821 lines
24 KiB
C++
Executable File
821 lines
24 KiB
C++
Executable File
/* ----------------------------------------------------------------------
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LAMMPS - Large-scale Atomic/Molecular Massively Parallel Simulator
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http://lammps.sandia.gov, Sandia National Laboratories
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Steve Plimpton, sjplimp@sandia.gov
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Copyright (2003) Sandia Corporation. Under the terms of Contract
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DE-AC04-94AL85000 with Sandia Corporation, the U.S. Government retains
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certain rights in this software. This software is distributed under
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the GNU General Public License.
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See the README file in the top-level LAMMPS directory.
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------------------------------------------------------------------------- */
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/* ----------------------------------------------------------------------
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Contributing authors: Randy Schunk (SNL)
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Amit Kumar and Michael Bybee (UIUC)
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------------------------------------------------------------------------- */
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#include <math.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include "pair_lubricate.h"
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#include "atom.h"
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#include "atom_vec.h"
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#include "comm.h"
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#include "force.h"
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#include "neighbor.h"
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#include "neigh_list.h"
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#include "neigh_request.h"
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#include "domain.h"
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#include "modify.h"
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#include "fix.h"
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#include "fix_deform.h"
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#include "fix_wall.h"
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#include "input.h"
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#include "variable.h"
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#include "random_mars.h"
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#include "math_const.h"
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#include "memory.h"
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#include "error.h"
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using namespace LAMMPS_NS;
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using namespace MathConst;
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// same as fix_deform.cpp
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enum{NO_REMAP,X_REMAP,V_REMAP};
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// same as fix_wall.cpp
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enum{EDGE,CONSTANT,VARIABLE};
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/* ---------------------------------------------------------------------- */
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PairLubricate::PairLubricate(LAMMPS *lmp) : Pair(lmp)
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{
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single_enable = 0;
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// set comm size needed by this Pair
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comm_forward = 6;
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}
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/* ---------------------------------------------------------------------- */
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PairLubricate::~PairLubricate()
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{
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if (allocated) {
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memory->destroy(setflag);
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memory->destroy(cutsq);
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memory->destroy(cut);
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memory->destroy(cut_inner);
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}
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}
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/* ---------------------------------------------------------------------- */
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void PairLubricate::compute(int eflag, int vflag)
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{
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int i,j,ii,jj,inum,jnum,itype,jtype;
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double xtmp,ytmp,ztmp,delx,dely,delz,fx,fy,fz,tx,ty,tz;
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double rsq,r,h_sep,radi;
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double vr1,vr2,vr3,vnnr,vn1,vn2,vn3;
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double vt1,vt2,vt3,wt1,wt2,wt3,wdotn;
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double vRS0;
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double vi[3],vj[3],wi[3],wj[3],xl[3];
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double a_sq,a_sh,a_pu;
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int *ilist,*jlist,*numneigh,**firstneigh;
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double lamda[3],vstream[3];
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double vxmu2f = force->vxmu2f;
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if (eflag || vflag) ev_setup(eflag,vflag);
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else evflag = vflag_fdotr = 0;
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double **x = atom->x;
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double **v = atom->v;
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double **f = atom->f;
