| (19) |
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(11) |
EP 0 965 245 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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22.01.2003 Bulletin 2003/04 |
| (22) |
Date of filing: 27.02.1998 |
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International Patent Classification (IPC)7: H04R 7/10 |
| (86) |
International application number: |
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PCT/GB9800/621 |
| (87) |
International publication number: |
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WO 9803/9947 (11.09.1998 Gazette 1998/36) |
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ACOUSTIC DEVICE
AKUSTISCHES GERÄT
DISPOSITIF ACOUSTIQUE
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| (84) |
Designated Contracting States: |
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AT BE CH DE DK ES FI FR GB IE IT LI NL PT SE |
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Designated Extension States: |
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LT LV RO SI |
| (30) |
Priority: |
04.03.1997 GB 9704486
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| (43) |
Date of publication of application: |
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22.12.1999 Bulletin 1999/51 |
| (60) |
Divisional application: |
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01202058.2 / 1133212 |
| (73) |
Proprietor: New Transducers Limited |
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London SW3 3QH (GB) |
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| (72) |
Inventors: |
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- AZIMA, Henry
Cambridge CB2 2TT (GB)
- COLLOMS, Martin
London NW2 2DA (GB)
- HARRIS, Neil
Cambridge CB2 5JF (GB)
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| (74) |
Representative: Maguire, Peter Albert et al |
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Maguire & Co.
5 Crown Street St. Ives, Cambridgeshire PE27 5EB St. Ives, Cambridgeshire PE27 5EB (GB) |
| (56) |
References cited: :
WO-A-92/03024 FR-A- 2 441 981
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WO-A-97/09842 GB-A- 2 074 812
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- PATENT ABSTRACTS OF JAPAN vol. 14, no. 112 (E-0897), 28 February 1990 & JP 01 311795
A (MINEBEA), 15 December 1989,
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| |
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
FIELD OF THE INVENTION
[0001] This invention relates to acoustic devices capable of acoustic action by bending
waves and typically (but not exclusively) for use in or as loudspeakers.
BACKGROUND TO THE INVENTION
[0002] Our co-pending PCT application no. GB96/02145 (WO-A-9709842) includes general teaching
as to nature, structure and configuration of acoustic panel members having capability
to sustain and propagate input vibrational energy through bending waves in acoustically
operative area(s) extending transversely of thickness usually (if not necessarily)
to edges of the member(s). Specific teaching includes analyses of various specific
panel configurations with or without directional anisotropy of bending stiffness through/across
said area(s) so as to have resonant mode vibration components distributed over said
area(s) beneficially for acoustic coupling with ambient air; and as to having determinable
preferential location(s) within said area(s) for acoustic transducer means, particularly
operationally active or moving part(s) thereof effective in relation to acoustic vibrational
activity in said area(s) and related signals, usually electrical, corresponding to
acoustic content of such vibrational activity. Uses are also envisaged in that PCT
application for such members as or in "passive" acoustic devices, i.e. 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 bending wave transducer
means, including in a remarkably wide range of loudspeakers as sources of sound when
supplied with input signals to be converted to said sound, and also in such as microphones
when exposed to sound to be converted into other signals.
[0003] This invention arises particularly in relation to active acoustic devices in the
form of loudspeakers using panel members to perform generally as above (and as may
be called distributed mode acoustic radiators/resonant panels later herein), but further
particularly achieve satisfactory combination of pistonic action with bending wave
action. However, more general or wider aspects of invention arise, as will become
apparent.
[0004] WO92/03024 describes a resonant multi-modal loudspeaker comprising a radiator panel
made from a skinned composite having a honeycomb core and discloses the features of
the preamble of claim 1.
[0005] FR2,441,981 describes a diaphragm for a flat panel pistonic loudspeaker comprising
a skinned composite having a honeycomb core.
SUMMARY OF THE INVENTION
[0006] From a first viewpoint, this invention concerns active acoustic devices as defined
in claim 1.
[0007] From a second viewpoint, this invention concerns acoustic devices relying on bending
wave action in panel members, particularly providing effective distributions of resonant
mode vibration that may be different from what results from specific teachings and
preferences of the above PCT patent application even for the same configurations or
geometries.
[0008] From a third viewpoint, this invention concerns acoustic devices relying on bending
wave action in panel members, particularly providing effective distributions of resonant
mode vibration in panel members of different configurations or geometries from what
are regarded as inherently favourable in specific teachings and preferences of the
above PCT patent application.
[0009] It is considered useful to note that effective specific embodiments of this invention
utilise panel member(s) intrinsically affording areal distribution of resonant mode
vibration components effective for acoustic performance generally comparable or akin
to the above PCT application, such panels essentially relying on simple excitement
of such intrinsically areally distributed acoustic bending wave action for successful
acoustic operation. Effective specific embodiments of this invention do not in any
way resemble merely piece-meal provisions for altering intendedly other acoustic action
in panel member(s) for which such intrinsic distributed resonant mode action is not
a design requirement. Indeed, where other particular structural etc. provisions are
made to serve different frequency ranges and/or selectively suppress or specifically
produce/superpose vibrations in a panel member that is not intrinsically effective
as in above PCT patent application or herein, such members are usually inherently
unsuitable for this invention as a result of geometry and/or location of transducer
means considerations.
[0010] Effective inventive method and means hereof involve areal distribution of variation
in stiffness over at least area(s) of such panel member(s) that are acoustically active
in relation to bending wave action and desired acoustic operation. As will become
clear herein, such variation can usefully be directly related to displacement of transducer
means from a location taught in the above PCT patent application to different locations
taught in this invention. Alternatively or additionally such variation may, relative
to the above PCT application, render unfavourable configurations or geometries of
panel members more akin to favourable configurations or geometries for acoustic operation
involving areal distribution of resonant modes of vibration consequential to bending
wave action. Furthermore, the actual resonant mode distribution relative to above
PCT application, may be at least somewhat different as a result of a different areal
distribution of bending stiffness or to consequential different location(s) for transducer
means, or both.
[0011] Specific teaching of the above PCT application extends to panel member(s) having
different bending stiffness(es) in different directions across intendedly acoustically
active area(s) that may be all or less than all of area(s) of the panel member(s),
typically in or resolvable to two coordinate related directions, and substantially
constant therealong. In contrast, advantageous panel member(s) of embodiment(s) hereof
have variation of bending stiffness(es) along some direction(s) across said area(s)
that may not be resolved in normal coordinate or any direction(s) to a constant value.
[0012] Areal variation of bending stiffness is, of course, readily achieved by variation
of thickness of acoustic panel members, but other possibilities arise, say concerning
thickness and/or density and/or tensile strength of skins of sandwich-type structures
and/or reinforcements of monolithic structures usually of composite material(s) type.
[0013] Whilst available practical analysis may not always allow such investigation as precisely
and fully to identify and quantify changes in actual areal distribution of acoustically
effective resonant mode vibration for panel member(s) hereof, practical resulting
performance indicates successful acoustic performance involving bending wave action.
Beneficial effects (on areal distribution of resonant mode vibration), of basically
favourable configuration/geometry of the above PCT patent application can, however,
be substantially retained to very useful extent and effect in two groups or strands
of inventive aspects implementing above one viewpoint.
[0014] One group/strand is as already foreshadowed, specifically providing more convenient
location(s) for transducer means in acoustically active panel members or areas thereof
having configurations or geometries known to be favourable in isotropic or anisotropic
implementations of teachings of above PCT patent application, effectively by displacing
what are now called "natural" locations for transducer means (in accordance with these
patent applications), to different locations hereof, specifically by either or both
of relatively greater and lesser bending stiffnesses to one side and to the other
side, respectively, of such natural location(s). Region(s) of greater bending stiffness
serve(s) effectively to shift such natural location(s) away from such region(s), typically
from said one side towards said other side and generally towards region(s) of lesser
bending stiffness. Similarly, region(s) of lesser bending stiffness serving to shift
towards region(s) of lesser bending stiffness. The other group/strand can be viewed
as involving capability only partially to so define at least notional sub-geometry
of larger overall panel member geometry not specifically favourable to good distributed
mode acoustic operation as in the above PCT patent application; such sub-geometry
being incompletely circumscribed but the partial definition thereof having significant
improving effect on distributed mode acoustic operation; such improving effect being
particularly for distributing resonant modes therefor at lower frequencies, but not
necessarily (indeed preferentially not) limiting higher frequency bending wave action
and resonant mode distribution to such sub-geometry, i.e. allowing such higher frequency
resonant mode distribution of vibration past and beyond the partial sub-geometry definition.
