Ultrasonic vibration generator and hair treatment device

The ultrasonic vibration generator converts longitudinal vibrations into lateral vibrations, allowing for adjustable overall length and miniaturization, suitable for hair treatment devices.

JP7796393B2Active Publication Date: 2026-01-09NIHON UNIVERSITY +1
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Patent Information

Application Number
JP2025537349
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-07-28
Filing Date
2024-07-24
Publication Date
2026-01-09
Estimated Expiration
2044-07-24

AI Technical Summary

Technical Problem

Existing ultrasonic vibration generators are difficult to miniaturize due to their fixed total length, which is determined by the wavelength of the longitudinal vibrations, limiting the ability to arbitrarily adjust their overall length.

Method used

An ultrasonic vibration generator design that incorporates a vibrator unit connected to a lateral vibration generating part, which converts longitudinal vibrations into lateral vibrations, allowing the overall length to be set arbitrarily and enabling miniaturization.

Benefits of technology

The design allows for increased freedom in adjusting the overall length of the generator, enabling it to be made smaller without compromising vibration amplitude, and can be used in hair treatment devices such as shavers and trimmers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an ultrasonic vibration generation device the total length of which can be freely adjusted. An ultrasonic vibration body (3) comprises: a vibrator connection part (4) to which a vibrator unit (2) is connected; a conical horn (5) for converting at least a part of vertical vibration transmitted via the vibrator connection part 4 into lateral vibration having mutually different directions and sizes; and a columnar vibration part (6) which is provided so as to protrude from the conical horn (5) with the root thereof connected to the conical horn (5), and in which the tip is ultrasonically vibrated in a plane orthogonal to the traveling direction of the vertical vibration as the lateral vibration is transmitted.
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Description

[Technical Field]

[0001] The present invention relates to an ultrasonic vibration generator and a hair treatment device. This application claims priority based on Japanese Patent Application No. 2023-123845, filed on July 28, 2023, the contents of which are incorporated herein by reference. [Background technology]

[0002] For example, Patent Document 1 discloses a focused sound field forming device that uses a vibrator unit. The vibrator unit disclosed in Patent Document 1 includes a vibrator that generates vibrations when power is supplied, an exponential horn that amplifies the amplitude of the vibrations, and a resonating rod that resonates with the vibrations generated by the vibrator. In this type of vibration unit, the exponential horn amplifies the amplitude of the vibrations generated by the vibrator and transmits them to a diaphragm via the resonating rod. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-148697 Summary of the Invention [Problem to be solved by the invention]

[0004] The vibrator unit disclosed in Patent Document 1 has a total length determined depending on the frequency of vibration generated by the vibrator so that large vibrations can be obtained at the tip of the resonating rod. In other words, the vibrator unit disclosed in Patent Document 1 utilizes resonance with the longitudinal vibrations (compression waves traveling in the longitudinal direction of the vibrating unit) generated by the vibrator, and the total length is set to a length that resonates with the longitudinal vibrations generated by the vibrator. For example, the lengths of the vibrator, horn, and resonating rod are each formed to be half the wavelength of the longitudinal vibration. For this reason, it is difficult to arbitrarily change the total length of an ultrasonic vibration generator such as the vibrator unit disclosed in Patent Document 1. For this reason, it has been difficult to miniaturize an ultrasonic vibration generator, for example by shortening the total length.

[0005] The present invention has been made in consideration of the above-mentioned problems, and has as its object to provide an ultrasonic vibration generator whose overall length can be adjusted arbitrarily. [Means for solving the problem]

[0006] The present invention employs the following configuration as a means for solving the above problems.

[0007] A first aspect of the present invention is an ultrasonic vibration generator comprising a vibrator unit that generates longitudinal vibrations, and a vibrator connected to the vibrator unit and vibrating ultrasonically, wherein the vibrator comprises a vibrator connection part to which the vibrator unit is connected, a lateral vibration generating part that converts at least a part of the longitudinal vibrations transmitted via the vibrator connection part into lateral vibrations different in direction and magnitude, and a columnar vibrating part whose base is connected to the lateral vibration generating part and protrudes from the lateral vibration generating part, and whose tip vibrates ultrasonically in a plane perpendicular to the direction of propagation of the longitudinal vibrations as the lateral vibrations are transmitted.

[0008] A second aspect of the present invention is the first aspect, wherein the lateral vibration generating unit is a horn whose cross-sectional area perpendicular to the direction of travel of the longitudinal vibration decreases as it moves away from the vibrator unit.

[0009] A third aspect of the present invention is the second aspect, wherein the horn has a pair of inclined surfaces consisting of a first inclined surface and a second inclined surface facing in opposite directions, the first inclined surface and the second inclined surface approach each other as they move away from the vibrator unit, and have different inclination angles relative to the direction of travel of the longitudinal vibration.

[0010] A fourth aspect of the present invention is the third aspect, wherein the horn has a plurality of pairs of inclined surfaces.

[0011] A fifth aspect of the present invention is configured in any one of the first to fourth aspects, wherein the lateral vibration generating unit converts a portion of the longitudinal vibration transmitted from the vibrator unit into the lateral vibration, and the columnar vibrating unit vibrates in the direction of travel of the longitudinal vibration based on the longitudinal vibration transmitted via the lateral vibration generating unit.

[0012] A sixth aspect of the present invention is the fifth aspect, wherein the distance from the end of the vibrator unit opposite the vibrating body to the tip of the columnar vibrating part is equal to one wavelength of the longitudinal vibration.

[0013] A seventh aspect of the present invention, in any one of the first to sixth aspects, employs a configuration in which the vibrating body includes a tip connecting portion connected to a tip of the columnar vibrating portion.

