Embodiments of the present invention are directed to piezoelectric sensors and, more particularly, to differential piezoelectric sensors with improved range and reduced out of axis sensitivity and sensor offset.
Inertial sensors, such as accelerometers, have wide applications in many industries. Most notable perhaps being in the aerospace, military, and automotive industries. More recently, they may be found in computer video game controllers where the controller senses user body movements.
One type of traditional accelerometer is the mercury switch. Typically this comprises a sealed tube containing a pair of electrodes and a small amount of mercury. When the tube is tilted or the mercury otherwise accelerated it makes contact with the electrodes and completes an electrical circuit. This may be considered a type of one-bit accelerometer; one bit, because it's either on or off. Unfortunately, mercury is toxic and containment may be an issue. Further, such switches are relatively large, and cannot be fabricated by photolithography.
Accelerometers may be used to measure acceleration, vibration, and mechanical shock etc. Single-axis, dual-axis, and triple-axis accelerometers are available to measure acceleration as a vector quantity in one or more dimensions. Modern accelerometers may be fabricated as micro electro-mechanical system (MEMS) devices. MEMS accelerometers typically comprise a suspended cantilever beam or proof mass with some type of deflection sensing circuitry. As forces cause the accelerometer to accelerate/decelerate, inertia may cause the cantilever or proof mass to deflect relative to the frame or supporting structure of the rest of the device. The deflection quantity and direction may be sensed and measured to provide an acceleration vector.
Referring now to
As shown in
The above design may have several drawbacks. First, depending on the selected piezoelectric material, the piezoelectric sensitivity changes which results in a limited/reduced dynamic range. Thus, it may be beneficial to increase the overall signal-to-noise ratio (SNR) of the piezoelectric MEMS sensors.
Second, as shown in
Finally, any mismatch due to the processing causes C1≠C2≠C3≠ . . . ≠C8. As a result one obtains a charge difference/imbalance (|Q1|≠|Q2|) resulting in an offset voltage at the output of the succeeding charge-to-voltage converter. In addition, the sensor gets sensitive to out-off-axis accelerations since these portions did not cancel due to ΔCx and ΔCy.
The foregoing and a better understanding of the present invention may become apparent from the following detailed description of arrangements and example embodiments and the claims when read in connection with the accompanying drawings, all forming a part of the disclosure of this invention. While the foregoing and following written and illustrated disclosure focuses on disclosing arrangements and example embodiments of the invention, it should be clearly understood that the same is by way of illustration and example only and the invention is not limited thereto.
Described is MEMS sensor having increased overall dynamic range by varying the overall signal and feedback gain depending on the incoming signal/acceleration. A simple digital gain adjustment block forms an active feedback loop to the sensor such that depending on the internal signal levels of the decimator the number of sensing capacitors and feedback capacitors are altered.
Embodiments comprise techniques that improve upon current state-of-the-art sensor design with feedback schemes. First is a time-sharing technique that subdivides the sample period into a sense part where the capacitors are used for acceleration sensing, and a feedback part where the capacitors are used to feed back a reference voltage. Secondly parts of the sensor capacitors are used for sensing the acceleration while the other ones feedback the DAC signals. By using a switching sequence any mismatch term is canceled in first order in the time domain.
Reference throughout this specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, the appearances of the phrases “in one embodiment” or “in an embodiment” in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
Rather than using all eight capacitors for sensing, half of the capacitors are used for sensing and the other half of the capacitors are used for feedback 302. As shown, in this example the outer capacitors C5-C8 are used for sensing 300 and the inner capacitors C1-C4 are used for feedback 302. In addition, each capacitor C1-C8 may comprise a switch 304. Output from the sensing capacitors 304 is the input Qin to a ΣΔ feedback loop 306. The feedback loop 306 may comprise a loop filter 310 and analog-to-digital converter 312 and a digital to analog converter 314 to feed the signal back to the feedback capacitors 304. The output of the analog-to-digital converter 312 is input into a decimator and gain adjustment block 316. The decimator and gain adjustment block 316 then outputs switching signals 318 to connect or disconnect selected capacitors C1-C8 using the switches 304.
