vector3d Thermo::getHeatFlux(){ |
423 |
Snapshot* currSnapshot = info_->getSnapshotManager()->getCurrentSnapshot(); |
424 |
SimInfo::MoleculeIterator miter; |
425 |
vector<StuntDouble*>::iterator iiter; |
426 |
Molecule* mol; |
427 |
StuntDouble* sd; |
428 |
RigidBody::AtomIterator ai; |
429 |
Atom* atom; |
430 |
Vector3d vel; |
431 |
Vector3d angMom; |
432 |
Mat3x3d I; |
433 |
int i; |
434 |
int j; |
435 |
int k; |
436 |
RealType mass; |
437 |
|
438 |
Vector3d x_a; |
439 |
RealType kinetic; |
440 |
RealType potential; |
441 |
RealType eatom; |
442 |
// Convective portion of the heat flux |
443 |
Vector3d heatFluxJc = V3Zero; |
444 |
|
445 |
/* Calculate convective portion of the heat flux */ |
446 |
for (mol = info_->beginMolecule(miter); mol != NULL; |
447 |
mol = info_->nextMolecule(miter)) { |
448 |
|
449 |
for (sd = mol->beginIntegrableObject(iiter); |
450 |
sd != NULL; |
451 |
sd = mol->nextIntegrableObject(iiter)) { |
452 |
|
453 |
mass = sd->getMass(); |
454 |
vel = sd->getVel(); |
455 |
|
456 |
kinetic = mass * (vel[0]*vel[0] + vel[1]*vel[1] + vel[2]*vel[2]); |
457 |
|
458 |
if (sd->isDirectional()) { |
459 |
angMom = sd->getJ(); |
460 |
I = sd->getI(); |
461 |
|
462 |
if (sd->isLinear()) { |
463 |
i = sd->linearAxis(); |
464 |
j = (i + 1) % 3; |
465 |
k = (i + 2) % 3; |
466 |
kinetic += angMom[j] * angMom[j] / I(j, j) |
467 |
+ angMom[k] * angMom[k] / I(k, k); |
468 |
} else { |
469 |
kinetic += angMom[0]*angMom[0]/I(0, 0) |
470 |
+ angMom[1]*angMom[1]/I(1, 1) |
471 |
+ angMom[2]*angMom[2]/I(2, 2); |
472 |
} |
473 |
} |
474 |
|
475 |
potential = 0.0; |
476 |
|
477 |
if (sd->isRigidBody()) { |
478 |
RigidBody* rb = dynamic_cast<RigidBody*>(sd); |
479 |
for (atom = rb->beginAtom(ai); atom != NULL; |
480 |
atom = rb->nextAtom(ai)) { |
481 |
potential += atom->getParticlePot(); |
482 |
} |
483 |
} else { |
484 |
potential = sd->getParticlePot(); |
485 |
} |
486 |
|
487 |
potential *= PhysicalConstants::energyConvert; // amu A^2/fs^2 |
488 |
// The potential may not be a 1/2 factor |
489 |
eatom = (kinetic + potential)/2.0; // amu A^2/fs^2 |
490 |
heatFluxJc[0] += eatom*vel[0]; // amu A^3/fs^3 |
491 |
heatFluxJc[1] += eatom*vel[1]; // amu A^3/fs^3 |
492 |
heatFluxJc[2] += eatom*vel[2]; // amu A^3/fs^3 |
493 |
} |
494 |
} |
495 |
|
496 |
/* The J_v vector is reduced in the forceManager so everyone has |
497 |
* the global Jv. Jc is computed over the local atoms and must be |
498 |
* reduced among all processors. |
499 |
*/ |
500 |
#ifdef IS_MPI |
501 |
MPI_Allreduce(MPI_IN_PLACE, &heatFluxJc[0], 3, MPI_REALTYPE, |
502 |
MPI_SUM, MPI_COMM_WORLD); |
503 |
#endif |
504 |
|
505 |
// (kcal/mol * A/fs) * conversion => (amu A^3)/fs^3 |
506 |
|
507 |
Vector3d heatFluxJv = currSnapshot->getConductiveHeatFlux() * |
508 |
PhysicalConstants::energyConvert; |
