BACKGROUND
[0001] This specification describes an audio system for a television employing directional
audio devices.
[0002] EP1921890 discloses a sound beam loudspeaker system.
WO2009134591 discloses passive directional acoustic radiating. None of those documents anticipates
or suggests all the features of the present invention.
SUMMARY
[0003] The present invention proposes an audio system and a method for operating an audio
system as recited in the appended set of claims.
[0004] In one aspect an audio system is defined according to claim 1. The audio system may
include a second directional array and a second passive directional device, according
to claim 2. The first directional array, the second directional array, the first passive
directional device and the second passive directional device may be mounted in a common
enclosure. The common enclosure may be a television cabinet. The first directional
array and the second directional array may include at least one common driver. The
audio system of may further include a third directional array for radiating acoustic
energy, comprising signal processing circuitry and more than one acoustic driver for
radiating acoustic energy corresponding to the midrange content of the center channel
so that more acoustic energy corresponding to the center channel signal is radiated
in a direction substantially orthogonal to the direction of greater radiation of the
first directional array and the direction of greater radiation of the second directional
array. The audio system may further include a non-directional high frequency acoustical
device for radiating the high frequency content of the center channel. The non-directional
high frequency device and the third directional array may positioned in a television
on vertically opposite sides of a television screen. At least two of the first directional
array, the second directional array, and the third directional array may include at
least one acoustic driver in common. The direction substantially orthogonal to the
direction of greater radiation of the first directional array and the direction of
greater radiation of the second directional array is substantially upward. The direction
substantially orthogonal to the direction of greater radiation of the first directional
array and the direction of greater radiation of the second directional array may be
substantially toward an intended listening area. The omnidirectional device may include
a waveguide. The waveguide may be mounted in a television cabinet. At least two of
the first directional array , the second directional array, and the third directional
array include more than one acoustic driver in common. The first directional array,
the second directional array, and the third directional array may include more than
one acoustic driver in common. The audio system may be mounted in a television cabinet.
The omnidirectional acoustical device, the first directional array, the second directional
array, the third directional array, the first passive directional device, and the
second passive directional device each have an exit through which acoustic energy
is radiated to the environment, and none of the exits may be in a front face of the
television cabinet. The first passive directional device may include a slotted pipe
type passive directional acoustic device comprising an acoustic driver, acoustically
coupled to a pipe to radiate acoustic energy into the pipe. The pipe may include an
elongated opening along at least a portion of the length of the pipe; and acoustically
resistive material in the opening through which pressure waves are radiated to the
environment. The pressure waves characterized by a volume velocity. The pipe, the
opening, and the acoustically resistive material may be configured so that the volume
velocity is substantially constant along the length of the pipe.
[0005] In another aspect, a method for operating an audio system according to claim 15 is
defined.
[0006] The method may further include radiating non-directionally the high the high frequency
content of the center channel. Radiating non-directionally the high frequency content
of the center channel may include radiating from a vertically opposite side of a television
screen from the radiating directionally of the midrange content of the center channel.
The radiating omnidirectionally acoustic energy corresponding to the low frequency
content of the combined left channel, right channel, and center channel may include
radiating from a waveguide. 2.2.1. The radiating omnidirectionally may include radiating
from a waveguide is mounted in a television cabinet. The directionally radiating in
a direction substantially orthogonal to the direction of greater radiation of the
first directional array and the direction of greater radiation of the second directional
array may include radiating substantially upward. The directionally radiating in a
direction substantially orthogonal to the direction of greater radiation of the first
directional array and the direction of greater radiation of the second directional
array may include radiating substantially toward an intended listening area. The radiating
directionally from a first directional array, the radiating directionally from a second
directional array, the radiating directionally from a third directional array, the
radiating directionally from a first passive directional device and the radiating
directionally from a second passive directional device may include radiating from
a television cabinet. The radiating directionally from a first directional array,
the radiating directionally from a second directional array, the radiating directionally
from a third directional array, the radiating directionally from a first passive directional
device and the radiating directionally from a second passive directional device may
include radiating from one of a side, a bottom, or a top of a television cabinet.
[0007] In another aspect, an audio system for a television may include a television cabinet;
a slotted pipe type passive directional acoustic device that includes an acoustic
driver, acoustically coupled to a pipe to radiate acoustic energy into the pipe. The
pipe may include an elongated opening along at least a portion of the length of the
pipe; and acoustically resistive material in the opening through which pressure waves
are radiated to the environment. The the pressure waves may be characterized by a
volume velocity. The pipe, the opening, and the acoustically resistive material may
be configured so that the volume velocity is substantially constant along the length
of the pipe. The passive directional acoustic device may be mounted in the television
cabinet to directionally radiate sound waves laterally from the television cabinet.
the pipe may be at least one of bent or curved. The opening may be at least one of
bent or curved along its length. The opening may be in a face that is bent or curved.
The television cabinet may be tapered backwardly, and the passive directional acoustic
device may be mounted so that a curved or bent wall of the slotted pipe type passive
directional acoustic device is substantially parallel to the back and a side wall
of the television cabinet. The opening may include two sections, a first section in
a top face of the pipe and a second section in a side face of the pipe. The audio
system for a television of claim 10.0, wherein the acoustic apparatus may be for radiating
the high frequency content of a left channel or a right channel laterally from the
television. The passive directional acoustic device may be for radiating the left
channel or right channel content above 2kHz. The audio system may further include
a directional array for radiating midrange frequency content of the left channel or
right channel laterally from the television. The audio system may further include
a waveguide structure for radiating bass frequency content of the left channel or
right channel; the other of the left channel or right channel; and a center channel.
The cross sectional area of the pipe may decreas along the length of the pipe.
[0008] Other features, objects, and advantages will become apparent from the following detailed
description, when read in connection with the following drawing, in which:
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0009]
Figs. 1A, 1C, and 1E are top diagrammatic views of an audio module mounted in a television;
Figs. 1B and 1D are front diagrammatic views of the audio module mounted in a television;
Fig. 2 is a front diagrammatic view of the audio module, showing the location of the
center channel speakers;
Fig. 3A is a block diagram of an audio system;
Fig. 3B is a block diagram showing an alternate configuration of some of the elements
of the audio system of Fig. 3A;
Fig. 4A is a diagrammatic view of a low frequency device of the audio system;
Fig. 4B is an isometric drawing of an actual implementation of the audio system;
Fig. 5 is a diagrammatic view of the audio module;
Figs. 6A - 6D are diagrammatic views of the elements of the audio module used as directional
arrays;
Figs. 7A and 7B are diagrammatic views of a passive directional acoustic device;
Fig. 7C is an isometric view of an actual implementation of the passive directional
device of Figs. 7A and 7B; and
Fig. 8 is a diagrammatic view of a passive directional audio device, mounted in a
television.