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double **omega = atom->omega;
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double **torque = atom->torque;
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double *radius = atom->radius;
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int *type = atom->type;
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int nlocal = atom->nlocal;
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int newton_pair = force->newton_pair;
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inum = list->inum;
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ilist = list->ilist;
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numneigh = list->numneigh;
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firstneigh = list->firstneigh;
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// subtract streaming component of velocity, omega, angmom
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// assume fluid streaming velocity = box deformation rate
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// vstream = (ux,uy,uz)
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// ux = h_rate[0]*x + h_rate[5]*y + h_rate[4]*z
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// uy = h_rate[1]*y + h_rate[3]*z
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// uz = h_rate[2]*z
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// omega_new = omega - curl(vstream)/2
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// angmom_new = angmom - I*curl(vstream)/2
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// Ef = (grad(vstream) + (grad(vstream))^T) / 2
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if (shearing) {
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double *h_rate = domain->h_rate;
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double *h_ratelo = domain->h_ratelo;
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for (ii = 0; ii < inum; ii++) {
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i = ilist[ii];
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itype = type[i];
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radi = radius[i];
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domain->x2lamda(x[i],lamda);
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vstream[0] = h_rate[0]*lamda[0] + h_rate[5]*lamda[1] +
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h_rate[4]*lamda[2] + h_ratelo[0];
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vstream[1] = h_rate[1]*lamda[1] + h_rate[3]*lamda[2] + h_ratelo[1];
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vstream[2] = h_rate[2]*lamda[2] + h_ratelo[2];
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v[i][0] -= vstream[0];
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v[i][1] -= vstream[1];
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v[i][2] -= vstream[2];
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omega[i][0] += 0.5*h_rate[3];
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omega[i][1] -= 0.5*h_rate[4];
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omega[i][2] += 0.5*h_rate[5];
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}
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// set Ef from h_rate in strain units
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Ef[0][0] = h_rate[0]/domain->xprd;
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Ef[1][1] = h_rate[1]/domain->yprd;
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Ef[2][2] = h_rate[2]/domain->zprd;
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Ef[0][1] = Ef[1][0] = 0.5 * h_rate[5]/domain->yprd;
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Ef[0][2] = Ef[2][0] = 0.5 * h_rate[4]/domain->zprd;
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Ef[1][2] = Ef[2][1] = 0.5 * h_rate[3]/domain->zprd;
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// copy updated velocity/omega/angmom to the ghost particles
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// no need to do this if not shearing since comm->ghost_velocity is set
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comm->forward_comm_pair(this);
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}
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// This section of code adjusts R0/RT0/RS0 if necessary due to changes
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// in the volume fraction as a result of fix deform or moving walls
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double dims[3], wallcoord;
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if (flagVF) // Flag for volume fraction corrections
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if (flagdeform || flagwall == 2){ // Possible changes in volume fraction
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if (flagdeform && !flagwall)
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for (j = 0; j < 3; j++)
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dims[j] = domain->prd[j];
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else if (flagwall == 2 || (flagdeform && flagwall == 1)){
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double wallhi[3], walllo[3];
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for (int j = 0; j < 3; j++){
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wallhi[j] = domain->prd[j];
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walllo[j] = 0;
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}
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for (int m = 0; m < wallfix->nwall; m++){
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int dim = wallfix->wallwhich[m] / 2;
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int side = wallfix->wallwhich[m] % 2;
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if (wallfix->xstyle[m] == VARIABLE){
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wallcoord = input->variable->compute_equal(wallfix->xindex[m]);
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}
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else wallcoord = wallfix->coord0[m];
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if (side == 0) walllo[dim] = wallcoord;
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else wallhi[dim] = wallcoord;
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}
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for (int j = 0; j < 3; j++)
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dims[j] = wallhi[j] - walllo[j];
