WO2005010863A1 - Acoustic window - Google Patents
Acoustic window Download PDFInfo
- Publication number
- WO2005010863A1 WO2005010863A1 PCT/US2004/017478 US2004017478W WO2005010863A1 WO 2005010863 A1 WO2005010863 A1 WO 2005010863A1 US 2004017478 W US2004017478 W US 2004017478W WO 2005010863 A1 WO2005010863 A1 WO 2005010863A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- window
- acoustic
- acoustic window
- septa
- core
- 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.)
- Ceased
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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
- G10K11/02—Mechanical acoustic impedances; Impedance matching, e.g. by horns; Acoustic resonators
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S181/00—Acoustics
- Y10S181/40—Wave coupling
- Y10S181/402—Liquid
Definitions
- the present invention relates to windows for the passage of desired acoustic waveforms, and specifically to such windows employed in submerged liquid service such as underwater oceanic service. More particularly, the invention relates to sonar windows such as domes for use on surface and submergible vessels in both the military and commercial arenas. Acoustic windows such as sonar domes for use in transmitting or receiving acoustic waveform signals in a liquid environment are well known in the art. Typically, these windows have consisted of a single thickness of a fiberglass composition optionally covered by a coating substance to minimize the fouling of surfaces of the window. Typically, the exterior surface of such windows is exposed to a body of free liquid such as an ocean, lake or tank.
- the interior surface of such windows conventionally has at least partially defined a chamber filled with water or another Liquid.
- the use of rigid high strength materials in particular to meet structural loading requirements, has tended to make ' ⁇ rming" sonar windows formed with such materials quite difficult.
- Windows such as sonar domes can be required to transmit acoustic energy having a frequency ranging from about 10 Hz to about 1.5 MHz. These frequencies correspond to wavelengths of from about 150 meters to about 0.001 meters in water, respectively, with the wavelengths being subject to some variation depending upon the material through which the waveform is being propagated.
- many known prior art acoustic windows are limited to use in a certain frequency range due to the above-described structural and acoustical choices made in design of the windows.
- sonar domes are not the sole use for acoustically transparent materials. Frequently, it is desired that acoustic waveform energy be transmitted through a generally flush window or covered aperture in a vessel hull. The same constraints that limit use of conventional sonar domes to a certain frequency range also limits the use of such windows. A number of efforts have been made to develop a sonar window, tunable to substantially reduce sound wave attenuation or distortion upon passage through the window, as well as sonar windows which reduce the reflective signals during passage of an acoustic waveform signal, by forming them from a plurality of materials. For example, U.S. Patent No.4,997,705 to Caprette, Jr.
- a laminate acoustic window for sonar systems having a pair of septa sandwiching a core, where the core is made of a low shear high elongation-to-break material and the septa are formed of a high modulus material.
- the windows of the invention are characterized by unusual freedom from attenuation loss over a wide, albeit generally low, frequency range.
- the windows are substantially self-damping and avoid thereby a generation of significant quantities of deleterious noise due to self- generated vibration and transmitted vibration.
- Caprette focuses on normal incidence angles, which is useful and broad since virtually all acoustic window applications include some normal incidence waveform transmission. In practice, however, most wave form transmissions occur at non-normal incidence angles, especially when the windows are curved.
- Caprette does not teach or suggest how to configure an acoustic window to achieve uniform (e.g. consistent within ⁇ 1 dB) transmission loss across a range of incidence angles and frequencies.
- Other compositions include U.S. Patent No. 4,770,267 to Hauser which teaches a sandwich construction where the central layer is a rigid core composed of glass fibers impregnated with resin and the peripheral layers are a plurality of woven webs of carbon fiber impregnated with thermosetting epoxy resin, but Hauser does not use or rely on the use of an elastomeric core material.
- the present invention is the result of the discovery that a composition acoustic window for an acoustic waveform passage having a generally uniform (less than about ⁇ 3 dB variation, preferably less than ⁇ l dB variation between +40° and -40° angles of incidence at a given frequency) non-normal acoustic performance can be achieved from a composition formed from at least one core layer and at least two septa, where the core layer is a material having a generally low-acoustic-impedance, a static shear modulus between about 1.0 psi (0.007 MPa) and about 15,000 psi (103 MPa), a transverse (or through-thickness) sound, velocity for the acoustic waveform of between about 700 and about 2200 meters per second, a transverse (or through-thickness) acoustic impedance of less than or equal to 4 x 10 6 kilograms per square meter-second, and a shear loss factor of greater than
- ⁇ M is the wavelength (meters) of the acoustic wave in the material and is calculated as the sound velocity at normal incidence (meters per second) of the material divided by the frequency (hertz) of the sound.
