WO2017083679A1 - Method and apparatus to increase audio band microphone sensitivity - Google Patents

Method and apparatus to increase audio band microphone sensitivity Download PDF

Info

Publication number
WO2017083679A1
WO2017083679A1 PCT/US2016/061572 US2016061572W WO2017083679A1 WO 2017083679 A1 WO2017083679 A1 WO 2017083679A1 US 2016061572 W US2016061572 W US 2016061572W WO 2017083679 A1 WO2017083679 A1 WO 2017083679A1
Authority
WO
WIPO (PCT)
Prior art keywords
amplifier
microphone
output
electro
pass filter
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2016/061572
Other languages
French (fr)
Inventor
Dean Badillo
Michael Jennings
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Knowles Electronics LLC
Original Assignee
Knowles Electronics LLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Knowles Electronics LLC filed Critical Knowles Electronics LLC
Priority to US15/775,417 priority Critical patent/US10616691B2/en
Publication of WO2017083679A1 publication Critical patent/WO2017083679A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
    • H04R19/00Electrostatic transducers
    • H04R19/04Microphones
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
    • H04R29/00Monitoring arrangements; Testing arrangements
    • H04R29/004Monitoring arrangements; Testing arrangements for microphones
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
    • H04R3/00Circuits for transducers
    • H04R3/04Circuits for transducers for correcting frequency response
    • H04R3/06Circuits for transducers for correcting frequency response of electrostatic transducers
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03FAMPLIFIERS
    • H03F2200/00Indexing scheme relating to amplifiers
    • H03F2200/03Indexing scheme relating to amplifiers the amplifier being designed for audio applications
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
    • H04R2410/00Microphones
    • H04R2410/03Reduction of intrinsic noise in microphones

