BROADBAND SOUND ABSORPTION DEVICE USING AREA DIVISION
20250157448 ยท 2025-05-15
Inventors
Cpc classification
G10K2210/3214
PHYSICS
International classification
Abstract
The present invention relates to a broadband sound absorption device using area division, the device comprising: Helmholtz resonators including a neck portion and a cavity portion connected to the neck portion and having a predetermined area and thickness; and a unit sound absorber including at least one pair of the Helmholtz resonators, wherein a plurality of unit absorbers are arranged on a plane or curved surface, and the plurality of sound unit absorbers are formed to have cavity portions with different areas to minimize the thickness while enabling sound absorption for a wider band.
Claims
1. A broadband sound absorption device comprising: a Helmholtz resonator including a neck portion and a cavity portion connected to the neck portion and having a predetermined area and thickness; and a unit sound absorber including at least a pair of the Helmholtz resonators, wherein the unit sound absorbers are provided in plurality and arranged on a plane or curved surface, and the plurality of unit sound absorbers include Helmholtz resonators having cavity portions with different areas, respectively.
2. The broadband sound absorption device of claim 1, wherein the unit sound absorber includes at least a pair of Helmholtz resonators that satisfies an equation below
f.sub.1f.sub.Tf.sub.2 (wherein: f.sub.1: a resonance frequency of one Helmholtz resonator, f.sub.2: a resonance frequency of another Helmholtz resonator, and f.sub.T: a target frequency).
3. The broadband sound absorption device of claim 2, wherein, in the Helmholtz resonator of each of the plurality of unit sound absorbers, any one of a width and a length forming the area of the cavity portion is different to have a different target frequency.
4. The broadband sound absorption device of claim 2, wherein, in the Helmholtz resonator of each of the plurality of unit sound absorbers, a cross-section of the cavity portion is polygonal or circular.
5. The broadband sound absorption device of claim 3, wherein some of the plurality of unit sound absorbers each includes Helmholtz resonators having the same horizontal length and different vertical lengths, and some of the unit sound absorbers are arranged in a vertical direction.
6. The broadband sound absorption device of claim 3, wherein some of the plurality of unit sound absorbers each includes Helmholtz resonators having different horizontal lengths and the same vertical length, and some of the unit sound absorbers are arranged in a horizontal direction.
7. The broadband sound absorption device of claim 5, wherein a plurality of the unit sound absorbers form a polygonal or circular sound absorbing surface.
8. The broadband sound absorption device of claim 7, wherein the others of the plurality of unit sound absorbers have an arrangement in a different direction from some of the unit sound absorbers.
9. The broadband sound absorption device of claim 3, wherein, in the Helmholtz resonator of each of the plurality of unit sound absorbers, a minimum value x.sub.i,min of a variable component forming the area of the cavity portion is calculated by an equation below
x.sub.i,min=f(.sub.i,y,c,l)=m.sub.i.sup.n (wherein
10. The broadband sound absorption device of claim 9, wherein, in the Helmholtz resonator of each of the plurality of unit sound absorbers, the minimum value x.sub.i,min of the variable component forming the area of the cavity portion is calculated by an equation below
11. The broadband sound absorption device of claim 10, wherein the constants m.sub.1, m.sub.2, m.sub.3, m.sub.4 and n are formed within the range below 3<m.sub.1<1 2<m.sub.2<1 2<m.sub.3<0 130<m.sub.4<190 1.6<n<1.7.
12. The broadband sound absorption device of claim 9, wherein a total length (D) in a direction of a variable component and a sum
13. The broadband sound absorption device of claim 1, wherein, in the plurality of unit sound absorbers, a predetermined frequency band having a sound absorption rate of 90% or more forms a sound absorption rate band, and FOM calculated by an equation below is 3 or more
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF MAIN ELEMENTS
[0070] 10: broadband sound absorption device [0071] 100: Helmholtz resonator [0072] 110: neck portion 120: cavity portion [0073] 200: unit sound absorber [0074] 210: first unit sound absorber 220: second unit sound absorber [0075] 230: third unit sound absorber 240: fourth unit sound absorber
BEST MODE
[0076] Hereinafter, a broadband sound absorption device using area division according to various exemplary embodiments is described in detail with reference to the accompanying drawings. The exemplary embodiments of the present invention to be introduced below are provided by way of example so that the idea of the present invention may be sufficiently transferred to those skilled in the art to which the present invention pertains. Accordingly, the scope of the present invention is not restricted to the following description and accompanying drawings and may be embodied in another form. In addition, throughout the specification, like reference numerals denote like components.
