This disclosure relates to a three-dimensional (3D) sound analysis system. In particular, to detect sound waves in three dimensions and analyse the output signals.
Microphones and systems for detecting sound are generally substantially non-linear in frequency response, sensitivity, and directionality.
Their directionality options are also substantially limited.
Attempting to employ such microphones for 3D sound applications exacerbates these problems.
It is desirable to provide microphone systems capable of detecting sound with substantially high linearity in frequency response, sensitivity, and directionality, combined with any desired form of directionality such as spherical, hemispherical, conic or selecting any desired volume and shape, or any combination or number thereof. This system would suit both professional microphone applications and 3D applications.
It is further desirable to provide a microphone system to identify the 3D coordinates of most or all of the detected sound sources, means to separate the sound emanations of each sound source with good to high fidelity, and means to reconstruct the sound source at its origin with good to high fidelity generally including its lobal patterns.
In this specification unless otherwise specified, terms and acronyms used in this document are:
A plurality of microphone modules according to this present disclosure are expected to be substantially congruent in their characteristics of frequency response, sensitivity, and directionality. This congruency enables several non-linear aspects to be established as a standard by testing and thereafter, for the plurality of microphones modules, these non-linear aspects can be corrected via signal processing into linear characteristics. In this context the plurality of microphones modules can be considered as a plurality of ideal or near-ideal 3D bidirectional microphone modules.
The present disclosure provides a 3D sound analysis system comprising a cluster of 3D responsive microphone modules and a signal processor. The cluster of 3D responsive microphone modules and the signal processor allows the analysis of a detectable 3D sound environment. The system enables capabilities such as:
In an embodiment, a 3D responsive microphone module is preferably configured in a 3D arrangement around either a central sensing position or a central sensing element to obtain bidirectional vector information relating to all impinging sound waves from detectable sound sources.
In an embodiment, the cluster of microphone modules is configured in a 3D arrangement, typically as four microphone modules arranged as a tetrahedral. Due to their different 3D positions, each microphone module will obtain a slightly different 3D bidirectional vector information set relating to each sound source.
In an embodiment, a distribution of microphone clusters is used to collect sound source signal information from a large volume.
In an embodiment, the signal processor is programmed to:
In an embodiment, each of the bidirectional microphones of the cluster of microphone modules is substantially congruent in their characteristics such as frequency response, sensitivity, and directionality wherein such are established in manufacture by testing as a standard and for quality control, thereby enabling from any bidirectional microphone:
Any given microphone module can provide sufficient 3D sound information that the signal processor can determine the bidirectional vectors in space pointing to a plurality of detectable sound source in conjunction with determining the received sound from each detectable sound source. The resulting cluster of microphone modules in combination with further signal processing can identify via the intersection points of the bidirectional vectors from each microphone module the 3D location of each detectable sound source.
In an embodiment, the bidirectional microphones of any given microphone module are placed in a 3D arrangement, wherein at least three bidirectional microphones are aligned on x-y-z axes. The 3D arrangement may comprise four bidirectional microphones placed tetrahedrally, or any other number of bidirectional microphones placed in a suitable polygonal arrangement.
In an embodiment, the cluster of microphone modules are placed in a 3D arrangement. Preferably four microphone modules are placed tetrahedrally, whilst noting that five or more microphone modules will tend to provide improved 3D signal information.
In a first aspect, there is provided a plurality of high frequency sound waves in the form of substantially narrow beams, comprised of either continuous waves or pulses, between a plurality of transmitter and receiver pairs that act in the capacity of the bidirectional microphones.
Incoming sound waves lateral to the axis of the narrow beams modulate the path length of the beams such that continuous beams are received as FM (frequency modulation), and pulses are received as PPM (pulse position modulation) preferably via zero crossing detection at the receivers.
The plurality of transmitter and receiver pairs are generally in close proximity, and are preferably arranged with the narrow beams intersecting at their mid points in an x-y-z axes arrangement.
The plurality of narrow beams are preferably at a substantially high frequency to provide both substantially narrow beams and substantially high resolution of the impinging sound waves.
In a preferred form, CMUTs (Capacitive Micromachined Ultrasonic Transducers) are used as the plurality of transmitter and receiver pairs, operating with pulsed sonic waves at a preferred frequency range of 10 MHz to 40 MHz.
Other forms of transmitter and receiver pairs can be used, generally with continuous beams. Examples include ceramic, crystal and electret transducers, and fibre optic microphone receivers.
In a second aspect, a levitated bubble being actively centred is employed as the element reacting to incoming sound waves wherein:
The levitated bubble:
In an embodiment, active centring of the levitated bubble is achieved using the plurality of centring devices that generate magnetic fields. The levitated bubble, preferably made of polymer or epoxy material, may contain iron nanoparticles or other magnetic responsive material. The active centring may be enabled using the plurality of centring devices being preferably four electromagnets in a tetrahedral arrangement.
In another embodiment, the levitated bubble may be actively centred using the plurality of centring devices that generate electrostatic charge. The levitated bubble, preferably made of polymer or epoxy material, may have a static charge. The active centring may be enabled using the plurality of centring devices preferably being four electrostatic plates in a tetrahedral arrangement.
