[6b919f8] | 1 | /*
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| 2 | * atom_trajectoryparticle.cpp
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| 3 | *
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| 4 | * Created on: Oct 19, 2009
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| 5 | * Author: heber
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| 6 | */
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| 7 |
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| 8 | #include "atom.hpp"
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| 9 | #include "atom_trajectoryparticle.hpp"
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| 10 | #include "config.hpp"
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| 11 | #include "element.hpp"
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[e138de] | 12 | #include "log.hpp"
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[6b919f8] | 13 | #include "parser.hpp"
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| 14 | #include "verbose.hpp"
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| 15 |
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| 16 | /** Constructor of class TrajectoryParticle.
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| 17 | */
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| 18 | TrajectoryParticle::TrajectoryParticle()
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| 19 | {
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| 20 | };
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| 21 |
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| 22 | /** Destructor of class TrajectoryParticle.
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| 23 | */
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| 24 | TrajectoryParticle::~TrajectoryParticle()
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| 25 | {
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| 26 | };
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| 27 |
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| 28 |
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| 29 | /** Adds kinetic energy of this atom to given temperature value.
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| 30 | * \param *temperature add on this value
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| 31 | * \param step given step of trajectory to add
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| 32 | */
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| 33 | void TrajectoryParticle::AddKineticToTemperature(double *temperature, int step) const
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| 34 | {
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| 35 | for (int i=NDIM;i--;)
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| 36 | *temperature += type->mass * Trajectory.U.at(step).x[i]* Trajectory.U.at(step).x[i];
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| 37 | };
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| 38 |
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| 39 | /** Evaluates some constraint potential if atom moves from \a startstep at once to \endstep in trajectory.
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| 40 | * \param startstep trajectory begins at
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| 41 | * \param endstep trajectory ends at
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| 42 | * \param **PermutationMap if atom switches places with some other atom, there is no translation but a permutaton noted here (not in the trajectories of ea
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| 43 | * \param *Force Force matrix to store result in
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| 44 | */
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[b453f9] | 45 | void TrajectoryParticle::EvaluateConstrainedForce(int startstep, int endstep, atom **PermutationMap, ForceMatrix *Force) const
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[6b919f8] | 46 | {
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| 47 | double constant = 10.;
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| 48 | TrajectoryParticle *Sprinter = PermutationMap[nr];
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| 49 | // set forces
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| 50 | for (int i=NDIM;i++;)
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| 51 | Force->Matrix[0][nr][5+i] += 2.*constant*sqrt(Trajectory.R.at(startstep).Distance(&Sprinter->Trajectory.R.at(endstep)));
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| 52 | };
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| 53 |
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| 54 | /** Correct velocity against the summed \a CoGVelocity for \a step.
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| 55 | * \param *ActualTemp sum up actual temperature meanwhile
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| 56 | * \param Step MD step in atom::Tracjetory
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| 57 | * \param *CoGVelocity remnant velocity (i.e. vector sum of all atom velocities)
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| 58 | */
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| 59 | void TrajectoryParticle::CorrectVelocity(double *ActualTemp, int Step, Vector *CoGVelocity)
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| 60 | {
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| 61 | for(int d=0;d<NDIM;d++) {
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| 62 | Trajectory.U.at(Step).x[d] -= CoGVelocity->x[d];
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| 63 | *ActualTemp += 0.5 * type->mass * Trajectory.U.at(Step).x[d] * Trajectory.U.at(Step).x[d];
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| 64 | }
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| 65 | };
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| 66 |
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| 67 | /** Extends the trajectory STL vector to the new size.
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| 68 | * Does nothing if \a MaxSteps is smaller than current size.
