[0001] The invention relates to a panel-form loudspeaker utilizing a transparent sound radiation
panel that can generate beneficial and effective vibrational normal modes for radiating
sound with desired pressure level over a specific frequency range.
[0002] The invention relates to a transparent panel-form loudspeaker utilizing a preselected
number of transducers to excite a peripherally supported transparent panel to generate
beneficial flexuralvibrational mode shapes for radiating sound with desired pressure
level over a specific frequency range. Conventional loudspeakers utilizing a cone-type
membrane as a sound radiator have been widely used. The sound radiation of the conventional
loudspeaker is achieved by attaching an electrodynamic type voice coil transducer
to the smaller end of the cone-type membrane and using the transducer to drive the
cone-type membrane to move back and forth. In general, an enclosure is necessary to
prevent low-frequency waves from the rear of the loudspeaker, which are out of phase
with those from the front, from diffracting around to the front and interfering destructively
with the waves from the front. The existence of such enclosure makes the loudspeaker
cumbersome, weighty, having dead comer for sound radiation and etc. The shortcomings
of the conventional loudspeakers together with the impact of the rapid growth of flat
display devices such as LC and Plasma TV have led to the intensive development of
panel-form loudspeakers in recent years and many proposals of making panel-form loudspeakers
have thus been resulted. For instance, Watters used the concept of coincidence frequency,
where the speed of flexural wave in panel matches the speed of sound in air, to design
a light and stiff strip element of composite structure that can sustain flexural waves
and produce a highly directional sound radiation over a specified frequency range.
The opaqueness, highly directional sound radiation, and geometry of the long radiating
panel have limited the applications of this type of panel-form loudspeakers. Heron
designed a panel-form loudspeaker which had a resonant multi-mode radiation panel.
The radiation panel was a skinned composite with a honeycomb core. At its comer there
was a transducer used for exciting the plate to generate multi-modal flexural vibration
with frequencies above the fundamental and coincidence frequencies of the panel and
provide, hopefully, high sound radiation efficiency. The design of such radiating
panel, however, makes it so stiff that it require a very large and cumbersome moving-coil
driver to drive the panel and its overall efficiency from the viewpoint of electrical
input is even less than the conventional loudspeakers. Again the radiating panel of
such loudspeaker is opaque and its applications are also limited. Recently, Azima
et al have adopted the method of multi-modal flexural vibration in designing a panel-form
loudspeaker with some specific ratios of length to width. In contrast to Heron's design,
the transducer in this case is placed at a specific point near the center of the panel.
The location of the transducer on the panel is chosen in such a way that the transducer
is not situated at any of the nodal lines of the first 20 to 25 resonant modes and
all the natural frequencies that have been excited in the selected frequency range
are uniformly distributed. Although the panel-form loudspeakers designed using this
method can produce sound with wider frequency range than those using the other previously
proposed methods, there are still some shortcomings that may limit the applications
of this panel-form loudspeakers. One of such shortcomings is that the near center
location of the transducer can hinder viewers from seeing through the radiating panel
even though the panel itself is transparent. Another major shortcoming of the panel-form
loudspeaker is the existence of severe fluctuations in the spectrum of sound pressure
level. For a panel under vibration, there may be several thousand resonant modes with
frequencies falling in the range from 50 to 20 KHz. If the location of the transducer
is merely determined using the first 20 to 25 resonant modes, it will be inevitable
that some resonant modes in the middle and high frequency ranges will be over- or
under-excited and this may lead to the formations of unfavourable peaks and pits in
the sound pressure level spectrum of the panel-form loudspeaker. It also is worthy
to point out that another source contributing to the severe fluctuations in the sound
pressure level spectrum is the interference of sound waves radiated from different
regions on the panel radiator. For a vibrating panel, the sound waves radiated from
the convex and concave regions on the panel surface are out-of-phase and can cause
interference among them. If the sound interference of the panel vibrating at a specific
frequency is serious, the sound pressure level at that frequency will be significantly
lowered and thus cause a pit in the sound pressure level spectrum. The aforementioned
difficulties, however, were not tackled by Azima et al. Therefore, in view of the
shortcomings existing in the panel-form loudspeakers, it is apparent that the previously
proposed methods for the design of the existing panel-form loudspeakers can only find
limited applications and are unsuitable to be used in the design of transparent panel-form
loudspeakers.
[0003] Recently, the rapid growth of flat display and mobile communication devices such
as liquid crystal display (LCD) monitors, cellular phones and personal digital assistants
( PDA) in usage have roused the urgent need for the research and development of transparent
panel-form loudspeakers. Since the integration of transparent panel-form loudspeakers
with flat display and mobile communication devices can greatly enhance the performance
of such devices, it thus becomes important to have a method that can be used to design
