1. Field of the Invention
The present invention relates in general to transducers, and more particularly to acoustic transducers. The present invention also relates to a transducer capable of radiating acoustic energy over a wide band of frequencies. More particularly, the present invention relates to an acoustic transducer that may be provided with an electro-mechanical feedback system.
2. Background and Discussion
Normally electro-acoustic underwater transducers are operated in the vicinity of the fundamental resonant frequency. Maximum output is obtained at the resonant frequency; however, operation in the vicinity of this frequency limits the bandwidth of the transducer. Wideband performance can be obtained above resonance but the band is often limited by the next overtone resonance. Because of phase shifts, the presence of this overtone resonance generally creates a cancellation between the two resonant frequencies typically resulting in a significant reduction, or notch, in the level of the response, thus limiting the bandwidth.
It is a general object of the present invention to provide a transduction apparatus, which eliminates the reduction in the level of response, attaining a wide bandwidth above the fundamental resonance through in-phase addition in the response between the fundamental and overtone resonant frequencies.
Another object of the present invention is to provide a transduction apparatus which uses the harmonic or overtone resonant frequencies to provide broadband electromechanical coupling.
A further object of the present invention is to provide electro-mechanical feedback control resulting in an improved response under single element and array loading conditions.
To accomplish the foregoing and other objects, features and advantages of the invention there is provided an improved electro-mechanical transduction apparatus that employs a system for utilizing the electro-mechanical driver in a way so that there is additive output between the resonant frequencies and furthermore may employ electromechanical feedback as a means for a smooth response.
In accordance with the invention there is provided an electro-mechanical transduction apparatus that is comprised of an electromechanical drive, and a transmission line. The drive is located in the transduction system so as to excite the consecutive extensional modes of vibration in a cooperative way producing an ultra wideband response as a projector and/or as a receiver. Other parts of the apparatus may include a piston head mass, a tail mass and a feedback system for providing a smooth response.
In accordance with one aspect of the invention there is provided an electro-mechanical transduction apparatus comprising; a transduction drive means having moving ends, means connecting the transduction drive means at one moving end to a tail section and an acoustic transmission line on the other end with means connecting the transmission line to a load and means for exciting said transduction drive means to cause the excitation of at least two multiple resonant frequencies with addition thereof between the multiple resonant frequencies, thus providing a wideband null free response from below the first resonance to at least above the second resonance.
In accordance with another aspect of the invention there is provided an electro-mechanical transduction apparatus comprising; a transduction drive member having moving ends; an acoustic transmission line coupled to one end of the transduction drive member; and a source for exciting the transduction drive member to cause the excitation of at least two multiple resonant frequencies without a null between the multiple resonant frequencies providing a wideband response from below the first resonance to at least above the second resonance.
In accordance with still another aspect of the invention there is provided a method of electro-mechanical transduction comprising the steps of: providing an electro-mechanical drive member coupled with a section of acoustic transmission line; exciting the electro-mechanical transduction member to cause the excitation of at least two multiple resonant frequencies, wherein the excitation further causes the addition of the at least two multiple resonant frequencies so as to provide a wideband and null free response in a range from below the first resonance to at least above the second resonance.
The drive system, such as a stack of piezoelectric ceramic (or, single crystal, electrostrictive or magnetostrictive) material, may typically take the form of extensional bars, discs, rings or cylinders. An electrically insulated piezoelectric ceramic (or single crystal, electrostrictive or magnetostrictive) sensor is located within the driver stack if the feedback system is activated. If an electric field drive and piezoelectric sensor type is used, an additional integrator or differentiator is necessary to provide a require 90 degree phase shift. If a magnetic field drive material, such as magnetostrictive material, is used and piezoelectric sensor type is used no additional 90 degree phase shift is required. Also if an electric field driver and a magnetically biased magnetostrictive sensor are used, there is no need for an integrator or differentiator since the output is proportional to the velocity and has an inherent 90 degree phase shift compare to an electric field sensor. Since the output is from a pickup coil there is no need for electrical insulators. There may be a need for a permanent magnet if the magnetostrictive material is not pre-polarized.
The acoustic radiating piston may typically take the form of a circular, square or rectangular, flat, curved or tapered piston and would be in contact with the medium while the remaining part of the system may be enclosed in a housing to isolate these parts from the medium. An enclosure or housing may not be necessary if the system is used as an electromechanical actuator or valve. The actuator load or the piston would be connected to the point of greatest motion or force.