In a further embodiment, the levitated bubble is actively centred via high frequency sound waves such that the levitated bubble is either within a permanent null, within a web of glancing beams, or is nudged into position via glancing beams.
The position of the levitated bubble is preferably sensed using the plurality of sensing devices based on laser interferometry or by forming a capacitor with three sets of plates in x-y-z axes as three RF (radio frequency) oscillators in the like manner of an RF condenser microphone. Additionally, the plurality of sensing devices may use any other suitable sensing methods such as RF reflection or sonic beam reflection.
In a third aspect, a plurality of tethered bubbles, their tethers or a combination of the tethered bubbles and tethers are employed as an element reacting to incoming sound waves wherein:
In an embodiment, the tethered bubble:
In an embodiment, the plurality of sensing devices is based on laser interferometry or by forming a capacitor with three plates in x-y-z axes as three RF oscillators in the like manner of an RF condenser microphone. Additionally, the plurality of sensing devices may use any other suitable sensing methods such as RF reflection or sonic beam reflection.
It will be appreciated that there are many common existing techniques that can be applied to the forms discussed herein such as using polyhedral cages to support microphone modules, dust protective shields, cabled or wireless operation, laser scanning of the environment to aid or accompany sound source positioning data, using coils instead of straight tethers, and replacing tethers with aerogel or webbing.
It will be appreciated that there are many potential applications for the microphone system such as isolating individual voices in a crowd or choir, isolating instruments in an orchestra, isolating a speakers' voice in a noisy environment, wildlife monitoring, security, aircraft flight recorders, industrial monitoring, noise & vibration identification for manufacture or fault finding, and media productions.
For the purposes of clarity, all drawings are shown with no or minimal mounting structures and coverings, and furthermore are shown without electronics, cables and so forth as these are generic to the art, wherein any suitable types can be used and it is to be assumed that such would be utilised in all complete designs.
Preferred generic embodiments will be described, by way of example, with reference to the accompanying drawings in which:
Levitated bubble means may comprise any suitable means such as magnetic, electrostatic, ultrasound, ion beam and so forth.
Bubble displacement sensor means may comprise any suitable means such as laser interferometry, ultrasound, RF capacitance resonant circuit and so forth.
In the interests of clarity, sound sources are not illustrated in any drawings, but are assumed to be present.
With reference to diagrammatic view
In this embodiment, the cluster of microphone modules 2 is comprised of four or more microphone modules 4 that are arranged in any suitable 3D arrangement whereupon their signal outputs 6 are received by the signal processor 3 to create a processed signal output 9.
The 3D positions and orientations of all the microphone modules 4 in relation to a 3D reference point must be inputted to signal processor 3 to enable meaningful data processing and output.
A microphone module 4 as illustrated in
The bidirectional information from the cluster of microphone modules 2 in
The refining of received sound signals is possible because the distance to all real 3D sound sources is now known, and hence the arrival times and relative magnitudes of the sound signals can be calculated, whereupon compensation can be made for high frequency roll off, whereupon via signal correlation, errors and noise can be minimized.
Further signal processing can then yield other desirable information such as the signals and approximate lobal patterns emanating from sound sources, selected output and signal manipulation thereof, apparent sound sources that are actually reflections off hard surfaces, and so forth.
A sample processor program 8 outline for signal processor 3 might be:
In further reference to
In yet further reference to
An alternate form of transducer is a continuous wave transducer such as a ceramic ultrasonic transducer wherein impinging sound waves cause FM modulation as output signals.
An advantage of these systems is simplicity combined with substantially wide frequency and dynamic ranges.
With reference to perspective view
The preferred number and orientation of bidirectional microphones 11 is in like manner to
The preferred number and orientation of the centring device 16 is four in number and arranged tetrahedrally, but may be greater in number and with different orientations.
Levitated bubble 15 is preferably substantially thin and lightweight to maximise sensitivity to sound waves.
Levitated bubble 15 is preferably composed of a material such as polymer or epoxy and any additives thereunto such as nanoparticle iron, reflective additives, conductive additives, evaporative particles and so forth.
Levitated bubble 15 is preferably porous to air so as to not be affected by changing air pressure, wherein such porosity may be inherent to its material of construction, be formed via doping the formative material with evaporative particles, or bombarding the bubble with fine particles.
Levitated bubbles 15 in production are to be selected for substantially high congruency according to a standard to ensure congruent responses operationally.
The centring device 16 may be based upon any suitable method such as magnetic, electrostatic, ultrasound, ion beam, etc, wherein for magnetic systems the bubble is doped with magnetic sensitive material such as iron nanoparticles, wherein for electrostatic systems the bubble may either inherently respond electrostatically or be imbued with a charge.
Preferably the centring device 16 is based upon a method in sequence firstly magnetic, secondly electrostatic, thirdly via ultrasound, and fourthly by any other suitable methods such as micromechanically, wherein common devices per the art locally generate either magnetic fields, electric fields, or ultrasonic beams, or perform mechanical actions, and so forth.
With reference to perspective view
The elastic fibres 20 that are used by themselves may include alternate attached objects to improve sensitivity.
