[0001] This invention relates to electret microphones particularly for use in telephones.
[0002] Telephone electret microphones need to be shielded from electromagnetic interference
to which the microphone is subjected in normal use. Such fields existing in the home,
for example, are radiated from nearby television and radio transmitters and from electric
motors. In a known telephone electret microphone design, the microphone,components
are surrounded by, and the electret element shielded by, an aluminum casing. One or
more circular holes in the surface of the casing allows transmission of acoustic waves
to the electret element. Unfortunately, as a telephone user brings his face towards
the hole, the electret element is subjected to a distorted electric field due to body
capacitance. Normally, the output from the electret element is taken to an amplifier
and then to a balanced line, balanced line transmission being used to compensate for
interference occurring in the transmission path. However, unbalance produced by a
distorted field at the electret element will not be compensated and is seen as a component
of the acoustic signal. Consequently, shielding of all interference at the microphone,
including that produced by body capacitance, is necessary.
[0003] A known electret microphone used in a telephone consists of the following components.
The top component, which, in use, is located nearest the speaker's mouth, is one part
of a two-part aluminum casing. The casing has a hole through its center to allow passage
of acoustic waves. Beneath this casing part is a moisture barrier which is normally
a thin film of plastic material such as Mylar (Registered Trade Mark) which is pressed
into sealing engagement with the top part of the casing. Below the moisture barrier
and a
* compressible mounting ring for the moisture barrier, lies the electret element which,
together with associated electrical components, seats within a second part of the
aluminum casing.
[0004] By the invention, it is proposed that the thin, acoustically transparent moisture
barrier be a conducting component and that said component be situated such that it
electrically contacts the electret microphone casing or other grounded or fixed potential
body.
[0005] Preferably the component comprises a substrate plastic film, the film having a conductive
coating deposited thereon.
[0006] An embodiment of the invention will now be described by way of example with reference
to the accompanying exploded view of an electret microphone.
[0007] Referring in detail to the drawing, the microphone illustrated has a top ferrule
or casing part 10 having a passage 11. The ferrule is made of aluminum. It has an
upper ridge 12 which can engage an internal threaded part of a telephone handset housing
(not shown). An upwardly pressed annular portion 14 accommodates and centers a sealing
washer 16. On assembly, the sealing washer 16 presses a combined moisture barrier
and shielding element 18 into the recessed portion 14. The element 18 has an upper
conducting surface 20. The element is manufactured by vacuum-depositing a thin layer
of aluminum onto a plastic film 21, such as Mylar of a thickness of 10 um. The thickness
and flexibility of the element 18 is such that it is rendered transparent to acoustic
vibrations of between 10 Hz and 4 KHz. The sealing washer 16 acts to tension the element
18. If the element is improperly mounted, then there is a risk of its affecting the
voice frequency vibration transmitted by it.
[0008] Below the flexible sealing washer 18 and tight against it is a transducer element
22. Basically the transducer element comprises a top frame 24 which clamps a piece
of electret foil 26 against a bottom plate 28 by means of chips 29. The foil has a
metallic top surface and a bottom layer which has the property of being able to store
a charge for extended periods. The structure of the electret is well-known. The charge
storage face is separated from a conducting layer 30 on the back plate 28 by 50 microns
thick strips of dielectric film 32. The plate 28 in the region of the conducting layer
is formed with holes 34 to permit the electret to vibrate in response to acoustic
waves passing into the microphone. Because the charge stored in the bottom layer of
the electret foil is invariable, then as it vibrates, the potential difference between
the conducting layer 30 and the conducting surface of the electret varies to give
an electric analog of the voice frequency vibration. By means of a printed conductor
on board 36 which has wire leads 37 bonded to the electrical surfaces of the electret
element 22, the varying electret voltage is taken to a field effect transistor (not
shown) mounted on the reverse surface of the board. The field effect transistor projects
into a chamber 40 which is formed in a bottom part 42 of the aluminum casing. The
chamber size is chosen to optimize vibration of the electret foil 26. Contacts (not
shown) are also formed on the reverse surface of the board 36 and communicate electrically
with the circuit formed on the board upper face. The contacts project through a passage
46 in the casing part 42. A second seal 48 which surrounds the contacts 44 protects
the inside of the microphone from adverse environmental conditions.
