IP Library Granted Patent US 12,516,216
Granted Patent B2
US 12,516,216 · App. 17/522,677 · Granted Jan 6, 2026

Microballoon-facilitated tunable porosity of elastomeric shape memory polymer composites

Inventors: Jennifer Nicole Rodriguez (Lathrop, CA); Eric B. Duoss (Dublin, CA); Alexandra Golobic (Pleasanton, CA); Jeremy M. Lenhardt (Tracy, CA); Lemuel Perez Perez (Livermore, CA); Ward Small, IV (Livermore, CA); Thomas S. Wilson (San Leandro, CA); Amanda Wu (Dublin, CA); Timothy Dexter Yee (Alameda, CA); Stephanie Schulze (Lenexa, KS)
Assignees: Lawrence Livermore National Security, LLC; Honeywell Federal Manufacturing & Technologies, LLC.
C09D183/04B33Y70/00B33Y80/00C09D7/70B29C64/118B29K2083/00B33Y10/00
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Quick Facts
Patent No.
US 12,516,216
App. No.
17/522,677
Granted
Jan 6, 2026
Kind
B2
Abstract

A product includes a porous three-dimensional printed structure having printed filaments arranged in a geometric pattern. The printed filaments include a material having a plurality of gas-filled microballoons. The printed structure has hierarchical porosity including an inter-filament porosity defined by the arrangement of the printed filaments, and an intra-filament porosity of the material. The intra-filament porosity is defined by the plurality of gas-filled microballoons in the material of the printed filament.

Claims (17)

1 . A product, comprising:

a porous three-dimensional printed structure having printed filaments arranged in a geometric pattern, the printed filaments comprising a material having a plurality of gas-filled microballoons,

wherein the printed structure has an intra-filament porosity in at least one printed filament thereof, the intra-filament porosity being defined by a compositional gradient and/or a concentration gradient of the gas-filled microballoons in the material,

wherein the compositional gradient of the material comprises a first composition of the gas-filled microballoons relative to a second composition of the gas-filled microballoons, wherein the gas-filled microballoons of the first composition have a first glass transition temperature and the gas-filled microballoons of the second composition have a second glass transition temperature different than the first glass transition temperature.

2 . The product as recited in claim 1 , wherein the printed structure has elastomeric shape memory behavior.

3 . The product as recited in claim 1 , wherein the printed structure, following recovery from compression resulting in at least a 60% reduction in original thickness, has at least 97% structure porosity compared to a porosity of the structure before compression.

4 . The product as recited in claim 3 , wherein the printed structure comprises pre-defined zones of porosity, wherein a first zone of porosity has at least 97% elastomeric shape memory behavior compared to an original shape of the structure, wherein a second zone of porosity has a different elastomeric shape memory behavior than the first zone of porosity.

5 . The product as recited in claim 1 , wherein the intra-filament porosity is in a range of greater than 0 vol. % to about 98 vol. % relative to a total volume of the material.

6 . A product, comprising:

a porous three-dimensional printed structure having printed filaments arranged in a geometric pattern, the printed filaments comprising a material having a plurality of gas-filled microballoons,

wherein the printed structure has an intra-filament porosity in at least one printed filament thereof, the intra-filament porosity being defined by a compositional gradient and/or a concentration gradient of the gas-filled microballoons in the material,

wherein the printed structure has a pre-defined gradient of porosity resulting from the arrangement of the printed filaments, and wherein at least some of the printed filaments have a gradient of intra-filament porosity.

7 . A product, comprising:

a porous three-dimensional printed structure having printed filaments arranged in a geometric pattern, the printed filaments comprising a material having a plurality of gas-filled microballoons,

wherein the printed structure has hierarchical porosity comprising: an inter-filament porosity defined by the arrangement of the printed filaments, and

an intra-filament porosity of the material, the intra-filament porosity defined by the plurality of gas-filled microballoons in the material of the printed filaments,

wherein at least some of the printed filaments are arranged about parallel to each other, the at least some of the printed filaments having a shape corresponding to a periodic wave pattern.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2021
From: RODRIGUEZ, JENNIFER NICOLE; DUOSS, ERIC B.; GOLOBIC, ALEXANDRA; LENHARDT, JEREMY M.; PEREZ PEREZ, LEMUEL; SMALL, WARD, IV; WILSON, THOMAS S.; WU, AMANDA; YEE, TIMOTHY DEXTER
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 058415/0897 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2021
From: SCHULZE, STEPHANIE
To: HONEYWELL FEDERAL MANUFACTURING & TECHNOLOGIES, LLC.
Reel/Frame 058416/0130 →
CONFIRMATORY LICENSE Recorded Dec 8, 2021
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC.
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 058382/0610 →
Continuity (3)
Continuation In Part 16610215
Provisional Application 62525493 · Jun 27, 2017
Related Publication 20220064481A1 · Mar 3, 2022
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