the desired transparent panel-form loudspeaker for the devices. In order to meet the
need in the development of transparent panel-form loudspeaker, a method for the design
of a transparent panel-form loudspeaker with high efficiency is presented in this
invention. The detail descriptions of the method and the making of such transparent
panel-form loudspeaker are given in the subsequent sections.
[0004] It is, therefore, a principal object of the present invention to provide a transparent
panel-form loudspeaker which can produce a desired sound pressure level spectrum over
a predetermined frequency range. The transparent panel-form loudspeaker includes a
thin transparent sound radiation panel made of transparent materials, a preselected
number of transducers situated at specific locations on the peripheral edge of the
transparent sound radiation panel, a flexible suspension device used to support the
peripheral edge of the transparent sound radiation panel, and a rigid frame used to
carry the flexible suspension device. Sound quality and radiation efficiency of the
transparent panel-form loudspeaker over a desired acoustic frequency range are dependent
on values of particular parameters of the transparent panel-form loudspeaker, including
the ratio of elastic modulus to density, the ratio of length to thickness of the transparent
sound radiation panel and locations of the transducers, and supporting points of the
flexible suspension device on the peripheral edge of the transparent sound radiation
panel. A proper selection of the values of the parameters can produce the required
achievable sound pressure level spectrum of the transparent panel-form loudspeaker
for operation over a desired acoustic frequency range.
[0005] Another object of the invention is to provide a method for designing a transparent
panel-form loudspeaker which includes a transparent sound radiation panel, a number
of transducers mounted at specific locations on the peripheral edge of the transparent
sound radiation panel, a flexible suspension device supporting the peripheral edge
of the panel, and a rigid frame for carrying the flexible suspension device. Optimal
values of the parameters of the transparent panel-form loudspeaker, including the
ratio of elastic modulus to density, the ratio of length to thickness of the transparent
sound radiation panel, and locations of the transducers and supporting points of the
suspension device on the peripheral edge of the transparent sound radiation panel,
are selected in the design process to achieve the required sound pressure level spectrum
of the transparent panel-form loudspeaker for operation over a desired acoustic frequency
range.
[0006] The present invention may best be understood through the following descriptions with
reference to the accompanying drawings, in which:
Figures 1a and 1b are, respectively, illustrations of the front and rear views of
a transparent panel-form loudspeaker with an electrodynamic type transducer mounted
on the peripheral edge of the panel radiator;
Figure 2 is an illustration of a transparent panel-form loudspeaker with two electrodynamic
type transducers mounted on the peripheral edge of the panel radiator;
Figures 3a and 3b are typical sections in the directions of the length and width of
the panel speaker of Figure 1, respectively, showing a continuous soft plastic-impregenated
corrugated cloth and several discrete foam plastic pads used in supporting the peripheral
edge of said transparent panel-form loudspeaker;
Figure 4 is another typical section of Figure 1 showing a continuous soft plastic-impregnated
corrugated cloth and several tension wires used in sustaining the peripheral edge
of the transparent panel-form loudspeaker;
Figure 5a is an illustration of the configuration of a round-shaped electrodynamic
transducer;
Figure 5b is a typical section of the electrodynamic transducer of Figure 5a;
Figure 6a is an illustration of the configuration of a blade-like electrodynamic transducer;
Figure 6b is a typical section of the blade-like electrodynamic transducer of Figure
6a;
Figure 6c is an illustration of the voice coil unit of the blade-like electrodynamic
transducer of Figure 6a;
Figure 7 is an illustration of a transparent panel-form loudspeaker with two blade-like
electrodynamic transducers mounted on the peripheral edge of the panel radiator;
Figure 8 is an illustration of a CRT monitor equipped with a transparent panel-form
loudspeaker;
Figure 9 is an illustration of a television set equipped with a transparent panel-form
loudspeaker;
Figure 10 is an illustration of a projection screen equipped with a transparent panel-form
loudspeaker;
Figure 11 a, 11b, 11 c are an illustration of a cellular phone equipped with a transparent
panel-form loudspeaker;
Figure 12 is an illustration of a video intercom equipped with a transparent panel-form
loudspeaker;
Figure 13a, 13b, 13c are an illustration of a video camera equipped with a transparent
panel-form loudspeaker; and
Figure 14a, 14b, 14c are an illustration of a Personal Digital Assistant (PDA) equipped
with a transparent panel-form loudspeaker.
[0007] The theoretical background of the proposed method is illustrated as follows.
[0008] The method for the design of the present transparent panel-form loudspeaker is established
on the basis of the effective modal parameters identification method which utilizes
both the analyses of modal vibration and sound pressure level spectrum in identifying
the beneficial modal parameters of the transparent panel radiator for sound radiation.
In the effective modal parameters identification method, a vibrating transparent panel
is modeled as a surface sound source which displaces air volume at the interface.
For an infinitely extended or baffled plate under flexural vibration, the sound pressure
radiated form the plate can be evaluated using Rayleigh's first integral. The on-axis
far-field sound pressure P is then calculated using the following approximate expression