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}
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double vol_T = dims[0]*dims[1]*dims[2];
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double vol_f = vol_P/vol_T;
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if (flaglog == 0) {
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R0 = 6*MY_PI*mu*rad*(1.0 + 2.16*vol_f);
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RT0 = 8*MY_PI*mu*pow(rad,3.0);
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RS0 = 20.0/3.0*MY_PI*mu*pow(rad,3.0)*
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(1.0 + 3.33*vol_f + 2.80*vol_f*vol_f);
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} else {
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R0 = 6*MY_PI*mu*rad*(1.0 + 2.725*vol_f - 6.583*vol_f*vol_f);
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RT0 = 8*MY_PI*mu*pow(rad,3.0)*(1.0 + 0.749*vol_f - 2.469*vol_f*vol_f);
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RS0 = 20.0/3.0*MY_PI*mu*pow(rad,3.0)*
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(1.0 + 3.64*vol_f - 6.95*vol_f*vol_f);
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}
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}
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// end of R0 adjustment code
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for (ii = 0; ii < inum; ii++) {
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i = ilist[ii];
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xtmp = x[i][0];
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ytmp = x[i][1];
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ztmp = x[i][2];
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itype = type[i];
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radi = radius[i];
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jlist = firstneigh[i];
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jnum = numneigh[i];
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// angular velocity
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wi[0] = omega[i][0];
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wi[1] = omega[i][1];
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wi[2] = omega[i][2];
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// FLD contribution to force and torque due to isotropic terms
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// FLD contribution to stress from isotropic RS0
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if (flagfld) {
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f[i][0] -= vxmu2f*R0*v[i][0];
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f[i][1] -= vxmu2f*R0*v[i][1];
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f[i][2] -= vxmu2f*R0*v[i][2];
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torque[i][0] -= vxmu2f*RT0*wi[0];
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torque[i][1] -= vxmu2f*RT0*wi[1];
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torque[i][2] -= vxmu2f*RT0*wi[2];
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if (shearing && vflag_either) {
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vRS0 = -vxmu2f * RS0;
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v_tally_tensor(i,i,nlocal,newton_pair,
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vRS0*Ef[0][0],vRS0*Ef[1][1],vRS0*Ef[2][2],
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vRS0*Ef[0][1],vRS0*Ef[0][2],vRS0*Ef[1][2]);
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}
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}
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if (!flagHI) continue;
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for (jj = 0; jj < jnum; jj++) {
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j = jlist[jj];
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j &= NEIGHMASK;
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delx = xtmp - x[j][0];
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dely = ytmp - x[j][1];
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delz = ztmp - x[j][2];
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rsq = delx*delx + dely*dely + delz*delz;
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jtype = type[j];
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if (rsq < cutsq[itype][jtype]) {
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r = sqrt(rsq);
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// angular momentum = I*omega = 2/5 * M*R^2 * omega
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wj[0] = omega[j][0];
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wj[1] = omega[j][1];
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wj[2] = omega[j][2];
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// xl = point of closest approach on particle i from its center
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xl[0] = -delx/r*radi;
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xl[1] = -dely/r*radi;
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xl[2] = -delz/r*radi;
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// velocity at the point of closest approach on both particles
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// v = v + omega_cross_xl - Ef.xl
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// particle i
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vi[0] = v[i][0] + (wi[1]*xl[2] - wi[2]*xl[1])
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- (Ef[0][0]*xl[0] + Ef[0][1]*xl[1] + Ef[0][2]*xl[2]);
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vi[1] = v[i][1] + (wi[2]*xl[0] - wi[0]*xl[2])
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- (Ef[1][0]*xl[0] + Ef[1][1]*xl[1] + Ef[1][2]*xl[2]);
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vi[2] = v[i][2] + (wi[0]*xl[1] - wi[1]*xl[0])
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- (Ef[2][0]*xl[0] + Ef[2][1]*xl[1] + Ef[2][2]*xl[2]);
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// particle j
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vj[0] = v[j][0] - (wj[1]*xl[2] - wj[2]*xl[1])
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+ (Ef[0][0]*xl[0] + Ef[0][1]*xl[1] + Ef[0][2]*xl[2]);
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vj[1] = v[j][1] - (wj[2]*xl[0] - wj[0]*xl[2])
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+ (Ef[1][0]*xl[0] + Ef[1][1]*xl[1] + Ef[1][2]*xl[2]);
