IP Library › Granted Patent US 12,735,314
Granted Patent B2
US 12,735,314 · App. 18/768,846 · Granted Sep 15, 2026

Differential drive of a sound transducer system

Inventors: Raik Fiedler (Peitz, DE); Matthias Landwehr (Munich, DE); Ralf Hildebrandt (Munich, DE); Franziska Wall (Munich, DE)
Assignee: ROBERT BOSCH GMBH
B81B3/0086H04R19/005H04R19/02B81B2201/0257B81B2203/0127B81B2203/04
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Quick Facts
Patent No.
US 12,735,314
App. No.
18/768,846
Granted
Sep 15, 2026
Kind
B2
Abstract

This invention relates to an apparatus for differentially driving an electrostatic drive unit of a microelectromechanical sound-generating device implemented in a microelectromechanical system (MEMS). The drive unit has a movable element having a first electrode, which is electrostatically drivable by a second electrode and a third electrode of the drive unit.

Claims (51)

1 . An apparatus for driving an electrostatic drive unit of a sound-generating device, wherein the drive unit has a movable element having a first electrode, which is electrostatically drivable by means of a second electrode and a third electrode of the drive unit, wherein the apparatus comprises:

a first drive circuit, which is configured to generate a first electrode signal based on a first drive signal and relative to a first reference potential, and to drive the first electrode using the first electrode signal;

a second drive circuit, which is configured to generate a second electrode signal based on a second drive signal and relative to a second reference potential, which is higher than the first reference potential, and to drive the second electrode using the second electrode signal; and

a third drive circuit, which is configured to generate a third electrode signal based on the second drive signal and relative to a third reference potential, which is lower than the first reference potential, and to drive the third electrode using the third electrode signal,

wherein the second and third electrode signals are alternating voltage signals of the same phase, which correspond to each other in terms of their waveform, but are shifted with respect to one another by the potential difference between the second reference potential and the third reference potential; and

wherein the first electrode signal is an alternating voltage signal that corresponds to the inverted waveform of the second and third electrode signals in terms of its waveform.

2 . The apparatus according to claim 1 , wherein the second and third electrode signals are alternating voltage signals of the same phase, which correspond to each other in terms of their waveform and amplitude, but are shifted with respect to one another by the potential difference between the second reference potential and the third reference potential.

3 . The apparatus according to claim 1 , wherein the magnitude of the potential difference between the second reference potential and the first reference potential is equal to the magnitude of the potential difference between the first reference potential and the third reference potential.

4 . The apparatus according to claim 1 , wherein the second drive signal and the third drive signal correspond to the first drive signal shifted in phase by 180°.

5 . The apparatus according to claim 1 , wherein potential of the second drive signal remains equal to or higher than the potential of the first drive signal when driving the drive unit.

6 . The apparatus according to claim 1 , wherein potential of the third drive signal remains equal to or lower than the potential of the first drive signal when driving the drive unit.

7 . The apparatus according to claim 1 , wherein at least one of the first drive signal, the second drive signal and the third drive signal is an audio signal.

8 . The apparatus according to claim 1 , wherein the first drive signal and the second drive signal are analog signals, and the apparatus further comprises an inverter circuit, which inverts the first drive signal to generate the second drive signal.

9 . The apparatus according to claim 1 , wherein the first drive signal and the second drive signal are analog signals, and the apparatus further comprises an inverter circuit, which inverts the second drive signal to generate the first drive signal.

10 . The apparatus according to claim 1 , wherein the first and second drive signals are analog signals, and the apparatus is further configured to receive a digital drive signal;

the apparatus further comprising:

an inverter, which inverts the digital drive signal; and

a first digital-to-analog converter, which is configured to convert the digital drive signal into an analog signal corresponding to the first drive signal; and

a second digital-to-analog converter, which is configured to convert the inverted digital drive signal into an analog signal corresponding to the second drive signal.

11 . The apparatus according to claim 1 , wherein the apparatus is further configured to receive a digital drive signal;

the apparatus further comprising an inverter, which inverts the digital drive signal; and wherein the first drive circuit is configured to drive the first electrode using the digital drive signal as the first drive signal; and

wherein the second drive circuit and the third drive circuit are configured to drive the second electrode and the third electrode using the inverted drive signal as the second drive signal and third drive signal, respectively.