[0014] An eighth aspect of the present invention is a hair processing device comprising an ultrasonic vibration generator according to any one of the first to seventh aspects, and a blade connected to the columnar vibration part for cutting hair. [Effects of the Invention]

[0015] According to the present invention, a vibrating body connected to a vibrator unit is provided. The vibrating body has a lateral vibration generating unit that converts longitudinal vibration into lateral vibration. Furthermore, the columnar vibrating unit vibrates laterally when the lateral vibration is transmitted. Such a vibrating body can vibrate the columnar vibrating unit at a large amplitude without resonating with the longitudinal vibration. Therefore, the overall length of the vibrating body in the traveling direction does not need to be set depending on the wavelength of the longitudinal vibration generated by the vibrator unit, and can be set arbitrarily. Therefore, the ultrasonic vibration generator of the present invention has improved freedom in changing the overall length and can be made smaller. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a perspective view of an ultrasonic vibration generator according to a first embodiment of the present invention. [Figure 2] 1A and 1B are three-view diagrams of an ultrasonic vibrator provided in an ultrasonic vibration generator according to a first embodiment of the present invention, where (a) is a diagram viewed from the y direction, (b) is a diagram viewed from the x direction, and (c) is a diagram viewed from the z direction. [Figure 3] FIG. 10 is a perspective view of an ultrasonic vibration generator according to a second embodiment of the present invention. [Figure 4] 10A and 10B are three-view diagrams of an ultrasonic vibrator provided in an ultrasonic vibration generator according to a second embodiment of the present invention, where (a) is a diagram viewed from the y direction, (b) is a diagram viewed from the x direction, and (c) is a diagram viewed from the z direction. [Figure 5] FIG. 10 is a perspective view of an ultrasonic vibration generator according to a third embodiment of the present invention. [Figure 6] 10A and 10B are three-view diagrams of an ultrasonic vibrator provided in an ultrasonic vibration generator according to a third embodiment of the present invention, where (a) is a diagram viewed from the y direction, (b) is a diagram viewed from the x direction, and (c) is a diagram viewed from the z direction. [Figure 7] FIG. 10 is a perspective view of an ultrasonic vibration generator according to a fourth embodiment of the present invention. [Figure 8] FIG. 10 is a perspective view of an ultrasonic vibration generator according to a fifth embodiment of the present invention. [Figure 9] FIG. 10 is a perspective view of a hair processing device according to a sixth embodiment of the present invention. [Figure 10] 4 is a diagram showing the results of a simulation analysis of displacement caused by vibration of an ultrasonic vibrator in Example 1. FIG. [Figure 11] (a) is a view of the hair processing device in Example 2 as seen from the y direction, (b) is an oblique view of the hair processing device in Example 2, and (c) is a diagram showing the results of a simulation analysis of displacement due to vibration of the hair processing device in Example 2. DETAILED DESCRIPTION OF THE INVENTION

[0017] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An embodiment of an ultrasonic vibration generator according to the present invention will be described below with reference to the drawings.

[0018] (First embodiment) 1 is a perspective view of an ultrasonic vibration generator 1 according to the present embodiment. The ultrasonic vibration generator 1 according to the present embodiment is a vibration device that generates ultrasonic vibrations when power is supplied. As shown in FIG. 1, the ultrasonic vibration generator 1 according to the present embodiment includes a vibrator unit 2 and an ultrasonic vibrator 3.

[0019] The installation posture of the ultrasonic vibration generator 1 of this embodiment is not particularly limited. However, in the following description, for convenience, the arrangement direction of the transducer unit 2 and the ultrasonic transducer 3 is defined as the y direction, a first direction perpendicular to the y direction is defined as the x direction, and a direction perpendicular to the y direction and the x direction is defined as the z direction, as shown in Fig. 1 .

[0020] The transducer unit 2 is a unit that generates vibrations (ultrasonic vibrations) and includes a plurality of piezoelectric elements 2a and a holder 2b. The transducer unit 2 as a whole is formed in a substantially cylindrical shape having an axis L. The transducer unit 2 is arranged so that the axis L is parallel to the y direction.

[0021] The multiple piezoelectric elements 2a are stacked and arranged in the y direction. When power is supplied to each piezoelectric element 2a, it vibrates with the y direction as its amplitude direction. In other words, when power is supplied to these piezoelectric elements 2a, they generate longitudinal vibrations that travel in the y direction (the direction along the axis L). Instead of the piezoelectric elements 2a, electromechanical conversion elements such as magnetostrictive elements and electrostrictive elements can also be used. The holder 2b holds the multiple piezoelectric elements 2a by sandwiching them between both sides in the y direction.

[0022] For example, a bolt-clamped Langevin type transducer (BLT) that generates powerful ultrasonic vibrations can be suitably used as such a transducer unit 2. Such a transducer unit 2 is driven by power supplied from a power supply circuit (power supply) not shown.

[0023] The ultrasonic vibrator 3 is connected to the vibrator unit 2 in the y direction. That is, as described above, the vibrator unit 2 and the ultrasonic vibrator 3 are arranged in the y direction. The ultrasonic vibrator 3 is a part that converts at least a part of the longitudinal vibration transmitted from the vibrator unit 2 into lateral vibration and generates ultrasonic vibration. The ultrasonic vibrator 3 is made of, for example, aluminum, an aluminum alloy (e.g., duralumin), titanium, a titanium alloy, stainless steel, iron, or the like, and multiple parts (vibrator connection part 4, conical horn 5, and columnar vibrating part 6), which will be described later, are integrally formed. The ultrasonic vibrator 3 is fixed to the vibrator unit 2 by, for example, a set screw.

[0024] 2 is a three-view diagram of the ultrasonic vibrator 3, where (a) is a view from the y direction, (b) is a view from the x direction, and (c) is a view from the z direction. As shown in these figures, in this embodiment, the ultrasonic vibrator 3 has a vibrator connection part 4, a conical horn 5 (a horizontal vibration generating part), and a columnar vibrating part 6.