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vj[2] = v[j][2] - (wj[0]*xl[1] - wj[1]*xl[0])
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+ (Ef[2][0]*xl[0] + Ef[2][1]*xl[1] + Ef[2][2]*xl[2]);
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// scalar resistances XA and YA
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h_sep = r - 2.0*radi;
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// if less than the minimum gap use the minimum gap instead
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if (r < cut_inner[itype][jtype])
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h_sep = cut_inner[itype][jtype] - 2.0*radi;
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// scale h_sep by radi
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h_sep = h_sep/radi;
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// scalar resistances
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if (flaglog) {
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a_sq = 6.0*MY_PI*mu*radi*(1.0/4.0/h_sep + 9.0/40.0*log(1.0/h_sep));
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a_sh = 6.0*MY_PI*mu*radi*(1.0/6.0*log(1.0/h_sep));
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a_pu = 8.0*MY_PI*mu*pow(radi,3.0)*(3.0/160.0*log(1.0/h_sep));
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} else
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a_sq = 6.0*MY_PI*mu*radi*(1.0/4.0/h_sep);
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// relative velocity at the point of closest approach
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// includes fluid velocity
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vr1 = vi[0] - vj[0];
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vr2 = vi[1] - vj[1];
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vr3 = vi[2] - vj[2];
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// normal component (vr.n)n
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vnnr = (vr1*delx + vr2*dely + vr3*delz)/r;
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vn1 = vnnr*delx/r;
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vn2 = vnnr*dely/r;
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vn3 = vnnr*delz/r;
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// tangential component vr - (vr.n)n
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vt1 = vr1 - vn1;
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vt2 = vr2 - vn2;
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vt3 = vr3 - vn3;
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// force due to squeeze type motion
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fx = a_sq*vn1;
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fy = a_sq*vn2;
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fz = a_sq*vn3;
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// force due to all shear kind of motions
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if (flaglog) {
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fx = fx + a_sh*vt1;
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fy = fy + a_sh*vt2;
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fz = fz + a_sh*vt3;
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}
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// scale forces for appropriate units
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fx *= vxmu2f;
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fy *= vxmu2f;
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fz *= vxmu2f;
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// add to total force
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f[i][0] -= fx;
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f[i][1] -= fy;
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f[i][2] -= fz;
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if (newton_pair || j < nlocal) {
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f[j][0] += fx;
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f[j][1] += fy;
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f[j][2] += fz;
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}
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// torque due to this force
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if (flaglog) {
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tx = xl[1]*fz - xl[2]*fy;
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ty = xl[2]*fx - xl[0]*fz;
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tz = xl[0]*fy - xl[1]*fx;
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torque[i][0] -= vxmu2f*tx;
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torque[i][1] -= vxmu2f*ty;
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torque[i][2] -= vxmu2f*tz;
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if (newton_pair || j < nlocal) {
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torque[j][0] -= vxmu2f*tx;
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torque[j][1] -= vxmu2f*ty;
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torque[j][2] -= vxmu2f*tz;
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}
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// torque due to a_pu
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wdotn = ((wi[0]-wj[0])*delx + (wi[1]-wj[1])*dely +
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(wi[2]-wj[2])*delz)/r;
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wt1 = (wi[0]-wj[0]) - wdotn*delx/r;
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wt2 = (wi[1]-wj[1]) - wdotn*dely/r;
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wt3 = (wi[2]-wj[2]) - wdotn*delz/r;
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tx = a_pu*wt1;
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ty = a_pu*wt2;
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tz = a_pu*wt3;
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torque[i][0] -= vxmu2f*tx;
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torque[i][1] -= vxmu2f*ty;
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torque[i][2] -= vxmu2f*tz;
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if (newton_pair || j < nlocal) {
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torque[j][0] += vxmu2f*tx;
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torque[j][1] += vxmu2f*ty;
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torque[j][2] += vxmu2f*tz;
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}