509 |
|
510 |
// Correct for the fact the flux is 1/V (Jc + Jv) |
511 |
return (heatFluxJv + heatFluxJc) / this->getVolume(); // amu / fs^3 |
512 |
} |
513 |
|
514 |
|
515 |
Vector3d Thermo::getComVel(){ |
516 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
517 |
|
518 |
if (!snap->hasCOMvel) { |
519 |
|
520 |
SimInfo::MoleculeIterator i; |
521 |
Molecule* mol; |
522 |
|
523 |
Vector3d comVel(0.0); |
524 |
RealType totalMass(0.0); |
525 |
|
526 |
for (mol = info_->beginMolecule(i); mol != NULL; |
527 |
mol = info_->nextMolecule(i)) { |
528 |
RealType mass = mol->getMass(); |
529 |
totalMass += mass; |
530 |
comVel += mass * mol->getComVel(); |
531 |
} |
532 |
|
533 |
#ifdef IS_MPI |
534 |
MPI_Allreduce(MPI_IN_PLACE, &totalMass, 1, MPI_REALTYPE, |
535 |
MPI_SUM, MPI_COMM_WORLD); |
536 |
MPI_Allreduce(MPI_IN_PLACE, comVel.getArrayPointer(), 3, |
537 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
538 |
#endif |
539 |
|
540 |
comVel /= totalMass; |
541 |
snap->setCOMvel(comVel); |
542 |
} |
543 |
return snap->getCOMvel(); |
544 |
} |
545 |
|
546 |
Vector3d Thermo::getCom(){ |
547 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
548 |
|
549 |
if (!snap->hasCOM) { |
550 |
|
551 |
SimInfo::MoleculeIterator i; |
552 |
Molecule* mol; |
553 |
|
554 |
Vector3d com(0.0); |
555 |
RealType totalMass(0.0); |
556 |
|
557 |
for (mol = info_->beginMolecule(i); mol != NULL; |
558 |
mol = info_->nextMolecule(i)) { |
559 |
RealType mass = mol->getMass(); |
560 |
totalMass += mass; |
561 |
com += mass * mol->getCom(); |
562 |
} |
563 |
|
564 |
#ifdef IS_MPI |
565 |
MPI_Allreduce(MPI_IN_PLACE, &totalMass, 1, MPI_REALTYPE, |
566 |
MPI_SUM, MPI_COMM_WORLD); |
567 |
MPI_Allreduce(MPI_IN_PLACE, com.getArrayPointer(), 3, |
568 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
569 |
#endif |
570 |
|
571 |
com /= totalMass; |
572 |
snap->setCOM(com); |
573 |
} |
574 |
return snap->getCOM(); |
575 |
} |
576 |
|
577 |
/** |
578 |
* Returns center of mass and center of mass velocity in one |
579 |
* function call. |
580 |
*/ |
581 |
void Thermo::getComAll(Vector3d &com, Vector3d &comVel){ |
582 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
583 |
|
584 |
if (!(snap->hasCOM && snap->hasCOMvel)) { |
585 |
|
586 |
SimInfo::MoleculeIterator i; |
587 |
Molecule* mol; |
588 |
|
589 |
RealType totalMass(0.0); |
590 |
|
591 |
com = 0.0; |
592 |
comVel = 0.0; |
593 |
|
594 |
for (mol = info_->beginMolecule(i); mol != NULL; |
595 |
mol = info_->nextMolecule(i)) { |
596 |
RealType mass = mol->getMass(); |
597 |
totalMass += mass; |
598 |
com += mass * mol->getCom(); |
599 |
comVel += mass * mol->getComVel(); |
600 |
} |
601 |
|
602 |
#ifdef IS_MPI |
603 |
MPI_Allreduce(MPI_IN_PLACE, &totalMass, 1, MPI_REALTYPE, |
604 |
MPI_SUM, MPI_COMM_WORLD); |
605 |
