#include <math.h>
#include "moldyn.h"
+#include "report/report.h"
-#include "math/math.h"
-#include "init/init.h"
-#include "random/random.h"
-#include "visual/visual.h"
-#include "list/list.h"
-
-int moldyn_usage(char **argv) {
-
- printf("\n%s usage:\n\n",argv[0]);
- printf("--- general options ---\n");
- printf("-E <steps> <file> (log total energy)\n");
- printf("-M <steps> <file> (log total momentum)\n");
- printf("-D <steps> <file> (dump total information)\n");
- printf("-S <steps> <filebase> (single save file)\n");
- printf("-V <steps> <filebase> (rasmol file)\n");
- printf("--- physics options ---\n");
- printf("-T <temperature> [K] (%f)\n",MOLDYN_TEMP);
- printf("-t <timestep tau> [s] (%.15f)\n",MOLDYN_TAU);
- printf("-C <cutoff radius> [m] (%.15f)\n",MOLDYN_CUTOFF);
- printf("-R <runs> (%d)\n",MOLDYN_RUNS);
- printf(" -- integration algo --\n");
- printf(" -I <number> (%d)\n",MOLDYN_INTEGRATE_DEFAULT);
- printf(" 0: velocity verlet\n");
- printf(" -- potential --\n");
- printf(" -P <number> <param1 param2 ...>\n");
- printf(" 0: harmonic oscillator\n");
- printf(" param1: spring constant\n");
- printf(" param2: equilibrium distance\n");
- printf(" 1: lennard jones\n");
- printf(" param1: epsilon\n");
- printf(" param2: sigma\n");
- printf("\n");
+int moldyn_init(t_moldyn *moldyn,int argc,char **argv) {
+
+ printf("[moldyn] init\n");
+
+ memset(moldyn,0,sizeof(t_moldyn));
+
+ rand_init(&(moldyn->random),NULL,1);
+ moldyn->random.status|=RAND_STAT_VERBOSE;
return 0;
}
-int moldyn_parse_argv(t_moldyn *moldyn,int argc,char **argv) {
+int moldyn_shutdown(t_moldyn *moldyn) {
+
+ printf("[moldyn] shutdown\n");
- int i;
- t_ho_params hop;
- t_lj_params ljp;
- double s,e;
+ moldyn_log_shutdown(moldyn);
+ link_cell_shutdown(moldyn);
+ rand_close(&(moldyn->random));
+ free(moldyn->atom);
- memset(moldyn,0,sizeof(t_moldyn));
+ return 0;
+}
+
+int set_int_alg(t_moldyn *moldyn,u8 algo) {
- /* default values */
- moldyn->t=MOLDYN_TEMP;
- moldyn->tau=MOLDYN_TAU;
- moldyn->time_steps=MOLDYN_RUNS;
- moldyn->integrate=velocity_verlet;
- moldyn->potential_force_function=lennard_jones;
-
- /* parse argv */
- for(i=1;i<argc;i++) {
- if(argv[i][0]=='-') {
- switch(argv[i][1]){
- case 'E':
- moldyn->ewrite=atoi(argv[++i]);
- strncpy(moldyn->efb,argv[++i],64);
- break;
- case 'M':
- moldyn->mwrite=atoi(argv[++i]);
- strncpy(moldyn->mfb,argv[++i],64);
- break;
- case 'D':
- moldyn->dwrite=atoi(argv[++i]);
- strncpy(moldyn->dfb,argv[++i],64);
- break;
- case 'S':
- moldyn->swrite=atoi(argv[++i]);
- strncpy(moldyn->sfb,argv[++i],64);
- break;
- case 'V':
- moldyn->vwrite=atoi(argv[++i]);
- strncpy(moldyn->vfb,argv[++i],64);
- break;
- case 'T':
- moldyn->t=atof(argv[++i]);
- break;
- case 't':
- moldyn->tau=atof(argv[++i]);
- break;
- case 'C':
- moldyn->cutoff=atof(argv[++i]);
- break;
- case 'R':
- moldyn->time_steps=atoi(argv[++i]);
- break;
- case 'I':
- /* integration algorithm */
- switch(atoi(argv[++i])) {
+ printf("[moldyn] integration algorithm: ");
+
+ switch(algo) {
case MOLDYN_INTEGRATE_VERLET:
moldyn->integrate=velocity_verlet;
+ printf("velocity verlet\n");
break;
default:
- printf("unknown integration algo %s\n",argv[i]);
- moldyn_usage(argv);
+ printf("unknown integration algorithm: %02x\n",algo);
+ printf("unknown\n");
return -1;
}
- case 'P':
- /* potential + params */
- switch(atoi(argv[++i])) {
- case MOLDYN_POTENTIAL_HO:
- hop.spring_constant=atof(argv[++i]);
- hop.equilibrium_distance=atof(argv[++i]);
- moldyn->pot_params=malloc(sizeof(t_ho_params));
- memcpy(moldyn->pot_params,&hop,sizeof(t_ho_params));
- moldyn->potential_force_function=harmonic_oscillator;
- break;
- case MOLDYN_POTENTIAL_LJ:
- e=atof(argv[++i]);
- s=atof(argv[++i]);
- ljp.epsilon4=4*e;
- ljp.sigma6=s*s*s*s*s*s;
- ljp.sigma12=ljp.sigma6*ljp.sigma6;
- moldyn->pot_params=malloc(sizeof(t_lj_params));
- memcpy(moldyn->pot_params,&ljp,sizeof(t_lj_params));
- moldyn->potential_force_function=lennard_jones;
- break;
- default:
- printf("unknown potential %s\n",argv[i]);
- moldyn_usage(argv);
- return -1;
- }
+ return 0;
+}
- default:
- printf("unknown option %s\n",argv[i]);
- moldyn_usage(argv);
- return -1;
- }
- } else {
- moldyn_usage(argv);
- return -1;
- }
- }
+int set_cutoff(t_moldyn *moldyn,double cutoff) {
+
+ moldyn->cutoff=cutoff;
+
+ printf("[moldyn] cutoff [A]: %f\n",moldyn->cutoff);
return 0;
}
-int moldyn_log_init(t_moldyn *moldyn) {
+int set_temperature(t_moldyn *moldyn,double t_ref) {
- moldyn->lvstat=0;
- t_visual *vis;
+ moldyn->t_ref=t_ref;
- vis=&(moldyn->vis);
+ printf("[moldyn] temperature [K]: %f\n",moldyn->t_ref);
- if(moldyn->ewrite) {
- moldyn->efd=open(moldyn->efb,O_WRONLY|O_CREAT|O_TRUNC);
- if(moldyn->efd<0) {
- perror("[moldyn] efd open");
- return moldyn->efd;
- }
- dprintf(moldyn->efd,"# moldyn total energy logfile\n");
- moldyn->lvstat|=MOLDYN_LVSTAT_TOTAL_E;
- }
+ return 0;
+}
- if(moldyn->mwrite) {
- moldyn->mfd=open(moldyn->mfb,O_WRONLY|O_CREAT|O_TRUNC);
- if(moldyn->mfd<0) {
- perror("[moldyn] mfd open");
- return moldyn->mfd;
- }
- dprintf(moldyn->mfd,"# moldyn total momentum logfile\n");
- moldyn->lvstat|=MOLDYN_LVSTAT_TOTAL_M;
- }
+int set_pressure(t_moldyn *moldyn,double p_ref) {
- if(moldyn->swrite)
- moldyn->lvstat|=MOLDYN_LVSTAT_SAVE;
+ moldyn->p_ref=p_ref;
- if(moldyn->dwrite) {
- moldyn->dfd=open(moldyn->dfb,O_WRONLY|O_CREAT|O_TRUNC);
- if(moldyn->dfd<0) {
- perror("[moldyn] dfd open");
- return moldyn->dfd;
- }
- write(moldyn->dfd,moldyn,sizeof(t_moldyn));
- moldyn->lvstat|=MOLDYN_LVSTAT_DUMP;
- }
+ printf("[moldyn] pressure [bar]: %f\n",moldyn->p_ref/BAR);
+
+ return 0;
+}
+
+int set_pt_scale(t_moldyn *moldyn,u8 ptype,double ptc,u8 ttype,double ttc) {
+
+ moldyn->pt_scale=(ptype|ttype);
+ moldyn->t_tc=ttc;
+ moldyn->p_tc=ptc;
+
+ printf("[moldyn] p/t scaling:\n");
+
+ printf(" p: %s",ptype?"yes":"no ");
+ if(ptype)
+ printf(" | type: %02x | factor: %f",ptype,ptc);
+ printf("\n");
+
+ printf(" t: %s",ttype?"yes":"no ");
+ if(ttype)
+ printf(" | type: %02x | factor: %f",ttype,ttc);
+ printf("\n");
+
+ return 0;
+}
+
+int set_dim(t_moldyn *moldyn,double x,double y,double z,u8 visualize) {
- if((moldyn->vwrite)&&(vis)) {
- moldyn->visual=vis;
- visual_init(vis,moldyn->vfb);
- moldyn->lvstat|=MOLDYN_LVSTAT_VISUAL;
+ moldyn->dim.x=x;
+ moldyn->dim.y=y;
+ moldyn->dim.z=z;
+
+ moldyn->volume=x*y*z;
+
+ if(visualize) {
+ moldyn->vis.dim.x=x;
+ moldyn->vis.dim.y=y;
+ moldyn->vis.dim.z=z;
}
- moldyn->lvstat|=MOLDYN_LVSTAT_INITIALIZED;
+ moldyn->dv=0.000001*moldyn->volume;
+
+ printf("[moldyn] dimensions in A and A^3 respectively:\n");
+ printf(" x: %f\n",moldyn->dim.x);
+ printf(" y: %f\n",moldyn->dim.y);
+ printf(" z: %f\n",moldyn->dim.z);