[0025] The transducer connection part 4 is a part that is connected to the transducer unit 2. The transducer connection part 4 is formed in a rectangular parallelepiped shape having a transducer connection surface 4a that faces the transducer unit 2. The transducer connection surface 4a is formed with a screw hole into which the above-mentioned set screw is screwed, for example.

[0026] The transducer connection part 4 has a conical horn 5 provided on the side opposite the transducer connection surface 4a. As described above, the transducer connection part 4 and the conical horn 5 are integrally formed. For this reason, the boundary surface between the transducer connection part 4 and the conical horn 5 is not provided to be visible. However, for ease of explanation, the surface of the transducer connection part 4 facing the conical horn 5 will be referred to as the conical horn installation surface 4b. This conical horn installation surface 4b is a surface parallel to the xz plane.

[0027] The conical horn 5 is formed so as to protrude from the conical horn installation surface 4b of the transducer connection part 4 in the direction opposite to the transducer unit 2. In this embodiment, one conical horn 5 and one columnar vibration part 6 are provided for each transducer connection part 4. A single transducer connection part 4 may be provided with a plurality of conical horns 5 and a columnar vibration part 6 provided for each conical horn 5.

[0028] The conical horn 5 converts a portion of the longitudinal vibration component transmitted from the transducer unit 2 into a transverse vibration. More specifically, the conical horn 5 converts a portion of the longitudinal vibration component into a transverse vibration whose displacement direction (amplitude direction) is the z direction. The cross-sectional area (cross-sectional area in the xz plane) of the conical horn 5, which is perpendicular to the direction of travel of the longitudinal vibration (y direction), decreases as the distance from the transducer unit 2 increases. Such a conical horn 5 amplifies the amplitude of the longitudinal vibration and the transverse vibration.

[0029] The shape of the conical horn 5 will be described in more detail. As shown in Fig. 2, the conical horn 5 has four side surfaces and is formed so that each of its shapes when viewed from the z direction and the x direction is a trapezoid. Of the four side surfaces, the surface facing the +z direction is referred to as the first surface 5a, the surface facing the -z direction opposite to the first surface 5a is referred to as the second surface 5b, the surface facing the +x direction is referred to as the third surface 5c, and the surface facing the -x direction is referred to as the fourth surface 5d.

[0030] As shown in FIG. 2(b), the first surface 5a (first inclined surface) and the second surface 5b (second inclined surface) face in opposite directions and are inclined so as to approach each other as they move away from the transducer unit 2. The first surface 5a and the second surface 5b form an inclined surface pair consisting of two inclined surfaces facing in opposite directions. In the following description, the inclined surface pair consisting of the first surface 5a and the second surface 5b will be referred to as a first inclined surface pair 10.

[0031] The inclination angle α1 of the first surface 5a with respect to the y direction (the direction in which the longitudinal vibrations travel) is larger than the inclination angle α2 of the second surface 5b with respect to the y direction. That is, in this embodiment, the first surface 5a and the second surface 5b have different inclination angles with respect to the y direction. Therefore, the length dimension of the first surface 5a from the conical horn installation surface 4b to the columnar vibrating section 6 is larger than the length dimension of the second surface 5b from the conical horn installation surface 4b to the columnar vibrating section 6. The inclination angle α1 of the first surface 5a with respect to the y direction (the direction in which the longitudinal vibrations travel) may be smaller than the inclination angle α2 of the second surface 5b with respect to the y direction.

[0032] These first and second surfaces 5a and 5b reflect the longitudinal vibrations propagating inside the conical horn 5. When the longitudinal vibrations are reflected by the first and second surfaces 5a and 5b, a vibration component (lateral vibration component) with the z direction as its displacement direction is generated. Here, because the first and second surfaces 5a and 5b have different inclination angles with respect to the direction of travel of the longitudinal vibration, a difference in strength occurs between the lateral vibration component generated by the first surface 5a and the lateral vibration component generated by the second surface 5b, resulting in the conical horn 5 vibrating in the z direction. In other words, the conical horn 5 generates lateral vibrations in the z direction. In other words, the first pair of inclined surfaces 10 consisting of the first and second surfaces 5a and 5b generates lateral vibrations with the z direction as its amplitude direction.

[0033] As shown in FIG. 2(c), the third surface 5c (first inclined surface) and the fourth surface 5d (second inclined surface) face in opposite directions and are inclined so as to approach each other as they move away from the transducer unit 2. The third surface 5c and the fourth surface 5d form an inclined surface pair consisting of two inclined surfaces facing in opposite directions. In the following description, the inclined surface pair consisting of the third surface 5c and the fourth surface 5d will be referred to as the second inclined surface pair 20.

[0034] The inclination angle α4 of the fourth surface 5d with respect to the y direction (the direction in which the longitudinal vibrations travel) is larger than the inclination angle α3 of the third surface 5c with respect to the y direction. That is, in this embodiment, the third surface 5c and the fourth surface 5d have different inclination angles with respect to the y direction. Therefore, the length dimension of the fourth surface 5d from the conical horn installation surface 4b to the columnar vibrating section 6 is larger than the length dimension of the third surface 5c from the conical horn installation surface 4b to the columnar vibrating section 6. The inclination angle α4 of the fourth surface 5d with respect to the y direction (the direction in which the longitudinal vibrations travel) may be smaller than the inclination angle α3 of the third surface 5c with respect to the y direction.

[0035] These third and fourth surfaces 5c and 5d reflect the longitudinal vibrations propagating inside the conical horn 5. When the longitudinal vibrations are reflected by the third and fourth surfaces 5c and 5d, a vibration component (lateral vibration component) with the x-direction as its displacement direction is generated. Here, because the third and fourth surfaces 5c and 5d have different inclination angles with respect to the direction of travel of the longitudinal vibration, a difference in strength occurs between the lateral vibration component generated by the third surface 5c and the lateral vibration component generated by the fourth surface 5d, resulting in the conical horn 5 vibrating in the x-direction. In other words, the conical horn 5 generates lateral vibrations in the x-direction. In other words, the second pair of inclined surfaces 20 consisting of the third and fourth surfaces 5c and 5d generates lateral vibrations with the x-direction as its amplitude direction.