Definitions

  • Microphones e.g., MEMS capacitor mics
  • MEMS capacitor mics typically convert sound pressure to electrical signals.
  • the corresponding conversion factor is often referred to as the microphone's sensitivity. That sensitivity typically varies with frequency.
  • microphones have a relatively flat response at audio frequencies while exhibiting a significant peak in the ultrasonic region due to mechanical resonances of the sensor.
  • FIG. 1 illustrates a schematic diagram as configured in accordance with the prior art
  • FIG. 2 illustrates a graph as configured in accordance with the prior art
  • FIG. 3 illustrates a flow diagram as configured in accordance with various embodiments of these teachings
  • FIG. 4 illustrates a block diagram as configured in accordance with various embodiments of these teachings
  • FIG. 5 illustrates a graph as configured in accordance with various
  • FIG. 6 illustrates a schematic diagram as configured in accordance with various embodiments of these teachings.
  • FIG. 7 is a flow chart illustrating one example of a method in accordance with the disclosure.
  • a microphone circuit having an amplifier with an input operably coupled to a microphone motor also includes a low pass filter operably coupled to the output of the amplifier and a positive feedback network that operably couples to output of the low-pass filter and to the microphone motor.
  • the aforementioned amplifier has unity gain while the positive feedback network has a fractional gain less than unity.
  • a method of operating a microphone amplifier circuit includes producing an amplified microphone signal by amplifying an electro-acoustic sensor output signal with an amplifier. The method also includes producing a filtered microphone output signal by filtering, using a low pass filter, the amplified microphone signal and feeding back the filtered microphone output signal to the electro acoustic sensor using a positive feedback network.
  • the amplifier has unity gain.
  • the positive feedback network has a fractional gain less than unity.
  • an electro-mechanical transducer assembly includes an electro-acoustic sensor and an amplifier circuit.
  • the amplifier circuit includes an amplifier having an input and an output, the input operably coupled to the electro-acoustic sensor.
  • the amplifier circuit includes a low pass filter having an input and an output, the input operably coupled to the output of the amplifier and a positive feedback network operably coupled to the output of the low-pass filter and to the electro-acoustic sensor.
  • the amplifier has unity gain.
  • the positive feedback network has a fractional gain less than unity.
  • the positive feedback network includes a feedback capacitor operatively coupled to the low pass filter and a bias filter capacitor operatively coupled to the feedback capacitor and to the electro-acoustic sensor.
  • a microphone amplifier circuit includes an amplifier having an first input and a first output, the first input configured to couple to a output of a microphone motor, a low pass filter having an second input and a second output, the second input operably coupled to the first output of the amplifier, and a positive feedback network operatively coupled to the second output of the low-pass filter and configured to couple to an input of the microphone.
  • the amplifier has unity gain.
  • the positive feedback network has a fractional gain less than unity.
  • the positive feedback network includes a feedback capacitor operatively coupled to the second output of the low pass filter and a bias capacitor operatively coupled to the feedback capacitor and configured to couple to the input one plate of the microphone motor.
  • part of the aforementioned circuit serves to boost gain while another part of the circuit provides low frequency filtering that attenuates the boosting of ultrasonic portions of the signal.
  • Such a circuit can serve to boost sensitivity in the audio band without also boosting sensitivity in the ultrasonic band.
  • FIG. 1 presents a simple microphone model 100 as typifies the prior art of an electro-mechanical transducer assembly such as a MEMS capacitor microphone assembly.
  • the microphone sensor (also often referred to as the motor or an electo-acoustic sensor) 101 is represented by a variable capacitor with a high impedance 103 bias voltage 104 applied to one plate. This plate is free to move with sound pressure and is often referred to as the diaphragm.
  • the second plate of the capacitor is immobile and connects to the input of an amplifier 102.
  • the input of the amplifier 102 is biased through a high impedance (not shown) to ground although another voltage (not shown) can be used if desired.
  • the amplifier 102 has unity gain.
  • FIG. 2 presents a graph 200 depicting typical sensitivity for such a prior art microphone.
  • This sensitivity includes a relatively flat region 201 that occurs at audio frequencies (i.e., between about 20 Hz and 20 kHz).
  • This sensitivity also exhibits a sharp peak 202 in the ultrasonic region. As mentioned above, that sensitivity in the ultrasonic region can lead to objectionable audible distortion.
  • a straight forward method of increasing the sensitivity in the audio band without increasing the ultrasonic sensitivity is to insert a filter between the motor and the amplifier. If the filter is low pass and amplifier gain is greater than one, then the desired sensitivity modifications can be achieved. In practice however this is difficult to implement.
  • the variable motor capacitance is on the order of lpF, any low pass filter between the motor and the amplifier requires a capacitance ⁇ 0. lpF or else suffer an undesirable reduction in audio band sensitivity.
  • an enormous resistance is needed. The consequential thermal noise of adding large resistance dramatically decreases the dynamic range and signal to noise ratio of the microphone.
  • a unity gain amplifier can be implemented in its simplest form with a single transistor (i.e. a source follower MOSFET).
  • High gain generally require more circuitry, which requires more current and adds more noise, both which are preferably avoided.
  • FIG. 3 presents an illustrative process 300 that is compatible with overcoming one or more of the above drawbacks.
  • this process 300 provides an amplifier having an input that operably couples to a microphone motor.
  • the output of that amplifier is coupled to the output of a low-pass filter.
  • the output of that low- pass filter is operably coupled to a positive feedback network.
  • the output of that positive feedback network operably couples to the microphone motor.
  • FIG. 4 presents an illustrative block diagram 400 example in the foregoing regards.
  • the microphone amplifier 102 has a gain A (which is presumed here to constitute a unity gain).
  • the output of this amplifier 102 connects to a low- pass filter 401 having a corresponding transfer function H(jco).
  • the output of the low-pass filter 401 connects to a positive feedback network 402 having a gain of ⁇ .
  • the output of the positive feedback network 402 is applied to the microphone motor, which is represented by a summing block 403.
  • the output 404 of this overall circuit comprises the output of the low- pass filter 401.
  • the first term in the foregoing equation corresponds to the gain boosting.
  • the second term represents the low frequency filtering that attenuates the boost at ultrasonic frequencies.
  • the present teachings result in a lower ultrasonic peak than typical prior art approaches.
  • the audio band sensitivity will increase by a factor of 2 (which corresponds to an increase of 6dB) without a concurrent boost to the amplitude of the ultrasonic band.
  • FIG. 6 presents a more specific implementation in these regards. It will be understood that the specific details of this particular circuit 600 are not to be taken as indicating any particular limitations as this circuit 600 is intended instead to serve as an illustrative example.
  • the aforementioned low-pass filter 401 includes a resistor 601 in combination with a capacitor 602.
  • the aforementioned positive feedback network 402 includes a pair of capacitors that include feedback capacitor 603 and bias capacitor 604.
  • the feedback capacitor has a node coupled to the low pass filter and in particular to the resistor 601 and capacitor 602.
  • the feedback capacitor has another node coupled to a node of the bias capacitor 604.
  • the bias capacitor has another node coupled to ground.
  • the signal passing through the feedback capacitor 603 from the low pass filter is fed back to the electro-acoustic sensor 101 via the summing block 403.
  • the resistor 401 may be 4k ohms
  • the capacitor 602 may be 3.3 nanofarads
  • the feedback capacitor 603 and bias capacitor 604 may be 17 picofarads.
  • the summing block 403 also illustrates modeling of the sound pressure displacement of the motor diaphragm.
  • the 102 produces 701 an amplified microphone signal by amplifying an electro-acoustic sensor output signal.
  • the microphone amplifier buffers a low impedance coupling with another component that receives the amplified microphone signal (not shown).
  • the amplified microphone signal is provided to the low pass filter 401.
  • the low pass filter 401 produces 702 a filtered microphone output signal by filtering the amplified microphone signal the filtered microphone output signal is provided to the positive feedback network 402 and in this example to feedback capacitor 603.
  • the filtered microphone output signal (MIC out) is fed back through the positive feedback network 402 to the electro acoustic sensor 101.
  • Cm is the microphone variable capacitance
  • Vb is the bias voltage
  • Rp is the bias impedance
  • Cp and Cb form the feedback network
  • Rf and Cf form the low pass filter.
  • the amplifier in this example has unity gain.
  • the summing block is added to model the sound pressure displacement of the motor diaphragm.

