IP Library › Granted Patent US 9,612,298
Granted Patent B2
US 9,612,298 · App. 15/206,649 · Granted Apr 4, 2017

Magnetic field sensor having XMR elements in a full bridge circuit having diagonal elements sharing a same shape anisotropy

Inventor: Wolfgang Raberg (Sauerlach, DE)
Assignee: Infineon Technologies AG
G01R33/093G01R33/09G01R33/098
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Quick Facts
Patent No.
US 9,612,298
App. No.
15/206,649
Granted
Apr 4, 2017
Kind
B2
Abstract

Embodiments of the present invention provide a magnetic field sensor. The magnetic field sensor includes at least four XMR elements connected in a full bridge circuit including parallel branches. The at least four XMR elements are GMR or TMR elements (GMR=giant magnetoresistance; TMR=tunnel magnetoresistance). Two diagonal XMR elements of the full bridge circuit include the same shape anisotropy, wherein XMR elements in the same branch of the full bridge circuit include different shape anisotropies.

Claims (14)

1. Method for providing a sensor signal of a magnetic field sensor, wherein the magnetic field sensor comprises at least four XMR elements connected in a full bridge circuit comprising parallel branches, wherein two diagonal XMR elements of the full bridge circuit comprise the same shape anisotropy, and wherein XMR elements in the same branch of the full bridge circuit comprise different shape anisotropies, wherein the method comprises:

detecting a bridge signal of the full bridge circuit, wherein the bridge signal comprises a sequence of bridge signal values;

detecting a single element signal of one of the at least four XMR sensor elements, wherein the single element signal comprises a sequence of single element signal values; and

providing the bridge signal as the sensor signal if the bridge signal value is within a predefined bridge signal value range and if the single element signal value is within a predefined single element signal value range.

2. Method according to claim 1 , wherein the two diagonal XMR elements of the full bridge circuit comprise a first aspect ratio defining a first shape anisotropy, and wherein the other two diagonal XMR elements of the full bridge circuit comprise a second aspect ratio defining a second shape anisotropy, wherein the second aspect ratio is by a factor of 1.5 to 5 smaller than the first aspect ratio; and

wherein during the step of detecting the single element signal the single element signal is detected of one of the two other XMR elements that comprise the second aspect ratio.

3. Method according to claim 1 , wherein the predefined bridge signal value range comprises an upper threshold and a lower threshold, wherein the bridge signal value is within the predefined bridge signal value range if the bridge signal value falls below the upper threshold or exceeds the lower threshold.

4. Method according to claim 3 , wherein the Method comprises:

detecting a maximum bridge signal value and a minimum bridge signal value; and

setting the upper threshold of the predefined bridge signal value range based on the detected maximum bridge signal value and setting the lower threshold of the predefined bridge signal value range based on the detected minimum bridge signal value.

5. Method according to claim 1 , wherein the predefined single element signal value range comprises an upper threshold and a lower threshold, wherein the single element signal value is within the predefined single element signal value range if the single element signal value falls below the upper threshold or exceeds the lower threshold.

6. Method according to claim 5 , wherein the Method comprises:

detecting a maximum single element signal value and a minimum single element signal value; and

setting the upper threshold of the predefined single element signal value range based on the detected maximum single element signal value and setting the lower threshold of the predefined single element signal value range based on the detected minimum single element signal value.

Continuity (2)
Division 13451737 · Apr 20, 2012
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