where ρis air density, ωis vibrational angular frequency, k is wave number, ds is
a differential surface element of the panel, r is the distance from surface element
to measurement point, W
0(x,y) is the amplitude of displacement in the axial direction of the surface element
at point (x, y) on the panel, β(x,y) is the phase of displacement in the axial direction
of the surface element,
j =

,and s is the surface area of the panel. In case the vibrating panel is an unbaffled
plate of finite size, the sound pressure at any point can be evaluated using the finite
element or boundary element methods. The sound pressure level at the measurement point
is obtained from the equation

where L
p is sound pressure level, P
rms is the root-mean-square value of sound pressure at the measurement point, and P
ref is the reference pressure which is a constant. It is noted that the sound pressure
level spectrum of the vibrating panel can be constructed via the use of Equations
(1) and (2). In view of Equation (1), for given angular frequency and panel size the
magnitude of sound pressure at a specific point depends only on the displacement amplitudes
and phases of the surface elements. It is obvious that the sound pressure is directly
proportional to the displacement amplitudes of the surface elements of the panel while
the phases of the surface elements may have beneficial or adverse effects on the sound
pressure. The phases of the surface elements depend on the deflected shape of the
panel wherein the phase difference between the positive and negative displacements
of the surface elements is 180°. Consequently, for surface elements of the panel oscillating
in opposite phase, the sound pressures generated by the adjacent regions of opposite
phase tend to short circuit each other. Therefore, it is important that proper displacement
amplitudes and deflected shape should be generated for the panel if a specific sound
pressure level is desired. The displacement amplitudes and phases of the surface elements
can be determined in the modal analysis of the panel. The modal analysis of the panel,
on the other hand, can be accomplished using the finite element method or any appropriate
analytical method. Hence in the modal analysis, the deflection of a vibrating panel,
W(x, y), which is approximated by the sum of a finite number of modal deflections
can be expressed in the following form

where A
i,ψ
i(x, y), θ
i are modal amplitudes, mode shapes and modal phase angles, respectively; n is number
of modes. It is noted that the displacement magnitude and deflected shape of the panel
are dependent on the modal parameters, A
i, ψ
i and θ
i, which in turn depend on the mass, stiffness, damping and locations of excitation
of the panel. As mentioned before, sound pressure level is dependent on the displacement
magnitude and deflected shape of the panel, it is thus important to identify the modal
parameters which are beneficial for sound radiation when designing a radiating panel.
The theory of vibration has also revealed the facts that for a panel vibrating with
a specific mode shape, resonance can significantly amplify the modal amplitude of
the vibration mode, variation of excitation location can vary modal amplitude of the
mode, and the coincidence of the excitation location with one of the node lines of
the mode suppresses the deflection of the mode. The amplification of modal amplitude
at resonance together with the coincidence of the excitation location with the point
where the maximum deflection of the mode shape occurs may drastically raise the sound
pressure level at the resonant frequency and thus form a sharp peak in the sound pressure
level spectrum. On the contrary, the coincidence of the excitation location with any
one of the node lines of the mode under excitation when coupled with the small displacements
contributed from other modes may drastically reduce the sound pressure level at the
resonant frequency and thus form a valley in the sound pressure level spectrum. There
are also other factors that may cause a drastic decrease in sound pressure level.
For instance, as revealed in Equation (3), if the dominant vibration mode has an anti-symmetric
mode shape, the sound waves emitting from regions of opposite vibration phase on the
panel tend to short circuit each other and such interferences of sound waves of opposite
phase may lead to an immense decrease in sound pressure level generated at this vibration
frequency. All the aforementioned difficulties encountered in the design of a sound
radiating panel, if improperly tackled, may lead to the production of unacceptable
fluctuations in the sound pressure level spectrum over the audible frequency range
for the panel. The modal parameters that can cause beneficial or adverse effects on
sound radiation should be identified and then taken into account in the design of
a radiating panel so that a more uniform distribution of sound pressure level over
a specific frequency range can be obtained for the panel. In general, a properly designed
radiating panel should have a suitable distribution of natural frequencies over the
selected acoustic frequency range and avoid clustering of natural frequencies so that
the modal parameters associated with the specific natural frequencies, which are in
the vicinity of the excitation frequency and have direct effects on sound radiation
at the excitation frequency, can provide suitable contributions to the sound pressure
level at the excitation frequency. The specific natural frequencies are divided into
two groups, i.e., the one that has beneficial effects on sound radiation and the other
that has adverse effects on sound radiation. The contribution of the beneficial group
of natural frequencies to sound pressure level can be increased by maximizing the
modal amplitudes associated with those natural frequencies while the contribution
of the adverse group of natural frequencies can be reduced or alleviated by minimizing
the modal amplitudes or altering the mode shapes and phases associated with those
natural frequencies.
[0009] As mentioned before, modal parameters are dependent on the mass, stiffness, damping
and locations of excitation of a panel. Regarding the panel stiffness, it is affected
by the elastic modulus of the constitutent material, the dimensions of the panel,
and the support conditions around the peripheral edge of the panel. In the present
invention, one part of a flexible suspension device is used to support the panel at
several specific points on the peripheral edge of the panel. Altering the locations
of the discrete supporting points and/or the stiffness of the suspension device can
vary the stiffness and the thus the modal parameters of the panel. Damping has direct
effects on the modal amplitudes and phases. In general, panels with damping less than
10 □ are suitable to be used as sound radiators. For a free rectangular panel of given
length a and width b, the effects of the panel mass and stiffness on the sound radiation
efficiency of the panel are dependent on the ratios of elastic modulus E to density
ρ and length, a, to thickness, h. In view of the above investigation, it is obvious
that the design of an edge constrained transparent radiating panel involves the selection
of the appropriate values for the basic design variables which are the elastic modulus
to density ratio