[0036] As described above, in this embodiment, the conical horn 5 has two pairs of inclined surfaces (first pair of inclined surfaces 10 and second pair of inclined surfaces 20) each consisting of two inclined surfaces facing in opposite directions and having different inclination angles. In other words, the conical horn 5 has multiple pairs of inclined surfaces. Such a conical horn 5 converts a part of the longitudinal vibration transmitted from the vibrator unit 2 into a lateral vibration whose displacement direction (amplitude direction) is the z direction and a lateral vibration whose displacement direction (amplitude direction) is the x direction. Such lateral vibration is transmitted to the columnar vibrating section 6 connected to the conical horn 5. The longitudinal vibration component that has not been converted into lateral vibration is transmitted to the columnar vibrating section 6 as it is.

[0037] In this embodiment, a conical horn 5 is used in which the cross-sectional area in the xz cross section changes at a constant rate in the y direction, but an exponential horn in which the cross-sectional area in the xz cross section changes exponentially in the y direction may also be used.

[0038] The columnar vibrating part 6 is connected to the tip of the conical horn 5 (the end opposite to the vibrator connection part 4). The columnar vibrating part 6 vibrates in a complex manner such that the x-, y-, and z-directions are displacement directions (amplitude directions) due to the lateral and longitudinal vibrations transmitted from the conical horn 5. Such a columnar vibrating part 6 is connected to, for example, a tool and vibrates the tool in a complex manner.

[0039] In this embodiment, the pillar-shaped vibrating part 6 is formed so that its shape when viewed from the y direction is square. However, the pillar-shaped vibrating part 6 may have a shape when viewed from the y direction that is triangular or polygonal with pentagons or more. Furthermore, the pillar-shaped vibrating part 6 may have a shape when viewed from the y direction that is circular.

[0040] As described above, the ultrasonic vibrator 3 has the conical horn 5 and the columnar vibration portion 6 integrated together. Such an ultrasonic vibrator 3 is connected to the transducer unit 2 and generates a complex vibration from the longitudinal vibration, with the x-, y-, and z-directions being the displacement directions as described above. The overall length (length dimension in the y-direction) of the ultrasonic vibrator 3 does not need to be set depending on the wavelength of the longitudinal vibration and can be set arbitrarily. However, the overall length of the ultrasonic vibrator 3 may be set to half the wavelength of the longitudinal vibration. The overall length of the ultrasonic vibrator 3 may also be set so that the overall length of the ultrasonic vibration generator 1 is one wavelength of the longitudinal vibration.

[0041] In the ultrasonic vibration generator 1 of this embodiment, when power is supplied to the transducer unit 2, the transducer unit 2 generates longitudinal vibrations that travel in the y direction. The longitudinal vibrations generated by the transducer unit 2 are transmitted to the ultrasonic transducer 3. The longitudinal vibrations transmitted to the ultrasonic transducer 3 are then transmitted to the conical horn 5 via the transducer connection part 4. A portion of the longitudinal vibrations transmitted to the conical horn 5 is reflected in the z direction by the first and second surfaces 5a and 5b of the conical horn 5. A portion of the longitudinal vibrations transmitted to the conical horn 5 is reflected in the x direction by the third and fourth surfaces 5c and 5d of the conical horn 5. As a result, the conical horn 5 vibrates in the x and z directions in addition to the y direction. In other words, the conical horn 5 converts at least a portion of the longitudinal vibrations into lateral vibrations, and the conical horn 5 vibrates in a complex manner with the x, y, and z directions as displacement directions.

[0042] The composite vibration generated by the conical horn 5 is transmitted to the columnar vibration part 6. When the lateral vibration is transmitted to the columnar vibration part 6, the columnar vibration part 6 vibrates ultrasonically. Such ultrasonic vibration is transmitted to, for example, a tool connected to the columnar vibration part 6.

[0043] The ultrasonic vibration generator 1 of this embodiment as described above includes a transducer unit 2 and an ultrasonic vibrator 3. The transducer unit 2 generates longitudinal vibrations. The ultrasonic vibrator 3 is connected to the transducer unit 2 and vibrates ultrasonically. The ultrasonic vibrator 3 includes a transducer connection part 4, a conical horn 5, and a columnar vibrating part 6. The transducer unit 2 is connected to the transducer connection part 4. The conical horn 5 converts at least a portion of the longitudinal vibrations transmitted via the transducer connection part 4 into transverse vibrations that differ in direction and magnitude. The columnar vibrating part 6 has its base connected to the conical horn 5 and protrudes from the conical horn 5. When the transverse vibrations are transmitted to the columnar vibrating part 6, its tip vibrates ultrasonically in a plane (xz plane) perpendicular to the direction of travel of the longitudinal vibrations.

[0044] The ultrasonic vibration generator 1 of this embodiment includes an ultrasonic vibrator 3 connected to a vibrator unit 2. The ultrasonic vibrator 3 has a conical horn 5 that converts longitudinal vibration into lateral vibration. Furthermore, the columnar vibration section 6 vibrates laterally when lateral vibration is transmitted. Such an ultrasonic vibrator 3 can vibrate the columnar vibration section 6 widely even without resonating with the longitudinal vibration. Therefore, the total length of the ultrasonic vibrator 3 in the traveling direction does not need to be set depending on the wavelength of the longitudinal vibration generated by the vibrator unit 2, and can be set arbitrarily. Therefore, the ultrasonic vibration generator 1 of this embodiment has an improved degree of freedom in changing the total length, and can be made smaller.

[0045] In the ultrasonic vibration generator 1 of this embodiment, the conical horn 5 is a horn whose cross-sectional area perpendicular to the direction of travel of the longitudinal vibration decreases as it moves away from the transducer unit 2. Therefore, the conical horn 5 generates transverse vibrations, and the amplitude of the vibrations can be increased and transmitted to the columnar vibration part 6.

