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root/OpenMD/trunk/src/nonbonded/EAM.cpp
Revision: 2033
Committed: Sat Nov 1 14:12:16 2014 UTC (10 years, 6 months ago) by gezelter
File size: 13876 byte(s)
Log Message:
Fixed a selection issue in ParticleTimeCorrFunc, other whitespace stuff

File Contents

# Content
1 /*
2 * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved.
3 *
4 * The University of Notre Dame grants you ("Licensee") a
5 * non-exclusive, royalty free, license to use, modify and
6 * redistribute this software in source and binary code form, provided
7 * that the following conditions are met:
8 *
9 * 1. Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 *
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the
15 * distribution.
16 *
17 * This software is provided "AS IS," without a warranty of any
18 * kind. All express or implied conditions, representations and
19 * warranties, including any implied warranty of merchantability,
20 * fitness for a particular purpose or non-infringement, are hereby
21 * excluded. The University of Notre Dame and its licensors shall not
22 * be liable for any damages suffered by licensee as a result of
23 * using, modifying or distributing the software or its
24 * derivatives. In no event will the University of Notre Dame or its
25 * licensors be liable for any lost revenue, profit or data, or for
26 * direct, indirect, special, consequential, incidental or punitive
27 * damages, however caused and regardless of the theory of liability,
28 * arising out of the use of or inability to use software, even if the
29 * University of Notre Dame has been advised of the possibility of
30 * such damages.
31 *
32 * SUPPORT OPEN SCIENCE! If you use OpenMD or its source code in your
33 * research, please cite the appropriate papers when you publish your
34 * work. Good starting points are:
35 *
36 * [1] Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).
37 * [2] Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).
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).
41 */
42
43 #include <stdio.h>
44 #include <string.h>
45
46 #include <cmath>
47 #include "nonbonded/EAM.hpp"
48 #include "utils/simError.h"
49 #include "types/NonBondedInteractionType.hpp"
50
51
52 namespace OpenMD {
53
54 EAM::EAM() : name_("EAM"), initialized_(false), forceField_(NULL),
55 mixMeth_(eamJohnson), eamRcut_(0.0), haveCutoffRadius_(false) {}
56
57 CubicSpline* EAM::getPhi(AtomType* atomType1, AtomType* atomType2) {
58 EAMAdapter ea1 = EAMAdapter(atomType1);
59 EAMAdapter ea2 = EAMAdapter(atomType2);
60 CubicSpline* z1 = ea1.getZ();
61 CubicSpline* z2 = ea2.getZ();
62
63 // Thise prefactors convert the charge-charge interactions into
64 // kcal / mol all were computed assuming distances are measured in
65 // angstroms Charge-Charge, assuming charges are measured in
66 // electrons. Matches value in Electrostatics.cpp
67 pre11_ = 332.0637778;
68
69 // make the r grid:
70
71 // we need phi out to the largest value we'll encounter in the radial space;
72
73 RealType rmax = 0.0;
74 rmax = max(rmax, ea1.getRcut());
75 rmax = max(rmax, ea1.getNr() * ea1.getDr());
76
77 rmax = max(rmax, ea2.getRcut());
78 rmax = max(rmax, ea2.getNr() * ea2.getDr());
79
80 // use the smallest dr (finest grid) to build our grid:
