None.
(1) Field of the Invention
The present invention relates to a dense transducer array that provides an acoustic transducer having relatively high operational bandwidth. More particularly, the present invention includes a cable harness component that efficiently provides and organizes numerous conductors within piezocomposite substrates to form transducer arrays with minimum impact on electro-acoustic performance.
(2) Description of the Prior Art
Several underwater sonar applications exist for high frequency wideband transducer arrays having individual elements such as described in U.S. Pat. No. 6,255,761 ('761) and herein incorporated by reference. In order to form and steer acoustic beams with an array of individual elements, the array elements must be spaced not more than one-half the acoustic wavelength at the highest frequency of interest. This implies, for square-shaped elements at least, that the elements' lateral dimensions are inversely proportional to frequency. Therefore, for fully populated radiating apertures, the number of elements increases exponentially as the spacing decreases.
As piezocomposite arrays, such as described in previously mentioned U.S. patent '761, move to higher operational bandwidths and frequencies, the element center to center spacing decreases as the number of elements forming the array aperture increases. The result is a need for a component that organizes the numerous electrical wires found in piezocomposite arrays.
U.S. patent '761 teaches that piezoceramic transducer arrays can be formed from a block of piezoceramic material. A piezoceramic transducer preform can be created by machining away material between preform posts and leaving a base portion of the piezoceramic material on a bottom side of the block and preform posts on a top side of the block. A generalized top surface is defined by the tops of the preform posts opposite from the surface defined by the base. Conductors are inserted in the gaps between the preform posts with the ends of the conductors extending through apertures formed in the base and beyond the general top surface of the preform posts. The combined base, preform post and conductor volume is filled with a liquid polymer which is allowed to harden. Any conductor or polymer extending above the general top surface is removed. The base and conductors extending beyond a selected transducer volume are removed leaving a bottom preform surface. Electrodes are provided on the top preform surface and the bottom preform surface. These electrodes can join with the conductor ends or can be connected to the conductor ends by known methods. This gives a flexible transducer array that can be used for a variety of applications.
Accordingly, it is an object of the present invention to provide a transducer array having densely packed transducer elements.
A second object is providing an array having mechanical isolation between array elements.
It is another object of the present invention to provide a transducer array that handles large numbers of conductors and distributes them in a two-dimensional lattice efficiently in a space-wise fashion.
A further object of the present invention is to provide a transducer array having mechanical isolation between array elements.
Furthermore, it is an object of the present invention to provide a transducer array that supports transmit operation as well as receive operation, while at the same time having cabling that is robust enough to handle high drive signals.
Yet another object is providing a transducer array having a plurality of closely spaced elements capable of transmitting and receiving acoustic signals at high frequencies.
Still another object is providing a method of making a transducer array having closely spaced transducer elements.
Other objects and advantages of the present invention will become more obvious hereinafter with regard to the disclosure contained in the specification and drawings.
Accordingly, there is provided a cable harness component that is particularly suited for transducer arrays. The cable harness component includes a support structure having a plurality of predetermined openings made from a viscoelastic material. A plurality of flexible circuits having conductors communicates between terminal blocks and electrical contacts within the support structure. Terminal blocks are positioned for outside electrical connection.
A cable harness component for a transducer array includes a support structure having a plurality of predetermined openings therein for accommodating transducer components. Flexible circuits are embedded in the support structure. Each flexible circuit has first ends being positioned in the support structure predetermined openings. Terminal blocks are joined to the second ends.
A transducer array assembly includes a support structure having a plurality of predetermined openings therein for accommodating transducer components. Flexible circuits are embedded in the support structure. Each flexible circuit has first ends being positioned in the support structure predetermined openings. Terminal blocks are joined to the second ends. Transducer elements are positioned in the support structure predetermined openings and placed in electrical communication with the flexible circuit first ends. A polymer material is provided surrounding the transducer elements, said support structure, and said flexible circuit first ends. There is also provided a method for manufacturing the transducer array.
