Method for processing reflector mirror shape of high-precision space camera
A space camera and processing method technology, applied in installation, optics, instruments, etc., can solve problems such as large calculation errors, and achieve the effects of increasing the amount of calculation, improving reliability and reliability, and improving calculation accuracy.
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Embodiment 1
[0028] For the mirror surface, use the aspheric surface described by the following form
[0029] z = c y 2 1 + 1 - ( 1 + k ) c 2 y 2 + Ay 4 + By 6 + Cy 8 + ...
[0030] Wherein, z is the rotational symmetry axis of the aspheric surface, and y is the incident height of the incident light on the aspheric surface.
[0031] Assuming that the direction of the ...
Embodiment 2
[0046] Embodiment 2, adopt the spherical surface of following form for specular surface
[0047] x 2 +y 2 +z 2 =R 2
[0048] Assuming that the direction of the calculated residual vector is the radial direction of the sphere, the coordinate of the i-th node on the deformed mirror surface is x i ,y i ,z i (i=1, 2, 3, . . . ).
[0049] See attached figure 1 , the calculation process is as follows:
[0050] Step 1. Same as Step 1 in Example 1.
[0051] Step 2. Read the spherical curvature radius R and calculate the deformation node [X i ,Y i ,Z i ] Deviation from the ideal surface in the direction of the calculated residual, that is, the residual δZ i
[0052] δZ i = X i 2 + Y i 2 + Z i ...
Embodiment 3
[0058] Embodiment 3, adopt the free form surface of following form for specular surface
[0059] z = cr 2 1 + 1 - ( 1 + k ) c 2 r 2 + Σ j = 2 66 c j x m y n , j = [ ( m + ...
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