+ printf(" volume: %f\n",moldyn->volume);
+ printf(" visualize simulation box: %s\n",visualize?"yes":"no");
+ printf(" delta volume (pressure calc): %f\n",moldyn->dv);
return 0;
}
-int moldyn_log_shutdown(t_moldyn *moldyn) {
+int set_nn_dist(t_moldyn *moldyn,double dist) {
- if(moldyn->efd) close(moldyn->efd);
- if(moldyn->mfd) close(moldyn->efd);
- if(moldyn->dfd) close(moldyn->efd);
- if(moldyn->visual) visual_tini(moldyn->visual);
+ moldyn->nnd=dist;
return 0;
}
-int moldyn_init(t_moldyn *moldyn,int argc,char **argv) {
+int set_pbc(t_moldyn *moldyn,u8 x,u8 y,u8 z) {
- int ret;
+ printf("[moldyn] periodic boundary conditions:\n");
- ret=moldyn_parse_argv(moldyn,argc,argv);
- if(ret<0) return ret;
+ if(x)
+ moldyn->status|=MOLDYN_STAT_PBX;
- ret=moldyn_log_init(moldyn);
- if(ret<0) return ret;
+ if(y)
+ moldyn->status|=MOLDYN_STAT_PBY;
- rand_init(&(moldyn->random),NULL,1);
- moldyn->random.status|=RAND_STAT_VERBOSE;
+ if(z)
+ moldyn->status|=MOLDYN_STAT_PBZ;
- moldyn->status=0;
+ printf(" x: %s\n",x?"yes":"no");
+ printf(" y: %s\n",y?"yes":"no");
+ printf(" z: %s\n",z?"yes":"no");
return 0;
}
-int moldyn_shutdown(t_moldyn *moldyn) {
+int set_potential1b(t_moldyn *moldyn,pf_func1b func) {
- moldyn_log_shutdown(moldyn);
- rand_close(&(moldyn->random));
- free(moldyn->atom);
+ moldyn->func1b=func;
return 0;
}
-int create_lattice(unsigned char type,int element,double mass,double lc,
- int a,int b,int c,t_atom **atom) {
+int set_potential2b(t_moldyn *moldyn,pf_func2b func) {
- int count;
+ moldyn->func2b=func;
+
+ return 0;
+}
+
+int set_potential3b_j1(t_moldyn *moldyn,pf_func2b func) {
+
+ moldyn->func3b_j1=func;
+
+ return 0;
+}
+
+int set_potential3b_j2(t_moldyn *moldyn,pf_func2b func) {
+
+ moldyn->func3b_j2=func;
+
+ return 0;
+}
+
+int set_potential3b_j3(t_moldyn *moldyn,pf_func2b func) {
+
+ moldyn->func3b_j3=func;
+
+ return 0;
+}
+
+int set_potential3b_k1(t_moldyn *moldyn,pf_func3b func) {
+
+ moldyn->func3b_k1=func;
+
+ return 0;
+}
+
+int set_potential3b_k2(t_moldyn *moldyn,pf_func3b func) {
+
+ moldyn->func3b_k2=func;
+
+ return 0;
+}
+
+int set_potential_params(t_moldyn *moldyn,void *params) {
+
+ moldyn->pot_params=params;
+
+ return 0;
+}
+
+int moldyn_set_log_dir(t_moldyn *moldyn,char *dir) {
+
+ strncpy(moldyn->vlsdir,dir,127);
+
+ return 0;
+}
+
+int moldyn_set_report(t_moldyn *moldyn,char *author,char *title) {
+
+ strncpy(moldyn->rauthor,author,63);
+ strncpy(moldyn->rtitle,title,63);
+
+ return 0;
+}
+
+int moldyn_set_log(t_moldyn *moldyn,u8 type,int timer) {
+
+ char filename[128];
+ int ret;
+
+ printf("[moldyn] set log: ");
+
+ switch(type) {
+ case LOG_TOTAL_ENERGY:
+ moldyn->ewrite=timer;
+ snprintf(filename,127,"%s/energy",moldyn->vlsdir);
+ moldyn->efd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->efd<0) {
+ perror("[moldyn] energy log fd open");
+ return moldyn->efd;
+ }
+ dprintf(moldyn->efd,"# total energy log file\n");
+ printf("total energy (%d)\n",timer);
+ break;
+ case LOG_TOTAL_MOMENTUM:
+ moldyn->mwrite=timer;
+ snprintf(filename,127,"%s/momentum",moldyn->vlsdir);
+ moldyn->mfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->mfd<0) {
+ perror("[moldyn] momentum log fd open");
+ return moldyn->mfd;
+ }
+ dprintf(moldyn->efd,"# total momentum log file\n");
+ printf("total momentum (%d)\n",timer);
+ break;
+ case LOG_PRESSURE:
+ moldyn->pwrite=timer;
+ snprintf(filename,127,"%s/pressure",moldyn->vlsdir);
+ moldyn->pfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->pfd<0) {
+ perror("[moldyn] pressure log file\n");
+ return moldyn->pfd;
+ }
+ dprintf(moldyn->pfd,"# pressure log file\n");
+ printf("pressure (%d)\n",timer);
+ break;
+ case LOG_TEMPERATURE:
+ moldyn->twrite=timer;
+ snprintf(filename,127,"%s/temperature",moldyn->vlsdir);
+ moldyn->tfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->tfd<0) {
+ perror("[moldyn] temperature log file\n");
+ return moldyn->tfd;
+ }
+ dprintf(moldyn->tfd,"# temperature log file\n");
+ printf("temperature (%d)\n",timer);
+ break;
+ case SAVE_STEP:
+ moldyn->swrite=timer;
+ printf("save file (%d)\n",timer);
+ break;
+ case VISUAL_STEP:
+ moldyn->vwrite=timer;
+ ret=visual_init(&(moldyn->vis),moldyn->vlsdir);
+ if(ret<0) {
+ printf("[moldyn] visual init failure\n");
+ return ret;
+ }
+ printf("visual file (%d)\n",timer);
+ break;
+ case CREATE_REPORT:
+ snprintf(filename,127,"%s/report.tex",moldyn->vlsdir);
+ moldyn->rfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->rfd<0) {
+ perror("[moldyn] report fd open");
+ return moldyn->rfd;
+ }
+ printf("report -> ");
+ if(moldyn->efd) {
+ snprintf(filename,127,"%s/e_plot.scr",
+ moldyn->vlsdir);
+ moldyn->epfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->epfd<0) {
+ perror("[moldyn] energy plot fd open");
+ return moldyn->epfd;
+ }
+ dprintf(moldyn->epfd,e_plot_script);
+ close(moldyn->epfd);
+ printf("energy ");
+ }
+ if(moldyn->pfd) {
+ snprintf(filename,127,"%s/pressure_plot.scr",
+ moldyn->vlsdir);
+ moldyn->ppfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->ppfd<0) {
+ perror("[moldyn] p plot fd open");
+ return moldyn->ppfd;
+ }
+ dprintf(moldyn->ppfd,pressure_plot_script);
+ close(moldyn->ppfd);
+ printf("pressure ");
+ }
+ if(moldyn->tfd) {
+ snprintf(filename,127,"%s/temperature_plot.scr",
+ moldyn->vlsdir);
+ moldyn->tpfd=open(filename,
+ O_WRONLY|O_CREAT|O_EXCL,
+ S_IRUSR|S_IWUSR);
+ if(moldyn->tpfd<0) {
+ perror("[moldyn] t plot fd open");
+ return moldyn->tpfd;
+ }
+ dprintf(moldyn->tpfd,temperature_plot_script);
+ close(moldyn->tpfd);
+ printf("temperature ");
+ }
+ dprintf(moldyn->rfd,report_start,
+ moldyn->rauthor,moldyn->rtitle);
+ printf("\n");
+ break;
+ default:
+ printf("unknown log type: %02x\n",type);
+ return -1;
+ }
+
+ return 0;
+}
+
+int moldyn_log_shutdown(t_moldyn *moldyn) {
+
+ char sc[256];
+
+ printf("[moldyn] log shutdown\n");
+ if(moldyn->efd) {
+ close(moldyn->efd);
+ if(moldyn->rfd) {
+ dprintf(moldyn->rfd,report_energy);
+ snprintf(sc,255,"cd %s && gnuplot e_plot.scr",
+ moldyn->vlsdir);
+ system(sc);
+ }
+ }
+ if(moldyn->mfd) close(moldyn->mfd);
+ if(moldyn->pfd) {
+ close(moldyn->pfd);
+ if(moldyn->rfd)
+ dprintf(moldyn->rfd,report_pressure);
+ snprintf(sc,255,"cd %s && gnuplot pressure_plot.scr",
+ moldyn->vlsdir);
+ system(sc);
+ }
+ if(moldyn->tfd) {
+ close(moldyn->tfd);
+ if(moldyn->rfd)
+ dprintf(moldyn->rfd,report_temperature);
+ snprintf(sc,255,"cd %s && gnuplot temperature_plot.scr",
+ moldyn->vlsdir);
+ system(sc);
+ }
+ if(moldyn->rfd) {
+ dprintf(moldyn->rfd,report_end);
+ close(moldyn->rfd);
+ snprintf(sc,255,"cd %s && pdflatex report",moldyn->vlsdir);
+ system(sc);
+ snprintf(sc,255,"cd %s && pdflatex report",moldyn->vlsdir);
