35 |
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* |
36 |
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* [1] Meineke, et al., J. Comp. Chem. 26, 252-271 (2005). |
37 |
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* [2] Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006). |
38 |
< |
* [3] Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008). |
39 |
< |
* [4] Vardeman & Gezelter, in progress (2009). |
38 |
> |
* [3] Sun, Lin & Gezelter, J. Chem. Phys. 128, 234107 (2008). |
39 |
> |
* [4] Kuang & Gezelter, J. Chem. Phys. 133, 164101 (2010). |
40 |
> |
* [5] Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). |
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|
*/ |
42 |
< |
#include "parallel/ForceDecomposition.hpp" |
42 |
< |
#include "math/Vector3.hpp" |
42 |
> |
|
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|
#ifdef IS_MPI |
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#include <mpi.h> |
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|
#endif |
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|
|
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+ |
#include "parallel/ForceDecomposition.hpp" |
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+ |
#include "math/Vector3.hpp" |
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+ |
|
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|
using namespace std; |
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namespace OpenMD { |
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|
|
53 |
< |
ForceDecomposition::ForceDecomposition(SimInfo* info) : info_(info) { |
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> |
ForceDecomposition::ForceDecomposition(SimInfo* info, InteractionManager* iMan) : info_(info), interactionMan_(iMan), needVelocities_(false) { |
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> |
|
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|
sman_ = info_->getSnapshotManager(); |
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storageLayout_ = sman_->getStorageLayout(); |
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ff_ = info_->getForceField(); |
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userChoseCutoff_ = false; |
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|
|
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+ |
usePeriodicBoundaryConditions_ = info->getSimParams()->getUsePeriodicBoundaryConditions(); |
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|
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|
Globals* simParams_ = info_->getSimParams(); |
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< |
|
62 |
> |
if (simParams_->havePrintHeatFlux()) { |
63 |
> |
if (simParams_->getPrintHeatFlux()) { |
64 |
> |
needVelocities_ = true; |
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> |
} |
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> |
} |
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> |
|
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|
if (simParams_->haveSkinThickness()) { |
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skinThickness_ = simParams_->getSkinThickness(); |
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} else { |
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cellOffsets_.push_back( Vector3i(1, -1,1) ); |
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} |
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|
|
100 |
< |
SelfData ForceDecomposition::fillSelfData(int atom1) { |
101 |
< |
SelfData sdat; |
102 |
< |
// Still Missing atype, skippedCharge, potVec pot, |
103 |
< |
