Related Applications
[0001] This application claims priority to Provisional Application Serial No. 60/189,517,
filed March 15, 2000.
Technical Field
[0002] The present invention relates to electro-mechanical acoustic transducers, and more
particularly to miniaturized electroacoustic receiver transducers for use in miniaturized
electronic devices, such as hearing aids.
Background of the Invention
[0003] Electroacoustic transducers are capable of converting electric energy to acoustic
energy and vice versa. Electroacoustic receivers typically convert electric energy
to acoustic energy through a motor assembly having a movable armature. Typically,
the armature has one end that is free to move while the other end is fixed to a housing
of the receiver. The assembly also includes a drive coil and one or more magnets,
both capable of magnetically interacting with the armature. The armature is typically
connected to a diaphragm near its movable end. When the drive coil is excited by an
electrical signal, it magnetizes the armature. Interaction of the magnetized armature
and the magnetic fields of the magnets causes the movable end of the armature to vibrate.
Movement of the diaphragm connected to the armature produces sound for output to the
human ear. Examples of such transducers are disclosed in U.S. Patent Nos. 3,588,383,4,272,654
and 5,193,116.
[0004] Vibration of the armature and the receiver housing may cause acoustical noise in
other components of the electronic device, such as a microphone. Such acoustical noise
may cause distortion and feedback within the microphone, thereby reducing the quality
of the device. Thus, there is a need to isolate other components of the electronic
device from the vibrations created by the armature of the receiver.
[0005] It is therefore an object of the present invention to provide a receiver assembly
that is capable of isolating vibration created by the receiver from other components
within the electronic device, such as a hearing aid.
[0006] It is also an object of the present invention to provide a receiver assembly that
is capable of isolating the receiver from vibration created externally from the receiver.
[0007] These and other objects will become readily apparent after reviewing the specification
and drawings.
Summary of the Invention
[0008] A receiver assembly for a hearing aid device, the assembly comprising a case having
an inner cavity, one or more mounts disposed within the inner cavity of the case,
and a receiver disposed within the inner cavity of the case and connected to the mounts
such that the receiver is substantially suspended within the inner cavity of the case.
The mounts are made of a material that is suitable to provide dampening of any vibration
transmission from the receiver to the case. Most significantly, acoustical noise from
the receiver and the resulting distortion, feedback, and/or interference within the
other components of the hearing aid device is substantially eliminated.
Brief Description of the Drawings
[0009]
FIG. 1 is a perspective view of a first embodiment of the present invention.
FIG. 2 is a top plan view of the embodiment shown in FIG. 1.
FIG. 3 is a cross-sectional side elevational view taken along section line A-A shown in
FIG. 2.
FIG. 4 is a side elevational view of the embodiment shown in FIG. 1.
FIG. 5 is a first perspective cutaway view of the embodiment shown in FIG. 1 wherein one
side of the case is cut away.
FIG. 6 is a second perspective cutaway view of the embodiment shown in FIG. 1 wherein one
side of the case is cut away.
FIG. 7 is a perspective view of a second embodiment of the present invention.
FIG. 8 is a top plan view of the embodiment shown in FIG. 7.
FIG. 9 is a cross-sectional side elevational view taken along section line A-A shown in
FIG. 8.
Detailed Description of the Preferred Embodiments
[0010] While the present invention will be described fully hereinafter with reference to
the accompanying drawings, in which particular embodiments are shown, it is to be
understood at the outset that persons skilled in the art may modify the invention
herein described while still achieving the desired result of this invention. Accordingly,
the description which follows is to be understood as a broad informative disclosure
directed to persons skilled in the appropriate arts and not as limitations of the
present invention.
[0011] A receiver assembly 10 of the present invention is shown in FIGS. 1-6. The receiver
assembly 10 isolates a receiver 11 from vibration transmission, as shown in FIG. 3.
The terms vibration and acoustical noise may be used interchangeably within this specification
and are intended to have the same meaning. The receiver assembly 10 includes a first
case half 12 and a second case half 14 that form an outer case 16, as shown in FIG.
1. The outer case 16 defines an inner cavity 18. The outer case 16 includes a first
end surface 20 and a second end surface 22. The case 16 has a first aperture 24 within
the first end surface 20 and a second aperture 26 within the second end surface 22.
The first aperture 24 defines a first aperture edge surface 28 of the case 16. The
second aperture 26 defines a second aperture edge surface 30 of the case 16. A hollow
cylindrical sleeve 32 is disposed within the first aperture 24 and defines an outlet
port 34 having a port opening 36. The cylindrical sleeve 32 includes an outwardly
radially protruding annular shoulder 38 defining an outer annular surface 40. The
outer annular surface 40 has an annular groove 42 therein. The first aperture edge
surface 28 is mated with the annular groove 42 to secure the cylindrical sleeve 32
to the case 16. The cylindrical sleeve 32 may additionally be attached to the case
16 by other means, such as adhesive or through insert molding with the case 16. The
sleeve 32 may also be integrally formed with the case 16.