Landscapes

  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Acoustics & Sound (AREA)
  • Signal Processing (AREA)
  • Health & Medical Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Otolaryngology (AREA)
  • Circuit For Audible Band Transducer (AREA)
  • Electrostatic, Electromagnetic, Magneto- Strictive, And Variable-Resistance Transducers (AREA)

Abstract

A microphone circuit having an amplifier with an input operably coupled to a microphone motor also includes a low pass filter operably coupled to the output of the amplifier and a positive feedback network that operably couples to an output of the low-pass filter and to the amplifier input. For many useful application settings the aforementioned amplifier has unity gain while the positive feedback network has a fractional gain less than unity.

Description

METHOD AND APPARATUS TO INCREASE
AUDIO BAND MICROPHONE SENSITIVITY
RELATED APPLICATIONS
[0001] This application claims benefits under 35 U.S.C. 119(e) to Provisional
Application Serial No. 62/254,449, filed on November 12, 2015, having inventors Michael Jennings et al., titled "METHOD AND APPARATUS TO INCREASE AUDIO BAND MICROPHONE SENSITIVITY", and is incorporated herein by reference.
TECHNICAL FIELD
[0002] These teachings relate generally to microphones and more particularly to microphone sensitivity.
BACKGROUND
[0003] Microphones (e.g., MEMS capacitor mics) are known in the art and typically convert sound pressure to electrical signals. The corresponding conversion factor is often referred to as the microphone's sensitivity. That sensitivity typically varies with frequency. In many cases microphones have a relatively flat response at audio frequencies while exhibiting a significant peak in the ultrasonic region due to mechanical resonances of the sensor.
Although such peaks occur in the inaudible ultrasonic region, such peaks can nevertheless result in audible distortion.
[0004] In some application settings it can be desirable to increase a microphone's sensitivity. Unfortunately, typical approaches for boosting sensitivity in the audio band also boost sensitivity in the ultrasonic band. As a result, boosting sensitivity can result in increased unwanted audible distortion due to boosted peaks in the ultrasonic band.
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] The above needs are at least partially met through provision of the method and apparatus to increase audio band microphone sensitivity described in the following detailed description, particularly when studied in conjunction with the drawings, wherein:
[0006] FIG. 1 illustrates a schematic diagram as configured in accordance with the prior art;
[0007] FIG. 2 illustrates a graph as configured in accordance with the prior art; [0008] FIG. 3 illustrates a flow diagram as configured in accordance with various embodiments of these teachings;
[0009] FIG. 4 illustrates a block diagram as configured in accordance with various embodiments of these teachings;
[0010] FIG. 5 illustrates a graph as configured in accordance with various
embodiments of these teachings;
[0011] FIG. 6 illustrates a schematic diagram as configured in accordance with various embodiments of these teachings; and
[0012] FIG. 7 is a flow chart illustrating one example of a method in accordance with the disclosure.
[0013] Elements in the figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, the dimensions and/or relative positioning of some of the elements in the figures may be exaggerated relative to other elements to help to improve understanding of various embodiments of the present teachings. Also, common but well-understood elements that are useful or necessary in a commercially feasible embodiment are often not depicted in order to facilitate a less obstructed view of these various
embodiments of the present teachings. Certain actions and/or steps may be described or depicted in a particular order of occurrence while those skilled in the art will understand that such specificity with respect to sequence is not actually required. The terms and expressions used herein have the ordinary technical meaning as is accorded to such terms and expressions by persons skilled in the technical field as set forth above except where different specific meanings have otherwise been set forth herein.
DETAILED DESCRIPTION
[0014] Generally speaking, pursuant to these various embodiments, a microphone circuit having an amplifier with an input operably coupled to a microphone motor also includes a low pass filter operably coupled to the output of the amplifier and a positive feedback network that operably couples to output of the low-pass filter and to the microphone motor. For many useful application settings the aforementioned amplifier has unity gain while the positive feedback network has a fractional gain less than unity.
[0015] In one example, a method of operating a microphone amplifier circuit includes producing an amplified microphone signal by amplifying an electro-acoustic sensor output signal with an amplifier. The method also includes producing a filtered microphone output signal by filtering, using a low pass filter, the amplified microphone signal and feeding back the filtered microphone output signal to the electro acoustic sensor using a positive feedback network.
[0016] In one example, the amplifier has unity gain. In one example, the positive feedback network has a fractional gain less than unity. In one example, the microphone has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network, wherein H(jco)=l/(jco/cop+l) such that
Mic_out , A 1
( ω ) = r— .
In 'J 1 - βΑ}<*> ,
' ωρζί - βΑ) ^
