The present invention relates to an acoustic antenna with integrated printed circuits and, in particular, to a low-cost acoustic antenna.
The acoustic transduction technology traditionally used in underwater applications and offering the best compromise between radiated acoustic power and useable bandwidth is the “Tonpilz”. Such system is a revolution-symmetrical electro-acoustic converter of the mass-spring-mass type that generally operates in expansion/compression mode.
Such a Tonpilz transducer has been schematically shown in
Each of the elements shown in
The quantity of wires to be welded is thus very quickly redhibitory for high-frequency antennas (higher than 50 kHz) composed of a great number of small-size transducers, for example, and in a non limitative way, 128 elementary transducers at 150 kHz. This wiring, welding and indexing item, which is very difficult to automate, is the heaviest item of the process of mounting an acoustic antenna.
The present invention has for object a low-cost acoustic antenna requiring the fewest possible number of assembly operations, which operations can be easily automated. The term “acoustic” is used herein for simplification, but it is well understood that the operation frequency band of the antenna can be higher than the audio frequencies and even far higher than the latter; for example, it can extend from 20 kHz up to several hundreds of kHz, and typically, but not limitatively, it may be the 140-160 kHz frequency band.
The acoustic antenna according to the invention is characterized in that it comprises an array of elementary transducers, each elementary transducer comprising, between a counterweight and a horn, at least one ceramic, all the elementary transducers being mounted on a common printed circuit for electrical connection between the transducers and for positioning the transducers relative to one another, and at least one connector fixed to this printed circuit, each of the transducers being mounted in such a way that the printed circuit is clamped between the ceramic(s) and the counterweight thereof.
According to a feature of the invention, the elementary transducers are of one of the following electro-acoustic types: piezoelectric or electrostrictive.
The present invention will be better understood from the description of an embodiment, which is given by way of a non-limitative example and illustrated in the appended drawing, in which:
An object of the present invention is to eliminate, in the manufacturing process, the items of positioning the transducers on their support material and welding their connection electrodes (transducers power supply leads) from the manufacturing process of high-frequency Tonpilz antennas having a great number of elements.
According to a preferred embodiment, the invention contemplates to reduce the pillar of ceramics of the Tonpilz to only one ceramic and to fix the different pillars to a printed circuit that is common to the whole antenna in the structure of the Tonpilz, between the ceramic and the counterweight, so as to provide the electrical connection of all the elements of the antenna and to fix the arrangement of the transducers relative to one another in a stable way. It is well understood that the invention is not limited to transducers with a single ceramic, and that these transducers can comprise more than one ceramic.
In
The electrical connections are provided as follows. The printed circuit 7 receives each of the positive and negative points of the transducer on its two main faces. The positive connection is obtained by direct contact of one plane face of the ceramic with the printed circuit 7. The negative connection is indirectly obtained: the other plane face of the ceramic is in direct contact with the horn (electrically conductive), and the screw 11 electrically connects the horn to the counterweight, and the counterweight is in direct contact with the printed circuit 7. The screw 11 is electrically insulated from the ceramic by means of a sleeve (not shown), made for example of a plastic material.
The topography of the conductors formed on the printed circuit 7 and running from the transducers is optimized, and these conductors are connected to a connector (not shown) fixed to the printed circuit. These conductors convey the excitation energy of the transmission channels from the power and control electronic devices (not shown) and, in receiving phase, they convey the signals toward the processing electronic circuits (not shown).
To simplify the drawing, an embodiment of an antenna 14 (without a protective casing) according to the invention has been shown in
The transducers 15 are fixed to a plate 16 on which are printed conductors for electrical connection between the different transducers and a connector (not shown) providing, with another connector (not shown either), the connection with suitable signal receiving and processing circuits, well known per se and not described herein.
The conductors 17 printed on the upper face of the plate 16 (the one against which are applied the ceramics such as the ceramic 8 of
The antenna 23 shown in
The advantages of the present invention are of five orders:
1. Ease of mounting of the stacking/clamping-type Tonpilz.
2. Very precise mutual positioning of the transducers by nature (determined by the printed circuit), which ensures a good repeatability of the radiation characteristics of the antenna so formed.
3. Elimination of the performance dispersion due to the welding (thermal deformation, drift of the assembled parts characteristics), on small transducers.
4. Automatic indexing of the transducers wiring by the printed circuit.
5. The electro-acoustic control of the antenna (individual control of each transducer) becomes automatable. Indeed, the connector(s) can also be connected to a test circuit arranged in the antenna casing and remotely controlled to directly perform the appropriate tests in situ.
6. All the above-mentioned advantages lead to a reduction of the cost of production, because they permit a considerable time saving.
The vibratory couplings between channels (“cross-talking”) liable to appear through the printed circuit are minimized thanks to optimisation of the operation by the finite element method, by optimizing the weight of each element of each transducer, in particular the counterweights (10), so as to bring back the nodal point of vibration of the structure at the printed circuit so as to reduce the most possible the deformation of the latter and the potential minute displacements of the transducers on their support plate (generally, the rod for fixing the transducers on the printed circuit plate is far more elastic than the ceramic, and the prestress it exerts on the transducer is not sufficient to clamp it but is sufficient to ensures the electrical contact between the elements of the transducers and the printed circuit). To implement the optimisation of the transducers, the structure of each transducer is shown as a lattice of small volume elements, in which each of the acoustic magnitudes is calculated, knowing the initial conditions and the boundary conditions and by applying the Kirchhoff theorem.
Number | Date | Country | Kind |
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08 02548 | May 2008 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2009/050842 | 5/6/2009 | WO | 00 | 11/4/2010 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2009/141569 | 11/26/2009 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3370186 | Antonevich | Feb 1968 | A |
3739327 | Massa | Jun 1973 | A |
4373143 | Lindberg | Feb 1983 | A |
4545041 | Tims et al. | Oct 1985 | A |
5726952 | Eckert et al. | Mar 1998 | A |
5998908 | Goodson | Dec 1999 | A |
6181052 | Puskas | Jan 2001 | B1 |
Entry |
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International Search Report, dated Jan. 26, 2010, from corresponding PCT application. |
Number | Date | Country | |
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20110051969 A1 | Mar 2011 | US |