TECHNICAL FIELD
[0001] The invention relates to loudspeakers and more particularly to loudspeakers comprising
panel-form acoustic radiating elements.
BACKGROUND ART
[0002] It is known from GB-A-2262861 to suggest a panel-form loudspeaker comprising:-
a resonant multi-mode radiator element being a unitary sandwich panel formed of two
skins of material with a spacing core of transverse cellular construction, wherein
the panel is such as to have ratio of bending stiffness (B), in all orientations,
to the cube power of panel mass per unit surface area (µ) of at least 10;
a mounting means which supports the panel or attaches to it a supporting body, in
a free undamped manner;
and an electro-mechanical drive means coupled to the panel which serves to excite
a multi-modal resonance in the radiator panel in response to an electrical input within
a working frequency band for the loudspeaker.
[0003] US-A-3,247,925 of WARNAKA discloses what purports to be a low frequency resonant
panel loudspeaker mounted in a chassis and excited by an electromechanical transducer
mounted on the chassis.
DISCLOSURE OF INVENTION
[0004] Embodiments of the present invention use members of nature, structure and configuration
achievable generally and/or specifically by implementing teachings of our co-pending
PCT publication No. WO97/09842 of even date herewith. Such members thus have capability
to sustain and propagate input vibrational energy by bending waves in operative area(s)
extending transversely of thickness often but not necessarily to edges of the member(s);
are configured with or without anisotropy of bending stiffness to have resonant mode
vibration components distributed over said area(s) beneficially for acoustic coupling
with ambient air; and have predetermined preferential locations or sites within said
area for transducer means, particularly operationally active or moving part(s) thereof
effective in relation to acoustic vibrational activity in said area(s) and signals,
usually electrical, corresponding to acoustic content of such vibrational activity.
Uses are envisaged in co-pending International publication No. WO97/09842 of even
date herewith for such members as or in "passive" acoustic devices without transducer
means, such as for reverberation or for acoustic filtering or for acoustically "voicing"
a space or room; and as or in "active" acoustic devices with transducer means, such
as in a remarkably wide range of sources of sound or loudspeakers when supplied with
input signals to be converted to said sound, or in such as microphones when exposed
to sound to be converted into other signals.
[0005] This invention is particularly concerned with active acoustic devices in the form
of loudspeakers. Members as above are herein called distributed mode acoustic radiators
and are intended to be characterised as in the above PCT application and/or otherwise
as specifically provided herein.
[0006] The invention is a panel-form loudspeaker having a member comprising a stiff lightweight
panel having capability to sustain and propagate input vibrational energy by bending
waves in at least one operative area extending transversely of thickness to have resonant
mode vibration components distributed over said at least one area and have predetermined
preferential locations or sites within said area for transducer means and having first
and second transducers mounted on said member at two of said locations or sites to
vibrate the member to cause it to resonate forming an acoustic radiator which provides
an acoustic output when resonating. The first and second transducers may be adapted
to operate in different frequency ranges. The radiator may have a cellular core sandwiched
between skins. The loudspeaker may comprise a frame supporting the radiator, and a
resilient suspension by which the radiator is attached to the frame. The frame may
surround the radiator, and the suspension may be attached to the edge of the radiator.
The first and second transducers may be mounted wholly and exclusively on the radiator.
One of the transducers may be electromagnetic. One of the transducers may be piezo-electric.
The panel-form loudspeaker may comprise a second member having capability to sustain
and propagate input vibrational energy by bending waves in at least one operative
area extending transversely of thickness to have resonant mode vibration components
distributed over said at least one area and have predetermined preferential locations
or sites within said area for transducer means and having a transducer mounted on
said member at one of said locations or sites to vibrate the member to cause it to
resonate forming an acoustic radiator which provides an acoustic output when resonating,
the second member being mounted on or in the first said member, and a resilient suspension
coupling the first and second members. The second member may be mounted in an aperture
in the first member. The second transducer may be mounted wholly and exclusively on
the second member.