[0017] In one example, an electro-mechanical transducer assembly includes an electro-acoustic sensor and an amplifier circuit. The amplifier circuit includes an amplifier having an input and an output, the input operably coupled to the electro-acoustic sensor. The amplifier circuit includes a low pass filter having an input and an output, the input operably coupled to the output of the amplifier and a positive feedback network operably coupled to the output of the low-pass filter and to the electro-acoustic sensor.
[0018] In one example the amplifier has unity gain. In one example, the positive feedback network has a fractional gain less than unity. In one example, the electro-acoustic sensor has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network, wherein H(jco)=l/(jco/cop+l) such that
Mic_out A 1
(jio ) = ... .
In ^ J l - βΑ ΐω ? .
[0019] In one example, the positive feedback network includes a feedback capacitor operatively coupled to the low pass filter and a bias filter capacitor operatively coupled to the feedback capacitor and to the electro-acoustic sensor.
[0020] In one example, a microphone amplifier circuit includes an amplifier having an first input and a first output, the first input configured to couple to a output of a microphone motor, a low pass filter having an second input and a second output, the second input operably coupled to the first output of the amplifier, and a positive feedback network operatively coupled to the second output of the low-pass filter and configured to couple to an input of the microphone.
[0021] In one example, the amplifier has unity gain. In one example, the positive feedback network has a fractional gain less than unity. In one example, the circuit has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network wherein H(jco)=l/(jco/cop+l) such that
Micjout ., . A 1
(|6 ) = —
In υ Ι - βΑΐω^
[0022] In one example, the positive feedback network includes a feedback capacitor operatively coupled to the second output of the low pass filter and a bias capacitor operatively coupled to the feedback capacitor and configured to couple to the input one plate of the microphone motor.
[0023] So configured, part of the aforementioned circuit serves to boost gain while another part of the circuit provides low frequency filtering that attenuates the boosting of ultrasonic portions of the signal. Such a circuit can serve to boost sensitivity in the audio band without also boosting sensitivity in the ultrasonic band. Those skilled in the art will appreciate that these teachings do not require use of a high-gain amplifier and accordingly can avoid any corresponding additional noise or current consumption attributable to such a component.
[0024] These and other benefits may become clearer upon making a thorough review and study of the following detailed description. Referring now to the drawings, and in particular to FIGS. 1 and 2, it may be helpful to first briefly recount certain characterizing features and attributes of prior art practice in these regards.
[0025] FIG. 1 presents a simple microphone model 100 as typifies the prior art of an electro-mechanical transducer assembly such as a MEMS capacitor microphone assembly. The microphone sensor (also often referred to as the motor or an electo-acoustic sensor) 101 is represented by a variable capacitor with a high impedance 103 bias voltage 104 applied to one plate. This plate is free to move with sound pressure and is often referred to as the diaphragm. The second plate of the capacitor is immobile and connects to the input of an amplifier 102. The input of the amplifier 102 is biased through a high impedance (not shown) to ground although another voltage (not shown) can be used if desired. The amplifier 102 has unity gain.
[0026] FIG. 2 presents a graph 200 depicting typical sensitivity for such a prior art microphone. This sensitivity includes a relatively flat region 201 that occurs at audio frequencies (i.e., between about 20 Hz and 20 kHz). This sensitivity also exhibits a sharp peak 202 in the ultrasonic region. As mentioned above, that sensitivity in the ultrasonic region can lead to objectionable audible distortion.
[0027] A straight forward method of increasing the sensitivity in the audio band without increasing the ultrasonic sensitivity (or even attenuating it), is to insert a filter between the motor and the amplifier. If the filter is low pass and amplifier gain is greater than one, then the desired sensitivity modifications can be achieved. In practice however this is difficult to implement. First, because the variable motor capacitance is on the order of lpF, any low pass filter between the motor and the amplifier requires a capacitance <0. lpF or else suffer an undesirable reduction in audio band sensitivity. Now in order to realize a filter with a pole at the upper audio band, for example lOKHz, an enormous resistance is needed. The consequential thermal noise of adding large resistance dramatically decreases the dynamic range and signal to noise ratio of the microphone. The second challenge of implement the system in Figure 3 is the potential complexity of a high gain amplifier design. A unity gain amplifier can be implemented in its simplest form with a single transistor (i.e. a source follower MOSFET). High gain generally require more circuitry, which requires more current and adds more noise, both which are preferably avoided.
[0028] Another approach to place the low pass filter after the amplifier. The benefit here is that because the filter no longer loads the motor, the low capacitance constraint is removed and the filter noise can be greatly reduced. However, now the amplifier sees the high ultrasonic output that was previously filtered in the approach where the LPF was placed in front of the amplifier. Large ultrasonic signals can cause the amplifier to produce unwanted audible distortion. The previously mentioned drawbacks of including a high gain amplifier also apply here.