[0077] Here, unless indicated otherwise, the terms used in the specification including technical and scientific terms have the same meaning as those that are usually understood by those skilled in the art to which the present invention pertains, and detailed description of the known functions and constitutions that may obscure the gist of the present invention will be omitted.
First Exemplary Embodiment
[0078]
[0079] Referring to
[0080] Referring to
[0081] Referring to
[0082] The Helmholtz resonator 100 of each of the four unit sound absorbers 200 including the first unit sound absorber 210, the second unit sound absorber 220, the third unit sound absorber 230, and the fourth unit sound absorber 240 may have different horizontal length a or vertical length b to have a different target frequency. The broadband sound absorption device 10 of the first exemplary embodiment of the present invention is described by way of example in which four unit sound absorbers 200 formed to have different horizontal lengths a are arranged in the horizontal direction on a main body 11. Here, the broadband sound absorption device 10 may be designed so that the target frequency increases from the first unit sound absorber 210 toward the fourth unit sound absorber 240, and thus, a horizontal length a.sub.4 of the fourth unit sound absorber 240 may be smaller than a horizontal length a.sub.1 of the first unit sound absorber 210. Accordingly, the broadband sound absorption device 10 according to the present invention has the advantage of achieving a higher sound absorption rate at N frequencies through N unit sound absorbers 200. Here, the N unit sound absorbers 200 may be configured so that a total horizontal length D.sub.1 of the broadband sound absorption device 10 described above is divided into a constant ratio a.sub.1:a.sub.2:a.sub.3:a.sub.4: . . . .
[0083]
[0084] Referring to
[0085] (here, f.sub.i: target frequency of i-th unit sound absorber)
[0086] Here, the resonance frequency of the Helmholtz resonator is generally inversely proportional to the square root of a cavity volume, so that the volume of the cavity portion 120 of the Helmholtz resonator 100 disposed in each of the plurality of unit sound absorbers may be configured to increase as shown in Equation 3 below.
[0087] (here, i: cavity portion volume of i-th Helmholtz resonator)
[0088] When the cross-sectional area of the Helmholtz resonators is constant as A=ab, such as the sound absorption device 20 of the related art shown in
[0089] In other words, since the sound absorption device 20 of the related art is determined according to the requirements of the Helmholtz resonator having the lowest target frequency among N unit sound absorbers, a problem in which unnecessary space remains in the Helmholtz resonator having a relatively high target frequency may arise.
[0090] In contrast, in the broadband sound absorption device 10 according to the present invention shown in
[0091] In other words, the Helmholtz resonator having a low target frequency may be varied to occupy a relatively large area, so that the total thickness H of the device may be maintained to be constant. In this manner, the broadband sound absorption device 10 according to the present invention may lead to the effect of reducing the thickness by the value of H.sub.1H calculated by Equation 6 below compared to the sound absorption device 20 of the related art.
[0092]
[0093] A minimum value of a variable component of the cavity portion 120 of the single unit sound absorber 200 that may achieve perfect sound absorption at a target frequency f.sub.target,i given to the single unit sound absorber 200 to derive a relationship between the target frequency of the Helmholtz resonator constituting each unit sound absorber 200 and the variable component may be defined as x.sub.i,min. Here, when other components constituting the area of the cavity portion 120 are fixed, a length of the fixed component of the cavity portion area may be fixed to y. Hereinafter, for clarification, the variable component is exemplified as a width and defined as a.sub.i,min, and the fixed component is exemplified as a length and defined as b.
