EP1875461A1 - Breitband-schallreduktion mit akustischem resonator - Google Patents

Breitband-schallreduktion mit akustischem resonator

Info

Publication number
EP1875461A1
EP1875461A1 EP06733033A EP06733033A EP1875461A1 EP 1875461 A1 EP1875461 A1 EP 1875461A1 EP 06733033 A EP06733033 A EP 06733033A EP 06733033 A EP06733033 A EP 06733033A EP 1875461 A1 EP1875461 A1 EP 1875461A1
Authority
EP
European Patent Office
Prior art keywords
resonators
sound
structural element
panel construction
foregoing
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP06733033A
Other languages
English (en)
French (fr)
Inventor
Hans Wijnant Ysbrand
Marieke Henriëtte Cathrien HANNINK
Jacob Piet P/a Universiteit Twente VLASMA
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Twente Universiteit
Original Assignee
Twente Universiteit
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Twente Universiteit filed Critical Twente Universiteit
Publication of EP1875461A1 publication Critical patent/EP1875461A1/de
Withdrawn legal-status Critical Current

Links

Classifications

    • G—PHYSICS
    • G10—MUSICAL INSTRUMENTS; ACOUSTICS
    • G10K—SOUND-PRODUCING DEVICES; METHODS OR DEVICES FOR PROTECTING AGAINST, OR FOR DAMPING, NOISE OR OTHER ACOUSTIC WAVES IN GENERAL; ACOUSTICS NOT OTHERWISE PROVIDED FOR
    • G10K11/00—Methods or devices for transmitting, conducting or directing sound in general; Methods or devices for protecting against, or for damping, noise or other acoustic waves in general
    • G10K11/16—Methods or devices for protecting against, or for damping, noise or other acoustic waves in general
    • G10K11/172—Methods or devices for protecting against, or for damping, noise or other acoustic waves in general using resonance effects