- the material is the septa.
- the thickness of the window is measured similarly, except the weighted average sound velocity of the window is used and it is represented by ⁇ w - Ideally, the thickness of the composition or the window will be less than 1.0 ⁇ w , with less than 0J5 ⁇ being preferred.
- the septa can be a material such as a plastic, a metal, or a composite material, with a carbon fiber reinforced epoxy composite being preferred.
- the septa have a tensile modulus of more than 0.5 x 10 6 psi to maintain the window shape under structural loading.
- the septa with significantly higher tensile and compression moduli are necessary to meet structural requirements.
- the generally uniform non-normal acoustic performance can be achieved over incidence angles of between -40° and +40°, where the angle of incidence is the angle between a plane which is the tangent to the window surface and a plane which is normal to the wave propagation vector.
- the ⁇ referred performance can be achieved over incidence angles of between -60° and +60°, with between -80° and +80° being further preferred.
- Acoustic windows of the present invention provide a waveform passage that can be utilized in a variety of acoustic window applications such as sonar domes and windows formed in vessel hulls.
- Fig. 1 is a cross-sectional view of an acoustic window in accordance with the present invention.
- Fig. 2 is a graphical representation comparing the insertion loss at various incidence angles versus frequency of a rigid composition plate having a near-perfect impedance match with water;
- Fig. 3 is a graphical representation comparing the calculated insertion loss, at normal incidence in 5°C seawater, as a function of frequency for acoustic windows made in accordance with the present invention, and comparing them with various laminates;
- Fig. 1 is a cross-sectional view of an acoustic window in accordance with the present invention.
- Fig. 2 is a graphical representation comparing the insertion loss at various incidence angles versus frequency of a rigid composition plate having a near-perfect impedance match with water
- Fig. 3 is a graphical representation comparing the calculated insertion loss, at normal incidence in 5°C seawater, as a function of frequency for acoustic windows made in accordance with
- Fig. 4 is a graphical representation comparing typical insertion loss as a function of the angle of incidence of acoustic windows made in accordance with the present invention and prior art composition materials; and Fig. 5 is a graphical representation of transmission loss or attenuation of an acoustic wave form signal as a function of frequency.
- the present invention provides a window for the passage of acoustic waveforms.
- the window of the invention primarily is designed to have improved structural properties while preserving the acoustic properties of the window.
- the resulting window of the present invention can be designed for generally uniform insertion loss at a range of incidence angles and for acoustic tuning in a plurality of frequency ranges.
- the acoustic window 1 consists of at least three layers, including at least two septa 2 and 4 and at least one core 3, but each septa is made using a material meeting the performance criteria and preferably is made using at least one ply of a carbon fiber/ epoxy matrix composition.
- the window is configured to separate sound wave transmitting or receiving equipment from an open liquid such as seawater, through which it is desired sound signals be transmitted or received.
- domes can have any suitable or conventional shape such as generally ellipsoidal, hyperbolic, circular and the like.
- acoustic window can simply conform to a curvilinear portion of a vessel hull surface and thereby resemble in relatively flush appearance the installation of some windows in buildings and other land-based structures.
- the particular physical form taken by such a window in accordance with the invention will be, in part, a function of the particular acoustic waveform transmission/reception function to be provided by the acoustic waveform transmitter or receiver equipment positioned behind the window or within an enclosure at least partially defined by window.
- FIG. 1 illustrates the preferred embodiment, in which a core layer is sandwiched by two septa layers, with optional coatings on each septum.
- a secondary consideration used in choosing the material is the properties of acoustic clarity and freedom from acoustic distortion and attenuation associated with the particular material employed.
- the choice of materials for septa and core is limited to generally "hard” or “rigid” materials that contrast with the relatively “soft” core materials, which results in a window capable of being designed for tuning in a plurality of frequency ranges.
- the septa preferably will be comprised of at least one ply of a material or materials that will provide the desired performance.
- the septa could be composed of metals, such as aluminum or titanium, plastics which provide high strength, or fiber composition materials.
- the material is preferably a carbon epoxy composition, but other fibers such as graphite can be used, and the compositions may be formed in suitable or conventional well known fashion.
- One technique is to form the composition by laying up pre-pregged carbon fabric.
- Another technique is to use a fiber-resin blend that has been impregnated with an epoxy binder.
