BACKGROUND OF THE INVENTION
[0001] This invention relates to a planar electromagnetic transducer that is capable of
transforming an electrical signal into movement of a diaphragm. It is also capable
of transforming the movement of a diaphragm into an electrical signal. It can be used
in loudspeakers, headphones, microphones, or other devices of a similar nature.
[0002] A discussion of the advantages and disadvantages of planar electromagnetic loudspeakers,
and a description of the state of the art, is contained in U.S. Patent 4,837,838,
to Thigpen, entitled "Electromagnetic Transducer of Improved Efficiency."
[0003] Thigpen also discloses an electromagnetic transducer in which an electrically conductive
diaphragm is positioned between two sets of magnetic assemblies. The magnets within
the assembly are affixed in elongated U-shaped channels of ferrous material. The ferrous
frame contributes to the difficulties assembling the large, powerful magnets to within
the frame. The electrical conductor elements are locked on the outside of the diaphragm.
The conductors are thus exposed to environmental damage and also present a shock hazard
to persons inadvertently contacting the diaphragm.
[0004] US-A-5,003,610 (
Adachi et al) discloses a whole surface driven loudspeaker having two groups of magnet assemblies
and a diaphragm carrying a conductor coil pattern. A primary object of this invention
is to provide the diaphragm with "high rigidity" by bonding a stiff, rock-composite
foamed mica plate to each side of the diaphragm (col. 1, Ins. 55-58; col. 2, Ins.
60-65). This rigidity results in limiting the frequency response to a bandwith from
30 to 3500 Hz (Fig. 3).
[0005] US-A-4,384,173 (
Briefer et al), US-A-4,939,784 (
Bruney), WO-A-91/04643 (
Trufitt) and WO-A-80/01230 (
Ehrmann) show conductive coils on the outside of the diaphragm where they are susceptible
to contamination and open circuits.
SUMMARY OF INVENTION
[0006] The electromagnetic transducer disclosed herein improves on the state of the art
planar electromagnetic transducer diaphragms by providing an additional layer of insulating
material over the conductors. This layer provides protection of the conductors against
oxidation or other environmental damage, which allows the transducer to operate in
a wider range of environments, such as high humidity or corrosive atmospheres. The
insulating layer also protects against mechanical damage, such as abrasion, to the
conductors, and prevents open circuits in the conductive pattern. The additional layer
of insulating material also prevents the conductors from contacting the magnet assembly
or other conductive parts of the transducer, reducing the possibility of short circuits
and eliminating potential shock hazards.
[0007] Furthermore, the insulating layer may comprise multiple layers. These multilayers
maybe fabricated of different materials. Thus, the resonant frequency of the diaphragm,
may be controlled. In addition, different regions of the diaphragm may have different
resonant frequencies so that any frequency response peaks are eliminated or less pronounced.
Similarly, the insulating layers can be used to minimize the effect of changes in
ambient temperature on the diaphragm by selecting insulating materials having appropriate
temperature coefficients.
[0008] The inclusion of insulating layers over the conductors also permits the coil formed
by the conductors on the diaphragm to have multiple conductors not only in the plane
of the diaphragm, but also perpendicular to the plane of the diaphragm. This stacking
of coils provides more conductors within the magnetic or electrostatic flux field
of the transducer, with a resulting increase in efficiency.
[0009] The electromagnetic transducer disclosed herein invention also provides an improved
means for producing the magnetic field in which the diaphragm is placed. A non-ferrous
support for the magnets is used. The non-ferrous support does not distort the magnetic
field and can provide additional protection against a short circuit with the conductors
on the diaphragm if an insulating plastic is used as the non-ferrous support. The
non-ferrous support can also provide environmental protection to the magnets. The
support can be, for example, crossarms to which the magnets are attached, or a frame
or block which supports the magnets.
