IP Library Granted Patent US 8,836,322
Granted Patent B2
US 8,836,322 · App. 13/033,234 · Granted Sep 16, 2014

Method and system of a sensor interface having dynamic automatic gain control dependent on speed

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,836,322
App. No.
13/033,234
Granted
Sep 16, 2014
Kind
B2
Abstract

Embodiments of the invention described herein provide a magnetic sensor interface capable of adjusting signal conditioning dynamically using a speed signal of a target such that the true positive and negative peaks of the input signal are maintained for the given target across its entire speed range (0-Max rpm), therefore increasing the signal to noise ratio at low speeds and avoiding clipping or distortion at high speeds. In one aspect, a method comprises receiving an alternating differential voltage signal from a sensor. The differential voltage signal has an amplitude that changes relative to a change in speed of a target. The alternating differential voltage signal is converted to an attenuated single-ended voltage signal that can be dynamically scaled. The attenuated single-ended voltage signal can be scaled by multiplying the attenuated single-ended voltage signal by a scaling factor. The scaling factor is selected relative to the speed signal and is selected relative to a signal-to-noise ratio of the scaled attenuated single-ended voltage signal.

Claims (35)

1. A method comprising:

receiving, from a sensor, an alternating differential voltage signal, wherein the alternating differential voltage signal has an amplitude that changes relative to a change in speed of a target;

converting the alternating differential voltage signal to an attenuated single-ended voltage signal;

receiving a speed signal from a speed sensor, wherein the speed signal indicates the current speed of the target, and the speed sensor is separate from the sensor; and

dynamically scaling the attenuated single-ended voltage signal by multiplying the attenuated single-ended voltage signal by a scaling factor, wherein the scaling factor is based at least in part on the speed signal and selected such that a product of the scaling factor times the attenuated single-ended voltage signal is less than or equal to a maximum input signal voltage.

2. The method of claim 1 , wherein the alternating differential voltage signal has a maximum peak-to-peak value and converting the alternating differential voltage signal to an attenuated single-ended voltage signal comprises the alternating differential voltage signal multiplied by a ratio of a maximum attenuated voltage to the maximum peak-to-peak value.

3. The method of claim 2 , wherein the maximum peak-to-peak value of the alternating differential voltage signal is about 250 volts peak-to-peak and the maximum attenuated voltage of the attenuated single-ended voltage signal is about 30 volts peak-to-peak.

4. The method of claim 1 , wherein converting the alternating differential voltage signal to the attenuated single-ended voltage signal comprises attenuation of the alternating differential voltage signal by a fixed amount such that the attenuated single-ended voltage signal is less than or equal to a maximum attenuated voltage.

5. The method of claim 1 , wherein the maximum input signal voltage is about 6.5 volts peak-to-peak.

6. The method of claim 1 , wherein dynamically scaling the attenuated single-ended voltage signal by multiplying the attenuated single-ended voltage level by the scaling factor comprises dynamically scaling the attenuated single-ended voltage signal using a scaling op-amp circuit that has a digital potentiometer controlled by an field programmable gate array (FPGA) or digital processor.

7. The method of claim 6 , wherein the FPGA or digital processor dynamically scale the attenuated single-ended voltage signal by receiving a digital representation of the attenuated single-ended voltage signal and receiving the speed signal and adjusting the digital potentiometer such that the scaling factor times the attenuated single-ended voltage level is less than or equal to the maximum input signal voltage.

8. The method of claim 1 , wherein the scaling factor is less than 1.

9. The method of claim 1 , wherein the scaling factor selected relative to the speed signal comprises the scaling factor selected relative to a ratio of the current speed of the target to a maximum speed of the target.

10. The method of claim 1 , wherein receiving, from a sensor, the alternating differential voltage signal comprises receiving the alternating differential voltage signal from a variable reluctance sensor.

11. The method of claim 10 , wherein the alternating differential voltage signal produced by the variable reluctance sensor is related to the target's material composition, a gap between the sensor and the target, and a speed at which the target passes the sensor.