Other numbers of the tethered bubbles 19, the elastic fibres 20 and the bidirectional microphones 11 means can be used in any suitable combination and orientation.
Lateral bubble or fibre deflection sensing means have not been illustrated, but would lie in the plane of the indicative circles at right angles to the elastic fibre 20 orientation depicting lateral movement 21.
The tethered bubbles 19 can be mounted on the elastic fibres 20 either by being pierced by the elastic fibre 20, or by having two shorter elastic fibres 20 being bonded to opposite ends.
It is understood that other numbers of the tethered bubbles 19, the elastic fibres 20, and the bidirectional microphone 11 means can be used in any suitable orientation.
With reference to perspective view
With reference to perspective view
The incorporation of magnetic responsive material particularly suits a magnetically levitated bubble system, and is not required in an electrostatically levitated bubble system.
A suitable magnetic responsive material is magnetite in the form of either nanoparticles, particles or compounds.
Iodine in the form of either nanoparticles, particles or compounds that is incorporated into the epoxy before curing will provide microscopic porosity in bubble 43 walls after the iodine sublimes, providing air pressure equalisation without damage to bubble 43.
With reference to perspective view
Structural cage 41 needs to be stiff, and a desirable material is fibreglass circuit board, as such a design will also allow integrated wiring to various components.
Bubble protection cage 42 as a spherical plastic mesh form is easily mouldable and protects the bubble from both external impact and internal impact.
Bubble 43 incorporating magnetic responsive material can be constructed as described per bubble 31 of
Four infra-red LED reflectometer modules 44 for initial bubble 43 centring measurement are arranged tetrahedrally, whereupon when bubble 43 is centred the signal readings are identical, and when bubble 43 is off centre, the proportionally different signal readings can be used in conjunction with a signal processor such as signal processor 3 to determine the direction that bubble 43 needs to be moved in by electromagnets 45. The action of this system is primarily for initial power up when bubble 43 will be resting against bubble protection cage 42. The system will also come into play if bubble 43 is forcibly moved out of position such as by a mechanical shock or wind gust.
It will be seen that the functionality of infra-red LED reflectometer modules 44 could be replaced by radio frequency or sonic reflection systems.
Bubble 43 positioning is accomplished by four electromagnets 45 arranged tetrahedrally, wherein bubble 43 can be moved in any 3D direction by varying the magnetic field strength for each electromagnet 45, whereby such corrections would be provided by a signal processor such as signal processor 3 using data from either of infra-red LED reflectometer modules 44 or laser interferometers 46.
Three laser interferometers 46 with laser beams 47 to sense bubble 43 deflection from impinging sound waves are mounted along x-y-z axes intersecting at the central position for bubble 43, wherein these bubble 43 deflection measurements are extremely precise.
When bubble 43 is centred, laser interferometers 46 serve two functions via a signal processor such as signal processor 3, firstly to provide incremental positioning corrections for bubble 43 to counteract the displacement motion caused by gravity, and secondly to detect all displacements in 3D caused by impinging sound waves, wherein digital representations of bidirectional vectors to each sound source will be generated.
If only an omnidirectional microphone response to impinging sound waves on bubble 43 is needed, then the signal output can be used as is. If isolation of each sound source in a selected 3D space is required, then a cluster of microphone modules 4 is required as discussed in
Although not described for clarity, it is understood per the art that microphone module 4 would also have some form of dust cover, and usually be mounted in a housing such as that used for a hand-held microphone.
The reference in this specification to any prior publication (or information derived from it), or to any matter which is known, is not, and should not be taken as, an acknowledgement or admission or any form of suggestion that prior publication (or information derived from it) or known matter forms part of the common general knowledge in the field of endeavour to which this specification relates.
In addition, the foregoing describes only some embodiments, and alterations, modifications, additions and/or changes can be made thereto without departing from the scope and spirit of the disclosed embodiments, the embodiments being illustrative and not restrictive.
Furthermore, the disclosure has been described in connection with what are presently considered to be the most practical and preferred embodiments, it is to be understood that the disclosure is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the disclosure.
Also, the various embodiments described above may be implemented in conjunction with other embodiments, for example, aspects of one embodiment may be combined with aspects of another embodiment to realize yet other embodiments.
In the claims which follow, and in the preceding description, except where the context requires otherwise due to express language or necessary implication, the word “comprise” and variations such as “comprises” or “comprising” are used in an inclusive sense, i.e., to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the apparatus and method as disclosed herein.
In the foregoing description of preferred embodiments, specific terminology has been resorted to for the sake of clarity. However, the disclosure is not intended to be limited to the specific terms so selected, and it is to be understood that each specific term includes all technical equivalents which operate in a similar manner to accomplish a similar technical purpose. Terms such as “locations” and “positioning”, “framework” and “acoustic”, “sound”, and “high fidelity” and the like are used as words of convenience to provide reference points and are not to be construed as limiting terms.
Number | Date | Country | Kind |
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2021903929 | Dec 2021 | AU | national |
Filing Document | Filing Date | Country | Kind |
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PCT/AU2022/051453 | 12/5/2022 | WO |