[0010] The magnetic assembly can be produced using a novel technique that eliminates the
difficulties associated with assembling a rigid structure having powerful permanent
magnets. These magnets produce strong opposing forces between adjacent magnets on
the same side of the diaphragm, and strong attractive forces between magnets on opposite
sides of the diaphragm. This assembly technique results in a precisely aligned magnet
structure, and a resulting improvement in the linearity and efficiency of the transducer.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
Fig. 1 depicts an embodiment of the inventive transducer when viewed from the front;
Fig. 2 is a cross-sectional view of the transducer at the cut point indicated in Fig.
1;
Fig. 2A depicts the cross-section of the diaphragm in greater detail;
Fig. 3 depicts a possible means for supporting the magnets of the transducer;
Fig. 4 depicts an alternative magnet support structure;
Fig. 5 depicts a possible pattern of conductors on the diaphragm;
Fig. 6 depicts an alternative arrangement of conductors within the diaphragm allowing
more than a single conductor layer;
Fig. 7 is an exposed view at the point indicated in Fig. 1, depicting how distinct
patterns of conductors are connected to an outside signal source; and
Fig. 8 depicts how multiple instances of the transducer can be connected to form a
system.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] Fig. 1 depicts an embodiment of the planar electromechanical transducer as seen from
the front of the transducer. Fig. 2 is a cross-sectional view of the transducer at
the cut indicated on Fig. 1. With reference to Fig. 1, the major components of this
embodiment of the electromagnetic transducer are a multilayered diaphragm 110, a frame
101 supporting diaphragm 110, and two magnet assemblies, one on each side of diaphragm
110. The front magnet assembly has a number of elongated permanent magnets 105 supported
by cross-arms 102, while the back magnet assembly has permanent magnets 106 supported
by cross-arms 103. The frame 101 and front and back magnet assemblies (i.e. magnets
105 with cross-arms 102 and magnets 106 with cross-arms 103) are joined together by
screws 104 and spacers 111 and 112 as depicted in Fig. 2.
[0013] Diaphragm 110 has three layers as depicted in Fig. 2A. An electrical conductor layer
221 is enclosed between two electrically-insulating layers 220 and 222. The electrical
conductor layer 221 has one or more conductors (in this embodiment layer 221 has a
plurality of conductors in the form of coils - see Fig. 5). In operation, electrical
conductor layer 221 is suspended within an electromagnetic field. When an electrical
current flows through the conductors, both magnetic and electrostatic fields develop
around each conductor. These fields interact with the electromagnetic field in which
the diaphragm is suspended, resulting in a force that displaces the diaphragm either
toward the front or rear of the transducer, depending on the direction and magnitude
of the current flowing through the conductors. This mechanical displacement of the
diaphragm moves the surrounding air to create an audio signal corresponding to the
electrical signal applied to the conductors, so that the transducer acts as a loudspeaker.
A smaller version of the transducer could be used in a headphone.
[0014] Without any changes, this embodiment of the transducer can also generate an electrical
signal based on the displacement of the diaphragm, as might be caused by audio vibrations
from the surrounding air, permitting its use as a microphone. In this case, the movement
of the conductors within the electromagnetic field induces a current flow in the conductors.
These two modes of operation are common to most electromagnetic transducers. To simplify
the following discussion, only the mode of operation where an electrical input signal
causes the displacement of the diaphragm is discussed, but it should be kept in mind
that the transducer can also be used to generate an electrical signal and, therefore
has other applications (e.g. as a microphone).
[0015] Although a preferred embodiment uses permanent magnets to generate the electromagnetic
field, a number of other techniques exist. For example, the electromagnetic field
can also be formed by one or more electromagnets or can be an electrostatic field,
such as a field found between two charged plates.
[0016] In the preferred embodiment, the electromagnetic field is generated by the use of
permanent magnets 105 and 106 supported by cross-arms 102 and 103 as shown in Fig.
