X-Git-Url: https://hackdaworld.org/gitweb/?a=blobdiff_plain;f=posic.c;h=236e208bcce0bea5516bbe1a70d5efe1decda416;hb=c1a1e7ec0bdad968f7dbf80329740ec8843e3477;hp=4eb2d043e4be7972848ef059b4f69ad39204ce6d;hpb=eceebe3ee412aa8cea3e6a7f0038883707f78460;p=physik%2Fposic.git diff --git a/posic.c b/posic.c index 4eb2d04..236e208 100644 --- a/posic.c +++ b/posic.c @@ -1,9 +1,11 @@ /* * posic.c - precipitation process of silicon carbide in silicon * - * author: Frank Zirkelbach + * author: Frank Zirkelbach * */ + +#include #include "moldyn.h" #include "math/math.h" @@ -14,21 +16,25 @@ int main(int argc,char **argv) { + t_moldyn md; t_atom *si; - t_visual vis; - t_random random; int a,b,c; - double t,e; + double e; + double help; t_3dvec p; - int count; - char fb[32]="saves/fcc_test"; + t_lj_params lj; + t_ho_params ho; - /* init */ + /* parse arguments */ + a=moldyn_parse_argv(&md,argc,argv); + if(a<0) return -1; + /* init */ + moldyn_log_init(&md,&vis); rand_init(&random,NULL,1); random.status|=RAND_STAT_VERBOSE; @@ -37,34 +43,75 @@ int main(int argc,char **argv) { // printf("%f %f\n",rand_get_gauss(&random), // rand_get_gauss(&random)); - visual_init(&vis,fb); - a=LEN_X; b=LEN_Y; c=LEN_Z; - t=TEMPERATURE; + /* set for 'bounding atoms' */ + vis.dim.x=a*LC_SI; + vis.dim.y=b*LC_SI; + vis.dim.z=c*LC_SI; + /* init lattice printf("placing silicon atoms ... "); - count=create_lattice(DIAMOND,Si,M_SI,LC_SI,a,b,c,&si); - printf("(%d) ok!\n",count); + md.count=create_lattice(DIAMOND,SI,M_SI,LC_SI,a,b,c,&si); + printf("(%d) ok!\n",md.count); + testing purpose */ + md.count=2; + si=malloc(2*sizeof(t_atom)); + si[0].r.x=0.13*sqrt(3.0)*LC_SI/2.0; + si[0].r.y=0; + si[0].r.z=0; + si[0].element=SI; + si[0].mass=M_SI; + si[1].r.x=-si[0].r.x; + si[1].r.y=0; + si[1].r.z=0; + si[1].element=SI; + si[1].mass=M_SI; + /* */ + + /* moldyn init (now si is a valid address) */ + md.atom=si; + md.potential_force_function=lennard_jones; + //md.potential_force_function=harmonic_oscillator; + md.cutoff=R_CUTOFF*LC_SI; + md.pot_params=&lj; + //md.pot_params=&ho; + md.status=0; + md.visual=&vis; + /* dimensions of the simulation cell */ + md.dim.x=a*LC_SI; + md.dim.y=b*LC_SI; + md.dim.z=c*LC_SI; + + printf("setting thermal fluctuations (T=%f K)\n",md.t); + // thermal_init(&md,&random); + for(a=0;aLX) si[i].x-=LEN_X; -// else if(si[i].x<-LX) si[i].x+=LEN_X; -// si[i].y+=(tau2*si[i].fy/m2); -// if(si[i].y>LY) si[i].y-=LEN_Y; -// else if(si[i].y<-LY) si[i].y+=LEN_Y; -// si[i].z+=(tau2*si[i].fz/m2); -// if(si[i].z>LZ) si[i].z-=LEN_Z; -// else if(si[i].z<-LZ) si[i].z+=LEN_Z; -// /* calculation of velocities v(t+h/2) */ -// si[i].vx+=(tau*si[i].fx/m2); -// si[i].vy+=(tau*si[i].fy/m2); -// si[i].vz+=(tau*si[i].fz/m2); -// /* reset of forces */ -// si[i].fx=.0; -// si[i].fy=.0; -// si[i].fz=.0; -// } -// for(i=0;iLX) deltax-=LEN_X; -// else if(-deltax>LX) deltax+=LEN_X; -// deltax2=deltax*deltax; -// deltay=si[i].y-si[j].y; -// if(deltay>LY) deltay-=LEN_Y; -// else if(-deltay>LY) deltay+=LEN_Y; -// deltay2=deltay*deltay; -// deltaz=si[i].z-si[j].z; -// if(deltaz>LZ) deltaz-=LEN_Z; -// else if(-deltaz>LZ) deltaz+=LEN_Z; -// deltaz2=deltaz*deltaz; -// distance=deltax2+deltay2+deltaz2; -// if(distance<=R2_CUTOFF) { -// tmp=1.0/distance; // 1/r^2 -// lj1=tmp; // 1/r^2 -// tmp*=tmp; // 1/r^4 -// lj1*=tmp; // 1/r^6 -// tmp*=tmp; // 1/r^8 -// lj2=tmp; // 1/r^8 -// lj1*=tmp; // 1/r^14 -// lj1*=LJ_SIGMA_12; -// lj2*=LJ_SIGMA_06; -// lj=-2*lj1+lj2; -// si[i].fx-=lj*deltax; -// si[i].fy-=lj*deltay; -// si[i].fz-=lj*deltaz; -// si[j].fx+=lj*deltax; -// si[j].fy+=lj*deltay; -// si[j].fz+=lj*deltaz; -// } -// } -// } -// for(i=0;i