DETAILED DESCRIPTION
[0010] Though the elements of several views of the drawing may be shown and described as
discrete elements in a block diagram and may be referred to as "circuitry", unless
otherwise indicated, the elements may be implemented as one of, or a combination of,
analog circuitry, digital circuitry, or one or more microprocessors executing software
instructions. The software instructions may include digital signal processing (DSP)
instructions. Operations may be performed by analog circuitry or by a microprocessor
executing software that performs the mathematical or logical equivalent to the analog
operation. Unless otherwise indicated, signal lines may be implemented as discrete
analog or digital signal lines, as a single discrete digital signal line with appropriate
signal processing to process separate streams of audio signals, or as elements of
a wireless communication system. Some of the processes may be described in block diagrams.
The activities that are performed in each block may be performed by one element or
by a plurality of elements, and may be separated in time. The elements that perform
the activities of a block may be physically separated. One element may perform the
activities of more than one block. Unless otherwise indicated, audio signals or video
signals or both may be encoded and transmitted in either digital or analog form; conventional
digital-to-analog or analog-to-digital converters may not be shown in the figures.
For simplicity of wording "radiating acoustic energy corresponding to the audio signals
in channel x" will be referred to as "radiating channel x." "Directional arrays",
as used herein, refers to arrays that use a combination of signal processing and geometry,
placement, and configuration of more than one acoustic driver to cause the radiation
to be greater in some directions than in other directions. Directional arrays include
interference arrays, such as described in
U.S. Pat. 5,870,484 and
U.S. Pat. 5,809,153. "Passive directional device", as used herein, refers to devices that do not use
any signal processing, but rather use only mechanical or physical arrangements or
devices to cause the radiation of wavelengths that are large (for example 2x) relative
to the diameter of the radiating elements to be greater in some directions than in
others. Passive directional devices could include acoustic lenses, horns, dipole radiators,
or slotted pipe type directional devices shown below and in Figs. 7A - 7C and described
in the corresponding portions of the specification.
[0011] Fig. 1A shows a diagrammatic view of an audio module 10. The audio module 10 may
be associated with, or built into, a television 12. The audio module radiates acoustic
signals of some frequency ranges corresponding to a audio system including at least
a left channel, a right channel, and a center channel.
[0012] The left channel midrange (LM) frequency sound is radiated by a directional array
so that more acoustic energy is radiated laterally leftward relative to a listening
area than in other directions as indicated. The right channel midrange (RM) frequency
sound is radiated by a directional array so that more acoustic energy is radiated
laterally rightward than in other directions as indicated.
[0013] The left channel high (LH) frequency sound is radiated by a passive directional device
so that more acoustic energy is radiated laterally leftward than in other directions
as indicated. The right channel high (RH) frequency sound is radiated by a passive
directional device so that more acoustic energy is radiated laterally rightward than
in other directions as indicated.
[0014] Radiating the left and right channels directionally laterally causes more of radiation
experienced by the listener to be indirect radiation than direct radiation or radiation
of the left and right channels toward the listening area. Causing more of the radiation
to be indirect radiation results in a more spacious acoustic image and permits the
radiation of the left and right channels from a device in the lateral middle of the
listening area.
[0015] Figs. 1B - 1E show different implementations of the radiation pattern of the center
channel.
[0016] In Figs. 1B and 1C, the center channel midrange (CM) frequency sound is radiated
by a directional array so that more energy is radiated in a direction substantially
orthogonal to the directions of maximum radiation of the left and right channel midrange
frequency sound than is radiated in other directions. The center channel high (CH)
frequency sound is radiated directionally by a passive directional device so that
more energy is radiated in a direction substantially orthogonal to the directions
of maximum radiation of the left and right channel midrange frequency sound than is
radiated in other directions. In Fig. 1B, the direction of maximum radiation of the
center channel midrange frequency sound and the high frequency sound is upward relative
to the listening area. In Fig. 1C, the direction of maximum radiation the center channel
midrange frequency sound and the high frequency sound is toward the listening area.
In other implementations, the direction of maximum radiation of the center channel
midrange frequency and the high frequency could be substantially downward. The direction
of maximum radiation of the center channel midrange frequency sound and the direction
of maximum radiation of the center channel high frequency sound do not need to be
the same direction; for example, the center channel midrange frequency sound could
be radiated substantially upwardly, and the center channel high frequency sound could
be radiated substantially toward the listening area. The low frequency device, which
will be described below, may be mounted in a television cabinet 46.
[0017] In Figs. 1D and 1E, the center channel midrange frequency sound is radiated by a
directional array so that more energy is radiated in a direction substantially orthogonal
to the directions of maximum radiation of the left and right channel midrange frequency
sound than is radiated in other directions. The center channel high frequency sound
is radiated substantially omnidirectionally. In Fig. 1D, the direction of maximum
radiation the center channel midrange frequency is upward relative to the listening
area. In Fig. 1E, the direction of maximum radiation the center channel midrange frequency
sound is toward the listening area.
[0018] When implemented in a television, the center channel high frequency acoustical device
may be vertically on the opposite side of the television screen from the center channel
directional array to cause the acoustic image to be vertically centered on the television
screen. For example, as shown in Fig. 2, if the center channel directional array 44
is above the television screen 52, the center channel high frequency acoustical device
45 may be positioned below the television screen.
[0019] Fig. 3A is a block diagram showing some signal processing elements of the audio module
10 of Figs. 1A - 1E. The signal processing elements of Fig. 3A are parts of a three-way
crossover system that separates the input channel into three frequency bands (hereinafter
referred to as a bass frequency band, a midrange frequency band, and a high frequency
band), none of which are substantially encompassed by any of the other frequency bands.
The signal processing elements of Fig. 3A processes and radiates the three frequency
bands differently.
[0020] The left channel signal L , the right channel signal R, and the center channel signal
C are combined at signal summer 29 and low pass filtered by low pass filter 24 to
provide a combined low frequency signal. The combined low frequency signal is radiated
by a low frequency radiation device 26, such as a woofer or another acoustic device
including low frequency augmentation elements such as ports, waveguides, or passive
radiators. Alternatively, the left channel signal, the right channel signal, and the
center channel signal may be low pass filtered, then combined before being radiated
by the low frequency radiation device, as shown in Fig. 3B.
