Flat-Plate Focusing Ultrasonic Transducer and Acoustic Lens Which are Composed of Annular Array Piezoelectric Element, and Methods of Manufacturing and Designing Thereof
20220241818 · 2022-08-04
Inventors
- Yong Tae Kim (Daejeon, KR)
- Kyung Min BAIK (Daejeon, KR)
- Sung Mok KIM (Daejeon, KR)
- Hyung Jin LEE (Daejeon, KR)
- Il Doh (Daejeon, KR)
Cpc classification
H10N30/06
ELECTRICITY
International classification
Abstract
The present invention relates to a flat-plate focusing ultrasonic transducer and an acoustic lens composed of an annular array piezoelectric element and methods of manufacturing and designing thereof, more particularly to a flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element, wherein the annular array piezoelectric element has a plurality of concentric regions which is concentrically arranged in a concentric circle shape with respect to a center point, the concentric region has ring shaped sound insulation regions and piezoelectric regions which are alternatively formed in a direction from the center point to a radius direction, so as to focus a sound wave near a focal point, wherein the piezoelectric regions are composed of a piezoelectric ring that is composed of a piezoelectric material and thus excites a sound wave, the concentric region is in a shape of a flat-plate of which both sides are flat and which has a constant thickness, and each radius of the plurality of the sound insulation regions and the piezoelectric regions in the concentric region are calculated based on a set focal length of the ultrasonic transducer and a frequency of a set sound wave.
Claims
1. A flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element, wherein the annular array piezoelectric element has a plurality of concentric regions which is concentrically arranged in a concentric circle shape with respect to a center point, the concentric region has ring shaped sound insulation regions and piezoelectric regions which are alternatively formed in a direction from the center point to a radius direction, so as to focus a sound wave near a focal point, wherein the piezoelectric regions are composed of a piezoelectric ring that is composed of a piezoelectric material and thus excites a sound wave, the concentric region is in a shape of a flat-plate of which both sides are flat and which has a constant thickness, and each radius of the plurality of the sound insulation regions and the piezoelectric regions in the concentric region are calculated based on a set focal length of the ultrasonic transducer and a frequency of a set sound wave.
2. The flat-plate focusing ultrasonic transducer composed of am annular array piezoelectric element according to claim 1, wherein a maximum radius is determined and fixed, and the each radius of the plurality of the sound insulation regions and the piezoelectric regions in the concentric region are calculated by following Equation 3:
3. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 1, wherein a minimum radius is determined and fixed, and the each radius of the plurality of the sound insulation regions and the piezoelectric regions in the concentric region are calculated by following Equation 4:
4. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 2, further comprising electrode layers to be laminated on each of the both sides.
5. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 2, wherein a sound insulation material composing the sound insulation regions is air or a sound insulator, the sound insulator having a composite material which induces a scattering process of a sound wave and a matrix material which fills a base of an acoustic absorbent during the scattering process of the sound wave.
6. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 2, wherein the focal length is fixed even if changing the number of the piezoelectric rings, and length and width of a major axis of a focused beam are adjustable by changing the number of the piezoelectric rings.
7. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 2, wherein when the flat-plate focusing ultrasonic transducer is driven with a frequency besides the frequency of the set sound wave, an effective focal length is calculated by following Equation 5:
8. The flat-plate focusing ultrasonic transducer composed of an annular array piezoelectric element according to claim 3, wherein when the flat-plate focusing ultrasonic transducer is driven with a frequency besides the frequency of the set sound wave, an effective focal length is calculated by following Equation 6:
