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root/OpenMD/branches/development/src/primitives/Inversion.cpp
Revision: 1767
Committed: Fri Jul 6 22:01:58 2012 UTC (12 years, 9 months ago) by gezelter
File size: 4700 byte(s)
Log Message:
Various fixes required to compile OpenMD with the MS Visual C++ compiler

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, 24107 (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 "config.h"
44 #include <cmath>
45
46 #include "primitives/Inversion.hpp"
47
48 namespace OpenMD {
49
50 Inversion::Inversion(Atom *atom1, Atom *atom2, Atom *atom3,
51 Atom *atom4, InversionType *it) :
52 atom1_(atom1), atom2_(atom2), atom3_(atom3), atom4_(atom4),
53 inversionType_(it) { }
54
55 void Inversion::calcForce(RealType& angle, bool doParticlePot) {
56
57 // In OpenMD's version of an inversion, the central atom
58 // comes first. However, to get the planarity in a typical cosine
59 // version of this potential (i.e. Amber-style), the central atom
60 // is treated as atom *3* in a standard torsion form:
61
62 Vector3d pos1 = atom2_->getPos();
63 Vector3d pos2 = atom3_->getPos();
64 Vector3d pos3 = atom1_->getPos();
65 Vector3d pos4 = atom4_->getPos();
66
67 Vector3d r31 = pos1 - pos3;
68 Vector3d r23 = pos3 - pos2;
69 Vector3d r43 = pos3 - pos4;
70
71 // Calculate the cross products and distances
72 Vector3d A = cross(r31, r43);
73 RealType rA = A.length();
74 Vector3d B = cross(r43, r23);
75 RealType rB = B.length();
76 //Vector3d C = cross(r23, A);
77 //RealType rC = C.length();
78
79 A.normalize();
80 B.normalize();
81 //C.normalize();
82
83 // Calculate the sin and cos
84 RealType cos_phi = dot(A, B) ;
85 if (cos_phi > 1.0) cos_phi = 1.0;
86 if (cos_phi < -1.0) cos_phi = -1.0;
87
88 RealType dVdcosPhi;
89 inversionType_->calcForce(cos_phi, potential_, dVdcosPhi);
90 Vector3d f1 ;
91 Vector3d f2 ;
92 Vector3d f3 ;
93
94 Vector3d dcosdA = (cos_phi * A - B) /rA;
95 Vector3d dcosdB = (cos_phi * B - A) /rB;
96
97 f1 = dVdcosPhi * cross(r43, dcosdA);
98 f2 = dVdcosPhi * ( cross(r23, dcosdB) - cross(r31, dcosdA));
99 f3 = dVdcosPhi * cross(dcosdB, r43);
100
101 // In OpenMD's version of an improper torsion, the central atom
102 // comes first. However, to get the planarity in a typical cosine
103 // version of this potential (i.e. Amber-style), the central atom
104 // is treated as atom *3* in a standard torsion form:
105
106 // AMBER: I - J - K - L (e.g. K is sp2 hybridized carbon)
107 // OpenMD: I - (J - K - L) (e.g. I is sp2 hybridized carbon)
108
109 // Confusing enough? Good.
110
111 atom2_->addFrc(f1);
112 atom1_->addFrc(f2 - f1 + f3);
113 atom4_->addFrc(-f2);
114 atom3_->addFrc(-f3);
115
116 if (doParticlePot) {
117 atom1_->addParticlePot(potential_);
118 atom2_->addParticlePot(potential_);
119 atom3_->addParticlePot(potential_);
120 atom4_->addParticlePot(potential_);
121 }
122
123 angle = acos(cos_phi) /M_PI * 180.0;
124 }
125
126 }

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