IP Library Granted Patent US 8,656,761
Granted Patent B2
US 8,656,761 · App. 13/117,639 · Granted Feb 25, 2014

Systems and methods for use in providing a sensor signal independent of ground

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Quick Facts
Patent No.
US 8,656,761
App. No.
13/117,639
Granted
Feb 25, 2014
Kind
B2
Abstract

Isolation circuits, turbine data acquisition systems, and related methods are disclosed. One example isolation circuit includes a voltage divider circuit for coupling to an operational sensor, a clamping circuit connected to said voltage divider circuit and a gain circuit connected to said clamping circuit. The voltage divider circuit is configured to divide an amplitude of a signal received from the sensor. The clamping circuit is configured to limit voltage from said voltage divider circuit. The gain circuit includes an output. The isolation circuit provides a single-ended output signal to the output of the gain circuit as a function of the sensor signal and independent of ground.

Claims (33)

1. An isolation circuit for use in providing a sensor signal independent of ground, said isolation circuit comprising:

a voltage divider circuit for coupling to an operational sensor, said voltage divider circuit configured to divide an amplitude of a signal received from the operational sensor;

a clamping circuit, comprising at least one transient voltage suppression (TVS) device, connected to said voltage divider circuit, said clamping circuit configured to limit voltage from said voltage divider circuit; and

a gain circuit connected to said clamping circuit, said gain circuit comprising an output, wherein said isolation circuit provides a single-ended output signal to the output of the gain circuit as a function of the sensor signal and independent of ground.

2. The isolation circuit of claim 1 , wherein said voltage divider circuit comprises a resistor network.

3. The isolation circuit of claim 2 , wherein said resistor network comprises at least two resistors, and wherein said clamping circuit is coupled in parallel with at least one of said at least two resistors in said resistor network.

4. The isolation circuit of claim 1 , wherein said gain circuit comprises an operational amplifier comprising a positive input and a negative input, and wherein the TVS device is coupled across said positive and negative inputs of said operational amplifier.

5. The isolation circuit of claim 4 , wherein said clamping circuit includes a first diode coupled between one of said amplifier positive and negative inputs and a positive voltage source, and a second diode coupled between one of said amplifier positive and negative inputs and a negative voltage source.

6. The isolation circuit of claim 4 , further comprising a first resistor connected in-line between said positive input and said TVS device and a second resistor connected in-line between said negative input and said TVS device.

7. The isolation circuit of claim 4 , wherein said TVS device facilities protecting said isolation circuit from electromagnetic discharge.

8. An isolation circuit for use in providing a sensor signal independent of ground, said isolation circuit comprising:

a voltage divider circuit for coupling to an operational sensor, said voltage divider circuit configured to divide an amplitude of a signal received from the operational sensor;

a clamping circuit connected to said voltage divider circuit, said clamping circuit configured to limit voltage from said voltage divider circuit; and

a gain circuit connected to said clamping circuit, said gain circuit comprising an output, wherein said isolation circuit provides a single-ended output signal to the output of the gain circuit as a function of the sensor signal and independent of ground, wherein said clamping circuit comprises at least one capacitor connected in-line between said divider circuit and said gain circuit to block DC voltage between said voltage divider circuit and said gain circuit.

9. An isolation circuit for use in providing a sensor signal independent of ground, said isolation circuit comprising:

a voltage divider circuit for coupling to an operational sensor, said voltage divider circuit configured to divide an amplitude of a signal received from the operational sensor;

a clamping circuit connected to said voltage divider circuit, said clamping circuit configured to limit voltage from said voltage divider circuit; and

a gain circuit connected to said clamping circuit, said gain circuit comprising an output, wherein said isolation circuit provides a single-ended output signal to the output of the gain circuit as a function of the sensor signal and independent of ground, wherein said isolation circuit is configured to provide an operating bandwidth at a range of between about 25 Hz to about 100 kHz.

10. A speed sensor assembly comprising:

a speed sensor for generating a differential signal indicative of an operating speed of a component; and

an isolation circuit for coupling to said speed sensor to receive the differential signal from said speed sensor, said isolation circuit configured to generate a single-ended output signal as a function of the differential signal and independent of ground.

11. The speed sensor assembly of claim 10 , wherein said isolation circuit is configured to provide an operating bandwidth at a range of between about 35 Hz to about 100 kHz.

12. The speed sensor assembly of claim 11 , wherein said isolation circuit is configured to provide an operating bandwidth at a range of between about 10 Hz to about 150 kHz.

13. The speed sensor assembly of claim 11 , wherein said speed sensor comprises a magnetic speed sensor.

14. The speed sensor assembly of claim 11 , further comprising a turbine, and wherein the speed sensor is positioned adjacent to said turbine.

15. The speed sensor assembly of claim 14 , wherein the gas turbine engine system includes a monitoring module coupled to the speed sensor and a control module coupled to the speed sensor, the monitoring module connected to the speed sensor via said isolation circuit.

16. A method for use in providing a sensor signal independent of ground, said method comprising:

providing an isolation circuit to couple a sensor to a control system of a gas turbine engine assembly, said isolation circuit includes voltage divider circuit, a clamping circuit connected to the voltage divider circuit, and a gain circuit connected to the clamping circuit;

receiving a differential input signal from the sensor;

dividing, at a resistor network of the voltage divider circuit, an amplitude of the differential sensor signal; and

generating, at an operational amplifier of the gain circuit, a single-ended output signal as a function of the differential sensor signal and independent of ground.

17. The method of claim 16 , further comprising clamping, at the clamping circuit, the divided differential sensor signal to a desired voltage range.

18. The method of claim 16 , further comprising blocking, at the clamping circuit, a DC component of the differential sensor signal.

Assignments (4)
CHANGE OF NAME Recorded Aug 1, 2023
From: BAKER HUGHES, A GE COMPANY, LLC
To: BAKER HUGHES HOLDINGS LLC
Reel/Frame 064457/0786 →
CHANGE OF NAME Recorded Feb 1, 2023
From: BAKER HUGHES, A GE COMPANY, LLC
To: BAKER HUGHES, A GE COMPANY, LLC
Reel/Frame 062609/0277 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 16, 2020
From: GENERAL ELECTRIC COMPANY
To: BAKER HUGHES, A GE COMPANY, LLC
Reel/Frame 051624/0123 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2011
From: ABAWI, DANIEL ZAHI
To: GENERAL ELECTRIC COMPANY
Reel/Frame 026354/0448 →