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}
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if (evflag) ev_tally_xyz(i,j,nlocal,newton_pair,
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0.0,0.0,-fx,-fy,-fz,delx,dely,delz);
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}
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}
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}
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// restore streaming component of velocity, omega, angmom
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if (shearing) {
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double *h_rate = domain->h_rate;
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double *h_ratelo = domain->h_ratelo;
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for (ii = 0; ii < inum; ii++) {
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i = ilist[ii];
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itype = type[i];
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radi = radius[i];
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domain->x2lamda(x[i],lamda);
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vstream[0] = h_rate[0]*lamda[0] + h_rate[5]*lamda[1] +
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h_rate[4]*lamda[2] + h_ratelo[0];
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vstream[1] = h_rate[1]*lamda[1] + h_rate[3]*lamda[2] + h_ratelo[1];
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vstream[2] = h_rate[2]*lamda[2] + h_ratelo[2];
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v[i][0] += vstream[0];
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v[i][1] += vstream[1];
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v[i][2] += vstream[2];
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omega[i][0] -= 0.5*h_rate[3];
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omega[i][1] += 0.5*h_rate[4];
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omega[i][2] -= 0.5*h_rate[5];
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}
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}
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if (vflag_fdotr) virial_fdotr_compute();
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}
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/* ----------------------------------------------------------------------
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allocate all arrays
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------------------------------------------------------------------------- */
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void PairLubricate::allocate()
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{
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allocated = 1;
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int n = atom->ntypes;
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memory->create(setflag,n+1,n+1,"pair:setflag");
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for (int i = 1; i <= n; i++)
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for (int j = i; j <= n; j++)
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setflag[i][j] = 0;
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memory->create(cutsq,n+1,n+1,"pair:cutsq");
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|
memory->create(cut,n+1,n+1,"pair:cut");
|
|
memory->create(cut_inner,n+1,n+1,"pair:cut_inner");
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
global settings
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::settings(int narg, char **arg)
|
|
{
|
|
if (narg != 5 && narg != 7) error->all(FLERR,"Illegal pair_style command");
|
|
|
|
mu = force->numeric(FLERR,arg[0]);
|
|
flaglog = force->inumeric(FLERR,arg[1]);
|
|
flagfld = force->inumeric(FLERR,arg[2]);
|
|
cut_inner_global = force->numeric(FLERR,arg[3]);
|
|
cut_global = force->numeric(FLERR,arg[4]);
|
|
|
|
flagHI = flagVF = 1;
|
|
if (narg == 7) {
|
|
flagHI = force->inumeric(FLERR,arg[5]);
|
|
flagVF = force->inumeric(FLERR,arg[6]);
|
|
}
|
|
|
|
if (flaglog == 1 && flagHI == 0) {
|
|
error->warning(FLERR,"Cannot include log terms without 1/r terms; "
|
|
"setting flagHI to 1");
|
|
flagHI = 1;
|
|
}
|
|
|
|
// reset cutoffs that have been explicitly set
|
|
|
|
if (allocated) {
|
|
for (int i = 1; i <= atom->ntypes; i++)
|
|
for (int j = i+1; j <= atom->ntypes; j++)
|
|
if (setflag[i][j]) {
|
|
cut_inner[i][j] = cut_inner_global;
|
|
cut[i][j] = cut_global;
|
|
}
|
|
}
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
set coeffs for one or more type pairs
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::coeff(int narg, char **arg)
|
|
{
|
|
if (narg != 2 && narg != 4)
|
|
error->all(FLERR,"Incorrect args for pair coefficients");
|
|
|
|
if (!allocated) allocate();
|
|
|
|
int ilo,ihi,jlo,jhi;
|
|
force->bounds(arg[0],atom->ntypes,ilo,ihi);
|
|
force->bounds(arg[1],atom->ntypes,jlo,jhi);
|
|
|
|
double cut_inner_one = cut_inner_global;
|
|
double cut_one = cut_global;
|
|
if (narg == 4) {
|
|
cut_inner_one = force->numeric(FLERR,arg[2]);
|
|
cut_one = force->numeric(FLERR,arg[3]);
|
|
}
|
|
|
|
int count = 0;
|
|
for (int i = ilo; i <= ihi; i++) {
|
|
for (int j = MAX(jlo,i); j <= jhi; j++) {
|
|
cut_inner[i][j] = cut_inner_one;
|
|
cut[i][j] = cut_one;
|
|
setflag[i][j] = 1;
|
|
count++;
|
|
}
|
|
}
|
|
|
|
if (count == 0) error->all(FLERR,"Incorrect args for pair coefficients");
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
init specific to this pair style
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::init_style()
|
|
{
|
|
if (!atom->sphere_flag)
|
|
error->all(FLERR,"Pair lubricate requires atom style sphere");
|
|
if (comm->ghost_velocity == 0)
|
|
error->all(FLERR,"Pair lubricate requires ghost atoms store velocity");
|
|
|
|
neighbor->request(this,instance_me);
|
|
|
|
// require that atom radii are identical within each type
|
|
// require monodisperse system with same radii for all types
|
|
|
|
double radtype;
|
|
for (int i = 1; i <= atom->ntypes; i++) {
|
|
if (!atom->radius_consistency(i,radtype))
|
|
error->all(FLERR,"Pair lubricate requires monodisperse particles");
|
|
if (i > 1 && radtype != rad)
|
|
error->all(FLERR,"Pair lubricate requires monodisperse particles");
|
|
rad = radtype;
|
|
}
|
|
|
|
// check for fix deform, if exists it must use "remap v"
|
|
// If box will change volume, set appropriate flag so that volume
|
|
// and v.f. corrections are re-calculated at every step.