[0094] In
TABLE-US-00001 TABLE 1 CLASSIFICATION PARAMETER (UNIT: mm) VERTICAL LENGTH OF 33.9 CAVITY PORTION(b) THICKNESS OF 42 CAVITY PORTION(c) LENGTH OF NECK(l) 12
[0095] Here, there is a structural constraint that the horizontal length of the cavity portion cannot be less than 2r.sub.i,1 or 2r.sub.i,2 which is a diameter of the neck portion of a pair of Helmholtz resonators, so a minimum horizontal length in a partial region may be excluded. Here, the excluded values are limited to those in Table 1, and if the variables change, the regions of the excluded values may also change. In other words, design may be made by appropriately adjusting geometrical parameters according to the target frequency. Also, as shown in
[0096] That is, when the target frequency f.sub.target,i is given, the horizontal length of each Helmholtz resonator may be determined through Equation 7, which is the relationship between .sub.i and a.sub.i,min.
[0097] Referring to
TABLE-US-00002 TABLE 2 unit: (mm) CLASSIFICATION FIG. 9-(a) FIG. 9-(b) FIG. 9-(c) FIG. 9-(d) VERTICAL 38.9 38.9 23.9 38.9 LENGTH OF CAVITY PORTION(b) THICKNESS OF 12 52 12 12 THE CAVITY PORTION(c) LENGTH OF 12 12 12 4 NECK(l)
[0098] In addition, the minimum horizontal length of each cavity portion calculated according to the shape conditions of
[0099] Here, if the minimum horizontal length a.sub.i,min of the cavity portion is expressed as an equation for not only the wavelength .sub.i but also other shape conditions, that is, the vertical length b of the cavity portion, the thickness c of the cavity portion, and the length l of the neck, it may be expressed as shown in Equation 9 below.
[0100] Here, a total horizontal length D.sub.1 and a total vertical length D.sub.2 may be calculated by defining shape conditions by defining and setting a total overall length D to D=2b+3t, the thickness t of the partition between each cavity portion to 1 mm, and a total thickness of the sound absorption device to H=l+c+t.
[0101] The constants m and n are functions m=m(b,c,l) and n=n(b,c,l) for, b, c, and l, respectively. Here, various numerical values for b, c, and l may be input to calculate a corresponding combination. If m=m(b,c,l) and n=n(b,c,l) are found therefrom, they may be calculated as shown in Equation 10 and Equation 11 below.
[0102] (Here, n.sub.1=n.sub.2=n.sub.3=0.)
[0103] Through Equation 10 and Equation 11 above, an equation for not only the minimum horizontal length a.sub.i,min of the cavity portion, but also the vertical length b of the cavity portion, the thickness c of the cavity portion, and the length l of the neck of other shape conditions may be expressed in more detail as Equation 12 below.
[0104] Here, the constants, m.sub.1, m.sub.2, m.sub.3, m.sub.4 and n may be formed within the range according to Equation 13 below.
[0105] Also, the sum
of the total length D and the components of the horizontal lengths of the Helmholtz resonators of each of the arranged unit sound absorbers may be formed by Equation 14 below.
[0106] (Here, N=total number of arranged Helmholtz resonators, t: partition thickness of unit sound absorber)
[0107] Here, the partition thickness of the unit sound absorber may be selected by considering a minimum thickness that may be manufactured, and N unit sound absorbers may be arranged to be divided at a certain ratio with respect to the total area by satisfying Equation 14 above and at the same time adjusting the horizontal length a.sub.i of each unit sound absorber cavity to be proportional to a.sub.i,min obtained for the target frequency f.sub.target,i. In the above description, the horizontal direction is used as an example for clarification, but this may be changed to the vertical direction or may be designed considering both the horizontal and vertical directions.