2. Permanent magnets 105 are arranged so that they have the same polarity (either
north or south) toward diaphragm 110 and permanent magnets 106 are arranged so they
have the opposite polarity as magnets 105 toward diaphragm 110. The center-to-center
spacing between magnets 105 is uniform and identical to the center-to-center spacing
between magnets 106. Magnets 105 are offset from magnets 106 so that the centerline
of each magnet 105 corresponds to the center of the space between two magnets 106
as shown in Fig. 2. This results in a linear pattern for the lines of flux between
magnets 105 and 106.
[0017] There are a number of ways of attaching permanent magnets 105 and 106 to support
cross-arms 102 and 103. In this preferred embodiment of the invention, as shown in
Fig. 2, the castings of magnetic material 210 are bonded to backings 211 made of non-ferrous
material, such as fiberglass or plastic. Magnetic material 210 can be bonded to backings
211 by epoxy resin or any other suitable means of bonding or attachment. Backings
211 are bonded to the cross-arms 102 or 103 using epoxy resin, plastic rivets or screws,
or any other suitable means of attachment. Preferably the backing or other attachment
means is made from a non-ferrous material so as to minimize any adverse effect on
the linearity of the magnetic field. Non-ferrous material can also be used for cross-arms
102 and 103 to minimize unwanted coupling of magnetic fields of two adjacent magnets.
The non-ferrous cross-arms provide the non-ferrous support for magnets 105 and 106.
This non-ferrous support and the magnets form the magnetic assembly. Other forms of
support for the magnetics can be used (e.g. see Fig. 4). As depicted in Fig. 3, the
magnetic material (e.g. magnets) 351 can be enclosed in enclosure 352 which is a rectangular
tube plastic extrusion (or other form of enclosure). Other enclosures or partial enclosures
of non-ferrous material can be used to enclose or partially enclose the magnetic material.
The enclosure (or partial enclosure) can be color-coded to indicate the frequency
range of the transducer or for other informational purposes. The non-ferrous material
used for the support can be any non-ferrous material which has sufficient structural
integrity to support magnets 105 and 106. Fiberglass and plastic are well suited for
this purpose.
[0018] As depicted in Fig. 2, cross-arms 102 and 103 are attached to frame assembly 101
with screws 104. Frame 101 supports diaphragm 110. Spacers 111 and 112 separate cross-arms
102 and 103 from frame 101 by a fixed distance. The distance between diaphragm 110
and magnets 105 and 106 can be varied to produce transducers with different frequency
response characteristics. An increase in distance results in a transducer with a lower
frequency response.
[0019] Fig. 4 depicts an alternative means for supporting the magnets. Instead of cross-arms,
a formed block of non-ferrous material 400 is used. The block functions as a frame
which supports the magnets. Any plastic or other non-ferrous material with suitable
strength can be utilized for this support. The block can be formed by many different
methods including, but not limited to, thermo-forming, vacuum forming, injection molding,
or machining. Machined into block 400 are channels 402 to hold magnets 401, and openings
403 that allow the sound produced by the transducer to leave the transducer. Magnets
401 are bonded to block 400 in channels 402 using epoxy resin or any other suitable
means of attachment. Raised portions 404 of block 400 act as spacers 111 and 112 (depicted
in Fig. 2) to provide a means of attachment to frame 101 supporting diaphragm 110.
[0020] A preferred technique for constructing the magnets is to use unmagnetized Alnico
(aluminum, nickel and cobalt) alloy material, either precast into the desired elongated
shape if the magnets are to be bonded to a non-ferrous backing support or as a powder
poured into an extruded rectangular tube support. After all parts of the magnet assembly
have been connected together, the entire assembly can be placed within an electromagnet
or solenoid powered by the discharge of a capacitor bank. Activation of the electromagnet
or Solenoid produces a large electromagnetic pulse that magnetizes the magnetic material
of the assembly with the desired polarity.
[0021] As shown in Fig. 2A, diaphragm 110 has an electrical conductor layer 221 (i.e. conductors
221) positioned between two layers of electrically-insulating material 220 and 222.