Definitions

  • the present invention relates to a method for broadband reduction of the sound radiated from a vibrating structural element.
  • the invention also relates to a sound-reducing panel construction for broadband reduction of the radiated sound.
  • Structure-borne sound results because vibrating constructions set into vibration the air in the vicinity of this construction, these vibrations being propagated through the air and perceived as noise.
  • Many techniques are known for bringing about a reduction in the vibrations of the air in the vicinity of the vibrating construction, and therefore for reducing the radiated sound.
  • the first field of application is the broadband reduction of the sound radiated by a vibrating construction which vibrates as a result of a mechanical excitation, for instance a motor which is connected mechanically to a housing.
  • the second field of application is the reduction of sound radiated by a vibrating construction which vibrates as a result of an acoustic excitation. Constructions must be envisaged here which are placed between the acoustic source and the listener, and thus have a sound- screening effect, for instance a wall between two rooms, an aircraft cabin which reduces the aerodynamic sound, a partition wall in a car between the engine and passenger space.
  • a number of types of construction are known with which the sound occurring in an enclosed space such as a cabin and caused by airborne sound or impact sound can be reduced. Most such constructions operate in accordance with the principle of sound absorption or at least of reducing the reflection of sound against the walls of the enclosed space.
  • the structural elements of a cabin can for instance be given a sound- absorbing form, for instance by being provided with Helmholtz resonators or quarter-wavelength resonators.
  • Helmholtz resonators or quarter-wavelength resonators A drawback of both types of resonator is that sound absorption can only be realized within a limited frequency band.
  • the American patent US 5 959 265 for instance describes a sound absorption-based system.
  • the system can absorb sound in a structural element such as a panel.
  • the panel is provided with a number of resonators with a length of a quarter wavelength of the sound to be reduced.
  • Standing waves which are phase-shifted by a half wavelength relative to the wave front reflected in the mouth region of the resonators interfere destructively with this wave front, and this results in a sound reduction.
  • These known quarter- wavelength resonators however also have a sound absorption which is limited to a very narrow sound frequency band, which is determined by the length of the resonator. Hardly any reduction occurs outside this narrow frequency band.
  • the untreated substrate is divided into characteristic regions and provided with weak radiating cells.
  • the outer solid element is directly connected to the vibrating structure and is referred to as the frame of the cell.
  • the frame of the cell is rigid so that the speed of the frame of the cell is roughly the same as the speed of the substrate.
  • the cell is connected to the frame of the cell via a flexible medium with a certain rigidity, thereby creating an enclosed cavity. This enclosed air volume and the flexible medium provide the cell with a determined compliance, whereby a mass spring system is created.
  • the source strength can hereby be reduced so that a certain degree of sound reduction can be effected.
  • a drawback of the system of weak radiating cells is that the system increases the source strength by a factor 100 at a single frequency, since the cell resonates in phase with the frame of the cell at this frequency. This means that at this frequency an enormous amplification of the sound is produced instead of a reduction in the sound.
  • a method for broadband reduction of the sound radiated by a vibrating structural element comprising of:
  • the lengths of the resonators are roughly equal to c o /2f c , which signifies here that the lengths (L) of the resonators have values which can vary between c o /4f c and 3c o /4f c ) with c o the sound velocity. At a length of exactly c o /2f c an optimal reduction is however obtained in most cases.
  • Such resonators will also be referred to hereinbelow as ⁇ /2- wavelength resonators.
  • the resonators take a tubular form, which produces a simple construction.
  • the resonators are prismatic tubes, i.e. the tubes have a practically constant cross-sectional surface along the respective lengths of the tubes. These latter tubes are relatively simple to manufacture.
  • the operation of the present invention is practically independent of the cross-sectional shape (round, square, rectangular, polygonal or any other random shape) of the resonators.
  • a slight curving of the resonators is also allowed. The curving does not reduce the effect of the resonators, or hardly so.
  • the resonators have an acoustically hard inner surface.
  • Acoustically hard in the sense of the present invention is understood to mean a surface having an absorption coefficient (GL) of less than 0.2.
  • said inner surface can take an acoustically absorbing form.
  • acoustically absorbing material such as for instance mineral wool or rock wool, is arranged in the resonator.
  • the resonator opening can also be sealed with a thin foil. In both embodiments undesired particles such as dust and the like are hereby prevented from being able to enter the resonators.
  • the method according to the invention enables a sound reduction in a wide frequency band
  • the method can also comprise of providing resonators of different length for the purpose of reducing the radiated sound level in respective wide frequency bands around respective centre frequencies
  • the resonators preferably have a constant cross-section so that they can be easily realized.
  • the cross-sections of the resonators can however also differ from each other.
  • the method comprises of providing a structural element comprising a honeycomb structure on which is provided an acoustically hard skin plate provided with perforations.
  • a structurally strong element can be provided easily and quickly.
  • the honeycomb structure and/or the skin plate are then also manufactured from aluminium, this has the advantage that the panel is resistant to corrosive environments, high temperatures and moisture.
  • the core of the honeycomb structure can also be manufactured from fibre-reinforced plastic, such as glass fibre or carbon fibre composites. In both cases the panels can hereby be made resistant to a moist and/or corrosive environment.
  • the method described herein not only comprises of reducing the radiated acoustic power when the structural element is acoustically excited, for instance when the structural element is used as partition wall and is irradiated with an airborne sound source.
  • the method can also comprise of reducing the radiated acoustic power when the structural element is mechanically excited, for instance when the structural element is set into vibration by a mechanical vibration source.
  • the structural elements can for instance be applied in the motor industry (panel between engine and cab, doors and roofs) , the aircraft industry (trim panels, cabin ceiling, cargo space ceiling) , domestic appliances (housing) , construction (lightweight silent walls, cleanrooms, dead rooms) , medical applications (sound reduction of MRI scanners), traffic (sound screens), as well as in industry and machine construction (housing or sound screens, turbines) .
  • a sound-reducing panel construction wherein the panel construction comprises a panel provided with an acoustically hard outer surface in addition to sound radiation-reducing means for broadband reduction around a centre frequency (f c ) to be selected of the sound radiated from the panel in vibrating state, wherein the sound radiation-reducing means comprise a number of resonators arranged in the panel and debouching in said hard outer surface of the panel, wherein the resonators have a length (L) of about the sound velocity (c 0 ) divided by twice the determined centre frequency (f c ) , and wherein the number of resonators and the dimensions of the resonators are embodied so as to provide a porosity ( ⁇ ) of the structural element, which is defined as the quotient of the cross-section (A r ) of the mouth of the resonators and the characteristic area (A c ) of the structural element, of between about 0.1 and 0.9.
