IP Library Granted Patent US 12,552,132
Granted Patent B2
US 12,552,132 · App. 17/260,623 · Granted Feb 17, 2026

Impact-resistant, damage tolerant composites with shear thickening fluid layers and uses thereof

Inventors: Norman J. Wagner (Newark, DE); Richard Dombrowski (Lutherville, MD)
Assignee: STF Technologies, LLC
B32B5/26B32B5/08B32B2250/05B32B2250/20B32B2260/023B32B2260/046B32B2262/101B32B2262/106B32B2262/14B32B2264/101B32B2307/54B32B2307/558B32B2307/56B32B2307/72B64G6/00
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 12,552,132
App. No.
17/260,623
Granted
Feb 17, 2026
Kind
B2
Abstract

Composite materials incorporated with shear thickening fluids (STF) are disclosed. The STF-composites are light weight and include high tenacity textiles that dissipate/absorb energy from impact forces and exhibit damage resistance and self-healing functionality. Also disclosed are articles comprising STF-composite materials, such as safety suits and extra-vehicular mobility units, which include STF-intercalated textiles and composites. Methods for Manufacturing STF-composites are also disclosed.

Claims (39)

1 . A multi-layer hybrid composite with increased impact resistance and damage tolerance, the composite comprising:

(1) a first composite member comprising one or more composite layers having a first outer perimeter; and

(2) at least one energy absorber layer disposed on or within the one or more composite layers, the energy absorber layer having a second outer perimeter disposed within the first outer perimeter, the energy absorber layer comprising:

(i) a fabric comprising a plurality of fibers having a tensile strength of at least about 250 MPa; and

(ii) a shear thickening fluid comprising at least one carrier fluid in which is suspended particles having an average particle size of less than about 4,000 nm, wherein the shear thickening fluid is intercalated into the fabric;

wherein the energy absorber layer confers to the multi-layer hybrid composite increased impact resistance and damage tolerance as compared to a multi-layer composite without an energy absorber layer;

wherein the carrier fluid is a hydrocarbon fluid, a fluorinated polyether, a silicone fluid, or a combination of a hydrocarbon fluid and a fluorinated polyether; and

wherein the carrier fluid comprises a perfluoropolyether or a multiply-alkylated cyclopentane.

2 . The multi-layer hybrid composite of claim 1 , wherein:

(a) the plurality of fibers have a tensile strength of at least about 1 GPa and a specific strength of at least about 1,500 kN*m/kg; or

(b) the suspended particles have an average particle size of less than about 1,000 nm; or

(c) both (a) and (b).

3 . The multi-layer hybrid composite of claim 1 , wherein each composite layer of the first composite member comprises a plurality of carbon fibers, glass fibers, or combination of carbon fibers and glass fibers.

4 . The multi-layer hybrid composite of claim 1 , wherein the plurality of fibers of the fabric are selected from the group consisting of aramid fibers, ultra-high molecular weight polyethylene fibers, expanded/stretched polytetrafluoroethylene fibers, polyethylene terephthalate fibers, fibers made from copolymers of paraphenylenediamine and diaminodiphenyl ether, aromatic polyester fibers produced by polycondensation of 4-hydroxybenzoic acid and 6-hydroxynapthalene-2-carboxylic acid, and any combination thereof.

5 . The multi-layer hybrid composite of claim 1 , wherein the carrier fluid is a low volatility carrier fluid having a vapor pressure of less than about 1×10 −6 mPa at 25° C., and wherein the particles are silica particles suspended in the low volatility carrier fluid at a concentration in a range from about 40% to about 85% by weight particles.

6 . The multi-layer hybrid composite of claim 1 , further comprising a second composite member disposed on the at least one energy absorber layer, the second composite member comprising one or more composite layers, wherein each composite layer of the second composite member comprises a plurality of carbon fibers, glass fibers, or a combination of carbon fibers and glass fibers.

7 . The multi-layer hybrid composite of claim 6 , further comprising an additional energy absorber layer disposed on the second composite member and a third composite member disposed on the additional energy absorber layer, wherein the additional energy absorber layer comprises a fabric comprising a plurality of fibers having a tensile strength of at least about 250 MPa and a shear thickening fluid comprising at least one carrier fluid in which is suspended particles, wherein the shear thickening fluid is intercalated into the fabric; and wherein the third composite member comprises one or more composite layers, wherein each composite layer of the third composite member comprises a plurality of carbon fibers, glass fibers, or a combination of carbon fibers and glass fibers.