, length to thickness ratio

, and locations of the excitation and supporting points on the peripheral edge of
the radiating panel.
[0010] In recent years, optimization methods have been extensively used in the design of
engineering products. Since the use of an appropriate optimization method can produce
the best design for an engineering product in an efficient and effective way, it is
thus advantageous to use an optimization method in the design of the present transparent
panel-form sound radiator. Herein, a two-level optimization technique is adopted to
design a rectangular radiating panel with given area (a×b). In the first level optimization,
the optimal values of the ratios of elastic modulus to density and length to thickness
are determined to maximize the sound pressure levels of some specific acoustic frequencies
for the panel with given locations of excitation and supporting points. A transparent
panel with given thickness made of specific material is then selected to complete
this level of optimization. In the second level optimization, the locations of excitation
and supporting points for the chosen transparent panel are determined to make the
distribution of sound pressure level more uniform in a specific frequency range. In
mathematical form, the problem of the second level optimization is stated as

where L
Pi is the sound pressure level at frequency ω
i; m is number of frequencies under consideration;
LP is the average of the m sound pressure levels; e is error function measuring the
sum of the differences between the sound pressure levels and their average. The objective
of this level of optimization is to minimize the error function for obtaining a more
uniform distribution of sound pressure level spectrum over a specific acoustic frequency
range. The above two levels of optimization can be accomplished using, for instance,
the genetic algorithm or any stochastic global optimization technique.
[0011] From the detailed optimal design of the transparent radiating panel, it is concluded
that if the radiating panel is required to generate satisfactory sound pressure level
within the frequency range from 50 Hz to 20KHz, the ratios of elastic modulus to density
and length to thickness must satisfy, respectively, the following conditions:

and

Furthermore, the location of any transducer must be at least one tenth of the length
of the edge on which the transducer is mounted away from the two ends of the edge
and the number of discrete supporting points on each edge of the panel does not exceed
ten.
[0012] Preferred embodiments of the present invention will be described hereunder with reference
to the accompanying drawings.
[0013] Referring to Figure 1 of the drawings, a transparent panel-form loudspeaker (10)
consists of a rectangular transparent panel-form sound radiator (15), a flexible suspension
device (30) used to sustain the peripheral edge of the panel-form sound radiator,
and a rigid frame (18) used to support the suspension device. On the other hand, the
sound radiator (15) consists of a transparent panel (40) and at least one transducer
(50). The length, width, and thickness of the transparent panel are defined as a,
b and h, respectively, and b is less than or equal to a. The transparent panel is
made of a kind of transparent materials such as glass, polystyrene (PS), polyvinyl
chloride (PVC), polmethyl methacrylate (PMMA), polyethylene terephthalate (PET), polycarbonates
(PC) and etc. The ratios of elastic modulus to density and length to thickness for
the transparent panel are selected to be in the ranges from 3 to 180 GPa/(g/cm
3) and 80 to 600, respectively. The flexible suspension device consists of two parts,
ie, a continuous plastic-impregnated corrugated cloth (30c) used to support the whole
periphery of the transparent panel and several discrete foam plastic pads (30a) or
tension wires (30b) used to support the peripheral edge of the transparent panel at
some specific supporting points (39). The locations of the specific supporting points
(39) on the long and short edges of the panel are denoted as x
i and y
i, respectively. In general, the number of the supporting points on each edge of the
transparent panel is less than ten. The transducer (50) mounted on the peripheral
edge of the transparent panel is used to induce flexural vibration of the panel for
sound radiation. The location of the transducer mounted on the long or short edges
is denoted, respectively, as x or y under the conditions that

