Passive Position Sensing 1 Introduction


Figure 3: Pair of quadrature signals for connecting to the two resolver stator windings



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Figure 3: Pair of quadrature signals for connecting to the two resolver stator windings.

Since we have the 2 stator windings energized by two quadrature sinusoids, the induced voltage in the rotor will be equal to the vector sum of the two induced voltages from each stator winding.





Figure 4: A resolver with its two stator windings driven by 2 quadrature input signals.

Note that magnitude of the induced rotor voltage from each stator winding will still be proportional to the sine (or cosine) of the angle between the rotor and that stator windings. Therefore, the rotor output voltage becomes (equation (2.5)).



The above equation manifests the fact that the electrical phase shift between and actually represents the mechanical angular displacement applied to the device itself. Thus, when we measure the electrical phase angle between one stator winding voltage and the induced rotor voltage, we can measure the mechanical angle of the rotor. Figure 5 shows the time functions of these two signals.





Figure 5: Physical angular displacement measurement can be obtained by measuring the electrical phase shift between the rotor output and one of the two stator inputs of the resolver.


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