+ system(sc);
+ snprintf(sc,255,"cd %s && dvipdf report",moldyn->vlsdir);
+ system(sc);
+ }
+ if(&(moldyn->vis)) visual_tini(&(moldyn->vis));
+
+ return 0;
+}
+
+/*
+ * creating lattice functions
+ */
+
+int create_lattice(t_moldyn *moldyn,u8 type,double lc,int element,double mass,
+ u8 attr,u8 brand,int a,int b,int c) {
+
+ int new,count;
int ret;
t_3dvec origin;
+ void *ptr;
+ t_atom *atom;
- count=a*b*c;
+ new=a*b*c;
+ count=moldyn->count;
- if(type==FCC) count*=4;
- if(type==DIAMOND) count*=8;
+ /* how many atoms do we expect */
+ if(type==CUBIC) new*=1;
+ if(type==FCC) new*=4;
+ if(type==DIAMOND) new*=8;
- *atom=malloc(count*sizeof(t_atom));
- if(*atom==NULL) {
- perror("malloc (atoms)");
+ /* allocate space for atoms */
+ ptr=realloc(moldyn->atom,(count+new)*sizeof(t_atom));
+ if(!ptr) {
+ perror("[moldyn] realloc (create lattice)");
return -1;
}
+ moldyn->atom=ptr;
+ atom=&(moldyn->atom[count]);
- v3_zero(&origin);
+ /* no atoms on the boundaries (only reason: it looks better!) */
+ origin.x=0.5*lc;
+ origin.y=0.5*lc;
+ origin.z=0.5*lc;
switch(type) {
+ case CUBIC:
+ set_nn_dist(moldyn,lc);
+ ret=cubic_init(a,b,c,lc,atom,&origin);
+ break;
case FCC:
- ret=fcc_init(a,b,c,lc,*atom,&origin);
+ v3_scale(&origin,&origin,0.5);
+ set_nn_dist(moldyn,0.5*sqrt(2.0)*lc);
+ ret=fcc_init(a,b,c,lc,atom,&origin);
break;
case DIAMOND:
- ret=diamond_init(a,b,c,lc,*atom,&origin);
+ v3_scale(&origin,&origin,0.25);
+ set_nn_dist(moldyn,0.25*sqrt(3.0)*lc);
+ ret=diamond_init(a,b,c,lc,atom,&origin);
break;
default:
printf("unknown lattice type (%02x)\n",type);
}
/* debug */
- if(ret!=count) {
- printf("ok, there is something wrong ...\n");
- printf("calculated -> %d atoms\n",count);
- printf("created -> %d atoms\n",ret);
+ if(ret!=new) {
+ printf("[moldyn] creating lattice failed\n");
+ printf(" amount of atoms\n");
+ printf(" - expected: %d\n",new);
+ printf(" - created: %d\n",ret);
return -1;
}
- while(count) {
- (*atom)[count-1].element=element;
- (*atom)[count-1].mass=mass;
- count-=1;
+ moldyn->count+=new;
+ printf("[moldyn] created lattice with %d atoms\n",new);
+
+ for(ret=0;ret<new;ret++) {
+ atom[ret].element=element;
+ atom[ret].mass=mass;
+ atom[ret].attr=attr;
+ atom[ret].brand=brand;
+ atom[ret].tag=count+ret;
+ check_per_bound(moldyn,&(atom[ret].r));
}
return ret;
}
-int destroy_lattice(t_atom *atom) {
+/* cubic init */
+int cubic_init(int a,int b,int c,double lc,t_atom *atom,t_3dvec *origin) {
+
+ int count;
+ t_3dvec r;
+ int i,j,k;
+ t_3dvec o;
+
+ count=0;
+ if(origin)
+ v3_copy(&o,origin);
+ else
+ v3_zero(&o);
+
+ r.x=o.x;
+ for(i=0;i<a;i++) {
+ r.y=o.y;
+ for(j=0;j<b;j++) {
+ r.z=o.z;
+ for(k=0;k<c;k++) {
+ v3_copy(&(atom[count].r),&r);
+ count+=1;
+ r.z+=lc;
+ }
+ r.y+=lc;
+ }
+ r.x+=lc;
+ }
+
+ for(i=0;i<count;i++) {
+ atom[i].r.x-=(a*lc)/2.0;
+ atom[i].r.y-=(b*lc)/2.0;
+ atom[i].r.z-=(c*lc)/2.0;
+ }
- if(atom) free(atom);
+ return count;
+}
+
+/* fcc lattice init */
+int fcc_init(int a,int b,int c,double lc,t_atom *atom,t_3dvec *origin) {
+
+ int count;
+ int i,j,k,l;
+ t_3dvec o,r,n;
+ t_3dvec basis[3];
+
+ count=0;
+ if(origin)
+ v3_copy(&o,origin);
+ else
+ v3_zero(&o);
+
+ /* construct the basis */
+ memset(basis,0,3*sizeof(t_3dvec));
+ basis[0].x=0.5*lc;
+ basis[0].y=0.5*lc;
+ basis[1].x=0.5*lc;
+ basis[1].z=0.5*lc;
+ basis[2].y=0.5*lc;
+ basis[2].z=0.5*lc;
+
+ /* fill up the room */
+ r.x=o.x;
+ for(i=0;i<a;i++) {
+ r.y=o.y;
+ for(j=0;j<b;j++) {
+ r.z=o.z;
+ for(k=0;k<c;k++) {
+ /* first atom */
+ v3_copy(&(atom[count].r),&r);
+ count+=1;
+ r.z+=lc;
+ /* the three face centered atoms */
+ for(l=0;l<3;l++) {
+ v3_add(&n,&r,&basis[l]);
+ v3_copy(&(atom[count].r),&n);
+ count+=1;
+ }
+ }
+ r.y+=lc;
+ }
+ r.x+=lc;
+ }
+
+ /* coordinate transformation */
+ for(i=0;i<count;i++) {
+ atom[i].r.x-=(a*lc)/2.0;
+ atom[i].r.y-=(b*lc)/2.0;
+ atom[i].r.z-=(c*lc)/2.0;
+ }
+
+ return count;
+}
+
+int diamond_init(int a,int b,int c,double lc,t_atom *atom,t_3dvec *origin) {
+
+ int count;
+ t_3dvec o;
+
+ count=fcc_init(a,b,c,lc,atom,origin);
+
+ o.x=0.25*lc;
+ o.y=0.25*lc;
+ o.z=0.25*lc;
+
+ if(origin) v3_add(&o,&o,origin);
+
+ count+=fcc_init(a,b,c,lc,&atom[count],&o);
+
+ return count;
+}
+
+int add_atom(t_moldyn *moldyn,int element,double mass,u8 brand,u8 attr,
+ t_3dvec *r,t_3dvec *v) {
+
+ t_atom *atom;
+ void *ptr;
+ int count;
+
+ atom=moldyn->atom;
+ count=(moldyn->count)++;
+
+ ptr=realloc(atom,(count+1)*sizeof(t_atom));
+ if(!ptr) {
+ perror("[moldyn] realloc (add atom)");
+ return -1;
+ }
+ moldyn->atom=ptr;
+
+ atom=moldyn->atom;
+ atom[count].r=*r;
+ atom[count].v=*v;
+ atom[count].element=element;
+ atom[count].mass=mass;
+ atom[count].brand=brand;
+ atom[count].tag=count;
+ atom[count].attr=attr;
return 0;
}
-int thermal_init(t_moldyn *moldyn) {
+int destroy_atoms(t_moldyn *moldyn) {
+
+ if(moldyn->atom) free(moldyn->atom);
+
+ return 0;
+}
+
+int thermal_init(t_moldyn *moldyn,u8 equi_init) {
/*
* - gaussian distribution of velocities
atom=moldyn->atom;
random=&(moldyn->random);
+ printf("[moldyn] thermal init (equi init: %s)\n",equi_init?"yes":"no");
+
/* gaussian distribution of velocities */
v3_zero(&p_total);
for(i=0;i<moldyn->count;i++) {
- sigma=sqrt(2.0*K_BOLTZMANN*moldyn->t/atom[i].mass);
+ sigma=sqrt(2.0*K_BOLTZMANN*moldyn->t_ref/atom[i].mass);
/* x direction */
v=sigma*rand_get_gauss(random);
atom[i].v.x=v;
v3_sub(&(atom[i].v),&(atom[i].v),&delta);
}
- /* velocity scaling */
- scale_velocity(moldyn);
+ /* velocity scaling */
+ scale_velocity(moldyn,equi_init);
+
+ return 0;
+}
+
+double temperature_calc(t_moldyn *moldyn) {
+
+ /* assume up to date kinetic energy, which is 3/2 N k_B T */
+
+ moldyn->t=(2.0*moldyn->ekin)/(3.0*K_BOLTZMANN*moldyn->count);
+ moldyn->t_sum+=moldyn->t;
+ moldyn->mean_t=moldyn->t_sum/moldyn->total_steps;
+
+ return moldyn->t;
+}
+
+double get_temperature(t_moldyn *moldyn) {
+
+ return moldyn->t;
+}
+
+int scale_velocity(t_moldyn *moldyn,u8 equi_init) {
+
+ int i;
+ double e,scale;
+ t_atom *atom;
+ int count;
+
+ atom=moldyn->atom;
+
+ /*
+ * - velocity scaling (E = 3/2 N k T), E: kinetic energy
+ */
+
+ /* get kinetic energy / temperature & count involved atoms */
+ e=0.0;
+ count=0;
+ for(i=0;i<moldyn->count;i++) {
+ if((equi_init&TRUE)||(atom[i].attr&ATOM_ATTR_HB)) {
+ e+=atom[i].mass*v3_absolute_square(&(atom[i].v));
+ count+=1;
+ }
+ }
+ e*=0.5;
+ if(count!=0) moldyn->t=e/(1.5*count*K_BOLTZMANN);
+ else return 0; /* no atoms involved in scaling! */
+
+ /* (temporary) hack for e,t = 0 */
+ if(e==0.0) {
+ moldyn->t=0.0;
+ if(moldyn->t_ref!=0.0) {
+ thermal_init(moldyn,equi_init);
+ return 0;
+ }
+ else
+ return 0; /* no scaling needed */
+ }
+
+