BRIEF DESCRIPTION OF DRAWINGS
[0007] The invention is diagrammatically illustrated, by way of example, in the accompanying
drawings, in which:-
Figure 1 is a diagram showing a distributed-mode loudspeaker as described and claimed
in our co-pending International application No. WO97/09842;
Figure 2a is a partial section on the line A-A of Figure 1;
Figure 2b is an enlarged cross-section through a distributed mode radiator of the
kind shown in Figure 2a and showing two alternative constructions;
Figure 3 is a diagram of a first embodiment of distributed-mode loudspeaker according
to the present invention;
Figure 4 is a diagram of a second embodiment of distributed mode loudspeaker according
to the invention;
Figure 5 is a diagram of a third embodiment of distributed mode loudspeaker according
to the invention;
Figure 6 is a diagram of a fourth embodiment of distributed mode loudspeaker according
to the invention, and
Figure 7 is a perspective diagram of a transducer.
BEST MODES FOR CARRYING OUT THE INVENTION
[0008] Referring to Figure 1 of the drawings, there is shown a panel-form loudspeaker (81)
of the kind described and claimed in our co-pending International application No.
WO97/09842 of even date herewith comprising a rectangular frame (1) carrying a resilient
suspension (3) round its inner periphery which supports a distributed mode sound radiating
panel (2). A transducer (9) e.g as described in detail with reference to our co-pending
International publication Nos. WO97/09859, WO97/09861, WO97/09858 even date herewith,
is mounted wholly and exclusively on or in the panel (2) at a predetermined location
defined by dimensions
x and
y, the position of which location is calculated as described in our co-pending International
publication No. WO97/09842 of even date herewith, to launch bending waves into the
panel to cause the panel to resonate to radiate an acoustic output.
[0009] The transducer (9) is driven by a signal amplifier (10), e.g. an audio amplifier,
connected to the transducer by conductors (28). Amplifier loading and power requirements
can be entirely normal, similar to conventional cone type speakers, sensitivity being
of the order of 86 - 88dB/watt under room loaded conditions. Amplifier load impedance
is largely resistive at 6 ohms, power handling 20-80 watts. Where the panel core and/or
skins are of metal, they may be made to act as a heat sink for the transducer to remove
heat from the motor coil of the transducer and thus improve power handling.
[0010] Figures 2
a and 2
b are partial typical cross-sections through the loudspeaker (81) of Figure 1. Figure
2
a shows that the frame (1), surround (3) and panel (2) are connected together by respective
adhesive-bonded joints (20). Suitable materials for the frame include lightweight
framing, e.g. picture framing of extruded metal e.g. aluminium alloy or plastics.
Suitable surround materials include resilient materials such as foam rubber and foam
plastics. Suitable adhesives for the joints (20) include epoxy, acrylic and cyano-acrylate
etc. adhesives.
[0011] Figure 2
b illustrates, to an enlarged scale, that the panel (2) is a rigid lightweight panel
having a core (22) e.g. of a rigid plastics foam (97) e.g. cross linked polyvinylchloride
or a cellular matrix (98) i.e. a honeycomb matrix of metal foil, plastics or the like,
with the cells extending transversely to the plane of the panel, and enclosed by opposed
skins (21) e.g. of paper, card, plastics or metal foil or sheet. Where the skins are
of plastics, they may be reinforced with fibres e.g. of carbon, glass, Kevlar (RTM)
or the like in a manner known
per se to increase their modulus.
[0012] Envisaged skin layer materials and reinforcements thus include carbon, glass, Kevlar
(RTM), Nomex (RTM) i.e. aramid etc. fibres in various lays and weaves, as well as
paper, bonded paper laminates, melamine, and various synthetic plastics films of high
modulus, such as Mylar (RTM), Kaptan (RTM), polycarbonate, phenolic, polyester or
related plastics, and fibre reinforced plastics, etc. and metal sheet or foil. Investigation
of the Vectra grade of liquid crystal polymer thermoplastics shows that they may be
useful for the injection moulding of ultra thin skins or shells of smaller size, say
up to around 30cm diameter. This material self forms an orientated crystal structure
in the direction of injection, a preferred orientation for the good propagation of
treble energy from the driving point to the panel perimeter.
[0013] Additional such moulding for this and other thermoplastics allows for the mould tooling
to carry location and registration features such as grooves or rings for the accurate
location of transducer parts e.g. the motor coil, and the magnet suspension. Additional
with some weaker core materials it is calculated that it would be advantageous to
increase the skin thickness locally e.g. in an area or annulus up to 150% of the transducer
diameter, to reinforce that area and beneficially couple vibration energy into the
panel. High frequency response will be improved with the softer foam materials by
this means.