[0021] In Fig. 3A, the left channel signal is band pass filtered by band pass filter 28
and radiated directionally by left channel array 30. The left channel signal is high
pass filtered by high pass filter 32 and radiated directionally (as indicated by the
arrow extending from element 34) by passive directional device 34.
[0022] The right channel signal is band pass filtered by band pass filter 28 and radiated
directionally by right channel array 38 as shown in Figs. 1A - 1E. The right channel
signal is high pass filtered by high pass filter 32 and radiated directionally by
passive directional device 42.
[0023] The center channel signal is band pass filtered by band pass filter 28 and radiated
directionally by center channel array 44 as shown in Figs. 1B - 1E. The center channel
signal is high pass filtered by high pass filter 32 and radiated directionally by
a high frequency acoustical device 45 (which, as stated above may be directional or
omnidirectional, as indicated by the dotted line arrow extending from element 45).
[0024] In one implementation, the break frequency of low pass filter 24 is 250 Hz, the pass
band for band pass filter 28 is 250 Hz to 2.5 k Hz, and the break frequency for high
pass filter 32 is 2 kHz.
[0025] In one implementation, the low frequency device 26 of Fig. 3A includes a waveguide
structure as described in
U.S. Published Pat. App. 2009-0214066 A1. The waveguide structure is shown diagrammatically in Fig. 4A. An actual implementation
of the low frequency device of Fig. 4A is shown in Fig. 4B. Reference numbers in Fig.
4B correspond to like numbered elements of Fig. 4A. The low frequency device may include
a waveguide 412 driven by six 2.25 inch acoustic drivers 410A - 410D mounted near
the closed end 411 of the waveguide. There are acoustic volumes 422A and 422B acoustically
coupled to the waveguide at the locations 434A and 434B along the waveguide. The cross
sectional area of the waveguide increases at the open end 418. The implementation
of Fig. 4B has one dimension that is small relative to the other two dimensions and
can be conveniently enclosed in a flat panel wide screen television cabinet, such
as the cabinet 46 of the television 12.
[0026] Directional arrays 30, 38, and 44 are shown diagrammatically in Fig. 3A as having
two acoustic drivers. In actual implementations, they may have more than two acoustic
drivers and may share common acoustic drivers. In one implementation, the left directional
array 30, the right directional array 38, and the center directional array 44 are
implemented as a multi-element directional array such as is described in
U.S. Pat. App. 12/716,309 filed March 3, 2010 by Berardi, et al.
[0027] Fig. 5 shows an acoustic module that is suitable for the left channel array 30, the
right channel array 38 of Fig. 3A, and the center channel array 44 (all shown in Fig.
3A). An audio module 212 includes a plurality, in this embodiment seven, of acoustic
drivers 218-1 - 218-7. One of the acoustic drivers 218-4 is positioned near the lateral
center of the module, near the top of the audio module. Three acoustic drivers 218-1
- 218-3 are positioned near the left extremity 220 of the audio module and are closely
and non-uniformly spaced, so that distance l1≠l2, l2≠l3,l1≠3. Additionally, the spacing
may be arranged so that ≠1 < l2<l3. Similarly, distance l6≠l5, l5≠l4,l6≠4. Additionally,
the spacing may be arranged so that l6< l5<l4. In one implementation, l1=l6=55mm,
l2=l5=110 mm, and l3=l4= 255 mm. The left channel array 30, the right channel array
38, and the center channel array 44 of Fig. 3A each include subsets of the seven acoustic
drivers 218-1 - 218-7.
[0028] The directional radiation patterns of the midrange frequency bands of Figs. 1A -
1E are accomplished by interference type directional arrays consisting of subsets
of the acoustic drivers 218-1 - 218-7. Interference type directional arrays are discussed
in
U.S. Pat. 5,870,484 and
U.S. Pat. 5,809,153. At frequencies at which the individual acoustic drivers radiate substantially omnidirectionally
(for example frequencies with corresponding wavelengths that are more than twice the
diameter of the radiating surface of the acoustic drivers), radiation from each of
the acoustic drivers interferes destructively or non-destructively with radiation
from each of the other acoustic drivers. The combined effect of the destructive and
non-destructive interference is that the radiation is some directions is significantly
less, for example, -14 dB, relative to the maximum radiation in any direction. The
directions at which the radiation is significantly less than the maximum radiation
in any direction may be referred to as "null directions". Causing more radiation experienced
by a listener to be indirect radiation is accomplished by causing the direction between
the audio module and the listener to be a null direction and so that more radiation
is directed laterally relative to the listener.
[0029] Fig. 6A shows a diagrammatic view of audio module 212, showing the configuration
of directional arrays of the audio module. The audio module is used to radiate the
channels of a multi-channel audio signal source 222. Typically, a multi-channel audio
signal source for use with a television has at least a left (L), right (R), and Center
(C) channel. In Fig. 6A, the left channel array 30 includes acoustic drivers 218-1,
218-2, 218-3, 218-4, and 218-5. The acoustic drivers 218-1 - 218-5 are coupled to
the left channel signal source 238 by signal processing circuitry 224-1 - 224-5, respectively
that apply signal processing represented by transfer function H1 L(z) - H5L(z), respectively.
The effect of the transfer functions H1L(z) - H5L(z) on the left channel audio signal
may include one or more of phase shift, time delay, polarity inversion, and others.
Transfer functions H1L(z) - H5L(z) are typically implemented as digital filters, but
may be implemented with equivalent analog devices.
[0030] In operation, the left channel signal L, as modified by the transfer functions H1
L(z) - H5L(z) is transduced to acoustic energy by the acoustic drivers 218-1 - 218-5.
The radiation from the acoustic drivers interferes destructively and non-destructively
to result in a desired directional radiation pattern. To achieve a spacious stereo
image, the left array 232 directs radiation laterally toward the left boundary of
the room as indicated by arrow 213 and cancels radiation toward the listener. The
use of digital filters to apply transfer functions to create directional interference
arrays is described, for example, in
Boone, et al., Design of a Highly Directional Endfire Loudspeaker Array, J. Audio
Eng. Soc., Vol 57. The concept is also discussed with regard to microphones van der
Wal et al., Design of Logarithmically Spaced Constant Directivity-Directivity Transducer
Arrays, J. Audio Eng. Soc., Vol. 44, No. 6, June 1996 (also discussed with regard to loudspeakers), and in
Ward, et al., Theory and design of broadband sensor arrays with frequency invariant
far-field beam patterns, J. Acoust. Soc. Am. 97 (2), February 1995. Mathematically, directional microphone array concepts may generally be applied to
loudspeakers.
