Optimized current bus
US-2015236493-A1 · Aug 20, 2015 · US
US9823329B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9823329-B2 |
| Application number | US-201514883225-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 14, 2015 |
| Priority date | Oct 15, 2014 |
| Publication date | Nov 21, 2017 |
| Grant date | Nov 21, 2017 |
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A magnetic current sensor calibration system includes a plurality of sensors and a substrate. The substrate has a first surface and a second surface, and the sensors are mounted on the first surface. The substrate includes a bipolar calibration conductor and a unipolar calibration conductor. The bipolar calibration conductor is spaced apart from the plurality of sensors and is disposed between the first and second surfaces. The unipolar calibration conductor is spaced apart from the plurality of sensors and the bipolar calibration conductor, and is disposed between the first and second surfaces.
Opening claim text (preview).
What is claimed is: 1. A magnetic current sensor calibration system, comprising: a plurality of sensors; a controller electrically coupled to, and configured to, adjust a gain and an offset of each of the plurality of sensors; and a substrate having a first surface and a second surface, the plurality of sensors mounted on the first surface, the substrate comprising: a bipolar calibration conductor spaced apart from the plurality of sensors and disposed between the first and second surfaces; and a unipolar calibration conductor spaced apart from the plurality of sensors and the bipolar calibration conductor, the unipolar calibration conductor disposed between the first and second surfaces. 2. The system of claim 1 , wherein: the bipolar calibration conductor is configured such that, upon being electrically energized, a first half of the sensors are exposed to a first magnetic field, and a second half of the sensors are exposed to a second magnetic field, the first magnetic field having a first magnitude and a first direction, the second magnetic field having the first magnitude and a second direction, the second direction opposite the first direction; and the unipolar calibration conductor is configured such that, upon being electrically energized, all of the sensors are exposed to a third magnetic field having a third magnitude and one of the first direction or the second direction. 3. The system of claim 2 , further comprising: a first bipolar calibration current output conductor electrically connected to the bipolar calibration conductor; a second bipolar calibration current output conductor spaced apart from the first bipolar calibration current output conductor and electrically connected to the bipolar calibration conductor; and a bipolar calibration current input conductor electrically connected to the bipolar calibration conductor, the bipolar calibration current input conductor disposed between, and spaced equidistant from, the first and second bipolar calibration current output conductors. 4. The system of claim 2 , further comprising: a first bipolar calibration current input conductor electrically connected to the bipolar calibration conductor; a second bipolar calibration current input conductor spaced apart from the first bipolar calibration current input conductor and electrically connected to the bipolar calibration conductor; and a bipolar calibration current output conductor electrically connected to the bipolar calibration conductor, the bipolar calibration current output conductor disposed between, and spaced equidistant from, the first and second bipolar calibration current input conductors. 5. The system of claim 2 , further comprising: a unipolar calibration current output conductor electrically connected to the unipolar calibration conductor; and a unipolar calibration current input conductor electrically connected to the unipolar calibration conductor and spaced apart from the unipolar calibration current input conductor. 6. The system of claim 1 , further comprising: a controller electrically coupled to the bipolar calibration conductor and to the unipolar calibration conductor, the controller configured to selectively energize the bipolar calibration conductor and the unipolar calibration conductor. 7. The system of claim 1 , wherein: the controller is further configured to measure outputs of each of the plurality of sensors and differential outputs of sensor pairs. 8. The system of claim 1 , wherein: the bipolar calibration conductor has a first area; the unipolar calibration conductor has a second area; and the first area and the second area are unequal. 9. The system of claim 8 , wherein the second area is greater than the first area. 10. A magnetic current sensor calibration system, comprising: a plurality of sensors; a substrate having a first surface and a second surface, the plurality of sensors mounted on the first surface, the substrate comprising: a bipolar calibration conductor spaced apart from the plurality of sensors and disposed between the first and second surfaces; and a unipolar calibration conductor spaced apart from the plurality of sensors and the bipolar calibration conductor, the unipolar calibration conductor disposed between the first and second surfaces; and a controller electrically coupled to the bipolar calibration conductor, to the unipolar calibration conductor, and to the plurality of sensors, the controller configured to: energize the bipolar calibration conductor and the unipolar calibration conductor; adjust a gain and an offset of each of the plurality of sensors; and measure outputs of each of the plurality of sensors and differential outputs of sensor pairs. 11. The system of claim 10 , wherein: the bipolar calibration conductor is configured such that, upon being electrically energized, a first half of the sensors are exposed to a first magnetic field, and a second half of the sensors are exposed to a second magnetic field, the first magnetic field having a first magnitude and a first direction, the second magnetic field having the first magnitude and a second direction, the second direction opposite the first direction; and the unipolar calibration conductor is configured such that, upon being electrically energized, all of the sensors are exposed to a third magnetic field having a third magnitude and one of the first direction or the second direction. 12. The system of claim 11 , further comprising: a first bipolar calibration current output conductor electrically connected to the bipolar calibration conductor, a second bipolar calibration current output conductor spaced apart from the first bipolar calibration current output conductor and electrically connected to the bipolar calibration conductor; and a bipolar calibration current input conductor electrically connected to the bipolar calibration conductor, the bipolar calibration current input conductor disposed between, and spaced equidistant from, the first and second bipolar calibration current output conductors. 13. The system of claim 11 , further comprising: a first bipolar calibration current output conductor electrically connected to the bipolar calibration conductor; a second bipolar calibration current output conductor spaced apart from the first bipolar calibration current output conductor and electrically connected to the bipolar calibration conductor; and a bipolar calibration current input conductor electrically connected to the bipolar calibration conductor, the bipolar calibration current input conductor disposed between, and spaced equidistant from, the first and second bipolar calibration current output conductors. 14. The system of claim 11 , further comprising: a unipolar calibration current output conductor electrically connected to the unipolar calibration conductor; and a unipolar calibration current input conductor electrically connected to the unipolar calibration conductor and spaced apart from the unipolar calibration current input conductor. 15. The system of claim 10 , wherein: the bipolar calibration conductor has a first area; the unipolar calibration conductor has a second area; and the first area and the second area are unequal. 16. The system of claim 15 , wherein the second area is greater than the first area. 17. A magnetic current sensor calibration system, comprising: a plurality of sensors; a substrate having a first surface and a second surface, the plurality of sensors mounted on the first surface, the substrate comprising a bipolar calibration cond
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Means for compensating offset magnetic fields or the magnetic flux to be measured; Means for generating calibration magnetic fields · CPC title
Geometrical arrangement of magnetic sensor elements; Apparatus combining different magnetic sensor types (G01R33/0206 takes precedence) · CPC title
using galvano-magnetic devices · CPC title
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