[0014] Envisaged core layer materials include fabricated honeycombs or corrugations of aluminium
alloy sheet or foil, or Kevlar (RTM), Nomex (RTM), plain or bonded papers, and various
synthetic plastics films, as well as expanded or foamed plastics or pulp materials,
even aerogel metals if of suitably low density. Some suitable core layer materials
effectively exhibit usable self-skinning in their manufacture and/or otherwise have
enough inherent stiffness for use without lamination between skin layers. A high performance
cellular core material is known under the trade name 'Rohacell' which may be suitable
as a radiator panel and which is without skins. In practical terms, the aim is for
an overall lightness and stiffness suited to a particular purpose, specifically including
optimising contributions from core and skin layers and transitions between them.
[0015] Several of the preferred formulations for the panel employ metal and metal alloy
skins, or alternatively a carbon fibre reinforcement. Both of these, and also designs
with an alloy Aerogel or metal honeycomb core, will have substantial radio frequency
screening properties which should be important in several EMC applications. Conventional
panel or cone type speakers have no inherent EMC screening capability.
[0016] In addition the preferred form of piezo and electro dynamic transducers have negligible
electromagnetic radiation or stray magnet fields. Conventional speakers have a large
magnetic field, up to 1 metre distant unless specific compensation counter measures
are taken.
[0017] Where it is important to maintain the screening in an application, electrical connection
can be made to the conductive parts of an appropriate DML panel or an electrically
conductive foam or similar interface may be used for the edge mounting.
[0018] The suspension (3) may damp the edges of the panel (2) to prevent excessive edge
movement of the panel. Additionally or alternatively, further damping may be applied,
e.g. as patches, bonded to the panel in selected positions to damp excessive movement
to distribute resonance equally over the panel. The patches may be of bitumen-based
material, as commonly used in conventional loudspeaker enclosures or may be of a resilient
or rigid polymeric sheet material. Some materials, notably paper and card, and some
cores may be self-damping. Where desired, the damping may be increased in the construction
of the panels by employing resiliently setting, rather than rigid setting adhesives.
[0019] Effective said selective damping includes specific application to the panel including
its sheet material of means permanently associated therewith. Edges and corners can
be particularly significant for dominant and less dispersed low frequency vibration
modes of panels hereof. Edge-wise fixing of damping means can usefully lead to a panel
with its said sheet material fully framed, though their corners can often be relatively
free, say for desired extension to lower frequency operation. Attachment can be by
adhesive or self-adhesive materials. Other forms of useful damping, particularly in
terms of more subtle effects and/or mid- and higher frequencies can be by way of suitable
mass or masses affixed to the sheet material at predetermined effective medial localised
positions of said area.
[0020] An acoustic panel as described above is bidirectional. The sound energy from the
back is not strongly phase related to that from the front. Consequently there is the
benefit of overall summation of acoustic power in the room, sound energy of uniform
frequency distribution, reduced reflective and standing wave effects and with the
advantage of superior reproduction of the natural space and ambience in the reproduced
sound recordings.
[0021] While the radiation from the acoustic panel is largely non-directional, the percentage
of phase related information increases off axis. For improved focus for the phantom
stereo image, placement of the speakers, like pictures, at the usual standing person
height, confers the benefit of a moderate off-axis placement for the normally seated
listener optimising the stereo effect. Likewise the triangular left/right geometry
with respect to the listener provides a further angular component. Good stereo is
thus obtainable.
[0022] There is a further advantage for a group of listeners compared with conventional
speaker reproduction. The intrinsically dispersed nature of acoustic panel sound radiation
gives it a sound volume which does not obey the inverse square law for distance for
an equivalent point source. Because the intensity fall-off with distance is much less
than predicted by inverse square law then consequently for off-centre and poorly placed
listeners the intensity field for the panel speaker promotes a superior stereo effect
compared to conventional speakers. This is because the off-centre placed listener
does not suffer the doubled problem due to proximity to the nearer speaker; firstly
the excessive increase in loudness from the nearer speaker, and then the corresponding
decrease in loudness from the further loudspeaker.
[0023] There is also the advantage of a flat, lightweight panel-form speaker, visually attractive,
of good sound quality and requiring only one transducer and no crossover for a full
range sound from each panel diaphragm.