  • ⁇ porosity
  • a panel construction wherein a resonator is formed by a tube which debouches into one or more further tube parts arranged adjacently of the tube.
  • This embodiment is preferably formed by a tube which is placed in a larger enclosed space.
  • the invention also relates to a vehicle, in particular an aircraft, provided with the panel construction according to the invention defined herein.
  • Figure 1 shows a perspective view of a first preferred embodiment of a sound-reducing panel according to the invention
  • Figure 2 shows a top view of the cross-section (area A r ) of the resonator and the characteristic region A c thereof;
  • Figure 3 is a schematic representation of the incident, reflected and transmitted sound;
  • Figure 5 shows a perspective view of a second preferred embodiment of a sound-reducing panel according to the invention.
  • Figure 6 shows a graph of the transmission loss as a function of the frequency for a second preferred embodiment of the invention.
  • Figure 7 shows a schematic cross-section of a further preferred embodiment of the invention.
  • Figure 1 shows a first preferred embodiment of sound- reducing panel 1, consisting of a top plate 2, for instance manufactured from aluminium or other suitable material, in which a large number of openings 4 are arranged.
  • Cylindrical resonators 3 provided with an acoustically hard base and preferably with an acoustically hard wall, connect to openings 4.
  • the resonators are in open connection with the vicinity via said openings 4.
  • all resonators have roughly the same length L.
  • the resonators have a length of 0.09 m. Other lengths of the resonators are of course also possible.
  • the choice of length (s) of the resonators is determined mainly by the centre frequency (f c ) around which the sound reduction must be realized.
  • the distribution of resonators 3 over plate 2 is shown in more detail in the enlargement of figure 2.
  • the area of resonators 3 in cross-section is indicated in the figure with the designation A r .
  • Around each of the resonators can be defined a region which is designated with the term characteristic region A c .
  • the upper plate 2 of panel 1 is provided with a large number of resonators, of which only sixteen resonators 3 are shown in figure 2.
  • the resonators are arranged uniformly over the surface of plate 2.
  • the resonators are arranged in irregular manner over the surface of plate 2.
  • the positions and/or the lengths of the different resonators are adapted to the dynamic properties of the plate.
  • Some parts of the construction (plate) can vibrate in different ways at different frequencies. At those frequencies where a part of the construction vibrates violently, resonators can be applied at that position which are designed for such frequencies.
  • Other parts of the construction (plate) can then be provided with resonators which are tuned to other frequencies at which these other parts vibrate violently.
  • the embodiment of the resonators and the positioning thereof is thus adapted subject to the properties of the different structural parts, i.e. depending on how the different structural parts vibrate per frequency range, in order to produce an optimal sound reduction of the sound radiated by the entire construction.
  • Figure 3 shows the incident sound wave (B 1 ) , the sound field (A 1 ) reflected from panel 2, and the transmitted sound wave (B 4 ).
  • the transmission loss is defined as 10*log ( JB 1 ZB 4 I 2 ) , wherein B 4 is the transmitted sound wave and B 1 the incident sound wave.
  • Figure 4 shows the transmission loss calculated using a one-dimensional model as a function of the frequency of the panel according to the invention.
  • Curve 1 shows the transmission loss as a function of the frequency when the porosity equals 0, i.e. when not a single resonator is arranged in the vibrating surface 2 and the structural element behaves as an isotropic panel.
  • the transmission loss is the transmission loss of a standard single plate, this transmission loss being determined in the shown frequency- range by the so-called mass law. This means that the sound reduction, and thereby the transmission loss in the panel increases by about 6 dB when the frequency is doubled.
  • the centre frequency f c is chosen to equal about 1573 Hz, which amounts to a resonator length L of 0.1 m. when resonators 3 of such a length are arranged in vibrating plate 2, there occurs an increase in the transmission loss, and therefore an increase in the sound reduction.
  • the porosity ⁇ up to about 0.1 the reduction is obtained close to both frequencies C 0 /4L, 3C 0 /4L, i.e. at about 786 Hz and 2360 Hz respectively.
  • a reduction is obtained over the whole frequency range, i.e.
  • the figure shows clearly that the transmission loss is greater than would be expected as a result of the mass law from a minimum frequency of about 800 Hz up to a maximum frequency of about 2100 Hz. Particularly in the range between 1700 and 1900 Hz an extra transmission loss of about 50 dB (80-30) can be realized.
  • Figure 4 shows that an additional transmission loss can also be realized at the higher harmonics, i.e. at for instance 4720 Hz.
  • the sound reduction to be achieved hardly depends on the cross-section A r of the resonator and the cross-sectional shape of the resonator, as long as the porosity of the panel is selected to be in the above stated correct range.
  • the resonators can also have other shapes at random, such as elliptic, triangular, rectangular or square, without noticeably changing the sound-reducing effect of the resonators.
  • the material of vibrating plate 2 and of the interior of resonators 3 preferably takes an acoustically hard form, i.e. with an absorption coefficient of less than 0.2. As long as the absorption coefficient is sufficiently low, any random material can in principle be used so that the panel can also function properly in extreme conditions, such as at high temperatures, high humidities and/or in corrosive environments .
  • Figure 5 shows a second preferred embodiment of the invention. In this embodiment the panel is constructed from a honeycomb structure 6 which is provided on two sides with skin plates 7 ' . A large number of perforations is arranged in one of the skin plates 7, 7' in the above stated manner. The honeycomb structure behind each of the holes now functions as a resonator.
  • FIG. 6 shows that relatively high transmission losses (compared to a panel without resonators, as represented by curve 1) and therefore a relatively large sound reduction can also be realized in such a honeycomb structure at for instance a porosity of 0.45.
  • Figure 7 shows an alternative embodiment of the present invention. Instead of being prismatic tubes, resonators are as it were folded back in this embodiment.
  • the folded resonator 10 comprises a first tubular part 11 which is arranged in plates 2,2', and to either side of which connect tubular parts 12 and 13.
  • the tube parts 12 and 13 provided on either side are closed off at about two-thirds of the thickness (d) of the whole panel using a partition wall 14 and 15 respectively.
  • Tube parts 12 and 13 can optionally be filled with absorption material.
  • the resonator mouth 17 is also sealed using a thin foil 16. This is embodied such that opening 17 is covered but the operation of the resonator in the relevant frequency range is not affected, or hardly so.
  • the advantage of the shown embodiment is that the total thickness of the panel defined between front plate 2 and rear plate 2' can be limited. When a tube length of about 10 cm is for instance necessary, it is possible to suffice with a thickness D of the panel of about 8 cm.
  • the configuration shown in figure 7 is realized by placing a tube in a space enclosed by walls, wherein some intermediate space remains between the outer end of the tube directed toward plate 2 ' and the inner side of plate 2'. Tube parts 12,13 are then formed by the space around tube 11.