9. An acoustic lens comprising the annular array piezoelectric element according to claim 1.
10. A method of designing an annular array piezoelectric element of a focusing ultrasonic transducer or an acoustic lens, the method comprising: designing a desired frequency of a sound wave and a desired focal length; determining and fixing a maximum radius and calculating each radius of a plurality of sound insulation regions and piezoelectric ring shaped piezoelectric regions composed of a piezoelectric material in a concentric region by following Equation 3; determining a minimum radius of a focusing ultrasonic transducer or an acoustic lens to be manufactured and a number of a concentric region; and manufacturing the ultrasonic transducer or the acoustic lens to coincide with the number of the concentric regions, the maximum radius, the minimum radius and the each radius of the sound insulation regions and the piezoelectric regions:
11. A method of designing an annular array piezoelectric element included in a focusing ultrasonic transducer or an acoustic lens, the method comprising: designing a desired frequency of a sound wave and a desired focal length; determining and fixing a primary radius and calculating each radius of a plurality of sound insulation regions and piezoelectric ring shaped piezoelectric regions composed of a piezoelectric material in a concentric region by following Equation 4; determining a maximum radius of a focusing ultrasonic transducer or an acoustic lens to be manufactured and a number of the concentric region; and manufacturing the ultrasonic transducer or the acoustic lens to coincide with the number of the concentric regions, the maximum radius, the minimum radius and the each radius of the sound insulation regions and the piezoelectric regions:
12. The designing method of an annular array piezoelectric element according to claim 10, wherein in determining the number of the concentric regions, the method further comprises adjusting length and width of a major axis of a focused beam by changing the number of the piezoelectric rings.
13. The designing method of an annular array piezoelectric element according to claim 11, wherein in determining the number of the concentric regions, the method further comprises adjusting length and width of a major axis of a focused beam by changing the number of the piezoelectric rings.
14. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: manufacturing a mold in which a disc shaped protrusion is provided at a center and concentric concave portions and convex portions are alternatively and sequentially formed in a radius direction from the protrusions, coinciding with each radius of the concentric regions in accordance with the designing method according to claim 10; filling a piezoelectric material in an upper portion of the mold; sealing the filled piezoelectric material by coupling a cap to the upper portion of the mold; removing the cap, detaching the filled piezoelectric material, and filling a sound insulator in a region formed by the concave portion and the convex portion of the mold; and coating an electrode layer on each of the opposite surfaces.
15. The method according to claim 14, further comprising coupling a high-voltage polarizer to the electrode layers and polarizing the piezoelectric material after coating the electrode layer.
16. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: manufacturing a mold in which a disc shaped protrusion is provided at a center and concentric concave portions and convex portions are alternatively and sequentially formed in a radius direction from the protrusions, coinciding with each radius of the concentric regions in accordance with the designing method according to claim 11; filling a piezoelectric material in an upper portion of the mold; sealing the filled piezoelectric material by coupling a cap to the upper portion of the mold; removing the cap, detaching the filled piezoelectric material, and filling a sound insulator in a region formed by the concave portion and the convex portion of the mold; and coating an electrode layer on each of the opposite surfaces.
17. The method according to claim 16, further comprising coupling a high-voltage polarizer to the electrode layers and polarizing the piezoelectric material after coating the electrode layer.
18. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: preparing a base material of a piezoelectric ring having a maximum radius and a minimum radius according to the designing method according to claim 10; forming sound insulation regions by laser etching to coincide with each radius of concentric regions according to the designing method while rotating the base material of a piezoelectric ring with respect to a center point; filling a sound insulator in the sound insulation region; and coating electrode layers on both sides.
19. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: preparing a base material of a piezoelectric ring having a maximum radius and a minimum radius according to the designing method according to claim 11; forming sound insulation regions by laser etching to coincide with each radius of concentric regions according to the designing method while rotating the base material of a piezoelectric ring with respect to a center point; filling a sound insulator in the sound insulation region; and coating electrode layers on both sides
20. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: preparing a base material of a piezoelectric ring having a maximum radius according to the designing method according to claim 10; removing a center portion by irradiating lasers so as to form, in the base material of a piezoelectric ring, a center through portion corresponding to a minimum radius according to the designing method while rotating the base material of a piezoelectric ring with respect to a center point; forming sound insulation regions by laser etching to coincide with each radius of concentric regions according to the designing method while rotating the base material of a piezoelectric ring with respect to the center point; filling a sound insulator in the sound insulation region; and coating electrode layers on both sides.
21. The method according to claim 20, wherein the removed center portion is recycled, or the center through portion is not filled with a sound insulator and after an insulation insert is inserted into an inside of the center through portion, both sides of the center portion are coated with electrode layers and the coated center portion is inserted into and coupled to the center through portion.