8 . The multi-layer hybrid composite of claim 7 , wherein:

(1) the fabric of the additional energy absorber layer comprises a plurality of fibers selected from the group consisting of aramid fibers, ultra-high molecular weight polyethylene fibers, expanded/stretched polytetrafluoroethylene fibers, polyethylene terephthalate fibers, fibers made from copolymers of paraphenylenediamine and diaminodiphenyl ether, aromatic polyester fibers produced by polycondensation of 4-hydroxybenzoic acid and 6-hydroxynapthalene-2-carboxylic acid, and any combination thereof; and

(2) the carrier fluid of the additional energy absorber layer is a hydrocarbon fluid, a fluorinated polyether, a silicone fluid, or a combination of a hydrocarbon fluid and a fluorinated polyether.

9 . The multi-layer hybrid composite of claim 1 , wherein the first composite member comprises at least 5 composite layers.

10 . The multi-layer hybrid composite of claim 1 , further comprising a structural density of less than about 2 g/cm 3 and a thickness of less than about 0.5 cm.

11 . A composite structure comprising:

(1) a first composite member comprising one or more composite layers having a first outer perimeter;

(2) a first energy absorber layer comprising a fabric in which is intercalated a shear thickening fluid and wherein the shear thickening fluid comprises at least one carrier fluid in which is suspended particles having an average particle size of less than about 4,000 nm, wherein the fabric of the first energy absorber layer comprises plurality of fibers having a tensile strength of at least about 250 MPa, and wherein the shear thickening fluid comprises about 40% to about 85% by weight of particles; and

(3) a second composite member comprising one or more composite layers having a second outer perimeter;

wherein the first energy absorber layer is disposed between the first composite member and the second composite member, has a third outer perimeter disposed within the first outer perimeter and/or the second outer perimeter, and dissipates impact energy when applied to the composite structure;

wherein each composite layer of the first composite member, the second composite member, or both the first composite member and the second composite member comprises a plurality of carbon fibers, glass fibers, or a combination of carbon fibers and glass fibers; and

wherein the first fabric comprises a plurality of fibers selected from the group consisting of aramid fibers, ultra-high molecular weight polyethylene fibers, expanded/stretched polytetrafluoroethylene fibers, polyethylene terephthalate fibers, fibers made from copolymers of paraphenylenediamine and diaminodiphenyl ether, aromatic polyester fibers produced by polycondensation of 4-hydroxybenzoic acid and 6-hydroxynapthalene-2-carboxylic acid, and any combination thereof;

wherein the carrier fluid of the first shear thickening fluid is a low volatility carrier fluid having a vapor pressure of less than about 1×10 −6 mPa at 25° C.; and

wherein the low volatility carrier fluid comprises a perfluoropolyether or a multiply-alkylated cyclopentane.

12 . The composite structure of claim 11 , further comprising:

(4) a second energy absorber layer disposed on the second composite member, the second energy absorber layer comprising a second fabric in which is intercalated a second shear thickening fluid, wherein the second fabric comprises a plurality of fibers having a tensile strength of at least about 250 MPa, and wherein the second shear thickening fluid comprises at least one carrier fluid in which is suspended particles having an average particle size of less than about 4,000 nm, and wherein the shear thickening fluid comprises about 40% to about 85% by weight of particles; and

(5) a third composite member disposed on the second energy absorber layer, the third composite member comprising one or more composite layers, wherein each composite layer of the third composite member comprises a plurality of carbon fibers, glass fibers, or a combination of carbon fibers and glass fibers;

wherein the second fabric comprises a plurality of fibers selected from the group consisting of aramid fibers, ultra-high molecular weight polyethylene fibers, expanded/stretched polytetrafluoroethylene fibers, polyethylene terephthalate fibers, fibers made from copolymers of paraphenylenediamine and diaminodiphenyl ether, aromatic polyester fibers produced by polycondensation of 4-hydroxybenzoic acid and 6-hydroxynapthalene-2-carboxylic acid, and any combination thereof.

13 . The composite structure of claim 11 , wherein the first shear thickening fluid comprises about 60% to about 70% by weight of particles, wherein the particles are silica particles having an average particle size of between about 300 nm and about 700 nm and an aspect ratio of about 1:1 to about 10:1.

14 . The composite structure of claim 11 , further comprising a structural density of less than about 2 g/cm 3 and a thickness of less than about 0.5 cm.

