Difference between revisions of "Geometry (25 MeV LINAC exit port)"
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<math>x_2 + r_2 = R</math> | <math>x_2 + r_2 = R</math> | ||
− | <math>\frac{1}{\sqrt{2}}\ (286+183)\ \tan\left(\frac{0.511}{ | + | <math>\frac{1}{\sqrt{2}}\ (286+183)\ \tan\left(\frac{0.511}{E_{min}}\right) + |
− | \frac{1}{2}\ (286+183)\ \tan\left(\frac{1}{2}\ \frac{0.511}{ | + | \frac{1}{2}\ (286+183)\ \tan\left(\frac{1}{2}\ \frac{0.511}{E_{min}}\right) = R </math> |
+ | |||
+ | Solving for <math>E_{min}</math> | ||
=25 MeV geometry= | =25 MeV geometry= |
Revision as of 03:10, 13 June 2010
Minimum accelerator energy to run experiment
The minimum energy of accelerator (MeV) is limited by fitting the collimator (
) into the hole ( )Assuming the collimator diameter is
Solving for
25 MeV geometry
critical angle
kicker angle
geometry ( )
collimator center position
(wall 1)
(wall 2)
collimator diameter
(wall 1)
(wall 2)
collimator critical angle
:
minimal distance from the wall ( )
geometry ( )
collimator center position
(wall 1)
(wall 2)
collimator diameter
(wall 1)
(wall 2)
collimator critical angle
:
minimal distance from the wall ( )
Funny pictures...
how it looks 1 ( , box 3"x4" and then pipe 4")
File:Vacuum pipe collimator .png
how it looks 2 ( , box 3"x4" and then pipe 4")
File:Vacuum pipe collimator .png