[0015] As to readily achieving required or desired areal variation of bending stiffness
panel member(s) can have at least core layer(s) first made as substantially uniformly
above PCT application, including sandwich structure(s) having skin layers over core
layer(s). variation(s) of thickness can then be readily imposed to achieve desired
areal distribution of stiffness(es). For deformable material(s), such as foam(s),
such variation of thickness is achievable by selective compression or crushing to
achieve desired contouring, say by controlled heating and application of pressure,
typically to any desired profile and feasibly done even after application of any skin
layers (depending on stretch capability of such skin layer material). Another possibility
is for the member to have localised stiffening or weakening, perhaps preferably graded
series thereof. For through-cell or honeycomb materials, e.g. of some suitable reticulated
section of its cells extending from skin to skin of an ultimate sandwich structure,
or rigidly form-sustaining uncrushable composites, variation of thickness is readily
achievable by selective skimming to desired thickness contouring/profiling. None of
these possibilities involves necessary change of geometrical centre, but skimming
rather than crushing inevitably results in change of centre of mass. Further alternatives
for desired thickness/stiffness variation of as-made core(s) will be discussed, including
without change of centre of mass as can be important for transducer means combining
pistonic and bending wave actions, where pistonic action is manifestly best if centred
at coincidence of centre of mass and geometric centre to avoid differential moments
due to mass distribution relative to transducer location(s) and/or to unbalanced air
pressure effects.
[0016] Centre of mass is, of course, readily relocated, typically to geometric centre by
selective addition of mass(es) to panel member(s) concerned, preferably without unacceptable
effects on desired areal distribution of stiffness, e.g. masses also small enough
not unacceptably to affect lower frequency bending wave action and effectively decoupled
from higher frequency acoustic action(s), say small weight(s) suitably semi-compliantly
mounted in hole(s) in the panel also small enough not unacceptably to affect acoustic
action(s).
[0017] Increasing stiffness in one direction away from or to one side of the 'natural' location(s)
for transducer location means location(s) of the above PCT application, or decreasing
stiffness in a generally opposite direction or to other side, will result in transducer
means location(s) hereof generally in said one direction to said one side, which can
advantageously be towards geometric centre. Such relative increasing/decreasing of
stiffness can be complex as to resulting contouring of the panel member concerning,
including tapering down increased thickness/stiffness to edge of the panel member
and or sloping up decreased thickness/stiffness, say to have a substantially uniform
edge thickness of the panel member.
[0018] Additionally or alternatively, an inventive aspect of at least one group/strand is
seen in a panel member capable of acoustic bending wave action with a distribution
of bending stiffness(es) over its acoustically active area, the distribution being
in no sense centred coincidentally with centre of mass and/or geometrical centre of
the panel member. However, location(s) of acoustic transducer means, whether for bending
wave action or for pistonic action or for both, may be substantially so coincident,
often and beneficially so.
[0019] It is noted at this point that there are two ways in which areal distributions of
stiffness(es) over a panel member can be considered or treated as centred, one analogous
to how centre of mass is usually determined, i.e. as putting first moment of stiffness
to zero, thus in a sense corresponding to high stiffness (so herein called "high centre"
of stiffness); the other in an inverse manner, putting first moment of the reciprocal
of stiffness to zero, thus in another sense corresponding to weakness or low stiffness
(so herein called "low centre" of stiffness). In panel members with isotropy or anisotropy
as specifically analysed in said PCT application, these notional "high" and "low"
centres of stiffness (so far as meaningful in that context) are actually coincident,
further normally also coinciding with centre of mass and with geometrical centre;
but, for a panel member with stiffness distribution as herein, these notional "high"
and "low" centres of stiffness are characteristically spaced apart and typically further
also from centre of mass and/or geometric centre.
[0020] By using beneficial distributions of stiffness(es), effective or notional shifting
of practically effective location(s) for bending wave action transducer means from
location(s) afforded by preferred teachings/analyses of said PCT patent application
to different location(s) may be achieved. Such shifting may usefully be viewed as
movement towards said "low centre" of stiffness which should thus be in same direction
as desired notional shifting, and/or movement away from said "high centre" of stiffness.
This view of such shifting may usefully afford at least a structural design reference
position for providing variations of bending stiffness(es) in the desired/required
corresponding distribution. The bending stiffness may vary outwards from such "low
centre(s)" to edge(s) of panel member(s) concerned. Typically, stiffness(es) may increase
to different amounts and/or at different rates in plural directions at least towards
"high centre(s)".
[0021] Feasible structures of honeycomb cellular cored sandwich type can have desired stiffness
distribution by reason of contributions of as-made variant individual cell geometries,
and without necessarily substantial effect(s) on distribution and centre of mass.
Thus, desired areal distributions of stiffness(es) are achievable by variations of
cells as to any or all of cell sectional area (if not also shape), cell height (effectively
core thickness) and cell wall thickness, including with such degree of progressiveness
applied to increase/decrease as may be desired/required. Varying bending stiffness(es)
without disturbing distribution of mass is achievable in such context, say by varying
cell wall thickness and cell height for nominally same cell area, and/or by varying
cell area and/or cell height for same thickness of cell walls, and could, of course,
be augmented or otherwise affected by skin variations including varying number and/or
nature of ply layers.
[0022] Also, it is seen as inventive for panel members hereof to have at least "low" centres
of stiffness(es) and practically most effective drive location(s) that are identified
and typified oppositely in terms of minimum and maximum diversity of transit times
to panel edge(s) for notional or actual bending Waves considered as started from "low
centre" of stiffness and from transducer location(s), respectively.
[0023] Reverting to above second general view, panel members with distribution(s) of stiffness(es)
as herein (as might perhaps be called "eccentric") can have capability applicable
to securing that a said panel of some particular given or desired shape (i.e. configuration
or geometry) may exhibit practically effective acoustic bending wave action that was
not considered achievable hitherto for that particular shape, at least not according
to any prior helpful proposition. The particular shape may include unfavourable shapes
which are either related to, or may be treated as related to, known favourable shapes
so that what would be a characteristic of the favourable shape may be approached.
[0024] Indeed, this invention extends to a capability of some physically realisable areal
distribution of bending stiffness(es) for irregularly shaped panel members capable
of bending wave acoustic action to ensure such action has a satisfactorily distributed
resonant mode characteristic, and to afford practically effective location(s) for
bending wave action transducer means (including by finite element analysis), irrespective
of and without reference to any envisaged or target shape known to be favourable.
Such procedures might proceed to at least some extent pragmatically, by trial and
error, as to areal stiffness distributions, but can be helped by analysing same using
such as Finite Element Analysis at least in terms of affording useful "low" and "high"
centres of stiffness shown herein to have positive (approaching/attracting) and negative
(distancing/repelling) location effects on effective location(s) for transducer means
within such areal stiffness distribution, whether itself analysable or not.
[0025] In practice, useful benefits are seen by way of seeking out constructs and/or transforms
by which derivation(s) can be made from what is known to be effective for particular
panel member geometries and structures to what may, often will, be effective for a
different panel geometry/structure, particularly to indicate structural specification
for such different panel geometry as to likely successful areal stiffness distribution
and as to transducer drive location(s).
[0026] In one approach considered inventive herein, useful attention has been concentrated
on transducer location(s), including by way of notionally superposing as a target
geometry a desired or given configuration of panel member and a subject geometry of
a panel member that is known to be effective and for which detailed analysis is readily
done or available, so that desired target transducer location coincides with actual
preferentially effective transducer location of the subject geometry. Then, a bending
stiffness mapping can be made so that, for any or each of selected constructs relative
to now-coincident transducer locations of the target and subject geometries, and over
such geometries, so that the known/readily analysed bending stiffness of the subject
panel structure can be subject to transformation relative to the target geometry to
give substantially the same or similar or scaled comparable stiffness distribution
as in the subject geometry and acoustically successful bending wave action in the
target geometry. Promising such constructs include lines going from coincident transducer
locations to/through edges of the target and subject geometries (say as though representing
bending wave transits/traverses). Envisaged related transforms depend on relative
lengths of the same construct lines in the target and subject geometries, and a suitable
relationship, typically involving the quotient of bending stiffness (B) and mass per
unit area (µ), i.e. B/µ, for proportionality transforms involving the third and/or
fourth powers of such line lengths to edges of target and subject geometries. It is
preferred, at least as feeling more natural, for a target geometry to be smaller than
a related subject geometry, further preferable for superposition to seek to minimise
excess of the latter over the former, including to minimise transform processing.