+ /* get scaling factor */
+ scale=moldyn->t_ref/moldyn->t;
+ if(equi_init&TRUE)
+ scale*=2.0;
+ else
+ if(moldyn->pt_scale&T_SCALE_BERENDSEN)
+ scale=1.0+(scale-1.0)/moldyn->t_tc;
+ scale=sqrt(scale);
+
+ /* velocity scaling */
+ for(i=0;i<moldyn->count;i++) {
+ if((equi_init&TRUE)||(atom[i].attr&ATOM_ATTR_HB))
+ v3_scale(&(atom[i].v),&(atom[i].v),scale);
+ }
+
+ return 0;
+}
+
+double ideal_gas_law_pressure(t_moldyn *moldyn) {
+
+ double p;
+
+ p=moldyn->count*moldyn->t*K_BOLTZMANN/moldyn->volume;
+
+ return p;
+}
+
+double pressure_calc(t_moldyn *moldyn) {
+
+ int i;
+ double v;
+ t_virial *virial;
+
+ /*
+ * PV = NkT + <W>
+ * W = 1/3 sum_i f_i r_i
+ * virial = sum_i f_i r_i
+ *
+ * => P = (2 Ekin + virial) / (3V)
+ */
+
+ v=0.0;
+ for(i=0;i<moldyn->count;i++) {
+ virial=&(moldyn->atom[i].virial);
+ v+=(virial->xx+virial->yy+virial->zz);
+ }
+
+ /* assume up to date kinetic energy */
+ moldyn->p=2.0*moldyn->ekin+v;
+ moldyn->p/=(3.0*moldyn->volume);
+ moldyn->p_sum+=moldyn->p;
+ moldyn->mean_p=moldyn->p_sum/moldyn->total_steps;
+
+ /* pressure from 'absolute coordinates' virial */
+ virial=&(moldyn->virial);
+ v=virial->xx+virial->yy+virial->zz;
+ moldyn->gp=2.0*moldyn->ekin+v;
+ moldyn->gp/=(3.0*moldyn->volume);
+ moldyn->gp_sum+=moldyn->gp;
+ moldyn->mean_gp=moldyn->gp_sum/moldyn->total_steps;
+
+ return moldyn->p;
+}
+
+double thermodynamic_pressure_calc(t_moldyn *moldyn) {
+
+ t_3dvec dim,*tp;
+ double u,p;
+ double scale,dv;
+ t_atom *store;
+
+ /*
+ * dU = - p dV
+ *
+ * => p = - dU/dV
+ *
+ * dV: dx,y,z = 0.001 x,y,z
+ */
+
+ scale=1.00000000000001;
+printf("\n\nP-DEBUG:\n");
+
+ tp=&(moldyn->tp);
+ store=malloc(moldyn->count*sizeof(t_atom));
+ if(store==NULL) {
+ printf("[moldyn] allocating store mem failed\n");
+ return -1;
+ }
+
+ /* save unscaled potential energy + atom/dim configuration */
+ u=moldyn->energy;
+ memcpy(store,moldyn->atom,moldyn->count*sizeof(t_atom));
+ dim=moldyn->dim;
+
+ /* derivative with respect to x direction */
+ scale_dim(moldyn,scale,TRUE,0,0);
+ scale_atoms(moldyn,scale,TRUE,0,0);
+ dv=0.00000000000001*moldyn->dim.x*moldyn->dim.y*moldyn->dim.z;
+ link_cell_shutdown(moldyn);
+ link_cell_init(moldyn,QUIET);
+ potential_force_calc(moldyn);
+ tp->x=(moldyn->energy-u)/dv;
+ p=tp->x*tp->x;
+
+ /* restore atomic configuration + dim */
+ memcpy(moldyn->atom,store,moldyn->count*sizeof(t_atom));
+ moldyn->dim=dim;
+
+ /* derivative with respect to y direction */
+ scale_dim(moldyn,scale,0,TRUE,0);
+ scale_atoms(moldyn,scale,0,TRUE,0);
+ dv=0.00000000000001*moldyn->dim.y*moldyn->dim.x*moldyn->dim.z;
+ link_cell_shutdown(moldyn);
+ link_cell_init(moldyn,QUIET);
+ potential_force_calc(moldyn);
+ tp->y=(moldyn->energy-u)/dv;
+ p+=tp->y*tp->y;
+
+ /* restore atomic configuration + dim */
+ memcpy(moldyn->atom,store,moldyn->count*sizeof(t_atom));
+ moldyn->dim=dim;
+
+ /* derivative with respect to z direction */
+ scale_dim(moldyn,scale,0,0,TRUE);
+ scale_atoms(moldyn,scale,0,0,TRUE);
+ dv=0.00000000000001*moldyn->dim.z*moldyn->dim.x*moldyn->dim.y;
+ link_cell_shutdown(moldyn);
+ link_cell_init(moldyn,QUIET);
+ potential_force_calc(moldyn);
+ tp->z=(moldyn->energy-u)/dv;
+ p+=tp->z*tp->z;
+
+ /* restore atomic configuration + dim */
+ memcpy(moldyn->atom,store,moldyn->count*sizeof(t_atom));
+ moldyn->dim=dim;
+
+ /* restore energy */
+ moldyn->energy=u;
+
+ link_cell_shutdown(moldyn);
+ link_cell_init(moldyn,QUIET);
+
+ return sqrt(p);
+}
+
+double get_pressure(t_moldyn *moldyn) {
+
+ return moldyn->p;
+
+}
+
+int scale_dim(t_moldyn *moldyn,double scale,u8 x,u8 y,u8 z) {
+
+ t_3dvec *dim;
+
+ dim=&(moldyn->dim);
+
+ if(x) dim->x*=scale;
+ if(y) dim->y*=scale;
+ if(z) dim->z*=scale;
return 0;
}
-int scale_velocity(t_moldyn *moldyn) {
+int scale_atoms(t_moldyn *moldyn,double scale,u8 x,u8 y,u8 z) {
int i;
- double e,c;
- t_atom *atom;
-
- atom=moldyn->atom;
+ t_3dvec *r;
- /*
- * - velocity scaling (E = 3/2 N k T), E: kinetic energy
- */
- e=0.0;
- for(i=0;i<moldyn->count;i++)
- e+=0.5*atom[i].mass*v3_absolute_square(&(atom[i].v));
- c=sqrt((2.0*e)/(3.0*moldyn->count*K_BOLTZMANN*moldyn->t));
- for(i=0;i<moldyn->count;i++)
- v3_scale(&(atom[i].v),&(atom[i].v),(1.0/c));
+ for(i=0;i<moldyn->count;i++) {
+ r=&(moldyn->atom[i].r);
+ if(x) r->x*=scale;
+ if(y) r->y*=scale;
+ if(z) r->z*=scale;
+ }
return 0;
}
-double get_e_kin(t_atom *atom,int count) {
+int scale_volume(t_moldyn *moldyn) {
- int i;
- double e;
+ t_3dvec *dim,*vdim;
+ double scale;
+ t_linkcell *lc;
- e=0.0;
+ vdim=&(moldyn->vis.dim);
+ dim=&(moldyn->dim);
+ lc=&(moldyn->lc);
- for(i=0;i<count;i++) {
- e+=0.5*atom[i].mass*v3_absolute_square(&(atom[i].v));
+ /* scaling factor */
+ if(moldyn->pt_scale&P_SCALE_BERENDSEN) {
+ scale=1.0-(moldyn->p_ref-moldyn->p)/moldyn->p_tc;
+ scale=pow(scale,ONE_THIRD);
}
+ else {
+ scale=pow(moldyn->p/moldyn->p_ref,ONE_THIRD);
+ }
+moldyn->debug=scale;
- return e;
-}
+ /* scale the atoms and dimensions */
+ scale_atoms(moldyn,scale,TRUE,TRUE,TRUE);
+ scale_dim(moldyn,scale,TRUE,TRUE,TRUE);
+
+ /* visualize dimensions */
+ if(vdim->x!=0) {
+ vdim->x=dim->x;
+ vdim->y=dim->y;
+ vdim->z=dim->z;
+ }
-double get_e_pot(t_moldyn *moldyn) {
+ /* recalculate scaled volume */
+ moldyn->volume=dim->x*dim->y*dim->z;
+
+ /* adjust/reinit linkcell */
+ if(((int)(dim->x/moldyn->cutoff)!=lc->nx)||
+ ((int)(dim->y/moldyn->cutoff)!=lc->ny)||
+ ((int)(dim->z/moldyn->cutoff)!=lc->nx)) {
+ link_cell_shutdown(moldyn);
+ link_cell_init(moldyn,QUIET);
+ } else {
+ lc->x*=scale;
+ lc->y*=scale;
+ lc->z*=scale;
+ }
+
+ return 0;
- return moldyn->energy;
}
-double get_total_energy(t_moldyn *moldyn) {
+double e_kin_calc(t_moldyn *moldyn) {
+
+ int i;
+ t_atom *atom;
+
+ atom=moldyn->atom;
+ moldyn->ekin=0.0;
+
+ for(i=0;i<moldyn->count;i++)
+ moldyn->ekin+=0.5*atom[i].mass*v3_absolute_square(&(atom[i].v));
- double e;
+ return moldyn->ekin;
+}
- e=get_e_kin(moldyn->atom,moldyn->count);
- e+=get_e_pot(moldyn);
+double get_total_energy(t_moldyn *moldyn) {
- return e;
+ return(moldyn->ekin+moldyn->energy);
}
-t_3dvec get_total_p(t_atom *atom, int count) {
+t_3dvec get_total_p(t_moldyn *moldyn) {
t_3dvec p,p_total;
int i;
+ t_atom *atom;
+
+ atom=moldyn->atom;
v3_zero(&p_total);
- for(i=0;i<count;i++) {
+ for(i=0;i<moldyn->count;i++) {
v3_scale(&p,&(atom[i].v),atom[i].mass);
v3_add(&p_total,&p_total,&p);
}
return p_total;
}
-double estimate_time_step(t_moldyn *moldyn,double nn_dist,double t) {
+double estimate_time_step(t_moldyn *moldyn,double nn_dist) {
double tau;
- tau=0.05*nn_dist/(sqrt(3.0*K_BOLTZMANN*t/moldyn->atom[0].mass));
- tau*=1.0E-9;
- if(tau<moldyn->tau)
- printf("[moldyn] warning: time step (%f > %.15f)\n",
- moldyn->tau,tau);