[0046] In the ultrasonic vibration generator 1 of this embodiment, the conical horn 5 has a first surface 5a and a second surface 5b that face in opposite directions. The first surface 5a and the second surface 5b approach each other as they move away from the transducer unit 2, and have different inclination angles with respect to the traveling direction of the longitudinal vibration. Therefore, the ultrasonic vibration generator 1 of this embodiment can generate lateral vibrations that oscillate in the z direction using the conical horn 5 with a simple shape.

[0047] In the ultrasonic vibration generator 1 of this embodiment, the conical horn 5 has a third surface 5c and a fourth surface 5d that face in opposite directions. The third surface 5c and the fourth surface 5d approach each other as they move away from the transducer unit 2, and have different inclination angles with respect to the traveling direction of the longitudinal vibration. Therefore, the ultrasonic vibration generator 1 of this embodiment can generate lateral vibrations that oscillate in the x direction using the conical horn 5 with a simple shape.

[0048] In the ultrasonic vibration generator 1 of this embodiment, the conical horn 5 has a plurality of pairs of inclined surfaces. In this embodiment, the conical horn 5 includes a first pair of inclined surfaces 10 and a second pair of inclined surfaces 20. Therefore, the ultrasonic vibration generator 1 of this embodiment is capable of generating a complex vibration in the conical horn 5 that includes a plurality of lateral vibrations with different amplitude directions.

[0049] In the ultrasonic vibration generator 1 of this embodiment, the conical horn 5 converts a part of the longitudinal vibration transmitted from the transducer unit 2 into a transverse vibration. The columnar vibration part 6 vibrates in the direction of the longitudinal vibration based on the longitudinal vibration transmitted via the conical horn 5.

[0050] In the ultrasonic vibration generator 1 of this embodiment, some components of the longitudinal vibration are not converted into transverse vibration and are transmitted to the columnar vibration part 6. Therefore, a composite vibration including a vibration whose amplitude direction is the y direction can be transmitted to the columnar vibration part 6.

[0051] In the ultrasonic vibration generator 1 of this embodiment, the distance from the end of the transducer unit 2 opposite to the ultrasonic vibrator 3 to the tip of the columnar vibrating part 6 may be equal to one wavelength of the longitudinal vibration. This allows the ultrasonic vibrator 3 to resonate with the longitudinal vibration, and the amplitude of the columnar vibrating part 6 in the y direction to be increased.

[0052] In the ultrasonic vibration generator 1 of this embodiment, various tools can be connected to the columnar vibration unit 6. For example, a blade for cutting hair can be connected to the columnar vibration unit 6 as a tool. As blades for cutting hair, either or both of a razor blade and a trimmer blade can be connected to the columnar vibration unit 6. In such a case, the ultrasonic vibration generator 1 of this embodiment can be used as a hair treatment device, and can be used as, for example, a shaver, clippers, trimmer, or other device for shaving, removing, styling, and styling hair.

[0053] (Second embodiment) Next, a second embodiment of the present invention will be described with reference to Figures 3 and 4. In the description of this embodiment, the description of the same parts as those in the first embodiment will be omitted or simplified.

[0054] Fig. 3 is a perspective view of the ultrasonic vibration generator 1A of this embodiment. Fig. 4 is a three-view diagram of the ultrasonic vibrator 3 included in the ultrasonic vibration generator 1A of this embodiment, where (a) is a view from the y direction, (b) is a view from the x direction, and (c) is a view from the z direction.

[0055] As shown in FIGS. 3 and 4 , in the ultrasonic vibration generator 1A of this embodiment, a part of the conical horn mounting surface 4b of the transducer connection part 4 is provided with an exposed surface 4c on which the conical horn 5 is not provided. More specifically, the conical horn mounting surface 4b is formed in a square shape when viewed from the y direction. The exposed surface 4c, having the same width, is provided on the negative edge of the conical horn mounting surface 4b in the z direction and on the positive edge of the conical horn mounting surface 4b in the x direction. The ratio of the area on the conical horn mounting surface 4b where the conical horn 5 is provided to the exposed surface 4c can be changed. By changing the ratio of the area on the conical horn mounting surface 4b where the conical horn 5 is provided to the exposed surface 4c, the inclination angle α1 of the first surface 5a and the inclination angle α2 of the second surface 5b can be changed.

[0056] As in the above embodiment, in this embodiment, the inclination angle α1 of the first surface 5a with respect to the y direction is larger than the inclination angle α2 of the second surface 5b with respect to the y direction. Therefore, the length dimension from the conical horn installation surface 4b of the first surface 5a to the columnar vibrating part 6 is larger than the length dimension from the conical horn installation surface 4b of the second surface 5b to the columnar vibrating part 6.

[0057] The first surface 5a is connected to the z-direction end (end on the +z side) of the transducer connection part 4. The second surface 5b is connected to the conical horn installation surface 4b at a position away from the z-direction end (end on the -z side) of the transducer connection part 4. The first surface 5a may be connected to the conical horn installation surface 4b at a position away from the z-direction end (end on the +z side) of the transducer connection part 4. In this case, the second surface 5b may be connected to the z-direction end (end on the -z side) of the transducer connection part 4.

[0058] As in the above embodiment, in this embodiment, the inclination angle α4 of the fourth surface 5d with respect to the y direction is larger than the inclination angle α3 of the third surface 5c with respect to the y direction. Therefore, the length dimension from the conical horn installation surface 4b of the fourth surface 5d to the columnar vibrating part 6 is larger than the length dimension from the conical horn installation surface 4b to the columnar vibrating part 6 of the third surface 5c.