Landscapes

  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Acoustics & Sound (AREA)
  • Multimedia (AREA)
  • Soundproofing, Sound Blocking, And Sound Damping (AREA)
EP06733033A 2005-04-29 2006-04-28 Breitband-schallreduktion mit akustischem resonator Withdrawn EP1875461A1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NL1028909A NL1028909C2 (nl) 2005-04-29 2005-04-29 Breedbandige geluidreductie met akoestische resonatoren.
PCT/NL2006/000228 WO2006118443A1 (en) 2005-04-29 2006-04-28 Broadband sound reduction with acoustic resonator

Publications (1)

Publication Number Publication Date
EP1875461A1 true EP1875461A1 (de) 2008-01-09

Family

ID=35896096

Family Applications (1)

Application Number Title Priority Date Filing Date
EP06733033A Withdrawn EP1875461A1 (de) 2005-04-29 2006-04-28 Breitband-schallreduktion mit akustischem resonator

Country Status (3)

Country Link
EP (1) EP1875461A1 (de)
NL (1) NL1028909C2 (de)
WO (1) WO2006118443A1 (de)

Cited By (1)

* Cited by examiner, † Cited by third party
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CN106124798A (zh) * 2016-06-14 2016-11-16 大连理工大学 一种基于核磁共振成像测量多孔介质内对流混合过程速度场的方法

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ITPI20100033A1 (it) * 2010-03-23 2011-09-24 Federico Nardini Dispositivo fonoassorbente particolarmente per barriere antirumore.
CA2868037C (en) * 2012-03-21 2016-06-21 Aero Systems Engineering, Inc. Silencer incorporating elongated members
US9378721B2 (en) 2013-11-06 2016-06-28 Zin Technologies, Inc. Low frequency acoustic attenuator and process for making same
US9697817B2 (en) 2015-05-14 2017-07-04 Zin Technologies, Inc. Tunable acoustic attenuation
US10657947B2 (en) 2017-08-10 2020-05-19 Zin Technologies, Inc. Integrated broadband acoustic attenuator
EP3715894A1 (de) 2019-03-28 2020-09-30 Koninklijke Philips N.V. Akustische abschirmung für ein magnetresonanztomographiemagnet
US11929053B2 (en) * 2019-09-11 2024-03-12 The Hong Kong University Of Science And Technology Broadband sound absorber based on inhomogeneous-distributed Helmholtz resonators with extended necks

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GB2111122B (en) * 1981-12-08 1985-03-27 Volzh Ob Proizv Silencer arrangement at the inlet of an i.c. engine air cleaner
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106124798A (zh) * 2016-06-14 2016-11-16 大连理工大学 一种基于核磁共振成像测量多孔介质内对流混合过程速度场的方法

Also Published As

Publication number Publication date
NL1028909C2 (nl) 2006-10-31
WO2006118443A1 (en) 2006-11-09

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