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| 69 | * \param MaxSteps
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| 70 | */
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| 71 | void TrajectoryParticle::ResizeTrajectory(int MaxSteps)
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| 72 | {
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| 73 | if (Trajectory.R.size() <= (unsigned int)(MaxSteps)) {
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[e138de] | 74 | //Log() << Verbose(0) << "Increasing size for trajectory array of " << keyword << " to " << (MaxSteps+1) << "." << endl;
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[6b919f8] | 75 | Trajectory.R.resize(MaxSteps+1);
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| 76 | Trajectory.U.resize(MaxSteps+1);
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| 77 | Trajectory.F.resize(MaxSteps+1);
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| 78 | }
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| 79 | };
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| 80 |
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| 81 | /** Copies a given trajectory step \a src onto another \a dest
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| 82 | * \param dest index of destination step
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| 83 | * \param src index of source step
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| 84 | */
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| 85 | void TrajectoryParticle::CopyStepOnStep(int dest, int src)
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| 86 | {
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| 87 | if (dest == src) // self assignment check
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| 88 | return;
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| 89 |
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| 90 | for (int n=NDIM;n--;) {
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| 91 | Trajectory.R.at(dest).x[n] = Trajectory.R.at(src).x[n];
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| 92 | Trajectory.U.at(dest).x[n] = Trajectory.U.at(src).x[n];
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| 93 | Trajectory.F.at(dest).x[n] = Trajectory.F.at(src).x[n];
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| 94 | }
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| 95 | };
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| 96 |
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| 97 | /** Performs a velocity verlet update of the trajectory.
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| 98 | * Parameters are according to those in configuration class.
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| 99 | * \param NextStep index of sequential step to set
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| 100 | * \param *configuration pointer to configuration with parameters
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| 101 | * \param *Force matrix with forces
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| 102 | */
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| 103 | void TrajectoryParticle::VelocityVerletUpdate(int NextStep, config *configuration, ForceMatrix *Force)
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| 104 | {
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| 105 | //a = configuration.Deltat*0.5/walker->type->mass; // (F+F_old)/2m = a and thus: v = (F+F_old)/2m * t = (F + F_old) * a
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| 106 | for (int d=0; d<NDIM; d++) {
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| 107 | Trajectory.F.at(NextStep).x[d] = -Force->Matrix[0][nr][d+5]*(configuration->GetIsAngstroem() ? AtomicLengthToAngstroem : 1.);
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| 108 | Trajectory.R.at(NextStep).x[d] = Trajectory.R.at(NextStep-1).x[d];
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| 109 | Trajectory.R.at(NextStep).x[d] += configuration->Deltat*(Trajectory.U.at(NextStep-1).x[d]); // s(t) = s(0) + v * deltat + 1/2 a * deltat^2
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| 110 | Trajectory.R.at(NextStep).x[d] += 0.5*configuration->Deltat*configuration->Deltat*(Trajectory.F.at(NextStep).x[d]/type->mass); // F = m * a and s =
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| 111 | }
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| 112 | // Update U
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| 113 | for (int d=0; d<NDIM; d++) {
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| 114 | Trajectory.U.at(NextStep).x[d] = Trajectory.U.at(NextStep-1).x[d];
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| 115 | Trajectory.U.at(NextStep).x[d] += configuration->Deltat * (Trajectory.F.at(NextStep).x[d]+Trajectory.F.at(NextStep-1).x[d]/type->mass); // v = F/m * t
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| 116 | }
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| 117 | // Update R (and F)
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| 118 | // out << "Integrated position&velocity of step " << (NextStep) << ": (";
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| 119 | // for (int d=0;d<NDIM;d++)
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| 120 | // out << Trajectory.R.at(NextStep).x[d] << " "; // next step
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| 121 | // out << ")\t(";
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| 122 | // for (int d=0;d<NDIM;d++)
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[e138de] | 123 | // Log() << Verbose(0) << Trajectory.U.at(NextStep).x[d] << " "; // next step
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[6b919f8] | 124 | // out << ")" << endl;
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| 125 | };
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| 126 |
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| 127 | /** Sums up mass and kinetics.