[0029] FIG. 3 presents an illustrative process 300 that is compatible with overcoming one or more of the above drawbacks. At block 301 this process 300 provides an amplifier having an input that operably couples to a microphone motor. At block 302 the output of that amplifier is coupled to the output of a low-pass filter. At block 303 the output of that low- pass filter is operably coupled to a positive feedback network. And at block 304 the output of that positive feedback network operably couples to the microphone motor.
[0030] FIG. 4 presents an illustrative block diagram 400 example in the foregoing regards. In this illustrative example the microphone amplifier 102 has a gain A (which is presumed here to constitute a unity gain). The output of this amplifier 102 connects to a low- pass filter 401 having a corresponding transfer function H(jco). The output of the low-pass filter 401 connects to a positive feedback network 402 having a gain of β. The output of the positive feedback network 402 is applied to the microphone motor, which is represented by a summing block 403. The output 404 of this overall circuit comprises the output of the low- pass filter 401.
[0031] The transfer function, Mic_out/In, of the closed loop system shown in FIG. 4 is Α*Η(]ω)/(1+β*Α*Η(]ω)). If Η(]ω)=1/(]ω/ωρ+1) then
Mic_out A. 1
hi ύ = Τ^βΛ ^ 77
? ωρ(1 - βΑ) '
The first term in the foregoing equation corresponds to the gain boosting. The second term represents the low frequency filtering that attenuates the boost at ultrasonic frequencies.
[0032] A graph 500 comparing the results of the above-described gain boosting technique as generally compared to traditional methods appears in FIG. 5. A typical peak 501 in the ultrasonic region appears as a phantom line. The same peak 502 as occurs in accordance with the above-described teachings appears as a solid line.
[0033] Those skilled in the art will appreciate that the present teachings do not adversely impact sensitivity in the audio band as compared to prior art practices but greatly reduce the ultrasonic peak and hence results in less audible distortion as a result.
Accordingly, for an equal audio band sensitivity increase and equal filtering, the present teachings result in a lower ultrasonic peak than typical prior art approaches.
[0034] As one example in these regards, when the microphone amplifier 102 has unity gain and the gain β of the positive feedback network 402 is ½, the audio band sensitivity will increase by a factor of 2 (which corresponds to an increase of 6dB) without a concurrent boost to the amplitude of the ultrasonic band.
[0035] FIG. 6 presents a more specific implementation in these regards. It will be understood that the specific details of this particular circuit 600 are not to be taken as indicating any particular limitations as this circuit 600 is intended instead to serve as an illustrative example.
[0036] In this illustrative example the aforementioned low-pass filter 401 includes a resistor 601 in combination with a capacitor 602. The aforementioned positive feedback network 402, in turn, includes a pair of capacitors that include feedback capacitor 603 and bias capacitor 604. As shown, the feedback capacitor has a node coupled to the low pass filter and in particular to the resistor 601 and capacitor 602. The feedback capacitor has another node coupled to a node of the bias capacitor 604. The bias capacitor has another node coupled to ground. The signal passing through the feedback capacitor 603 from the low pass filter is fed back to the electro-acoustic sensor 101 via the summing block 403. Any suitable values may be used and in one example, the resistor 401 may be 4k ohms, the capacitor 602 may be 3.3 nanofarads and the feedback capacitor 603 and bias capacitor 604 may be 17 picofarads. The summing block 403 also illustrates modeling of the sound pressure displacement of the motor diaphragm.
[0037] As illustrated by the circuit of FIG. 6 and as shown, in FIG. 7. The amplifier
102 produces 701 an amplified microphone signal by amplifying an electro-acoustic sensor output signal. The microphone amplifier buffers a low impedance coupling with another component that receives the amplified microphone signal (not shown). The amplified microphone signal is provided to the low pass filter 401. The low pass filter 401 produces 702 a filtered microphone output signal by filtering the amplified microphone signal the filtered microphone output signal is provided to the positive feedback network 402 and in this example to feedback capacitor 603. The filtered microphone output signal (MIC out) is fed back through the positive feedback network 402 to the electro acoustic sensor 101.
[0038] The transfer function of the implementation presented in FIG. 6 can be show to be
SPLJn
Mic o t
Figure imgf000008_0001
[0039] Here Cm is the microphone variable capacitance, Vb is the bias voltage, Rp is the bias impedance, Cp and Cb form the feedback network and Rf and Cf form the low pass filter. The amplifier in this example has unity gain. The summing block is added to model the sound pressure displacement of the motor diaphragm. These teachings provide for amplifying the sensitivity of a microphone in the audio band without increasing sensitivity at ultrasonic frequencies. In addition, a high gain amplifier is not needed thus avoiding any additional noise or current consumption. These teachings can be readily employed in a cost- effective manner and without unduly burdening form factor or space requirements.
[0040] Those skilled in the art will recognize that a wide variety of modifications, alterations, and combinations can be made with respect to the above described embodiments without departing from the scope of the invention, and that such modifications, alterations, and combinations are to be viewed as being within the ambit of the inventive concept.