[0012] A mounting pin 44 is disposed within the second aperture 26 of the case 16, as shown
in FIG. 3. The mounting pin 44 includes a central pin portion 46, a first disk 48
disposed on one end of the central pin portion 46, and a second disk 50 disposed on
the other end of the central pin portion 46. The first and second disks 48 and 50
are larger than the second aperture 26 of the case 16. The central pin portion 46
of the mounting pin 44 mates with the edge surface 30 of the case 16. The disks 48
and 50 prevent the mounting pin 44 from sliding out through the second aperture 26.
In a preferred embodiment, the pin is made of metal. However, other materials, such
as plastic or other polymeric resins may also be used.
[0013] A first mount 52 of the receiver assembly 10 includes a mounting base 54 having a
mounting surface 56 and a cylindrical extension 58 having a bore 60 extending therethrough,
as shown in FIG. 3. The first mount 52 is preferably made of an elastomeric material,
such as silicon rubber. However, any material that can be utilized as a vibration
dampening spring may also be used. The durometer of the mount 52 varies according
to the material used and the dimensions of the mount 52. The first mount 52 is positioned
such that the cylindrical extension 58 is disposed within the cylindrical sleeve 28
and the mounting base 54 is disposed within the inner cavity 18 of the case 16. As
shown in FIG. 3, the cylindrical extension 58 has an outer cylindrical surface 62
and includes an annular shoulder 64 that extends radially outwardly from the outer
cylindrical surface 62. The shoulder 64 defines a shoulder surface 66 that mates with
an annular surface 68 within the cylindrical sleeve 28. The shoulder 64 prevents the
cylindrical extension 58 of the first mount 52 from moving outwardly past the port
opening 36. The connection of the first mount 52 to the case 16 is best shown in FIG.
5. Alternatively, the first mount 52 may also be connected to the case 16 through
insert molding or an adhesive. The first mount 52 may also be integrally formed with
the case 16.
[0014] A second mount 70 of the receiver assembly 10 includes a mounting base 72 having
a mounting surface 74 and a shallow cylindrical bore 76. The second mount 70 is disposed
within the inner cavity 18 of the case 16 and secured to the case 16 by the mounting
pin 44. Alternatively, the second mount may also be secured to the case by insert
molding, adhesive, or integrally formed with the case 16. The second mount 70 is positioned
such that the second disk 50 of the mounting pin 44 is disposed within the cylindrical
bore 76 of the second mount 44. The second mount 70 is preferably made of an elastomeric
material, such as silicon rubber. However, any material that can be utilized as a
vibration dampening spring may also be used. As with the first mount 52, the durometer
of the second mount 70 varies according to the material used and the dimensions of
the second mount 70. The connection of the second mount 70 to the case 16 is best
shown in FIG.6.
[0015] The receiver 11 is disposed between the first and second mounts 52 and 70 and mounted
to the mounting surfaces 56 and 74 of the mounts 52 and 70, as shown in FIG. 3. The
receiver 11 may be mounted to the mounting surfaces 56 and 74 by any mechanical means,
such as a fastener, adhesive, friction fit, compression fit, or the like. The mounts
52 and 70 may also be insert molded with the receiver housing. The receiver 11 is
thereby suspended within the inner cavity 18 of the case 16. The mounts 52 and 70
dampen vibrations emanating from the receiver 1 and minimize vibrations from transmitting
to the case 16. The mounts also isolate the receiver 11 from any vibrations occurring
outside the case 16. As shown in FIG. 4, a terminal aperture 78 is provided within
the second end surface 22 of the case 16 so that the terminals (not shown) of the
receiver 11 can pass therethrough.
[0016] A second embodiment of the present invention is shown in FIGS. 7-9 as a receiver
assembly 100. In this embodiment, an integrally formed mount 102 is disposed within
a first aperture 104 of a case 106. The mount 102 includes a mount tab 108, a central
neck portion 110, and a mounting base 112 all integrally formed in a single piece.
Thus, the mount 102 is a single piece as opposed to the two-piece configuration of
the first embodiment.
[0017] The receiver assembly 100 also includes a cylindrical sleeve 114 that is a modified
version of the cylindrical sleeve 28 of the first embodiment. The cylindrical sleeve
114 does not include an annular surface within the cylindrical sleeve to prevent the
cylindrical extension of the mount from sliding through the port opening, as in the
first embodiment. In the second embodiment, an annular shoulder 116 is disposed on
a cylindrical extension 118 of a mount 120 and is frictionally fit within the cylindrical
sleeve 114. This second embodiment also effectively isolates the receiver 11 from
transmitting vibrations. The mounts 102 and 120 act together to dampen vibration transmission
from the receiver 11. The mounts also may act to dampen vibration transmission to
the receiver through the case 106.
