Piezoelectric module
10511389 ยท 2019-12-17
Assignee
Inventors
Cpc classification
G10K11/002
PHYSICS
H04R17/00
ELECTRICITY
H04B11/00
ELECTRICITY
International classification
H04B11/00
ELECTRICITY
H04R17/00
ELECTRICITY
G10K11/00
PHYSICS
Abstract
Provided is a piezoelectric module capable of attempting further miniaturization. In the piezoelectric module, a resonance point is excluded from a frequency band of a transmitted signal to avoid shortening of a signal transmission distance, thereby attempting improvement in stability of communication. In addition, since a resonance space is not provided, further miniaturization may be easily attempted.
Claims
1. A piezoelectric module for transmitting an acoustic signal, comprising: a piezoelectric vibration plate including a piezoelectric element and a vibration plate having shapes of perfect discs and overlapping each other; a pair of terminals provided on the piezoelectric vibration plate and electrically connected to the piezoelectric element; a transmission member including a cloth member and adhesive materials formed on both surfaces of the cloth member; and an oscillating member to which the piezoelectric vibration plate is attached in a closely adhering state through the transmission member, wherein: a resonance point of the piezoelectric module is not present within a frequency range of the acoustic signal; a diameter of the piezoelectric element is smaller than that of the vibration plate, the vibration plate is made of conductive material and has a surface that faces the piezoelectric element, the surface of the vibration plate includes a first portion that is overlapped by the piezoelectric element and a second portion that is not overlapped by the piezoelectric element, and one of the pair of terminals is formed on the second portion of the surface of the vibration plate.
2. The piezoelectric module according to claim 1, wherein the piezoelectric element has a first surface that faces the vibration plate, and a second surface opposite to the first surface, one of the pair of terminals being formed on the second surface.
3. The piezoelectric module according to claim 1, wherein the vibration plate is a metal plate.
4. The piezoelectric module according to claim 1, wherein the acoustic signal has a frequency band of 16 to 20 kHz.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) Hereinafter, an embodiment of the present disclosure will be described in detail with reference to accompanying drawings. In description, the same reference numeral will be used for the same component or a component having the same function, and repeated description will be omitted.
(5) A piezoelectric module according to the present disclosure is a device that sends an acoustic signal using air as a medium. For example, the piezoelectric module is used in short distance communication in a range of about 0.1 m to 2 in.
(6) As illustrated in
(7) The oscillating member 10 is a part that emits an acoustic signal. The oscillating member 10 illustrated in
(8) The piezoelectric vibration plate 30 is a disc-shaped member including a vibration plate 32 and a piezoelectric element 34. The vibration plate 32 and the piezoelectric element 34 are connected through a thin adhesive layer (not illustrated).
(9) The vibration plate 32 is a plate-like body having a shape of a perfect circle. For example, the vibration plate 32 has a thickness D.sub.32 in a range of 0.08 to 1.2 mm, and a diameter of 10.7 mm. The vibration plate 32 is made of a conductive material such as metal. For example, the vibration plate 32 is made of brass.
(10) The piezoelectric element 34 has a shape of a perfect disc, a diameter of which is smaller than that of the vibration plate 32, and overlaps the vibration plate 32. Specifically, the piezoelectric element 34 and the vibration plate 32 concentrically overlap each other. For example, the piezoelectric element 34 has a thickness D.sub.34 of 0.24 mm, and a diameter of 9 mm. The piezoelectric element 34 includes a main element body 36 (for example, a thickness of 0.1 mm) made of a piezoelectric material, and a pair of electrode films 38A and 38B (for example, a thickness of 0.07 mm) interposing the main element body 36 in a shape of a sandwich. The piezoelectric element 24 is not restricted to a single plate type illustrated in
(11) The piezoelectric vibration plate 30 further includes terminals 40A and 40B for applying a voltage to the piezoelectric element 34. The terminal 40A is provided on a surface of the vibration plate 32 on the piezoelectric element 34 side (more specifically, a residual region of the surface other than a region in which the piezoelectric element 34 is disposed). That is, the terminal 40A is electrically connected to the electrode film 38A of the piezoelectric element 34 on the vibration plate 32 side through the vibration plate 32 having conductivity. The terminal 40B is directly provided on the electrode film 38B on the opposite side from the vibration plate 32 side of the piezoelectric element 34, and is electrically connected to the electrode film 38B. Lead wires 50A and 50B connected to a power source (not illustrated) are attached to the pair of terminals 40A and 40B, respectively.