Whilst generally similar types of target and subject shapes may thus be preferred,
or favourable subject geometry closest to unfavourable target geometry, it is seen
as feasible for the target geometry to differ quite substantially from any recognisable
type of known favourable configuration/structure.
[0027] It is the case that panels of the above PCT application that are isometric as to
areal bending stiffness, and well studied/analysed, are good starting points for subject
geometries/structures. Indeed, another construct/transform approach seen as having
potential involves seeking to match in the target geometry/structure according to
the way that the (now common) transducer location splits bending stiffnesses to each
side thereof in the subject geometry/structure. Moreover, similar or related mapping
schemes could be used not only as between differing geometry types, but also in the
event of wishing or requiring to give to a target geometry of one type such a bending
stiffness distribution as to resemble or mimic another type of geometry/configuration,
so far as practicable given type of geometry/configuration (e.g. rectangular, elliptical)
does have profound influence on actual areal distribution of resonant mode vibration
that can be difficult to disturb greatly.
[0028] For loudspeaker members capable of both pistonic and bending wave types of action,
coincidence of location of bending wave transducer means with centre of mass and geometric
centre is particularly effective in allowing a single transducer device at one location
to combine and perform both pistonic drive and bending wave excitation.
[0029] It is, however, feasible to use separate transducers one for pistonic-only action
at coincident centre of mass/geometric centre, and another for spaced location conveniently
located as herein for bending wave-only action, though mass balancing may then be
required by added masses (if not afforded conjointly with requisite distribution of
bending stiffness).
[0030] A particularly interesting aspect of the invention, concerning a single transducer
that affords both of pistonic action and spaced bending wave action but at spaced
positions, can be used whether spacing is achieved by bending wave transducer location
as herein (say to suit convenient transducer configuration) or left as arises without
application of above aspects of invention.
[0031] Generally, of course, application of this invention may involve distributions of
mass with centre of mass displaced from geometric centre and/or any transducer location,
or whatever. Indeed, variation(s) of bending stiffness and/or mass across at least
acoustically operative area(s) of panel member(s) can be in many prescribed ways and/or
distributions, usually progressively in any particular direction to desired ends different
from hitherto, and same will generally represent anisotropy that is asymmetric at
least relative to the geometric centre of mass; and application is seen as in the
above PCT application.
[0032] Practical aspects of invention include a loudspeaker drive unit comprising a chassis,
a transducer supported on the chassis, a stiff lightweight panel diaphragm drivingly
coupled to the transducer, and a resilient edge suspension surrounding the diaphragm
and mounting the diaphragm in the chassis, wherein the transducer is arranged to drive
the diaphragm pistonically at relatively low audio frequencies to produce an audio
output and to vibrate the diaphragm in bending wave action at higher audio frequencies
to cause the diaphragm to resonate to produce an audio output, the arrangement being
such that the transducer is coupled to the centre of mass and/or geometric centre
of the diaphragm and the diaphragm has a distribution of bending stiffness including
variation such that acoustically effective resonant behaviour of the diaphragm results
(at least preferably being centred offset from the centre of mass).
[0033] The diaphragm may be circular or elliptical in shape and the transducer may be coupled
to the geometric centre of the diaphragm. The diaphragm may comprise a lightweight
cellular core sandwiched between opposed skins, and one of the skins may be extended
beyond an edge of the diaphragm, with a marginal portion of the extended skin being
attached to the resilient suspension.
[0034] The transducer may be electromagnetic and may comprise a moving coil mounted on a
coil former, the coil former being drivingly connected to the diaphragm. A second
resilient suspension may be connected between the coil former and the chassis. One
end of the coil former may be connected to the diaphragm, and the said second resilient
suspension may be disposed adjacent to the said one end of the coil former, and a
third resilient suspension may be connected between the other end of the coil former
and the chassis.
[0035] The end of the coil former adjacent to the panel diaphragm may be coupled to drive
the panel diaphragm substantially at one point. Conical means may be connected between
the coil former and the panel diaphragm for this purpose.
[0036] The coil former may comprise a compliant section radially offset from a rigid section
to drive the diaphragm pistonically and to provide off centre resonant drive to the
diaphragm.
[0037] In other aspects the invention provides a loudspeaker comprising a drive unit as
described above; and/or is a stiff lightweight panel loudspeaker drive unit diaphragm
adapted to be driven pistonically and to be vibrated to resonate, the diaphragm having
a centre of mass located at its geometric centre and a centre of stiffness which is
offset from its centre of mass.
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Exemplary specific implementation is now illustrated/described in/with reference
to accompanying diagrammatic drawings, in which :
Figures 1A-D are plan and three outline sectional views indicating desired positioning
of bending wave transducer location of an acoustic panel member, including and achievement
by compressing deformable core material or by profiling core or composite material;
Figures 2A, B,C are outline overall plan and core sectional views for an elliptical
acoustic panel member hereof;
Figures 3A,B,C are similar views of another elliptical panel member hereof;
Figures 4A,B,C indicate a acoustic panel member of unfavourable circular shape rendered
more favourable by part-elliptical grooving/slotting, and model distribution graphs
without and with such grooving/slotting;
Figures 5A,B,C are diagrams useful in explaining possible mappings/constructs/transforms
for deriving stiffness distribution for desired or target geometry for a rectangular
panel member and a sectional/profile representation of results;
Figures 6A,B,C are outline graphs of interest relative to useful methodology including
of Figure 5;
Figures 7A,B are sectional side and plan views of one embodiment of loudspeaker drive
unit of the present invention;
Figures 8A,B are sectional side views of another loudspeaker drive unit and a modification;
Figures 9A,B are sectional side view of a further loudspeaker drive unit and modification;
Figures 10A,B are a perspective view of a loudspeaker drive coupling or actuator for
spaced application of pistonic and bending wave action, and detail of mounting to
a diaphragm/panel member; and
Figures 11A,B show relationships for such actions and crossover.
SPECIFIC DESCRIPTION OF EMBODIMENTS
[0039] Referring first to Figure 1A, a substantially rectangular acoustic distributed mode
panel member 10A is indicated as though resulting directly from teachings of the above
PCT and UK patent applications, thus having its "natural" location 13 for bending
wave transducer means spaced from its geometrical centre 12 and off true diagonal
shown dashed at 11. In application of the present invention, however, the transducer
location 13 is to be at the geometric centre 12 of the panel member 10A, i.e. effectively
to appear shifted along the solid line 15, which is achieved by appropriate areal
distribution of bending stiffness of the panel member. To this end, the bending stiffness
is made relatively greater and lesser to one side (right in Fig. 1A) and to the opposite
side (left in Fig. 1C) of the geometric centre 12 and the "natural" transducer location
13, specifically in opposite directions along the line 15 and its straight-line extensions
15G and 15L, respectively.
[0040] Figure 1B is an outline section along the line 15 including extensions 15G and 15L,
and indicates the same situation as Figure 1A, i.e. "natural" transducer location
13B likewise spaced from geometric centre 12B of distributed mode panel member 10B,
see projection lines 12P, 13P. Figure 1B gives no details for the actual structure
of the panel member 10B; but does indicate the alternatives of being monolithic, see
solid outer face lines 16X,Y, or being of sandwich type, see dashed inner face lines
17X,Y indicating skins bonded to an inner core 18, typically (though not necessarily)
of cellular foam type or of honey-comb through-cell type.
[0041] Figure 1C indicates use of a core 18C of material that is deformable, specifically
compressible in being capable of crushing to a lesser thickness, as is typically of
many foamed cellular materials suitable for distributed mode acoustic panel members
and assumed in Figure 1C. Such crushing is indicated by thickness of the core 18C
diminishing from right to left in Figure 1C, and its cells going from roundedly fully
open (19X) to flattened (19Y). It is not, of course, essential for those cells to
be of the same or similar size, or of regular arrangement, or be roundedly fully open
at maximum thickness (suitable foam materials often being of partially compressed
foamed type). The core 18C is further shown with facing skins 17A,B. It is feasible,
even normal, for the core material 18C to be deformed to the desired profile before
bonding-on the skins 17A,B - but not essential so long as the panel member 10C is
good for distributed mode acoustic action if compressively deformed with the skins
17A,B attached. Resulting greater and lesser thickness of the core 18C and the panel
member 10C will correspond with greater and lesser bending stiffness; and the indicated
profile of progressive thickness, thus stiffness, variation is such as to cause coincidence
of the transducer location 13C with the geometric centre 12C, see arrow 13S and circled
combined reference 12C,13C. Crushing deformation will normally be done with thermal
assistance and using a suitably profiled pressure plate. There will be no change to
the centre of mass of the panel member 10C, i.e. centre of mass will remain coincident
with the geometric centre 12C, now also coincident with the transducer location 13C.
