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#define __C |
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#include "UseTheForce/DarkSide/fInteractionMap.h" |
55 |
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#include "utils/simError.h" |
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#include "primitives/Bond.hpp" |
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#include "primitives/Bend.hpp" |
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#include "primitives/Bend.hpp" |
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#include "primitives/Torsion.hpp" |
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#include "primitives/Inversion.hpp" |
60 |
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namespace oopse { |
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|
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/* |
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struct BendOrderStruct { |
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Bend* bend; |
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BendDataSet dataSet; |
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}; |
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struct TorsionOrderStruct { |
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Torsion* torsion; |
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TorsionDataSet dataSet; |
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}; |
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|
70 |
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bool BendSortFunctor(const BendOrderStruct& b1, const BendOrderStruct& b2) { |
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return b1.dataSet.deltaV < b2.dataSet.deltaV; |
72 |
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} |
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|
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bool TorsionSortFunctor(const TorsionOrderStruct& t1, const TorsionOrderStruct& t2) { |
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return t1.dataSet.deltaV < t2.dataSet.deltaV; |
76 |
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} |
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*/ |
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void ForceManager::calcForces(bool needPotential, bool needStress) { |
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|
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|
64 |
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if (!info_->isFortranInitialized()) { |
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info_->update(); |
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} |
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|
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|
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preCalculation(); |
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|
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calcShortRangeInteraction(); |
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|
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calcLongRangeInteraction(needPotential, needStress); |
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|
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postCalculation(); |
91 |
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|
92 |
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/* |
93 |
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std::vector<BendOrderStruct> bendOrderStruct; |
94 |
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for(std::map<Bend*, BendDataSet>::iterator i = bendDataSets.begin(); i != bendDataSets.end(); ++i) { |
95 |
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BendOrderStruct tmp; |
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tmp.bend= const_cast<Bend*>(i->first); |
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tmp.dataSet = i->second; |
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bendOrderStruct.push_back(tmp); |
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} |
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|
101 |
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std::vector<TorsionOrderStruct> torsionOrderStruct; |