Claims

What is claimed is:
1. A method of operating a microphone amplifier circuit, the method comprising: producing an amplified microphone signal by amplifying an electro-acoustic sensor output signal with an amplifier;
producing a filtered microphone output signal by filtering the amplified microphone signal using a low pass filter; and
feeding back the filtered microphone output signal to the electro acoustic sensor using a positive feedback network.
2. The method of claim 1 wherein the amplifier has unity gain.
3. The method of claim2 wherein the positive feedback network has a fractional gain less than unity.
4. The method of claim 1 wherein the microphone has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network.
5. The method of claim 4 wherein H(jco)=l/(jco/cop+l) such that
Figure imgf000010_0001
6. An electro-mechanical transducer assembly comprising:
an electro-acoustic sensor; and
an amplifier circuit comprising:
an amplifier having an input and an output, the input operably coupled to the electro-acoustic sensor;
a low pass filter having an input and an output, the input operably coupled to the output of the amplifier; and
a positive feedback network operably coupled to the output of the low-pass filter and to the electro-acoustic sensor.
7. The electro-mechanical transducer assembly of claim 6 wherein the amplifier has unity gain.
8. The electro-mechanical transducer assembly of claim 7 wherein the positive feedback network has a fractional gain less than unity.
9. The electro-mechanical transducer assembly of claim 6 wherein the electro- acoustic sensor has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network.
10. The electro-mechanical transducer assembly of claim 9 wherein
Figure imgf000011_0001
Mic out A 1
7n ~ 1 - 8Λ jo , ~
ί<αρ{ί - βΑ) ~
11. The electro-mechanical transducer assembly of claim 6 wherein the positive feedback network comprises a feedback capacitor operatively coupled to the low pass filter and a bias filter capacitor operatively coupled to the feedback capacitor and to the electro- acoustic sensor.
12. A microphone amplifier circuit comprising:
an amplifier having an first input and a first output, the first input configured to couple to a output of a microphone motor;
a low pass filter having an second input and a second output, the second input operably coupled to the first output of the amplifier; and
a positive feedback network operatively coupled to the second output of the low-pass filter and configured to couple to an input of the microphone.
13. The microphone amplifier circuit of claim 12 wherein the amplifier has unity gain.
14. The microphone amplifier circuit of claim 13 wherein the positive feedback network has a fractional gain less than unity.
15. The microphone amplifier circuit of claim 12 wherein the circuit has a transfer function comprising Α*Η(]ω)/(1+β*Α*Η(]ω)), where A represents gain for the amplifier, H(jco) represents a transfer function of the low-pass filter, and β represents gain of the positive feedback network.
16. The microphone amplifier circuit of claim 15 wherein H(jco)=l/(jco/cop+l) such that
Mic out A 1
7n ~ 1 - 8Λ jo , ~
ί<αρ{ί - βΑ) ~
17. The microphone amplifier circuit of claim 12 wherein the positive feedback network comprises a feedback capacitor operatively coupled to the second output of the low pass filter and a bias capacitor operatively coupled to the feedback capacitor and configured to couple to one plate of the microphone motor.
PCT/US2016/061572 2015-11-12 2016-11-11 Method and apparatus to increase audio band microphone sensitivity Ceased WO2017083679A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US15/775,417 US10616691B2 (en) 2015-11-12 2016-11-11 Method and apparatus to increase audio band microphone sensitivity

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201562254449P 2015-11-12 2015-11-12
US62/254,449 2015-11-12

Publications (1)

Publication Number Publication Date
WO2017083679A1 true WO2017083679A1 (en) 2017-05-18

Family

ID=57394686

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2016/061572 Ceased WO2017083679A1 (en) 2015-11-12 2016-11-11 Method and apparatus to increase audio band microphone sensitivity

Country Status (2)

Country Link
US (1) US10616691B2 (en)
WO (1) WO2017083679A1 (en)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9843292B2 (en) 2015-10-14 2017-12-12 Knowles Electronics, Llc Method and apparatus for maintaining DC bias
WO2019136032A1 (en) * 2018-01-04 2019-07-11 Knowles Electronics, Llc Pressure sensing microphone device
US10516935B2 (en) 2015-07-15 2019-12-24 Knowles Electronics, Llc Hybrid transducer
US10616691B2 (en) 2015-11-12 2020-04-07 Knowles Electronics, Llc Method and apparatus to increase audio band microphone sensitivity
CN115868177A (en) * 2020-05-12 2023-03-28 高通科技公司 Transducer system with three decibel feedback loop

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11042346B2 (en) * 2019-07-30 2021-06-22 International Business Machines Corporation Artificial cochlea
US11536757B2 (en) 2020-06-19 2022-12-27 Knowles Electronics, Llc Capacitive sensor assemblies and electrical circuits therefor

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006229336A (en) * 2005-02-15 2006-08-31 Act Lsi:Kk Capacitive microphone
US20080002841A1 (en) * 2003-07-17 2008-01-03 Baker Michael W Low-power high-PSRR current-mode microphone pre-amplifier system and method
US20110056302A1 (en) * 2008-04-23 2011-03-10 Nxp B.V. Electronic circuit for controlling a capacitive pressure sensor and capacitive pressure sensor system
WO2014107843A1 (en) * 2013-01-08 2014-07-17 Zhihao Yang Condenser microphone and its impedance converter