81
82 RealType dr = min(ea1.getDr(), ea2.getDr());
83
84 int nr = int(rmax/dr + 0.5);
85
86 vector<RealType> rvals;
87 for (int i = 0; i < nr; i++) rvals.push_back(RealType(i*dr));
88
89 // construct the pair potential:
90
91 vector<RealType> phivals;
92 RealType phi;
93 RealType r;
94 RealType zi, zj;
95
96 phivals.push_back(0.0);
97
98 for (unsigned int i = 1; i < rvals.size(); i++ ) {
99 r = rvals[i];
100
101 // only use z(r) if we're inside this atom's cutoff radius,
102 // otherwise, we'll use zero for the charge. This effectively
103 // means that our phi grid goes out beyond the cutoff of the
104 // pair potential
105
106 zi = r <= ea1.getRcut() ? z1->getValueAt(r) : 0.0;
107 zj = r <= ea2.getRcut() ? z2->getValueAt(r) : 0.0;
108
109 phi = pre11_ * (zi * zj) / r;
110
111 phivals.push_back(phi);
112 }
113 CubicSpline* cs = new CubicSpline();
114 cs->addPoints(rvals, phivals);
115 return cs;
116 }
117
118 void EAM::setCutoffRadius( RealType rCut ) {
119 eamRcut_ = rCut;
120 haveCutoffRadius_ = true;
121 }
122
123 void EAM::initialize() {
124 // set up the mixing method:
125 ForceFieldOptions& fopts = forceField_->getForceFieldOptions();
126 string EAMMixMeth = fopts.getEAMMixingMethod();
127 toUpper(EAMMixMeth);
128
129 if (EAMMixMeth == "JOHNSON")
130 mixMeth_ = eamJohnson;
131 else if (EAMMixMeth == "DAW")
132 mixMeth_ = eamDaw;
133 else
134 mixMeth_ = eamUnknown;
135
136 // find all of the EAM atom Types:
137 EAMtypes.clear();
138 EAMtids.clear();
139 EAMdata.clear();
140 MixingMap.clear();
141 nEAM_ = 0;
142
143 EAMtids.resize( forceField_->getNAtomType(), -1);
144
145 set<AtomType*>::iterator at;
146 for (at = simTypes_.begin(); at != simTypes_.end(); ++at) {
147 if ((*at)->isEAM()) nEAM_++;
148 }
149 EAMdata.resize(nEAM_);
150 MixingMap.resize(nEAM_);
151
152 for (at = simTypes_.begin(); at != simTypes_.end(); ++at) {
153 if ((*at)->isEAM()) addType(*at);
154 }
155
156 // find all of the explicit EAM interactions (setfl):
157 ForceField::NonBondedInteractionTypeContainer* nbiTypes = forceField_->getNonBondedInteractionTypes();
158 ForceField::NonBondedInteractionTypeContainer::MapTypeIterator j;
159 NonBondedInteractionType* nbt;
160
161 for (nbt = nbiTypes->beginType(j); nbt != NULL;
162 nbt = nbiTypes->nextType(j)) {
163
164 if (nbt->isEAM()) {
165
166 pair<AtomType*, AtomType*> atypes = nbt->getAtomTypes();
167
168 GenericData* data = nbt->getPropertyByName("EAM");
169 if (data == NULL) {
170 sprintf( painCave.errMsg, "EAM::rebuildMixingMap could not find\n"
171 "\tEAM parameters for %s - %s interaction.\n",
172 atypes.first->getName().c_str(),
173 atypes.second->getName().c_str());
174 painCave.severity = OPENMD_ERROR;
175 painCave.isFatal = 1;
176 simError();
177 }
178
179 EAMMixingData* eamData = dynamic_cast<EAMMixingData*>(data);
180 if (eamData == NULL) {
181 sprintf( painCave.errMsg,
182 "EAM::rebuildMixingMap could not convert GenericData to\n"
183 "\tEAMMixingData for %s - %s interaction.\n",
184 atypes.first->getName().c_str(),
185 atypes.second->getName().c_str());
186 painCave.severity = OPENMD_ERROR;
187 painCave.isFatal = 1;
188 simError();
189 }
190
191 EAMMixingParam eamParam = eamData->getData();
192
193 vector<RealType> phiAB = eamParam.phi;
194 RealType dr = eamParam.dr;
195 int nr = eamParam.nr;