+ /* nn_dist is the nearest neighbour distance */
+
+ tau=(0.05*nn_dist*moldyn->atom[0].mass)/sqrt(3.0*K_BOLTZMANN*moldyn->t);
return tau;
}
/* linked list / cell method */
-int link_cell_init(t_moldyn *moldyn) {
+int link_cell_init(t_moldyn *moldyn,u8 vol) {
t_linkcell *lc;
int i;
lc=&(moldyn->lc);
- /* list log fd */
- lc->listfd=open("/dev/null",O_WRONLY);
-
/* partitioning the md cell */
lc->nx=moldyn->dim.x/moldyn->cutoff;
lc->x=moldyn->dim.x/lc->nx;
lc->cells=lc->nx*lc->ny*lc->nz;
lc->subcell=malloc(lc->cells*sizeof(t_list));
- printf("initializing linked cells (%d)\n",lc->cells);
+ if(lc->cells<27)
+ printf("[moldyn] FATAL: less then 27 subcells!\n");
+
+ if(vol) {
+ printf("[moldyn] initializing linked cells (%d)\n",lc->cells);
+ printf(" x: %d x %f A\n",lc->nx,lc->x);
+ printf(" y: %d x %f A\n",lc->ny,lc->y);
+ printf(" z: %d x %f A\n",lc->nz,lc->z);
+ }
for(i=0;i<lc->cells;i++)
- //list_init(&(lc->subcell[i]),1);
- list_init(&(lc->subcell[i]));
+ list_init_f(&(lc->subcell[i]));
link_cell_update(moldyn);
int link_cell_update(t_moldyn *moldyn) {
int count,i,j,k;
- int nx,ny,nz;
+ int nx,ny;
t_atom *atom;
t_linkcell *lc;
+ double x,y,z;
atom=moldyn->atom;
lc=&(moldyn->lc);
nx=lc->nx;
ny=lc->ny;
- nz=lc->nz;
+
+ x=moldyn->dim.x/2;
+ y=moldyn->dim.y/2;
+ z=moldyn->dim.z/2;
for(i=0;i<lc->cells;i++)
- list_destroy(&(moldyn->lc.subcell[i]));
+ list_destroy_f(&(lc->subcell[i]));
- for(count=0;count<moedyn->count;count++) {
- i=(atom[count].r.x+(moldyn->dim.x/2))/lc->x;
- j=(atom[count].r.y+(moldyn->dim.y/2))/lc->y;
- k=(atom[count].r.z+(moldyn->dim.z/2))/lc->z;
- list_add_immediate_ptr(&(moldyn->lc.subcell[i+j*nx+k*nx*ny]),
- &(atom[count]));
+ for(count=0;count<moldyn->count;count++) {
+ i=((atom[count].r.x+(moldyn->dim.x/2))/lc->x);
+ j=((atom[count].r.y+(moldyn->dim.y/2))/lc->y);
+ k=((atom[count].r.z+(moldyn->dim.z/2))/lc->z);
+ list_add_immediate_f(&(lc->subcell[i+j*nx+k*nx*ny]),
+ &(atom[count]));
}
return 0;
int ci,cj,ck;
int nx,ny,nz;
int x,y,z;
- unsigned char bx,by,bz;
+ u8 bx,by,bz;
lc=&(moldyn->lc);
nx=lc->nx;
count2=27;
a=nx*ny;
-
cell[0]=lc->subcell[i+j*nx+k*a];
for(ci=-1;ci<=1;ci++) {
bx=0;
}
}
- return count2;
+ lc->dnlc=count1;
+
+ return count1;
}
int link_cell_shutdown(t_moldyn *moldyn) {
lc=&(moldyn->lc);
for(i=0;i<lc->nx*lc->ny*lc->nz;i++)
- list_shutdown(&(moldyn->lc.subcell[i]));
+ list_destroy_f(&(moldyn->lc.subcell[i]));
+
+ free(lc->subcell);
+
+ return 0;
+}
+
+int moldyn_add_schedule(t_moldyn *moldyn,int runs,double tau) {
+
+ int count;
+ void *ptr;
+ t_moldyn_schedule *schedule;
+
+ schedule=&(moldyn->schedule);
+ count=++(schedule->total_sched);
+
+ ptr=realloc(schedule->runs,count*sizeof(int));
+ if(!ptr) {
+ perror("[moldyn] realloc (runs)");
+ return -1;
+ }
+ schedule->runs=ptr;
+ schedule->runs[count-1]=runs;
+
+ ptr=realloc(schedule->tau,count*sizeof(double));
+ if(!ptr) {
+ perror("[moldyn] realloc (tau)");
+ return -1;
+ }
+ schedule->tau=ptr;
+ schedule->tau[count-1]=tau;
+
+ printf("[moldyn] schedule added:\n");
+ printf(" number: %d | runs: %d | tau: %f\n",count-1,runs,tau);
+
+
+ return 0;
+}
- if(lc->listfd) close(lc->listfd);
+int moldyn_set_schedule_hook(t_moldyn *moldyn,set_hook hook,void *hook_params) {
+ moldyn->schedule.hook=hook;
+ moldyn->schedule.hook_params=hook_params;
+
return 0;
}
int moldyn_integrate(t_moldyn *moldyn) {
int i;
- unsigned int e,m,s,d,v;
- t_3dvec p;
-
+ unsigned int e,m,s,v,p,t;
+ t_3dvec momentum;
+ t_moldyn_schedule *sched;
+ t_atom *atom;
int fd;
- char fb[128];
+ char dir[128];
+ double ds;
+ double energy_scale;
+ //double tp;
+
+ sched=&(moldyn->schedule);
+ atom=moldyn->atom;
/* initialize linked cell method */
- link_cell_init(moldyn);
+ link_cell_init(moldyn,VERBOSE);
/* logging & visualization */
e=moldyn->ewrite;
m=moldyn->mwrite;
s=moldyn->swrite;
- d=moldyn->dwrite;
v=moldyn->vwrite;
-
- if(!(moldyn->lvstat&MOLDYN_LVSTAT_INITIALIZED)) {
- printf("[moldyn] warning, lv system not initialized\n");
- return -1;
- }
+ p=moldyn->pwrite;
+ t=moldyn->twrite;
/* sqaure of some variables */
moldyn->tau_square=moldyn->tau*moldyn->tau;
moldyn->cutoff_square=moldyn->cutoff*moldyn->cutoff;
+ /* energy scaling factor */
+ energy_scale=moldyn->count*EV;
+
/* calculate initial forces */
- moldyn->potential_force_function(moldyn);
+ potential_force_calc(moldyn);
+
+ /* some stupid checks before we actually start calculating bullshit */
+ if(moldyn->cutoff>0.5*moldyn->dim.x)
+ printf("[moldyn] warning: cutoff > 0.5 x dim.x\n");
+ if(moldyn->cutoff>0.5*moldyn->dim.y)
+ printf("[moldyn] warning: cutoff > 0.5 x dim.y\n");
+ if(moldyn->cutoff>0.5*moldyn->dim.z)
+ printf("[moldyn] warning: cutoff > 0.5 x dim.z\n");
+ ds=0.5*atom[0].f.x*moldyn->tau_square/atom[0].mass;
+ if(ds>0.05*moldyn->nnd)
+ printf("[moldyn] warning: forces too high / tau too small!\n");
+
+ /* zero absolute time */
+ moldyn->time=0.0;
+ moldyn->total_steps=0;
+
+ /* debugging, ignore */
+ moldyn->debug=0;
+
+ /* tell the world */
+ printf("[moldyn] integration start, go get a coffee ...\n");
+
+ /* executing the schedule */
+ for(sched->count=0;sched->count<sched->total_sched;sched->count++) {
+
+ /* setting amount of runs and finite time step size */
+ moldyn->tau=sched->tau[sched->count];
+ moldyn->tau_square=moldyn->tau*moldyn->tau;
+ moldyn->time_steps=sched->runs[sched->count];
+
+ /* integration according to schedule */
for(i=0;i<moldyn->time_steps;i++) {
/* integration step */
moldyn->integrate(moldyn);
+ /* calculate kinetic energy, temperature and pressure */
+ e_kin_calc(moldyn);
+ temperature_calc(moldyn);
+ pressure_calc(moldyn);
+ //tp=thermodynamic_pressure_calc(moldyn);
+//printf("thermodynamic p: %f %f %f - %f\n",moldyn->tp.x/BAR,moldyn->tp.y/BAR,moldyn->tp.z/BAR,tp/BAR);
+
+ /* p/t scaling */
+ if(moldyn->pt_scale&(T_SCALE_BERENDSEN|T_SCALE_DIRECT))
+ scale_velocity(moldyn,FALSE);
+ if(moldyn->pt_scale&(P_SCALE_BERENDSEN|P_SCALE_DIRECT))
+ scale_volume(moldyn);
+
/* check for log & visualization */
if(e) {
if(!(i%e))
dprintf(moldyn->efd,
- "%.15f %.45f\n",i*moldyn->tau,
- get_total_energy(moldyn));
+ "%f %f %f %f\n",
+ moldyn->time,moldyn->ekin/energy_scale,
+ moldyn->energy/energy_scale,
+ get_total_energy(moldyn)/energy_scale);
}
if(m) {
if(!(i%m)) {
- p=get_total_p(moldyn->atom,moldyn->count);
+ momentum=get_total_p(moldyn);
dprintf(moldyn->mfd,
- "%.15f %.45f\n",i*moldyn->tau,
- v3_norm(&p));
+ "%f %f %f %f %f\n",moldyn->time,
+ momentum.x,momentum.y,momentum.z,
+ v3_norm(&momentum));
+ }
+ }
+ if(p) {
+ if(!(i%p)) {
+ dprintf(moldyn->pfd,
+ "%f %f %f %f %f\n",moldyn->time,
+ moldyn->p/BAR,moldyn->mean_p/BAR,
+ moldyn->gp/BAR,moldyn->mean_gp/BAR);
+ }
+ }
+ if(t) {
+ if(!(i%t)) {