MPI_Allreduce(MPI_IN_PLACE, com.getArrayPointer(), 3, |
606 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
607 |
MPI_Allreduce(MPI_IN_PLACE, comVel.getArrayPointer(), 3, |
608 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
609 |
#endif |
610 |
|
611 |
com /= totalMass; |
612 |
comVel /= totalMass; |
613 |
snap->setCOM(com); |
614 |
snap->setCOMvel(comVel); |
615 |
} |
616 |
com = snap->getCOM(); |
617 |
comVel = snap->getCOMvel(); |
618 |
return; |
619 |
} |
620 |
|
621 |
/** |
622 |
* \brief Return inertia tensor for entire system and angular momentum |
623 |
* Vector. |
624 |
* |
625 |
* |
626 |
* |
627 |
* [ Ixx -Ixy -Ixz ] |
628 |
* I =| -Iyx Iyy -Iyz | |
629 |
* [ -Izx -Iyz Izz ] |
630 |
*/ |
631 |
void Thermo::getInertiaTensor(Mat3x3d &inertiaTensor, |
632 |
Vector3d &angularMomentum){ |
633 |
|
634 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
635 |
|
636 |
if (!(snap->hasInertiaTensor && snap->hasCOMw)) { |
637 |
|
638 |
RealType xx = 0.0; |
639 |
RealType yy = 0.0; |
640 |
RealType zz = 0.0; |
641 |
RealType xy = 0.0; |
642 |
RealType xz = 0.0; |
643 |
RealType yz = 0.0; |
644 |
Vector3d com(0.0); |
645 |
Vector3d comVel(0.0); |
646 |
|
647 |
getComAll(com, comVel); |
648 |
|
649 |
SimInfo::MoleculeIterator i; |
650 |
Molecule* mol; |
651 |
|
652 |
Vector3d thisq(0.0); |
653 |
Vector3d thisv(0.0); |
654 |
|
655 |
RealType thisMass = 0.0; |
656 |
|
657 |
for (mol = info_->beginMolecule(i); mol != NULL; |
658 |
mol = info_->nextMolecule(i)) { |
659 |
|
660 |
thisq = mol->getCom()-com; |
661 |
thisv = mol->getComVel()-comVel; |
662 |
thisMass = mol->getMass(); |
663 |
// Compute moment of intertia coefficients. |
664 |
xx += thisq[0]*thisq[0]*thisMass; |
665 |
yy += thisq[1]*thisq[1]*thisMass; |
666 |
zz += thisq[2]*thisq[2]*thisMass; |
667 |
|
668 |
// compute products of intertia |
669 |
xy += thisq[0]*thisq[1]*thisMass; |
670 |
xz += thisq[0]*thisq[2]*thisMass; |
671 |
yz += thisq[1]*thisq[2]*thisMass; |
672 |
|
673 |
angularMomentum += cross( thisq, thisv ) * thisMass; |
674 |
} |
675 |
|
676 |
inertiaTensor(0,0) = yy + zz; |
677 |
inertiaTensor(0,1) = -xy; |
678 |
inertiaTensor(0,2) = -xz; |
679 |
inertiaTensor(1,0) = -xy; |
680 |
inertiaTensor(1,1) = xx + zz; |
681 |
inertiaTensor(1,2) = -yz; |
682 |
inertiaTensor(2,0) = -xz; |
683 |
inertiaTensor(2,1) = -yz; |
684 |
inertiaTensor(2,2) = xx + yy; |
685 |
|
686 |
#ifdef IS_MPI |
687 |
MPI_Allreduce(MPI_IN_PLACE, inertiaTensor.getArrayPointer(), |
688 |
9, MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
689 |
MPI_Allreduce(MPI_IN_PLACE, |
690 |
angularMomentum.getArrayPointer(), 3, |
691 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
692 |
#endif |
693 |
|
694 |
snap->setCOMw(angularMomentum); |
695 |
snap->setInertiaTensor(inertiaTensor); |
696 |
} |
697 |
|
