Current sensor transfer impedance determination method: Difference between revisions

From RadiWiki
Jump to navigation Jump to search
No edit summary
No edit summary
 
(12 intermediate revisions by one other user not shown)
Line 9: Line 9:


The power in the lower 50 ohm impedance is <math>P = \frac{U^2}{R} = 20 \ mWatt</math>
The power in the lower 50 ohm impedance is <math>P = \frac{U^2}{R} = 20 \ mWatt</math>
So 1 ohm: <math>10*^{10}log(\frac{0,02}{50}) \approx -33,98 dB = -20*^{10}log(50)</math>


= Reference measurement =
= Reference measurement =
Line 17: Line 19:


= Calculation =  
= Calculation =  
<Math>Correction \ factor (dB)= P_{Measured} - P_{Reference} + 33.98</Math>
<Math>Correction \ factor (dB)= P_{Measured} - P_{Reference}+ 33.98</Math>


<Math>P_{Measured}</Math> and <Math>P_{Reference}</Math> in dBm.
<Math>P_{Measured}</Math> and <Math>P_{Reference}</Math> in dBm.




{{note|This method is not a replacement for a real calibration.}}
= Example =
On 10 MHz we have the following information:
*Calibration: 0 dBm.
*Measurement: -27,96 dBm.
 
So:
<math>Imp.=-27,96-0.00+33.98=6,02 dBOhm</math>
 
<math>Imp.\approx 2 \ Ohm</math>
 
== Verification ==
 
[[Image:Current sensor Transfer impedance example.png]]
 
The left impedance is the signal generator which is generating enough power for 1 ampere.
 
This 1 Ampere generates <math>P = I^2*R=50 \ Watt</math> in the right impedance.
 
The current sensor has 2 ohm transfer impedance, this means 1 ampere generates 2 Volt on the measuring part below.
 
The power in the lower 50 ohm impedance is <math>P = \frac{U^2}{R} = 80 \ mWatt</math>
 
So 2 ohm: <math>10*^{10}log(\frac{0,08}{50}) \approx -27,96 dB</math>
 
The difference to a 1 Ohm impedance is <math>-27,96 - (-33,98) = 6,02 dB</math>
 
==Conclusion==
 
Correction to a 1 ohm impedance is <math>20*^{10}log(R_{probe})</math>
 
 
{{note|This method is not a replacement for a real calibration as it may be performed by a none traceable device}}
 
[[Category:RadiMation]]

Latest revision as of 07:47, 31 July 2014

Theory[edit]

Current sensor Transfer impedance Prove.PNG

The left impedance is the signal generator which is generating enough power for 1 ampere.

This 1Amp. generates in the right impedance.

The current sensor has 1 ohm transfer impedance, this means 1 ampere generates 1 Volt on the measuring part below.

The power in the lower 50 ohm impedance is

So 1 ohm:

Reference measurement[edit]

Current sensor Transfer impedance Ref measurement.PNG

Probe measurement[edit]

Current sensor Transfer impedance final measurement.PNG

Calculation[edit]

and in dBm.


Example[edit]

On 10 MHz we have the following information:

  • Calibration: 0 dBm.
  • Measurement: -27,96 dBm.

So:

Verification[edit]

Current sensor Transfer impedance example.png

The left impedance is the signal generator which is generating enough power for 1 ampere.

This 1 Ampere generates in the right impedance.

The current sensor has 2 ohm transfer impedance, this means 1 ampere generates 2 Volt on the measuring part below.

The power in the lower 50 ohm impedance is

So 2 ohm:

The difference to a 1 Ohm impedance is

Conclusion[edit]

Correction to a 1 ohm impedance is


Information.png
Note: This method is not a replacement for a real calibration as it may be performed by a none traceable device