[0042] Where core density contribution is small, ie bending stiffness is dominant, the linear
factor of core mass contribution may be neglected and the desired areal thickness
distribution may be achieved by shaping the thickness of an isotropic core of polymer
foam or fabricated honeycomb sandwich or monolithic without skin and a core; and any
such structure can be fabricated, machined or moulded as desired herein.
[0043] Figure 1D shows distributed mode acoustic panel member 10D with progressive relief
of its lower surface so that its thickness reduces with similar profile to that of
Figure 1C. Such profile might be somewhat different for the same intended effect,
i.e. achieving coincidence of transducer location 13D with geometric centre 12D, say
depending on material(s) used for the panel member 10D. Such materials may be monolithic
reinforced composites or any kind of cellular, typically then as a skinned core, including
of honey-comb type with through-cells extending from skin-to-skin. The foamed-cell-like
indication 19Z of Figure 1D could correspond with use of foamed material that is by
choice not crushed or is not suitable for crushing; but is intended to do no more
than indicate that there is no significant change of density. There must, of course,
then be a change in the distribution of mass and the centre of mass of the panel member
10D as such will be spaced from the geometric centre, generally in the direction of
arrow CM. In order to achieve coincidence of overall centre of mass with geometric
centre 12D, the panel member 10D is shown with at least one additional balancing mass
22 indicated mounted in preferably blind receiving hole 23, further preferably by
semi-compliant means 24, say in a suitable mechanically or adhesively secured bush
or sleeve, so that its inertial compress is progressively decoupled from the panel
member 10D at higher frequencies of desired vibration distribution. There may be more
than one balancing mass (22), say in a less than 180° locus through the notional extension
line 15L, or some other array disposition, and need not all be of the same mass, say
diminishing in mass progressively away from the line 15L.
[0044] At simplest, the thickness may be simply tapered along through the section of Figure
1B, though a more complex taper is normal, including to a common equal edge thickness
and/or progressively less away from the line 15 - 15G, L. Geometric relations of bending
frequency to size need to be taken into account. For any given shape, increasing its
size lowers the fundamental frequencies of vibration, and vice versa. Effective shift
of preferential transducer location can be seen as equivalent to shortening the effective
panel size in relation bending along the direction of such shift.
[0045] Turning to Figures 2A - C and 3A - C, all panel members are shown as being of generally
elliptical shape, those referenced 20A, 30A being isotropic, thus showing coincidence
at 25, 35 of geometrical centre and centre of mass. To the extent meaningful for isometric
panel geometries and structures, distributions of stiffness will, of course also be
centred at 25, 35 - whether as to "high centre" (stiffness as such) or as to "low
centre" (softness or compliance). In addition, Figures 2A, 3A show at 26, 36 one preferentially
good or best location (as in the above PCT application) for a bending wave action
transducer and operative for desired resonant mode acoustic performance of the panel
member 20A, 30A, say as or in a loudspeaker.
[0046] Turning to Figures 2B, C and 3B, C the centre positions of the panels 20B, 30B are
now labelled 25, 26 and 35, 36 and still correspond to both of geometric centre and
centre of mass (25, 35), but now also further to acoustically effective bending wave
transducer location (26, 36). Compared with Figures 2A, 3A the transducer locations
26, 36 have effectively been displaced by a distribution of bending stiffness(es),
hereof, and accompanying displacements of "high and "low" centres of stiffness, are
indicated 27, 28 and 37, 38 as generally oppositely relative to the geometric centres
25, 35. This different asymmetric stiffness distribution is shown achieved by progressive
changes to cells 29, 39 particularly as to their heights, thus thickness of the panel
members 20A, 30A; but also as to their areas and population density (see Figures 2B,
C), or as to their areas and wall thicknesses but not their population density (see
Figures 3B, C) thereby achieving desired distribution of stiffness without at least
operatively significant disturbance to distribution of mass, thus centre of mass is
now coincident with both geometric centre and transducer location (25, 26; 35, 36).
[0047] There are further feasible approaches to varying stiffness(es), thus areal distribution;
say by introducing out-of-planar formations, such as bends, curves etc affecting stiffness
in generally understood ways; or such as grooves, slots or scorings in surfaces to
reduce stiffness or rib formations to increase stiffness, including progressively
by spaced series of such provisions, say along the line extensions 15G, L of Figure
1A (not shown, but computable using such as Finite Element Analysis).
[0048] Figure 4A shows another application of into-surface grooving, slotting or scoring,
specifically to improving distributed mode bending wave action for an acoustic panel
member 40A that is actually of a configuration or geometry, namely circular, that
is known to be unfavourable as a distributed mode acoustic panel member, especially
with central location of exciting transducer means. This known unsatisfactory performance
capability is indicated by the modal frequency distribution indicated in Figure 4B
as will be readily recognised and understood by those skilled in the art, specifically
corresponding to concentric vibration patterning. Profound improvement is shown in
Figure 4C which has been achieved by grooving, slotting or scoring as indicated at
41 in the form of part of an ellipse, i.e. in a class of configurations/geometries
known to include some highly favourable as distributed mode acoustic panel members
(as in Figures 2, 3 above), though not actually according to such a known favourable
particular ellipse. However, effect on lower frequency modal action is markedly better
distributed than the symmetry of simple centrally excited circular shapes, and higher
frequency modal action is able to extend past and beyond the open ends of the groove
41. The shape of the groove 41 was developed using Finite Element Analysis, see indicated
complex element patterning, such techniques being of general value to detail implementation
of teachings hereof. Lesser arcuate formations asymmetrically spaced relative to centre
of a circular panel member have also shown promise, and should be readily refined
by further Finite Element Analysis.
[0049] Figures 5A, B indicate constructs and transforms much as discussed above, specifically
shown for rectangular target (51A, B) and subject (52A, B) configurations/geometrie.
Construct lines 53A, B processed according to different lengths and desired/required
bending stiffnesses show highly promising effectiveness of the approach at least as
applied to shapes of the same rectangular type. The methodology of Figure 5B is particularly
attractive in that the subject configuration/geometry 52B is efficiently constructed
from the target configuration/geometry 51B placed at one corner by extensions from
that corner so that a preferential transducer location 54B of a well-understood and
analysed isometric shape 52B simply coincides with geometrical centre of the target
shape 51B. Figure 5C indicates a typical section through target member 50 of target
shape 51A resulting from methodology according to Figure 5B.
[0050] Inspection of the B/µ quotient or the B and/or µ parameter values, specifically alone
with the other held constant, in the various radial directions 53B, and mathematical
mapping from panel of shape 52B to panel of shape 51B, allows distribution of stiffness
hereof to be computed in those directions (53B) further using a power relation including
fourth power of length and second or third powers of thickness depending on whether
bending stiffness required is of skinned core sandwich panel or an unskinned monolithic
solid composite structure.
[0051] Figure 6A shows ratiometric results of length mapping for Figure 5B methodology,
and Figure 6B shows how required (target) bending behaviour is related to the ratiometric
results of Figure 6A and relative to material properties, specifically stiffness alone
involving fourth power of length (solid line), thickness of a sandwich structure involving
a square power (dotted line), and thickness of a monolith structure involving a 4/3
power (dashed line). For a sandwich structure, skin stiffness (tensile strength) would
also involve fourth power of length; and skin thickness a 4/3 power. Figure 6C shows
modal density mapping with 3% damping for a target square panel member, without bending
stiffness distribution hereof, a subject 1.134:1 aspect ratio isometric panel member
of the above PCT application, i.e. involving adjustment relative to one side difference
only; and the square panel improved by bending stiffness distribution according to
skin parameters, specifically thickness (h) and Young's modulus (E).
[0052] Referring to Figures 7A and 7B, a loudspeaker drive unit comprises a chassis 71 in
the form of an open frame shaped as a shallow circular basket or dish having an outwardly
projecting peripheral flange 71F pierced with holes whereby the drive unit can be
mounted on a baffle (not shown), e.g. in a loudspeaker enclosure (not shown) in generally
conventional fashion. The chassis 71 supports a transducer 72 in the form of an electrodynamic
drive motor comprising a magnet 73 sandwiched between pole pieces 74A,B and affording
an annular gap in which is mounted a tubular coil former 75 carrying a coil 75C which
forms the drive coupling or actuating movable member of the motor.