12 . The apparatus according to claim 1 , wherein the first drive signal and the second drive signal together form a differential drive signal for the electrodes.

13 . The apparatus according to claim 12 , wherein the differential drive signal is a symmetric differential drive signal or an asymmetric differential drive signal.

14 . The apparatus according to claim 1 , further comprising:

a second constant voltage source configured to provide the second reference potential to the second drive circuit; and

a third constant voltage source configured to provide the third reference potential to the third drive circuit.

15 . The apparatus according to claim 14 ,

wherein the second constant voltage source comprises:

a DC/DC converter configured to receive a positive potential from a battery and to generate the second reference potential based on a positive potential of a battery powering the apparatus and the MEMS-based component, and

a low-dropout (LDO) regulator configured to receive the second reference potential from the DC/DC converter and to provide a regulated second reference potential to the second drive circuit; and

wherein third constant voltage source comprises:

a DC/−DC converter configured to receive the positive potential from the battery and to generate the third reference potential based on said positive potential of the battery, and

a low-dropout (LDO) regulator configured to receive the third reference potential from the DC/−DC converter and to provide a regulated third reference potential to the third drive circuit.

16 . The apparatus according to claim 14 , wherein the first reference potential received by the first drive circuit is the negative potential of a battery powering the apparatus and the MEMS-based component.

17 . The apparatus according to claim 14 , further comprising a first constant voltage source configured to provide the first reference potential to the first drive circuit.

18 . The apparatus according to claim 1 , wherein the sound-generating device is a microelectromechanical sound-generating device implemented in a microelectromechanical system (MEMS).

19 . A loudspeaker system comprising:

a sound-generating device, wherein the sound-generating device is configured to generate sound using one or more drive units, wherein each drive unit comprises a movable element having a first electrode, which is electrostatically drivable by means of a second electrode and a third electrode of the drive unit; and

an apparatus comprising:

a first drive circuit, which is configured to generate a first electrode signal based on a first drive signal and relative to a first reference potential, and to drive the first electrode using the first electrode signal;

a second drive circuit, which is configured to generate a second electrode signal based on a second drive signal and relative to a second reference potential, which is higher than the first reference potential, and to drive the second electrode using the second electrode signal; and

a third drive circuit, which is configured to generate a third electrode signal based on the second drive signal and relative to a third reference potential, which is lower than the first reference potential, and to drive the third electrode using the third electrode signal,

wherein the second and third electrode signals are alternating voltage signals of the same phase, which correspond to each other in terms of their waveform, but are shifted with respect to one another by the potential difference between the second reference potential and the third reference potential; and

wherein the first electrode signal is an alternating voltage signal that corresponds to the inverted waveform of the second and third electrode signals in terms of its waveform.

20 . A method for driving an electrostatic drive unit of a sound-generating device, wherein the drive unit has a movable element having a first electrode, which is electrostatically drivable by means of a second electrode and a third electrode of the drive unit, wherein the method comprises:

generating a first electrode signal based on a first drive signal and relative to a first reference potential, and to drive the first electrode using the first electrode signal;

generating a second electrode signal based on a second drive signal and relative to a second reference potential, which is higher than the first reference potential, and to drive the second electrode using the second electrode signal; and

generating a third electrode signal based on the second drive signal and relative to a third reference potential, which is lower than the first reference potential, and to drive the third electrode using the third electrode signal,

wherein the second and third electrode signals are alternating voltage signals of the same phase, which correspond to each other in terms of their waveform, but are shifted with respect to one another by the potential difference between the second reference potential and the third reference potential; and

wherein the first electrode signal is an alternating voltage signal that corresponds to the inverted waveform of the second and third electrode signals in terms of its waveform.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2024
From: FIEDLER, RAIK
To: ROBERT BOSCH GMBH
Reel/Frame 068546/0368 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2024
From: LANDWEHR, MATTHIAS; HILDEBRANDT, RALF; WALL, FRANZISKA
To: FRAUNHOFER-GESELLSCHAFT ZUR FÖRDERUNG DER ANGEWANDTEN FORSCHUNG E.V.
Reel/Frame 068546/0378 →
Continuity (1)
Related Publication 20240359971A1 · Oct 31, 2024
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