IP Library Granted Patent US 9,269,886
Granted Patent B1
US 9,269,886 · App. 14/057,362 · Granted Feb 23, 2016

Fast startup, micro power, low noise piezoelectric amplifier with extended low frequency response

Inventors: Christopher E. McLean (Dillsburg, PA); Lei Hsu (Germantown, MD)
Assignee: Meggitt (Maryland) Inc.
H01L41/107
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Quick Facts
Patent No.
US 9,269,886
App. No.
14/057,362
Granted
Feb 23, 2016
Kind
B1
Abstract

A circuit combines the features of fast startup with low current, low frequency response, and low noise. With the use of a novel biasing technique, it is possible to operate the piezoelectric crystal at zero DC voltage bias, both throughout the startup phase and during normal operation, by setting both ends of the piezoelectric crystal to the same voltage potential. In this application, the potential is that of the reference voltage. Not having to charge the piezoelectric crystal capacitance reduces the startup time dramatically.

Claims (41)

1. A circuit comprising:

a piezoelectric element having a first end and a second end; and,

a biasing circuit connected to the first end and the second end of said piezoelectric element, said biasing circuit providing a first voltage potential at the first end of said piezoelectric element and a second voltage potential at the second end of said piezoelectric element, wherein the first voltage potential and the second voltage potential are the same or substantially the same so that a voltage differential between the first voltage potential and the second voltage potential is zero or substantially zero, wherein said biasing circuit provides the same voltage potential at the first end and the second end of said piezoelectric element.

2. The circuit of claim 1 , further comprising an amplifier, wherein said biasing circuit provides a startup time of said piezoelectric element that is faster than a startup time of the amplifier.

3. The circuit of claim 2 , wherein the startup time of said amplifier is at most 1/10th the time derived from an inverse of a high-pass corner frequency.

4. The circuit of claim 3 , further comprising an amplifier and a power supply configured for providing a supply current to the amplifier, wherein the supply current is less than 500 uA.

5. The circuit of claim 4 , wherein a low frequency response of the circuit is −3 dB at 0.3 Hz or lower.

6. The circuit of claim 5 , wherein the amplifier is coupled to the piezoelectric element, and wherein a dynamic range of the amplifier and the piezoelectric element is at least 80 dB.

7. The circuit of claim 6 , wherein said piezoelectric element comprises a piezoelectric crystal with a capacitance of greater than 200 pF.

8. The circuit of claim 7 , wherein said circuit has an operating temperature range of at least −20° C. to +85° C.

9. The circuit of claim 8 , wherein said circuit has a supply voltage of 3-30 VDC.

10. The circuit of claim 1 , wherein said biasing circuit operates said piezoelectric element at zero DC voltage bias during both startup phase and normal operation.

11. The circuit of claim 1 , wherein said biasing scheme avoids charging the piezoelectric element's capacitance.

12. The circuit of claim 1 , wherein a voltage differential across the piezoelectric element is zero or substantially zero.

13. A circuit comprising:

a piezoelectric element having a first end and a second end; and,

a biasing circuit connected to the first end and the second end of said piezoelectric element, said biasing circuit providing a first voltage potential at the first end of said piezoelectric element and a second voltage potential at the second end of said piezoelectric element, wherein the first voltage potential and the second voltage potential are the same or substantially the same so that a voltage differential between the first voltage potential and the second voltage potential is zero or substantially zero,

wherein said biasing circuit has a first end connected to the first end of the piezoelectric element, and a second end; and

a low-pass network having a first end connected to the second end of said biasing circuit and a second end connected to the second end of the piezoelectric element.

14. The circuit of claim 13 , further comprising:

an op-amp having a positive input connected to the first end of said piezoelectric element and the first end of said biasing circuit, a negative input connected to the second end of said biasing circuit and the first end of said low-pass network.

15. The circuit of claim 14 , further comprising:

a high-pass network having a first end connected to an output of said op-amp, and a second end connected to the negative input of said op-amp, the second end of said biasing circuit, and the first end of said low-pass network.

16. The circuit of claim 15 , further comprising:

a reference voltage having a first end and a second end applied to the first end of said piezoelectric element, the first end of said biasing circuit, and the positive input of said op-amp; and

a positive voltage applied to the op-amp and to the first end of said reference voltage.

17. A circuit comprising:

a piezoelectric element having a first end and a second end; and,

a biasing network having a first end directly connected to the first end of the piezoelectric element, and a second end;

an op-amp having a positive input directly connected to the first end of said piezoelectric element and the first end of said biasing network, a negative input directly connected to the second end of said biasing network; and

a high-pass network having a first end directly connected to an output of said op-amp, and a second end directly connected to the negative input of said op-amp and the second end of said biasing network;

wherein a same voltage potential is provided at the first end and the second end of said piezoelectric element.

18. The circuit of claim 17 , whereby the op-amp has an output, and stabilization of the op-amp output is decoupled from characteristic frequency of the high-pass filter.

19. The circuit of claim 18 , where stabilization is achieved through minimal DC bias on the piezoelectric element.

20. The circuit of claim 17 , further comprising:

a low-pass network having a first end directly connected to the second end of said biasing network and a second end directly connected to the second end of the piezoelectric element;

wherein the negative input of said op-amp is connected to the first end of the low-pass network, and the second end of said high-pass network is directly connected to the first end of said low-pass network.

21. The circuit of claim 17 , further comprising:

a reference voltage directly applied to the first end of said piezoelectric element, the first end of said biasing network, and the positive input of said op-amp; and

a positive voltage directly applied to the op-amp and the first end of said reference voltage.

22. The circuit of claim 17 , said biasing circuit providing a same or substantially same voltage potential at the first end and the second end of said piezoelectric element.

Assignments (2)
CHANGE OF NAME Recorded Aug 25, 2017
From: MEGGITT (MARYLAND), INC.
To: AMPHENOL (MARYLAND), INC.
Reel/Frame 043678/0699 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2014
From: MCLEAN, CHRISTOPHER E.; HSU, LEI
To: MEGGITT (MARYLAND), INC.
Reel/Frame 033148/0388 →
Continuity (1)
Provisional Application 61715633 · Oct 18, 2012