22. A method of manufacturing an ultrasonic transducer or an acoustic lens, the method comprising: preparing a base material of a piezoelectric ring having a maximum radius according to the designing method according to claim 11; removing a center portion by irradiating lasers so as to form, in the base material of a piezoelectric ring, a center through portion corresponding to a minimum radius according to the designing method while rotating the base material of a piezoelectric ring with respect to a center point; forming sound insulation regions by laser etching to coincide with each radius of concentric regions according to the designing method while rotating the base material of a piezoelectric ring with respect to the center point; filling a sound insulator in the sound insulation region; and coating electrode layers on both sides.
23. The method according to claim 22, wherein the removed center portion is recycled, or the center through portion is not filled with a sound insulator and after an insulation insert is inserted into an inside of the center through portion, both sides of the center portion are coated with electrode layers and the coated center portion is inserted into and coupled to the center through portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0056] The patent or application contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the U.S. Patent and Trademark Office upon request and payment of the necessary fee.
[0057] The accompanying drawings in the specification illustrate an embodiment of the present invention. The technical essence of the present disclosure will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings. Therefore, the present invention will not be interpreted to be limited to the drawings in which:
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DETAILED DESCRIPTION
[0084] The above and other objects, features, and other advantages of the present disclosure will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings. As those skilled in the art would realize, the present disclosure is not limited to the described embodiments, but may be embodied in different ways. On the contrary, example embodiments introduced herein are provided to make disclosed contents thorough and complete and sufficiently transfer the essence of the present invention to those skilled in the art.
[0085] In this specification, when a component is referred to as being “on” another component, it may be directly on the other component, or an intervening third component may be present. Further, in the drawings, the thicknesses of components are exaggerated for effectively describing the technical contents.
[0086] Example embodiments described in this specification may be described with reference to cross-sectional views and/or plan views which are ideal example views of the present disclosure. Further, in the drawings, the thicknesses of film and regions are exaggerated for effectively describing the technical contents. Therefore, a shape of the example view may be modified by a manufacturing technology and/or an allowable error. Accordingly, example embodiments of the present disclosure are not limited to specific illustrated types, but may include modified types which are generated in accordance with the manufacturing process. For example, a region illustrated to have a right angle may be rounded or have a predetermined curvature. Therefore, regions illustrated in the drawings have properties. Shapes of the regions illustrated in the drawings are provided to illustrate a specific shape of a region of an element, but not limit the scope of the present disclosure. Although the terms “first”, “second”, and the like are used for describing various components, these components are not confined by these terms. These terms are merely used for distinguishing one component from the other components. Example embodiments described herein include complementary embodiments thereof.
[0087] The terms used in the present specification are for explaining the embodiments rather than limiting the present invention. Unless particularly stated otherwise in the present specification, a singular form also includes a plural form. The term “comprises” and/or “comprising” used in this specification does not exclude the existence or addition of one or more other components.
[0088] When the following specific example embodiments are described, various specific contents are provided for more specific description and understanding of the present disclosure. However, those skilled in the art may understand that the specific example embodiment may be described without using the various specific contents. In some cases, a configuration which is generally known and does not directly relate to the present disclosure will be omitted in order to avoid confusion.
[0089] Hereinafter, explained are a configuration and a method of designing a flat-plate focusing ultrasonic transducer or an acoustic lens which are composed of an annular array piezoelectric element.
[0090] The configuration of an annular array piezoelectric element 10 to be explained in the present invention may be adopted to a focusing ultrasonic transducer, an acoustic lens or both thereof. Hereinafter, explained is a focusing ultrasonic transducer 100 as an embodiment.
[0091]
[0092] It is seen that the annular array piezoelectric element 10 composing the flat-plate ultrasonic transducer 100 may have a plurality of concentric regions, as shown in
[0093] The concentric region is configured to have ring shaped sound insulation regions 11 and piezoelectric regions 12 which are alternatively formed in a direction from the center point to a radius direction, so as to focus a sound wave near a focal point, wherein the piezoelectric regions are composed of a piezoelectric ring that is composed of a piezoelectric material and thus excites a sound wave, the concentric region. Further, the concentric region is in a shape of a flat-plate of which both sides are flat and which has a constant thickness.
