IP Library Granted Patent US 12,359,702
Granted Patent B2
US 12,359,702 · App. 17/679,854 · Granted Jul 15, 2025

Lattice-based metamaterials and methods of use

Inventors: Guoliang Huang (Columbia, MO); Hussein Nassar (Columbia, MO); Yangyang Chen (Columbia, MO); Xianchen Xu (Columbia, MO)
Assignee: The Curators of the University of Missouri
F16F3/02B33Y50/00B33Y80/00F16F2228/066F16F2234/00
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Quick Facts
Patent No.
US 12,359,702
App. No.
17/679,854
Granted
Jul 15, 2025
Kind
B2
Abstract

An elastic wave cloaking lattice-based metamaterial for cloaking an object within a void includes a lattice of connected unit cells arranged to form a void, each unit cell comprising a mass and a plurality of connecting springs, the mass coupled by the plurality of connecting springs to masses in adjacent unit cells, the plurality of connecting springs comprising at least two large springs of a first length and at least two short springs of a second length, the first length greater than the second length, the springs and masses having relational and mechanical characteristics to facilitate elastic wave cloaking in the totality of the lattice. The lattice as a whole has metamaterial properties resulting from the positional relationship and mechanical properties of masses and connecting springs of the unit cells such that the lattice at least partially cloaks an object or material portioned within the void from elastic waves.

Claims (8)

1. An elastic wave cloaking lattice-based metamaterial for cloaking an object within a void comprising:

a lattice of connected unit cells arranged to form a void, each unit cell comprising a mass and a plurality of connecting springs, each mass coupled by the plurality of connecting springs to masses in adjacent unit cells, the plurality of connecting springs comprising at least two large springs of a first length and at least two short springs of a second length, the first length greater than the second length, the springs and masses having relational and mechanical characteristics to facilitate elastic wave cloaking in the totality of the lattice,

wherein the lattice as a whole has metamaterial properties resulting from the positional relationship and mechanical properties of masses and connecting springs of the unit cells such that the lattice at least partially cloaks an object or material portioned within the void from elastic waves.

2. An elastic wave cloaking lattice-based metamaterial according to claim 1 , wherein each mass has a first density and the plurality of springs have a second density the first density being greater than the second density.

3. An elastic wave cloaking lattice-based metamaterial according to claim 1 wherein the at least two large springs are rhomboid and the at least two short springs are rhomboid such that the plurality of connecting springs are coupled to masses at points where the connecting springs narrow from a maximum width at a location between masses.

4. An elastic wave cloaking lattice-based metamaterial according to claim 1 further comprising a plurality of rods, each rod extending from a corresponding mass and being adapted and configured to secure each mass to a ground or substrate and limit rotation of the mass.

5. An elastic wave cloaking lattice-based metamaterial according to claim 4 wherein each rod comprises at least one narrowed section near the end of each rod adapted and configured to be secured to the ground or substrate such that each narrowed section facilitates bending of the rod while limiting rotation of the mass.

6. An elastic wave cloaking lattice-based metamaterial according to claim 4 further comprising a rail system adapted and configured to allow for translation of the masses relative to a plane, the rail system comprising a top rail, a connector, and a bottom rail, the bottom rail being fixable to the plane and defining a first channel extending along a first direction, the connector being positionable within the first channel of the bottom rail and being slidable in the channel along the first direction, the top rail defining a second channel extending along a second direction perpendicular to the first direction, the connector being positionable within the second channel such that the top rail is slidable relative to the connector along the second direction, and wherein each rod is couplable to a top rail.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2022
From: HUANG, GUOLIANG; NASSAR, HUSSEIN; CHEN, YANGYANG; XU, XIANCHEN
To: THE CURATORS OF THE UNIVERSITY OF MISSOURI
Reel/Frame 060028/0655 →
Continuity (2)
Provisional Application 63153004 · Feb 24, 2021
Related Publication 20220412422A1 · Dec 29, 2022
References Cited (7)
US 10808794B1 · Boyce · 2020 [cited by examiner]
US 20220013098A1 · Dede · 2022 [cited by examiner]
US 20220405445A1 · Bonfanti · 2022 [cited by examiner]
WO document No. WO 2012/151472 to Koh et al published on Nov. 8, 2012. [cited by examiner]
WO document No. WO 2014/140538 to Daley et al published on Sep. 18, 2014. [cited by examiner]
WO document No. WO 2018/001234 to Ma et al published on Jan. 4, 2018. [cited by examiner]
WO document No. WO 2020/264146 to Wu et al published on Dec. 30, 2020. [cited by examiner]