[0031] Similarly, in Fig. 6B, the right channel array 38 includes acoustic drivers 218-3,
218-4, 218-5, 218-6, and 218-7. The acoustic drivers 218-3 - 218-7 are coupled to
the right channel signal source 240 and to signal processing circuitry 224-3 - 224-7,
respectively that apply signal processing represented by transfer function H3R(z)
- H7R(z), respectively. The effect of the transfer functions H3R(z) - H7R(z) may include
one or more of phase shift, time delay, polarity inversion, and others. Transfer functions
H3R(z) - H7R(z) are typically implemented as digital filters, but may be implemented
with equivalent analog devices.
[0032] In operation, the right channel signal R, as modified by the transfer functions H3R(z)
- H7R(z) is transduced to acoustic energy by the acoustic drivers 218-3 - 218-7. The
radiation from the acoustic drivers interferes destructively and non-destructively
to result in a desired directional radiation pattern. To achieve a spacious stereo
image, the right array 234 directs radiation laterally toward the right boundary of
the room as indicated by arrow 215 and cancels radiation toward the listener.
[0033] In Fig. 6C, the center channel array 44 includes acoustic drivers 218-2, 218-3, 218-4,
218-5, and 218-6. The acoustic drivers 218-2 - 218-6 are coupled to the center channel
signal source 242 by signal processing circuitry 224-2 - 224-6, respectively that
apply signal processing represented by transfer function H2C(z) - H6C(z), respectively.
The effect of the transfer functions H2C(z) - H6C(z) may include one or more of phase
shift, time delay, polarity inversion, and others. Transfer functions H2C(z) - H6C(z)
are typically implemented as digital filters, but may be implemented with equivalent
analog devices.
[0034] In operation, the center channel signal C, as modified by the transfer functions
H2C(z) - H6C(z) is transduced to acoustic energy by the acoustic drivers 218-2 - 218-6.
The radiation from the acoustic drivers interferes destructively and non-destructively
to result in a desired directional radiation pattern.
[0035] An alternative configuration for the center channel array 44 is shown in Fig. 6D,
in which the center channel array 44 includes acoustic drivers 218-1, 218-3, 218-4,
218-5, and 218-7. The acoustic drivers 218-1, 218-3 - 218-5, and 218-7 are coupled
to the center channel signal source 242 by signal processing circuitry 224-1, 224-3
- 224-5, and 224-7, respectively that apply signal processing represented by transfer
function H1 C(z), H3C(z) - H5C(z), and H7C(z), respectively. The effect of the transfer
functions H1 C(z), H3C(z) - H5C(z)), and H7C(z),may include one or more of phase shift,
time delay, polarity inversion, and others. Transfer functions H1 C(z), H3C(z) - H5C(z)),
and H7C(z) are typically implemented as digital filters, but may be implemented with
equivalent analog devices.
[0036] In operation, the center channel signal C, as modified by the transfer functions
H1 C(z), H3C(z) - H5C(z)), and H7C(z) is transduced to acoustic energy by the acoustic
drivers 218-1, 218-3 - 218-5, and 218-7. The radiation from the acoustic drivers interferes
destructively and non-destructively to result in a desired directional radiation pattern.
[0037] The center channel array 44 of Figs. 6C and 6D may direct radiation upward, as indicated
by arrow 217 and in some implementations slightly backward and cancels radiation toward
the listener, or in other implementations may direct radiation toward the listening
area.
[0038] Other types of directional array are appropriate for use as directional arrays 30,
38, and 44. For example, each of the arrays may have as few as two acoustic drivers,
without any acoustic drivers shared by arrays.
[0039] In one implementation, the left passive directional device 34 and the right passive
directional device 42 of Fig. 3A are implemented as shown diagrammatically in Figs.
7A and 7B with an actual example (without the acoustic driver) in Fig 7C. The passive
directional devices of Figs. 7A and 7B operate according to the principles described
in
U.S. Published Pat. App. 2009-0274329 A1.
[0040] The passive directional device 310 of Fig. 7A - 7C includes a rectangular pipe 316
with an acoustic driver 314 mounted in one end. The pipe tapers from the end in which
the acoustic driver 314 is mounted to the other end so that the cross-sectional area
at the other end is substantially zero. A lengthwise slot 318 that runs substantially
the length of the pipe is covered with acoustically resistive material 320, such as
unsintered stainless steel wire cloth, 165x800 plain twill Dutch weave. The dimensions
and characteristics of the pipe, the slot, and the acoustically resistive material
are set so that the volume velocity is substantially constant along the length of
the pipe.
[0041] In the actual implementation of Fig. 7C, one lengthwise section 354 of the rectangular
pipe is bent at a 45 degree angle to a second section 352. The slot 318 of Fig. 7A
is divided into two sections, one section 318A of the slot in the side face 356 of
first section 354 of the pipe and a second section of the slot 318B in the top face
358 in the second section 352 of the pipe.
[0042] The implementation of the slotted pipe type directional loudspeaker of Fig. 7B is
particularly advantageous in some situations. Fig. 8 shows a curved or bent slotted
pipe type directional radiator 110 in a television cabinet 112. The dotted lines represent
the side and back of the television cabinet 112, viewed from the top. For cosmetic
or other reasons, the back of the cabinet is tapered inwardly, so that the back of
the cabinet is narrower than the front. A slotted pipe type directional radiator is
positioned in the cabinet so that the curve or bend generally follows the tapering
of the cabinet, or in other words so that the curved or slanted wall of the slotted
pipe type directional radiator is substantially parallel with the back and side of
the television cabinet. The directional radiator may radiate through an opening in
the side of the cabinet, which may, for example, be a louvered opening. The direction
of strongest radiation of the directional loudspeaker is generally sideward and slightly
forward as indicated by arrow 62, which is desirable for use as passive directional
devices such as devices 32 and 42 of Fig. 3A.
[0043] Other types of passive directional devices may be appropriate for passive directional
devices 32 and 42, for example, horns, lenses or the like.