12. The method of claim 1 , wherein the target is a turbine blade.

13. A system comprising:

a sensor configured to produce an alternating differential voltage signal that has an amplitude that changes relative to a change in speed of a target;

first circuitry, wherein the first circuitry receives the alternating differential voltage signal and converts the alternating differential voltage signal to an attenuated single-ended voltage signal;

a speed sensor, wherein the speed sensor produces a speed signal that indicates the current speed of the target, and the speed sensor is separate from the sensor; and

second circuitry, wherein the second circuitry dynamically scales the attenuated single-ended voltage signal by multiplying the attenuated single-ended voltage signal by a scaling factor, wherein the scaling factor is based at least in part on the speed signal and the scaling factor is automatically set such that a product of the scaling factor times the attenuated single-ended voltage signal is less than or equal to a maximum input signal voltage.

14. The system of claim 13 , wherein the alternating differential voltage signal has a maximum peak-to-peak value and the first circuitry converts the alternating differential voltage signal to an attenuated single-ended voltage signal by multiplying the alternating differential voltage signal by a ratio of a maximum attenuated voltage to the maximum peak-to-peak value.

15. The system of claim 14 , wherein the maximum peak-to-peak value of the alternating differential voltage signal is about 250 volts peak-to-peak and the maximum attenuated voltage of the attenuated single-ended voltage signal is about 30 volts peak-to-peak.

16. The system of claim 13 , wherein the first converting the alternating differential voltage signal to the attenuated single-ended voltage signal comprises the first circuitry attenuating the alternating differential voltage signal by a fixed amount such that the attenuated single-ended voltage signal is less than or equal to a maximum attenuated voltage.

17. The system of claim 13 , wherein the second circuitry comprises a field programmable gate array (FPGA) or digital processor configured to automatically set the scaling factor.

18. The system of claim 13 , wherein the maximum input signal voltage is about 6.5 volts peak-to-peak.

19. The system of claim 13 , wherein the second circuitry dynamically scaling the attenuated single-ended voltage signal by multiplying the attenuated single-ended voltage level by the scaling factor comprises the second circuitry dynamically scaling the attenuated single-ended voltage signal using a scaling op-amp that has a digital potentiometer controlled by the FPGA or digital processor.

20. The system of claim 19 , wherein the FPGA or digital processor scales the attenuated single-ended voltage signal by receiving a digital representation of the attenuated single-ended voltage signal from an analog to digital converter (ADC) and receiving the speed signal and automatically adjusting the digital potentiometer such that the scaling factor times the attenuated single-ended voltage level is less than or equal to the maximum input signal voltage.

21. The system of claim 13 , wherein the scaling factor is less than 1.

22. The system of claim 13 , wherein the scaling factor selected relative to the speed signal comprises the scaling factor selected relative to a ratio of the current speed of the target to a maximum speed of the target.

23. The system of claim 13 , wherein the sensor is a variable reluctance sensor.

24. The system of claim 23 , wherein the alternating differential voltage signal produced by the variable reluctance sensor is related to the target's material composition, a gap between the sensor and the target, and a speed at which the target passes the sensor.

25. The system of claim 13 , wherein the target is a turbine blade.

26. A non-transitory, computer-readable storing instructions to:

dynamically scale an attenuated single-ended voltage signal from a first sensor by multiplying the attenuated single-ended voltage signal by a scaling factor based at least in part on a speed signal received from a second sensor and selecting the scaling factor such that a product of the scaling factor times the attenuated single-ended voltage signal is less than or equal to a maximum input signal voltage.

Assignments (3)
CHANGE OF NAME Recorded Feb 14, 2023
From: BAKER HUGHES, A GE COMPANY, LLC
To: BAKER HUGHES HOLDINGS LLC
Reel/Frame 062748/0901 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2020
From: GENERAL ELECTRIC COMPANY
To: BAKER HUGHES, A GE COMPANY, LLC
Reel/Frame 051698/0464 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2011
From: ROYLANCE, JAMES MERRILL; ABAWI, DANIEL ZAHI; DEB, BIPLAB
To: GENERAL ELECTRIC COMPANY
Reel/Frame 025851/0955 →