[0024] Figure 3 illustrates a panel-form loudspeaker (81) generally similar to that shown
in Figures 1 and 2 and in which the distributed mode panel (2) is formed with a generally
rectangular aperture (82) within its boundaries in which is mounted a second distributed
mode sound radiating panel (4) with a resilient suspension (3) interposed between
the respective panels. The panel (4) is constructed in the same manner as the panel
(2), e.g. with a central core (22) separating skins (21). The panel (4) is driven
by its own transducer (9) mounted wholly and exclusively on or in the panel (4) at
a predetermined location to produce a high frequency acoustic output, while the panel
(2) is driven by a separate transducer (9) to produce an acoustic output of lower
frequency, so that the loudspeaker can readily encompass the whole acoustic spectrum.
Such an arrangement may be useful if losses in the material of the panel tend to attenuate
high frequencies. More than one transducer may be mounted on each or one of the panel
to improve performance.
[0025] Figure 4 illustrates how a distributed mode panel (2) according to the present invention,
and for example of the kind shown in Figures 1 and 2, can be driven to resonate by
a pair (70,71) of transducers (9). The smaller one of the transducers (70) is a high
frequency piezo transducer, e.g. of the kind shown in Figure 7, and the larger one
of the transducers (71) is of the electrodynamic kind, e.g. as shown in our co-pending
International publication Nos. WO97/09859, WO97/09861, WO97/09858.
[0026] The transducers (70,71) are driven by an amplifier (10) coupled in parallel to the
respective transducers with the interposition of a step-up transformer (72) and matching
resistance (73) in the line to the piezo transducer in view of its relatively high
voltage requirement. If desired more than one transducer (70) and/or transducer (71)
may be provided to improve the performance.
[0027] Figure 5 illustrates how a distributed mode panel (2) according to the present invention,
e.g. of the kind shown in Figures 1 and 2, can be driven by a pair (70,74) of transducers
(9), the transducer (70) being a high frequency piezo-electric transducer e.g. of
the kind shown in Figure 7 and the transducer (74) being a low frequency piezo-electric
transducer of the kind shown in our co-pending International publication No. WO97/09861.
Reference (75) indicates that the transducer (74) is weighted with a mass to increase
its inertia. The transducers (70,74) are driven by an amplifier (10) to which they
are connected in parallel, with resistors (78) interposed to provide a frequency dividing
network. If desired more than one transducer (70) and/or transducer (74) may be provided
to improve the performance.
[0028] Figure 6 illustrates how a distributed mode panel (2) according to the present invention,
e.g. of the kind shown in Figures 1 and 2, can be driven by a pair (68,69) of electrodynamic
transducers, e.g. of the kinds shown in our co-pending International publication Nos.
WO97/09859, WO97/09861, WO97/09858.
[0029] The transducer (68) is intended as a high frequency driver and is thus of low inductance,
whereas the transducer (69) is intended as a low frequency driver and is of high inductance.
[0030] The transducers (68,69) are driven in parallel by an amplifier (10) with a capacitor
(77) in the line to the transducer (68) to act as a frequency divider to pass most
of the high frequency signal to the transducer (68). If desired more than one transducer
(68) and/or transducer (69) may be provided to improve the performance.
[0031] Figure 7 shows a transducer (9) for a distributed mode panel (2) in the form of a
crystalline disc-like piezo bender (27) mounted on a disc (118), e.g. of brass, which
is bonded to a face of the panel (2), e.g. by an adhesive bond (20). In operation
an acoustic signal applied to the transducer (9)
via leads (28) will cause the piezo disc (27) to bend and thus locally resiliently deform
the panel (2) to launch bending waves into the panel.
1. A panel-form loudspeaker (81) having a member (2) comprising a stiff lightweight panel
having capability to sustain and propagate input vibrational energy by bending waves
in at least one operative area extending transversely of thickness to have resonant
mode vibration components distributed over said at least one area and have predetermined
preferential locations or sites within said area for transducer means (9) and having
first and second transducers (9) mounted on said member at two of said locations or
sites to vibrate the member to cause it to resonate forming an acoustic radiator which
provides an acoustic output when resonating.
2. A panel-form loudspeaker according to claim 1, characterised in that the first and
second transducers (9) are adapted to operate in different frequency ranges.
3. A panel-form loudspeaker according to claim 1 or claim 2, characterised in that the
radiator has a cellular core (22) sandwiched between skins (21).
4. A panel-form loudspeaker according to claim 3, characterised by a frame (1) supporting
the radiator (2), and by a resilient suspension (3) by which the radiator is attached
to the frame.