<x<

or

<y<

. The positions of the transducer and supporting points on the peripheral edge of
the transparent panel are selected according to the effective modal parameters identification
method proposed by the present invention. The distance between the transducer and
any supporting point should be greater than one tenth of the length of the edge on
which the transducer is mounted. The transducer is also connected to an amplifier
through two electric wires (51). The manipulation of the amplifier can adjust the
driving force of the transducer and thus control the intensity level of the sound
radiated form the panel-form loudspeaker (10).
[0014] Figure 2 is an illustration of a transparent panel-form loudspeaker utilizing two
transducers (50) to induce flexural vibration of the transparent panel (40) for sound
radiation. It is noted that besides the locations shown in Figure 2, the two transducers,
in fact, can be mounted on any two of the four edges of the transparent panel under
the conditions that

<x<

or

<y<

. The positions of the two transducers on the peripheral edge of the panel are selected
using the effective modal parameters identification method presented in this invention.
It is also possible for the panel to have more than two transducers mounted on its
peripheral edge. The locations of the transducers are again determined using the effective
modal parameters identification method.
[0015] Figures 3a and 3b are the typical sections of the panel-form loudspeaker (10) of
Figure 1 showing the transparent panel (40) supported by a flexible suspension device
(30) consisting of several foam plastic pads (30a) and a continuous corrugated cloth
type support (30c). The foam plastic pads which are mounted on the rigid frame (18)
support the peripheral edge of the panel at some specific supporting points (39).
The plastic pads are used to tune the vibration behavior of the transparent panel
so that beneficial modal parameters can be generated. The locations of the supporting
points are selected using the effective modal parameters method presented in this
invention. The continuous corrugated cloth type support (30c) supporting around the
peripheral edge of the transparent panel (40) is used to damp out the standing waves
of short wavelengths at the peripheral edge of the panel.
[0016] Figure 4 shows the transparent panel (40) supported by a flexible suspension device
consisting of several wires (30b) and a continuous corrugated cloth type support (30c).
The wires which sustain the edge of the transparent panel at some specific supporting
points can be used to tune the vibration behavior of the transparent panel for generating
beneficial modal parameters. The locations of the specific supporting points are selected
using the effective modal parameters method presented in this invention. The two ends
of each wire are connected, respectively, to a pin (32) fixed at the peripheral edge
of the transparent panel and a knob (33) mounted on the frame. The tensions in the
wires, which have effects on the stiffness of the transparent panel, can be adjusted
by turning the knobs. Proper selections of the locations of the supporting points
and tensions in the wires can thus make the transparent panel possess appropriate
modal parameters and produce the desired sound pressure level spectrum over a specific
frequency range.
[0017] Figure 5a is an illustration of a round-shaped electrodynamic type transducer (50a)
used to excite the transparent panel (40) for sound radiation. Figure 5b is a typical
section of the round-shape electrodynamic type transducer. The transducer consists
of a round permanent magnet (53), a round washer (52), a cylindrical voice coil unit
(55) which is composed of a cylindrical moving coil (56) and a plastic ring (57),
a flexible suspension (54) and a round top plate (59). A magnetic field is formed
at the gap between the peripheral edges of the washer (52) and the round top plate
(59). The moving coil which is supported by the flexible suspension is immersed in
the magnetic field at the gap between the peripheral edges of the washer and the top
plate. The plastic ring (57) attached to the top of the moving coil is used to bind
the transducer adhesively to the surface of the transparent panel. When electric current
flows through the moving coil, the voice coil unit will drive the transparent panel
to vibrate flexurally and radiate sound.
[0018] Figure 6a shows a blade-like electrodynamic type transducer (50b which can drive
the transparent panel to vibrate flexurally and radiate sound. The blade-like transducer
consists of a pair of magnetic units (60) in which each unit is made of a permanent
magnet (61) and two face pole plates (62), a voice coil unit (70), and a flexible
suspension (74). The voice coil unit, on the other hand, consists of a flat moving
coil (77) and a top plastic strip (76). Figure 6b is a typical section of the blade-like
transducer (50b) showing that the flexible suspension (74) at the bottom of the voice
coil unit is used to position the moving coil (77) in-between the two magnetic units
(60) which have opposite magnetic poles facing to each other for the top as well as
the bottom face pole plates of the magnetic units. When electric current passes through
the moving coil, the voice coil unit will generate a vertical motion. Figure 6c is
an illustration of the voice coil unit together with the flexible suspension. The
mounting of the voice coil unit on the transparent panel is accomplished by adhesively
binding the top thin strip (76) to the surface of the transparent panel. The circulation
of electric current in the flat rectangular moving coil is clockwise and thus the
flows of the electric current in the upper and lower sides of the rectangular moving
coil are in opposite direction. When placed in-between the two magnetic units, the
upper and lower sides of the flat moving coil are immersed, respectively, in the upper
and lower magnetic fields formed by the face pole plates of the two magnetic units.
Since the magnetic fluxes in the upper and lower magnetic fields are in opposite direction,
the upper and lower sides of the flat moving coil will produce vertical forces acting
in the same direction. The flexible suspension is made of several springs tied to