+ dprintf(moldyn->tfd,
+ "%f %f %f\n",
+ moldyn->time,moldyn->t,moldyn->mean_t);
}
}
if(s) {
if(!(i%s)) {
- snprintf(fb,128,"%s-%f-%.15f.save",moldyn->sfb,
- moldyn->t,i*moldyn->tau);
- fd=open(fb,O_WRONLY|O_TRUNC|O_CREAT);
+ snprintf(dir,128,"%s/s-%07.f.save",
+ moldyn->vlsdir,moldyn->time);
+ fd=open(dir,O_WRONLY|O_TRUNC|O_CREAT);
if(fd<0) perror("[moldyn] save fd open");
else {
write(fd,moldyn,sizeof(t_moldyn));
write(fd,moldyn->atom,
moldyn->count*sizeof(t_atom));
}
+ close(fd);
}
}
- if(d) {
- if(!(i%d))
- write(moldyn->dfd,moldyn->atom,
- moldyn->count*sizeof(t_atom));
-
- }
if(v) {
if(!(i%v)) {
- visual_atoms(moldyn->visual,i*moldyn->tau,
+ visual_atoms(&(moldyn->vis),moldyn->time,
moldyn->atom,moldyn->count);
- printf("\rsteps: %d",i);
- fflush(stdout);
}
}
+
+ /* display progress */
+ if(!(i%10)) {
+ printf("\rsched: %d, steps: %d, T: %f, P: %f %f V: %f",
+ sched->count,i,
+ moldyn->mean_t,
+ moldyn->mean_p/BAR,
+ moldyn->mean_gp/BAR,
+ moldyn->volume);
+ fflush(stdout);
+ }
+
+ /* increase absolute time */
+ moldyn->time+=moldyn->tau;
+ moldyn->total_steps+=1;
+
+ }
+
+ /* check for hooks */
+ if(sched->hook)
+ sched->hook(moldyn,sched->hook_params);
+
+ /* get a new info line */
+ printf("\n");
+
}
return 0;
int velocity_verlet(t_moldyn *moldyn) {
int i,count;
- double tau,tau_square;
+ double tau,tau_square,h;
t_3dvec delta;
t_atom *atom;
for(i=0;i<count;i++) {
/* new positions */
+ h=0.5/atom[i].mass;
v3_scale(&delta,&(atom[i].v),tau);
v3_add(&(atom[i].r),&(atom[i].r),&delta);
- v3_scale(&delta,&(atom[i].f),0.5*tau_square/atom[i].mass);
+ v3_scale(&delta,&(atom[i].f),h*tau_square);
v3_add(&(atom[i].r),&(atom[i].r),&delta);
- v3_per_bound(&(atom[i].r),&(moldyn->dim));
+ check_per_bound(moldyn,&(atom[i].r));
- /* velocities */
- v3_scale(&delta,&(atom[i].f),0.5*tau/atom[i].mass);
+ /* velocities [actually v(t+tau/2)] */
+ v3_scale(&delta,&(atom[i].f),h*tau);
v3_add(&(atom[i].v),&(atom[i].v),&delta);
}
/* neighbour list update */
-printf("list update ...\n");
link_cell_update(moldyn);
-printf("done\n");
/* forces depending on chosen potential */
-printf("calc potential/force ...\n");
- moldyn->potential_force_function(moldyn);
-printf("done\n");
+ potential_force_calc(moldyn);
for(i=0;i<count;i++) {
- /* again velocities */
+ /* again velocities [actually v(t+tau)] */
v3_scale(&delta,&(atom[i].f),0.5*tau/atom[i].mass);
v3_add(&(atom[i].v),&(atom[i].v),&delta);
}
/*
*
- * potentials & corresponding forces
+ * potentials & corresponding forces & virial routine
*
*/
-/* harmonic oscillator potential and force */
+/* generic potential and force calculation */
-int harmonic_oscillator(t_moldyn *moldyn) {
+int potential_force_calc(t_moldyn *moldyn) {
- t_ho_params *params;
- t_atom *atom,*btom;
+ int i,j,k,count;
+ t_atom *itom,*jtom,*ktom;
+ t_virial *virial;
t_linkcell *lc;
- t_list *this,neighbour[27];
- int i,j,c;
- int count;
- t_3dvec force,distance;
- double d,u;
- double sc,equi_dist;
- int ni,nj,nk;
+ t_list neighbour_i[27];
+ t_list neighbour_i2[27];
+ t_list *this,*that;
+ u8 bc_ij,bc_ik;
+ int dnlc;
- params=moldyn->pot_params;
- atom=moldyn->atom;
- lc=&(moldyn->lc);
- sc=params->spring_constant;
- equi_dist=params->equilibrium_distance;
count=moldyn->count;
+ itom=moldyn->atom;
+ lc=&(moldyn->lc);
- /* reset energy counter */
- u=0.0;
-
- for(i=0;i<count;i++) {
- /* reset force */
- v3_zero(&(atom[i].f));
-
- /* determine cell + neighbours */
- ni=(atom[i].r.x+(moldyn->dim.x/2))/lc->x;
- nj=(atom[i].r.y+(moldyn->dim.y/2))/lc->y;
- nk=(atom[i].r.z+(moldyn->dim.z/2))/lc->z;
- c=link_cell_neighbour_index(moldyn,ni,nj,nk,neighbour);
-
- /*
- * processing cell of atom i
- * => no need to check for empty list (1 element at minimum)
- */
- this=&(neighbour[0]);
- list_reset(this);
- do {
- btom=this->current->data;
- if(btom==&(atom[i]))
- continue;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- d=v3_norm(&distance);
- if(d<=moldyn->cutoff) {
- u+=(0.5*sc*(d-equi_dist)*(d-equi_dist));
- v3_scale(&force,&distance,
- -sc*(1.0-(equi_dist/d)));
- v3_add(&(atom[i].f),&(atom[i].f),&force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ /* reset energy */
+ moldyn->energy=0.0;
- /*
- * direct neighbour cells
- * => no boundary condition check necessary
- */
- for(j=1;j<c;j++) {
- this=&(neighbour[j]);
- list_reset(this); /* there might not be a single atom */
- if(this->start!=NULL) {
+ /* reset global virial */
+ memset(&(moldyn->virial),0,sizeof(t_virial));
- do {
- btom=this->current->data;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- d=v3_norm(&distance);
- if(d<=moldyn->cutoff) {
- u+=(0.5*sc*(d-equi_dist)*(d-equi_dist));
- v3_scale(&force,&distance,
- -sc*(1.0-(equi_dist/d)));
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ /* reset force, site energy and virial of every atom */
+ for(i=0;i<count;i++) {
- }
- }
+ /* reset force */
+ v3_zero(&(itom[i].f));
+
+ /* reset virial */
+ virial=(&(itom[i].virial));
+ virial->xx=0.0;
+ virial->yy=0.0;
+ virial->zz=0.0;
+ virial->xy=0.0;
+ virial->xz=0.0;
+ virial->yz=0.0;
+
+ /* reset site energy */
+ itom[i].e=0.0;
- /*
- * indirect neighbour cells
- * => check boundary conditions
- */
- for(j=c;j<27;j++) {
- this=&(neighbour[j]);
- list_reset(this); /* check boundary conditions */
- if(this->start!=NULL) {
+ }
- do {
- btom=this->current->data;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- v3_per_bound(&distance,&(moldyn->dim));
- d=v3_norm(&distance);
- if(d<=moldyn->cutoff) {
- u+=(0.5*sc*(d-equi_dist)*(d-equi_dist));
- v3_scale(&force,&distance,
- -sc*(1.0-(equi_dist/d)));
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ /* get energy, force and virial of every atom */
- }
- }
- }
+ /* first (and only) loop over atoms i */
+ for(i=0;i<count;i++) {
- moldyn->energy=0.5*u;
+ /* single particle potential/force */
+ if(itom[i].attr&ATOM_ATTR_1BP)
+ moldyn->func1b(moldyn,&(itom[i]));
- return 0;
-}
+ if(!(itom[i].attr&(ATOM_ATTR_2BP|ATOM_ATTR_3BP)))
+ continue;
-/* lennard jones potential & force for one sort of atoms */
-
-int lennard_jones(t_moldyn *moldyn) {
+ /* 2 body pair potential/force */
+
+ link_cell_neighbour_index(moldyn,
+ (itom[i].r.x+moldyn->dim.x/2)/lc->x,
+ (itom[i].r.y+moldyn->dim.y/2)/lc->y,
+ (itom[i].r.z+moldyn->dim.z/2)/lc->z,
+ neighbour_i);
- t_lj_params *params;
- t_atom *atom,*btom;
- t_linkcell *lc;
- t_list *this,neighbour[27];
- int i,j,c;
- int count;
- t_3dvec force,distance;
- double d,h1,h2,u;
- double eps,sig6,sig12;
- int ni,nj,nk;
+ dnlc=lc->dnlc;
- params=moldyn->pot_params;
- atom=moldyn->atom;
- lc=&(moldyn->lc);
- count=moldyn->count;
- eps=params->epsilon4;
- sig6=params->sigma6;
- sig12=params->sigma12;