- the plies of graphite/epoxy are laid up and cured under pressure in a known manner to form the septa layer.
- the core may be co-cured with the septa or bonded after the septa are cured.
- Another technique is a resin transfer molding or vacuum resin transfer molding process, in which dry fibrous performs are placed in a mold cavity or vacuum bag and then resin is transferred into the cavity by pressure or vacuum.
- Other fibers that could be used include glass fibers, ceramic fibers, carbon fibers, aramid fibers, polyester fibers, graphite fibers, mineral fibers, metal fibers, and combinations thereof.
- the resin binders that can be employed include thermosetting and thermoplastic polymers, such as epoxies, polyesters, vinyl esters, fluoropolymers, nylons, rubber toughened epoxies, or combinations thereof.
- the septa for the window preferably have an ultimate strength of more than 1,000 pounds per square inch (psi), preferably more than 10,000 psi, and further, each preferably has a transverse sound velocity for the acoustic waveforms being transmitted of between about 1400 and about 3000 meters per second.
- the preferred septa material is a quasi-isotropic carbon fiber-reinforced epoxy prepreg laminate, which has a compression strength of about 70 ksi and a sound velocity of about 2650 m/s.
- the core is formed of a material having a static shear modulus of between about 1.0 psi (0.007 MPa) and about 15,000 psi (103 MPa), and preferably the core has a transverse sound velocity, in a direction of the thickness of the core, for the acoustic waveforms being transmitted of between about 700 and about 2200 meters per second, preferably 1200 to 1800 m/sec.
- the core material is possessed of a shear loss factor of greater than 0.02 and the transverse velocity propagation characteristic for the acoustic wave form being transmitted through the window averages between about 1200 and about 2500 meters per second.
- the core has a transverse acoustic impedance of less than 4 x 10 6 kg/m 2 - sec. It is preferred that the core be possessed of a transverse velocity propagation characteristic for the acoustic wave form being passed through the core closely approximate that of the liquid medium or lower in which the window is immersed. As an illustration, where the medium liquid is water, the transverse velocity propagation characteristic preferably is about 700 to 2200 m/sec.
- the core is formed of a material such as a natural or synthetic rubber or other elastomer, and may be formed of castable, filled or unfilled materials.
- Synthetic rubbers suitable for use in the practice of the instant invention include styrene-butadiene and acrylonitrile based rubbers, the latter being commonly known in the industry as nitrile rubbers, butyl rubbers, and chlorinated rubbers such as Neoprene ® .
- elastomers and polymers having utility in the practice of the invention include polyurethanes, polybutadienes, polyisoprenes, acrylic-copolymeric rubbers, EPDMS (ethylene propylene based polymers), polychloroprene, fluoropolymers, polyolefins such as polyethylene and polypropylene, polystryrene, high-impact polystryrene, and polymethyl pentene (or 4- methyl pentene-1), which is a linear, isotactic polyolefin sold by Goodfellow Cambridge Limited as TPX ® polymer, has a density of 0.83 grams per cubic centimeter, and a specific gravity of about 0.84.
- rubber what is meant is a vulcanized, or cross-linked rubber made according to suitable or conventional techniques.
- elastomer what is meant is a material possessed of an ability to recover at least in part a former figure or shape upon removal of a figure or shape distorting force.
- Castable polymers may be filled employing suitable or conventional materials. As an illustration, carbon black or glass fibers may be used as filler materials.
- Castable filled or unfilled synthetic polymers suitable for use in the practice of the instant invention include polyurethanes and so-called reactive liquid polymers like those available from Noveon, Inc. under the designations HYCAR ® .
- the core is preferably a custom elastomer formulated for the specific application.
- the preferred core elastomer will minimize sound velocity, specific gravity, insertion loss, dynamic shear modulus, dilatational loss factor while maximizing shear loss factor, static shear modulus and durability.
- the rubbers and elastomers employed in the practice of the invention forming the core may include a filling agent.
- This filling agent which may be present in a quantity of between zero and about 50 parts per hundred weight of elastomer or rubber and, generally is present in a quantity of between about 15 and 40 parts per hundred weight of elastomer or rubber.
- the filling agent may be a particulate such as carbon black, glass microspheres or microbeads or may be a fiber like additive such as mineral, polyester, polyolefin, polyaramid, cellulose, polyamides and polyvinyls such as polyvinyl alcohol (1 mrn 6 denier).