[0044] Using passive directional devices for high frequencies is advantageous because it
provides desired directionality without requiring directional arrays. Designing directional
arrays that work effectively at the short wavelengths corresponding to high frequencies
is difficult. At frequencies with corresponding wavelengths that approach the diameter
of the radiating elements, the radiating elements themselves may become directional.
[0045] Numerous uses of and departures from the specific apparatus and techniques disclosed
herein may be made without departing from the inventive concepts. Consequently, the
invention is to be construed as embracing each and every novel feature and novel combination
of features disclosed herein and limited only the appended claims.
1. An audio system (10) comprising:
a crossover network for separating a left channel, a right channel, and a center channel
into low frequency content, midrange frequency content, and high frequency content;
an omnidirectional acoustical device (26) for radiating acoustic energy corresponding
to the low frequency content of a combination of the left channel, right channel,
and center channel;
a first directional array (30,38), comprising signal processing circuitry and more
than one acoustic driver, for radiating acoustic energy corresponding to the midrange
content of one of the left channel and right channel signal so that more acoustic
energy corresponding to the midrange content of one of the left channel signal and
the right channel signal is radiated laterally relative to a listening area than in
other directions; and
a first passive directional device (34,42) for radiating acoustic energy corresponding
to the high frequency content of the one of the left channel and right channel signal
so that more acoustic energy corresponding to the high frequency content of the one
of the left channel signal and the right channel signal is radiated laterally relative
to the listening area than in other directions, a passive directional device being
a device that does not use any signal processing, but uses only mechanical or physical
arrangements or devices to cause the radiation of wavelengths that are large relative
to the diameter of radiating elements to be greater in some directions than in others.
2. The audio system (10) of claim 1, further comprising:
a second directional array (30,38) for radiating acoustic energy, comprising signal
processing circuitry and more than one acoustic driver for radiating acoustic energy
corresponding to the midrange content of the other of the left channel and right channel
so that more acoustic energy corresponding to high frequency content of the other
of the left channel and right channel signal is radiated laterally relative to the
listening area than in other directions; and
a second passive directional device (34,42) for radiating acoustic energy corresponding
to the high frequency content of the other of the left channel and right channel so
that more acoustic energy corresponding to high frequency content of the other of
the left channel and right channel signal is radiated laterally relative to the listening
area than in other directions.
3. The audio system (10) of claim 2, wherein the first directional array (30,38), the
second directional array (30,38), the first passive directional device (34,42) and
the second passive directional device (34,42) are mounted in a common enclosure.
4. The audio system (10) of claim 2, wherein the first directional array (30,38) and
the second directional array (30,38) comprise at least one common acoustic driver.
5. The audio system (10) of claim 1, further comprising a third directional array (44)
for radiating acoustic energy, comprising signal processing circuitry and more than
one acoustic driver for radiating acoustic energy corresponding to the midrange content
of the center channel so that more acoustic energy corresponding to the center channel
signal is radiated in a direction substantially orthogonal to the direction of greater
radiation of the first directional array and the direction of greater radiation of
the second directional array.
6. The audio system (10) of claim 5, further comprising a non-directional high frequency
acoustical device (45) for radiating the high frequency content of the center channel.
7. The audio system (10) of claim 5, wherein at least two of the first directional array
(30,38), the second directional array (30,38), and the third directional array (44)
comprise at least one acoustic driver in common.
8. The audio system (10) of claim 1, wherein the omnidirectional device (26) comprises
a waveguide (412).
9. The audio system (10) of claim 8, wherein the waveguide (412) is mounted in a television
cabinet (46).
10. The audio system (10) of claim 8, wherein at least two of the first directional array
(30,38), the second directional array (30,38), and the third directional array (44)
comprise more than one acoustic driver in common.
11. The audio system (10) of claim 10, wherein the first directional array (30,38), the
second directional array (30,38), and the third directional array (44) comprise more
than one acoustic driver in common.
12. The audio system (10) of claim 1, mounted in a television cabinet (46).
13. The audio system (10) of claim 12, wherein the omnidirectional acoustical device (26),
the first directional array (30,38), the second directional array (30,38), the third
directional array (44), the first passive directional device (34,42), and the second
passive directional device (34,42) each have an exit through which acoustic energy
is radiated to the environment, wherein none of the exits is in a front face of the
television cabinet (46).
14. The audio system (10) of claim 1, wherein the first passive directional device (34,42)
comprises:
a slotted pipe type passive directional acoustic device comprising an acoustic driver
(314) acoustically coupled to a pipe (316) to radiate acoustic energy into the pipe,
the pipe comprising
an elongated opening (318) along at least a portion of the length of the pipe; and
acoustically resistive material (320) in the opening through which pressure waves
are radiated to the environment,
the pressure waves characterized by a volume velocity, the pipe, the opening, and the acoustically resistive material
configured so that the volume velocity is substantially constant along the length
of the pipe.
15. A method for operating an audio system (10), the method comprising:
radiating omnidirectionally acoustic energy corresponding to the low frequency content
of a combination of a left channel, a right channel, and a center channel;
radiating directionally, from a first directional array (30) comprising signal processing
circuitry and more than one acoustic driver, acoustic energy corresponding to the
midrange content of the left channel so that more acoustic energy corresponding to
the left channel signal is radiated leftwardly relative to a listening area than in
other directions;
radiating directionally, from a second directional array (38) comprising signal processing
circuitry and more than one acoustic driver, acoustic energy corresponding to the
midrange content of the right channel so that more acoustic energy corresponding to
the right channel signal is radiated rightwardly relative to the listening area than
in other directions;
radiating directionally, from a third directional array (44) comprising signal processing
circuitry and more than one acoustic driver, acoustic energy corresponding to the
midrange content of the center channel so that more acoustic energy corresponding
to the center channel signal is radiated in a direction substantially orthogonal to
the direction of greater radiation of the first directional array and the direction
of greater radiation of the second directional array;
radiating directionally, from a first passive directional device (34), acoustic energy
corresponding to the high frequency content of the left channel so that more acoustic
energy is radiated leftwardly relative to the listening area than other directions;
and
radiating directionally, from a second passive directional device (42), acoustic energy
corresponding to the high frequency content of the right channel so that more acoustic
energy is radiated rightwardly relative to the listening area than other directions,
wherein a passive directional device is a device that does not use any signal processing,
but uses only mechanical or physical arrangements or devices to cause the radiation
of wavelengths that are large relative to the diameter of radiating elements to be
greater in some directions than in others.