The materials for insulating layers 220 and 222 preferably are thick enough to prevent
damage at the maximum excursion of diaphragm 110. However, if the materials are not
flexible enough, a strong input signal will be necessary to produce the desired diaphragm
displacements, resulting in low speaker efficiency. A 1 mil thin-film polyester, such
as Mylar, for layer 220 and a 1 mil thin-film silent such as Kapton Type H, for layer
222 (both manufactured by E. I. DuPont de Nemours & Co., Inc. of Wilmington, Delaware)
have proven satisfactory. Different thicknesses and a broad range of electrically
insulating materials can be used. Different electrically insulating materials can
be used to alter the frequency response of the transducer. Because of the natural
attraction between the Mylar and the Kapton layers, no adhesive or other means is
needed to bond the two layers together. Preferably, the insulating materials are different
and have an attraction to each other that facilitates bonding. Electrical conductor
layer 221 is positioned between (and in this embodiment is enclosed by) insulating
layers 220 and 222.
[0022] Electrical conductor layer 221 can be produced from light gauge wires sandwiched
between insulating layers 220 and 222. The conductor layer may be formed by printing
or plating the wires to one of the insulating layers, or by laminating or vapor depositing
a metallic coating on one of the insulating layers, and then removing the metal by
etching (or a similar process) from those areas where conductors are not desired.
Any other means for producing one or more electrical conductors for the electrical
conductor layer can be used.
[0023] For example, a metal removal method using an aluminized Mylar such as Colortone from
Hurd Hastings can be employed to form one of the insulating layers and the conductors.
A pattern consisting of the negative of the desired conductor pattern is printed on
a sheet of paper using either an electrostatic copier or a laser printer. The side
of the paper with the pattern is then placed against the aluminized side of the Mylar,
and both are run through a heat and pressure fuser similar to one found on an electrostatic
copier or laser printer. This results in the aluminum bonding to the negative pattern
because of the pattern's higher temperature. When the paper and the Mylar are separated,
the desired conductor pattern remains on the Mylar.
[0024] As mentioned previously, diaphragm 110 is supported by frame 101. As seen in Fig.
2, frame 101 can be made from identical subframes 201 and 202. Diaphragm 110 is sandwiched
between the two subframes, with double-sided adhesive strips 203 used to further secure
diaphragm 110 to subframes 201 and 202.
[0025] As depicted in Fig. 5, the electrical conductors of layer 221 of diaphragm 110 are
in the form of separate coils 312. When a voltage is placed across terminals 301 and
302, an electrical current flows such that the vertical direction of the current in
coil region 313 is opposite the vertical direction of the current flowing in region
314. The length of coils 312 is such that horizontal conductor regions 310 and 311
are outside the principle magnetic flux field produced by magnets 105 and 106.
[0026] The width of each coil 312 is identical to the center-to-center spacing of magnets
105 (which, as previously discussed, is also the center-to-center spacing of magnets
106). Diaphragm 110 is positioned in frame 101 such that the center of each coil 312
corresponds to the center of each front magnet 105. The number of vertical conductor
lines in regions 313 and 314 of coils 312 depends on the width of the conductor. A
smaller conductor line width enables the placement of more conductor lines in the
regions and thereby results in an increased impedance for the coils and also increases
the force between the coil and the magnets, thus improving the efficiency of sound
production.
[0027] Fig. 6 illustrates how the diaphragm can be further layered to permit a plurality
of conductor layers. Fig. 6 depicts an implementation with three conductor layers
605, 606, and 607, contained within electrically insulating layers 601, 602, 603,
and 604. Using a plurality of conductor layers such as shown in Fig. 6 allows more
vertical conductors to be placed within the electromagnetic field, thereby improving
the efficiency of the transducer. The depiction of three conductor layers in Fig.
6 is merely illustrative of how the invention allows a plurality of conductor layers,
and should not be viewed as limiting the scope of the invention to a particular number
of conductor layers.