- the use of KETJEN ® commercially available carbon black in natural rubber at 40 parts carbon black per hundred parts natural rubber produces a core having a Young's modulus of 2400 psi.
- the reinforcing material can be a material composed of reinforcing fibers, such as continuous or discontinuous fibers, which will be encapsulated in the matrix material.
- Reinforcing fibers may include glass fibers, carbon fibers, graphite fibers, mineral fibers, metallic fibers, quartz fibers, chopped fibers, ceramic fibers, silicon carbide fibers, stainless steel fibers, titanium fibers, nickel alloy fibers, polymeric fibers, aramid fibers, cellulose fibers, basalt fibers, alkaline resistant glass fibers and/or other fibers known to those knowledgeable in the arts.
- Reinforcing fibers may be in many forms, including yarns, tows, whiskers, continuous fibers, short fibers, woven fabrics, knitted fabrics, non- woven fabrics, random mats, felts, braided fabrics, wound tows, and/or other forms known to those knowledgeable in the arts.
- the core and septa compositions may incorporate a wide variety of filler materials commonly used by those knowledgeable in the art.
- filler materials such as ceramic powders, mineral powders, silicon carbides, silicon nitrides, silicates, aluminum silicates, sodium aluminum silicates, potassium aluminum silicates, carbon, carbon black, organic fibers, inorganic fibers, polymeric fibers, carbon fibers, cellulose fibers, ceramic fibers, mineral fibers, waxes, oils, molybdenum and its compounds, or other fillers known to those knowledgeable in the arts.
- the filler materials also could be spheres such as microspheres, macrospheres, hollow and/or solid spheres, and /or cylindrical, flat and/or irregular or regular shaped particles.
- the core and the septa can be bonded by techniques known in the art.
- the lamination can be accomplished by adhesive techniques or polymeric cross-linking techniques such as vulcanization or other chemical cross-linking.
- the surfaces can be joined uncured and then be cured together, as is preferred, or they can be preformed and then joined. It may be desirable to pre-treat the surfaces before bonding, such as by using a chlorinated solvent, xylene, benzene, or toluene, to activate the surface or facilitate bonding, or to use an appropriate adhesive composition such as epoxy adhesive, polyurethane adhesive, solvated rubber, solvated inorganic salts, acrylic adhesives, or the like, all of which are known in the art.
- the present invention is useful as a cover or a barrier to protect ultrasonic or sonar equipment from the environment and is especially useful when the environment is, for example, seawater. It can be shaped into curved or dome shapes during the bonding step, as is conventional in the art, or it can be used as a planar window. So, the window can be used in ocean or oil exploration to protect ultrasonic or sonar equipment, in flaw detection apparatus used in non-destructive testing, and the like.
- the septa and core together, that is, the sandwich will define a thickness which preferably is less than 1.0 ⁇ w , with less than 0.75 ⁇ w being further preferred.
- the wavelength or ⁇ (meters) of a material at a given frequency is the length of an acoustic wave traveling through the material at normal incidence, and is calculated as the sound velocity at normal incidence of the material or the weighted average sound velocity of the window (meters per second) divided by the frequency (hertz) of the sound.
- Each septum will have a thickness of less than 0.1 ⁇ u, preferably less than 0.05 ⁇ .
- the acoustic composition in accordance with the present invention has exceptional and unexpected acoustic performance, including the following: • Low insertion loss over a wide range of frequency and angles; • Exceptionally high strength vs. Insertion Loss Ratio over a wide range of frequency and angles; and • Exceptionally high stiffness vs.
- Insertion Loss Ratio over a wide range of frequency and angles can be varied in that there can be more than one core.
- the window will comprise a single core to which is adhered, using an adhesive layer on either side of the core, septa comprised of at least one layer of carbon epoxy.
- Other configurations could be a two core structure in which two cores are bonded to a ply or plies of graphite epoxy using adhesive layers and that structure, in turn, is bonded to septa to form multilayer designs.
- a rubber layer may be applied to the external surface of the window without significantly degrading insertion loss.
- An acoustic window was made by assembling carbon/epoxy skins or septa over an elastomeric core.
- the window was trimmed, bolt holes were drilled, coated metallic sleeves were bonded in each bolt hole to further protect the bolts from galvanic corrosion, and the exposed carbon fibers were sealed with filled epoxy resin for galvanic insulation. Finally, the window was primed and painted with ultraviolet resistant polyurethane paint to produce a finished window.
