Acoustic measuring device for reducing flow resonance
11808622 · 2023-11-07
Assignee
Inventors
Cpc classification
H04R2410/07
ELECTRICITY
B64F5/60
PERFORMING OPERATIONS; TRANSPORTING
G01H3/00
PHYSICS
International classification
G01H3/00
PHYSICS
B64F5/60
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An acoustic measuring device suitable for performing measurements on a surface in contact with a flow. This acoustic measuring device comprises an acoustic surface delimiting a cavity, which has an axis of revolution, which comprises a recess centered with respect to the axis of revolution, configured to house an acoustic sensor and which, in a longitudinal plane passing through the axis of revolution, follows a logarithmic profile which extends from a first edge separating the recess and the acoustic surface.
Claims
1. An acoustic measuring device configured to be added onto a surface in operation, comprising: an acoustic sensor; and an acoustic surface delimiting a cavity and having an axis of revolution substantially at right angles to the surface in operation; wherein the acoustic surface comprises a recess, centered with respect to the axis of revolution, configured to receive the acoustic sensor, wherein, in a longitudinal plane passing through the axis of revolution, the acoustic surface follows a logarithmic profile which extends from a first edge separating the recess and the acoustic surface, wherein the logarithmic profile is a natural logarithmic profile, any considered point of the logarithmic profile having a height in millimeters, a distance taken parallel to the axis of revolution separating the first edge and the considered point, such that H=(2/M)×Ln(D/Dmin), D corresponding to a diameter in millimeters of a circle passing through the considered point having for its center a point of the axis of revolution, Dmin being the diameter in millimeters of the recess, Ln corresponding to a natural logarithm function, H being the height of the logarithmic profile, and M being a constant, and wherein the acoustic measuring device comprises a peripheral zone that is substantially flat and at right angles to the axis of revolution, forming a ring all around the acoustic surface, the logarithmic profile extending to a second edge separating the acoustic surface and the peripheral zone.
2. The acoustic measuring device as claimed in claim 1, wherein at least one edge out of the first and second edges is a sharp edge.
3. The acoustic measuring device as claimed in claim 1, wherein the acoustic surface has a maximum height, corresponding to a distance taken parallel to the axis of revolution between the first and second edges, lying between 0.5 and 6 mm.
4. The acoustic measuring device as claimed in claim 3, wherein the second edge has a diameter of between 4 and 10 cm, wherein the recess has a diameter of between 2 and 10 mm, adjusted to a diameter of the acoustic sensor for there to remain only a small play between the recess and the acoustic sensor, and wherein the constant M is equal to Ln(Dmax/Dmin)×(2/Hmax) with a tolerance interval of +/−10%, Dmax being a diameter in millimeters of the second edge, Dmin being the diameter in millimeters of the recess, Hmax being the maximum height in millimeters of the acoustic surface, Dmax, Dmin and Hmax having determined values.
5. The acoustic measuring device as claimed in claim 1, wherein the second edge has a diameter of between 4 and 10 cm.
6. The acoustic measuring device as claimed in claim 1, wherein the recess has a diameter of between 2 and 10 mm, adjusted to a diameter of the acoustic sensor for there to remain only a small play between the recess and the acoustic sensor.
7. The acoustic measuring device as claimed in claim 1, wherein the acoustic measuring device comprises an acoustically transparent wall closing the cavity.
8. The acoustic measuring device as claimed in claim 1, wherein the acoustic measuring device comprises a support having a substantially flat first face, a second face, parallel to the first face, at which the cavity emerges, and a cylindrical peripheral face, the support comprising a peripheral setback positioned at an intersection of the second face and of the peripheral face and configured to house a wall onto which the acoustic measuring device is added.
9. An aircraft comprising at least one acoustic measuring device as claimed in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features and advantages will emerge from the following description of the invention, a description given purely by way of example, in light of the attached drawings in which:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) According to an embodiment that can be seen in
(6) As illustrated in
(7) The support 20 has a peripheral zone 26, substantially flat and at right angles to the axis of revolution A22, forming a ring all around the acoustic surface 22. This peripheral zone 26 is coaxial to the axis of revolution A22.
(8) According to a configuration illustrated by
(9) For information, the acoustically transparent wall 28 is a perforated sheet.
(10) The invention is not limited to this configuration. Thus, the acoustic measuring device 14 could be provided without an acoustically transparent wall 28. In this case, in operation, the acoustic measuring device 14 is positioned in such a way that the peripheral zone 26 is flush with the surface S12.
