Dynamic acoustic impedance matching device and method
09674616 ยท 2017-06-06
Assignee
Inventors
Cpc classification
G01F1/00
PHYSICS
H04R17/00
ELECTRICITY
International classification
Abstract
A dynamic acoustic impedance matching device for an acoustic signal transmitted or received in a medium by a transducer includes a particle flow in an acoustic signal path of the transducer. The particle flow has an acoustic impedance between an acoustic impedance of the transducer and an acoustic impedance of the medium.
Claims
1. A transducer for transmitting or receiving an acoustic signal in a medium, the transducer comprising: an piezoelectric acoustic transducer element; and a dynamic acoustic impedance matching device adjacent said transducer element, the dynamic acoustic impedance matching device providing an acoustic impedance between an acoustic impedance of said transducer element and an acoustic impedance of the medium; wherein said dynamic impedance device provides at least one particle flow adjacent to a surface of said transducer element; wherein said at least one particle flow includes a plurality of discrete particle flows layered flowing in parallel and adjacent to said surface of the transducer in a direction transverse to a signal path of an acoustic signal; and wherein each said particle flow is released above the transducer to fall by gravitational force in front of the surface of the transducer.
2. The transducer of claim 1, wherein at least one of the plurality of discrete particle flows provides less acoustic impedance than an adjacent particle flow.
3. The transducer of claim 1, further comprising a plurality of compartments sealed from the medium wherein each said particle flow is contained within a respective one of the compartments.
4. The transducer of claim 3, further comprising a pump wherein each said particle flow is circulated by the pump.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate one or more embodiments and, together with the description, explain these embodiments. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
(9) Referring now to the drawings, and more particularly to
(10) During operation, the dynamic acoustic impedance matching device 10 may provide a plurality of particle flows 18a to 18d in medium 12. Particle flows 18a to 18d may be in a signal path 22 of transducer 14. In the embodiment of
(11) As shown in
(12) The density of successive particle flows 18a to 18d may be incrementally reduced or increased with distance relative to the front surface 24 of transducer 14 to provide a gradual or more continuous transition in impedance between transducer 14 and medium 12.
(13) As shown in
(14) One skilled in the art will appreciate that the dynamic acoustic impedance matching device 10 may incorporate any manual or automatic system to provide each particle flow 18a to 18d in medium 12 and across signal path 22. For example, device 10 may include a manually filled hopper having orifices in the form of slots in a bottom surface thereof. Such orifices may be configured to provide each particle flow 18a to 18d at a specific density relative to the density of the ambient medium 12. For example, during operation of the dynamic acoustic impedance matching device 10, layer 18a may comprise 80% particles and 20% ambient medium 12, by volume; layer 18b may comprise 60% particles and 40% ambient medium 12, by volume; layer 18c may comprise 40% particles and 60% ambient medium 12, by volume; and layer 18d may comprise 20% particles and 80% ambient medium 12, by volume.
(15) As further shown in
(16) The absence of physical boundaries between layers 18a to 18d or at the edges thereof allows layers 18a to 18d to provide an impedance function without the signal reflection associated with a static layer or set of static layers. Further, unlike static impedance layers which may support shear waves, particle flows 18a to 18d may behave similarly to a fluid or a plurality of fluids and thus, be incapable of supporting potentially undesirable shear waves.
(17) The dynamic acoustic impedance matching device 10 may be configured to provide selective operation of any combination of particle flows 18a to 18d. For example, particle flows 18a and 18d may provide an acoustic impedance different from an acoustic impedance provided by simultaneous particle flows 18a, 18b, 18c, and 18d. Other combinations of individual particle flows 18a to 18d may be provided in signal path 22 to provide any desired impedance to the signal path 22.
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(19) Each particle flow 118a to 118d may have a density which varies between compartments. For example, each successive compartment may have a lower particle flow density than the preceding compartment.
(20) Particle flows 118a to 118d may be selectively operated by agitation. For example, if device 110 is rigidly attached to transducer 114, then manual shaking of transducer 114 in the direction indicated by arrows 144 may cause particles within compartments 142a to 142d to flow into a signal path 122 of transducer 114. The resulting signal impedance may improve the efficiency of transducer 114 in the transmission or reception of an acoustic signal. The fluid within each sealed compartment may be, for example, air, water, or a fluid similar to a fluid present in the ambient medium 112. Alternatively, the dynamic acoustic impedance matching device 110 may be provided with an agitator independently of transducer 114. As another example, each compartment 142a to 142d may contain an individual agitator to provide selective operation of each particle flow 118a to 118d.
(21)
(22) During operation, each particle flow 218a to 218d may be selectively operated by pump 10b to provide an acoustic impedance to a signal path 222. Specifically, each particle flow 218a to 218d may include a fluid having particles suspended therein which is circulated to and from pump 10b to provide a desired acoustic impedance to transducer 214. For example, air or water may be circulated with suspended sand (SiO.sub.2 particles). Pump 10b may be configured to provide operation of individual particle flows 218a to 218d. Further, pump 10b may be configured with a port or ports (not shown) to allow for the addition or removal of fluid or particles to achieve a desired impedance to a signal path 222 of transducer 214.
(23) Thus, according to an exemplary embodiment as shown in the flowchart of
(24) It will be understood that many additional changes in the details, materials, steps and arrangement of parts, which have been herein described and illustrated in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims.
(25) The foregoing description of the preferred embodiments of the invention has been presented for purposes of illustration and description only. It is not intended to be exhaustive or to limit the invention to the precise form disclosed; and obviously many modifications and variations are possible in light of the above teaching. Such modifications and variations that may be apparent to a person skilled in the art are intended to be included within the scope of this invention as defined by the accompanying claims.