[0108]
[0109] As described above, the broadband sound absorption device according to the present invention has a structure in which a plurality of unit sound absorbers are arranged to divide the area according to the target frequency and may achieve perfect sound absorption at a plurality of frequencies simultaneously. Also, by appropriately selecting the number of unit cells and the target frequency intervals between each unit cell, a sound absorption device that exhibits a broadband high sound absorption may be designed. Hereinafter, in
[0110] Referring to
TABLE-US-00003 TABLE 3 FIRST SECOND THIRD FOURTH UNIT UNIT UNIT UNIT SOUND SOUND SOUND SOUND CLASSIFICATION ABSORBER ABSORBER ABSORBER ABSORBER TARGET 400 Hz 500 Hz 600 Hz 700 Hz FREQUENCY (f.sub.target, i) HORIZONTAL 21.6 mm 17.3 mm 14.4 mm 12.40 mm LENGTH (a.sub.i) RADIUS OF 2.92 mm 3.31 mm 3.77 mm 4.14 mm FIRST NECK PORTION (r.sub.i, 1) RADIUS OF 3.02 mm 3.45 mm 3.91 mm 4.30 mm SECOND NECK PORTION (r.sub.i, 2)
[0111] Here, the radius r.sub.i,1 of the first neck portion and the radius r.sub.i,2 of the second neck portion relate to the radius of the neck portion of each of a pair of Helmholtz resonators included in a single unit sound absorber, and the pair of Helmholtz resonators may be designed to be subwavelength to each other.
[0112] As shown in
[0113] Referring to
TABLE-US-00004 TABLE 4 FIRST SECOND THIRD FOURTH UNIT UNIT UNIT UNIT SOUND SOUND SOUND SOUND CLASSIFICATION ABSORBER ABSORBER ABSORBER ABSORBER TARGET 400 Hz 440 Hz 610 Hz 700 Hz FREQUENCY (f.sub.target, i) HORIZONTAL 21.6 mm 19.0 mm 13.7 mm 12.0 mm LENGTH (a.sub.i) RADIUS OF 2.88 mm 3.10 mm 3.75 mm 4.07 mm FIRST NECK PORTION (r.sub.i, 1) RADIUS OF 2.95 mm 3.21 mm 3.88 mm 4.22 mm SECOND NECK PORTION (r.sub.i, 2)
[0114] As shown in
[0115] Referring to
TABLE-US-00005 TABLE 5 FIRST SECOND THIRD FOURTH UNIT UNIT UNIT UNIT SOUND SOUND SOUND SOUND CLASSIFICATION ABSORBER ABSORBER ABSORBER ABSORBER TARGET 400 Hz 440 Hz 485 Hz 525 Hz FREQUENCY (f.sub.target, i) HORIZONTAL 18.8 mm 17.1 mm 15.5 mm 14.30 mm LENGTH (a.sub.i) RADIUS OF 2.76 mm 2.90 mm 3.07 mm 3.23 mm FIRST NECK PORTION (r.sub.i, 1) RADIUS OF 2.81 mm 2.97 mm 3.15 mm 3.32 mm SECOND NECK PORTION (r.sub.i, 2)
[0116] As shown in
Second Exemplary Embodiment
[0117]
[0118] Referring to
[0119] Referring to
TABLE-US-00006 TABLE 6 RADIUS RADIUS OF FIRST OF SECOND TARGET HORIZONTAL VERTICAL NECK NECK FREQUENCY LENGTH LENGTH PORTION PORTION CLASSIFICATION (f.sub.target, i) (a.sub.i) (b.sub.i) (r.sub.i, 1) (r.sub.i, 2) FIRST 540 Hz 20.3 mm 17.0 mm 2.77 mm 2.79 mm UNIT SOUND ABSORBER SECOND 560 Hz 16.4 mm 2.83 mm 2.90 mm UNIT SOUND ABSORBER THIRD 605 Hz 17.7 mm 17.4 mm 2.96 mm 3.06 mm UNIT SOUND ABSORBER FOURTH 660 Hz 16.0 mm 3.09 mm 3.24 mm UNIT SOUND ABSORBER FIFTH 715 Hz 15.1 mm 17.2 mm 3.27 mm 3.44 mm UNIT SOUND ABSORBER SIXTH 765 Hz 16.1 mm 3.57 mm 3.75 mm UNIT SOUND ABSORBER SEVENTH 812 Hz 13.6 mm 16.9 mm 3.63 mm 3.82 mm UNIT SOUND ABSORBER EIGHTH 836 Hz 16.4 mm 3.92 mm 3.94 mm UNIT SOUND ABSORBER
