Acoustic apparatus with diaphragm supported at a discrete number of locations
09743191 ยท 2017-08-22
Assignee
Inventors
Cpc classification
H04R1/04
ELECTRICITY
H04R7/24
ELECTRICITY
International classification
Abstract
An acoustic apparatus includes a back plate, a diaphragm, and at least one pillar. The diaphragm and the back plate are disposed in spaced relation to each other. At least one pillar is configured to at least temporarily connect the back plate and the diaphragm across the distance. The diaphragm stiffness is increased as compared to a diaphragm stiffness in absence of the pillar. The at least one pillar provides a clamped boundary condition when the diaphragm is electrically biased and the clamped boundary is provided at locations where the diaphragm is supported by the at least one pillar.
Claims
1. An acoustic apparatus, comprising: a back plate; a diaphragm, the diaphragm and the back plate being disposed in spaced relation to each other and separated by a distance; at least one pillar configured to connect the back plate and the diaphragm; and a plurality of posts extending out of the back plate towards the diaphragm and along the periphery of the diaphragm, wherein the at least one pillar is disposed in a spaced relationship with the plurality of posts, wherein under electric bias, a portion of the diaphragm disposed adjacent to an area of the back plate between the at least one pillar and the plurality of posts is closer to the back plate than portions of the diaphragm in contact with the plurality of posts and to the at least one pillar.
2. The acoustic apparatus of claim 1, wherein the diaphragm generally circular in shape with an axis extending orthogonally to the center of the diaphragm and through the back plate.
3. The acoustic apparatus of claim 2, wherein the at least one pillar is formed about the axis and configured to at least temporarily connect the back plate and the diaphragm.
4. The acoustic apparatus of claim 1, wherein the at least one pillar comprises multiple pillars.
5. The acoustic apparatus of claim 1, wherein the diaphragm and the at least one pillar are integrally formed together.
6. The acoustic apparatus of claim 1, wherein the diaphragm and the at least one pillar are formed separately.
7. The acoustic apparatus of claim 6, wherein the at least one pillar is connected to a separate back plate.
8. The acoustic apparatus of claim 1, wherein the at least one pillar provides an electrical connection between the back plate and the diaphragm.
9. The acoustic apparatus of claim 1, wherein the portion of the diaphragm adjacent to the area of the back plate between the at least one pillar and the plurality of posts assumes a double curved shape.
10. The acoustic apparatus of claim 1, wherein the diaphragm is formed of polysilicon.
11. The acoustic apparatus of claim 1, wherein the at least one pillar includes silicon nitride layer and polysilicon layer.
12. The acoustic apparatus of claim 1, wherein the at least one pillar is generally axisymmetric.
13. The acoustic apparatus of claim 1, wherein the at least one pillar is non-axisymmetric.
14. A acoustic apparatus, comprising: a back plate; a diaphragm disposed in spaced relation to, and separated by a distance from, the back plate; a plurality of posts extending out of the back plate towards the diaphragm and along the periphery of the diaphragm; and at least one pillar extending out of the back plate towards the diaphragm and configured to detachably connect the back plate and the diaphragm, wherein the at least one pillar is disposed in a spaced relationship with the plurality of posts, wherein under electric bias, a portion of the diaphragm disposed adjacent to an area of the back plate between the at least one pillar and the plurality of posts is closer to the back plate than portions of the diaphragm in contact with the plurality of posts and to the at least one pillar.
15. The acoustic apparatus of claim 14, wherein the diaphragm is generally circular in shape with an axis extending orthogonally to the center of the diaphragm and through the back plate.
16. The acoustic apparatus of claim 14, wherein the at least one pillar comprises multiple pillars.
17. The acoustic apparatus of claim 14, wherein the at least one pillar provides an electrical connection between the back plate and the diaphragm.
18. The acoustic apparatus of claim 14, wherein the portion of the diaphragm adjacent to the area of the back plate between the at least one pillar and the plurality of posts assumes a double curved shape.