[0059] The third surface 5c is connected to the conical horn installation surface 4b at a position away from the x-direction end (end on the +x side) of the transducer connection unit 4. The fourth surface 5d is connected to the x-direction end (end on the -x side) of the transducer connection unit 4. The fourth surface 5d may be connected to the conical horn installation surface 4b at a position away from the x-direction end (end on the -x side) of the transducer connection unit 4. In this case, the third surface 5c may be connected to the x-direction end (end on the +x side) of the transducer connection unit 4.

[0060] In the ultrasonic vibration generator 1A of this embodiment, as described above, by changing the ratio of the area on the conical horn installation surface 4b where the conical horn 5 is provided to the exposed surface 4c, the inclination angle α1 of the first surface 5a, the inclination angle α2 of the second surface 5b, the inclination angle α3 of the third surface 5c, and the inclination angle α4 of the fourth surface can be changed.

[0061] (Third embodiment) Next, a third embodiment of the present invention will be described with reference to Figures 5 and 6. In the description of this embodiment, the description of the same parts as those in the first embodiment will be omitted or simplified.

[0062] Fig. 5 is a perspective view of the ultrasonic vibration generator 1B of this embodiment. Fig. 6 is a three-view diagram of the ultrasonic vibrator 3 included in the ultrasonic vibration generator 1B of this embodiment, where (a) is a view from the y direction, (b) is a view from the x direction, and (c) is a view from the z direction.

[0063] As shown in FIGS. 5 and 6 , in the ultrasonic vibration generator 1B of this embodiment, a part of the conical horn mounting surface 4b of the transducer connection part 4 is provided with an exposed surface 4c on which the conical horn 5 is not provided. More specifically, the conical horn mounting surface 4b is formed in a square shape when viewed from the y direction. Exposed surfaces 4c with different widths are provided on the negative edge of the conical horn mounting surface 4b in the z direction and on the positive edge of the conical horn mounting surface 4b in the x direction. The ratio of the area where the conical horn 5 is provided to the exposed surface 4c on the conical horn mounting surface 4b can be changed. By changing the ratio of the area where the conical horn 5 is provided to the exposed surface 4c on the conical horn mounting surface 4b, the inclination angle α1 of the first surface 5a and the inclination angle α2 of the second surface 5b can be changed.

[0064] As in the above embodiment, in this embodiment, the inclination angle α1 of the first surface 5a with respect to the y direction is larger than the inclination angle α2 of the second surface 5b with respect to the y direction. Therefore, the length dimension from the conical horn installation surface 4b of the first surface 5a to the columnar vibrating part 6 is larger than the length dimension from the conical horn installation surface 4b of the second surface 5b to the columnar vibrating part 6.

[0065] The first surface 5a is connected to the z-direction end (end on the +z side) of the transducer connection part 4. The second surface 5b is connected to the conical horn installation surface 4b at a position away from the z-direction end (end on the -z side) of the transducer connection part 4. The first surface 5a may be connected to the conical horn installation surface 4b at a position away from the z-direction end (end on the +z side) of the transducer connection part 4. In this case, the second surface 5b may be connected to the z-direction end (end on the -z side) of the transducer connection part 4.

[0066] As in the above embodiment, in this embodiment, the inclination angle α4 of the fourth surface 5d with respect to the y direction is larger than the inclination angle α3 of the third surface 5c with respect to the y direction. Therefore, the length dimension from the conical horn installation surface 4b of the fourth surface 5d to the columnar vibrating part 6 is larger than the length dimension from the conical horn installation surface 4b to the columnar vibrating part 6 of the third surface 5c.

[0067] The third surface 5c is connected to the conical horn installation surface 4b at a position away from the x-direction end (end on the +x side) of the transducer connection unit 4. The fourth surface 5d is connected to the x-direction end (end on the -x side) of the transducer connection unit 4. The fourth surface 5d may be connected to the conical horn installation surface 4b at a position away from the x-direction end (end on the -x side) of the transducer connection unit 4. In this case, the third surface 5c may be connected to the x-direction end (end on the +x side) of the transducer connection unit 4.

[0068] Here, in this embodiment, the distance from the second surface 5b to the end of the vibrator connection portion 4 on the z-direction side (the end on the -z side) is shorter than the distance from the third surface 5d to the end of the vibrator connection portion 4 on the x-direction side (the end on the +x side).

[0069] In the ultrasonic vibration generator 1B of this embodiment, as described above, by changing the ratio of the area on the conical horn installation surface 4b where the conical horn 5 is provided to the exposed surface 4c, the inclination angle α1 of the first surface 5a, the inclination angle α2 of the second surface 5b, the inclination angle α3 of the third surface 5c, and the inclination angle α4 of the fourth surface can be changed.

[0070] Furthermore, in the ultrasonic vibration generator 1B of this embodiment, the cross-sectional shape of the conical horn 5 in the xy plane is different from the cross-sectional shape of the conical horn 5 in the zy plane. Therefore, the resonant frequency at which the conical horn 5 vibrates strongly in the x direction is different from the resonant frequency at which the conical horn 5 vibrates strongly in the z direction. Therefore, for example, by changing the frequency of the longitudinal vibration, it is possible to switch between a mode in which the conical horn 5 vibrates strongly in the x direction and a mode in which the conical horn 5 vibrates strongly in the z direction.

[0071] (Fourth embodiment) Next, a fourth embodiment of the present invention will be described with reference to Fig. 7. In the description of this embodiment, the description of the same parts as those in the first embodiment will be omitted or simplified.

[0072] 7 is a perspective view of an ultrasonic vibration generator 1C of this embodiment. As shown in this figure, in the ultrasonic vibration generator 1C of this embodiment, the columnar vibration section 6 is formed so as to have a rectangular shape when viewed from the y direction. However, the columnar vibration section 6 may have a triangular shape or a polygonal shape with pentagons or more when viewed from the y direction. Furthermore, the columnar vibration section 6 may have a circular shape when viewed from the y direction.

