Absolute value (algebra): Difference between revisions

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{{Unreferenced|date=November 2008}}
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{{Technical|date=June 2010}}
[[Image:Maxwell bridge.svg|300px|frame|float|right|A Maxwell bridge]]
 
A '''Maxwell bridge''' (in long form, a Maxwell-Wien bridge) is  a type of [[Wheatstone bridge]] used to measure an unknown [[inductance]] (usually of low Q value) in terms of calibrated [[Electrical resistance|resistance]] and [[capacitance]]. It is a ''[[Real number|real product]]'' bridge.
 
It uses the principle that the positive phase angle of an inductive impedance can be compensated by the negative phase angle of a capacitive impedance when put in the opposite arm and the circuit is at resonance; i.e., no potential difference across the detector and hence no current flowing through it. The unknown inductance then becomes known in terms of this capacitance.
 
With reference to the picture, in a typical application <math>R_1</math> and <math>R_4</math> are known fixed entities, and <math>R_2</math> and <math>C_2</math> are known variable entities. <math>R_2</math> and <math>C_2</math> are adjusted until the bridge is balanced.
 
<math>R_3</math> and <math>L_3</math> can then be calculated based on the values of the other components:
 
:<math>\begin{align}
  R_3 &= \frac{R_1 \cdot R_4}{R_2} \\
  L_3 &= R_1 \cdot R_4 \cdot C_2
\end{align}</math>
 
To avoid the difficulties associated with determining the precise value of a variable capacitance, sometimes a fixed-value capacitor will be installed and more than one resistor will be made variable. It cannot be used for the measurement of high Q values. It is also unsuited for the coils with low Q values, less than one, because of balance convergence problem. Its use is limited to the measurement of low Q values from 1 to 10.
 
The additional complexity of using a Maxwell bridge over simpler bridge types is warranted in circumstances where either the mutual inductance between the load and the known bridge entities, or stray electromagnetic interference, distorts the measurement results.  The capacitive reactance in the bridge will exactly oppose the inductive reactance of the load when the bridge is balanced, allowing the load's resistance and reactance to be reliably determined.
 
== See also ==
* [[Wheatstone bridge]]
 
{{physics-stub}}
 
[[Category:Electrical meters]]
[[Category:Electrical circuits]]
[[Category:Measuring instruments]]
[[Category:James Clerk Maxwell]]

Latest revision as of 02:30, 30 May 2014

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