36 |
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* [1] Meineke, et al., J. Comp. Chem. 26, 252-271 (2005). |
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* [2] Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006). |
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* [3] Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008). |
39 |
< |
* [4] Vardeman & Gezelter, in progress (2009). |
39 |
> |
* [4] Kuang & Gezelter, J. Chem. Phys. 133, 164101 (2010). |
40 |
> |
* [5] Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). |
41 |
|
*/ |
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|
|
43 |
+ |
#include "config.h" |
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+ |
#include <cmath> |
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+ |
|
46 |
|
#include "primitives/Torsion.hpp" |
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|
|
48 |
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namespace OpenMD { |
51 |
|
TorsionType *tt) : |
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atom1_(atom1), atom2_(atom2), atom3_(atom3), atom4_(atom4), torsionType_(tt) { } |
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|
|
54 |
< |
void Torsion::calcForce(RealType& angle) { |
54 |
> |
void Torsion::calcForce(RealType& angle, bool doParticlePot) { |
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|
|
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Vector3d pos1 = atom1_->getPos(); |
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Vector3d pos2 = atom2_->getPos(); |
67 |
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RealType rA = A.length(); |
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Vector3d B = cross(r32, r43); |
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RealType rB = B.length(); |
66 |
– |
Vector3d C = cross(r32, A); |
67 |
– |
RealType rC = C.length(); |
70 |
|
|
71 |
+ |
/* |
72 |
+ |
If either of the two cross product vectors is tiny, that means |
73 |
+ |
the three atoms involved are colinear, and the torsion angle is |
74 |
+ |
going to be undefined. The easiest check for this problem is |
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+ |
to use the product of the two lengths. |
76 |
+ |
*/ |
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+ |
if (rA * rB < OpenMD::epsilon) return; |
78 |
+ |
|
79 |
|
A.normalize(); |
80 |
< |
B.normalize(); |
71 |
< |
C.normalize(); |
80 |
> |
B.normalize(); |
81 |
|
|
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|
// Calculate the sin and cos |
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|
RealType cos_phi = dot(A, B) ; |
84 |
|
if (cos_phi > 1.0) cos_phi = 1.0; |
85 |
|
if (cos_phi < -1.0) cos_phi = -1.0; |
86 |
< |
|
86 |
> |
|
87 |
|
RealType dVdcosPhi; |
88 |
|
torsionType_->calcForce(cos_phi, potential_, dVdcosPhi); |
89 |
|
Vector3d f1 ; |
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|
Vector3d f2 ; |
91 |
|
Vector3d f3 ; |
92 |
< |
|
92 |
> |
|
93 |
|
Vector3d dcosdA = (cos_phi * A - B) /rA; |
94 |
|
Vector3d dcosdB = (cos_phi * B - A) /rB; |
95 |
< |
|
95 |
> |
|
96 |
|
f1 = dVdcosPhi * cross(r32, dcosdA); |
97 |
|
f2 = dVdcosPhi * ( cross(r43, dcosdB) - cross(r21, dcosdA)); |
98 |
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f3 = dVdcosPhi * cross(dcosdB, r32); |
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atom2_->addFrc(f2 - f1); |
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|
atom3_->addFrc(f3 - f2); |
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|
atom4_->addFrc(-f3); |
104 |
< |
|
105 |
< |
atom1_->addParticlePot(potential_); |
106 |
< |
atom2_->addParticlePot(potential_); |
107 |
< |
atom3_->addParticlePot(potential_); |
108 |
< |
atom4_->addParticlePot(potential_); |
109 |
< |
|
110 |
< |
angle = acos(cos_phi) /M_PI * 180.0; |
111 |
< |
} |
112 |
< |
|
104 |
> |
|
105 |
> |
if (doParticlePot) { |
106 |
> |
atom1_->addParticlePot(potential_); |
107 |
> |
atom2_->addParticlePot(potential_); |
108 |
> |
atom3_->addParticlePot(potential_); |
109 |
> |
atom4_->addParticlePot(potential_); |
110 |
> |
} |
111 |
> |
|
112 |
> |
angle = acos(cos_phi) /M_PI * 180.0; |
113 |
> |
} |
114 |
|
} |