[0053] The coil former is mounted on resilient suspensions 76A, B at its opposite ends to
guide the coil former 75 for axial movement in the gap of the magnet assembly. One
end of the coil former 75 is secured, e.g. by bonding 77, to the rear face of a lightweight
rigid panel 70 which forms an acoustic radiator diaphragm of the loudspeaker drive
unit and which comprises a lightweight cellular core 70C, e.g. of honeycomb material,
sandwiched between opposed front and rear skins 70F,R. The panel 70 is generally as
herein taught, specifically with distribution of bending stiffness affording coincidence
of centre of mass and preferential bending wave exciter location at its geometric
centre. In the example shown, the front skin is conveniently of conventional circular
form integrating with the contour and in some cases blending in effective operation
with the surround/suspension. The rear skin is chosen to be rectangular to form a
composite panel compliant with distributed mode teaching (it may be driven directly
by the differential coupler of Figures 10A and 10B).
[0054] For a simple central, or central equivalent drive the distributed mode panel section
will be designed with preferential modal distribution
as per the invention herein generated for example by control of areal stiffness, so as usefully
to place the modal driving point or region at or close to the geometric and mass centre.
Thus good modal drive at higher frequencies and pistonic operation at lower frequencies
is obtained for a conventional style of driver build and geometry.
[0055] The front facing skin 70F of the panel 70 is extended beyond the edge of the panel
and its peripheral margin is attached to a roll surround or suspension 77 supported
by the chassis 71 whereby the panel is free to move pistonically. The transducer 72
is arranged to move the panel 70 pistonically at low frequencies and to vibrate the
panel 70 at, high frequencies to impart bending waves to the panel whereby it resonates
as discussed at length above.
[0056] The arrangements shown in Figures 8A and 8B are generally similar to that described
above, except that in these cases the chassis 81 is even shallower, the motor 82 is
largely outside the chassis 81, and the coupler/actuator coil former 85 extends into
the chassis with consequent modification of its suspension 86. Modification of Figure
9B involves use of a smaller neodymium motor 82N and sectional end reduction 85A of
the coil former 85.
[0057] The arrangements shown in Figures 9A and 9B are very similar to those shown in Figure
8A and 8B except that the extended end 95A, B of the coil former 95 is formed with
a [single] f double conic section, the pointed end 95P of which is attached to the
rear face of the lightweight rigid panel diaphragm 90 at the geometric centre thereof.
[0058] Figures 10A,B show a diaphragm coupler/actuator 101, conveniently a coil former of
a drive motor (not shown), having a major arcuate peripheral part 108 of its drive
end, which is adapted to be attached (107) to a rigid lightweight panel 100 made of
a semi-compliant material; and with arcuate peripheral part 109 of the same end rigid.
The drive applied to the panel 100 will be pistonic at low frequencies through both
of the arcuate peripheral end parts 108,109. At high frequencies the coupler/actuator
will excite bending wave action by the minor part 109, thus vibrational energy in
the panel 100 at a position offset from the axis of the coupler/actuator 105. By its
semi-compliant nature, the major arcuate peripheral end part 108 will be substantially
quiescent at high frequencies. Thus the true actuation position of the drive is frequency
dependent even though applied in the same way and by the same means 105.
[0059] The simple illustrated case of one direct coupling section and one semi compliant
section may be extended to multiple firm contact points and more complex semi-compliant
arrangements, e.g. two or more preferential distributed mode panel member transducer
locations may be involved. The semi compliant section may be tapered or graded, or
plurally stepped in thickness or bulk property, to provide a gradation of coupled
stiffness interactively calculated with the panel acoustic performance criteria to
improve overall performance, whether with a distributed mode acoustic panel with bending
wave transducer location spaced from geometric/mass centre to suit convenient structure
for the coupler/actuator 105, or with the latter suited to such as transducer locations
of above PCT and UK patent applications.
[0060] Such differential frequency coupler (105) can be used with the usual motor coil employed
in electrodynamic exciters. While such coupler 105 may be a separate component of
predetermined size or diameter, it is convenient to see its application as part of
the attachment plane of a motor coil of similar diameter, which may as indicated above
be chosen to encompass one or more of the preferential drive transducer locations
of a distributed mode acoustic panel member, specifically at and excited by rigid
end part(s) 108 as intended higher frequency response is by bending mode vibration
in a distributed mode acoustic panel diaphragm member 100. At lower frequencies the
semi-resilient parts/inserts 108 become more contributory, and progressively bring
the whole circumference of the actuator/coupler 105 into effect for balanced, centre
of mass action, thus satisfactory pistonic operation at low frequencies. The fundamental
bending frequency of the panel member 100 and the resilience of the coupler/actuator
part(s) 108 are chosen to allow for satisfactorily smooth transition in acoustic power
from the pistonic to the bending vibration regions of the frequency range. Such transition
may be further aided by plural stepping of the part(s) 108, or by tapering as indicated
at 108A.
[0061] Understanding operation of this coupler 108 is aided by Figure 11A outlining intended
variation of velocity applied to the acoustic panel, including in the region of crossover.
At low frequencies the semi compliant part(s) 108 contribute effective power to the
panel member 100 in a balanced pistonic manner. That piston like action decays with
increasing frequency as the mechanical impedance of the vibrating panel member 100
becomes predominant and is excited at preferential eccentric position(s). Thus the
active velocity contribution at higher frequencies arises from the rigid, offset sector(s)
of the coupler.
[0062] Fig 11B further shows displacement of effective variation of pistonic drive and distributed
mode excitation points with frequency. At low frequencies the pistonic drive point
is predominantly at the centre and centre of mass. With increasing frequency there
is a transition to a bending wave excitation point offset from the centre, aligned
by suitable choice of panel design and also complex coupler actuator diameter and
parts geometry to drive at or close to the preferred distributed mode point for satisfactory
favourable distribution of vibration modes.
[0063] In above Figures 7A,B bending wave transducer means of this type with an overall
diameter in the range 150 to 200mm would operate "natural" transducer location(s)
of a distributed mode panel member of satisfactory bending mode performance commencing
in the range 150Hz to 500Hz. Pistonic operation will be effective from lower frequencies,
eg from 30Hz for a suitable acoustic mounting, and would decline in its upper range
as the panel member enters the bending mode range.
[0064] The differential frequency capability of couplers of this invention allows subtle
refinements to use of distributed mode acoustic panel members. For example, in a given
panel a change in the driving point with frequency may be found desirable for purposes
of frequency control seen in particular applications, such as close to wall mounting
in small enclosures and related response modifying environments. More than one grade
and/or size /area of semi-compliant parts or inserts may be used on suitable geometries
of coupler effectively to gradually or step-wise move between more or most effective
drive point of the modal pattern with frequency, and advantageously modify the radiated
sound.
1. Acoustic device including a member (10A, 10B, 10C, 10D, 20A, 20B, 30A, 30B, 40A) extending
transversely of its thickness and capable of sustaining bending waves causing consequential
acoustic action by reason of areal distribution of resonant modes of natural bending
wave vibration over its surface consonant with required achievable acoustic action
of said member over a desired operative acoustic frequency range, characterised in that the member (10A/B/C/D, 20A/B, 30A/B, 40A) has a distribution of bending stiffness
which varies over the area of the member for rendering said member favourable to said
areal distribution of resonant modes for said acoustic action, said variation of bending
stiffness including relatively higher and lower bending stiffness at different sides,
respectively, of said location (13, 13B/C/D, 26,36) for bending wave transducer means;
and the centre of bending stiffness of the member is offset from the geometric (12,
12B, 12C, 12D) centre of the member.
2. Acoustic device according to claim 1, wherein the centre of mass (25, 35) of the member
is located at its geometric centre (25, 35).
3. Acoustic device according to any preceding claim, wherein said variation of bending
stiffness includes relatively higher and lower bending stiffness at different sides,
respectively, of the geometric (12, 12B, 12C, 12D) centre of said member or said area.
4. Acoustic device according to claim 2 or claim 3, wherein said distribution of bending
stiffness has a high centre (27, 37) and a low centre (28, 38) on different said sides.
5. Acoustic device according to any preceding claim, wherein greater and lesser thicknesses
of said member correspond to higher and lower stiffnesses, respectively, of said distribution
of bending stiffness.
6. Acoustic device according to any preceding claim, wherein said member has an additional
mass (22) or masses selectively provided having substantially no effect on desired
acoustic action.
7. Acoustic device according to claim 6, wherein the or each additional mass (22) is
of sufficiently low mass that lower frequency acoustic action is substantially unaffected
and has means of association with said member substantially effective to decouple
the or each additional mass for higher frequency acoustic action.
8. Acoustic device according to claim 6 or claim 7, wherein the additional mass(es) are
located such that the centre of mass (25) of said member plus said additional mass
(22) is at a desired position of said member.