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| 128 | * \param Step step to sum for
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| 129 | * \param *TotalMass pointer to total mass sum
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| 130 | * \param *TotalVelocity pointer to tota velocity sum
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| 131 | */
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[b453f9] | 132 | void TrajectoryParticle::SumUpKineticEnergy( int Step, double *TotalMass, Vector *TotalVelocity ) const
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[6b919f8] | 133 | {
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| 134 | *TotalMass += type->mass; // sum up total mass
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| 135 | for(int d=0;d<NDIM;d++) {
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| 136 | TotalVelocity->x[d] += Trajectory.U.at(Step).x[d]*type->mass;
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| 137 | }
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| 138 | };
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| 139 |
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| 140 | /** Scales velocity of atom according to Woodcock thermostat.
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| 141 | * \param ScaleTempFactor factor to scale the velocities with (i.e. sqrt of energy scale factor)
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| 142 | * \param Step MD step to scale
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| 143 | * \param *ekin sum of kinetic energy
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| 144 | */
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| 145 | void TrajectoryParticle::Thermostat_Woodcock(double ScaleTempFactor, int Step, double *ekin)
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| 146 | {
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| 147 | double *U = Trajectory.U.at(Step).x;
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| 148 | if (FixedIon == 0) // even FixedIon moves, only not by other's forces
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| 149 | for (int d=0; d<NDIM; d++) {
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| 150 | U[d] *= ScaleTempFactor;
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| 151 | *ekin += 0.5*type->mass * U[d]*U[d];
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| 152 | }
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| 153 | };
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| 154 |
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| 155 | /** Scales velocity of atom according to Gaussian thermostat.
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| 156 | * \param Step MD step to scale
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| 157 | * \param *G
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| 158 | * \param *E
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| 159 | */
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| 160 | void TrajectoryParticle::Thermostat_Gaussian_init(int Step, double *G, double *E)
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| 161 | {
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| 162 | double *U = Trajectory.U.at(Step).x;
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| 163 | double *F = Trajectory.F.at(Step).x;
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| 164 | if (FixedIon == 0) // even FixedIon moves, only not by other's forces
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| 165 | for (int d=0; d<NDIM; d++) {
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| 166 | *G += U[d] * F[d];
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| 167 | *E += U[d]*U[d]*type->mass;
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| 168 | }
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| 169 | };
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| 170 |
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| 171 | /** Determines scale factors according to Gaussian thermostat.
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| 172 | * \param Step MD step to scale
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| 173 | * \param GE G over E ratio
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| 174 | * \param *ekin sum of kinetic energy
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| 175 | * \param *configuration configuration class with TempFrequency and TargetTemp
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| 176 | */
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| 177 | void TrajectoryParticle::Thermostat_Gaussian_least_constraint(int Step, double G_over_E, double *ekin, config *configuration)
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| 178 | {
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| 179 | double *U = Trajectory.U.at(Step).x;
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| 180 | if (FixedIon == 0) // even FixedIon moves, only not by other's forces
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| 181 | for (int d=0; d<NDIM; d++) {
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| 182 | U[d] += configuration->Deltat/type->mass * ( (G_over_E) * (U[d]*type->mass) );
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| 183 | *ekin += type->mass * U[d]*U[d];
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| 184 | }
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| 185 | };
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| 186 |
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| 187 | /** Scales velocity of atom according to Langevin thermostat.