1. Audiosystem (10), umfassend:
eine Frequenzweiche zum Trennen eines linken Kanals, eines rechten Kanals und eines
zentralen Kanals in einen niederfrequenten Inhalt, einen mittelfrequenten Inhalt und
einen hochfrequenten Inhalt;
eine omnidirektionale akustische Vorrichtung (26), um akustische Energie abzustrahlen,
die dem niederfrequenten Inhalt einer Kombination aus dem linken Kanal, dem rechten
Kanal und dem zentralen Kanal entspricht,
einen ersten gerichteten Bereich (30, 38), umfassend eine Signalverarbeitungsschaltung
und mehr als einen akustischen Treiber, um akustische Energie abzustrahlen, die dem
mittelfrequenten Inhalt eines des linken Kanals und des rechten Kanals entspricht,
so dass mehr akustische Energie, die dem mittelfrequenten Inhalt eines des linken
Kanalsignals und des rechten Kanalsignals entspricht, seitlich mit Bezug auf einen
Hörbereich als in andere Richtungen abgestrahlt wird; und
eine erste passive gerichtete Vorrichtung (34, 42), um akustische Energie abzustrahlen,
die dem hochfrequenten Inhalt eines des linken Kanals und des rechten Kanalsignals
entspricht, so dass mehr akustische Energie, die dem hochfrequenten Inhalt eines des
linken Kanalsignals und des rechten Kanalsignals entspricht, seitlich mit Bezug auf
den Hörbereich als in andere Richtungen abgestrahlt wird, wobei ein passive gerichtete
Vorrichtung eine Vorrichtung ist, die keine Signalverarbeitung verwendet, sondern
nur mechanische oder physische Anordnungen oder Vorrichtungen verwendet, um die Abstrahlung
von Wellenlängen zu verursachen, die groß mit Bezug auf den Durchmesser von Strahlungselementen
sind, um in einigen Richtungen größer als in anderen zu sein.
2. Audiosystem (10) nach Anspruch 1, weiter umfassend
einen zweiten gerichteten Bereich (30, 38), um akustische Energie abzustrahlen, umfassend
eine Signalverarbeitungsschaltung und mehr als einen akustischen Treiber, um akustische
Energie abzustrahlen, die dem mittelfrequenten Inhalt des anderen des linken Kanals
und des rechten Kanals entspricht, so dass mehr akustische Energie, die dem hochfrequenten
Inhalt des anderen des linken Kanals und des rechten Kanalsignals entspricht, seitlich
mit Bezug auf den Hörbereich als in andere Richtungen abgestrahlt wird; und
eine zweite passive gerichtete Vorrichtung (34, 42), um akustische Energie abzustrahlen,
die dem hochfrequenten Inhalt des anderen des linken Kanals und des rechten Kanals
entspricht, so dass mehr akustische Energie, die dem hochfrequenten Inhalt des anderen
des linken Kanals und des rechten Kanals entspricht, seitlich mit Bezug auf den Hörbereich
als in andere Richtungen abgestrahlt wird.
3. Audiosystem (10) nach Anspruch 2, wobei der erste gerichtete Bereich (30, 38), der
zweite gerichtete Bereich (30, 38), die erste passive gerichtete Vorrichtung (34,
42) und die zweite passive gerichtete Vorrichtung (34, 42) in ein gemeinsames Gehäuse
montiert sind.
4. Audiosystem (10) nach Anspruch 2, wobei der erste gerichtete Bereich (30, 38) und
der zweite gerichtete Bereich (30, 38) mindestens einen gemeinsamen akustischen Treiber
umfassen.
5. Audiosystem (10) nach Anspruch 1, weiter umfassend einen dritten gerichteten Bereich
(44), um akustische Energie abzustrahlen, umfassend eine Signalverarbeitungsschaltung
und mehr als einen akustischen Treiber, um akustische Energie abzustrahlen, die dem
mittelfrequenten Inhalt des zentralen Kanals entspricht, so dass mehr akustische Energie,
die dem zentralen Kanalsignal entspricht, in eine Richtung abgestrahlt wird, die im
Wesentlichen orthogonal zur Richtung der größeren Abstrahlung des ersten gerichteten
Bereichs und der Richtung der größeren Abstrahlung des zweiten gerichteten Bereichs
ist.
6. Audiosystem (10) nach Anspruch 5, weiter umfassend eine nicht gerichtete hochfrequente
akustische Vorrichtung (45), um den hochfrequenten Inhalt des zentralen Kanals abzustrahlen.
7. Audiosystem (10) nach Anspruch 5, wobei mindestens zwei des ersten gerichteten Bereichs
(30, 38), des zweiten gerichteten Bereichs (30, 38) und des dritten gerichteten Bereichs
(44) mindestens einen gemeinsamen akustischen Treiber umfassen.
8. Audiosystem (10) nach Anspruch 1, wobei die omnidirektionale Vorrichtung (26) einen
Wellenleiter (412) umfasst.
9. Audiosystem (10) nach Anspruch 8, wobei der Wellenleiter (412) in ein Fernsehgehäuse
(46) montiert ist.
10. Audiosystem (10) nach Anspruch 8, wobei mindestens zwei des ersten gerichteten Bereichs
(30, 38), des zweiten gerichteten Bereichs (30, 38) und des dritten gerichteten Bereichs
(44) mehr als einen gemeinsamen akustischen Treiber umfassen.
11. Audiosystem (10) nach Anspruch 10, wobei der erste gerichtete Bereich (30, 38), der
zweite gerichtete Bereich (30, 38) und der dritte gerichtete Bereich (44) mehr als
einen gemeinsamen akustischen Treiber umfassen.
12. Audiosystem (10) nach Anspruch 1, das in ein Fernsehgehäuse (46) montiert ist.
13. Audiosystem (10) nach Anspruch 12, wobei die omnidirektionale akustische Vorrichtung
(26), der erste gerichtete Bereich (30, 38), der zweite gerichtete Bereich (30, 38),
der dritte gerichtete Bereich (44), die erste passive gerichtete Vorrichtung (34,
42) und die zweite passive gerichtete Vorrichtung (34, 42) jeweils einen Ausgang aufweisen,
durch den akustische Energie an die Umgebung abgestrahlt wird, wobei sich keiner der
Ausgänge auf einer vorderen Seite des Fernsehgehäuses (46) befindet.