[0028] As seen in Fig. 5, each coil has two terminals 301 and 302. Fig. 7 shows one possible
way of connecting these coils together and to the signal source. Double-sided printed
circuit card 701 contains conductive traces 702 and 703 on one side and plated-through
holes 704 and 705 which provide an electrical connection to contact points 301 and
302 on the side of card 701 opposite the conductive traces 702 and 703. Contact point
705 is pressed against coil terminal 301 and contact point 704 is pressed against
coil terminal 302 to provide the necessary electrical connections. Depending on the
pattern of traces 702 and 703, the coils can be connected in series, parallel, or
any other series-parallel configuration. A configuration means, such as switches,
can be used to select different series-parallel configurations, allowing the user
to alter the impedance of the transducer to match the signal source.
[0029] Fig. 8 illustrates how two or more planar electromagnetic transducers can be combined
to form a system capable of handling higher power, producing more acoustic energy,
or providing better frequency response. Each transducer 801 is attached to a frame
802, which can be made of a material such as plastic, for good protection against
environmental concerns, or wood, providing a pleasing appearance for a loudspeaker
used in a home audio system.
[0030] The individual transducers of the system can be connected either as a series electrical
circuit, giving a system impedance equal to the sum of the impedances of the transducers;
a parallel circuit, giving a system impedance equal to the impedance of an individual
transducer divided by the number of transducers; or a series-parallel circuit, giving
an impedance somewhere between these two values. A configuration means, such as switches,
can be used to select different series-parallel configurations, allowing the user
to alter the impedance of the transducer to match the signal source.
[0031] Alternatively, the individual transducers can be configured with different frequency
responses by using different materials for the diaphragm or by varying the distance
between the diaphragm and the magnets. A frequency selective network, such as a cross-over
network commonly employed in conventional speaker systems, can be used to route the
appropriate frequency ranges from the input signal to the proper transducers. The
techniques for connecting multiple transducers using a frequency selective network
is well known to persons with ordinary skills in the art. To aid in the identification
of transducers with particular frequency ranges, their diaphragms can be constructed
from color-coded material and the magnet assemblies can be similarly color-coded.
[0032] It is to be understood that the above described arrangements are merely illustrative
of numerous and varied other arrangements which may constitute applications of the
principles of the invention. Such other may be readily devised by those skilled in
the art without departing from the scope of this invention as defined by the claims.
1. An electromagnetic transducer comprising;
(a) a flexible diaphragm (110) comprised of:
(i) a first insulating layer (222) of flexible and pliable, electrically-insulating material,
(ii) a second insulating layer (220) of flexible and pliable, electrically-insulating material, and
(iii) an electrical conductor layer (221) comprised of a conductor pattern positioned between said first (222) and said second insulating layers (220), whereby no electrical conductor layer material is present on the surface of the
diaphragm,
(b) means for generating an electromagnetic field in which said diaphragm resides
including at least one magnet (210); and,
(c) non-ferrous support means (101, 102, 103, 111, 112) for both the diaphragm and said means for generating an electromagnetic field.
2. The electromagnetic transducer of claim 1 wherein at least one of said first (222) and second insulating layers (220) is formed of one of Kapton and Mylar
3. The electromagnetic transducer of claim 1 adapted to act as an audio loudspeaker.
4. The electromagnetic transducer of claim 1 adapted to act as a microphone.
5. The electromagnetic transducer of claim 1 wherein the impedance of the transducer
can be altered to match the signal source.
6. The electromagnetic transducer of claim 1 further comprising a plurality of insulating
layers (601, 602, 603, 604) and a plurality of electrical conductors layers (605, 606, 607) in said flexible diaphragm (110) which are positioned such that there is at least one insulating layer between each
electrical conductor layer and no electrical conductor layer material is present on
the surface of the diaphragm.
7. The electromagnetic transducer of claim 1 wherein said electrical conductor layer
comprises a plurality of coils (312).
8. The electromagnetic transducer of claim 7 wherein said plurality of coils (312) are connected in parallel to a plurality of signal sources.