[0120] Here, as described in Table 6 above, unit sound absorbers arranged in the vertical direction may be formed to have the same horizontal length. In addition, as shown in
[0121] Referring to
[0122] It can be seen that the broadband sound absorption device of the present invention according to
Third Exemplary Embodiment
[0123]
[0124] Referring to
TABLE-US-00007 TABLE 7 CLASSIFICATION PARAMETER (UNIT: mm) AREA OF DEVICE 120 120 THICKNESS OF THE 98 CAVITY PORTION(c) LENGTH OF NECK(l) 1
[0125] Referring to
TABLE-US-00008 TABLE 8 RADIUS RADIUS OF FIRST OF SECOND TARGET HORIZONTAL VERTICAL NECK NECK FREQUENCY LENGTH LENGTH PORTION PORTION CLASSIFICATION (f.sub.target, i) (a.sub.i) (b.sub.i) (r.sub.i, 1) (r.sub.i, 2) FIRST 290 Hz 37.2 mm 20.4 mm 1.40 mm 1.41 mm UNIT SOUND ABSORBER SECOND 300 Hz 19.3 mm 1.43 mm 1.44 mm UNIT SOUND ABSORBER THIRD 325 Hz 16.8 mm 1.47 mm 1.48 mm UNIT SOUND ABSORBER FOURTH 345 Hz 27.4 mm 20.6 mm 1.51 mm 1.52 mm UNIT SOUND ABSORBER FIFTH 360 Hz 19.2 mm 1.55 mm 1.56 mm UNIT SOUND ABSORBER SIXTH 390 Hz 16.7 mm 1.58 mm 1.59 mm UNIT SOUND ABSORBER SEVENTH 425 Hz 18.5 mm 21.5 mm 1.64 mm 1.65 mm UNIT SOUND ABSORBER EIGHTH 460 Hz 18.8 mm 1.72 mm 1.73 mm UNIT SOUND ABSORBER NINTH 500 Hz 16.3 mm 1.81 mm 1.82 mm UNIT SOUND ABSORBER TENTH 540 Hz 12.5 mm 21.0 mm 1.91 mm 1.92 mm UNIT SOUND ABSORBER ELEVENTH 580 Hz 18.6 mm 2.03 mm 2.04 mm UNIT SOUND ABSORBER TWELFTH 615 Hz 16.9 mm 2.19 mm 2.20 mm UNIT SOUND ABSORBER THIRTEENTH 650 Hz 9.5 mm 20.3 mm 2.36 mm 2.37 mm UNIT SOUND ABSORBER FOURTEENTH 680 Hz 18.8 mm 2.55 mm 2.56 mm UNIT SOUND ABSORBER FIFTEENTH 710 Hz 17.4 mm 2.76 mm 2.77 mm UNIT SOUND ABSORBER SIXTEENTH 735 Hz 8.0 mm 19.6 mm 3.04 mm 3.05 mm UNIT SOUND ABSORBER SEVENTEENTH 755 Hz 18.7 mm 3.34 mm 3.35 mm UNIT SOUND ABSORBER EIGHTEENTH 765 Hz 18.3 mm 3.64 mm 3.65 mm UNIT SOUND ABSORBER
[0126] Here, as described in Table 8 above, unit sound absorbers arranged in the vertical direction may be formed to have the same horizontal length. In addition, as shown in
TABLE-US-00009 TABLE 9 CLASSIFICATION PARAMETER (UNIT: mm) AREA OF DEVICE 280 280 THICKNESS OF THE 298 CAVITY PORTION(c) LENGTH OF NECK(l) 1
[0127] Referring to
TABLE-US-00010 TABLE 10 RADIUS RADIUS OF FIRST OF SECOND TARGET HORIZONTAL VERTICAL NECK NECK FREQUENCY LENGTH LENGTH PORTION PORTION CLASSIFICATION (f.sub.target, i) (a.sub.i) (b.sub.i) (r.sub.i, 1) (r.sub.i, 2) FIRST 102 Hz 37.2 mm 20.4 mm 1.40 mm 1.41 mm UNIT SOUND ABSORBER SECOND 110 Hz 19.3 mm 1.43 mm 1.44 mm UNIT SOUND ABSORBER THIRD 120 Hz 16.8 mm 1.47 mm 1.48 mm UNIT SOUND ABSORBER FOURTH 130 Hz 27.4 mm 20.6 mm 1.51 mm 1.52 mm UNIT SOUND ABSORBER FIFTH 140 Hz 19.2 mm 1.55 mm 1.56 mm UNIT SOUND ABSORBER SIXTH 150 Hz 16.7 mm 1.58 mm 1.59 mm UNIT SOUND ABSORBER SEVENTH 160 Hz 18.5 mm 21.5 mm 1.64 mm 1.65 mm UNIT SOUND ABSORBER EIGHTH 170 Hz 18.8 mm 1.72 mm 1.73 mm UNIT SOUND ABSORBER NINTH 180 Hz 16.3 mm 1.81 mm 1.82 mm UNIT SOUND ABSORBER TENTH 190 Hz 12.5 mm 21.0 mm 1.91 mm 1.92 mm UNIT SOUND ABSORBER ELEVENTH 200 Hz 18.6 mm 2.03 mm 2.04 mm UNIT SOUND ABSORBER TWELFTH 210 Hz 16.9 mm 2.19 mm 2.20 mm UNIT SOUND ABSORBER THIRTEENTH 220 Hz 9.5 mm 20.3 mm 2.36 mm 2.37 mm UNIT SOUND ABSORBER FOURTEENTH 225 Hz 18.8 mm 2.55 mm 2.56 mm UNIT SOUND ABSORBER FIFTEENTH 230 Hz 17.4 mm 2.76 mm 2.77 mm UNIT SOUND ABSORBER SIXTEENTH 240 Hz 8.0 mm 19.6 mm 3.04 mm 3.05 mm UNIT SOUND ABSORBER SEVENTEENTH 245 Hz 18.7 mm 3.34 mm 3.35 mm UNIT SOUND ABSORBER EIGHTEENTH 250 Hz 18.3 mm 3.64 mm 3.65 mm UNIT SOUND ABSORBER