[0073] According to the ultrasonic vibration generator 1C of this embodiment, the resonant frequency at which the columnar vibration part 6 vibrates strongly in the x direction is different from the resonant frequency at which the conical horn 5 vibrates strongly in the z direction. Therefore, for example, by including both resonant frequencies in the longitudinal vibration, it is possible to make the vibration of the columnar vibration part 6 more complex.

[0074] (Fifth embodiment) Next, a fifth embodiment of the present invention will be described with reference to Fig. 8. In the description of this embodiment, the description of the same parts as those in the fourth embodiment will be omitted or simplified.

[0075] 8 is a perspective view of an ultrasonic vibration generator 1D of this embodiment. As shown in this figure, the ultrasonic vibration generator 1D of this embodiment includes a horizontal bar portion 7 (tip connecting portion) connected to the tip of the columnar vibration portion 6. The tip of the columnar vibration portion 6 is connected to the center of the horizontal bar portion 7 in the longitudinal direction. For example, the horizontal bar portion 7 is fixed to the columnar vibration portion 6 by ultrasonic bonding.

[0076] Such a horizontal bar portion 7 vibrates when composite vibration is transmitted from the columnar vibrating portion 6. Both ends of the horizontal bar portion 7 in the longitudinal direction vibrate more strongly than the center portion of the horizontal bar portion 7. Therefore, by connecting the horizontal bar portion 7 to the columnar vibrating portion 6, it is possible to obtain vibrations that are different from those obtained when the horizontal bar portion 7 is not provided.

[0077] In this embodiment, the configuration has been described in which the tip connecting portion connected to the tip of the columnar vibration portion 6 is the horizontal bar portion 7. However, the tip connecting portion is not limited to the horizontal bar portion 7. The shape of the tip connecting portion can be changed as desired.

[0078] (Sixth embodiment) Next, a sixth embodiment of the present invention will be described with reference to Fig. 9. In the description of this embodiment, the description of the same parts as those in the fifth embodiment will be omitted or simplified.

[0079] 9 is a perspective view of the hair processing device 1E of this embodiment. In this embodiment, the columnar vibration unit 6 is formed so that its shape when viewed from the y direction is square. However, the columnar vibration unit 6 may have a shape when viewed from the y direction that is triangular, rectangular, or polygonal with pentagons or more. Furthermore, the columnar vibration unit 6 may have a shape when viewed from the y direction that is circular. The horizontal bar portion 7 may be connected at an angle to the pillar-shaped vibration portion 6, or may not be connected at an angle, but it is preferable that it is connected at an angle from the perspective of making it easier to treat hair, and it is more preferable that the horizontal bar portion 7 is connected at an angle of 10° to 75° to the pillar-shaped vibration portion 6. The hair processing device 1E of this embodiment may or may not be symmetrical in shape when viewed from the y direction, but it is preferable that it be symmetrical from the standpoint of obtaining stable displacement due to vibration on both sides.

[0080] As shown in Figure 9, the hair processing device 1E of this embodiment includes a blade (blade 8) for cutting hair, which is connected to the longitudinal surface of the horizontal bar portion 7. That is, the blade 8 is connected to the columnar vibration portion 6. The blade 8 may be double-edged. Furthermore, the hair processing device 1E of this embodiment may include an upper blade holder 9 connected to the longitudinal surface of the blade 8. Such a blade 8 is fixed to the horizontal bar portion 7 by, for example, an upper blade holder 9.

[0081] Such blade 8 vibrates when composite vibration is transmitted from horizontal bar 7. The longitudinal ends of blade 8 vibrate more strongly than the center of blade 8. Therefore, by connecting blade 8 to horizontal bar 7, it is possible to obtain a large bending vibration.

[0082] In this embodiment, the blade 8 and the blade upper holder 9 are connected to the horizontal bar 7 in the longitudinal direction. However, the shapes of the blade 8 and the blade upper holder 9 can be changed as desired. The blade 8 is preferably a razor blade or a trimmer blade, or both. The blade upper holder 9 is not particularly limited as long as it can fix the blade 8 to the horizontal bar portion 7. If the blade 8 can be fixed by a structure other than the blade upper holder 9, the blade upper holder 9 may be omitted.

[0083] In this embodiment, the hair processing device 1E can be used as a shaving, hair removal, hair styling, and hair trimming device such as a shaver, clippers, and trimmer.

[0084] [Example 1] Next, an example of the results of a simulation analysis of the vibration of the ultrasonic vibrator 3 of the first embodiment using the finite element method will be described as Example 1. In this example, the ultrasonic vibrator 3 was designed so that the resonance frequency was 28 kHz.

[0085] In the ultrasonic vibrator 3 shown in Figure 10, the vibrator connection part 4 is 20 mm long in the y direction and 40 mm long in each of the x and z directions. The conical horn 5 is 52 mm long in the y direction, with the thicker parts in the x and z directions being 40 mm long each and the thinner parts in the x and z directions being 5 mm long. The columnar vibrating part 6 is 10 mm long in the y direction and 5 mm long in each of the x and z directions. The ultrasonic vibrator 3 is made of aluminum alloy (A2017).

[0086] Figure 10 shows the results of a simulation analysis of displacement due to vibration when the applied vibration frequency is 28 kHz, with lighter black areas indicating greater displacement due to vibration. As shown in Figure 10, it was revealed that in the ultrasonic vibrator 3, displacement due to vibration increases from the vibrator connection part 4 to the tip of the conical horn 5, and that displacement due to vibration is particularly large in the columnar vibrating part 6.

[0087] [Example 2] Next, an example of the results of a simulation analysis of vibrations of the hair processing device 1E of the sixth embodiment using the finite element method will be described as Example 2. In this example, the hair processing device 1F was designed so that the resonance frequency was 40 kHz.