Family Cites Families (52)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3660772A (en) 1970-05-13 1972-05-02 Hickok Electrical Instr Co The Wide-band direct current coupled amplifier for alternating current utility
CA1024239A (en) 1972-04-17 1978-01-10 Rca Limited Low noise detector amplifier
US3927383A (en) 1972-04-21 1975-12-16 Rca Corp Low noise wide band transducer system
US4063050A (en) 1976-12-30 1977-12-13 Industrial Research Products, Inc. Acoustic transducer with improved electret assembly
US4412097A (en) 1980-01-28 1983-10-25 Victor Company Of Japan, Ltd. Variable-directivity microphone device
JPS5715597A (en) 1980-07-02 1982-01-26 Nippon Gakki Seizo Kk Microphone device
SE436533B (en) 1982-02-08 1984-12-17 Bo Hakansson SET TO MUTE / ELIMINATE TRANSIENT SOUND AND TRANSIENT ELIMINATOR FOR IMPLEMENTATION OF THE SET
FR2522451B1 (en) 1982-03-01 1988-10-14 Audibel IMPROVEMENT IN THE AUTOMATIC GAIN CONTROL CIRCUIT OF A TRANSISTOR AMPLIFICATION SYSTEM AND HEARING CORRECTION APPARATUS PROVIDED WITH SUCH A CIRCUIT
JPS5964994A (en) 1982-10-05 1984-04-13 Matsushita Electric Ind Co Ltd microphone device
US4689819B1 (en) 1983-12-08 1996-08-13 Knowles Electronics Inc Class D hearing aid amplifier
JPS60160711A (en) 1984-01-31 1985-08-22 Matsushita Electric Ind Co Ltd Muting circuit
US4622440A (en) 1984-04-11 1986-11-11 In Tech Systems Corp. Differential hearing aid with programmable frequency response
JPS6220405A (en) 1985-07-18 1987-01-29 Pioneer Electronic Corp Amplification degree adjusting circuit
US4718099A (en) 1986-01-29 1988-01-05 Telex Communications, Inc. Automatic gain control for hearing aid
US5083095A (en) 1990-08-22 1992-01-21 Knowles Electronics, Inc. Plural source follower amplifier
US5255094A (en) 1990-10-10 1993-10-19 Thomson Consumer Electronics, S.A. Muting circuit for eliminating transient signals generated due to power supply turn-on and turn-off
US5097224A (en) 1991-04-11 1992-03-17 Telex Communications, Inc. Self-biasing, low noise amplifier of extended dynamic range
DE69221762T2 (en) 1991-04-18 1998-03-05 Matsushita Electric Ind Co Ltd Microphone apparatus
US5193116A (en) 1991-09-13 1993-03-09 Knowles Electronics, Inc. Hearing and output transducer with self contained amplifier
DE59301227D1 (en) 1992-02-27 1996-02-08 Siemens Audiologische Technik Hearing aid worn on the head
US5337011A (en) 1992-12-14 1994-08-09 Knowles Electronics, Inc. Pre-amplifier
US5446413A (en) 1994-05-20 1995-08-29 Knowles Electronics, Inc. Impedance circuit for a miniature hearing aid
US5757933A (en) 1996-12-11 1998-05-26 Micro Ear Technology, Inc. In-the-ear hearing aid with directional microphone system
KR100198289B1 (en) 1996-12-27 1999-06-15 구자홍 Direction control method and apparatus in microphone system
US6035049A (en) 1997-09-05 2000-03-07 Information Storage Devices, Inc. AC coupling and signal amplification using switched capacitors
US6654468B1 (en) 1998-08-25 2003-11-25 Knowles Electronics, Llc Apparatus and method for matching the response of microphones in magnitude and phase
DE19918883C1 (en) 1999-04-26 2000-11-30 Siemens Audiologische Technik Obtaining directional microphone characteristic for hearing aid
US6353344B1 (en) 2000-05-22 2002-03-05 Microtronic Us, Inc. High impedance bias circuit
US6617925B2 (en) 2001-06-14 2003-09-09 Nurlogic Design, Inc. Method and apparatus for gain compensation and control in low voltage differential signaling applications
US20030128856A1 (en) 2002-01-08 2003-07-10 Boor Steven E. Digitally programmable gain amplifier
US6714081B1 (en) 2002-09-11 2004-03-30 Motorola, Inc. Active current bias network for compensating hot-carrier injection induced bias drift
US20050078841A1 (en) 2003-10-14 2005-04-14 Boor Steven E. Method and apparatus for resetting a buffer amplifier
DE602005010129D1 (en) 2004-01-12 2008-11-20 Sonion As Amplifier circuit for capacitive converters
US20050213787A1 (en) 2004-03-26 2005-09-29 Knowles Electronics, Llc Microphone assembly with preamplifier and manufacturing method thereof
US20050242791A1 (en) 2004-04-30 2005-11-03 Intel Corporation High-speed, dual-loop push-pull voltage regulator
US7323929B2 (en) 2006-03-09 2008-01-29 Analog Devices Inc. Apparatus for and method of biasing a transistor
US7679448B1 (en) 2007-08-30 2010-03-16 Pmc-Sierra, Inc. Continuous wave based bias method and apparatus for minimizing MOS transistor distortion
US7920027B2 (en) 2008-04-07 2011-04-05 Qualcomm Incorporated Amplifier design with biasing and power control aspects
JP5253275B2 (en) * 2009-04-03 2013-07-31 セミコンダクター・コンポーネンツ・インダストリーズ・リミテッド・ライアビリティ・カンパニー Amplifier circuit for condenser microphone
US9166533B2 (en) 2009-07-30 2015-10-20 Qualcomm Incorporated Bias current monitor and control mechanism for amplifiers
US7952431B2 (en) 2009-08-28 2011-05-31 Acco Semiconductor, Inc. Linearization circuits and methods for power amplification
EP2421281A3 (en) 2010-08-17 2012-04-04 Nxp B.V. Circuit and method for monitoring a capacitive signal source
EP2675188B1 (en) * 2012-06-12 2015-08-05 ams AG Sensor arrangement and method for generating an amplified sensor signal
US9748905B2 (en) 2013-03-15 2017-08-29 Qorvo Us, Inc. RF replicator for accurate modulated amplitude and phase measurement
US9362870B2 (en) 2013-08-01 2016-06-07 Skyworks Solutions, Inc. Apparatus and methods for biasing power amplifiers
JP6204772B2 (en) 2013-09-20 2017-09-27 株式会社東芝 Cascode amplifier
US9350300B2 (en) 2014-01-28 2016-05-24 Avago Technologies General Ip (Singapore) Pte. Ltd. Power amplifier
US9385665B2 (en) 2014-02-24 2016-07-05 Telefonaktiebolaget Lm Ericsson (Publ) PPA linearization
EP3298688A4 (en) * 2015-05-20 2019-01-09 Wizedsp Ltd. An ultra-low-power and low-noise amplifier
US20180206043A1 (en) * 2015-07-12 2018-07-19 Wizedsp Ltd. An ultra-low-power ultra-low-noise microphone
US9843292B2 (en) 2015-10-14 2017-12-12 Knowles Electronics, Llc Method and apparatus for maintaining DC bias
WO2017083679A1 (en) 2015-11-12 2017-05-18 Knowles Electronics, Llc Method and apparatus to increase audio band microphone sensitivity