As shown, the loop 306 may vary the overall signal and feedback gain. The digital decimator and gain adjustment block 316 forms an active feedback loop to the sensor such that depending on the internal signal levels of the decimator 316 the number of sensing capacitors 300 and feedback capacitors 302 is altered to thus increase the overall signal to noise ratio (SNR). Adjustable sensor gain/sensitivity allows varying the overall input and feedback signal amplitude by changing dynamically the number of used capacitors. The gain adjustment is driven by a digital block that includes the decimation filter 316 such that the actual maximum amplitude is known so that by feeding back this information a maximal SNR improvement of (2 bit) or 12 dB is feasible.
Since the sensor has four capacitors used for sensing 300, the maximal improvement is a factor of four which results in a two bit (or 12 dB) increase SNR. As shown in
As noted above, the sensor as shown in
As shown in
In another embodiment as shown in
Here, two sensor ports V1 and V2 are obtained from capacitors C1-C2 and C5-C6, respectively. Similarly, C7-C8 and C3-C4 may be used to feedback a positive reference voltage Vrefp and Vrefn, respectively. As a result a simultaneous read and feedback may be obtained.
In yet another embodiment, as shown in
This problem may be addressed using a sensor architecture shown in
The proposed embodiments may be advantageous because they extend dynamic range but do not require a new sensor design nor increase the overall the hardware effort. The proposed techniques and fully differential sensor designs for simultaneous sensing and feedback do not require any additional hardware. The resulting errors due to offset components (due to ΔC and ΔForce) and increased out-of-axis (x and y-components) are canceled over time. This is possible, since high oversampling ratios (OSR) may be used, such that in average the errors are canceled.
The above description of illustrated embodiments of the invention, including what is described in the Abstract, is not intended to be exhaustive or to limit the invention to the precise forms disclosed. While specific embodiments of, and examples for, the invention are described herein for illustrative purposes, various equivalent modifications are possible within the scope of the invention, as those skilled in the relevant art will recognize.
These modifications can be made to the invention in light of the above detailed description. The terms used in the following claims should not be construed to limit the invention to the specific embodiments disclosed in the specification and the claims. Rather, the scope of the invention is to be determined entirely by the following claims, which are to be construed in accordance with established doctrines of claim interpretation.
Number | Name | Date | Kind |
---|---|---|---|
3797320 | Clampitt | Mar 1974 | A |
4483194 | Rudolf | Nov 1984 | A |
4764748 | Geen et al. | Aug 1988 | A |
4839650 | Geen et al. | Jun 1989 | A |
5353641 | Tang | Oct 1994 | A |
5440939 | Barny et al. | Aug 1995 | A |
5447068 | Tang | Sep 1995 | A |
5473946 | Wyse et al. | Dec 1995 | A |
5600066 | Torregrosa | Feb 1997 | A |
6035694 | Dupuie et al. | Mar 2000 | A |
6035714 | Yazdi et al. | Mar 2000 | A |
6301965 | Chu et al. | Oct 2001 | B1 |
6386032 | Lemkin et al. | May 2002 | B1 |
6674383 | Horsley et al. | Jan 2004 | B2 |
6868726 | Lemkin et al. | Mar 2005 | B2 |
6933873 | Horsley et al. | Aug 2005 | B1 |
7042288 | Matsui et al. | May 2006 | B2 |
7337671 | Ayazi et al. | Mar 2008 | B2 |
7409862 | Derbyshire | Aug 2008 | B2 |
7617729 | Axelrod et al. | Nov 2009 | B2 |
7757393 | Ayazi et al. | Jul 2010 | B2 |
7865337 | Hammerschmidt | Jan 2011 | B2 |
8220328 | Rudolf et al. | Jul 2012 | B2 |
20020175692 | Lasalandra et al. | Nov 2002 | A1 |
20030137221 | Radziemski et al. | Jul 2003 | A1 |
20040046484 | Schiller | Mar 2004 | A1 |
20040075498 | Matsui et al. | Apr 2004 | A1 |
20040212280 | Radziemski et al. | Oct 2004 | A1 |
20050206275 | Radziemski et al. | Sep 2005 | A1 |
20070163815 | Ungaretti et al. | Jul 2007 | A1 |
20070193355 | Axelrod et al. | Aug 2007 | A1 |
Number | Date | Country | |
---|---|---|---|
20090241666 A1 | Oct 2009 | US |