(11) The acoustic surface 22 comprises a recess 30 centered with respect to the axis of revolution A22, configured to receive the acoustic sensor 18. Thus, the acoustic sensor 18 is positioned substantially at the center of the acoustic surface 22. According to one configuration, the recess 30 is a hollow cylinder coaxial to the axis of revolution A22, having a diameter Dmin equal to or very slightly greater than the diameter of the acoustic sensor 18. For information, the diameter Dmin of the recess 30 is between 2 and 10 mm.
(12) Obviously, the invention is not limited to this form for the recess 30. More generally, the latter comprises a section adjusted to that of the acoustic sensor 18 for there to remain only a small play (less than a mm) between the recess 30 and the acoustic sensor 18.
(13) Depending on the case, the recess 30 can be blind or emergent and pass right through the support 20.
(14) According to a particular feature of the invention, in a longitudinal plane passing through the axis of revolution A22, the acoustic surface 22 follows a logarithmic profile 32 from the recess 30. This logarithmic profile 32 extends between a first edge 32.1 separating the recess 30 and the acoustic surface 22 and a second edge 32.2 separating the peripheral zone 26 and the acoustic surface 22. These first and second edges 32.1, 32.2 are centered on the axis of revolution A22. As illustrated in
(15) According to a feature, the logarithmic profile 32 is a natural logarithmic profile. Thus, any considered point P of the logarithmic profile 32 has a height H in millimeters, a distance taken parallel to the axis of revolution separating the first edge 32.1 and the considered point P, such that:
(16) H=(2/M)×Ln(D/Dmin), D corresponding to the diameter in millimeters of a circle passing through the considered point P having for its center a point of the axis of revolution A22, Dmin being the diameter in millimeters of the recess 30, Ln corresponding to the natural logarithm function and M being a constant.
(17) The acoustic surface 22 has a maximum height Hmax, corresponding to the distance taken parallel to the axis of revolution A22 between the first and second edges 32.1 and 32.2, of between 0.5 mm and 6 mm.
(18) The second edge 32.2 has a maximum diameter Dmax of between 4 and 10 cm, that is a function of the diameter Dmin of the first edge 32.1, of the maximum height Hmax and of the constant M.
(19) According to one configuration, the constant M=Ln(Dmax/Dmin)×(2/Hmax) with a tolerance interval of +/−10%, Dmax corresponding to the diameter in millimeters of the second edge 32.2 of the acoustic surface 22, Dmin corresponding to the diameter in millimeters of the recess 30 and Hmax corresponding to the maximum height in millimeters of the acoustic surface 22, Dmax, Dmin and Hmax having determined values.
(20) According to one embodiment, the diameter Dmin of the first edge 32.1 is substantially equal to 8 mm, the diameter Dmax of the second edge 32.2 is substantially equal to 52 mm, the maximum height Hmax is substantially equal to 6 mm and M has a value of the order of 0.64.
(21) According to another feature, at least one edge out of the first and second edges 32.1, 32.2 is a sharp edge.
(22) The support 20 has a substantially flat first face 20.1, a second face 20.2, parallel to the first face 20.1, at which the cavity 24 emerges, and a cylindrical peripheral face 20.3. The support has a height H20 (distance separating the first and second faces 20.1, 20.2) slightly greater than the maximum height Hmax of the acoustic surface 22. For information, H20=Hmax+1, H20 and Hmax being expressed in millimeters. The peripheral zone 26 has a width L26, a distance taken in a direction at right angles to the axis of revolution, of the order of 4 mm.
(23) According to one configuration, the support 20 comprises a peripheral setback 34 positioned at the intersection of the second face 20.2 and of the peripheral face 20.3 and configured to house the wall 12 in such a way that the first face 28.1 of the acoustically transparent wall 28 is flush with the surface S12 or the peripheral zone 26 is flush with the surface S12 in the absence of an acoustically transparent wall 28.
(24) The logarithmic profile 32 of the acoustic surface 22 makes it possible to reduce the resonance effects likely to pollute the acoustic measurements and obtain an angular response that is as flat as possible, of the order of +/−2 dB.
(25) While at least one exemplary embodiment of the present invention(s) is disclosed herein, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of this disclosure. This disclosure is intended to cover any adaptations or variations of the exemplary embodiment(s). In addition, in this disclosure, the terms “comprise” or “comprising” do not exclude other elements or steps, the terms “a” or “one” do not exclude a plural number, and the term “or” means either or both. Furthermore, characteristics or steps which have been described may also be used in combination with other characteristics or steps and in any order unless the disclosure or context suggests otherwise. This disclosure hereby incorporates by reference the complete disclosure of any patent or application from which it claims benefit or priority.