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for(std::map<Torsion*, TorsionDataSet>::iterator j = torsionDataSets.begin(); j != torsionDataSets.end(); ++j) { |
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TorsionOrderStruct tmp; |
104 |
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tmp.torsion = const_cast<Torsion*>(j->first); |
105 |
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tmp.dataSet = j->second; |
106 |
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torsionOrderStruct.push_back(tmp); |
107 |
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} |
74 |
> |
postCalculation(needStress); |
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|
109 |
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std::sort(bendOrderStruct.begin(), bendOrderStruct.end(), std::ptr_fun(BendSortFunctor)); |
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std::sort(torsionOrderStruct.begin(), torsionOrderStruct.end(), std::ptr_fun(TorsionSortFunctor)); |
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std::cout << "bend" << std::endl; |
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for (std::vector<BendOrderStruct>::iterator k = bendOrderStruct.begin(); k != bendOrderStruct.end(); ++k) { |
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Bend* bend = k->bend; |
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std::cout << "atom1=" <<bend->getAtomA()->getGlobalIndex() << ",atom2 = "<< bend->getAtomB()->getGlobalIndex() << ",atom3="<<bend->getAtomC()->getGlobalIndex() << " "; |
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std::cout << "deltaV=" << k->dataSet.deltaV << ",p_theta=" << k->dataSet.prev.angle <<",p_pot=" << k->dataSet.prev.potential<< ",c_theta=" << k->dataSet.curr.angle << ", c_pot = " << k->dataSet.curr.potential <<std::endl; |
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} |
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std::cout << "torsio" << std::endl; |
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for (std::vector<TorsionOrderStruct>::iterator l = torsionOrderStruct.begin(); l != torsionOrderStruct.end(); ++l) { |
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Torsion* torsion = l->torsion; |
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std::cout << "atom1=" <<torsion->getAtomA()->getGlobalIndex() << ",atom2 = "<< torsion->getAtomB()->getGlobalIndex() << ",atom3="<<torsion->getAtomC()->getGlobalIndex() << ",atom4="<<torsion->getAtomD()->getGlobalIndex()<< " "; |
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std::cout << "deltaV=" << l->dataSet.deltaV << ",p_theta=" << l->dataSet.prev.angle <<",p_pot=" << l->dataSet.prev.potential<< ",c_theta=" << l->dataSet.curr.angle << ", c_pot = " << l->dataSet.curr.potential <<std::endl; |
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} |
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*/ |
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} |
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|
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|
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void ForceManager::preCalculation() { |
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SimInfo::MoleculeIterator mi; |
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Molecule* mol; |
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|
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// forces are zeroed here, before any are accumulated. |
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// NOTE: do not rezero the forces in Fortran. |
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for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) { |
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|
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for (mol = info_->beginMolecule(mi); mol != NULL; |
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mol = info_->nextMolecule(mi)) { |
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for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) { |
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atom->zeroForcesAndTorques(); |
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} |
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|