if (storageLayout_ & DataStorage::dslElectroFrame) { |
104 |
< |
sdat.eFrame = &(snap_->atomData.electroFrame[atom1]); |
100 |
> |
void ForceDecomposition::setCutoffRadius(RealType rcut) { |
101 |
> |
rCut_ = rcut; |
102 |
> |
rList_ = rCut_ + skinThickness_; |
103 |
> |
rListSq_ = rList_ * rList_; |
104 |
> |
} |
105 |
> |
|
106 |
> |
void ForceDecomposition::fillSelfData(SelfData &sdat, int atom1) { |
107 |
> |
|
108 |
> |
sdat.atid = idents[atom1]; |
109 |
> |
|
110 |
> |
sdat.pot = &embeddingPot; |
111 |
> |
sdat.excludedPot = &excludedSelfPot; |
112 |
> |
|
113 |
> |
if (storageLayout_ & DataStorage::dslDipole) { |
114 |
> |
sdat.dipole = &(snap_->atomData.dipole[atom1]); |
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|
} |
116 |
< |
|
116 |
> |
|
117 |
> |
if (storageLayout_ & DataStorage::dslQuadrupole) { |
118 |
> |
sdat.quadrupole = &(snap_->atomData.quadrupole[atom1]); |
119 |
> |
} |
120 |
> |
|
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|
if (storageLayout_ & DataStorage::dslTorque) { |
122 |
|
sdat.t = &(snap_->atomData.torque[atom1]); |
123 |
|
} |
134 |
|
sdat.dfrhodrho = &(snap_->atomData.functionalDerivative[atom1]); |
135 |
|
} |
136 |
|
|
137 |
+ |
if (storageLayout_ & DataStorage::dslSkippedCharge) { |
138 |
+ |
sdat.skippedCharge = &(snap_->atomData.skippedCharge[atom1]); |
139 |
+ |
} |
140 |
+ |
|
141 |
|
if (storageLayout_ & DataStorage::dslParticlePot) { |
142 |
|
sdat.particlePot = &(snap_->atomData.particlePot[atom1]); |
143 |
|
} |
144 |
< |
|
145 |
< |
return sdat; |
144 |
> |
|
145 |
> |
if (storageLayout_ & DataStorage::dslFlucQPosition) { |
146 |
> |
sdat.flucQ = &(snap_->atomData.flucQPos[atom1]); |
147 |
> |
} |
148 |
> |
|
149 |
> |
if (storageLayout_ & DataStorage::dslFlucQForce) { |
150 |
> |
sdat.flucQfrc = &(snap_->atomData.flucQFrc[atom1]); |
151 |
> |
} |
152 |
|
} |
153 |
|
|
154 |
|
bool ForceDecomposition::checkNeighborList() { |
155 |
< |
|
155 |
> |
RealType st2 = pow( skinThickness_ / 2.0, 2); |
156 |
|
int nGroups = snap_->cgData.position.size(); |
157 |
< |
|
157 |
> |
if (needVelocities_) |
158 |
> |
snap_->cgData.setStorageLayout(DataStorage::dslPosition | |
159 |
> |
DataStorage::dslVelocity); |
160 |
> |
|
161 |
|
// if we have changed the group identities or haven't set up the |
162 |
|
// saved positions we automatically will need a neighbor list update: |
163 |
< |
|
163 |
> |
|
164 |
|
if ( saved_CG_positions_.size() != nGroups ) return true; |
165 |
|
|
166 |
|
RealType dispmax = 0.0; |
168 |
|
|
169 |
|
for (int i = 0; i < nGroups; i++) { |
170 |
|
disp = snap_->cgData.position[i] - saved_CG_positions_[i]; |
171 |
< |
for (int j = 0; j < 3; j++) |
135 |
< |
dispmax = max( abs(disp[j]), dispmax); |
171 |
> |
dispmax = max(dispmax, disp.lengthSquare()); |
172 |
|
} |
173 |
|
|
174 |
|
#ifdef IS_MPI |
175 |
< |
MPI::COMM_WORLD.Allreduce(&dispmax, &dispmax, 1, MPI::REALTYPE, MPI::MAX); |
175 |
> |
MPI_Allreduce(MPI_IN_PLACE, &dispmax, 1, MPI_REALTYPE, MPI_MAX, |
176 |
> |
MPI_COMM_WORLD); |
177 |
|
#endif |
178 |
|
|
179 |
< |
// a conservative test of list skin crossings |
180 |
< |
dispmax = 2.0 * sqrt (3.0 * dispmax * dispmax); |
179 |
> |
return (dispmax > st2) ? true : false; |
180 |
> |
} |
181 |
|
|
182 |
< |
return (dispmax > skinThickness_); |
182 |
> |
void ForceDecomposition::addToHeatFlux(Vector3d hf) { |
183 |
> |
Vector3d chf = snap_->getConductiveHeatFlux(); |
184 |
> |
chf += hf; |
185 |
> |
snap_->setConductiveHeatFlux(chf); |
186 |
|
} |
187 |
+ |
void ForceDecomposition::setHeatFlux(Vector3d hf) { |
188 |
+ |
snap_->setConductiveHeatFlux(hf); |
189 |
+ |
} |
190 |
+ |
|
191 |
|
} |