the bottom corners of the voice coil unit. When the voice coil unit is in motion,
the springs can be used to make the voice coil unit to remain vertical at the center
of the gap between the two magnetic units.
[0019] Figure 7 is an illustration of a transparent panel-form loudspeaker (10) using two
blade-like electrodynamic transducers (50b to drive the transparent panel (40) for
sound radiation. The locations of the blade-like transducers on the peripheral edge
of the transparent panel are denoted by
i with i=1 or 2. Under the condition that
a<
i<
a, the appropriate locations of the transducers can be determined using the effective
modal parameters identification method presented in this invention. The same procedure
can also be applied to deal with the cases in which three or more transducers are
used to drive the transparent panel.
[0020] Figure 8 shows a CRT monitor (80) equipped with a transparent panel-form loudspeaker
(10). The transparent panel-form loudspeaker is hung in front of the screen (81) of
the CRT monitor using several channel-shaped hooks (82). Several adhesive foam-plastic
pads (83) are placed in-between the frame (18) of the transparent panel-form loudspeaker
and that of the CRT monitor (84) to position the loudspeaker and damp out the vibration
generated by the loudspeaker.
[0021] Figure 9 shows a transparent panel-form loudspeaker (10) hung in front of the screen
(91) of a television set (90) via the use of several channel-shaped hooks (82). Several
adhesive foam-plastic pads are placed in-between the frame (18) of the transparent
panel-form loudspeaker and that of the television set (94) to position the loudspeaker
and damp out the vibration generated by the loudspeaker.
[0022] Figure 10 shows a transparent panel-form loudspeaker (10) hung in front of a projection
screen (100) via the use of several hooks mounted on the top horizontal shaft (101)
of the projection screen (100). The pictures emitted from the video player (102) will
go through the transparent panel-form loudspeaker and then be projected on the screen
(103) unobstructively while sound is radiated from the transparent panel-form loudspeaker
in a synchronous manner.
[0023] Figure 11a shows a transparent panel-form loudspeaker (10) installed in front of
the LCD screen (111) of a cellular phone (110). The incoming sound signals can be
recovered and magnified via the transparent panel-form loudspeaker while the outgoing
sound waves are collected and transmitted via a receiver (96). Among others, two cases
are given to illustrate how the transparent panel-form loudspeaker is mounted on the
cellular phone. Figure 11b shows the first case of installing the transparent panel-form
loudspeaker in front of the LCD screen. In this case, the frame of the panel-form
loudspeaker is adhesively attached to the outer surface of the frame (112) of the
LCD screen. Figure 11c shows another installation case in which the flexible suspension
device (30) of the transparent panel-form radiator (15) is mounted on the inner surface
of the frame (112) of the LCD screen.
[0024] Figure 12 shows a video intercom (120) equipped with a transparent panel-form loudspeaker
(10) which is hung in front of the screen (121) of the intercom via several hooks
(82). Several flexible foam-plastic pads are placed in-between the frame (18) of the
panel-form loudspeaker and the frame (122) of the screen to position the panel-form
loudspeaker and damp out the vibration generated by the loudspeaker. The user can
communicate with other people via the panel-form loudspeaker (10) and the receiver
(123) and, if necessary, open the gate by pressing the control button (124).
[0025] Figure 13a shows a video camera or camcorder (130) equipped with a transparent panel-form
loudspeaker (10) which is placed in front of the screen (131) of the video camera.
The panel-form loudspeaker can radiate sound when the video tape is played on the
screen. Among others, two cases are given to illustrate how the panel-form loudspeaker
is mounted on the video camera. Figure 13b shows the first case of installing the
transparent panel-form loudspeaker in front of the screen of the video camera. In
this case, the frame (18) of the panel-form loudspeaker is adhesively attached to
the outer surface of the frame (132) of the screen. Figure 13c shows another installation
case in which the flexible suspension device (30) of the transparent panel-form radiator
(15) is mounted on the inner surface of the frame (132) of the screen.
[0026] Figure 14a shows a PDA (140) equipped with a transparent panel-form loudspeaker (10)
which is hung in front of the screen (141) of the PDA. The user can read the information
shown on the screen and hear the sound radiated from the transparent panel-form loudspeaker
synchronously. Among others, two cases are given to illustrate how the transparent
panel-form loudspeaker is mounted on the PDA. Figure 14b shows the first case of installing
the transparent panel-form loudspeaker in front of the screen (141) of the PDA. In
this case, the frame (18) of the transparent panel-form loudspeaker is adhesively
attached to the outer surface of the frame (142) of the screen. Figure 14c shows another
installation case in which the flexible suspension device (30) of the transparent
panel-form radiator (15) is mounted on the inner surface of the frame (142) of the
screen.
1. A method of making a transparent panel-form loudspeaker (10) including a rectangular
transparent panel (40) with length a and width b under the condition that b is less
than or equal to a used for producing flexural vibration over the area of the panel
(40),
characterized in that the method includes steps of:
(a) analyzing the distributions of the modal parameters (ωi, Ai,ψi(x, y), θi), which include natural frequencies (ωi), modal amplitudes (A;), mode shapes (ψi(x, y)) and phase angles (θi;), in the modal analysis of the transparent panel (40) which is driven by a preselected
number of transducers (50) to generate flexural vibration of the panel (40) and supported
peripherally by a flexible suspension device (30) consisting of a continuous corrugated
cloth type support (30c) and several discrete supports (39), the modal parameters
(ωi, Ai,ψi(x, y), θi) varying according to values of the design parameters of the transparent panel-form
loudspeaker (10), including the ratio (