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|
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//change the positions of atoms which belong to the rigidbodies |
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for (rb = mol->beginRigidBody(rbIter); rb != NULL; rb = mol->nextRigidBody(rbIter)) { |
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for (rb = mol->beginRigidBody(rbIter); rb != NULL; |
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rb = mol->nextRigidBody(rbIter)) { |
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rb->zeroForcesAndTorques(); |
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} |
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|
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} |
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|
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// Zero out the stress tensor |
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tau *= 0.0; |
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|
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} |
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|
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|
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void ForceManager::calcShortRangeInteraction() { |
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Molecule* mol; |
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RigidBody* rb; |
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Bond* bond; |
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Bend* bend; |
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Torsion* torsion; |
114 |
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Inversion* inversion; |
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SimInfo::MoleculeIterator mi; |
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Molecule::RigidBodyIterator rbIter; |
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Molecule::BondIterator bondIter;; |
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Molecule::BendIterator bendIter; |
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Molecule::TorsionIterator torsionIter; |
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double bondPotential = 0.0; |
121 |
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double bendPotential = 0.0; |
122 |
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double torsionPotential = 0.0; |
120 |
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Molecule::InversionIterator inversionIter; |
121 |
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RealType bondPotential = 0.0; |
122 |
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RealType bendPotential = 0.0; |
123 |
> |
RealType torsionPotential = 0.0; |
124 |
> |
RealType inversionPotential = 0.0; |
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|
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//calculate short range interactions |
127 |
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for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) { |
127 |
> |
for (mol = info_->beginMolecule(mi); mol != NULL; |
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mol = info_->nextMolecule(mi)) { |
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|
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//change the positions of atoms which belong to the rigidbodies |
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for (rb = mol->beginRigidBody(rbIter); rb != NULL; rb = mol->nextRigidBody(rbIter)) { |
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rb->updateAtoms(); |
131 |
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for (rb = mol->beginRigidBody(rbIter); rb != NULL; |
132 |
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rb = mol->nextRigidBody(rbIter)) { |
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rb->updateAtoms(); |
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} |
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|
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for (bond = mol->beginBond(bondIter); bond != NULL; bond = mol->nextBond(bondIter)) { |
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for (bond = mol->beginBond(bondIter); bond != NULL; |