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| 188 | * \param Step MD step to scale
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| 189 | * \param *r random number generator
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| 190 | * \param *ekin sum of kinetic energy
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| 191 | * \param *configuration configuration class with TempFrequency and TargetTemp
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| 192 | */
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| 193 | void TrajectoryParticle::Thermostat_Langevin(int Step, gsl_rng * r, double *ekin, config *configuration)
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| 194 | {
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| 195 | double sigma = sqrt(configuration->TargetTemp/type->mass); // sigma = (k_b T)/m (Hartree/atomicmass = atomiclength/atomictime)
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| 196 | double *U = Trajectory.U.at(Step).x;
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| 197 | if (FixedIon == 0) { // even FixedIon moves, only not by other's forces
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| 198 | // throw a dice to determine whether it gets hit by a heat bath particle
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| 199 | if (((((rand()/(double)RAND_MAX))*configuration->TempFrequency) < 1.)) {
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[e138de] | 200 | Log() << Verbose(3) << "Particle " << *this << " was hit (sigma " << sigma << "): " << sqrt(U[0]*U[0]+U[1]*U[1]+U[2]*U[2]) << " -> ";
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[6b919f8] | 201 | // pick three random numbers from a Boltzmann distribution around the desired temperature T for each momenta axis
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| 202 | for (int d=0; d<NDIM; d++) {
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| 203 | U[d] = gsl_ran_gaussian (r, sigma);
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| 204 | }
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[e138de] | 205 | Log() << Verbose(0) << sqrt(U[0]*U[0]+U[1]*U[1]+U[2]*U[2]) << endl;
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[6b919f8] | 206 | }
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| 207 | for (int d=0; d<NDIM; d++)
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| 208 | *ekin += 0.5*type->mass * U[d]*U[d];
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| 209 | }
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| 210 | };
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| 211 |
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| 212 | /** Scales velocity of atom according to Berendsen thermostat.
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| 213 | * \param Step MD step to scale
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| 214 | * \param ScaleTempFactor factor to scale energy (not velocity!) with
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| 215 | * \param *ekin sum of kinetic energy
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| 216 | * \param *configuration configuration class with TempFrequency and Deltat
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| 217 | */
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| 218 | void TrajectoryParticle::Thermostat_Berendsen(int Step, double ScaleTempFactor, double *ekin, config *configuration)
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| 219 | {
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| 220 | double *U = Trajectory.U.at(Step).x;
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| 221 | if (FixedIon == 0) { // even FixedIon moves, only not by other's forces
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| 222 | for (int d=0; d<NDIM; d++) {
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| 223 | U[d] *= sqrt(1+(configuration->Deltat/configuration->TempFrequency)*(ScaleTempFactor-1));
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| 224 | *ekin += 0.5*type->mass * U[d]*U[d];
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| 225 | }
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| 226 | }
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| 227 | };
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| 228 |
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| 229 | /** Initializes current run of NoseHoover thermostat.
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| 230 | * \param Step MD step to scale
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| 231 | * \param *delta_alpha additional sum of kinetic energy on return
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| 232 | */
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| 233 | void TrajectoryParticle::Thermostat_NoseHoover_init(int Step, double *delta_alpha)
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| 234 | {
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| 235 | double *U = Trajectory.U.at(Step).x;
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| 236 | if (FixedIon == 0) { // even FixedIon moves, only not by other's forces
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| 237 | for (int d=0; d<NDIM; d++) {
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| 238 | *delta_alpha += U[d]*U[d]*type->mass;
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| 239 | }
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| 240 | }
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| 241 | };
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| 242 |
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| 243 | /** Initializes current run of NoseHoover thermostat.
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| 244 | * \param Step MD step to scale
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| 245 | * \param *ekin sum of kinetic energy
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| 246 | * \param *configuration configuration class with TempFrequency and Deltat
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| 247 | */
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| 248 | void TrajectoryParticle::Thermostat_NoseHoover_scale(int Step, double *ekin, config *configuration)
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| 249 | {
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| 250 | double *U = Trajectory.U.at(Step).x;
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| 251 | if (FixedIon == 0) { // even FixedIon moves, only not by other's forces
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| 252 | for (int d=0; d<NDIM; d++) {
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| 253 | U[d] += configuration->Deltat/type->mass * (configuration->alpha * (U[d] * type->mass));
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| 254 | *ekin += (0.5*type->mass) * U[d]*U[d];
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| 255 | }
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| 256 | }
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| 257 | };
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