698 |
angularMomentum = snap->getCOMw(); |
699 |
inertiaTensor = snap->getInertiaTensor(); |
700 |
|
701 |
return; |
702 |
} |
703 |
|
704 |
|
705 |
Mat3x3d Thermo::getBoundingBox(){ |
706 |
|
707 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
708 |
|
709 |
if (!(snap->hasBoundingBox)) { |
710 |
|
711 |
SimInfo::MoleculeIterator i; |
712 |
Molecule::RigidBodyIterator ri; |
713 |
Molecule::AtomIterator ai; |
714 |
Molecule* mol; |
715 |
RigidBody* rb; |
716 |
Atom* atom; |
717 |
Vector3d pos, bMax, bMin; |
718 |
int index = 0; |
719 |
|
720 |
for (mol = info_->beginMolecule(i); mol != NULL; |
721 |
mol = info_->nextMolecule(i)) { |
722 |
|
723 |
//change the positions of atoms which belong to the rigidbodies |
724 |
for (rb = mol->beginRigidBody(ri); rb != NULL; |
725 |
rb = mol->nextRigidBody(ri)) { |
726 |
rb->updateAtoms(); |
727 |
} |
728 |
|
729 |
for(atom = mol->beginAtom(ai); atom != NULL; |
730 |
atom = mol->nextAtom(ai)) { |
731 |
|
732 |
pos = atom->getPos(); |
733 |
|
734 |
if (index == 0) { |
735 |
bMax = pos; |
736 |
bMin = pos; |
737 |
} else { |
738 |
for (int i = 0; i < 3; i++) { |
739 |
bMax[i] = max(bMax[i], pos[i]); |
740 |
bMin[i] = min(bMin[i], pos[i]); |
741 |
} |
742 |
} |
743 |
index++; |
744 |
} |
745 |
} |
746 |
|
747 |
#ifdef IS_MPI |
748 |
MPI_Allreduce(MPI_IN_PLACE, &bMax[0], 3, MPI_REALTYPE, |
749 |
MPI_MAX, MPI_COMM_WORLD); |
750 |
|
751 |
MPI_Allreduce(MPI_IN_PLACE, &bMin[0], 3, MPI_REALTYPE, |
752 |
MPI_MIN, MPI_COMM_WORLD); |
753 |
#endif |
754 |
Mat3x3d bBox = Mat3x3d(0.0); |
755 |
for (int i = 0; i < 3; i++) { |
756 |
bBox(i,i) = bMax[i] - bMin[i]; |
757 |
} |
758 |
snap->setBoundingBox(bBox); |
759 |
} |
760 |
|
761 |
return snap->getBoundingBox(); |
762 |
} |
763 |
|
764 |
|
765 |
// Returns the angular momentum of the system |
766 |
Vector3d Thermo::getAngularMomentum(){ |
767 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
768 |
|
769 |
if (!snap->hasCOMw) { |
770 |
|
771 |
Vector3d com(0.0); |
772 |
Vector3d comVel(0.0); |
773 |
Vector3d angularMomentum(0.0); |
774 |
|
775 |
getComAll(com, comVel); |
776 |
|
777 |
SimInfo::MoleculeIterator i; |
778 |
Molecule* mol; |
779 |
|
780 |
Vector3d thisr(0.0); |
781 |
Vector3d thisp(0.0); |
782 |
|
783 |
RealType thisMass; |
784 |
|
785 |
for (mol = info_->beginMolecule(i); mol != NULL; |
786 |
mol = info_->nextMolecule(i)) { |
787 |
thisMass = mol->getMass(); |
788 |
thisr = mol->getCom() - com; |
789 |
thisp = (mol->getComVel() - comVel) * thisMass; |
790 |
|
791 |
angularMomentum += cross( thisr, thisp ); |
792 |
} |
793 |
|
794 |
#ifdef IS_MPI |
795 |
MPI_Allreduce(MPI_IN_PLACE, |
796 |
angularMomentum.getArrayPointer(), 3, |
797 |
MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
798 |
#endif |
799 |
|
800 |
snap->setCOMw(angularMomentum); |
