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root/group/trunk/OOPSE-4/src/integrators/NPTi.cpp
Revision: 2204
Committed: Fri Apr 15 22:04:00 2005 UTC (19 years, 2 months ago) by gezelter
File size: 6113 byte(s)
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# User Rev Content
1 gezelter 2204 /*
2 gezelter 1930 * 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. Acknowledgement of the program authors must be made in any
10     * publication of scientific results based in part on use of the
11     * program. An acceptable form of acknowledgement is citation of
12     * the article in which the program was described (Matthew
13     * A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher
14     * J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented
15     * Parallel Simulation Engine for Molecular Dynamics,"
16     * J. Comput. Chem. 26, pp. 252-271 (2005))
17     *
18     * 2. Redistributions of source code must retain the above copyright
19     * notice, this list of conditions and the following disclaimer.
20     *
21     * 3. Redistributions in binary form must reproduce the above copyright
22     * notice, this list of conditions and the following disclaimer in the
23     * documentation and/or other materials provided with the
24     * distribution.
25     *
26     * This software is provided "AS IS," without a warranty of any
27     * kind. All express or implied conditions, representations and
28     * warranties, including any implied warranty of merchantability,
29     * fitness for a particular purpose or non-infringement, are hereby
30     * excluded. The University of Notre Dame and its licensors shall not
31     * be liable for any damages suffered by licensee as a result of
32     * using, modifying or distributing the software or its
33     * derivatives. In no event will the University of Notre Dame or its
34     * licensors be liable for any lost revenue, profit or data, or for
35     * direct, indirect, special, consequential, incidental or punitive
36     * damages, however caused and regardless of the theory of liability,
37     * arising out of the use of or inability to use software, even if the
38     * University of Notre Dame has been advised of the possibility of
39     * such damages.
40     */
41    
42     #include "NPTi.hpp"
43 tim 1492 #include "brains/SimInfo.hpp"
44     #include "brains/Thermo.hpp"
45 gezelter 1930 #include "integrators/NPT.hpp"
46     #include "primitives/Molecule.hpp"
47     #include "utils/OOPSEConstant.hpp"
48 tim 1492 #include "utils/simError.h"
49 gezelter 1490
50 gezelter 1930 namespace oopse {
51 gezelter 1490
52 gezelter 2204 // Basic isotropic thermostating and barostating via the Melchionna
53     // modification of the Hoover algorithm:
54     //
55     // Melchionna, S., Ciccotti, G., and Holian, B. L., 1993,
56     // Molec. Phys., 78, 533.
57     //
58     // and
59     //
60     // Hoover, W. G., 1986, Phys. Rev. A, 34, 2499.
61 gezelter 1490
62 gezelter 2204 NPTi::NPTi ( SimInfo *info) : NPT(info){
63 gezelter 1490
64 gezelter 2204 }
65 gezelter 1490
66 gezelter 2204 void NPTi::evolveEtaA() {
67 gezelter 1930 eta += dt2 * ( instaVol * (instaPress - targetPressure) /
68 gezelter 2204 (OOPSEConstant::pressureConvert*NkBT*tb2));
69 gezelter 1930 oldEta = eta;
70 gezelter 2204 }
71 gezelter 1490
72 gezelter 2204 void NPTi::evolveEtaB() {
73 gezelter 1490
74 gezelter 1930 prevEta = eta;
75     eta = oldEta + dt2 * ( instaVol * (instaPress - targetPressure) /
76 gezelter 2204 (OOPSEConstant::pressureConvert*NkBT*tb2));
77     }
78 gezelter 1490
79 gezelter 2204 void NPTi::calcVelScale() {
80 gezelter 1930 vScale = chi + eta;
81 gezelter 2204 }
82 gezelter 1490
83 gezelter 2204 void NPTi::getVelScaleA(Vector3d& sc, const Vector3d& vel) {
84 gezelter 1930 sc = vel * vScale;
85 gezelter 2204 }
86 gezelter 1490
87 gezelter 2204 void NPTi::getVelScaleB(Vector3d& sc, int index ){