+ /* first loop over atoms j */
+ if(moldyn->func2b) {
+ for(j=0;j<27;j++) {
- /* reset energy counter */
- u=0.0;
+ this=&(neighbour_i[j]);
+ list_reset_f(this);
- for(i=0;i<count;i++) {
- /* reset force */
- v3_zero(&(atom[i].f));
-
- /* determine cell + neighbours */
- ni=(atom[i].r.x+(moldyn->dim.x/2))/lc->x;
- nj=(atom[i].r.y+(moldyn->dim.y/2))/lc->y;
- nk=(atom[i].r.z+(moldyn->dim.z/2))/lc->z;
- c=link_cell_neighbour_index(moldyn,ni,nj,nk,neighbour);
-
- /* processing cell of atom i */
- this=&(neighbour[0]);
- list_reset(this); /* list has 1 element at minimum */
- do {
- btom=this->current->data;
- if(btom==&(atom[i]))
- continue;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- d=v3_absolute_square(&distance); /* 1/r^2 */
- if(d<=moldyn->cutoff_square) {
- d=1.0/d; /* 1/r^2 */
- h2=d*d; /* 1/r^4 */
- h2*=d; /* 1/r^6 */
- h1=h2*h2; /* 1/r^12 */
- u+=eps*(sig12*h1-sig6*h2);
- h2*=d; /* 1/r^8 */
- h1*=d; /* 1/r^14 */
- h2*=6*sig6;
- h1*=12*sig12;
- d=+h1-h2;
- d*=eps;
- v3_scale(&force,&distance,d);
- v3_add(&(atom[i].f),&(atom[i].f),&force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ if(this->start==NULL)
+ continue;
- /* neighbours not doing boundary condition overflow */
- for(j=1;j<c;j++) {
- this=&(neighbour[j]);
- list_reset(this); /* there might not be a single atom */
- if(this->start!=NULL) {
+ bc_ij=(j<dnlc)?0:1;
- do {
- btom=this->current->data;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- d=v3_absolute_square(&distance); /* r^2 */
- if(d<=moldyn->cutoff_square) {
- d=1.0/d; /* 1/r^2 */
- h2=d*d; /* 1/r^4 */
- h2*=d; /* 1/r^6 */
- h1=h2*h2; /* 1/r^12 */
- u+=eps*(sig12*h1-sig6*h2);
- h2*=d; /* 1/r^8 */
- h1*=d; /* 1/r^14 */
- h2*=6*sig6;
- h1*=12*sig12;
- d=+h1-h2;
- d*=eps;
- v3_scale(&force,&distance,d);
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
-
- }
- }
+ do {
+ jtom=this->current->data;
- /* neighbours due to boundary conditions */
- for(j=c;j<27;j++) {
- this=&(neighbour[j]);
- list_reset(this); /* check boundary conditions */
- if(this->start!=NULL) {
+ if(jtom==&(itom[i]))
+ continue;
- do {
- btom=this->current->data;
- v3_sub(&distance,&(atom[i].r),&(btom->r));
- v3_per_bound(&distance,&(moldyn->dim));
- d=v3_absolute_square(&distance); /* r^2 */
- if(d<=moldyn->cutoff_square) {
- d=1.0/d; /* 1/r^2 */
- h2=d*d; /* 1/r^4 */
- h2*=d; /* 1/r^6 */
- h1=h2*h2; /* 1/r^12 */
- u+=eps*(sig12*h1-sig6*h2);
- h2*=d; /* 1/r^8 */
- h1*=d; /* 1/r^14 */
- h2*=6*sig6;
- h1*=12*sig12;
- d=+h1-h2;
- d*=eps;
- v3_scale(&force,&distance,d);
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ if((jtom->attr&ATOM_ATTR_2BP)&
+ (itom[i].attr&ATOM_ATTR_2BP)) {
+ moldyn->func2b(moldyn,
+ &(itom[i]),
+ jtom,
+ bc_ij);
+ }
+ } while(list_next_f(this)!=L_NO_NEXT_ELEMENT);
}
}
- }
- moldyn->energy=0.5*u;
-
- return 0;
-}
+ /* 3 body potential/force */
-/* tersoff potential & force for 2 sorts of atoms */
+ if(!(itom[i].attr&ATOM_ATTR_3BP))
+ continue;
-int tersoff(t_moldyn *moldyn) {
+ /* copy the neighbour lists */
+ memcpy(neighbour_i2,neighbour_i,27*sizeof(t_list));
- t_tersoff_params *params;
- t_atom *atom,*btom,*ktom;
- t_linkcell *lc;
- t_list *this,*thisk,neighbour[27],neighbourk[27];
- int i,j,k,c,ck;
- int count;
- double u;
- int ni,nj,nk;
- int ki,kj,kk;
-
+ /* second loop over atoms j */
+ for(j=0;j<27;j++) {
- params=moldyn->pot_params;
- atom=moldyn->atom;
- lc=&(moldyn->lc);
- count=moldyn->count;
-
- /* reset energy counter */
- u=0.0;
+ this=&(neighbour_i[j]);
+ list_reset_f(this);
- for(i=0;i<count;i++) {
- /* reset force */
- v3_zero(&(atom[i].f));
-
- /* determin cell neighbours */
- ni=(atom[i].r.x+(moldyn->dim.x/2))/lc->x;
- nj=(atom[i].r.y+(moldyn->dim.y/2))/lc->y;
- nk=(atom[i].r.z+(moldyn->dim.z/2))/lc->z;
- c=link_cell_neighbour_index(moldyn,ni,nj,nk,neighbour);
-
- /*
- * processing cell of atom i
- * => no need to check for empty list (1 element at minimum)
- */
- this=&(neighbour[0]);
- list_reset(this);
- do {
- btom=this->current->data;
- if(btom==&(atom[i]))
+ if(this->start==NULL)
continue;
- /* 2 body stuff */
-
- /* we need: f_c, df_c, f_r, df_r */
-
- v3_sub(&dist_ij,btom,&(atom[i]));
- d_ij=v3_norm(&dist_ij);
- if(d_ij<=S) {
-
- /* determine the tersoff parameters */
- if(atom[i].element!=btom->element) {
- S=sqrt(TERSOFF_S[e1]*TERSOFF_S[e2]);
- R=R_m;
- A=;
- lambda=;
- B=;
- mu=;
- chi=;
- beta=;
- betaN=;
-
- if(d_ij<=R) {
- df_r=-lambda*A*exp(-lambda*d_ij)/d_ij;
- v3_scale(&force,&dist_ij,df_r);
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- else {
- s_r=S-R;
- arg1=PI*(d_ij-R)/s_r;
- f_c=0.5+0.5*cos(arg1);
- df_c=-0.5*sin(arg1)*(PI/(s_r*d_ij));
- f_r=A*exp(-lambda*d_ij);
- df_r=-lambda*f_r/d_ij;
- scale=df_c*f_r+df_r*f_c;
- v3_scale(&force,&dist_ij,scale);
- v3_add(&(atom[i].f),&(atom[i].f),
- &force);
- }
- }
- else
- continue;
+ bc_ij=(j<dnlc)?0:1;
-
- /* end 2 body stuff */
-
- /* determine cell neighbours of btom */
- ki=(btom->r.x+(moldyn->dim.x/2))/lc->x;
- kj=(btom->r.y+(moldyn->dim.y/2))/lc->y;
- kk=(btom->r.z+(moldyn->dim.z/2))/lc->z;
- ck=link_cell_neighbour_index(moldyn,ki,kj,kk,
- neighbourk);
-
- /* go for zeta - 3 body stuff! */
- zeta=0.0;
- d_ij2=d_ij*d_ij;
-
- /* cell of btom */
- thisk=&(neighbourk[0]);
- list_reset(thisk);
do {
- ktom=thisk->current->data;
- if(ktom==btom)
- continue;
- if(ktom==&(atom[i]))
- continue;
-
- /* 3 body stuff (1) */
-
- v3_sub(&dist_ik,ktom,&(atom[i]));
- d_ik=v3_norm(&dist_ik);
- if(d_ik<=Sik) {
-
- Rik=;
- Sik=;
- Aik=;
- lambda_ik=;
- Bik=;
- mu_ik=;
- omega_ik=;
- c_i=;
- d_i=;
- h_i=;
-
+ jtom=this->current->data;
- if(d_ik<=Rik) {
- f_cik=1.0;
- df_cik=0.0;
- }
- else {
- sik_rik=Sik-Rik;
- arg1ik=PI*(d_ik-Rik)/sik_rik;
- f_cik=0.5+0.5*cos(arg1ik);
- df_cik=-0.5*sin(arg1ik)* \
- (PI/(sik_rik*d_ik));
- f_rik=Aik*exp(-lambda_ik*d_ik);
- f_aik=-Bik*exp(-mu_ik*d_ik);
- }
-
- v3_sub(&distance_jk,ktom,btom);
- cos_theta=(d_ij2+d_ik*d_ik-d_jk*d_jk)/\
- (2*d_ij*d_ik);
- sin_theta=sqrt(1.0/\
- (cos_theta*cos_theta));
- theta=arccos(cos_theta);
+ if(jtom==&(itom[i]))
+ continue;
-
- }
- else
+ if(!(jtom->attr&ATOM_ATTR_3BP))
continue;
- /* end 3 body stuff (1) */
+ /* reset 3bp run */
+ moldyn->run3bp=1;
+ if(moldyn->func3b_j1)
+ moldyn->func3b_j1(moldyn,
+ &(itom[i]),
+ jtom,
+ bc_ij);
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ /* in first j loop, 3bp run can be skipped */
+ if(!(moldyn->run3bp))
+ continue;
+
+ /* first loop over atoms k */
+ if(moldyn->func3b_k1) {
- /* direct neighbours of btom cell */
- for(k=1;k<ck;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
+ for(k=0;k<27;k++) {
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
+ that=&(neighbour_i2[k]);
+ list_reset_f(that);
