IP Library › Granted Patent US 12,315,485
Granted Patent B2
US 12,315,485 · App. 17/859,934 · Granted May 27, 2025

Metamaterial design with perforated nozzles for acoustic noise reduction

Inventor: Brittany Consuegra Griffin (Huntsville, AL)
Assignee: United States of America as Represented by The Secretary of the Army
G10K11/162G10K11/04G10K11/172
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,315,485
App. No.
17/859,934
Granted
May 27, 2025
Kind
B2
Abstract

An acoustic-metamaterial acts as a sound reducing filter in that the level of sound that exits the structure is much less than the magnitude of sound that enters the structure. In forming the structure, modular stages of a given geometry are stacked upon one another to create a cell. Each stage of the cell is provided with a nozzle that is acoustically connected to the nozzles of other stages of the cell. The stages have chambers that are positioned radially or laterally outside of the respective nozzles, with the chambers of the cell being acoustically connected to one another. An amalgamation of cells are arranged in an adjacent formation, with chambers of the cells being acoustically connected to one another for purposes of protecting items, components and people from destructive levels of sound.

Claims (38)

1. An acoustic-metamaterial structure for diminishing acoustic noise, comprising:

a plurality of cells with each cell of said plurality of cells having a first stage and a second stage stacked upon one another;

said first stage of said each cell having a first-stage top surface, a first-stage bottom surface and at least three first-stage planar sidewalls that connect to the first-stage top and bottom surfaces of said each cell;

the first stage of said each cell has a first-stage nozzle that extends from the first-stage top surface through the first-stage bottom surface;

a plurality of first-stage chambers defined by first-stage chamber-forming walls connecting to the first stage top surface and first stage bottom surface are located in said each cell, said plurality of first-stage chambers being positioned radially outward from said first-stage nozzle, with apertures in a first-stage-nozzle sidewall being located in a middle region between the first-stage top surface and first-stage bottom surface acoustically connecting the first-stage nozzle to the plurality of first-stage chambers;

said second stage of said each cell has a second-stage top surface, a second-stage bottom surface, and at least three second-stage planar sidewalls that connect to the second stage top and bottom surfaces;

the second stage of said each cell has a second-stage nozzle that extends from the second-stage top surface through the second-stage bottom surface;

a plurality of second-stage chambers defined by second-stage chamber-forming walls connected to the second-stage top surface and second-stage bottom surface are located in the second stage of said each cell, said plurality of second-stage chambers being positioned radially outward from said second-stage nozzle, with apertures in a second-stage nozzle sidewall being located in a middle region between the second-stage top surface second stage bottom surface and acoustically connecting the second-stage nozzle to the plurality of second-stage chambers;

each of said plurality of chambers of said first stage is provided with an outer chamber passage that extends through the first-stage bottom surface;

each of said plurality of chambers of said second stage is provided with an outer chamber passage that extends through the second-stage top surface, with each outer chamber passage of said second-stage top surface directly connecting and aligning with a corresponding outer chamber passage in the bottom surface of said first stage;

each of the at least three first-stage planar sidewalls of said each cell makes a flush connection with an adjacent first-stage planar sidewall of a corresponding adjacent cell, with each of the at least three first-stage planar sidewalls of said each cell having an aperture directly connecting and aligned with an aperture of the adjacent first-stage planar sidewall of the corresponding adjacent cell; and

each of the at least three second-stage planar sidewalls of said each cell makes a flush connection with a respective adjacent second-stage planar sidewall of a corresponding adjacent cell, with each of the at least three second-stage planar sidewalls of said each cell having an aperture directly connecting with and aligned with an aperture of the respective adjacent second-stage planar sidewall of the corresponding adjacent cell.

2. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

said plurality of cells form an amalgamation of cells.

3. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

said first-stage nozzle of said each cell is cylindrical in shape.

4. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

said second-stage nozzle of each cell is conical in shape.

5. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 2 , wherein:

said amalgamation of cells form and surround an inner chamber.

6. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

said first stage of said each cell is stacked upon the second stage of said each cell such that the bottom surface of said first stage of said each cell is flush with and connects to the top surface of said second stage of said each cell.

7. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

each of the first-stage chamber-forming walls connect to a respective first-stage sidewall that connects to a first-stage separating wall that separates respective first-stage inner chambers from respective first-stage outer chambers.

8. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 7 , wherein:

a passage in the first-stage separating wall acoustically connects the respective first stage outer chambers with the respective first-stage inner chambers.

9. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

each of the second-stage chamber-forming walls connects to a respective first-stage sidewall that connects to a second-stage separating wall that separates respective second-stage inner chambers from respective second-stage outer chambers.

10. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 9 , wherein:

a passage in the second-stage separating wall of each cell acoustically connects the respective second-stage outer chambers with the respective second- stage inner chambers.

11. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 8 , wherein:

a passage in the first-stage separating wall acoustically connects the respective first-stage outer chambers with the respective first-stage inner chambers.

12. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

each said cell has six first-stage sidewalls and six second-stage sidewalls forming a hexagonal structure connecting to identically shaped adjacent cells to form an amalgamation.

13. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

each cell of said plurality of cells has an initial stage having an initial stage nozzle that connects to the first-stage nozzle of the first stage.

14. The acoustic-metamaterial structure for diminishing acoustic noise according to claim 1 , wherein:

said each cell has respective inner passages connecting the respective inner chambers of the first stage with the respective inner chambers of the second stage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2025
From: GRIFFIN, BRITTANY CONSUEGRA
To: GOVERNMENT OF UNITED STATES AS REPRESENTED BY SECRETARY OF THE ARMY
Reel/Frame 070918/0238 →
Continuity (2)
Provisional Application 63220541 · Jul 11, 2021
Related Publication 20230010032A1 · Jan 12, 2023
References Cited (22)
US 11835315B2 · Lo · 2023 [cited by examiner]
US 20160071507A1 · Kim · 2016 [cited by examiner]
CN 106205590A · 2016 [cited by examiner]
JP H08183122 · 1996 [cited by examiner]
WO WO2021194419A1 · 2021 [cited by examiner]
Machine Translation of CN-106205590-A (Year: 2016). [cited by examiner]
Machine translation of JPH08183122 (Year: 1996). [cited by examiner]
S. Beeby, G. Ensell, M. Kraft and N. White, MEMS Mechanical Sensors, Norwood, MA: Artech House, Inc, 2004. [cited by applicant]
S. Khazaaleh, G. Korres, M. Eid, M. Rasras and M. F. Daqaq, “Vulnerability of MEMS Gyroscopes to Targeted Acoustic Attacks,” IEEE Access, vol. 7, 2019. [cited by applicant]
T. Trippel, O. Weisse, W. Xu, P. Honeyman and K. Fu, “WALNUT: Waging Doubt on the Integrity of MEMS Accelerometers with Acoustic Injection Attacks,” IEEE European Symposium on Security and Privacy, 2017. [cited by applicant]
Y. Son, H. Shin, D. Kim, Y. Park, J. Noh, K. Choi, J. Choi and Y. Kim, “Rocking Drones with Intentional Sound Noise on Gyroscopic Sensors,” USENIX Security Symposium, vol. 24, 2015. [cited by applicant]
A. Boardman, “Pioneers in metamaterials: John Pendry and Victor Veselago,” Journal of Optics, vol. 13, No. 2, 2011. [cited by applicant]
G. Ma and P. Sheng, “Acoustic metamaterials: From local resonances to broad horizons,” American Association for the Advancement of Science, 2016. [cited by applicant]
K. J. M. Bishop, “Acoustic Metamaterials, Living Bandgaps,” Nature Materials, vol. 16, pp. 786-787, 2017. [cited by applicant]
F. Zhang, G. Flowers, E. Perkins, R. Dean, D. Marghitu and J. Hung, “Metalenses, Acoustic Metamaterials: Air Permeable Super Sound Attenuators and Acoustic,” Auburn University, Auburn Al, 2019. [cited by applicant]
Y. Tang, S. Ren, H. Meng, F. Xin, L. Huang, T. Chen, C. Zhang and T. J. Lu, “Hybrid acoustic metamaterial as super absorber for broadband low-frequency sound,” Nature Scientific Reports, 2017. [cited by applicant]
C. Casarini, J. F. Windmill and J. C. Jackson, “3D printed small-scale acoustic metamaterials based on Helmholtz resonators with tuned overtones,” in IEEE Sensors, Glasgow, Scotland, 2017. [cited by applicant]
R. Ghaffarivardavagh, J. Nikolajczyk, S. Anderson and X. Zhang, “Ultra-open acoustic metamaterial silencer based on Fano-like interference,” [cited by applicant]
G. L. Huang and C. T. Sun, “Band Gaps in a Multiresonator Acoustic Metamaterial,” [cited by applicant]
M. Chen, D. Meng, H. Jiang and Y. Wang, “Investigation on the Band Gap and Negative Properties of Concentric Ring Acoustic Metamaterial,” [cited by applicant]
MSC Software Company, “Damping in acoustic simulation,” MSC Software Company, Detroit, MI, 2018. [cited by applicant]
C. Sambuc, G. Lielens and J.-P. Coyette, “Numerical modelling of visco-thermal acoustics using finite elements,” in [cited by applicant]