|
|
//
|
|
// If available volume is different from box volume
|
|
// due to walls, set volume appropriately; if walls will
|
|
// move, set appropriate flag so that volume and v.f. corrections
|
|
// are re-calculated at every step.
|
|
|
|
shearing = flagdeform = flagwall = 0;
|
|
for (int i = 0; i < modify->nfix; i++){
|
|
if (strcmp(modify->fix[i]->style,"deform") == 0) {
|
|
shearing = flagdeform = 1;
|
|
if (((FixDeform *) modify->fix[i])->remapflag != V_REMAP)
|
|
error->all(FLERR,"Using pair lubricate with inconsistent "
|
|
"fix deform remap option");
|
|
}
|
|
if (strstr(modify->fix[i]->style,"wall") != NULL) {
|
|
if (flagwall)
|
|
error->all(FLERR,
|
|
"Cannot use multiple fix wall commands with pair lubricate");
|
|
flagwall = 1; // Walls exist
|
|
wallfix = (FixWall *) modify->fix[i];
|
|
if (wallfix->xflag) flagwall = 2; // Moving walls exist
|
|
}
|
|
}
|
|
|
|
// set the isotropic constants that depend on the volume fraction
|
|
// vol_T = total volume
|
|
|
|
double vol_T;
|
|
double wallcoord;
|
|
if (!flagwall) vol_T = domain->xprd*domain->yprd*domain->zprd;
|
|
else {
|
|
double wallhi[3], walllo[3];
|
|
for (int j = 0; j < 3; j++){
|
|
wallhi[j] = domain->prd[j];
|
|
walllo[j] = 0;
|
|
}
|
|
|
|
for (int m = 0; m < wallfix->nwall; m++){
|
|
int dim = wallfix->wallwhich[m] / 2;
|
|
int side = wallfix->wallwhich[m] % 2;
|
|
if (wallfix->xstyle[m] == VARIABLE){
|
|
wallfix->xindex[m] = input->variable->find(wallfix->xstr[m]);
|
|
//Since fix->wall->init happens after pair->init_style
|
|
wallcoord = input->variable->compute_equal(wallfix->xindex[m]);
|
|
}
|
|
|
|
else wallcoord = wallfix->coord0[m];
|
|
|
|
if (side == 0) walllo[dim] = wallcoord;
|
|
else wallhi[dim] = wallcoord;
|
|
}
|
|
vol_T = (wallhi[0] - walllo[0]) * (wallhi[1] - walllo[1]) *
|
|
(wallhi[2] - walllo[2]);
|
|
}
|
|
|
|
// vol_P = volume of particles, assuming monodispersity
|
|
// vol_f = volume fraction
|
|
|
|
vol_P = atom->natoms*(4.0/3.0)*MY_PI*pow(rad,3.0);
|
|
double vol_f = vol_P/vol_T;
|
|
|
|
if (!flagVF) vol_f = 0;
|
|
|
|
// set isotropic constants for FLD
|
|
|
|
if (flaglog == 0) {
|
|
R0 = 6*MY_PI*mu*rad*(1.0 + 2.16*vol_f);
|
|
RT0 = 8*MY_PI*mu*pow(rad,3.0);
|
|
RS0 = 20.0/3.0*MY_PI*mu*pow(rad,3.0)*(1.0 + 3.33*vol_f + 2.80*vol_f*vol_f);
|
|
} else {
|
|
R0 = 6*MY_PI*mu*rad*(1.0 + 2.725*vol_f - 6.583*vol_f*vol_f);
|
|
RT0 = 8*MY_PI*mu*pow(rad,3.0)*(1.0 + 0.749*vol_f - 2.469*vol_f*vol_f);
|
|
RS0 = 20.0/3.0*MY_PI*mu*pow(rad,3.0)*(1.0 + 3.64*vol_f - 6.95*vol_f*vol_f);
|
|
}
|
|
|
|
|
|
// set Ef = 0 since used whether shearing or not
|
|
|
|