5. A panel-form loudspeaker according to claim 4, characterised in that the frame (1)
surrounds the radiator, and in that the suspension is attached to the edge of the
radiator.
6. A panel-form loudspeaker according to any preceding claim, characterised in that the
first and second transducers (9) are mounted wholly and exclusively on the radiator.
7. A panel-form loudspeaker according to any preceding claim, characterised in that one
of the transducers is electromagnetic.
8. A panel-form loudspeaker according to claim 7, characterised in that one of the transducers
is piezo-electric.
9. A panel-form loudspeaker according to any preceding claim, characterised by a second
member (4) having capability to sustain and propagate input vibrational energy by
bending waves in at least one operative area extending transversely of thickness to
have resonant mode vibration components distributed over said at least one area and
have predetermined preferential locations or sites within said area for transducer
means and having a transducer (9) mounted on said member (4) at one of said locations
or sites to vibrate the member to cause it to resonate forming an acoustic radiator
which provides an acoustic output when resonating, the second member (4) being mounted
on or in the first said member (2), and a resilient suspension (3) coupling the first
and second members (2, 4).
10. A panel-form loudspeaker according to claim 9, characterised in that the second member
(4) is mounted in an aperture (82) in the first member (2).
11. A panel-form loudspeaker according to claim 9 or claim 10, characterised in that the
second transducer is mounted wholly and exclusively on the second member (4).
1. Paneelförmiger Lautsprecher (81) mit einem Bauteil (2), das ein steifes leichtes Paneel
mit der Fähigkeit aufweist, eingespeiste Schwingungsenergie aufrechtzuerhalten und
durch Biegewellen in zumindest einer wirksamen Fläche fortzupflanzen, die quer zur
Dicke verläuft, um Resonanzmoden-Schwingungskomponenten über die zumindest eine Fläche
zu verteilen mit vorbestimmten bevorzugten Orten oder Stellen innerhalb der Fläche
für Wandlereinrichtungen (9), und mit ersten und zweiten Wandlern (9), die auf dem
Bauteil an zwei der Orte oder Stellen angebracht sind, um das Bauteil in Schwingung
zu versetzen, um es in Resonanz treten zu lassen, wobei ein akustischer Strahler geschaffen
wird, der ein akustisches Ausgangssignal liefert, wenn er in Resonanz schwingt.
2. Paneelförmiger Lautsprecher nach Anspruch 1, dadurch gekennzeichnet, daß die ersten
und zweiten Wandler (9) dafür ausgelegt sind, in verschiedenen Frequenzbereichen zu
arbeiten.
3. Paneelförmiger Lautsprecher nach Anspruch 1 oder Anspruch 2, dadurch gekennzeichnet,
daß der Strahler einen zwischen Häuten (21) sandwichartig aufgenommenen zellularen
Kern (22) hat.
4. Paneelförmiger Lautsprecher nach Anspruch 3, gekennzeichnet durch einen den Strahler
(2) haltenden Rahmen (1) und durch eine federnde Aufhängung (3), durch die der Strahler
am Rahmen befestigt ist.
5. Paneelförmiger Lautsprecher nach Anspruch 4, dadurch gekennzeichnet, daß der Rahmen
(1) den Strahler umgibt, und dadurch, daß die Aufhängung am Rand des Strahlers befestigt
ist.
6. Paneelförmiger Lautsprecher nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet,
daß die ersten und zweiten Wandler (9) ganz und ausschließlich auf dem Strahler angebracht
sind.
7. Paneelförmiger Lautsprecher nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet,
daß einer der Wandler elektromagnetisch ist.
8. Paneelförmiger Lautsprecher nach Anspruch 7, dadurch gekennzeichnet, daß einer der
Lautsprecher piezoelektrisch ist.
9. Paneelförmiger Lautsprecher nach einem der vorhergehenden Ansprüche, gekennzeichnet
durch ein zweites Bauteil (4) mit der Fähigkeit, eingespeiste Schwingungsenergie aufrechtzuerhalten
und durch Biegewellen in zumindest einer wirksamen Fläche fortzupflanzen, die quer
zur Dicke verläuft, um Resonanzmoden-Schwingungskomponenten über die zumindest eine
Fläche zu verteilen mit vorbestimmten bevorzugten Orten oder Stellen innerhalb der
Fläche für Wandlereinrichtungen, und mit einem Wandler (9), der auf dem Bauteil (4)
an einem der Orte oder Stellen angebracht ist, um das Bauteil in Schwingung zu versetzen,
um es in Resonanz treten zu lassen, wobei ein akustischer Strahler geschaffen wird,
der ein akustisches Ausgangssignal liefert, wenn er in Resonanz schwingt, das zweite
Bauteil (4) auf oder in dem ersten Bauteil (2) angebracht ist und eine federnde Aufhängung
(3) die ersten und zweiten Bauteile (2, 4) koppelt.