[0128] Here, as described in Table 10 above, unit sound absorbers arranged in the vertical direction may be formed to have the same horizontal length. In addition, as shown in
[0129] Next, in order to more clearly verify the sound absorption performance of the broadband sound absorption device according to the present invention, the Figure of Merit (FOM) defined by Equation 16 below may be used.
[0130] (Here, [0131] .sub.90avg: an average sound absorption rate in a sound absorption rate band of 90% or more, [0132] f.sub.90: a width of a sound absorption rate band of 90% or more, [0133] f.sub.90c: a center frequency of a sound absorption rate band of 90% or more, [0134] .sub.90max: the longest wavelength in a sound absorption rate band of 90% or more, and [0135] V: a volume of the cavity portion)
[0136] The performance index defined in Equation 16 above may be a measure of how high the sound absorption performance .sub.90avg is achieved in a wide frequency band
with how thin the structure
is. Here, when the structure representing the spectra of
Fourth Exemplary Embodiment
[0137]
[0138] Referring to
[0139] Hereinabove, although the present invention has been described by specific matters, such as detailed components, exemplary embodiments, and the accompanying drawings, they have been provided only for assisting in the entire understanding of the present invention. Therefore, the present invention is not limited to the exemplary embodiments. Various modifications and changes may be made by those skilled in the art to which the present invention pertains from this description.
[0140] Therefore, the spirit of the present invention should not be limited to these exemplary embodiments, but the claims and all of modifications equal or equivalent to the claims are intended to fall within the scope and spirit of the present invention.
INDUSTRIAL APPLICABILITY
[0141] According to the present invention, the broadband sound absorption device using area division capable of adjusting a resonance frequency of each Helmholtz resonator by changing any one of components constituting an area of a cavity portion may be provided. Through this, multiple pieces of frequency noise may be selectively absorbed or broadband noise may be absorbed with a thickness smaller than the related art, thereby solving the problem of noise required in the field of large home appliances, such as clothes dryers and dishwashers, and power generation and electricity fields, such as transformers, as the fields that require selective absorption of multiple pieces of frequency noise, and also a field of transportation means, such as vehicles and drones, urban air mobility (UAM), and a mobile device field, such as smartphones and tablets, as fields that require broadband noise absorption.