801 |
} |
802 |
|
803 |
return snap->getCOMw(); |
804 |
} |
805 |
|
806 |
|
807 |
/** |
808 |
* Returns the Volume of the system based on a ellipsoid with |
809 |
* semi-axes based on the radius of gyration V=4/3*Pi*R_1*R_2*R_3 |
810 |
* where R_i are related to the principle inertia moments |
811 |
* R_i = sqrt(C*I_i/N), this reduces to |
812 |
* V = 4/3*Pi*(C/N)^3/2*sqrt(det(I)). |
813 |
* See S.E. Baltazar et. al. Comp. Mat. Sci. 37 (2006) 526-536. |
814 |
*/ |
815 |
RealType Thermo::getGyrationalVolume(){ |
816 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
817 |
|
818 |
if (!snap->hasGyrationalVolume) { |
819 |
|
820 |
Mat3x3d intTensor; |
821 |
RealType det; |
822 |
Vector3d dummyAngMom; |
823 |
RealType sysconstants; |
824 |
RealType geomCnst; |
825 |
RealType volume; |
826 |
|
827 |
geomCnst = 3.0/2.0; |
828 |
/* Get the inertial tensor and angular momentum for free*/ |
829 |
getInertiaTensor(intTensor, dummyAngMom); |
830 |
|
831 |
det = intTensor.determinant(); |
832 |
sysconstants = geomCnst / (RealType)(info_->getNGlobalIntegrableObjects()); |
833 |
volume = 4.0/3.0*NumericConstant::PI*pow(sysconstants,geomCnst)*sqrt(det); |
834 |
|
835 |
snap->setGyrationalVolume(volume); |
836 |
} |
837 |
return snap->getGyrationalVolume(); |
838 |
} |
839 |
|
840 |
void Thermo::getGyrationalVolume(RealType &volume, RealType &detI){ |
841 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
842 |
|
843 |
if (!(snap->hasInertiaTensor && snap->hasGyrationalVolume)) { |
844 |
|
845 |
Mat3x3d intTensor; |
846 |
Vector3d dummyAngMom; |
847 |
RealType sysconstants; |
848 |
RealType geomCnst; |
849 |
|
850 |
geomCnst = 3.0/2.0; |
851 |
/* Get the inertia tensor and angular momentum for free*/ |
852 |
this->getInertiaTensor(intTensor, dummyAngMom); |
853 |
|
854 |
detI = intTensor.determinant(); |
855 |
sysconstants = geomCnst/(RealType)(info_->getNGlobalIntegrableObjects()); |
856 |
volume = 4.0/3.0*NumericConstant::PI*pow(sysconstants,geomCnst)*sqrt(detI); |
857 |
snap->setGyrationalVolume(volume); |
858 |
} else { |
859 |
volume = snap->getGyrationalVolume(); |
860 |
detI = snap->getInertiaTensor().determinant(); |
861 |
} |
862 |
return; |
863 |
} |
864 |
|
865 |
RealType Thermo::getTaggedAtomPairDistance(){ |
866 |
Snapshot* currSnapshot = info_->getSnapshotManager()->getCurrentSnapshot(); |
867 |
Globals* simParams = info_->getSimParams(); |
868 |
|
869 |
if (simParams->haveTaggedAtomPair() && |
870 |
simParams->havePrintTaggedPairDistance()) { |
871 |
if ( simParams->getPrintTaggedPairDistance()) { |
872 |
|
873 |
pair<int, int> tap = simParams->getTaggedAtomPair(); |
874 |
Vector3d pos1, pos2, rab; |
875 |
|
876 |
#ifdef IS_MPI |
877 |
int mol1 = info_->getGlobalMolMembership(tap.first); |
878 |
int mol2 = info_->getGlobalMolMembership(tap.second); |