9. The electromagnetic transducer of claim 8 wherein two or more coils of said plurality
of coils (312) are configured to be optimized for different frequency response ranges.
10. A method of constructing an electromagnetic transducer comprising:
(a) forming a flexible diaphragm (110) by:
(i) selecting a first insulating layer (222) of flexible and pliable electrically-insulating material;
(ii) placing an electrical conductor layer (221) having a conductor pattern on one side of said first insulating layer; and,
(iii) forming a second insulating layer (220) such that said electrical conductor layer (221) is positioned between said first (222) and second insulating layers (220) and no electrical conductor layer material is present on the surface of the diaphragm
(110);
(b) placing said diaphragms (110) within a magnetic field created by one or more magnets (210); and
(c) affixing both said diaphragm (110) and said one or more magnets (210) to non-ferrous support means.
1. Elektromagnetischer Wandler, umfassend:
(a) eine flexible Membran (110), bestehend aus:
(i) einer ersten Isolierschicht (222) aus einem flexiblen und biegsamen, elektrisch isolierenden Material,
(ii) einer zweiten Isolierschicht (220) aus einem flexiblen und biegsamen, elektrisch isolierenden Material, und
(iii) einer Stromleiterschicht (221), die aus einem zwischen der ersten (222) und der zweiten Isolierschicht (220) angeordneten Leitermuster besteht, wobei kein Stromleiterschichtmaterial auf der
Oberfläche der Membran vorhanden ist,
(b) Mittel zur Erzeugung eines elektromagnetischen Feldes, in dem sich die Membran
befindet, die wenigstens einen Magneten (210) einschließen; und
(c) nichteisenhaltige Trägermittel (101, 102, 103, 111, 112) für sowohl die Membran als auch die Mittel zur Erzeugung eines elektromagnetischen
Feldes.
2. Elektromagnetischer Wandler nach Anspruch 1, bei dem wenigstens eine der ersten (222) und zweiten Isolierschichten (220) aus einem der Materialien Kapton und Mylar gebildet ist.
3. Elektromagnetischer Wandler nach Anspruch 1, der dafür ausgelegt ist, als Lautsprecher zu wirken.
4. Elektromagnetischer Wandler nach Anspruch 1, der dafür ausgelegt ist, als Mikrophon zu wirken.
5. Elektromagnetischer Wandler nach Anspruch 1, bei dem die Impedanz des Wandlers verändert werden kann, um der Signalquelle zu
entsprechen.
6. Elektromagnetischer Wandler nach Anspruch 1, der außerdem eine Mehrzahl von Isolierschichten (601, 602, 603, 604) und eine Mehrzahl von Stromleiterschichten (605, 606, 607) in der flexiblen Membran (110) umfaßt, die so angeordnet sind, daß sich wenigstens eine Isolierschicht zwischen
jeder Stromleiterschicht befindet und kein Stromleiterschichtmaterial auf der Oberfläche
der Membran vorhanden ist.
7. Elektromagnetischer Wandler nach Anspruch 1, bei dem die Stromleiterschicht eine Mehrzahl von Spulen (312) umfaßt.
8. Elektromagnetischer Wandler nach Anspruch 7, bei dem die Mehrzahl von Spulen (312) parallel an eine Mehrzahl von Signalquellen geschaltet ist.
9. Elektromagnetischer Wandler nach Anspruch 8, bei dem zwei oder mehr Spulen der Mehrzahl von Spulen (312) so konfiguriert sind, daß sie für verschiedene Frequenzbereiche optimiert sind.
