| songshaoman |
2020-05-25 15:25 |
在框架结构确定的情况下,基于matlab的消四种像差的三反系统初始结构的求解
%无中间像,焦距输入为负数 0� z��]H=
function sjr=nfdre(~) $��/5\Hg1
y�HlQKI��
%系统焦距及各镜间距输入,间距取负正负 i�_l{#*t��
)C�{2�0��_
f=input('f:'); I&gd"F _v}
d1=input('d1:'); fo`R�=|L[
d2=input('d2:'); 8bs'�Ek{'o
d3=input('d3:'); C&%�NO;Ole
�ja/�wI'J<
A=f^2/(d3*d2)-f/d1; 1^V.L+0�s]
B=f/d1-f/d2+f/d1+f/d3-d3*f/(d3*d2); >&R@L ��KP
C=d3/d2-f/d1; 2�Ub-uf�kU
5��} ur,0{
a1=(-B+sqrt(B^2-4*A*C))/(2*A);%α1 XP:fL�
NpQ
a2=d3/(a1*f);%α2 v&7<f��$�5
b2=a1*(1-a2)*f/d2;%β2 BY�HyqpP9
b1=(1-a1)*f/(d1*b2);%β1 WPlf8* -fQ
�/��0Qo�(
O�I�7�8wG�
%曲率半径 o"z;k3(i$7
Qp)�?wn�y4
R1=2*f/(b1*b2) 0�R�`>F"�>
R2=2*a1*f/(b2*(1+b1)) ^,vFxN-�-q
R3=2*a1*a2*f/(1+b2) �A
#m�_�w*
�
"^�BA��5
A1=b2^3*(a1-1)*(1+b1)^3; f7!48�,(fB
B1=-(a2*(a1-1)+b1*(1-a2))*(1+b2)^3; rz-61A) _�
C1=(a1-1)*b2^3*(1+b1)*(1-b1)^2-(a2*(a1-1)+b1*(1-a2))*(1+b2)*(1-b2)^2-2*b1*b2; {�D�|ST2:E
x
�_d ����
A2=b2*(a1-1)^2*(1+b1)^3/(4*a1*b1^2); ADB)-!$xoi
B2=-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)^3/(4*a1*a2*b1^2*b2^2); &DHIYj1 �i
C2=b2*(a1-1)^2*(1+b1)*(1-b1)^2/(4*a1*b1^2)-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)*(1-b2)^2/(4*a1*a2*b1^2*b2^2)-b2*(a1-1)*(1-b1)*(1+b1)/(a1*b1)-(a2*(a1-1)+b1*(1-a2))*(1-b2)*(1+b2)/(a1*a2*b1*b2)-b1*b2+b2*(1+b1)/a1-(1+b2)/(a1*a2); a}|<*!4zUQ
z�8�%q�C�q
CB=[C1 B1;C2 B2]; c;�-N�RvVb
AB=[A1 B1;A2 B2]; Eyk:p�nKJb
AC=[A1 C1;A2 C2]; BD}%RTeWKq
?�u"�.*�!%
%非球面系数 J(ma���JuY
k2=-(det(CB)/det(AB)); w`�+��-xT%
k3=-(det(AC)/det(AB)); ) R5j?6}xF
k1=(k2*a1*b2^3*(1+b1)^3-k3*a1*a2*(1+b2)^3+a1*b2^3*(1+b1)*(1-b1)^2-a1*a2*(1+b2)*(1-b2)^2)/(b1^3*b2^3)-1 *=v%($~PK6
k2=k2 nhC8Tq�[m
k3=k3 MZc�vr�9�y
y�dY 7 �:D
end �t0�v�>J9�
[q_62[-��X
%有中间像,焦距输入为正数 qdKqc�,R1{
Ie=���gI+2
function sjr=yfdre(~) �ahCw��A�}
\v<S:cTf��
f=input('f:'); ht>�/7.p]�
d1=input('d1:'); ��iy�cceZ�
d2=input('d2:'); yD.(j*bMK;
d3=input('d3:'); >h�q{:�m�
q��@XJ,e1A
A=f^2/(d3*d2)-f/d1; *i�ca�Ky3�
B=f/d1-f/d2+f/d1+f/d3-d3*f/(d3*d2); �Li���kCIO
C=d3/d2-f/d1; _y>d�r�vg
:�V#x�rH8R
a1=(-B-sqrt(B^2-4*A*C))/(2*A); 3v�AP&i'�I
a2=d3/(a1*f); 5!$sQ�@#}D
b2=a1*(1-a2)*f/d2; �)\2KD�Xc�
b1=(1-a1)*f/(d1*b2); ��F0za��A
VYh/�URU>
%曲率半径 z[R��
dM#L
�E�x*{iJ;\
R1=2*f/(b1*b2) ;V?(j�3b[
R2=2*a1*f/(b2*(1+b1)) 6@Fh��Dj2X
R3=2*a1*a2*f/(1+b2) }aX�S�MxCd
$^c�zqA-&�
A1=b2^3*(a1-1)*(1+b1)^3; :Aqt��PV'
B1=-(a2*(a1-1)+b1*(1-a2))*(1+b2)^3; D8�PC;�@m
C1=(a1-1)*b2^3*(1+b1)*(1-b1)^2-(a2*(a1-1)+b1*(1-a2))*(1+b2)*(1-b2)^2-2*b1*b2; Bj><0
c�NF
O\Z!7UQ$��
A2=b2*(a1-1)^2*(1+b1)^3/(4*a1*b1^2); ;���!t?��*
B2=-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)^3/(4*a1*a2*b1^2*b2^2); \d�E{�[^.5
C2=b2*(a1-1)^2*(1+b1)*(1-b1)^2/(4*a1*b1^2)-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)*(1-b2)^2/(4*a1*a2*b1^2*b2^2)-b2*(a1-1)*(1-b1)*(1+b1)/(a1*b1)-(a2*(a1-1)+b1*(1-a2))*(1-b2)*(1+b2)/(a1*a2*b1*b2)-b1*b2+b2*(1+b1)/a1-(1+b2)/(a1*a2); ;�~�[�}B v
s~B)xYmyB'
CB=[C1 B1;C2 B2]; �UGgo�;e��
AB=[A1 B1;A2 B2]; }2m>S6"�"A
AC=[A1 C1;A2 C2]; c'Ibgfx%�m
t98S[Z(-%+
%二次系数 �p �W�5D!z
?Ov~\�[) F
k2=-(det(CB)/det(AB)); � n6Uf>5��
k3=-(det(AC)/det(AB)); _�n�x�u8g]
k1=(k2*a1*b2^3*(1+b1)^3-k3*a1*a2*(1+b2)^3+a1*b2^3*(1+b1)*(1-b1)^2-a1*a2*(1+b2)*(1-b2)^2)/(b1^3*b2^3)-1 N�`�fF�Y�O
k2=k2 u��(f;4`�
k3=k3 ��QXL .4r%
P��0hr=/h4
end
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