+
+ if(that->start==NULL)
continue;
- /* 3 body stuff (2) */
+ bc_ik=(k<dnlc)?0:1;
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ do {
- }
- }
+ ktom=that->current->data;
- /* indirect neighbours of btom cell */
- for(k=ck;k<27;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
+ if(!(ktom->attr&ATOM_ATTR_3BP))
+ continue;
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
- continue;
+ if(ktom==jtom)
+ continue;
+
+ if(ktom==&(itom[i]))
+ continue;
- /* 3 body stuff */
+ moldyn->func3b_k1(moldyn,
+ &(itom[i]),
+ jtom,
+ ktom,
+ bc_ik|bc_ij);
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ } while(list_next_f(that)!=\
+ L_NO_NEXT_ELEMENT);
}
- }
+ }
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ if(moldyn->func3b_j2)
+ moldyn->func3b_j2(moldyn,
+ &(itom[i]),
+ jtom,
+ bc_ij);
- /*
- * direct neighbour cells of atom i
- */
- for(j=1;j<c;j++) {
- this=&(neighbour[j]);
- list_reset(this);
- if(this->start!=NULL) {
+ /* second loop over atoms k */
+ if(moldyn->func3b_k2) {
- do {
- btom=this->current->data;
+ for(k=0;k<27;k++) {
- /* 2 body stuff */
+ that=&(neighbour_i2[k]);
+ list_reset_f(that);
+
+ if(that->start==NULL)
+ continue;
+ bc_ik=(k<dnlc)?0:1;
- /* determine cell neighbours of btom */
- ki=(btom->r.x+(moldyn->dim.x/2))/lc->x;
- kj=(btom->r.y+(moldyn->dim.y/2))/lc->y;
- kk=(btom->r.z+(moldyn->dim.z/2))/lc->z;
- ck=link_cell_neighbour_index(moldyn,ki,kj,kk,
- neighbourk);
+ do {
- /* cell of btom */
- thisk=&(neighbourk[0]);
- list_reset(thisk);
- do {
- ktom=thisk->current->data;
- if(ktom==btom)
- continue;
- if(ktom==&(atom[i]))
- continue;
-
- /* 3 body stuff (1) */
+ ktom=that->current->data;
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ if(!(ktom->attr&ATOM_ATTR_3BP))
+ continue;
- /* direct neighbours of btom cell */
- for(k=1;k<ck;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
+ if(ktom==jtom)
+ continue;
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
- continue;
+ if(ktom==&(itom[i]))
+ continue;
- /* 3 body stuff (2) */
+ moldyn->func3b_k2(moldyn,
+ &(itom[i]),
+ jtom,
+ ktom,
+ bc_ik|bc_ij);
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ } while(list_next_f(that)!=\
+ L_NO_NEXT_ELEMENT);
}
- }
-
- /* indirect neighbours of btom cell */
- for(k=ck;k<27;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
-
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
- continue;
-
- /* 3 body stuff (3) */
-
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
-
+
}
- }
-
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
-
- }
+ /* 2bp post function */
+ if(moldyn->func3b_j3) {
+ moldyn->func3b_j3(moldyn,
+ &(itom[i]),
+ jtom,bc_ij);
+ }
+
+ } while(list_next_f(this)!=L_NO_NEXT_ELEMENT);
+
}
+
+#ifdef DEBUG
+ //printf("\n\n");
+#endif
+#ifdef VDEBUG
+ printf("\n\n");
+#endif
- /*
- * indirect neighbour cells of atom i
- */
- for(j=c;j<27;j++) {
- this=&(neighbour[j]);
- list_reset(this);
- if(this->start!=NULL) {
-
- do {
- btom=this->current->data;
-
- /* 2 body stuff */
+ }
+#ifdef DEBUG
+ printf("\nATOM 0: %f %f %f\n\n",itom->f.x,itom->f.y,itom->f.z);
+#endif
- /* determine cell neighbours of btom */
- ki=(btom->r.x+(moldyn->dim.x/2))/lc->x;
- kj=(btom->r.y+(moldyn->dim.y/2))/lc->y;
- kk=(btom->r.z+(moldyn->dim.z/2))/lc->z;
- ck=link_cell_neighbour_index(moldyn,ki,kj,kk,
- neighbourk);
+ /* calculate global virial */
+ for(i=0;i<count;i++) {
+ moldyn->virial.xx+=moldyn->atom[i].r.x*moldyn->atom[i].f.x;
+ moldyn->virial.yy+=moldyn->atom[i].r.y*moldyn->atom[i].f.y;
+ moldyn->virial.zz+=moldyn->atom[i].r.z*moldyn->atom[i].f.z;
+ moldyn->virial.xy+=moldyn->atom[i].r.y*moldyn->atom[i].f.x;
+ moldyn->virial.xz+=moldyn->atom[i].r.z*moldyn->atom[i].f.x;
+ moldyn->virial.yz+=moldyn->atom[i].r.z*moldyn->atom[i].f.y;
+ }
- /* cell of btom */
- thisk=&(neighbourk[0]);
- list_reset(thisk);
- do {
- ktom=thisk->current->data;
- if(ktom==btom)
- continue;
- if(ktom==&(atom[i]))
- continue;
-
- /* 3 body stuff (1) */
+ return 0;
+}
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+/*
+ * virial calculation
+ */
- /* direct neighbours of btom cell */
- for(k=1;k<ck;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
+//inline int virial_calc(t_atom *a,t_3dvec *f,t_3dvec *d) {
+int virial_calc(t_atom *a,t_3dvec *f,t_3dvec *d) {
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
- continue;
+ a->virial.xx+=f->x*d->x;
+ a->virial.yy+=f->y*d->y;
+ a->virial.zz+=f->z*d->z;
+ a->virial.xy+=f->x*d->y;
+ a->virial.xz+=f->x*d->z;
+ a->virial.yz+=f->y*d->z;
- /* 3 body stuff (2) */
+ return 0;
+}
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+/*
+ * periodic boundayr checking
+ */
- }
- }
+//inline int check_per_bound(t_moldyn *moldyn,t_3dvec *a) {
+int check_per_bound(t_moldyn *moldyn,t_3dvec *a) {
+
+ double x,y,z;
+ t_3dvec *dim;
- /* indirect neighbours of btom cell */
- for(k=ck;k<27;k++) {
- thisk=&(neighbourk[k]);
- list_reset(thisk);
- if(thisk->start!=NULL) {
+ dim=&(moldyn->dim);
- do {
- ktom=thisk->current->data;
- if(ktom==&(atom[i]))
- continue;
+ x=dim->x/2;
+ y=dim->y/2;
+ z=dim->z/2;
- /* 3 body stuff (3) */
+ if(moldyn->status&MOLDYN_STAT_PBX) {
+ if(a->x>=x) a->x-=dim->x;
+ else if(-a->x>x) a->x+=dim->x;
+ }
+ if(moldyn->status&MOLDYN_STAT_PBY) {
+ if(a->y>=y) a->y-=dim->y;
+ else if(-a->y>y) a->y+=dim->y;
+ }
+ if(moldyn->status&MOLDYN_STAT_PBZ) {
+ if(a->z>=z) a->z-=dim->z;
+ else if(-a->z>z) a->z+=dim->z;
+ }
- } while(list_next(thisk)!=L_NO_NEXT_ELEMENT);
+ return 0;
+}
+
+/*
+ * debugging / critical check functions
+ */
- }
- }
+int moldyn_bc_check(t_moldyn *moldyn) {
+ t_atom *atom;
+ t_3dvec *dim;
+ int i;
+ double x;
+ u8 byte;
+ int j,k;
- } while(list_next(this)!=L_NO_NEXT_ELEMENT);
+ atom=moldyn->atom;
+ dim=&(moldyn->dim);
+ x=dim->x/2;
+ for(i=0;i<moldyn->count;i++) {
+ if(atom[i].r.x>=dim->x/2||-atom[i].r.x>dim->x/2) {
+ printf("FATAL: atom %d: x: %.20f (%.20f)\n",
+ i,atom[i].r.x,dim->x/2);
+ printf("diagnostic:\n");
+ printf("-----------\natom.r.x:\n");
+ for(j=0;j<8;j++) {
+ memcpy(&byte,(u8 *)(&(atom[i].r.x))+j,1);
+ for(k=0;k<8;k++)
+ printf("%d%c",
+ ((byte)&(1<<k))?1:0,
+ (k==7)?'\n':'|');
}
+ printf("---------------\nx=dim.x/2:\n");
+ for(j=0;j<8;j++) {
+ memcpy(&byte,(u8 *)(&x)+j,1);
+ for(k=0;k<8;k++)
+ printf("%d%c",
+ ((byte)&(1<<k))?1:0,
+ (k==7)?'\n':'|');
+ }
+ if(atom[i].r.x==x) printf("the same!\n");
+ else printf("different!\n");
}
-
+ if(atom[i].r.y>=dim->y/2||-atom[i].r.y>dim->y/2)
+ printf("FATAL: atom %d: y: %.20f (%.20f)\n",
+ i,atom[i].r.y,dim->y/2);
+ if(atom[i].r.z>=dim->z/2||-atom[i].r.z>dim->z/2)
+ printf("FATAL: atom %d: z: %.20f (%.20f)\n",
+ i,atom[i].r.z,dim->z/2);
}
- moldyn->energy=0.5*u;
-
return 0;
}
-