137 |
> |
bond = mol->nextBond(bondIter)) { |
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bond->calcForce(); |
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bondPotential += bond->getPotential(); |
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} |
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|
142 |
< |
|
143 |
< |
for (bend = mol->beginBend(bendIter); bend != NULL; bend = mol->nextBend(bendIter)) { |
144 |
< |
|
145 |
< |
double angle; |
146 |
< |
bend->calcForce(angle); |
147 |
< |
double currBendPot = bend->getPotential(); |
148 |
< |
bendPotential += bend->getPotential(); |
149 |
< |
std::map<Bend*, BendDataSet>::iterator i = bendDataSets.find(bend); |
150 |
< |
if (i == bendDataSets.end()) { |
151 |
< |
BendDataSet dataSet; |
152 |
< |
dataSet.prev.angle = dataSet.curr.angle = angle; |
153 |
< |
dataSet.prev.potential = dataSet.curr.potential = currBendPot; |
154 |
< |
dataSet.deltaV = 0.0; |
155 |
< |
bendDataSets.insert(std::map<Bend*, BendDataSet>::value_type(bend, dataSet)); |
156 |
< |
}else { |
157 |
< |
i->second.prev.angle = i->second.curr.angle; |
158 |
< |
i->second.prev.potential = i->second.curr.potential; |
159 |
< |
i->second.curr.angle = angle; |
160 |
< |
i->second.curr.potential = currBendPot; |
161 |
< |
i->second.deltaV = fabs(i->second.curr.potential - i->second.prev.potential); |
162 |
< |
} |
142 |
> |
for (bend = mol->beginBend(bendIter); bend != NULL; |
143 |
> |
bend = mol->nextBend(bendIter)) { |
144 |
> |
|
145 |
> |
RealType angle; |
146 |
> |
bend->calcForce(angle); |
147 |
> |
RealType currBendPot = bend->getPotential(); |
148 |
> |
bendPotential += bend->getPotential(); |
149 |
> |
std::map<Bend*, BendDataSet>::iterator i = bendDataSets.find(bend); |
150 |
> |
if (i == bendDataSets.end()) { |
151 |
> |
BendDataSet dataSet; |
152 |
> |
dataSet.prev.angle = dataSet.curr.angle = angle; |
153 |
> |
dataSet.prev.potential = dataSet.curr.potential = currBendPot; |
154 |
> |
dataSet.deltaV = 0.0; |
155 |
> |
bendDataSets.insert(std::map<Bend*, BendDataSet>::value_type(bend, dataSet)); |
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> |
}else { |
157 |
> |
i->second.prev.angle = i->second.curr.angle; |
158 |
> |
i->second.prev.potential = i->second.curr.potential; |
159 |
> |
i->second.curr.angle = angle; |
160 |
> |
i->second.curr.potential = currBendPot; |
161 |
> |
i->second.deltaV = fabs(i->second.curr.potential - |
162 |
> |
i->second.prev.potential); |
163 |
> |
} |
164 |
|
} |
165 |
< |
|
166 |
< |
for (torsion = mol->beginTorsion(torsionIter); torsion != NULL; torsion = mol->nextTorsion(torsionIter)) { |
167 |
< |
double angle; |
168 |
< |
torsion->calcForce(angle); |
169 |
< |
double currTorsionPot = torsion->getPotential(); |
170 |
< |
torsionPotential += torsion->getPotential(); |
171 |
< |
std::map<Torsion*, TorsionDataSet>::iterator i = torsionDataSets.find(torsion); |
172 |
< |
if (i == torsionDataSets.end()) { |
173 |
< |
TorsionDataSet dataSet; |
174 |
< |
dataSet.prev.angle = dataSet.curr.angle = angle; |
175 |
< |
dataSet.prev.potential = dataSet.curr.potential = currTorsionPot; |
176 |
< |
dataSet.deltaV = 0.0; |
177 |
< |
torsionDataSets.insert(std::map<Torsion*, TorsionDataSet>::value_type(torsion, dataSet)); |
178 |
< |
}else { |
179 |
< |
i->second.prev.angle = i->second.curr.angle; |
180 |
< |
i->second.prev.potential = i->second.curr.potential; |
181 |
< |
i->second.curr.angle = angle; |
182 |
< |
i->second.curr.potential = currTorsionPot; |
183 |
< |
i->second.deltaV = fabs(i->second.curr.potential - i->second.prev.potential); |
184 |
< |
} |
185 |
< |
} |
165 |
> |
|
166 |
> |
for (torsion = mol->beginTorsion(torsionIter); torsion != NULL; |
167 |
> |
torsion = mol->nextTorsion(torsionIter)) { |
168 |
> |
RealType angle; |
169 |
> |
torsion->calcForce(angle); |
170 |
> |
RealType currTorsionPot = torsion->getPotential(); |
171 |
> |
torsionPotential += torsion->getPotential(); |
172 |
> |
std::map<Torsion*, TorsionDataSet>::iterator i = torsionDataSets.find(torsion); |
173 |
> |
if (i == torsionDataSets.end()) { |
174 |
> |
TorsionDataSet dataSet; |
175 |
> |
dataSet.prev.angle = dataSet.curr.angle = angle; |
176 |
> |
dataSet.prev.potential = dataSet.curr.potential = currTorsionPot; |
177 |
