The following input will simulate a 1:1 array of GRIN rods (see Figure 2): 9 0(oV&
:tDGNz*zG
Yw1q2jT
3z. >b
RDM;LEN f'yd{ihFp
TIT 1:1 GRIN ARRAY eMd1%/[
NAO 0.1 ,`2xfVa-
TEL ! Telecentric ]{,=mOk
DIM M fq!6#Usf;i
WL 633 T-cVM>u\D
YOB -5 5 0 -10 10 <YNPhu~5
PRV ! GRIN material (SELFOC form) }8KL]11b
PWL 633 )Zr0_b"V:e
'SLSPRV' 1.5 K<9MK>T
SEL 1 ! Grin step size qpH-P8V
SEL C1 .076 ! First coeff. of SELFOC formula DG9;6"HBX
END Q-%=ZW Z
So 0 10.222 NP(?[W
RED -1 b,V=B{(~
S 0 0 ,O`*AzjS5Q
S 0.0 60.0 'SLSPRV' ! GRIN rod (array channels) 8l,hP .
STOP aRKG)0=
CIR 1.25 ! Aperture of each channel ,
&f20o
! (applies to entire length b#'a4j-u
! of GRIN rod) Mj;'vm7#'
! Array definition )bg,rESM
juZ3""
! ARR x_spacing y_spacing y_offset max_x max_y Nfvg[c
ARR 2.5 2.5 0 0 0 AiI# "
S 0 0
W/QOG&g
EAR ! End array +FK<j;}C7
S 0 10.222 '0]_8Sy&
PIM !@ '2
SI 0 0 j[eEyCW[)
LAY;SUR So..i;GO ~ ?_Z!eS
%NoZf^?
!{0!G
Figure 2. 1:1 GRIN array