[0009] In use, the casing comprising ferrule 10 and bottom part 42 is grounded via one of
the conductors on board 36, and so, consequently, is the top surface of the element
18. The element 18 thus functions to seal the microphone from moisture and gaseous
contaminants and acts also to make the electromagnetic shield around the electret
element complete. As previously indicated, the primary affect of this additional shielding
part is in reducing the interference of that electric field produced by body capacitance
which would otherwise affect the electret microphone output transmitted to a balanced
line.
[0010] The combination of a plastic substrate and a thin deposited coating for the sealing
element 18 is viewed as being an optimal but non-limiting construction. Thus the element
18 could, instead, be a single layer of conducting foil. However, it would be difficult
to manufacture such a thin foil of, say, aluminum having the required transparency
to voice frequency vibration, while retaining sufficient strength to mechanically
protect the electret. Aluminum is particularly preferred as a conducting coating for
the element 18 firstly, since it is easily vacuum-deposited on a plastic substrate,
secondly, since the ferrule is also made of aluminum and therefore would not form
an electric cell with the coating when damp, and lastly, since aluminum is a good
conductor. However, it is appreciated that in other circumstances other conductors
such as copper or zinc may be preferred, or the element may alternatively be composed
of a carbon loaded plastic.
[0011] . In the embodiment shown, the top surface of the 5 element 18 is made conducting and
that surface contacts the grounded ferrule 10. In other arrangements it may be preferred
not to ground the casing around the electret in which case the conductive coating
on the element 18 can be deposited on whichever surface of the element is made to
contact a grounded or other fixed potential body.
[0012] In the embodiment described, the conductive coating extends over the full surface
area of the element 18 so as to completely surround the transducer element 22 with
an electromagnetic shield. However, in other circumstances, it may be preferred to
limit the extent of the conducting coating on the element 18 to a central or marginal
region vertically aligned with the central hole through the ferrule 10.
[0013] A conductive coating can be deposited on both sides of the element 18 in order to
facilitate assembly.
1. An electret microphone comprising a casing and an electret element within the casing
for producing an electrical signal corresponding to acoustic vibration passing into
the casing through a passage therein, characterised in that a conducting element (18)
blocks at least a part of said passage (11), the conducting element (18) transparent
to said acoustic vibration and electrically contacting a fixed potential body (10)
whereby to fix the potential of the conducting element (18).
- 2. An electret microphone as claimed in claim 1, further characterised in that the
conducting element comprises a conductive layer (20) deposited on a substrate (21).
3. An electret microphone as claimed in claim 2 further characterised in that the
conductive layer (20) is deposited on opposed sides of a lamellar substrate (21).
4. An electret microphone as claimed in claim 2, further characterised in that the
substrate (21) is a film of flexible plastics.
5. An electret microphone as claimed in claim 4, further characterised in that the
element (21) comprising said plastics substrate supporting said deposited conducting
layer is moisture- impermeable.
6. An electret microphone as claimed in claim 5, further characterised in that a sealing
member (16) presses the combination of said substrate (21) and the conducting layer
(20) into engagement with an inside surface of the casing (10).
7. An electret microphone as claimed in claim 1, further characterised the casing
in that (10) is conducting and is grounded, said conducting element (18) electrically
contacting an inner surface of the casing (10).
8. An electret microphone as claimed in claim 7, further characterised in that both
the conducting element (18) and the casing (10) are made of aluminum.
9. An electret microphone as claimed in claim 1, further characterised in that the
conducting element (18) is composed of a conductor loaded plastic.
10. An electret microphone as claimed in claim 9, further characterised in that the
conductor is carbon.