Ef[0][0] = Ef[0][1] = Ef[0][2] = 0.0;
|
|
Ef[1][0] = Ef[1][1] = Ef[1][2] = 0.0;
|
|
Ef[2][0] = Ef[2][1] = Ef[2][2] = 0.0;
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
init for one type pair i,j and corresponding j,i
|
|
------------------------------------------------------------------------- */
|
|
|
|
double PairLubricate::init_one(int i, int j)
|
|
{
|
|
if (setflag[i][j] == 0) {
|
|
cut_inner[i][j] = mix_distance(cut_inner[i][i],cut_inner[j][j]);
|
|
cut[i][j] = mix_distance(cut[i][i],cut[j][j]);
|
|
}
|
|
|
|
cut_inner[j][i] = cut_inner[i][j];
|
|
|
|
return cut[i][j];
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
proc 0 writes to restart file
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::write_restart(FILE *fp)
|
|
{
|
|
write_restart_settings(fp);
|
|
|
|
int i,j;
|
|
for (i = 1; i <= atom->ntypes; i++)
|
|
for (j = i; j <= atom->ntypes; j++) {
|
|
fwrite(&setflag[i][j],sizeof(int),1,fp);
|
|
if (setflag[i][j]) {
|
|
fwrite(&cut_inner[i][j],sizeof(double),1,fp);
|
|
fwrite(&cut[i][j],sizeof(double),1,fp);
|
|
}
|
|
}
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
proc 0 reads from restart file, bcasts
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::read_restart(FILE *fp)
|
|
{
|
|
read_restart_settings(fp);
|
|
allocate();
|
|
|
|
int i,j;
|
|
int me = comm->me;
|
|
for (i = 1; i <= atom->ntypes; i++)
|
|
for (j = i; j <= atom->ntypes; j++) {
|
|
if (me == 0) fread(&setflag[i][j],sizeof(int),1,fp);
|
|
MPI_Bcast(&setflag[i][j],1,MPI_INT,0,world);
|
|
if (setflag[i][j]) {
|
|
if (me == 0) {
|
|
fread(&cut_inner[i][j],sizeof(double),1,fp);
|
|
fread(&cut[i][j],sizeof(double),1,fp);
|
|
}
|
|
MPI_Bcast(&cut_inner[i][j],1,MPI_DOUBLE,0,world);
|
|
MPI_Bcast(&cut[i][j],1,MPI_DOUBLE,0,world);
|
|
}
|
|
}
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
proc 0 writes to restart file
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::write_restart_settings(FILE *fp)
|
|
{
|
|
fwrite(&mu,sizeof(double),1,fp);
|
|
fwrite(&flaglog,sizeof(int),1,fp);
|
|
fwrite(&flagfld,sizeof(int),1,fp);
|
|
fwrite(&cut_inner_global,sizeof(double),1,fp);
|
|
fwrite(&cut_global,sizeof(double),1,fp);
|
|
fwrite(&offset_flag,sizeof(int),1,fp);
|
|
fwrite(&mix_flag,sizeof(int),1,fp);
|
|
fwrite(&flagHI,sizeof(int),1,fp);
|
|
fwrite(&flagVF,sizeof(int),1,fp);
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
proc 0 reads from restart file, bcasts
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::read_restart_settings(FILE *fp)
|
|
{
|
|
int me = comm->me;
|
|
if (me == 0) {
|
|
fread(&mu,sizeof(double),1,fp);
|
|