10. Verfahren zum Bau eines elektromagnetischen Wandlers, umfassend:
(a) das Bilden einer flexiblen Membran (110) durch:
(i) Auswählen einer ersten Isolierschicht (222) aus einem flexiblen und biegsamen elektrisch isolierenden Material;
(ii) Anordnen einer Stromleiterschicht (221) mit einem Leitermuster auf einer Seite der ersten Isolierschicht; und
(iii) Bilden einer zweiten Isolierschicht (220), so daß die Stromleiterschicht (221) zwischen der ersten (222) und der zweiten Isolierschicht (220) angeordnet ist und kein Stromleiterschichtmaterial auf der Oberfläche der Membran
(110) vorhanden ist;
(b) das Anordnen der Membran (110) in einem Magnetfeld, das von wenigstens einem Magneten (210) erzeugt wird; und
(c) das Befestigen sowohl der Membran (110) als auch des wenigstens einen Magneten (210) an nichteisenhaltigen Trägermitteln.
1. Transducteur électromagnétique comprenant :
(a) un diaphragme flexible (110) constitué par :
(i) une première couche isolante (222) d'un matériau, électriquement isolant, flexible
et pliable,
(ii) une seconde couche isolante (220) formée d'un matériau électriquement isolant,
flexible et pliable, et
(iii) une couche (221) formant conducteur électrique, qui est constituée par une configuration
conductrice disposée entre ladite première couche isolante (222) et ladite seconde
couche isolante (220), aucun matériau d'une couche formant conducteur électrique n'étant
présent sur la surface du diaphragme,
(b) des moyens pour produire un champ électrique dans lequel ledit diaphragme est
situé, comprenant au moins un aimant (210); et
(c) des moyens de support non ferreux (101,102,103,111, 112) à la fois pour le diaphragme
et lesdits moyens pour produire un champ électromagnétique.
2. Transducteur électromagnétique selon la revendication 1, dans lequel au moins l'une
desdites première et seconde couches isolantes (220) est formée de Kapton ou de Mylar.
3. Transducteur électromagnétique selon la revendication 1, adapté pour agir en tant
que haut-parleur audio.
4. Transducteur électromagnétique selon la revendication 1, adapté pour agir en tant
que microphone.
5. Transducteur électromagnétique selon la revendication 1, dans lequel l'impédance du
transducteur peut être modifiée pour réaliser une adaptation à la source de signaux.
6. Transducteur électromagnétique selon la revendication 1, comprenant en outre une pluralité
de couches isolantes (601, 602, 603, 604) et une pluralité de couches formant conducteurs
électriques (605, 606, 607) situés dans ledit diaphragme flexible (110) et qui sont
positionnées de telle sorte qu'il existe au moins une couche isolante disposée entre
chaque couche formant conducteur électrique, et qu'aucun matériau d'une couche formant
conducteur électrique n'est présent sur la surface du diaphragme.
7. Transducteur électromagnétique selon la revendication 1, dans lequel ladite couche
formant conducteur électrique comprend une pluralité de bobines (312).
8. Transducteur électromagnétique selon la revendication 7, dans lequel ladite pluralité
de bobines (312) sont connectées en parallèle avec une pluralité de sources de signaux.
9. Transducteur électromagnétique selon la revendication 8, dans lequel deux ou plusieurs
bobines de ladite pluralité de bobines (312) sont configurées de manière à être optimisées
pour différentes gammes de réponse en fréquence.
10. Procédé pour fabriquer un transducteur électromagnétique comprenant :
(a) la formation d'un diaphragme flexible (110) par :
(i) sélection d'une première couche isolante (222) formée d'un matériau électriquement
isolant, flexible et pliable,
(ii) mise en place d'une couche formant conducteur électrique (221) possédant une
configuration conductrice sur une face de ladite première couche isolante; et
(iii) formation d'une seconde couche isolante (220) de telle sorte que ladite couche
formant conducteur électrique (221) est positionnée entre ladite première couche isolante
(222) et ladite seconde couche isolante (220), et qu'aucun matériau d'une couche formant
conducteur électrique n'est présent sur la surface du diaphragme (110),
(b) mise en place desdits diaphragmes (110) dans un champ magnétique créé par un ou
plusieurs aimants (210); et
(c) fixation à la fois dudit diaphragme (110) et dudit un ou plusieurs aimants (210)
sur des moyens de support non ferreux.