Other objects, features and advantages of the present invention will become apparent upon reference to the following description of the preferred embodiments and to the drawings, wherein corresponding reference characters indicate corresponding parts throughout the several views of the drawings and wherein:
Referring now to the drawings, and more particularly to
In general, the cable harness component 10 comprises the support structure 14 having a plurality of predetermined openings 14A and comprised of a viscoelastic material. The plurality of flexible circuits 12 each have first and second opposite ends with each end having connecting means. The plurality of flexible circuits 12 are embedded in the support structure 14. The plurality of terminal blocks 16 each have first and second connecting means. The plurality of flexible circuits 12 and the plurality of terminal blocks 16 are preferably of an equal number and with the connecting means of the first opposite ends of the flexible circuits being connected to corresponding first connecting means of the terminal blocks 16. The second connecting means of the terminal blocks 16 are preferably made available for connecting to external equipment.
With reference to
The flexible circuits 12 are selected so as to have three sides with the first side having a length 22 to accommodate mating with the terminal blocks 16, the second side of the flexible circuits 12 has a length 24 to accommodate mating with the support structure 14, and the third side having a length so as to space apart the support structure 14 and terminal block 16 and corresponds to about the horizontal height 20 of the flexible circuits 12.
With reference to
The cable harness component 10 provides electrical connection for the posts 26, as well as electromechanical isolation, so that signals present in one portion of post or group of posts 26 do not affect another portion of posts 26. The interconnection of the cable harness component 10 to external equipment (not shown) may be accomplished via terminal blocks 16 which, in turn, are connected to appropriate cabling related to associated external equipment. The interconnection between the cable harness component 10 and the posts 26 may be further described with reference to
Ends of flexible circuit conductors, identified for one set as connections 12A and 12B are dimensioned and formed so that connection 12A exits out from the associated flexible circuit 12 upward and out of the associated chamber 14A, while connection 12B exits out from the associated flexible circuit 12 downward and out of the associated chamber 14A. The 12A connection located above the upper surface of the associated posts 26 is available for positive electrical connection to an associated electrode element, while the 12B connection located below the lower surface of the associated posts 26 is available for negative electrical or ground connection to an associated electrode element.
Cable harness 10 can be joined to a preform by the following method. Flexible circuits 12 are positioned within support structure 14 so that flexible circuit ends, as typically shown at 12A, are positioned to extend into an opening 14A. The other end of flexible circuit 12 is joined to an electrical connector 16. A ceramic array component, as detailed in U.S. patent '761, is available as a preform 18 having posts 26 joined to a base 28. Preform 18 is positioned within support structure 14 such that four posts 26 extend into each opening 14A. Of course, in other embodiments openings 14A can support different numbers of posts. Flexible circuit ends having a first electrical polarity 12A are positioned to extend out of each opening 14A, and flexible circuit ends having a second electrical polarity 12B are positioned to extend proximate the base 28 of the preform 18. In other embodiments, base 28 can have apertures formed therein for receiving flexible circuit ends 12B.
As shown in
This can be performed by other methods such as by providing contacts on circuit sheets mounted to the top surface of array and to the bottom surface of array. A polymer coating can be provided outside the electrical components to shield them from the environment.
After the electrodes are formed, the array can be curved forming a finished transducer array 40, shown in
It should now be appreciated that the practice of the present invention provides a cable harness/isolator 10 that can be used to form an array of acoustic transducer elements by installing it over a piezoelectric preform 18 that consists of individual ceramic posts 26, backfilling the formed substrate of arrays with polymer, and grinding the upper and lower surfaces of the substrate flat and parallel to each other.
It should be further appreciated that the practice of the present invention allows for handling a relatively large number of conductors entering the terminal blocks 16 and leaving the flexible circuits 12 so as to be, in one embodiment, distributed in a two-dimensional lattice efficiently in a space-wise fashion.
Further, it should be appreciated that the practice of the present invention provides mechanical isolation between array elements 26 deemed critical, by those skilled in the art, for wideband, high frequency grating-lobe free beam steering. The mechanical isolation is provided by the physical spacing between elements 26 and also the support structure 14 material.
Further still, it should be appreciated that the mated assembly comprising the cable harness component 10 and the PZT ceramic preform 18 supports transmit operation, as well as receive operation, while at the same time those skilled in the art may provide cabling made robust enough to handle high drive signals.
Still further, it should be appreciated that the practice of the present invention by those skilled in the art following the bending and curving principles of U.S. Pat. No. 6,255,761 and applying those principles to the embodiments described with reference to
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 expressed in the appended claims.
The invention described herein may be manufactured and used by or for the Government of the United States of America for governmental purposes without the payment of any royalties thereon or there for.
Number | Name | Date | Kind |
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6757948 | Ptchelintsev et al. | Jul 2004 | B2 |