879 |
|
880 |
int proc1 = info_->getMolToProc(mol1); |
881 |
int proc2 = info_->getMolToProc(mol2); |
882 |
|
883 |
RealType data[3]; |
884 |
if (proc1 == worldRank) { |
885 |
StuntDouble* sd1 = info_->getIOIndexToIntegrableObject(tap.first); |
886 |
pos1 = sd1->getPos(); |
887 |
data[0] = pos1.x(); |
888 |
data[1] = pos1.y(); |
889 |
data[2] = pos1.z(); |
890 |
MPI_Bcast(data, 3, MPI_REALTYPE, proc1, MPI_COMM_WORLD); |
891 |
} else { |
892 |
MPI_Bcast(data, 3, MPI_REALTYPE, proc1, MPI_COMM_WORLD); |
893 |
pos1 = Vector3d(data); |
894 |
} |
895 |
|
896 |
if (proc2 == worldRank) { |
897 |
StuntDouble* sd2 = info_->getIOIndexToIntegrableObject(tap.second); |
898 |
pos2 = sd2->getPos(); |
899 |
data[0] = pos2.x(); |
900 |
data[1] = pos2.y(); |
901 |
data[2] = pos2.z(); |
902 |
MPI_Bcast(data, 3, MPI_REALTYPE, proc2, MPI_COMM_WORLD); |
903 |
} else { |
904 |
MPI_Bcast(data, 3, MPI_REALTYPE, proc2, MPI_COMM_WORLD); |
905 |
pos2 = Vector3d(data); |
906 |
} |
907 |
#else |
908 |
StuntDouble* at1 = info_->getIOIndexToIntegrableObject(tap.first); |
909 |
StuntDouble* at2 = info_->getIOIndexToIntegrableObject(tap.second); |
910 |
pos1 = at1->getPos(); |
911 |
pos2 = at2->getPos(); |
912 |
#endif |
913 |
rab = pos2 - pos1; |
914 |
currSnapshot->wrapVector(rab); |
915 |
return rab.length(); |
916 |
} |
917 |
return 0.0; |
918 |
} |
919 |
return 0.0; |
920 |
} |
921 |
|
922 |
RealType Thermo::getHullVolume(){ |
923 |
#ifdef HAVE_QHULL |
924 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
925 |
if (!snap->hasHullVolume) { |
926 |
Hull* surfaceMesh_; |
927 |
|
928 |
Globals* simParams = info_->getSimParams(); |
929 |
const std::string ht = simParams->getHULL_Method(); |
930 |
|
931 |
if (ht == "Convex") { |
932 |
surfaceMesh_ = new ConvexHull(); |
933 |
} else if (ht == "AlphaShape") { |
934 |
surfaceMesh_ = new AlphaHull(simParams->getAlpha()); |
935 |
} else { |
936 |
return 0.0; |
937 |
} |
938 |
|
939 |
// Build a vector of stunt doubles to determine if they are |
940 |
// surface atoms |
941 |
std::vector<StuntDouble*> localSites_; |
942 |
Molecule* mol; |
943 |
StuntDouble* sd; |
944 |
SimInfo::MoleculeIterator i; |
945 |
Molecule::IntegrableObjectIterator j; |
946 |
|
947 |
for (mol = info_->beginMolecule(i); mol != NULL; |
948 |
mol = info_->nextMolecule(i)) { |
949 |
for (sd = mol->beginIntegrableObject(j); |
950 |
sd != NULL; |
951 |
sd = mol->nextIntegrableObject(j)) { |
952 |
localSites_.push_back(sd); |
953 |
} |
954 |
} |
955 |
|
956 |
// Compute surface Mesh |
957 |
surfaceMesh_->computeHull(localSites_); |
958 |
snap->setHullVolume(surfaceMesh_->getVolume()); |
959 |
|
960 |
delete surfaceMesh_; |
961 |
} |
962 |
|
963 |
return snap->getHullVolume(); |
964 |
#else |
965 |
return 0.0; |
966 |
#endif |
967 |
} |
968 |
|
969 |
|
970 |
} |