> |
dataSet.deltaV = 0.0; |
178 |
> |
torsionDataSets.insert(std::map<Torsion*, TorsionDataSet>::value_type(torsion, dataSet)); |
179 |
> |
}else { |
180 |
> |
i->second.prev.angle = i->second.curr.angle; |
181 |
> |
i->second.prev.potential = i->second.curr.potential; |
182 |
> |
i->second.curr.angle = angle; |
183 |
> |
i->second.curr.potential = currTorsionPot; |
184 |
> |
i->second.deltaV = fabs(i->second.curr.potential - |
185 |
> |
i->second.prev.potential); |
186 |
> |
} |
187 |
> |
} |
188 |
|
|
189 |
+ |
for (inversion = mol->beginInversion(inversionIter); |
190 |
+ |
inversion != NULL; |
191 |
+ |
inversion = mol->nextInversion(inversionIter)) { |
192 |
+ |
RealType angle; |
193 |
+ |
inversion->calcForce(angle); |
194 |
+ |
RealType currInversionPot = inversion->getPotential(); |
195 |
+ |
inversionPotential += inversion->getPotential(); |
196 |
+ |
std::map<Inversion*, InversionDataSet>::iterator i = inversionDataSets.find(inversion); |
197 |
+ |
if (i == inversionDataSets.end()) { |
198 |
+ |
InversionDataSet dataSet; |
199 |
+ |
dataSet.prev.angle = dataSet.curr.angle = angle; |
200 |
+ |
dataSet.prev.potential = dataSet.curr.potential = currInversionPot; |
201 |
+ |
dataSet.deltaV = 0.0; |
202 |
+ |
inversionDataSets.insert(std::map<Inversion*, InversionDataSet>::value_type(inversion, dataSet)); |
203 |
+ |
}else { |
204 |
+ |
i->second.prev.angle = i->second.curr.angle; |
205 |
+ |
i->second.prev.potential = i->second.curr.potential; |
206 |
+ |
i->second.curr.angle = angle; |
207 |
+ |
i->second.curr.potential = currInversionPot; |
208 |
+ |
i->second.deltaV = fabs(i->second.curr.potential - |
209 |
+ |
i->second.prev.potential); |
210 |
+ |
} |
211 |
+ |
} |
212 |
|
} |
213 |
|
|
214 |
< |
double shortRangePotential = bondPotential + bendPotential + torsionPotential; |
214 |
> |
RealType shortRangePotential = bondPotential + bendPotential + |
215 |
> |
torsionPotential + inversionPotential; |
216 |
|
Snapshot* curSnapshot = info_->getSnapshotManager()->getCurrentSnapshot(); |
217 |
|
curSnapshot->statData[Stats::SHORT_RANGE_POTENTIAL] = shortRangePotential; |
218 |
|
curSnapshot->statData[Stats::BOND_POTENTIAL] = bondPotential; |
219 |
|
curSnapshot->statData[Stats::BEND_POTENTIAL] = bendPotential; |
220 |
|
curSnapshot->statData[Stats::DIHEDRAL_POTENTIAL] = torsionPotential; |
221 |
+ |
curSnapshot->statData[Stats::INVERSION_POTENTIAL] = inversionPotential; |
222 |
|
|
223 |
|
} |
224 |
< |
|
225 |
< |
void ForceManager::calcLongRangeInteraction(bool needPotential, bool needStress) { |
224 |
> |
|
225 |
> |
void ForceManager::calcLongRangeInteraction(bool needPotential, |
226 |
> |
bool needStress) { |
227 |
|
Snapshot* curSnapshot; |
228 |
|
DataStorage* config; |
229 |
< |
double* frc; |
230 |
< |
double* pos; |
231 |
< |
double* trq; |
232 |
< |
double* A; |
233 |
< |
double* electroFrame; |
234 |
< |
double* rc; |
229 |
> |
RealType* frc; |
230 |
> |
RealType* pos; |
231 |
> |
RealType* trq; |
232 |
> |
RealType* A; |
233 |
> |
RealType* electroFrame; |
234 |
> |
RealType* rc; |
235 |
> |
RealType* particlePot; |
236 |
|
|
237 |
|
//get current snapshot from SimInfo |
238 |
|
curSnapshot = info_->getSnapshotManager()->getCurrentSnapshot(); |
239 |
< |
|
239 |
> |
|
240 |
|
//get array pointers |
241 |
|
config = &(curSnapshot->atomData); |
242 |
|
frc = config->getArrayPointer(DataStorage::dslForce); |
244 |
|
trq = config->getArrayPointer(DataStorage::dslTorque); |
245 |
|
A = config->getArrayPointer(DataStorage::dslAmat); |
246 |
|
electroFrame = config->getArrayPointer(DataStorage::dslElectroFrame); |
247 |
+ |
particlePot = config->getArrayPointer(DataStorage::dslParticlePot); |
248 |
|
|
249 |
|
//calculate the center of mass of cutoff group |
250 |
|
SimInfo::MoleculeIterator mi; |
253 |
|
CutoffGroup* cg; |
254 |
|
Vector3d com; |
255 |
|
std::vector<Vector3d> rcGroup; |
256 |
< |
|
256 |
> |
|
257 |
|
if(info_->getNCutoffGroups() > 0){ |
258 |
< |
|
259 |
< |
for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) { |
260 |
< |
for(cg = mol->beginCutoffGroup(ci); cg != NULL; cg = mol->nextCutoffGroup(ci)) { |
258 |
> |
|
259 |
> |
for (mol = info_->beginMolecule(mi); mol != NULL; |
260 |
> |
mol = info_->nextMolecule(mi)) { |
261 |
> |