9. Acoustic device according to claim 8, wherein said desired position coincides with
the geometric centre (25) of said member
10. Acoustic device according to claim 5, wherein said member (10B, 10C) is of sandwich
structure having skins (17X,Y, 17A,B) on a core (18, 18C) having cell-defining walls
extending through a varying thickness between said skins (17X,Y, 17A,B) and defining
cells (19X,Y, 29, 39) of different cross-sectional size in order to provide the prescribed
distribution of mass over said member.
11. Acoustic device according to claim 5, wherein said member (10B,C) is of sandwich structure
having skins (17X,Y, 17A,B) on a core (18, 18C) having cell-defining walls extending
through a varying thickness between said skins and in which the cell-defining walls
are of different thicknesses in order to provide the prescribed distribution of mass
over said member.
12. Acoustic device according to claim 10 or 11, wherein said prescribed distribution
of mass is centred at the geometric centre of said member or said area.
13. Acoustic device according to claim 1 wherein said variation of bending stiffness includes
at least one localised adaptation of the member (40A) being a relative weakening groove
(41) slot or cut into said member (40A).
14. Acoustic device according to claim 13 wherein localised variations of bending stiffness
distribution partially define an uncircumscribed sub-geometry of said member, and
the arrangement is favourable to bending wave acoustic action with desirably effective
areal distribution of lower frequency modes of bending wave dependent vibration relative
to said location for bending wave transducer means.
15. Acoustic device according to claim 14 wherein said localised variations of bending
stiffness distribution permit higher frequency modes of bending wave dependent vibration
beyond said localised variations.
16. Acoustic device according to any one of claims 1 to 4, wherein the member is of a
structure having a skin (17X,Y, 17A,B) and the bending stiffness variation is obtained
by varying parameter(s) of the skin.
17. Acoustic device according to claim 16, wherein the thickness of the skin is a said
skin parameter.
18. Acoustic device according to claim 16 or claim 17, wherein the Young's modulus of
the skin is a said skin parameter.
19. Acoustic device according to any preceding claim, characterised in that it comprises acoustic transducer means having both bending wave and pistonic actions,
said acoustic transducer means being located at a location which serves for bending
wave transducer means to produce said acoustic action.
20. Loudspeaker drive unit comprising a chassis (71, 81, 91), a transducer (72, 82, 82N,
92, 92N) supported, on the chassis, a stiff lightweight panel diaphragm (80, 90) being
an acoustic device according to any preceding claim, the panel diaphragm (70, 80,
90) being drivingly coupled to the transducer (72, 82, 82N, 92, 92N) and a resilient
edge suspension (77, 87, 97) surrounding the diaphragm and mounting the diaphragm
(70, 80, 90) in the chassis (71, 81, 91) wherein the transducer is arranged to drive
the diaphragm pistonically at relatively low audio frequencies to produce an audio
output and to vibrate the diaphragm (70, 80, 90) with bending waves at higher audio
frequencies to cause the diaphragm to resonate to produce an audio output, the transducer
being operatively coupled to the centre of mass and/or geometric centre of the diaphragm.
21. Loudspeaker drive unit according to claim 20, wherein the diaphragm is circular or
elliptical in shape.
22. Loudspeaker drive unit according to claim 20 or claim 21, wherein the diaphragm (70)
comprises a lightweight cellular core (70C) sandwiched between opposed skins (70F,
70R).
23. Loudspeaker drive unit according to claim 22 wherein one of the skins (70F) is extended
beyond an edge of the diaphragm (70) a marginal portion of the extended skin being
attached to the resilient suspension (77).
24. Loudspeaker drive unit according to any one of claims 20 to 23, wherein the diaphragm
is a distributed mode resonant panel.
25. Loudspeaker drive unit according to any one of claims 20 to 24, wherein the transducer
(72, 82, 92) is electromagnetic and comprises a moving coil (75C) mounted on a coil
former (75, 85, 95) the coil (75C) former being operatively coupled to the diaphragm
(70, 80, 90).
26. Loudspeaker drive unit according to claim 25, comprising a second resilient suspension
(76A, 86, 96) connected between the coil former (75, 85, 95) and the chassis (71,
81, 91).
27. Loudspeaker drive unit according to claim 26, wherein one end of the coil former (75,
85, 95) is connected to the diaphragm (70, 80, 90), the said second resilient suspension
(7.6A, 86, 96) is disposed adjacent to the said one end of the coil former (75, 85,
95) and a third resilient suspension is connected between the other end of the coil
former and the chassis.
28. Loudspeaker drive unit according to any one of claims 25 to 27, wherein the end of
the coil former (95A,B) adjacent to the panel diaphragm (90) is coupled to drive the
panel diaphragm substantially at one point (95P).
29. Loudspeaker drive unit according to claim 28, comprising conical means connected between
the coil former and the panel diaphragm.
30. Loudspeaker comprising a drive unit as claimed in any one of claims 20 to 29.
31. Acoustic device according to any of claims 1 to 19, wherein said member (70, 80, 90)
has a bending wave transducer means (72, 82, 92) to produce said acoustic action,
at a location determined by said areal distribution of bending stiffness.
1. Akustische Vorrichtung mit einem Element (10A, 10B, 10C, 10D, 20A, 20B, 30A, 30B,
40A), das sich quer zu seiner Dicke erstreckt und dazu in der Lage ist, Biegewellen
aufrechtzuerhalten, die eine daraus resultierende akustische Wirkung aufgrund einer
Flächenverteilung von Resonanzmoden natürlicher Biegewellenschwingungen über seine
Oberfläche übereinstimmend mit einer geforderten erzielbaren akustischen Wirkung des
Elements über einen gewünschten akustischen Betriebsfrequenzbereich verursachen, dadurch gekennzeichnet, dass das Element (10A/B/C/D, 20A/B, 30A/B, 40A) eine Biegesteifigkeitsverteilung aufweist,
die über die Fläche des Elements variiert, um das Element für die Flächenverteilung
von Resonanzmoden für die akustische Wirkung günstig zu gestalten, wobei die Variation
der Biegesteifigkeit eine relativ höhere bzw. geringere Biegesteifigkeit auf verschiedenen
Seiten der Position (13, 13B/C/D, 26, 36) für eine Biegewellenwandlereinrichtung umfasst,
und der Mittelpunkt der Biegesteifigkeit des Elements vom geometrischen (12, 12B,
12C, 12D) Mittelpunkt des Elements versetzt ist.
2. Akustische Vorrichtung nach Anspruch 1, bei der der Schwerpunkt (25, 35) des Elements
in seinem geometrischen Mittelpunkt (25, 35) angeordnet ist.
3. Akustische Vorrichtung nach einem der vorhergehenden Ansprüche, bei der die Variation
der Biegesteifigkeit eine relativ höhere bzw. geringere Biegesteifigkeit auf verschiedenen
Seiten des geometrischen (12, 12B, 12C, 12D) Mittelpunkts des Elements oder der Fläche
umfasst.
4. Akustische Vorrichtung nach Anspruch 2 oder Anspruch 3, bei der die Biegesteifigkeitsverteilung
ein Hoch (27, 37) und ein Tief (28, 38) auf den verschiedenen Seiten aufweist.
5. Akustische Vorrichtung nach einem der vorhergehenden Ansprüche, bei der größere oder
kleinere Dicken des Elements höheren bzw. geringeren Steifigkeiten der Biegesteifigkeitsverteilung
entsprechen.
6. Akustische Vorrichtung nach einem der vorhergehenden Ansprüche, bei der das Element
eine zusätzliche selektiv vorgesehene Masse (22) oder Massen aufweist, die im wesentlichen
keine Auswirkung auf die gewünschte akustische Wirkung haben.
7. Akustische Vorrichtung nach Anspruch 6, bei der die oder jede zusätzliche Masse (22)
eine ausreichend geringe Masse aufweist, dass die akustische Wirkung niedrigerer Frequenz
im wesentlichen unbeeinflusst ist, und eine Verbindungseinrichtung mit dem Element
aufweist, die im wesentlichen dazu dient, die oder jede zusätzliche Masse für die
akustische Wirkung bei höherer Frequenz zu entkoppeln.
8. Akustische Vorrichtung nach Anspruch 6 oder Anspruch 7, bei der die zusätzliche(n)
Masse(n) so angeordnet sind, dass sich der Schwerpunkt (25) des Elements mit der zusätzlichen
Masse (22) an einer gewünschten Position des Elements befindet.
9. Akustische Vorrichtung nach Anspruch 8, bei der die gewünschte Position mit dem geometrischen
Mittelpunkt (25) des Elements zusammenfällt.
