Coulomb counter circuitry
US-12101097-B2 · Sep 24, 2024 · US
US9599693B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9599693-B2 |
| Application number | US-201214356603-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 26, 2012 |
| Priority date | Nov 11, 2011 |
| Publication date | Mar 21, 2017 |
| Grant date | Mar 21, 2017 |
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Official abstract text for this publication.
The present invention discloses a magnetic field sensing device that utilizes a single coil for calibrating the response of the sensor to compensate for temperature dependent sensitivity drift and also for resetting the magnetic field sensor in order to eliminate hysteresis. The single coil configuration is advantageous since it reduces the size of the sensor chip by decreasing the number of contact pads on the chip and also because it wastes less space, which permits an increase in the density of the magnetoresistive elements on the sensor chip.
Opening claim text (preview).
The invention claimed is: 1. A magnetic field sensor, comprising: at least one magnetoresistive sensor element; and an electric conductor in the proximity of the magnetoresistive sensor element in order to generate a magnetic field, wherein the magnetic field sensor is configured to bias the magnetoresistive sensor element with a magnetic offset field equal to the coercivity of the magnetoresistive sensor element, wherein the magnetic field sensor is configured to apply an electric current to the electric conductor to generate a magnetic biasing field parallel to a sensing axis of the magnetoresistive sensor element, wherein the magnetic field sensor is configured to apply a first electric current to reset the magnetic field sensor, and apply a second current to calibrate the magnetic field sensor. 2. The magnetic field sensor of claim 1 , wherein the first electric current is larger than the second electric current. 3. The magnetic field sensor of claim 1 , wherein the first electric current and the second electric current are in the range of 1 mA and 10 mA. 4. The magnetic field sensor of claim 1 , wherein the electric conductor is formed from a single conducting layer. 5. The magnetic field sensor of claim 4 , wherein the electric conductor is formed into a meander pattern coil, with return leads that run between parallel rows of magnetoresistive sensor elements, and field generating leads that sit atop or beneath the magnetoresistive sensor elements. 6. The magnetic field sensor of claim 4 , wherein the electric conductor is patterned into a spiral coil. 7. The magnetic field sensor of claim 1 , wherein the magnetic sensor can be used as a solid-state compass. 8. A magnetic field sensor, comprising: at least one magnetoresistive sensor element; and an electric conductor in the proximity of magnetoresistive sensor element in order to generate a magnetic biasing field, wherein the magnetic field sensor is configured to bias the magnetoresistive sensor element with a magnetic offset field equal to the coercivity of the magnetoresistive sensor element, wherein the magnetic biasing field has a first magnetic biasing field component parallel to a sensing axis of magnetoresistive sensor element and a second magnetic biasing field component perpendicular to the sensing axis of the magnetoresistive sensor element, wherein the first magnetic biasing field component is larger than the second magnetic biasing field component, the first magnetic biasing field component is used for reset and calibration, and the second magnetic biasing field component is used to align magnetic domains at the edges of the magnetoresistive sensor element, wherein the first electric current is applied to the electric conductor in order to generate the first magnetic biasing field component and provide a reset function, and a second electric current applied to the electric conductor in order to generate the first magnetic biasing field component and provide a calibration function. 9. The magnetic field sensor of claim 8 , wherein the first electric current is larger than the second electric current. 10. The magnetic field sensor of claim 8 , wherein the first electric current and the second electric current are in the range of 1 mA and 10 mA. 11. The magnetic field sensor of claim 8 , wherein an angle of the central axis of the conductor with respect with a long axis of the magnetoresistive element is ≦22.5°. 12. The magnetic field sensor of claim 8 , wherein the electric conductor is formed from a single conducting layer. 13. The magnetic field sensor of claim 12 , wherein the electric conductor is formed into a meander pattern coil, with return leads that run between parallel rows of magnetoresistive sensor element and field generating leads that sit atop or beneath the sensor elements. 14. The magnetic field sensor of claim 12 , wherein the electric conductor is patterned into a spiral coil. 15. The magnetic field sensor of claim 8 , wherein the magnetic sensor can be used as a solid-state compass. 16. The magnetic field sensor of claim 2 , wherein the electric conductor is formed from a single conducting layer. 17. The magnetic field sensor of claim 3 , wherein the electric conductor is formed from a single conducting layer. 18. The magnetic field sensor of claim 9 , wherein the electric conductor is formed from a single conducting layer. 19. The magnetic field sensor of claim 10 , wherein the electric conductor is formed from a single conducting layer. 20. The magnetic field sensor of claim 11 , wherein the electric conductor is formed from a single conducting layer.
Calibrating; Standards or reference devices, e.g. voltage or resistance standards, "golden" references (G01R33/0035, G01R35/002 take precedence) · CPC title
Environmental aspects, e.g. temperature variations, radiation, stray fields (G01R33/025 takes precedence) · CPC title
Means for compensating offset magnetic fields or the magnetic flux to be measured; Means for generating calibration magnetic fields · CPC title
Calibration of single magnetic sensors, e.g. integrated calibration · CPC title
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