[0094] Further, each radius of the plurality of the sound insulation regions 11 and the piezoelectric regions 12 in the concentric region are calculated based on a set focal length of the ultrasonic transducer and a frequency of a set sound wave.
[0095] Further,
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[0097] Prior inventions by inventors of the present invention describe an acoustic lens and a focusing ultrasonic transducer using this Fresnel zone plate principle, wherein designing of radius dimensions of concentric regions in which the sound insulation regions 11 and the piezoelectric regions 12 are alternatively formed is based on the following Equation 1 and Equation 2.
[0098] According to the basis of this conventional designing method, each radius of a plurality of the sound insulation regions 11 and the piezoelectric regions 12 in the concentric regions are calculated on the basis of a wavelength in a transmission medium in which the wavelength is determined by a set focal length and a frequency of a set sound wave, and the each radius of the plurality of the sound insulations 11 and the piezoelectric regions 12 are calculated by the following Equation 1.
[0099] where m is an index of the sequential concentric regions in a radius direction from a center point, λ is a wavelength in the transmission medium, and F is a focal length.
[0100] Further, the focal length is defined by the following Equation 2.
[0101] where Ra is a maximum radius of the ultrasonic transducer, λ is a wavelength of the sound wave in the transmission medium, and m is the number of the concentric regions.
[0102] According to an embodiment of the present invention, through the array of the piezoelectric element 10 in a shape of Fresnel zone plate (FZP) capable of designing each radius dimension of concentric regions, it is not necessary to use a curved surface of piezoelectric element and is easy to implement focusing on a designed focal point.
[0103] When the conventional designing method is adopted, radii are calculated from the inside outward (b1, b2, . . . , bm), and an outer diameter D and the number of the concentric regions are determined referring to the table showing the calculated radii in
[0104] Therefore, the present invention suggests a new designing method of dimension determination.
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[0106] According to the first embodiment of the present invention, a maximum radius is determined and fixed, and the each radius of the plurality of the sound insulation regions 11 and piezoelectric regions 12 in the concentric region are calculated by following Equation 3:
[0107] where a.sub.n is an index of the sequential concentric regions from the maximum radius to an inner radius direction, a.sub.0 is the maximum radius (R.sub.0), k is a wave number, and F is a focal length.
[0108] Further, the focusing ultrasonic transducer 100 may be configured to comprise electrode layers 30 to be laminated on each of an upper surface and a lower surface thereof. A sound insulation material composing the sound insulation regions 11 is air or a sound insulator, and the sound insulator may be configured to have a composite material which induces a scattering process of a sound wave and a matrix material which fills a base of an acoustic absorbent during the scattering process of the sound wave.
[0109] That is, a desired frequency of a sound wave and a desired focal length are designed, and a maximum radius is determined and then fixed. Each radius of a plurality of sound insulation regions 11 and piezoelectric ring shaped piezoelectric regions 12 composed of a piezoelectric material in a concentric region are by following Equation 3.
[0110] A minimum radius of the focusing ultrasonic transducer 100 or the acoustic lens to be manufactured and a number of a concentric region are determined, and the ultrasonic transducer 100 or the acoustic lens is manufactured to coincide with the number of the designed concentric regions, the maximum radius, the minimum radius and the each radius of the sound insulation regions 11 and the piezoelectric regions 12.
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[0112] According to the second embodiment of the present invention, a minimum radius is determined and fixed, and the each radius of the plurality of the sound insulation regions 11 and the piezoelectric regions 12 in the concentric region are calculated by following Equation 4:
[0113] where b.sub.n is an index of the sequential concentric regions in a direction from a primary radius to an outer radius, b.sub.0 is the primary radius (R.sub.b), k is a wave number, and F is a focal length. The focusing ultrasonic transducer 100 may be configured to comprise the electrode layers 30 to be laminated on each of the upper surface and the lower surface thereof.
[0114] That is, a desired frequency of a sound wave and a desired focal length are designed, and a primary radius is determined and then fixed. Each radius of the plurality of the sound insulation regions 11 and the piezoelectric ring shaped piezoelectric regions 12 composed of a piezoelectric material in a concentric region are by following Equation 4.
