| 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 QTrlQH�&p�
function sjr=nfdre(~) ,&z�j�Oc_v
[EW$7 se�~
%系统焦距及各镜间距输入,间距取负正负 Tvksf�!�ba
1�b
%�T_a
f=input('f:'); &?5{z�\;1"
d1=input('d1:'); �}
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d2=input('d2:'); S,)|~#�5x�
d3=input('d3:'); �Ok~W@sYST
jmk�*z(}#:
A=f^2/(d3*d2)-f/d1; �f�a*H� cz
B=f/d1-f/d2+f/d1+f/d3-d3*f/(d3*d2); 9 z8<�[��>
C=d3/d2-f/d1; a|6�x!p�2X
$�<>EwW�
a1=(-B+sqrt(B^2-4*A*C))/(2*A);%α1 DS,FVh�".|
a2=d3/(a1*f);%α2
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b2=a1*(1-a2)*f/d2;%β2 ��+D�bW�Mm
b1=(1-a1)*f/(d1*b2);%β1 5�M\=�+5wB
h^��ecn-PC
_w5~�/PbWt
%曲率半径 EV�?4�7\�~
VM V]TPks>
R1=2*f/(b1*b2) BJ.8OU*9]S
R2=2*a1*f/(b2*(1+b1)) ]�zw�qG��A
R3=2*a1*a2*f/(1+b2) u6S0t?Udap
$b�i�_i|?�
A1=b2^3*(a1-1)*(1+b1)^3; 2�dd:�5�L,
B1=-(a2*(a1-1)+b1*(1-a2))*(1+b2)^3; _{Q�?VQvZ�
C1=(a1-1)*b2^3*(1+b1)*(1-b1)^2-(a2*(a1-1)+b1*(1-a2))*(1+b2)*(1-b2)^2-2*b1*b2; ,w�b|?��>Y
�v(�Zi;?c�
A2=b2*(a1-1)^2*(1+b1)^3/(4*a1*b1^2); yzM+28}L<I
B2=-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)^3/(4*a1*a2*b1^2*b2^2); ?od}~G4�s#
C2=b2*(a1-1)^2*(1+b1)*(1-b1)^2/(4*a1*b1^2)-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)*(1-b2)^2/(4*a1*a2*b1^2*b2^2)-b2*(a1-1)*(1-b1)*(1+b1)/(a1*b1)-(a2*(a1-1)+b1*(1-a2))*(1-b2)*(1+b2)/(a1*a2*b1*b2)-b1*b2+b2*(1+b1)/a1-(1+b2)/(a1*a2); DP6{HR��$L
g0:4z��eL�
CB=[C1 B1;C2 B2]; !qw=���I(�
AB=[A1 B1;A2 B2]; ch,Zk )y:_
AC=[A1 C1;A2 C2]; :���!�iPn%
?lwQne8/��
%非球面系数 EDidg�"�0p
k2=-(det(CB)/det(AB)); kFI�B lP�V
k3=-(det(AC)/det(AB)); QY\wQj�wuW
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 j'�40>Ct=i
k2=k2 C�"Y]W-Mgg
k3=k3 �%}�A�pO{
]2�0��"la5
end /E4�}d�=5L
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%有中间像,焦距输入为正数 Ualq>J5-m-
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function sjr=yfdre(~) e�9_O�/i�N
lKhh=��Pc2
f=input('f:'); ~j&:)a�'^
d1=input('d1:'); \Af|$9boHz
d2=input('d2:'); ,f�G_'3w�b
d3=input('d3:'); cV_IG�}�LJ
�=��E~5&W7
A=f^2/(d3*d2)-f/d1; ?5YmE��(v7
B=f/d1-f/d2+f/d1+f/d3-d3*f/(d3*d2); U1���HD�~
C=d3/d2-f/d1; :k )<1��ua
F3 l�^^�Mc
a1=(-B-sqrt(B^2-4*A*C))/(2*A); j]l}�K�*8(
a2=d3/(a1*f); PUZ�X�mn�B
b2=a1*(1-a2)*f/d2; \;:@=�9`��
b1=(1-a1)*f/(d1*b2); Is6']b��Yh
�aq,)�6�P`
%曲率半径 �u r.T YKF
]�vkHU�6�d
R1=2*f/(b1*b2) )4_6\Va�M�
R2=2*a1*f/(b2*(1+b1)) A�{Htpm��~
R3=2*a1*a2*f/(1+b2) �'/C�z�{<,
1gy}E=�noP
A1=b2^3*(a1-1)*(1+b1)^3; AW&�s-b%P�
B1=-(a2*(a1-1)+b1*(1-a2))*(1+b2)^3; �y3[)z���v
C1=(a1-1)*b2^3*(1+b1)*(1-b1)^2-(a2*(a1-1)+b1*(1-a2))*(1+b2)*(1-b2)^2-2*b1*b2; �9PGR#!!F$
-�QI`npsnV
A2=b2*(a1-1)^2*(1+b1)^3/(4*a1*b1^2); V1�#aDfi�W
B2=-(a2*(a1-1)+b1*(1-a2))^2*(1+b2)^3/(4*a1*a2*b1^2*b2^2); 6ym�)F!t8l
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); d<'Yt|��zt
*n�_4R�r��
CB=[C1 B1;C2 B2]; f uN�XY�-;
AB=[A1 B1;A2 B2]; rHBjR_L�.2
AC=[A1 C1;A2 C2]; 27� TZ+��?
Bpo68%dx89
%二次系数 TIh�zMW\/K
z �slEUTj)
k2=-(det(CB)/det(AB)); wBH�Dof
xX
k3=-(det(AC)/det(AB)); ZpctsC�z�]
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 �*#^1rKGWK
k2=k2 OHn�jI>�/�
k3=k3 ]bE?�n.NwZ
���7�c�]Ai
end
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