14. Audiosystem (10) nach Anspruch 1, wobei die erste passive gerichtete Vorrichtung (34,
42) Folgendes umfasst:
eine passive gerichtete akustische Vorrichtung vom Typ eines geschlitzten Rohrs, umfassend
einen akustischen Treiber (314), der akustisch mit einem Rohr (316) gekoppelt ist,
um akustische Energie in das Rohr abzustrahlen,
wobei das Rohr Folgendes umfasst:
eine verlängerte Öffnung (318) entlang mindestens einem Abschnitt der Länge des Rohrs;
und
akustisch widerstandsfähiges Material (320) in der Öffnung, durch die Druckwellen
an die Umgebung abgestrahlt werden,
wobei die Druckwellen durch eine Volumengeschwindigkeit gekennzeichnet sind, wobei
das Rohr, die Öffnung und das akustisch widerstandsfähige Material so konfiguriert
sind, dass die Volumengeschwindigkeit im Wesentlichen auf der Länge des Rohrs konstant
ist.
15. Verfahren zum Betrieb eines Audiosystems (10), wobei das Verfahren Folgendes umfasst:
omnidirektionales Abstrahlen von akustischer Energie, die dem niederfrequenten Inhalt
einer Kombination aus einem linken Kanal, einem rechten Kanal und einem zentralen
Kanal entspricht;
gerichtetes Abstrahlen, aus einem ersten gerichteten Bereich (30), umfassend eine
Signalverarbeitungsschaltung und mehr als einen akustischen Treiber, von akustischer
Energie, die dem mittelfrequenten Inhalt des linken Kanals entspricht, so dass mehr
akustische Energie, die dem linken Kanalsignal entspricht, nach links mit Bezug auf
einen Hörbereich als in andere Richtungen abgestrahlt wird;
gerichtetes Abstrahlen, aus einem zweiten gerichteten Bereich (38), umfassend eine
Signalverarbeitungsschaltung und mehr als einen akustischen Treiber, von akustischer
Energie, die dem mittelfrequenten Inhalt des rechten Kanals entspricht, so dass mehr
akustische Energie, die dem rechten Kanalsignal entspricht, nach rechts mit Bezug
auf den Hörbereich als in andere Richtungen abgestrahlt wird;
gerichtetes Abstrahlen, aus einen dritten gerichteten Bereich (44), umfassend eine
Signalverarbeitungsschaltung und mehr als einen akustischen Treiber, von akustischer
Energie, die dem mittelfrequenten Inhalt des zentralen Kanals entspricht, so dass
mehr akustische Energie, die dem zentralen Kanalsignal entspricht, in eine Richtung
abgestrahlt wird, die im Wesentlichen orthogonal zur Richtung der größeren Abstrahlung
des ersten gerichteten Bereichs und der Richtung der größeren Abstrahlung des zweiten
gerichteten Bereichs ist;
gerichtetes Abstrahlen, aus einer ersten passiven gerichteten Vorrichtung (34), von
akustischer Energie, die dem hochfrequenten Inhalt des linken Kanals entspricht, so
dass mehr akustische Energie nach links mit Bezug auf den Hörbereich als in andere
Richtungen abgestrahlt wird; und
gerichtetes Abstrahlen, aus einer zweiten passiven gerichteten Vorrichtung (42), von
akustischer Energie, die dem hochfrequenten Inhalt des rechten Kanals entspricht,
so dass mehr akustische Energie nach rechts mit Bezug auf den Hörbereich als in andere
Richtungen abgestrahlt wird,
wobei eine passive gerichtete Vorrichtung eine Vorrichtung ist, die keine Signalverarbeitung
verwendet, sondern nur mechanische oder physische Anordnungen oder Vorrichtungen verwendet,
um die Abstrahlung von Wellenlängen zu verursachen, die groß mit Bezug auf den Durchmesser
von Strahlungselementen sind, um in einigen Richtungen größer als in anderen zu sein.
1. Système audio (10) comprenant :
un filtre d'aiguillage pour séparer un canal gauche, un canal droit et un canal central
en contenu basse fréquence, en contenu moyenne fréquence et en contenu haute fréquence
;
un dispositif acoustique omnidirectionnel (26) pour rayonner une énergie acoustique
correspondant au contenu basse fréquence d'une combinaison du canal gauche, du canal
droit et du canal central ;
un réseau directionnel (30, 38), comprenant un ensemble de circuits de traitement
de signaux et plusieurs pilotes acoustiques, pour rayonner l'énergie acoustique correspondant
au contenu moyenne fréquence de l'un du signal de canal gauche et du signal de canal
droit de telle sorte que davantage d'énergie acoustique correspondant au contenu moyenne
fréquence de l'un du signal de canal gauche et du signal de canal droit soit rayonnée
de manière latérale par rapport à une zone d'écoute que dans d'autres directions ;
et
un premier dispositif directionnel passif (34, 42) pour rayonner l'énergie acoustique
correspondant au contenu haute fréquence de l'un du signal de canal gauche et du signal
de canal droit de telle sorte que davantage d'énergie acoustique correspondant au
contenu haute fréquence de l'un du signal de canal gauche et du signal de canal droit
soit rayonnée de manière latérale par rapport à la zone d'écoute que dans d'autres
directions, un dispositif directionnel passif étant un dispositif qui n'utilise pas
de traitement de signaux, mais utilise uniquement des équipements ou dispositifs mécaniques
ou physiques pour amener le rayonnement de longueurs d'ondes qui sont grandes par
rapport au diamètre des éléments rayonnants à être supérieur dans certaines directions
que dans d'autres.
2. Système audio (10) selon la revendication 1, comprenant en outre :
un deuxième réseau directionnel (30, 38) pour rayonner de l'énergie acoustique, comprenant
un ensemble de circuits de traitement de signaux et plusieurs pilotes acoustiques
pour rayonner une énergie acoustique correspondant au contenu moyenne fréquence de
l'autre du canal gauche et du canal droit de telle sorte que davantage d'énergie acoustique
correspondant au contenu haute fréquence de l'autre du signal de canal gauche et du
signal de canal droit soit rayonnée de manière latérale par rapport à la zone d'écoute
que dans d'autres directions , et
un second dispositif directionnel passif (34, 42) pour rayonner l'énergie acoustique
correspondant au contenu haute fréquence de l'autre du canal gauche et du canal droit
de telle sorte que davantage d'énergie acoustique correspondant au contenu haute fréquence
de l'autre du signal de canal gauche et du signal de canal droit soit rayonnée de
manière latérale par rapport à la zone d'écoute que dans d'autres directions.