In one embodiment of the invention a piezoelectric stack of circular plates or rings is used to drive a solid cylinder acting as a transmission line terminated in a load such as the water medium. In a further embodiment a heavy tail mass is added to the free end of the piezoelectric stack. In another embodiment a piston head mass is added between the transmission line and the load. Finally a piezoelectric sensor is added to the electromechanical drive along with a feedback amplifier, phase shifter and summing circuit for feedback control of the major resonance of the system. The back surface of an acoustic radiating piston and the drive or tail section would normally, but not always, be enclosed by a housing, shielding this motion from the intended radiating medium, such as water or air.
Although these embodiments illustrate means for acoustic radiation from a piston, alternatively, a mechanical load can replace or be connected to the piston and in this case the transducer would be an actuator. As a reciprocal device, the transducer may be used as a transmitter or a receiver and may be used in a fluid, such as water, or in a gas, such as air.
Numerous other objectives, features and advantages of the invention should now become apparent upon a reading of the following detailed description taken in conjunction with the accompanying drawings, in which:
a schematically illustrates a transmission line transducer symmetrically excited by piezoelectric elements arranged for exciting odd numbered modes.
b schematically illustrates a transmission line transducer anti-symmetrically excited by piezoelectric elements arranged for exciting even numbered modes.
c schematically illustrates a transmission line transducer asymmetrically excited by piezoelectric elements arranged for exciting both odd and even number modes of vibration with zero voltage applied to one-half of the active material.
d schematically illustrates a transmission line transducer asymmetrically excited by piezoelectric elements arranged for exciting both odd and even number modes of vibration where the zero voltage section of
a illustrates the acoustic pressure transmitting voltage response, TVR, amplitude in dB for (A) symmetrical odd numbered modes and (B) anti-symmetric even numbered modes.
b illustrates the acoustic transmitting phase response in degrees for (A) symmetrical odd numbered modes and (B) anti-symmetric even numbered modes.
c illustrates the acoustic pressure transmitting voltage response, TVR, amplitude in dB for (C) asymmetric drive resulting in both odd and even number modes of vibration.
d illustrates the acoustic transmitting phase response in degrees for (C) asymmetric drive resulting from both odd and even number modes of vibration.
In accordance with the present invention, there is now described herein a number of different embodiments for practicing the present invention. In the main aspect of the invention there is provided a longitudinal electro-acoustic transducer for obtaining ultra wide bandwidth by structuring the relationship between the length and position of the drive stack and the transmission line which couples the drive stack to the radiating medium. In accordance with the present invention there is also provided an optional acoustic sensor and feedback system which provides a smooth controlled single element and array transmitting and receiving response. The sensor is positioned at a location in the drive stack for maximum sensitivity to the desired mode and minimum sensitivity to other modes that could cause unwanted in-phase feedback oscillation.
The operation of the transducer may be understood by referring to
The even harmonics (but not the odd) are excited by the arrangement of
The sum of the voltage conditions of
This invention provides a means for the addition of both odd and even modes yielding a wideband response of multiple resonances without destructive interference which would result in nulls. Each mode has an associated electromechanical coupling coefficient allowing a distribution of coupling over the frequency band improving the wideband effective electromechanical coupling coefficient of the transducer.
The broadband response obtained from the multiple resonant transducer system has added benefit over transducers which simply operate above their fundamental resonant frequency. The benefit arises in the region of the additional resonant frequencies where now there is significant effective electromechanical coupling allowing improved power factor performance over an extended bandwidth rather than just at the fundamental resonance.
Reference is now made to other embodiments of the present invention as illustrated in
Feedback may be used to smooth the multi resonant response shown in
The acoustic transmitting response, in dB, for a transducer with a diameter of approximately 0.75 inches, overall length of approximately 4 inches and piezoelectric stack length of 1.5 inches, is shown in
Transducers are often used to both transmit and receive acoustic signals. The circuit of
An alternative receive system with feedback control is shown in
The wide bandwidth transducer invention has been described in terms of a distributed electromechanical system or so called transmission line transducer. It may also be fabricated as, and approximately represented by, a lumped system composed of piezoelectric active springs, masses, and inactive springs and masses. The distributed system of
Having now described a limited number of embodiments of the present invention, it should now become apparent to those skilled in the art that numerous other embodiments and modifications thereof are contemplated as falling within the scope of the present invention as defined in the appended claims.
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