10. Akustische Vorrichtung nach Anspruch 5, bei der das Element (10B, 10C) einen Schichtaufbau
mit Häuten (17X, Y, 17A, B) auf einem Kern (18, 18C) hat, der Zellen festlegende Wände
aufweist, die sich über eine variierende Dicke zwischen den Häuten (17X, Y, 17A, B)
erstrecken und Zellen (19X, Y, 29, 39) mit unterschiedlicher Querschnittsgröße festlegen,
um die vorgegebene Massenverteilung über das Element bereitzustellen.
11. Akustische Vorrichtung nach Anspruch 5, bei der das Element (10B, C) einen Schichtaufbau
mit Häuten (17X, Y, 17A, B) auf einem Kern (18, 18C) hat, der Zellen festlegende Wände
aufweist, die sich über eine variierende Dicke zwischen den Häuten erstrecken, und
in dem die Zellen festlegenden Wände verschiedene Dicken aufweisen, um die vorgegebene
Massenverteilung über das Element bereitzustellen.
12. Akustische Vorrichtung nach Anspruch 10 oder 11, bei der die vorgegebene Massenverteilung
im geometrischen Mittelpunkt des Elements oder der Fläche konzentriert ist.
13. Akustische Vorrichtung nach Anspruch 1, bei der die Variation der Biegesteifigkeit
mindestens eine lokale Anpassung des Elements (40A) umfasst, die ein(e) relative(r)
schwächende(r) Nut (41), Schlitz oder Schnitt in dem Element (40A) ist.
14. Akustische Vorrichtung nach Anspruch 13, bei der lokale Variationen der Biegesteifigkeitsverteilung
teilweise eine nicht umgrenzte Subgeometrie des Elements festlegen, und die Anordnung
günstig für eine akustische Wirkung von Biegewellen mit einer in gewünschter Weise
wirksamen Flächenverteilung niedrigerer Frequenzmoden biegewellenabhängiger Schwingungen
relativ zur Position für die Biegewellenwandlereinrichtung ist.
15. Akustische Vorrichtung nach Anspruch 14, bei der die lokalen Variationen der Biegesteifigkeitsverteilung
höhere Frequenzmoden biegewellenabhängiger Schwingungen über ihre lokalen Variationen
hinaus zulassen.
16. Akustische Vorrichtung nach einem der Ansprüche 1 bis 4, bei der das Element einen
Aufbau mit einer Haut (17X, Y, 17A, B) aufweist und die Biegesteifigkeitsvariation
durch eine Variation des (der) Parameter(s) der Haut erhalten wird.
17. Akustische Vorrichtung nach Anspruch 16, bei der die Dicke der Haut ein solcher Hautparameter
ist.
18. Akustische Vorrichtung nach Anspruch 16 oder Anspruch 17, bei der der Elastizitätsmodul
der Haut ein solcher Hautparameter ist.
19. Akustische Vorrichtung nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass sie eine akustische Wandlereinrichtung mit sowohl Biegewellenals auch Kolbenwirkung
umfasst, wobei die akustische Wandlereinrichtung an einer Position angeordnet ist,
die dazu dient, dass die Biegewellenwandlereinrichtung die akustische Wirkung erzeugt.
20. Lautsprecherantriebseinheit mit einem Rahmen (71, 81, 91), einem auf dem Rahmen abgestützten
Wandler (72, 82, 82N, 92, 92N) und einer steifen, leichtgewichtigen Paneelmembran
(80, 90), die eine akustische Vorrichtung nach einem der vorhergehenden Ansprüche
darstellt, wobei die Paneelmembran (70, 80, 90) betrieblich mit dem Wandler (72, 82,
82N, 92, 92N) und einer elastischen Randaufhängung (77, 87, 97) verbunden ist, die
die Membran umgibt und die Membran (70, 80, 90) in dem Rahmen (71, 81, 91) befestigt,
wobei der Wandler zum Kolbenantrieb der Membran bei relativ niedrigen Tonfrequenzen
angeordnet ist, um eine Tonausgabe zu erzeugen und um die Membran (70, 80, 90) mit
Biegewellen bei höheren Tonfrequenzen in Schwingung zu versetzen, um die Membran zur
Erzeugung einer Tonausgabe zum Schwingen zu bringen, wobei der Wandler betrieblich
mit dem Schwerpunkt und/oder dem geometrischen Mittelpunkt der Membran gekoppelt ist.
21. Lautsprecherantriebseinheit nach Anspruch 20, bei der die Membran kreisoder ellipsenförmig
ist.
22. Lautsprecherantriebseinheit nach Anspruch 20 oder Anspruch 21, bei der die Membran
(70) einen leichtgewichtigen, zellularen Kern (70C) umfasst, der zwischen einander
gegenüberliegenden Häuten (70F, 70R) angeordnet ist.
23. Lautsprecherantriebseinheit nach Anspruch 22, bei der eine der Häute (70F) über einen
Rand der Membran (70) verlängert ist, wobei ein Randabschnitt der verlängerten Haut
an der elastischen Aufhängung (77) befestigt ist.
24. Lautsprecherantriebseinheit nach einem der Ansprüche 20 bis 23, bei der die Membran
ein Resonanzpaneel mit verteilten Moden ist.
25. Lautsprecherantriebseinheit nach einem der Ansprüche 20 bis 24, bei der der Wandler
(72, 82, 92) elektromagnetisch ist und eine sich bewegende Spule (74C) umfasst, die
an einem Spulenkörper (75, 85, 95) angebracht ist, wobei der Spulenkörper (75C) betrieblich
mit der Membran (70, 80, 90) gekoppelt ist.
26. Lautsprecherantriebseinheit nach Anspruch 25, die eine zweite elastische Aufhängung
(76A, 86, 96) umfasst, welche zwischen dem Spulenkörper (75, 85, 95) und dem Rahmen
(71, 81, 91) verbunden ist.
27. Lautsprecherantriebseinheit nach Anspruch 26, bei der ein Ende des Spulenkörpers (75,
85, 95) mit der Membran (70, 80, 90) verbunden ist, wobei die zweite elastische Aufhängung
(76A, 86, 96) benachbart zu dem einen Ende des Spulenkörpers (75, 85, 95) angeordnet
ist und eine dritte elastische Aufhängung zwischen dem anderen Ende des Spulenkörpers
und dem Rahmen verbunden ist.
28. Lautsprecherantriebseinheit nach einem der Ansprüche 25 bis 27, bei der das zu der
Paneelmembran (90) benachbarte Ende des Spulenkörpers (95A, B) zum Antreiben der Paneelmembran
im wesentlichen an einem Punkt (95P) angekoppelt ist.
29. Lautsprecherantriebseinheit nach Anspruch 28, die eine konische Einrichtung umfasst,
welche zwischen dem Spulenkörper und der Paneelmembran verbunden ist.
30. Lautsprecher mit einer Antriebseinheit nach einem der Ansprüche 20 bis 29.
31. Akustische Vorrichtung nach einem der Ansprüche 1 bis 19, bei der das Element (70,
80, 90) eine Biegewellenwandlereinrichtung (72, 82, 92) zur Erzeugung einer akustischen
Wirkung an einer Position aufweist, die durch die Flächenverteilung der Biegesteifigkeit
bestimmt ist.
1. Dispositif acoustique comprenant un élément (10A, 10B, 10C, 10D, 20A, 20B, 30A, 30B,
40A) s'étendant transversalement à son épaisseur et capable de supporter des ondes
de flexion provoquant une action acoustique indirecte due à la répartition surfacique
de mode résonants de la vibration propre des ondes de flexion sur sa surface s'accordant
avec une action acoustique requise pouvant être obtenue dudit élément sur une bande
effective désirée de fréquences acoustiques, caractérisé en ce que l'élément (10A/B/C/D, 20A/B, 30A/B, 40A) a une répartition de la raideur en flexion
qui varie sur la surface de l'élément favorable à ladite répartition surfacique des
modes résonants pour ladite action acoustique, ladite variation de la raideur en flexion
incluant une raideur en flexion relativement plus élevée et une raideur en flexion
relativement plus faible respectivement sur des côtés différents dudit emplacement
(13, 13B/C/D, 26, 36) d'un moyen formant transducteur d'ondes de flexion ; et en ce que le centre de la raideur en flexion de l'élément est décalé par rapport au centre
géométrique (12, 12B, 12C, 12D) de l'élément.
2. Dispositif acoustique selon la revendication 1, dans lequel le centre de gravité (25,
35) de l'élément se situe à son centre géométrique (25, 35).