196
197 addExplicitInteraction(atypes.first, atypes.second, dr, nr, phiAB);
198 }
199 }
200 initialized_ = true;
201 }
202
203
204
205 void EAM::addType(AtomType* atomType){
206
207 EAMAdapter ea = EAMAdapter(atomType);
208 EAMAtomData eamAtomData;
209
210 eamAtomData.rho = ea.getRho();
211 eamAtomData.F = ea.getF();
212 eamAtomData.Z = ea.getZ();
213 eamAtomData.rcut = ea.getRcut();
214
215 // add it to the map:
216 int atid = atomType->getIdent();
217 int eamtid = EAMtypes.size();
218
219 pair<set<int>::iterator,bool> ret;
220 ret = EAMtypes.insert( atid );
221 if (ret.second == false) {
222 sprintf( painCave.errMsg,
223 "EAM already had a previous entry with ident %d\n",
224 atid);
225 painCave.severity = OPENMD_INFO;
226 painCave.isFatal = 0;
227 simError();
228 }
229
230
231 EAMtids[atid] = eamtid;
232 EAMdata[eamtid] = eamAtomData;
233 MixingMap[eamtid].resize(nEAM_);
234
235 // Now, iterate over all known types and add to the mixing map:
236
237 std::set<int>::iterator it;
238 for( it = EAMtypes.begin(); it != EAMtypes.end(); ++it) {
239
240 int eamtid2 = EAMtids[ (*it) ];
241 AtomType* atype2 = forceField_->getAtomType( (*it) );
242
243 EAMInteractionData mixer;
244 mixer.phi = getPhi(atomType, atype2);
245 mixer.rcut = mixer.phi->getLimits().second;
246 mixer.explicitlySet = false;
247
248 MixingMap[eamtid2].resize( nEAM_ );
249
250 MixingMap[eamtid][eamtid2] = mixer;
251 if (eamtid2 != eamtid) {
252 MixingMap[eamtid2][eamtid] = mixer;
253 }
254 }
255 return;
256 }
257
258 void EAM::addExplicitInteraction(AtomType* atype1, AtomType* atype2,
259 RealType dr, int nr,
260 vector<RealType> phiVals) {
261
262 // in case these weren't already in the map
263 addType(atype1);
264 addType(atype2);
265
266 EAMInteractionData mixer;
267 CubicSpline* cs = new CubicSpline();
268 vector<RealType> rVals;
269
270 for (int i = 0; i < nr; i++) rVals.push_back(i * dr);
271
272 cs->addPoints(rVals, phiVals);
273 mixer.phi = cs;
274 mixer.rcut = mixer.phi->getLimits().second;
275 mixer.explicitlySet = true;
276
277 int eamtid1 = EAMtids[ atype1->getIdent() ];
278 int eamtid2 = EAMtids[ atype2->getIdent() ];
279
280 MixingMap[eamtid1][eamtid2] = mixer;
281 if (eamtid2 != eamtid1) {
282 MixingMap[eamtid2][eamtid1] = mixer;
283 }
284 return;
285 }
286
287 void EAM::calcDensity(InteractionData &idat) {
288
289 if (!initialized_) initialize();
290
291 EAMAtomData &data1 = EAMdata[EAMtids[idat.atid1]];
292 EAMAtomData &data2 = EAMdata[EAMtids[idat.atid2]];
293
294 if (haveCutoffRadius_)
295 if ( *(idat.rij) > eamRcut_) return;
296
297 if ( *(idat.rij) < data1.rcut) {
298 *(idat.rho2) += data1.rho->getValueAt( *(idat.rij));
299 }
300
301 if ( *(idat.rij) < data2.rcut) {
302 *(idat.rho1) += data2.rho->getValueAt( *(idat.rij));
303 }
304
305 return;
306 }
307
308 void EAM::calcFunctional(SelfData &sdat) {
309
310 if (!initialized_) initialize();
311 EAMAtomData &data1 = EAMdata[ EAMtids[sdat.atid] ];
312
313 data1.F->getValueAndDerivativeAt( *(sdat.rho), *(sdat.frho),
314 *(sdat.dfrhodrho) );
315
316 (*(sdat.pot))[METALLIC_FAMILY] += *(sdat.frho);
317 if (sdat.doParticlePot) {
318 *(sdat.particlePot) += *(sdat.frho);
319 }
320
321 return;
322 }
323
324
325 void EAM::calcForce(InteractionData &idat) {
326
327 if (!initialized_) initialize();
328
