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Subject: APM Information System - APM/Explanation of testresults
Date: Fri, 5 Mar 2010 14:31:50 +0100
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<HTML><HEAD><TITLE>APM Information System - APM/Explanation of =
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<META name=3Ddescription content=3D"APM Markus Ludes Information =
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<META name=3Dauthor content=3D"Nicole Ludes">
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content=3D"APM, Telescope, Astronomy, ARIES, INTES, INTES MICRO">
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<H2><FONT color=3D#3333ff>Explanation of testresults</FONT></H2>
<H3><FONT color=3D#3333ff>Sample for a 4"F/8 Modell</FONT></H3>
<P><IMG alt=3D"tst_100_testreport.jpg (22056 Byte)"=20
src=3D"http://nch223.eden2.netclusive.de/apm-old/images/products/apm/tst_=
100_testreport.jpg"=20
width=3D468 height=3D321></P>
<P>Testreportresults at 532 nm, green wavelength:=20
<UL>
  <LI>wavefront p.t.v. 0.175 =3D 1/5.7=20
  <LI>wavefront RMS 0.017 =3D 1/58.8=20
  <LI>Strehlratio 0.989 =3D 98.9 % </LI></UL>
<P align=3Dleft>The german company Carl Zeiss Jena did never print =
wavefront=20
p.t.v. results in their testreports due to a good reason. The =
Interferometer=20
print the worsest result, which you get from the worsest local error. So =
if a=20
Zeiss Lens with a very high strehl would show a middle quality wavefront =
p.t.v.,=20
customers maybe thinking Zeiss lenses are not that good, because they =
are mostly=20
not able to read a testreport. Therefore we try to explain now how to =
read such=20
a testreport:</P>
<P align=3Dleft>On the right side of our testreports you read in the =
topline :=20
Wave Front's deformation, which is the topographie and also called =
phasemap,=20
which is nothing else than a profile of the complete optical =
surfacearea.</P>
<P align=3Dleft>Normally customers guess and read that a overal relation =
between=20
wavefront p.t.v. and wavefront RMS should be around 1:4. Checking the =
relation=20
on this lens shows us 58,8 RMS : 5,7 PV =3D 1:10.3. But why is there a =
difference?=20
A relation of 58.8 RMS should show (58.8:4 =3D 14.7 =3D 1/14.7 wavefront =
p.t.v.),=20
again why we have such a difference on this testreports from the general =

relation of 1:4?</P>
<P>Let's check the phasemap more carefully now: On the right side of the =
map we=20
see a column with letters for diffrent colors. This letter starting on=20
bottomside at 0, in the middle with 0.0877 and at top 0.175. The 0.175 =
is the=20
printed wavefront. This line on the right side show 4 diffrent colors, =
starting=20
in the bottom 25% blue color, next 50% green color, next 25% yellow =
color and=20
upper 25% redcolor. Now lets see what 's the amount of wavefront we have =
for=20
each color: <BR>0.175 : 4 colors =3D 0.0437 wavefront p.t.v. for each =
color. That=20
results as follows:=20
<UL>
  <LI>all surfaces you can see on the map with blue color have a =
wavefront=20
  p.t.v. of &nbsp; 0.0437 =3D 1/22.9 wavefront P-V=20
  <LI>all surfaces you see on the map with blue and green color have an=20
  wavefront of &nbsp; 0.0437 x2 =3D 0.0877=3D 1/11.4 wavefront P-V=20
  <LI>all surface we see on the map with blue, green and yellow color =
have a=20
  wavefront of 0.0427x3 =3D0.131 =3D 1/7.63 wavefront P-V=20
  <LI>all surface total with all 4 colors have a wavefront of 0.175 , =
which is=20
  1/5.7 wavefront P-V </LI></UL>
<P>Now lets take an look to the phasemap where we see all this 4 colors: =

<UL>
  <LI>The surface have an amount of about 70% blue surface, which means =
70% of=20
  the lens is 1/22.9 wavefront p.t.v. or better=20
  <LI>The surface have an amount of 97% blue and green, which means 97% =
of the=20
  lens surface is 1/11.4 wavefront and better=20
  <LI>The surface have an amount of about 99% blue, green and yellow, =
which=20
  means 99% of the surface is 1/7.6 PV and better </LI></UL>
<P>The relation 1:4 between PV and RMS is valid for overal correction =
and not=20
for local errors.The red and yellow colors are smallest surface peaks, =
which=20
having any time from different reasons, sometimes from lensweight on=20
lensspacers, sometimes from little glasinhomogenities, sometimes from =
little=20
zones, etc.</P>
<P>On this lens now the overal correction is better than 1/11 wavefront =
PV,=20
mixed with the 1/22.9PV from the blue color, this results in a fair =
mixture of=20
around the 1/14 wavefront which we need to fulfill the known relation of =
1:4 .=20
So please, don' t be surprised if you have a lens with such a testreport =

printresult of 1/5.7 wavefront p.t.v., but your startest show better =
than 1/10=20
wavefront. The 1%,.2%, 3% small local errors are not detectable for your =
eyes=20
and have a not noticable influence in imagequality.</P>
<P>&nbsp;</P>
<HR>

<ADDRESS>last updated <!--webbot bot=3D"Timestamp" startspan =
S-Type=3D"EDITED" S-Format=3D"%m/%d/%y" -->18/07/02<!--webbot=0A=
  bot=3D"Timestamp" i-checksum=3D"12352" endspan -->,=20
=A9 '99 APM Markus Ludes, V 09.99 </ADDRESS></BODY></HTML>

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