IP Library Granted Patent US 12694859
Granted Patent B2
US 12694859 · App. 18/287,760 · Granted Jul 28, 2026

Ultra-low frequency acoustic absorber

Inventors: Ping Sheng (Hong Kong, CN); Ho Yiu Mak (Hong Kong, CN); Xiaonan Zhang (Hong Kong, CN); Zhen Dong (Hong Kong, CN)
Assignee: THE HONG KONG UNIVERSITY OF SCIENCE AND TECHNOLOGY
G10K11/162B32B15/02G10K11/172
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Quick Facts
Patent No.
US 12694859
App. No.
18/287,760
Granted
Jul 28, 2026
Kind
B2
Abstract

The ultra-low frequency acoustic absorber ( 10 ) includes a hollow housing ( 12 ) having opposed first and second open ends ( 22, 24 ), and a plurality of metallic mesh layers ( 16 ) stacked within the housing ( 12 ). In order to secure the plurality of metallic mesh layers ( 16 ) within the hollow housing ( 12 ), first and second mesh covers ( 18, 20 ) may cover the first and second open ends ( 22, 24 ) of the hollow housing ( 12 ), respectively. At least one spacer ( 14 ) may be provided to form a gap between the housing ( 12 ) and a support surface, such as a hard wall (W) or the like. The at least one spacer ( 14 ) may have a length sufficient to space the ultra-low frequency acoustic absorber ( 10 ) at the position of optimal absorption based on an acoustic soft 10 boundary condition (ASBC).

Claims (38)

1 . An ultra-low frequency acoustic absorber, comprising:

a hollow housing having opposed first and second open ends;

a plurality of metallic mesh layers stacked within the hollow housing, wherein the plurality of metallic mesh layers are stacked longitudinally; and

at least one spacer extending longitudinally and having longitudinally opposed first and second ends, the first end thereof being secured to the second open end of the hollow housing, and the second end thereof being adapted for mounting on an external support surface, such that the hollow housing is longitudinally spaced apart from the external support surface,

wherein the at least one spacer has a length sufficient to space the ultra-low frequency acoustic absorber at a position of optimal absorption based on an acoustic soft boundary condition.

2 . The ultra-low frequency acoustic absorber as recited in claim 1 , wherein the hollow housing is cylindrical.

3 . The ultra-low frequency acoustic absorber as recited in claim 1 , wherein each of the metallic mesh layers has an average pore size of approximately 4×10 −4 mm 2 .

4 . The ultra-low frequency acoustic absorber as recited in claim 3 , wherein each of the metallic mesh layers has a thickness of approximately 0.2 mm.

5 . The ultra-low frequency acoustic absorber as recited in claim 4 , wherein the plurality of metallic mesh layers comprises 25 metallic mesh layers.

6 . The ultra-low frequency acoustic absorber as recited in claim 1 , further comprising:

a first mesh cover covering the first open end of the hollow housing; and

a second mesh cover covering the second open end of the hollow housing, wherein the plurality of metallic mesh layers are sandwiched between the first and second mesh covers, and wherein each of the first and second mesh covers has an average mesh opening size greater than the average pore size of each of the metallic mesh layers.

7 . The ultra-low frequency acoustic absorber as recited in claim 1 , wherein the at least one spacer has a length of between approximately 0.5 cm and approximately 1.5 cm.

8 . An ultra-low frequency acoustic absorber, comprising:

a hollow housing having opposed first and second open ends;

a plurality of metallic mesh layers stacked longitudinally within the hollow housing, wherein each of the metallic mesh layers has an average pore size of approximately 4×10 −4 mm 2 ; and

at least one spacer extending longitudinally and having longitudinally opposed first and second ends, the first end thereof being secured to the second open end of the hollow housing, and the second end thereof being adapted for mounting on an external support surface, such that the hollow housing is longitudinally spaced apart from the external support surface.

9 . The ultra-low frequency acoustic absorber as recited in claim 8 , wherein the hollow housing is cylindrical.

10 . The ultra-low frequency acoustic absorber as recited in claim 8 , wherein each of the metallic mesh layers has a thickness of approximately 0.2 mm.

11 . The ultra-low frequency acoustic absorber as recited in claim 8 , wherein the plurality of metallic mesh layers comprises 25 metallic mesh layers.

12 . The ultra-low frequency acoustic absorber as recited in claim 8 , further comprising:

a first mesh cover covering the first open end of the hollow housing; and

a second mesh cover covering the second open end of the hollow housing, wherein the plurality of metallic mesh layers are sandwiched between the first and second mesh covers, and wherein each of the first and second mesh covers has an average mesh opening size and rigidity greater than the average pore size and rigidity, respectively, of each of the metallic mesh layers.

13 . The ultra-low frequency acoustic absorber as recited in claim 8 , wherein the at least one spacer has a length sufficient to space the ultra-low frequency acoustic absorber at a position of an acoustic soft boundary condition.

14 . The ultra-low frequency acoustic absorber as recited in claim 13 , wherein the at least one spacer has a length of between approximately 0.5 cm and approximately 1.5 cm.

15 . A hybrid membrane resonator, comprising:

a housing having an open end and an opposed closed end; and

a decorated membrane resonator covering and sealing the open end of the housing, wherein a cavity is defined within the housing, between the decorated membrane resonator and the closed end of the housing, the closed end of the housing defining a reflecting back plate, and wherein the decorated membrane resonator comprises an elastic membrane and a platelet centrally secured to the elastic membrane,

wherein at least one hole is formed through a sidewall of the housing, the at least one hole being configured to create an acoustic soft boundary condition within the cavity and behind the decorated membrane resonator.

16 . The hybrid membrane resonator as recited in claim 15 , wherein the at least one hole comprises three holes.

17 . The hybrid membrane resonator as recited in claim 16 , wherein the three holes are angularly separated from one another by 120° around a circumference of the sidewall of the housing.

18 . The hybrid membrane resonator as recited in claim 17 , wherein each of the holes comprises a cylindrical passage formed through the sidewall.

19 . The hybrid membrane resonator as recited in claim 15 , wherein the at least one hole is sized and positioned relative to the housing to create the acoustic soft boundary condition.

20 . A hybrid membrane resonator, comprising:

a housing having an open end and an opposed closed end;

a decorated membrane resonator covering and sealing the open end of the housing, wherein a cavity is defined within the housing, between the decorated membrane resonator and the closed end of the housing, the closed end of the housing defining a reflecting back plate, and wherein the decorated membrane resonator comprises an elastic membrane and a platelet centrally secured to the elastic membrane; and

a Fabry-Pérot resonator mounted to an outer face of the closed end of the housing, a channel being formed through the closed end of the housing such that the cavity communicates with an interior of the Fabry-Pérot resonator.

21 . The hybrid membrane resonator as recited in claim 20 , wherein the Fabry-Pérot resonator has a folded, substantially spiral configuration.