(12) The transmission member 20 is a member that allows the oscillating member 10 and the piezoelectric vibration plate 30 to closely adhere to each other therebetween. The transmission member 20 closely adheres to one surface 10a of the oscillating member 10, and closely adheres to the vibration plate 32 of the piezoelectric vibration plate 30. The transmission member 20 is a sheet-like member in which a cloth-like member 21 is used as a base material and adhesive materials 22A and 22B are provided on both surfaces thereof. For example, a thickness D.sub.20 of the transmission member 20 is in a range of 1.2 to 1.6 mm. In addition, as illustrated in
(13) For example, the cloth-like member 21 of the transmission member 20 is a nonwoven fabric of a cellulose fiber. For example, the adhesive materials 22A and 22B of the transmission member 20 are made of an acrylic pressure sensitive adhesive. The transmission member 20 is made of a material having hardness in a range suitable for vibration transmission in order to transmit vibration of the piezoelectric vibration plate 30 up to the oscillating member 10. For example, silicone resin has significantly low hardness at the time of adhesion, and thus absorbs vibration. Therefore, silicone resin cannot be used for the transmission member 20. Meanwhile, epoxy resin has significantly high hardness at the time of adhesion, and thus has difficulty in propagating vibration. Therefore, epoxy resin cannot be used for the transmission member 20.
(14) In the above-described piezoelectric module 1, when a signal whose voltage direction is alternately changed (AC voltage) is input between the pair of terminals 40A and 40B, the piezoelectric element 34 expands and contracts in a surface direction. In addition, vibration resulting from expansion and contraction of the piezoelectric element 34 is transmitted to the oscillating member 10, and the oscillating member 10 emits a sound wave having a predetermined frequency from the other surface 101). Since the piezoelectric element 34 has the perfect disc shape, only resonance of a fundamental frequency (primary amplitude mode) is generated. In a piezoelectric element having a shape other than the perfect disc shape (shape of a rectangular plate, and the like), resonance not in a primary amplitude mode is generated.
(15) Next, a resonance point of the above-described piezoelectric module 1 will be described with reference to
(16) A resonance point (a resonance frequency fr and an antiresonance frequency fa) of the piezoelectric module 1 may be represented as below based on an equivalent circuit in the vicinity of a resonance frequency illustrated in
fr=1/{2{square root over (L.sub.1C.sub.1)}}[Equation 1]
fa=1/{2{square root over (L.sub.1C.sub.0C.sub.1/(C.sub.1+C.sub.0)})}[Equation 2]
(17) in
(18) In addition, when the resonance frequency ft and the anti resonance frequency fa of the piezoelectric module 1 are actually obtained, an impedance analyzer is connected to the terminal pair 40A and 40B of the piezoelectric module 1 to sweep a frequency, and an impedance and a phase are measured to calculate a resonance point. For example, an impedance analyzer 4194 made by Hewlett-Packard Company may be used as the impedance analyzer.
(19)
(20) The piezoelectric module 1 uses a frequency band in the vicinity of 18 kHz indicated by a dot in
(21) In addition, in the piezoelectric module 1, any one of the resonance points ft and fa of the piezoelectric module 1 is not present in the frequency band of 116 to 20 kHz, which is based on discovery that, when any one of the resonance points ft and fa of the piezoelectric module is within a frequency band of a transmitted signal, a signal transmission distance is noticeably shortened at the resonance point. The signal transmission distance is considered to be shortened since energy for transmitting an acoustic signal of the piezoelectric module is consumed as resonance energy of the piezoelectric module.
(22) In this regard, shortening of a signal transmission distance generated at a resonance point is avoided by excluding all the resonance points ft and fa of the piezoelectric module 1 from a frequency band in the vicinity of 18 kHz which is a frequency band of a transmitted signal. That is, in the piezoelectric module 1, a signal transmission distance is not shorted in a whole area of a frequency band of a transmitted signal, and thus communication may be reliably performed at a designed distance, and high stability of communication is achieved.
(23) As described in the foregoing, in the piezoelectric module 1, a resonance point is excluded from a frequency band of a transmitted signal to avoid shortening of a signal transmission distance, thereby attempting improvement in stability of communication. In addition, the piezoelectric module 1 has a configuration in which an acoustic signal is sent without providing a resonance space, and thus further miniaturization may be easily attempted without being inhibited by the resonance space.