88 gezelter 1930 sc = oldVel[index] * vScale;
89 gezelter 2204 }
90 gezelter 1490
91    
92 gezelter 2204 void NPTi::getPosScale(const Vector3d& pos, const Vector3d& COM,
93     int index, Vector3d& sc){
94 gezelter 1930 /**@todo*/
95     sc = (oldPos[index] + pos)/2.0 -COM;
96     sc *= eta;
97 gezelter 2204 }
98 gezelter 1490
99 gezelter 2204 void NPTi::scaleSimBox(){
100 gezelter 1490
101 gezelter 1930 double scaleFactor;
102 gezelter 1490
103 gezelter 1930 scaleFactor = exp(dt*eta);
104 gezelter 1490
105 gezelter 1930 if ((scaleFactor > 1.1) || (scaleFactor < 0.9)) {
106 gezelter 2204 sprintf( painCave.errMsg,
107     "NPTi error: Attempting a Box scaling of more than 10 percent"
108     " check your tauBarostat, as it is probably too small!\n"
109     " eta = %lf, scaleFactor = %lf\n", eta, scaleFactor
110     );
111     painCave.isFatal = 1;
112     simError();
113 gezelter 1930 } else {
114 gezelter 2204 Mat3x3d hmat = currentSnapshot_->getHmat();
115     hmat *= scaleFactor;
116     currentSnapshot_->setHmat(hmat);
117 gezelter 1930 }
118 gezelter 1490
119 gezelter 2204 }
120 gezelter 1490
121 gezelter 2204 bool NPTi::etaConverged() {
122 gezelter 1490
123 gezelter 1930 return ( fabs(prevEta - eta) <= etaTolerance );
124 gezelter 2204 }
125 gezelter 1490
126 gezelter 2204 double NPTi::calcConservedQuantity(){
127 gezelter 1490
128 gezelter 1930 chi= currentSnapshot_->getChi();
129     integralOfChidt = currentSnapshot_->getIntegralOfChiDt();
130     loadEta();
131     // We need NkBT a lot, so just set it here: This is the RAW number
132     // of integrableObjects, so no subtraction or addition of constraints or
133     // orientational degrees of freedom:
134     NkBT = info_->getNGlobalIntegrableObjects()*OOPSEConstant::kB *targetTemp;
135 gezelter 1490
136 gezelter 1930 // fkBT is used because the thermostat operates on more degrees of freedom
137     // than the barostat (when there are particles with orientational degrees
138     // of freedom).
139     fkBT = info_->getNdf()*OOPSEConstant::kB *targetTemp;
140    
141     double conservedQuantity;
142     double Energy;
143     double thermostat_kinetic;
144     double thermostat_potential;
145     double barostat_kinetic;
146     double barostat_potential;
147 gezelter 1490
148 gezelter 1930 Energy =thermo.getTotalE();
149 gezelter 1490
150 gezelter 1930 thermostat_kinetic = fkBT* tt2 * chi * chi / (2.0 * OOPSEConstant::energyConvert);
151 gezelter 1490
152 gezelter 1930 thermostat_potential = fkBT* integralOfChidt / OOPSEConstant::energyConvert;
153 gezelter 1490
154    
155 gezelter 1930 barostat_kinetic = 3.0 * NkBT * tb2 * eta * eta /(2.0 * OOPSEConstant::energyConvert);
156 gezelter 1490
157 gezelter 1930 barostat_potential = (targetPressure * thermo.getVolume() / OOPSEConstant::pressureConvert) /
158 gezelter 2204 OOPSEConstant::energyConvert;
159 gezelter 1490
160 gezelter 1930 conservedQuantity = Energy + thermostat_kinetic + thermostat_potential +
161 gezelter 2204 barostat_kinetic + barostat_potential;
162 gezelter 1930
163     return conservedQuantity;
164 gezelter 2204 }
165 gezelter 1490
166 gezelter 2204 void NPTi::loadEta() {
167 gezelter 1930 Mat3x3d etaMat = currentSnapshot_->getEta();
168     eta = etaMat(0,0);
169     //if (fabs(etaMat(1,1) - eta) >= oopse::epsilon || fabs(etaMat(1,1) - eta) >= oopse::epsilon || !etaMat.isDiagonal()) {
170     // sprintf( painCave.errMsg,
171     // "NPTi error: the diagonal elements of eta matrix are not the same or etaMat is not a diagonal matrix");
172     // painCave.isFatal = 1;
173     // simError();
174     //}
175 gezelter 2204 }
176 gezelter 1490
177 gezelter 2204 void NPTi::saveEta() {
178 gezelter 1930 Mat3x3d etaMat(0.0);
179     etaMat(0, 0) = eta;
180     etaMat(1, 1) = eta;
181     etaMat(2, 2) = eta;
182     currentSnapshot_->setEta(etaMat);
183 gezelter 2204 }
184 gezelter 1490
185     }