- the carbon/epoxy lamina material properties were as follows: • Specific Gravity: 1.6 • Sound Velocity (through-thickness): 2644 m/s • Sound Velocity (in-plane): Unknown • In-Plane Young' s (XX) Modulus: 8 Msi (74.5 GPa) • Through-thickness Tensile (ZZ) Modulus: (estimated to be 1.0 Msi (6.9 GPa)) • In-Plane (XY) shear Modulus: 0J5 Msi (5.2 GPa) • Through-thickness (XZ and YZ) Shear Modulus: 0J9 Msi (5.4 Gpa) o Shear Loss Tangent: (estimated to be 0.01) • Dilatational Loss Tangent: (assumed to be zero) * Ply orientation : Quasi-isotropic
- the core elastomer properties were as follows: 10°C Properties Specific Gravity: 1.
- Figure 2 graphically shows he insertion loss of a 40 cm x 40 cm x 1.9 cm fluoroepoxy composition panel at 22° C temperature and 345 kPa pressure, as a function of frequency at various angles of incidence.
- the acoustic medium is freshwater, and the window has a nearly perfect impedence match (sound velocity match is within 0.1% and the density match is within 3.4%) within the surrounding water.
- the expected insertion loss is very low (i.e., less than 1.0 db) at normal incidence across a wide frequency range. However, at non-normal incidence angles severe insertion, severe insertion loss spikes appear (i.e., sharp changes in insertion loss over a generally narrow range of angle).
- Figure 3 shows the calculated insertion loss at normal incidence in 5°C seawater for a variety of monoliths as compared to the present invention.
- Figure 4 graphically represents the dramatic Insertion Loss benefits of a sandwich configuration in accordance with the present invention compared to prior art materials at higher frequencies. Further, the configuration of the present invention can be tuned to optimize performance at specific frequency ranges by varying the composition of the core and/or the thickness of the core.
- Panel 1 is a composite sandwich in accordance with the present invention
- Panel 2 is a composite sandwich with a "Rigid" Polymeric Core Material
- Panel 3 is a monolithic window made from Kevlar® fibers and an epoxy binder.
- Panel 4 is a window representative of the disclosure of Caprette (US Patent No. 4,997,705)
- the insertion loss of Panel 1 is essentially uniform between -40° and +40° within the 1 dB resolution of the measurements and the plots. However, all other panels have a severe insertion loss spikes at discreet angles.
- Both Panel 1 and Panel 2 have 0.11 -inch thick carbon/epoxy septa.
- the core materials of Panels 1 and 2 have similar acoustic impedance and thickness.
- the Panel 2 IL spike is attributed to the primary differences between Panel 1 and Panel 2, which are the core shear modulus and the core shear loss factor.
- the elastomeric core of the present invention in Panel 1 has a static shear modulus of approximately 1600 psi and a shear loss factor of 0.15.
- the polymeric core in Panel 2 has a high impact polystyrene core, a static shear modulus of approximately 50,000 psi, and a loss factor of 0.01.
- the Panel 3 IL spike is attributed to the thick structural layer and the rigid shear properties since it is a monolithic aramid fiber/epoxy composition being about 0.75 inch thick and has an interlaminar shear modulus of approximately 500,000 psi and a shear loss factor of about 0.01.
- Panel 4 Since Panel 4 has a soft core (static shear modulus 1200 psi) with a high shear loss factor (approximately 0.2), the Panel, the Panel 4 LL spike is attributed to the thick septa.
- Panel 4 is a composition having a natural rubber core and with two 0.25- inch thick fiberglass septa formed from glass fabric pre-pregged with epoxy, in accordance with Example 1 of Caprette.
- the acoustic literature indicates a relationship between window thickness and the threshold frequency at which Insertion Loss (IL) spikes appear.
- Caprette does not teach how to achieve angular uniformity, some rubber windows, fiberglass/elastomer/fiberglass sandwich windows and aramid composition/elastomer/aramid composition sandwich windows can have good angular uniformity at lower frequencies. Caprette does not teach that the septum thickness becomes critical to achieve angular uniformity as structural requirements and/or frequencies increase. Although Caprette discloses carbon compositions can be used as septum material, Caprette does not teach what is necessary to achieve angular uniformity. The present invention is the result of the discovery that carbon compositions properties (such as high compression strength, high compression stiffness and low impedance) enable thin-walled septa ideal for uniform non-normal waveform transmission.
- carbon compositions properties such as high compression strength, high compression stiffness and low impedance
- the septum thickness, the core shear loss factor and the core shear modulus are critical mechanisms for achieving angular LL uniformity and reducing the amplitude of the insertion loss spikes or "horns".