for(cg = mol->beginCutoffGroup(ci); cg != NULL; |
262 |
> |
cg = mol->nextCutoffGroup(ci)) { |
263 |
|
cg->getCOM(com); |
264 |
|
rcGroup.push_back(com); |
265 |
|
} |
267 |
|
|
268 |
|
rc = rcGroup[0].getArrayPointer(); |
269 |
|
} else { |
270 |
< |
// center of mass of the group is the same as position of the atom if cutoff group does not exist |
270 |
> |
// center of mass of the group is the same as position of the atom |
271 |
> |
// if cutoff group does not exist |
272 |
|
rc = pos; |
273 |
|
} |
275 |
– |
|
276 |
– |
//initialize data before passing to fortran |
277 |
– |
double longRangePotential[LR_POT_TYPES]; |
278 |
– |
double lrPot = 0.0; |
274 |
|
|
275 |
< |
Mat3x3d tau; |
275 |
> |
//initialize data before passing to fortran |
276 |
> |
RealType longRangePotential[LR_POT_TYPES]; |
277 |
> |
RealType lrPot = 0.0; |
278 |
> |
Vector3d totalDipole; |
279 |
|
short int passedCalcPot = needPotential; |
280 |
|
short int passedCalcStress = needStress; |
281 |
|
int isError = 0; |
283 |
|
for (int i=0; i<LR_POT_TYPES;i++){ |
284 |
|
longRangePotential[i]=0.0; //Initialize array |
285 |
|
} |
286 |
< |
|
287 |
< |
doForceLoop( pos, |
288 |
< |
rc, |
289 |
< |
A, |
290 |
< |
electroFrame, |
291 |
< |
frc, |
292 |
< |
trq, |
293 |
< |
tau.getArrayPointer(), |
294 |
< |
longRangePotential, |
295 |
< |
&passedCalcPot, |
296 |
< |
&passedCalcStress, |
297 |
< |
&isError ); |
298 |
< |
|
286 |
> |
|
287 |
> |
doForceLoop(pos, |
288 |
> |
rc, |
289 |
> |
A, |
290 |
> |
electroFrame, |
291 |
> |
frc, |
292 |
> |
trq, |
293 |
> |
tau.getArrayPointer(), |
294 |
> |
longRangePotential, |
295 |
> |
particlePot, |
296 |
> |
&passedCalcPot, |
297 |
> |
&passedCalcStress, |
298 |
> |
&isError ); |
299 |
> |
|
300 |
|
if( isError ){ |
301 |
|
sprintf( painCave.errMsg, |
302 |
|
"Error returned from the fortran force calculation.\n" ); |
306 |
|
for (int i=0; i<LR_POT_TYPES;i++){ |
307 |
|
lrPot += longRangePotential[i]; //Quick hack |
308 |
|
} |
309 |
< |
|
309 |
> |
|
310 |
> |
// grab the simulation box dipole moment if specified |
311 |
> |
if (info_->getCalcBoxDipole()){ |
312 |
> |
getAccumulatedBoxDipole(totalDipole.getArrayPointer()); |
313 |
> |
|
314 |
> |
curSnapshot->statData[Stats::BOX_DIPOLE_X] = totalDipole(0); |
315 |
> |
curSnapshot->statData[Stats::BOX_DIPOLE_Y] = totalDipole(1); |
316 |
> |
curSnapshot->statData[Stats::BOX_DIPOLE_Z] = totalDipole(2); |
317 |
> |
} |
318 |
> |
|
319 |
|
//store the tau and long range potential |
320 |
|
curSnapshot->statData[Stats::LONG_RANGE_POTENTIAL] = lrPot; |
321 |
|
curSnapshot->statData[Stats::VANDERWAALS_POTENTIAL] = longRangePotential[VDW_POT]; |
322 |
|
curSnapshot->statData[Stats::ELECTROSTATIC_POTENTIAL] = longRangePotential[ELECTROSTATIC_POT]; |
315 |
– |
|
316 |
– |
curSnapshot->statData.setTau(tau); |
323 |
|
} |
324 |
|
|
325 |
< |
|
326 |
< |
void ForceManager::postCalculation() { |
325 |
> |
|
326 |
> |
void ForceManager::postCalculation(bool needStress) { |
327 |
|
SimInfo::MoleculeIterator mi; |
328 |
|
Molecule* mol; |
329 |
|
Molecule::RigidBodyIterator rbIter; |
330 |
|
RigidBody* rb; |
331 |
+ |
Snapshot* curSnapshot = info_->getSnapshotManager()->getCurrentSnapshot(); |
332 |
|
|
333 |
|
// collect the atomic forces onto rigid bodies |
334 |
< |
for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) { |
335 |
< |
for (rb = mol->beginRigidBody(rbIter); rb != NULL; rb = mol->nextRigidBody(rbIter)) { |
336 |
< |
rb->calcForcesAndTorques(); |
334 |
> |
|
335 |
> |
for (mol = info_->beginMolecule(mi); mol != NULL; |
336 |
> |
mol = info_->nextMolecule(mi)) { |
337 |
> |
for (rb = mol->beginRigidBody(rbIter); rb != NULL; |
338 |
> |
rb = mol->nextRigidBody(rbIter)) { |
339 |
> |
if (needStress) { |
340 |
> |
Mat3x3d rbTau = rb->calcForcesAndTorquesAndVirial(); |
341 |
> |
tau += rbTau; |
342 |
> |
} else{ |
343 |
> |
rb->calcForcesAndTorques(); |
344 |
> |
} |
345 |
|
} |
346 |
|
} |
347 |
|
|
348 |
+ |
if (needStress) { |
349 |
+ |
#ifdef IS_MPI |
350 |
+ |
Mat3x3d tmpTau(tau); |
351 |
+ |
MPI_Allreduce(tmpTau.getArrayPointer(), tau.getArrayPointer(), |
352 |
+ |
9, MPI_REALTYPE, MPI_SUM, MPI_COMM_WORLD); |
353 |
+ |
#endif |
354 |
+ |
curSnapshot->statData.setTau(tau); |
355 |
+ |
} |
356 |
|
} |
357 |
|
|
358 |
|
} //end namespace oopse |