fread(&flaglog,sizeof(int),1,fp);
|
|
fread(&flagfld,sizeof(int),1,fp);
|
|
fread(&cut_inner_global,sizeof(double),1,fp);
|
|
fread(&cut_global,sizeof(double),1,fp);
|
|
fread(&offset_flag,sizeof(int),1,fp);
|
|
fread(&mix_flag,sizeof(int),1,fp);
|
|
fread(&flagHI,sizeof(int),1,fp);
|
|
fread(&flagVF,sizeof(int),1,fp);
|
|
}
|
|
MPI_Bcast(&mu,1,MPI_DOUBLE,0,world);
|
|
MPI_Bcast(&flaglog,1,MPI_INT,0,world);
|
|
MPI_Bcast(&flagfld,1,MPI_INT,0,world);
|
|
MPI_Bcast(&cut_inner_global,1,MPI_DOUBLE,0,world);
|
|
MPI_Bcast(&cut_global,1,MPI_DOUBLE,0,world);
|
|
MPI_Bcast(&offset_flag,1,MPI_INT,0,world);
|
|
MPI_Bcast(&mix_flag,1,MPI_INT,0,world);
|
|
MPI_Bcast(&flagHI,1,MPI_INT,0,world);
|
|
MPI_Bcast(&flagVF,1,MPI_INT,0,world);
|
|
}
|
|
|
|
/* ---------------------------------------------------------------------- */
|
|
|
|
int PairLubricate::pack_forward_comm(int n, int *list, double *buf,
|
|
int pbc_flag, int *pbc)
|
|
{
|
|
int i,j,m;
|
|
|
|
double **v = atom->v;
|
|
double **omega = atom->omega;
|
|
|
|
m = 0;
|
|
for (i = 0; i < n; i++) {
|
|
j = list[i];
|
|
buf[m++] = v[j][0];
|
|
buf[m++] = v[j][1];
|
|
buf[m++] = v[j][2];
|
|
buf[m++] = omega[j][0];
|
|
buf[m++] = omega[j][1];
|
|
buf[m++] = omega[j][2];
|
|
}
|
|
|
|
return m;
|
|
}
|
|
|
|
/* ---------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::unpack_forward_comm(int n, int first, double *buf)
|
|
{
|
|
int i,m,last;
|
|
|
|
double **v = atom->v;
|
|
double **omega = atom->omega;
|
|
|
|
m = 0;
|
|
last = first + n;
|
|
for (i = first; i < last; i++) {
|
|
v[i][0] = buf[m++];
|
|
v[i][1] = buf[m++];
|
|
v[i][2] = buf[m++];
|
|
omega[i][0] = buf[m++];
|
|
omega[i][1] = buf[m++];
|
|
omega[i][2] = buf[m++];
|
|
}
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
check if name is recognized, return integer index for that name
|
|
if name not recognized, return -1
|
|
if type pair setting, return -2 if no type pairs are set
|
|
------------------------------------------------------------------------- */
|
|
|
|
int PairLubricate::pre_adapt(char *name, int ilo, int ihi, int jlo, int jhi)
|
|
{
|
|
if (strcmp(name,"mu") == 0) return 0;
|
|
return -1;
|
|
}
|
|
|
|
/* ----------------------------------------------------------------------
|
|
adapt parameter indexed by which
|
|
change all pair variables affected by the reset parameter
|
|
if type pair setting, set I-J and J-I coeffs
|
|
------------------------------------------------------------------------- */
|
|
|
|
void PairLubricate::adapt(int which, int ilo, int ihi, int jlo, int jhi,
|
|
double value)
|
|
{
|
|
mu = value;
|
|
}
|