329 if (haveCutoffRadius_)
330 if ( *(idat.rij) > eamRcut_) return;
331
332
333 int eamtid1 = EAMtids[idat.atid1];
334 int eamtid2 = EAMtids[idat.atid2];
335 EAMAtomData &data1 = EAMdata[eamtid1];
336 EAMAtomData &data2 = EAMdata[eamtid2];
337
338 // get type-specific cutoff radii
339
340 RealType rci = data1.rcut;
341 RealType rcj = data2.rcut;
342
343
344 RealType rha(0.0), drha(0.0), rhb(0.0), drhb(0.0);
345 RealType pha(0.0), dpha(0.0), phb(0.0), dphb(0.0);
346 RealType phab(0.0), dvpdr(0.0);
347 RealType drhoidr, drhojdr, dudr;
348
349 if ( *(idat.rij) < rci) {
350 data1.rho->getValueAndDerivativeAt( *(idat.rij), rha, drha);
351 CubicSpline* phi = MixingMap[eamtid1][eamtid1].phi;
352 phi->getValueAndDerivativeAt( *(idat.rij), pha, dpha);
353 }
354
355 if ( *(idat.rij) < rcj) {
356 data2.rho->getValueAndDerivativeAt( *(idat.rij), rhb, drhb );
357 CubicSpline* phi = MixingMap[eamtid2][eamtid2].phi;
358 phi->getValueAndDerivativeAt( *(idat.rij), phb, dphb);
359 }
360 switch(mixMeth_) {
361 case eamJohnson:
362 if ( *(idat.rij) < rci) {
363 phab = phab + 0.5 * (rhb / rha) * pha;
364 dvpdr = dvpdr + 0.5*((rhb/rha)*dpha +
365 pha*((drhb/rha) - (rhb*drha/rha/rha)));
366 }
367
368 if ( *(idat.rij) < rcj) {
369 phab = phab + 0.5 * (rha / rhb) * phb;
370 dvpdr = dvpdr + 0.5 * ((rha/rhb)*dphb +
371 phb*((drha/rhb) - (rha*drhb/rhb/rhb)));
372 }
373 break;
374 case eamDaw:
375 if ( *(idat.rij) < MixingMap[eamtid1][eamtid2].rcut) {
376 MixingMap[eamtid1][eamtid2].phi->getValueAndDerivativeAt( *(idat.rij),
377 phab, dvpdr);
378 }
379 break;
380 case eamUnknown:
381 default:
382
383 sprintf(painCave.errMsg,
384 "EAM::calcForce hit a mixing method it doesn't know about!\n"
385 );
386 painCave.severity = OPENMD_ERROR;
387 painCave.isFatal = 1;
388 simError();
389
390 }
391
392 drhoidr = drha;
393 drhojdr = drhb;
394
395 dudr = drhojdr* *(idat.dfrho1) + drhoidr* *(idat.dfrho2) + dvpdr;
396
397 *(idat.f1) += *(idat.d) * dudr / *(idat.rij);
398
399 if (idat.doParticlePot) {
400 // particlePot is the difference between the full potential and
401 // the full potential without the presence of a particular
402 // particle (atom1).
403 //
404 // This reduces the density at other particle locations, so we
405 // need to recompute the density at atom2 assuming atom1 didn't
406 // contribute. This then requires recomputing the density
407 // functional for atom2 as well.
408
409 *(idat.particlePot1) += data2.F->getValueAt( *(idat.rho2) - rha )
410 - *(idat.frho2);
411
412 *(idat.particlePot2) += data1.F->getValueAt( *(idat.rho1) - rhb)
413 - *(idat.frho1);
414 }
415
416 (*(idat.pot))[METALLIC_FAMILY] += phab;
417 *(idat.vpair) += phab;
418 return;
419 }
420
421 RealType EAM::getSuggestedCutoffRadius(pair<AtomType*, AtomType*> atypes) {
422 if (!initialized_) initialize();
423
424 RealType cut = 0.0;
425
426 int atid1 = atypes.first->getIdent();
427 int atid2 = atypes.second->getIdent();
428 int eamtid1 = EAMtids[atid1];
429 int eamtid2 = EAMtids[atid2];
430
431 if (eamtid1 != -1) {
432 EAMAtomData data1 = EAMdata[eamtid1];
433 cut = data1.rcut;
434 }
435
436 if (eamtid2 != -1) {
437 EAMAtomData data2 = EAMdata[eamtid2];
438 if (data2.rcut > cut)
439 cut = data2.rcut;
440 }
441
442 return cut;
443 }
444 }
445

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