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080002841A1 (en) * 2003-07-17 2008-01-03 Baker Michael W Low-power high-PSRR current-mode microphone pre-amplifier system and method
JP2006229336A (en) * 2005-02-15 2006-08-31 Act Lsi:Kk Capacitive microphone
US20110056302A1 (en) * 2008-04-23 2011-03-10 Nxp B.V. Electronic circuit for controlling a capacitive pressure sensor and capacitive pressure sensor system
WO2014107843A1 (en) * 2013-01-08 2014-07-17 Zhihao Yang Condenser microphone and its impedance converter

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
VAN DER DONK A G H ET AL: "Amplitude-modulated electro-mechanical feedback system for silicon condenser microphones", JOURNAL OF MICROMECHANICS & MICROENGINEERING, INSTITUTE OF PHYSICS PUBLISHING, BRISTOL, GB, vol. 2, no. 3, 1 September 1992 (1992-09-01), pages 211 - 214, XP020069302, ISSN: 0960-1317, DOI: 10.1088/0960-1317/2/3/024 *
VAN DER DONK A G H ET AL: "Preliminary results of a silicon condenser microphone with internal feedback", TRANSDUCERS. SAN FRANCISCO, JUNE 24 - 27, 1991; [PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON SOLID STATE SENSORS AND ACTUATORS], NEW YORK, IEEE, US, 24 June 1991 (1991-06-24), pages 262 - 265, XP032360919, ISBN: 978-0-87942-585-2, DOI: 10.1109/SENSOR.1991.148856 *

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10516935B2 (en) 2015-07-15 2019-12-24 Knowles Electronics, Llc Hybrid transducer
US9843292B2 (en) 2015-10-14 2017-12-12 Knowles Electronics, Llc Method and apparatus for maintaining DC bias
US10616691B2 (en) 2015-11-12 2020-04-07 Knowles Electronics, Llc Method and apparatus to increase audio band microphone sensitivity
WO2019136032A1 (en) * 2018-01-04 2019-07-11 Knowles Electronics, Llc Pressure sensing microphone device
CN111630873A (en) * 2018-01-04 2020-09-04 美商楼氏电子有限公司 Pressure Sensing Microphone Device
CN111630873B (en) * 2018-01-04 2022-06-14 美商楼氏电子有限公司 Sensor device and microphone assembly
US11399236B2 (en) 2018-01-04 2022-07-26 Knowles Electronics, Llc Sensor device and microphone assembly
CN115868177A (en) * 2020-05-12 2023-03-28 高通科技公司 Transducer system with three decibel feedback loop
EP4150921A4 (en) * 2020-05-12 2024-07-31 Qualcomm Technologies, Inc. TRANSDUCER SYSTEM WITH THREE DECIL FEEDBACK LOOP

Also Published As

Publication number Publication date
US10616691B2 (en) 2020-04-07
US20180332404A1 (en) 2018-11-15

Similar Documents

Publication Publication Date Title
US10616691B2 (en) Method and apparatus to increase audio band microphone sensitivity
TWI392381B (en) Integrated circuit biasing a microphone
TW200915901A (en) Microphone circuit
CN110291718B (en) System and method for calibrating microphone cutoff frequency
US7741905B2 (en) Automatic gain control circuit
CN215072331U (en) Circuits, Integrated Circuits and Microphone Sensor Assemblies for Sensor Assemblies
CN104782048A (en) Single stage buffer with filter
JP5990627B1 (en) Speaker
CN104685904B (en) Electret Condencer Microphone and its impedance transformer
US11528545B2 (en) Single-ended readout of a differential MEMS device
WO2020173227A1 (en) Microphone preamplifier circuit having gain adjustment
CN108028629B (en) Electronic circuits and microphones for microphones
JP2016103765A (en) Impedance conversion circuit for capacitor microphone
JP3499234B1 (en) Sound drive circuit
US20230380794A1 (en) Electronic stethoscope
JP4585825B2 (en) Condenser microphone
JP3147662B2 (en) Sound reproduction device
JP3106718B2 (en) Speaker drive
JP2016123028A (en) Capacitor microphone and microphone circuit for use therein
US9225301B2 (en) Amplifier apparatus with controlled negative output impedance
KR101094004B1 (en) Digital Audio Amplifier with Speaker Current Feedback
US9654064B2 (en) Amplifier apparatus with controlled negative output impedance
CN222053367U (en) Electret microphone control circuit and electret microphone
CN211406277U (en) High-quality sound hearing aid circuit
JP2023129859A (en) power amplifier

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16801357

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 15775417

Country of ref document: US

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 16801357

Country of ref document: EP

Kind code of ref document: A1