- the shear loss factor is defined as the ratio of the viscous component (G") over the elastic component (G') of the dynamic (or complex) shear modulus. Acoustic analysis indicates that increasing the shear loss factor dramatically reduces the amplitude of the transmission loss horns. In the preferred configuration, changing the shear loss factor from 0.02 to 0.15 reduced the peak transmission loss horn amplitude from 20 dB to 1 dB.
- the fiberglass core configurations envisioned by Hauser, and represented by Panel 2 in Figure 4 will tend to have high transmission loss horns, especially at high frequencies. It should be noted that the ideal core material considers both shear loss factor and dilatational loss factor, because a high dilatational loss factor increases transmission loss and is thus undesirable.
- the dilatational loss factor is defined as the ratio of the viscous component (B") over the elastic component (B') of the dynamic (or complex) Bulk modulus. To minimize insertion loss at normal incidences, the preferred thickness of the composite window will be less than 0J5 ⁇ to avoid the second resonance peak shown in Fig. 5.
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- Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Acoustics & Sound (AREA)
- Multimedia (AREA)
- Soundproofing, Sound Blocking, And Sound Damping (AREA)
- Measurement Of Velocity Or Position Using Acoustic Or Ultrasonic Waves (AREA)
Abstract
Description
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Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2004260378A AU2004260378A1 (en) | 2003-07-09 | 2004-06-03 | Acoustic window |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/616,179 US6831876B1 (en) | 2003-07-09 | 2003-07-09 | Acoustic window |
| US10/616,179 | 2003-07-09 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2005010863A1 true WO2005010863A1 (en) | 2005-02-03 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2004/017478 Ceased WO2005010863A1 (en) | 2003-07-09 | 2004-06-03 | Acoustic window |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US6831876B1 (en) |
| AU (1) | AU2004260378A1 (en) |
| WO (1) | WO2005010863A1 (en) |
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| FR2683969A1 (en) * | 1991-11-15 | 1993-05-21 | Thomson Csf | SEALING MEMBRANE FOR UNDERWATER DEVICE, PARTICULARLY FOR UNDERWATER ACOUSTIC DEVICE, AND DEVICE COMPRISING SUCH A MEMBRANE. |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2960175A (en) * | 1946-06-06 | 1960-11-15 | Edwin M Mcmillan | Laminated acoustic window |
| US3858165A (en) * | 1970-07-29 | 1974-12-31 | Haveg Industries Inc | Acoustical window for sonar systems |
| US4784898A (en) * | 1987-10-13 | 1988-11-15 | The B. F. Goodrich Company | High sonar transmission composition |
| US5276658A (en) * | 1992-11-19 | 1994-01-04 | The United States Of America As Represented By The Secretary Of The Navy | Acoustic window |
-
2003
- 2003-07-09 US US10/616,179 patent/US6831876B1/en not_active Expired - Lifetime
-
2004
- 2004-06-03 AU AU2004260378A patent/AU2004260378A1/en not_active Withdrawn
- 2004-06-03 WO PCT/US2004/017478 patent/WO2005010863A1/en not_active Ceased
Patent Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2430013A (en) * | 1942-06-10 | 1947-11-04 | Rca Corp | Impedance matching means for mechanical waves |
| US3426725A (en) * | 1967-07-07 | 1969-02-11 | Simonsen & Mustad As | Sonar systems in vessels |
| US4770267A (en) * | 1985-10-04 | 1988-09-13 | Thomson-Csf | Sonar dome |
| EP0460246A1 (en) * | 1986-05-21 | 1991-12-11 | The B.F. Goodrich Company | Window for acoustic wave form and method for making |
| EP0274685A2 (en) * | 1986-12-15 | 1988-07-20 | Krupp Atlas Elektronik Gmbh | Cover for a hydrophone system |
| FR2683969A1 (en) * | 1991-11-15 | 1993-05-21 | Thomson Csf | SEALING MEMBRANE FOR UNDERWATER DEVICE, PARTICULARLY FOR UNDERWATER ACOUSTIC DEVICE, AND DEVICE COMPRISING SUCH A MEMBRANE. |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11064292B2 (en) | 2016-03-23 | 2021-07-13 | The Yokohama Rubber Co., Ltd. | Acoustic transmission member and method of designing same |
Also Published As
| Publication number | Publication date |
|---|---|
| AU2004260378A1 (en) | 2005-02-03 |
| US6831876B1 (en) | 2004-12-14 |
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