10. Paneelförmiger Lautsprecher nach Anspruch 9, dadurch gekennzeichnet, daß das zweite
Bauteil (4) in einer Öffnung (82) im ersten Bauteil (2) angebracht ist.
11. Paneelförmiger Lautsprecher nach Anspruch 9 oder Anspruch 10, dadurch gekennzeichnet,
daß der zweite Wandler ganz und ausschließlich auf dem Bauteil (4) angebracht ist.
1. Un haut-parleur (81) en forme de panneau ayant un élément (2) consistant en un panneau
léger et rigide ayant la possibilité d'entretenir et de faire propager de l'énergie
de vibration d'entrée au moyen d'ondes de flexion, dans au moins une zone active s'étendant
transversalement à l'épaisseur, pour avoir des composantes de vibration de mode résonnant
réparties sur la zone précitée, et pour avoir des emplacements ou des sites préférentiels
prédéterminés à l'intérieur de cette zone pour des moyens à transducteur (9), et ayant
des premier et second transducteur (9) montés sur l'élément à deux des emplacements
ou des sites précités pour faire vibrer l'élément de façon qu'il résonne en formant
un radiateur acoustique qui produit une émission acoustique lorsqu'il résonne.
2. Un haut-parleur en forme de panneau selon la revendication 1, caractérisé en ce que
les premier et second transducteurs (9) sont adaptés pour fonctionner dans des gammes
de fréquences différentes.
3. Un haut-parleur en forme de panneau selon la revendication 1 ou la revendication 2,
caractérisé en ce que le radiateur a une âme cellulaire (22) intercalée entre des
peaux (21).
4. Un haut-parleur en forme de panneau selon la revendication 3, caractérisé en ce qu'il
comporte un cadre (1) supportant le radiateur (2), et une suspension élastique (3)
par laquelle le radiateur est fixé au cadre.
5. Un haut-parleur en forme de panneau selon la revendication 4, caractérisé en ce que
le cadre (1) entoure le radiateur, et en ce que la suspension est fixée au bord du
radiateur.
6. Un haut-parleur en forme de panneau selon l'une quelconque des revendications précédentes,
caractérisé en ce que les premier et second transducteurs (9) sont montés complètement
et exclusivement sur le radiateur.
7. Un haut-parleur en forme de panneau selon l'une quelconque des revendications précédentes,
caractérisé en ce que l'un des transducteurs est électromagnétique.
8. Un haut-parleur en forme de panneau selon la revendication 7, caractérisé en ce que
l'un des transducteurs est piézoélectrique.
9. Un haut-parleur en forme de panneau selon l'une quelconque des revendications précédentes,
caractérisé en ce qu'il comporte un second élément (4) ayant la possibilité d'entretenir
et de faire propager de l'énergie de vibration d'entrée, au moyen d'ondes de flexion,
dans au moins une zone active s'étendant transversalement à l'épaisseur, pour avoir
des composantes de vibration de mode résonnant réparties sur la zone précitée, et
à avoir des emplacements ou des sites préférentiels prédéterminés dans cette zone
pour des moyens à transducteur, et ayant un transducteur (9) monté sur l'élément (4)
à l'un des emplacements ou des sites précités, pour faire vibrer l'élément de façon
qu'il résonne en formant un radiateur acoustique qui produit une émission acoustique
lorsqu'il résonne, le second élément (4) étant monté sur ou dans le premier élément
(2), et une suspension élastique (3) couplant les premier et second éléments (2, 4).
10. Un haut-parleur en forme de panneau selon la revendication 9, caractérisé en ce que
le second élément (4) est monté dans une ouverture (82) dans le premier élément (2).
11. Un haut-parleur en forme de panneau selon la revendication 9 ou la revendication 10,
caractérisé en ce que le second transducteur est monté complètement et exclusivement
sur le second élément (4).