3. Dispositif acoustique selon l'une quelconque des revendications précédentes, dans
lequel ladite variation de la raideur en flexion inclut une raideur en flexion relativement
plus élevée et une raideur en flexion relativement plus faible respectivement sur
des côtés différents du centre géométrique (12, 12B, 12C, 12D) dudit élément ou de
ladite surface.
4. Dispositif acoustique selon la revendication 2 ou 3, dans lequel ladite répartition
de la raideur en flexion a un centre haut (27, 37) et un centre bas (28, 38) sur lesdits
côtés différents.
5. Dispositif acoustique selon l'une quelconque des revendications précédentes, dans
lequel des épaisseurs plus grandes et moins grandes dudit élément correspondent respectivement
à des raideurs plus élevées et moins élevées de ladite répartition de la raideur en
flexion.
6. Dispositif acoustique selon l'une quelconque des revendications précédentes, dans
lequel ledit élément a une ou plusieurs masses (22) supplémentaires placées de manière
sélective n'ayant sensiblement aucun effet sur l'action acoustique désirée.
7. Dispositif acoustique selon la revendication 6, dans lequel la masse ou chacune des
masses (22) supplémentaires a une masse suffisamment faible pour qu'une action acoustique
de plus basse fréquence ne soit sensiblement pas affectée et comprend un moyen de
liaison avec ledit élément sensiblement efficace pour découpler la masse ou chacune
des masses supplémentaires pour une action acoustique de plus haute fréquence.
8. Dispositif acoustique selon la revendication 6 ou 7, dans lequel la ou les masses
supplémentaires sont situées de façon que le centre de gravité (25) dudit élément
plus ladite masse (22) supplémentaire se trouvent dans une position désirée dudit
élément.
9. Dispositif acoustique selon la revendication 8, dans lequel ladite position désirée
coïncide avec le centre géométrique (25) dudit élément.
10. Dispositif acoustique selon la revendication 5, dans lequel ledit élément (10B, 10C)
a une structure sandwich comportant des enveloppes extérieures (17X, Y, 17A, B) sur
un noyau (18, 18C) possédant des parois définissant des cellules s'étendant à travers
une épaisseur variable entre lesdites enveloppes extérieures (17X, Y, 17A, B) et définissant
des cellules (19X, Y, 29, 39) ayant des sections de tailles différentes afin de procurer
la répartition prescrite de la masse sur ledit élément.
11. Dispositif acoustique selon la revendication 5, dans lequel ledit élément (10B, C)
a une structure sandwich comportant des enveloppes extérieures (17X, Y, 17A, B) sur
un noyau (18, 18C) possédant des parois définissant des cellules s'étendant à travers
une épaisseur variable entre lesdites enveloppes extérieures et dans laquelle les
parois définissant des cellules ont des épaisseurs différentes afin de procurer la
répartition prescrite de la masse sur ledit élément.
12. Dispositif acoustique selon la revendication 10 ou 11, dans lequel ladite répartition
prescrite de masse est centrée sur le centre géométrique dudit élément ou de ladite
surface.
13. Dispositif acoustique selon la revendication 1, dans lequel ladite variation de la
raideur en flexion inclut au moins une adaptation locale de l'élément (40A) qui est
une rainure (41), une gorge ou une entaille d'affaiblissement relatif dans ledit élément
(40A).
14. Dispositif acoustique selon la revendication 13, dans lequel les variations locales
de la répartition de la raideur en flexion définissent partiellement une géométrie
secondaire non circonscrite dudit élément et dans lequel l'arrangement favorise l'action
acoustique des ondes de flexion avec la répartition surfacique effective souhaitable
des modes à basse fréquence de la vibration dépendant des ondes de flexion par rapport
audit emplacement du moyen formant transducteur d'ondes de flexion.
15. Dispositif acoustique selon la revendication 14, dans lequel les variations locales
de la répartition de la raideur en flexion permettent des modes à fréquence plus élevée
de la vibration dépendant des ondes de flexion au-delà desdites variations locales.
16. Dispositif acoustique selon l'une quelconque des revendications 1 à 4, dans lequel
l'élément a une structure comportant une enveloppe extérieure (17X, Y, 17A, B) et
dans lequel la variation de la raideur en flexion est obtenue en modifiant le ou les
paramètres de l'enveloppe extérieure.
17. Dispositif acoustique selon la revendication 16, dans lequel l'épaisseur de l'enveloppe
extérieure constitue l'un desdits paramètres de l'enveloppe extérieure.
18. Dispositif acoustique selon la revendication 16 ou 17, dans lequel le module de Young
de l'enveloppe extérieure constitue l'un desdits paramètres de l'enveloppe extérieure.
19. Dispositif acoustique selon l'une quelconque des revendications précédentes, caractérisé en ce qu'il comprend un moyen formant transducteur acoustique ayant à la fois des actions d'onde
de flexion et de compression, ledit moyen formant transducteur acoustique étant situé
dans une position qui lui permet de produire ladite action acoustique.
20. Unité de commande de haut-parleur comprenant un châssis (71, 81, 91), un transducteur
(72, 82, 82N, 92, 92N) supporté sur le châssis, un diaphragme à encastrer léger et
rigide (80, 90) constituant un dispositif acoustique selon l'une quelconque des revendications
précédentes, le diaphragme à encastrer (70, 80, 90) étant couplé en entraînement au
transducteur (72, 82, 82N, 92, 92N), et une suspension périphérique élastique (77,
87, 97) entourant le diaphragme (70, 80, 90) et permettant de le monter dans le châssis
(71, 81, 91), dans lequel le transducteur est conçu pour entraîner le diaphragme à
la manière d'un piston à des fréquences audibles relativement basses pour produire
une sortie audio et faire vibrer le diaphragme (70, 80, 90) avec des ondes de flexion
à des fréquences audibles plus élevées pour le faire résonner de façon à produire
une sortie audio, le transducteur étant couplé pour fonctionner au centre de gravité
et/ou au centre géométrique du diaphragme.
21. Unité de commande de haut-parleur selon la revendication 20, dans laquelle le diaphragme
a une forme circulaire ou elliptique.
22. Unité de commande de haut-parleur selon la revendication 20 ou 21, dans laquelle le
diaphragme (70) comprend un noyau cellulaire léger (70C) placé entre des enveloppes
extérieures (70F, 70R) opposées.
23. Unité de commande de haut-parleur selon la revendication 22, dans laquelle l'une des
enveloppes extérieures (70F) s'étend au-delà d'un bord du diaphragme (70), une portion
marginale de l'enveloppe extérieure étendue étant fixée sur la suspension élastique
(77).
24. Unité de commande de haut-parleur selon l'une quelconque des revendications 20 à 23,
dans laquelle le diaphragme est un panneau résonnant à mode réparti.
25. Unité de commande de haut-parleur selon l'une quelconque des revendications 20 à 24,
dans laquelle le transducteur (72, 82, 92) est électromagnétique et comprend une bobine
mobile (75C) montée sur un support de bobine (75, 85, 95), le support de la bobine
(75C) étant couplé pour fonctionner au diaphragme (70, 80, 90).
26. Unité de commande de haut-parleur selon la revendication 25, comprenant une deuxième
suspension élastique (76A, 86, 96) raccordée entre le support de bobine (75, 85, 95)
et le châssis (71, 81, 91).
27. Unité de commande de haut-parleur selon la revendication 26, dans laquelle une extrémité
du support de bobine (75, 85, 95) est reliée au diaphragme (70, 80, 90), ladite deuxième
suspension élastique (76A, 86, 96) est disposée dans une position adjacente à ladite
une extrémité du support de bobine (75, 85, 95) et une troisième suspension élastique
est raccordée entre l'autre extrémité du support de bobine et le châssis.
28. Unité de commande de haut-parleur selon l'une quelconque des revendications 25 à 27,
dans laquelle l'extrémité du support de bobine (95A, B) adjacente au diaphragme à
encastrer (90) est couplée de façon à entraîner le diaphragme à encastrer sensiblement
en un point (95P).
29. Unité de commande de haut-parleur selon la revendication 28, comprenant un moyen conique
raccordé entre le support de bobine et le diaphragme à encastrer.
30. Haut-parleur comprenant une unité de commande selon l'une quelconque des revendications
20 à 29.
31. Dispositif acoustique selon l'une quelconque des revendications 1 à 19, dans lequel
ledit élément (70, 80, 90) comprend un moyen formant transducteur d'ondes de flexion
(72, 82, 92) pour produire ladite action acoustique, en une position déterminée par
ladite répartition surfacique de la raideur en flexion.