[0018] The scope of the present invention also includes a method of assembling a receiver
assembly. The method comprises the steps of:
(1) mounting a first mount having a hollow cylindrical extension to a receiver;
(2) mounting a second mount having a bore to the receiver;
(3) inserting the cylindrical extension of the first mount into a cylindrical sleeve;
(4) inserting one end of a mounting pin into the bore in the second mount;
(5) inserting the receiver into a first case portion having two apertures such that
the other end of the mounting pin is disposed within one aperture of the first case
portion and the cylindrical sleeve is disposed within the other aperture of the first
case portion;
(6) placing a second case portion over the receiver inserted into the first case portion;
and
(7) joining the first and second case portions together.
[0019] It is apparent that one or more steps of assembly may be eliminated by integrally
forming various components with other components of the device as described herein.
Furthermore, the method used to join the case portions will depend on material selections.
If plastic or metal is used for the case portions, they may be joined by welding,
adhesive, or other mechanical means.
[0020] While the specific embodiments have been illustrated and described, numerous modifications
may come to mind without significantly departing from the spirit of the invention,
and the scope of protection is only limited by the scope of the accompanying Claims.
1. A vibration-dampening assembly for a receiver of a hearing aid device, wherein the
hearing aid device includes an outer housing, the assembly comprising:
a case for encasing the receiver within an outer housing of a hearing aid device,
the case having a port and defining an interior surface and an interior cavity, the
port of the case allowing the receiver to transmit acoustical energy therethrough;
and
a vibration-dampening mount disposed between the case and the receiver,
wherein the mount supports the receiver within the interior cavity of the case and
substantially prevents contact between the receiver and the interior surface of the
case.
2. The assembly of claim 1, wherein the case comprises two case portions.
3. The assembly of claim 1, wherein the mount is disposed within the interior cavity
of the case.
4. The assembly of claim 1, wherein the mount is connected to the receiver via means
selected from the group consisting of a fastener, adhesive, friction fit, compression
fit, and insertion molding.
5. The assembly of claim 1, wherein the mount is connected to the case via means selected
from the group consisting of a fastener, adhesive, friction fit, compression fit,
and insertion molding.
6. The assembly of claim 1, wherein the case includes a generally cylindrical sleeve
that extends from the case and defines the port of the case.
7. The assembly of claim 6, wherein the assembly includes a mount having a portion disposed
within the cylindrical sleeve of the case.
8. The assembly of claim 6, wherein the assembly includes a mount having a generally
cylindrical portion having an aperture therethough, the cylindrical portion of the
mount disposed within the cylindrical sleeve of the case.
9. The assembly of claim 1, the case further defining two ends, the port located at one
end of the case.
10. The assembly of claim 9, wherein the case includes a generally cylindrical sleeve
that extends from the one end of the case and defines the port of the case.
11. The assembly of claim 10, wherein the assembly includes two mounts, one of the mounts
disposed at the one end of the case and the other mount disposed at the other end
of the case.
12. The assembly of claim 10, wherein the assembly includes two mounts, one of the mounts
having a generally cylindrical portion having an aperture therethough, the cylindrical
portion of the mount disposed within the cylindrical sleeve of the case.
13. The assembly of claim 12, wherein the case includes an aperture in the other end of
the case, the other mount having a portion disposed within the aperture for general
support thereof.
14. The assembly of claim 13, wherein the case includes an aperture in the other end of
the case, and wherein the assembly includes a mounting pin disposed within the aperture
of the case such that movement of the pin is generally restricted in a direction generally
transverse to the ends of the case, the other mount connected to the mounting pin.
15. A vibration-dampening assembly for a receiver of a hearing aid device,
wherein the hearing aid device includes an outer housing, the assembly comprising:
a case for encasing the receiver within an outer housing of a hearing aid device,
the case having a first end and a second end, the first end comprising a generally
cylindrical sleeve defining a port, the case defining an interior surface and an interior
cavity and the port allowing the receiver to transmit acoustical energy therethrough;
a first vibration-dampening mount having a hollow cylindrical portion, the first mount
being disposed within the cylindrical sleeve between the interior surface of the case
and the receiver, and
a second vibration-dampening mount disposed within the case proximate the second end
of the case and between the interior surface of the case and the receiver,
wherein the first and second mounts support the receiver within the interior cavity
of the case and substantially prevent contact between the receiver and the interior
surface of the case.
16. The assembly of claim 15, wherein the cylindrical sleeve includes an annular shoulder
within the sleeve that prevents the cylindrical portion of the first mount from moving
outwardly through the port.
17. The assembly of claim 15, wherein the cylindrical portion of the first mount includes
an annular shoulder that prevents the first mount from moving outwardly through the
port.
18. A method of assembling a receiver assembly for use in a device having an outer housing,
the method comprising the steps of:
mounting a first mount having a hollow cylindrical extension to a receiver;
mounting a second mount to the receiver; and
inserting the receiver into a case for encasing the receiver within an outer housing
of a device, the case having a cylindrical sleeve portion such that the cylindrical
extension of the first mount is disposed within the cylindrical sleeve and the second
mount is connected to the case, wherein the first and second mounts support the receiver
to be supported within a interior cavity defined by the case, thereby substantially
preventing contact between the receiver and the interior surface of the case.