) of elastic modulus to density of the material used to fabricate the transparent
panel (40), the ratio (

) of length to thickness of the panel (40), locations of the transducers (50) and
the discrete supports (39) on the peripheral edge of the transparent panel (40);
(b) analyzing a sound pressure level spectrum generated by the transparent panel-form
loudspeaker (10), the sound pressure level spectrum also varying according to values
of the design parameters of the panel-form loudspeaker (10);
(c) identifying the favourable modal parameters (ωi, Ai,ψi(x, y), θi) which are beneficial to sound radiation and the unfavourable modal parameters (ωi, Ai,ψi(x, y), θi) which have adverse effects on sound radiation;
(d) selecting values of the design parameters resulting in suppressing the adverse
effects of the unfavourable modal parameters (ωi, Ai,ψi(x, y), θi), magnifying the beneficial effects of the favourable modal parameters (ωi, Ai,ψi(x, y), θi), and achieving a desired sound pressure level spectrum over a specific frequency
range; and
(e) making the transparent panel (40) of the panel-form loudspeaker (10) with the
selected values of the design parameters.
2. The method of claim 1
characterized in that the design parameters of the transparent panel-form loudspeaker (10) are selected
via a two-level optimization approach in which the ratios (

,

) of elastic modulus to density and length to thickness of the transparent panel (40)
are selected to maximize the sound pressure levels at some specific frequencies for
the transparent panel-form loudspeaker (10) at the first level of optimization while
the locations of the transducers (50) and the discrete supports (39) of the flexible
suspension device (30) on the peripheral edge of the transparent panel (40) are selected
to make the panel-form loudspeaker (10) to produce a more uniform distribution of
sound pressure level in a specific frequency range at the second level of optimization.
3. The method according to claim 2
characterized in that the transparent panel (40) used in fabricating the transparent panel-form loudspeaker
(10) are selected to have the ratio (

) of elastic modulus to density greater than 80 and less than 180 GPA/(g/cm
3) and the ratio (

) of length to thickness greater than 80 and less than 600, and the transducers (50)
are located at points with distances greater than one tenth of the lengths of the
edges on which the transducers (50) are mounted away from the ends of the edges and
the distances between the supporting points (39) of the discrete supports and the
transducers (50) are greater than one tenth of the length of the edge on which both
the supporting points (39) and transducers (50) are situated.
4. A transparent panel-form loudspeaker (10) for producing sound in response to varying
audio signals,
characterized in that the loudspeaker (10) comprises:
(a) a rectangular transparent panel (40) with length a and width b, the width b being
less than or equal to the length a;
(b) at least one transducer (50) mounted on the peripheral edge of the transparent
panel (40) for generating flexural vibration of the panel (40);
(c) a flexible suspension device (30) used to support the peripheral edge of the transparent
panel (40); and
(d) a rectangular frame (18) used to support the flexible suspension device (30).
5. The transparent panel-form loudspeaker (10) of claim 4
characterized in that the transparent panel (40) having the ratio (

) of length to thickness in the range from 80 to 600 is made of materials selected
from a group of transparent materials consisting of glass, PMMA, PVC, PS, PC, and
PET of which the ratio (