19. The acoustic apparatus of claim 14, wherein the at least one pillar is generally axisymmetric.
20. The acoustic apparatus of claim 14, wherein the at least one pillar is non-axisymmetric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a more complete understanding of the disclosure, reference should be made to the following detailed description and accompanying drawings wherein:
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(9) Skilled artisans will appreciate that elements in the figures are illustrated for simplicity and clarity. It will further be appreciated that 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. It will also be understood that the terms and expressions used herein have the ordinary meaning as is accorded to such terms and expressions with respect to their corresponding respective areas of inquiry and study except where specific meanings have otherwise been set forth herein.
DETAILED DESCRIPTION
(10) In the present approaches, a microelectromechanical system (MEMS) apparatus with a center clamped diaphragm is provided. Such devices provide greater linearity and lower THD compared to previous free plate approaches. More specifically and in some aspects, a central pillar connects the diaphragm center of one or more diaphragms to the back plate center. The central pillar advantageously approximates a clamped boundary condition at the diaphragm center thereby increasing diaphragm stiffness. In some embodiments, the central pillar also provides an electrical connection to the diaphragm thereby eliminating the need for a separate diaphragm runner that is used (and typically required) in previous approaches. In some embodiments, the pillar may be located at an offset with respect to the diaphragm center.
(11) In other aspects and when the diaphragm is biased, the diaphragm is tensioned as it is pulled against the posts by the electrostatic field established by the bias. Additionally, certain regions of the diaphragm assume a doubly-curved shape upon bias. One or both of the tensioning and the doubly-curved shape result in increased stiffness of the diaphragm and improved linearity of operation such that the relationship between the input signal of the microphone and the output signal of the microphone has very low nonlinearity.
(12) Referring now to
(13) Referring now especially to
(14) In operation, sound energy is received by the two motors 104 and 110 in the MEMS device 102 via ports 124. The motors 104 and 110 in the MEMS device 120 convert the sound energy into electrical signals. The electrical signals are then processed by the ASIC 122. The processing may include, for example, attenuation or amplification to mention two examples. Other examples are possible. The processed signals are then transmitted to pads (not shown) on the base 120, which couple to customer devices. For example, the apparatus 100 may be incorporated into a cellular phone, personal computer, or tablet and the customer devices may be devices or circuits associated with the cellular phone, personal computer, tablet, or other device.
(15) Turning now to a description of the central pillar arrangement, it will be appreciated that this discussion is with respect to the first motor 104. However, it will be appreciated that the structure of the arrangement of the second motor 110 may be identical to the description of the first motor 104.
(16) Referring now especially to
(17) So configured, the central pillar 112 advantageously approximates a clamped boundary condition at the center of the diaphragm 106 thereby increasing diaphragm stiffness. The central pillar 112 also provides an electrical connection to the diaphragm 106 thereby eliminating the need for a separate diaphragm runner that was used in previous approaches to implement electrical connection to the diaphragm. However, in other embodiments, the pillar may be used for providing clamped boundary condition only, and electrical connection to the diaphragm may be implemented by other approaches.
(18) In yet another example, the unbiased diaphragm may not be physically attached to the pillar as shown in
(19) When an electrical bias is applied between the diaphragm 106 and the back plate electrode 109, the diaphragm is tensioned due to the reduced number of posts that are utilized. Additionally, certain regions of the diaphragm 106 assume a doubly-curved shape upon bias. One or both of the tensioning and the doubly curved shape result in increased stiffness of the diaphragm 106 and improved linearity of operation such that a nearly linear relationship exists between the input signal of the microphone and the output signal of the microphone 100.
(20) Referring now to
(21) As has also been mentioned, the central clamp can also be used as an electrical connection to the diaphragm and this helps with improved miniaturization.
(22) The pillar may not be located at the center of the diaphragm. Moreover, there may be multiple pillars within a single motor.
(23) Embodiments that utilize a capacitive transduction mechanism have been described, however transduction modes such as piezoresistive, piezoelectric, and electromagnetic transduction are also possible. Other modes of transduction are also possible.
(24) Referring now to
(25) It will be appreciated that in some aspects with the central pillar arrangements described herein, the central pillar can be offset from a central axis. In other aspects, multiple pillars can be used as shown in
(26) Preferred embodiments of this invention are described herein, including the best mode known to the inventors for carrying out the invention. It should be understood that the illustrated embodiments are exemplary only, and should not be taken as limiting the scope of the invention.