[0115] A minimum radius of the focusing ultrasonic transducer 100 or the acoustic lens to be manufactured and a number of the concentric region are determined, and the ultrasonic transducer 100 or the acoustic lens is manufactured to coincide with the number of the designed concentric regions, the maximum radius, the minimum radius and the each radius of the sound insulation regions 11 and the piezoelectric regions 12
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[0117] A conventional designing method follows Equation 1 as shown in
[0118] The first embodiment of the present invention follows Equation 3 as shown in
[0119] The second embodiment of the present invention follows Equation 4 as shown in
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[0124] As shown in
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[0126] That is, it can be seen that it is allowable to adjust the length and the width of the major axis of the focusing beam according to the design of the number of the piezoelectric ring 12.
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[0128] As shown in
[0129] In the designing method according to the first embodiment of the present invention, when the flat-plate focusing ultrasonic transducers is driven with a frequency besides a frequency of a set sound wave, an effective focal length is calculated by Equation 5.
[0130] where, a.sub.2(i-1) is an outer diameter of an i.sub.th piezoelectric ring, a.sub.2i-1 is an inner diameter of an i.sub.th piezoelectric ring.
[0131] Further, in the designing method according to the second embodiment of the present invention, when the flat-plate focusing ultrasonic transducer is driven with a frequency besides the frequency of the set sound wave, an effective focal length is calculated by following Equation 6:
[0132] where, b.sub.2(i-1) is an inner diameter of an i.sub.th piezoelectric ring, b.sub.2i-1 is an outer diameter of an i.sub.th piezoelectric ring.
[0133] Further,
[0134] Hereinafter, described is a manufacturing method of flat-plate focusing ultrasonic transducer or an acoustic lens which is composed of the aforementioned annular array piezoelectric element according to the embodiment of the present invention.
[0135] Further,
[0136] In the first embodiment of the present invention, a mold 40 is adopted. As shown in
[0137] Further, a piezoelectric material is filled into the mold 40. At this time, it is preferable to design a thickness of a focusing ultrasonic transducer or an acoustic lens to be manufactured to the extent of a half of the quotient obtained by dividing a longitudinal wave of sound speed by a frequency. The filled piezoelectric material is sealed by combining a cap with an upper portion of the mold 40.
[0138] Further, following removal of the cap, the piezoelectric material is subjected to desorption.
[0139] Further, as shown in
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[0141] Firstly, a base material of a piezoelectric ring 60 is prepared which has a maximum radius and a minimum radius designed according to the designing methods according to the first and second embodiments and which is in a form without electrode in which polarization was completed.
[0142] Further, as shown in 20A, while the base material of a piezoelectric ring 60 is rotated with respect to the center point, the sound insulation regions 11 are formed by etching through laser 50 to coincide with each radius of concentric regions according to the designing methods according to the first and second embodiments. Further, as shown in
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[0144] Further, as shown in
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[0146] Firstly, the base material of a piezoelectric ring 60 is prepared which has a maximum radius (a.sub.0) designed according to the aforementioned designing methods according to the first and second embodiments and which is in a form without electrode in which polarization was completed.
[0147] Further, as shown in
[0148] As shown in
[0149] Further, as shown in
[0150] Further, the aforementioned apparatus and method are not limited to configurations and methods of the above-described embodiments. Alternatively, the embodiments may be configured by selectively combining the whole of the respective embodiments or a part thereof to allow various modifications.
DESCRIPTION OF THE SYMBOLS
[0151] 1: a conventional ultrasonic transducer [0152] 2: a conventional spherical acoustic lens [0153] 10: an annular array piezoelectric element [0154] 11: a sound insulation region [0155] 12: a piezoelectric region, a piezoelectric ring [0156] 20: a sound insulator [0157] 30: an electrode layer [0158] 40: a mold [0159] 41: a protrusion portion [0160] 42: a concave portion [0161] 43: a convex portion [0162] 44: a boundary step [0163] 50: laser [0164] 60: a base material of a piezoelectric ring [0165] 61: a piezoelectric disc, a center portion [0166] 62: an insulation insert [0167] 63: a scatterer [0168] 100: a focusing ultrasonic transducer composed of an annular array piezoelectric element, an acoustic lens