) of elastic modulus to density is greater than 80 and less than 180 Gpa (g/cm
3).
6. The transparent panel-form loudspeaker (10) of claim 4 characterized in that the locations of the transducers (50), which are one of round-shaped electrodynamic
transducers (50a) of cylindrical moving-coil type and blade-like electrodynamic transducers
(50b) of flat moving-coil type, on the peripheral edge of the transparent panel (40)
are determined using the method in accordance with claim 1 to achieve the desired
spectrum of sound pressure level over the specific frequency range.
7. The transparent panel-form loudspeaker (10) of claim 4 characterized in that the flexible suspension device (30) consists of a continuous soft plastic-impregnated
corrugated cloth type (30c) used to damp out standing waves at the peripheral edge
of the transparent panel (40) and several discrete flexible supports (39), which are
one of foam-plastic pads (30a) and tension wires (30b), used to adjust the stiffness
and distributions of the modal parameters (ωi, Ai,ψi(x, y), θi) of the transparent panel (40).
8. The transparent panel-form loudspeaker (10) of claim 4 characterized in that the number of discrete flexible supports (39) on any edge of the transparent panel
(40) is less than ten and the locations of the supporting points (39) of the discrete
flexible supports of the flexible suspension device (30) on the peripheral edge of
the transparent panel (40) are determined using the method in accordance with claim
1 to achieve the desired spectrum of sound pressure level over the specific frequency
range.
9. The transparent panel-form loudspeaker of claim 6
characterized in that the flat voice coil (70) of the blade-like transducer (50b) is one of printed circuit
type and wire winding type voice coil and the blade-like transducer (50b) comprises:
(a) a pair of parallel magnetic units (60) in which there is a gap in-between the
two units (60) and each unit (60) is fabricated by sandwiching a bar-like permanent
magnet (61) in-between two face pole plates (62) used to channel the flow of magnetic
flux from one magnetic unit (60) to another (60) so that a close loop of magnetic
flow can be formed;
(b) a flat type voice coil (70) consisting of a long hollow rectangular coil of which
the upper and lower sides of the rectangular coil are immersed in the magnetic fields
formed by the upper and lower face pole plates (62) respectively, and a top flange
used to adhesively bind the voice coil (70) to the edge of the transparent panel (40);
and
(c) a flexible suspension device (74) used to position the voice coil (70) in the
gap between the two magnetic units (60).
10. The transparent panel-form loudspeaker (10) according to claim 6
characterized in that the transparent panel-form loudspeaker (10) is installed in front of one of the following
items:
A. the screen (81) of a CRT monitor (80) via the use of several hooks (82) and adhesive
foam-plastic pads (83) which are placed in-between the frames of the panel-form loudspeaker
(10) and the CRT monitor (84) to prevent the panel-form loudspeaker (10) from rocking
and damp out the vibration generated by the panel-form loudspeaker (40);
B. the screen (91) of a television set (90) via the use of several hooks (82) and
adhesive foam-plastic pads (83) which are placed in-between the frames of the panel-form
loudspeaker (10) and the television set (94) to prevent the panel-form loudspeaker
(10) from rocking and damp out the vibration generated by the panel-form loudspeaker
(10);
C. a projection screen (100) via the use of several hooks (82) and adhesive foam-plastic
pads (83) which are placed in-between the frames of the panel-form loudspeaker (10)
and the projection screen (100) to prevent the panel-form loudspeaker (10) from rocking
and damp out the vibration generated by the panel-form loudspeaker (10);
D. the LCD screen (111) of a cellular phone (110) via one of the two approaches in
which the frame of the transparent panel-form loudspeaker (10) is adhesively bound
to the outer surface of the frame of the cellular phone (110) and the flexible suspension
device (30) of the transparent panel-form loudspeaker (10) is mounted on the inner
surface of the frame of the cellular phone (110);
E. the screen (121) of a video intercom (120) via the use of several hooks (82) and
adhesive foam-plastic pads (83) which are placed in-between the frames of the panel-form
loudspeaker (10) and the video intercom (120) to prevent the panel-form loudspeaker
(10) from rocking and damp out the vibration generated by the panel-form loudspeaker
(10);
F. the LCD screen (131) of a video camera (130) via one of the two approaches in which
the frame of the transparent panel-form loudspeaker (10) is adhesively bound to the
outer surface of the frame of the LCD screen (131) of the video camera (130) and the
flexible suspension device (30) of the transparent panel-form loudspeaker (10) is
mounted on the inner surface of the frame of the LCD screen (131) of the video camera
(130); and
G. the LCD screen (141) of a personal digital assistant (PDA, 140) via one of the
two approaches in which the frame of the transparent panel-form loudspeaker (10) is
adhesively bound to the outer surface of the frame of the LCD screen (141) of said
PDA (140) and the flexible suspension device (30) of the transparent panel-form loudspeaker
(10) is mounted on the inner surface of the frame of the LCD screen (141) of the PDA
(140).