Claims
- 1. A device for sensing a magnetic anomaly, comprising:
a network of thin film elements exhibiting giant magnetoresistance; a first conductor inductively coupled to a first subset of the thin film elements for supplying a drive current to the device; and a second conductor coupled to a second subset of the thin film elements for providing a bias current to the device; wherein the network of thin film elements generates an output signal in response to an external magnetic field oriented in a first direction relative to the applied drive current, the external magnetic field being representative of the magnetic anomaly.
- 2. The device of claim 1 wherein the network of thin film elements comprises four thin film elements in a bridge configuration, the first conductor being inductively coupled to each of the four thin film elements, the second conductor also being coupled to each of the four thin film elements.
- 3. The device of claim 1 wherein each of the thin film elements comprises a plurality of magnetic and nonmagnetic layers.
- 4. The device of claim 3 wherein selected ones of the magnetic layers have different coercivities.
- 5. The device of claim 4 wherein some of the magnetic layers comprise cobalt.
- 6. The device of claim 4 wherein some of the magnetic layers comprise permalloy.
- 7. The device of claim 3 wherein some of the nonmagnetic layers comprise copper.
- 8. The device of claim 3 wherein each of the thin film elements comprises one period of the magnetic and nonmagnetic layers.
- 9. The device of claim 3 wherein each of the thin film elements comprises multiple periods of the magnetic and nonmagnetic layers.
- 10. The device of claim 1 wherein each thin film element comprises at least one high coercivity layer and at least one low coercivity layer, a resistance value associated with each thin film element being configurable by at least partially switching a first magnetization vector associated with the high coercivity layer.
- 11. The device of claim 1 wherein the network of thin film elements comprises four thin film elements in a bridge configuration, the device being configured such that the output signal is nonzero when the bridge configuration becomes unbalanced, the bridge configuration becoming unbalanced when first magnetization vectors associated with some of the thin film elements oppose corresponding second magnetization vectors associated with others of the thin film elements.
- 12. A device for sensing a magnetic anomaly comprising:
a network of thin film elements exhibiting giant magnetoresistance; a first conductor inductively coupled to a first subset of the thin film elements for supplying a drive current to the device; and a second conductor coupled to a second subset of the thin film elements for providing a bias current to the device; wherein the network of thin film elements generates an output signal in response to an external magnetic field, the external magnetic field being representative of the magnetic anomaly, the output signal being representative of one component of a gradient tensor associated with the external magnetic field.
- 13. A device for sensing a magnetic anomaly comprising a plurality of gradiometers, each gradiometer comprising a network of thin film elements exhibiting giant magnetoresistance, a first conductor inductively coupled to a first subset of the thin film elements for supplying a drive current to the device, and a second conductor coupled to a second subset of the thin film elements for providing a bias current to the device, wherein the network of thin film elements in each gradiometer generates an output signal in response to an external magnetic field, the external magnetic field being representative of the magnetic anomaly, the output signal being representative of one of a plurality of components of a gradient tensor associated with the external magnetic field.
- 14. A device for sensing a magnetic anomaly, the device comprising a magnetometer, the magnetometer comprising a first network of thin film elements exhibiting giant magnetoresistance, a first conductor inductively coupled to a first subset of the thin film elements in the first network for supplying a drive current to the magnetometer, and a second conductor coupled to a second subset of the thin film elements in the first network for providing a bias current to the magnetometer, wherein the first network of thin film elements generates a first output signal representative of a magnitude of an external magnetic field associated the magnetic anomaly, the device also comprising a plurality of gradiometers, each gradiometer comprising a second network of thin film elements exhibiting giant magnetoresistance, a third conductor inductively coupled to a first subset of the thin film elements of the second network for supplying a drive current to the gradiometer, and a fourth conductor coupled to a second subset of the thin film elements of the second network for providing a bias current to the gradiometer, wherein the second network of thin film elements in each gradiometer generates a second output signal in response to the external magnetic field, the second output signal being representative of one of a plurality of components of a gradient tensor associated with the external magnetic field.
- 15. A method for driving a device for sensing a magnetic anomaly, the device comprising a network of thin film elements exhibiting giant magnetoresistance and configured in a bridge configuration, a first conductor inductively coupled to each of the thin film elements for supplying a drive current to the device, and a second conductor coupled to each of the thin film elements for providing a bias current to the device, the method comprising:
applying the bias current to the device via the second conductor; and applying the drive current to the device via the first conductor, the drive current being periodic and having a frequency and a first magnetic field associated therewith; wherein the first magnetic field associated with the drive current causes the bridge to become resistively unbalanced for a plurality of periods of time during each drive current period when an external magnetic field is present, each period of time corresponding to a pulse of an output signal having a duration associated therewith.
- 16. The method of claim 15 wherein applying the bias current comprises applying a constant current to the device via the second conductor, the output signal comprising a bipolar signal at the frequency of the drive current.
- 17. The method of claim 15 wherein applying the bias current comprises applying a bipolar current to the device via the second conductor, the polarity of the bipolar current matching the polarity of the drive current, the output signal comprising a bipolar signal at twice the frequency of the drive current.
- 18. The method of claim 15 wherein applying the bias current comprises applying a bipolar current to the device via the second conductor, and controlling the polarity of the bipolar current such that the output signal comprises a unipolar signal.
- 19. The method of claim 15 wherein controlling the polarity of the bipolar current comprises switching the polarity of the bipolar current between selected ones of the output signal pulses.
- 20. The method of claim 15 wherein controlling the polarity of the bipolar current comprises switching the polarity of the bipolar current to generate the output signal having a frequency component, an integral multiple of which is not present in either of the drive current and the bias current.
RELATED APPLICATION DATA
[0001] The present application claims priority from U.S. Provisional Patent Application No. 60/217,780 for LOW POWER, SENSITIVE, ACCURATE MAGNETIC GRADIOMETER filed on Jul. 11, 2000, the entire disclosure of which is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60217780 |
Jul 2000 |
US |