3. Système audio (10) selon la revendication 2, dans lequel le premier réseau directionnel
(30, 38), le deuxième réseau directionnel (30, 38), le premier dispositif directionnel
passif (34, 42) et le second dispositif directionnel passif (34, 42) sont montés dans
une enceinte commune.
4. Système audio (10) selon la revendication 2, dans lequel le premier réseau directionnel
(30, 38) et le deuxième réseau directionnel (30, 38), comprennent au moins un pilote
acoustique commun.
5. Système audio (10) selon la revendication 1, comprenant en outre un troisième réseau
directionnel (44) pour rayonner de l'énergie acoustique, comprenant un ensemble de
circuits de traitement de signaux et plusieurs pilotes acoustiques pour rayonner de
l'énergie acoustique correspondant au contenu moyenne fréquence du canal central de
telle sorte que davantage d'énergie acoustique correspondant au signal de canal central
soit rayonnée dans une direction sensiblement orthogonale à la direction de rayonnement
supérieur du premier réseau directionnel et à la direction de rayonnement supérieur
du deuxième réseau directionnel.
6. Système audio (10) selon la revendication 5, comprenant en outre un dispositif acoustique
haute fréquence non directionnel (45) pour rayonner le contenu haute fréquence du
canal central.
7. Système audio (10) selon la revendication 5, dans lequel au moins deux du premier
réseau directionnel (30, 38), du deuxième réseau directionnel (30, 38) et du troisième
réseau directionnel (44) comprennent au moins un pilote acoustique en commun.
8. Système audio (10) selon la revendication 1, dans lequel le dispositif omnidirectionnel
(26) comprend un guide d'ondes (412).
9. Système audio (10) selon la revendication 8, dans lequel le guide d'ondes (412) est
monté dans un meuble pour téléviseur (46).
10. Système audio (10) selon la revendication 8, dans lequel au moins deux du premier
réseau directionnel (30, 38), du deuxième réseau directionnel (30, 38) et du troisième
réseau directionnel (44) comprennent plus d'un pilote acoustique en commun.
11. Système audio (10) selon la revendication 10, dans lequel le premier réseau directionnel
(30, 38), le deuxième réseau directionnel (30, 38) et le troisième réseau directionnel
(44) comprennent plus d'un pilote acoustique en commun.
12. Système audio (10) selon la revendication 1, monté dans un meuble pour téléviseur
(46).
13. Système audio (10) selon la revendication 12, dans lequel le dispositif acoustique
omnidirectionnel (26), le premier réseau directionnel (30, 38), le deuxième réseau
directionnel (30, 38), le troisième réseau directionnel (44), le premier dispositif
directionnel passif (34, 42) et le second dispositif directionnel passif (34, 42)
ont chacun une sortie à travers laquelle de l'énergie acoustique est rayonnée vers
l'environnement, dans lequel aucune des sorties ne se trouve sur une face frontale
du meuble pour téléviseur (46).
14. Système audio (10) selon la revendication 1, dans lequel le premier dispositif directionnel
passif (34, 42) comprend :
un dispositif acoustique directionnel passif de type tube à fentes comprenant un pilote
acoustique (314) couplé acoustiquement à un tube (316) pour rayonner de l'énergie
acoustique dans le tube,
le tube comprenant
une ouverture allongée (318) le long d'au moins une partie de la longueur du tube
; et
un matériau acoustiquement résistif (320) dans l'ouverture à travers laquelle des
ondes de pression sont rayonnées vers l'environnement,
les ondes de pression étant caractérisées par une vitesse volumique, le tube, l'ouverture et le matériau acoustiquement résistif
étant configurés de telle sorte que la vitesse volumique soit sensiblement constante
le long de la longueur du tube.
15. Procédé de fonctionnement d'un système audio (10), le procédé comprenant :
le rayonnement omnidirectionnel d'énergie acoustique correspondant au contenu basse
fréquence d'une combinaison d'un canal gauche, d'un canal droit et d'un canal central
;
le rayonnement directionnel, depuis un premier réseau directionnel (30) comprenant
un ensemble de circuits de traitement de signaux et plusieurs pilotes acoustiques,
d'énergie acoustique correspondant au contenu moyenne fréquence du canal gauche de
telle sorte que davantage d'énergie acoustique correspondant au signal de canal gauche
soit rayonnée vers la gauche par rapport à une zone d'écoute que dans d'autres directions
;
le rayonnement directionnel, depuis un deuxième réseau directionnel (38) comprenant
un ensemble de circuits de traitement de signaux et plusieurs pilotes acoustiques,
d'énergie acoustique correspondant au contenu moyenne fréquence du canal droit de
telle sorte que davantage d'énergie acoustique correspondant au signal de canal droit
soit rayonnée vers la droite par rapport à la zone d'écoute que dans d'autres directions
;
le rayonnement directionnel, depuis un troisième réseau directionnel (44) comprenant
un ensemble de circuits de traitement de signaux et plusieurs pilotes acoustiques,
d'énergie acoustique correspondant au contenu moyenne fréquence du canal central de
telle sorte que davantage d'énergie acoustique correspondant au signal de canal central
soit rayonnée dans une direction sensiblement orthogonale à la direction de rayonnement
supérieur du premier réseau directionnel et à la direction de rayonnement supérieur
du deuxième réseau directionnel ;
le rayonnement directionnel, depuis un premier dispositif directionnel passif (34),
d'énergie acoustique correspondant au contenu haute fréquence du canal gauche de telle
sorte que davantage d'énergie acoustique soit rayonnée vers la gauche par rapport
à la zone d'écoute que dans d'autres directions ; et
Le rayonnement directionnel, depuis un second dispositif directionnel passif (42),
d'énergie acoustique correspondant au contenu haute fréquence du canal droit de telle
sorte que davantage d'énergie acoustique soit rayonnée vers la droite par rapport
à la zone d'écoute que dans d'autres directions,
dans lequel un dispositif directionnel passif est un dispositif qui n'utilise pas
de traitement de signaux, mais utilise uniquement des équipements ou dispositifs mécaniques
ou physiques pour amener le rayonnement de longueurs d'ondes qui sont grandes par
rapport au diamètre des éléments rayonnants à être supérieur dans certaines directions
que dans d'autres.