[0088] Figure 11(a) shows that in the hair treating device 1F used in this example, the rotation angle α5 of the ultrasonic vibrator 3 relative to the axis L is 45°. Figure 11(b) shows that in the hair treating device used in this example, the inclination angle α6 of the horizontal bar portion 7 relative to the columnar vibration portion 6 is 30°. 11(a) and (b), the transducer unit 2 corresponds to a bolt-clamped Langevin transducer "DA21540F (product name)" (manufactured by NGK Spark Plug Co., Ltd.), and has a diameter of 15 mm and a total length in the y direction of 62.6 mm. The transducer connection portion 4 has a length dimension of 10 mm in the y direction and lengths of 15 mm in each of the x and z directions. The conical horn 5 has a length dimension of 53 mm in the y direction and lengths of 15 mm in the x and z directions. The columnar vibration portion 6 has a length dimension of 6 mm in the x and z directions. The horizontal bar portion 7 has a length dimension of 20 mm in the x direction, a length dimension of 2.5 mm in the y direction, and a length dimension of 48 mm in the z direction. Blade 8 corresponds to a "High Stainless Steel Double-Edged Razor (product name)" (manufactured by Feather Safety Razor Co., Ltd.), and has a length dimension of 22 mm in the x direction, a length dimension of 0.1 mm in the y direction, a length dimension of 42.7 mm in the z direction, and a blade width dimension of 37 mm. Blade upper holder 9 is semi-cylindrical, has a length dimension of 19 mm in the x direction, a length dimension of 48 mm in the z direction, is part of an arc with a radius of 30 mm, and has a length dimension of 1.54 mm in the y direction at the center of blade upper holder 9. The ultrasonic vibrator 3 and the blade upper presser 9 are made of duralumin.

[0089] Figure 11(c) shows the results of a simulation analysis of the displacement caused by vibration when the frequency of the applied vibration is 40 kHz. The lighter the black color, the greater the displacement caused by vibration. As shown in Figure 11(c), it is clear that a large bending vibration can be obtained in the blade 8.

[0090] The simulation analysis results shown in the above Examples 1 and 2 are merely examples. It goes without saying that the distribution of displacement due to vibration can be changed by applying different frequencies.

[0091] While the preferred embodiments of the present invention have been described above with reference to the accompanying drawings, it goes without saying that the present invention is not limited to the above-described embodiments. The shapes and combinations of the components shown in the above-described embodiments are merely examples, and various modifications can be made based on design requirements, etc., without departing from the spirit of the present invention.

[0092] For example, in the above embodiment, a configuration has been described in which only one conical horn 5 and one columnar vibrating section 6 are provided. However, the present invention is not limited to this. For example, a configuration in which a plurality of conical horns 5 and a plurality of columnar vibrating sections 6 are provided may also be adopted.

[0093] In the above embodiment, a configuration has been described in which one columnar vibration section 6 is provided for one conical horn 5. However, the present invention is not limited to this. For example, it is also possible to adopt a configuration in which a plurality of columnar vibration sections 6 are provided for one conical horn 5. [Explanation of symbols]

[0094] 1...ultrasonic vibration generator, 1A...ultrasonic vibration generator, 1B...ultrasonic vibration generator, 1C...ultrasonic vibration generator, 1D...ultrasonic vibration generator, 1E...hair treatment device, 1F...hair treatment device, 2...vibrator unit, 3...ultrasonic vibrator (vibrator), 4...vibrator connection part, 5...conical horn (lateral vibration generating part), 5a...first surface (first inclined surface), 5b...second surface (second inclined surface), 5c...third surface (first inclined surface), 5d...fourth surface (second inclined surface), 6...columnar vibration part, 7...horizontal bar part (tip connection part), 8...blade, 9...upper blade holder, 10...first inclined surface pair (inclined surface pair), 20...second inclined surface pair (inclined surface pair)

Claims

1. a vibrator unit that generates longitudinal vibrations; a vibrator connected to the vibrator unit and vibrating ultrasonically; Equipped with The vibrating body is a transducer connection portion to which the transducer unit is connected; a lateral vibration generating unit that converts at least a part of the longitudinal vibration transmitted through the vibrator connecting unit into lateral vibrations that have different directions and magnitudes; a columnar vibration part whose base is connected to the lateral vibration generating part and protrudes from the lateral vibration generating part, and whose tip vibrates ultrasonically in a plane perpendicular to the direction of travel of the longitudinal vibration when the lateral vibration is transmitted thereto; An ultrasonic vibration generating device comprising:

2. 2. The ultrasonic vibration generator according to claim 1, wherein the transverse vibration generating section is a horn whose cross-sectional area perpendicular to the direction of travel of the longitudinal vibration decreases with increasing distance from the transducer unit.

3. the horn has a pair of inclined surfaces, each of which includes a first inclined surface and a second inclined surface that are oriented in opposite directions; The first inclined surface and the second inclined surface approach each other as they move away from the vibrator unit, and have different inclination angles with respect to the direction of travel of the longitudinal vibration.

3. The ultrasonic vibration generator according to claim 2.

4. 4. The ultrasonic vibration generator according to claim 3, wherein the horn has a plurality of pairs of inclined surfaces.

5. the lateral vibration generating unit converts a part of the longitudinal vibration transmitted from the vibrator unit into the lateral vibration; The columnar vibration portion vibrates in a direction in which the longitudinal vibration propagates based on the longitudinal vibration transmitted via the lateral vibration generating portion.

5. The ultrasonic vibration generator according to claim 1, wherein the ultrasonic vibration generator is a device for generating ultrasonic vibrations.

6. 6. The ultrasonic vibration generator according to claim 5, wherein the distance from the end of the vibrator unit opposite to the vibrating body to the tip of the columnar vibration part is equal to one wavelength of the longitudinal vibration.

7. 5. The ultrasonic vibration generator according to claim 1, wherein the vibrator includes a tip connection portion connected to a tip of the columnar vibration portion.

8. The ultrasonic vibration generator according to any one of claims 1 to 4, a blade connected to the columnar vibration part for cutting hair; A hair treatment device comprising:

Citation Information

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