15 . An article comprising the composite structure of claim 11 .

16 . The article of claim 15 , wherein the article is a hard upper torso component of an extravehicular mobility unit, a marine vessel hull, an automobile component, a motorcycle component, a bicycle, a windmill turbine blade, a safety helmet, sporting equipment, or a storage tank.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2021
From: WAGNER, NORMAN J.; DOMBROWKSI, RICHARD
To: STF TECHNOLOGIES, LLC
Reel/Frame 055931/0272 →
Continuity (2)
Provisional Application 62699281 · Jul 17, 2018
Related Publication 20210291486A1 · Sep 23, 2021
References Cited (43)
US 3751727A · Shepard et al. · 1973 [cited by applicant]
US 4739007A · Okada et al. · 1988 [cited by applicant]
US 7226878B2 · Wagner · 2007 [cited by examiner]
US 7498276B2 · Wagner et al. · 2009 [cited by applicant]
US 7825045B1 · Wagner et al. · 2010 [cited by applicant]
US 8404162B2 · Okoli et al. · 2013 [cited by applicant]
US 20050266748A1 · Wagner · 2005 [cited by examiner]
US 20090004413A1 · Wagner et al. · 2009 [cited by applicant]
US 20090305589A1 · Budden et al. · 2009 [cited by applicant]
US 20130061739A1 · Cheong et al. · 2013 [cited by applicant]
US 20160221303A1 · Jancar et al. · 2016 [cited by applicant]
US 20180154606A1 · Francis · 2018 [cited by examiner]
US 20180279692A1 · Witek · 2018 [cited by examiner]
EP 3330081A1 · 2018 [cited by applicant]
EP 3384790A1 · 2018 [cited by applicant]
JP 2016635226A · 2016 [cited by applicant]
JP 2017100391A · 2017 [cited by applicant]
JP 2017222222A · 2017 [cited by applicant]
KR 1020120027867A · 2013 [cited by applicant]
KR 20150107987A · 2015 [cited by applicant]
KR 1020160147292A · 2016 [cited by applicant]
WO WO2011099936A1 · 2011 [cited by applicant]
WO WO2020010224A1 · 2020 [cited by applicant]
Asija, “Impact response of shear thickening fluid (STF) treated ultra high molecular weight poly ethylene composites—study of the effect of STF treatment method” Thin-Walled Structures 126:16-25 (2017). [cited by applicant]
Braza, “Lubricated Bearing Lifetimes of Multiply Alkylated Cyclopentane and a Linear Perfluoropolyether Fluid in Oscillatory Motion at Elevated Temperatures in Ultrahigh Vacuum” NASA/CR-2009-215637, p. 1-5 (2009). [cited by applicant]
Gon, “Complex Garment Systems to Survive in Outer Space” Textiles 7 (2):1-25 (2011). [cited by applicant]
Jones, “Properties of Perfluoropolyethers for Space Applications” NASA Technical Memorandum 106616 for ASME/STLE Tribology Conference, Lahaina, Hawaii (Oct. 1994). [cited by applicant]
Lee, “The ballistic impact characteristics of Kevlar woven fabrics impregnated with a colloidal shear thickening fluid” J Materials Science 38:2825-2833 (2003). [cited by applicant]
Materials Data Book, Cambridge University Engineering Department, 2003 Edition. [cited by applicant]
Minus, “The Processing, Properties, and Structure of Carbon Fibers” JOM p. 52-58 (Feb. 2005). [cited by applicant]
Nam, “Ballistic and Rheological Properties of STFs Reinforced by short Discontinuous Fibers” Proceedings of the Society for the Advancement of Material and Process Engineering Conference, Long Beach California, May 1-5,… [cited by applicant]
Nettles, “Permeability After Impact Testing of Composite Laminates” NASA, Marshall Space Flight Center Research Paper, p. 1-14 (2018). [cited by applicant]
O'Connor, “Lotus Coating. Mitigating Surface Contamination” Presentation at Goddard Space Flight Center, NASA Tech Briefs Webinar (Sep. 22, 2015). [cited by applicant]
Park, “Modifying a silicone potting compound for space flight applications” Abstract, NASA Technical Report 19830039241 (1982). [cited by applicant]
Rheopecty, Wikipedia, the free encyclopedia, XP002794974 (Jun. 4, 2017) (available at https://en.wikipedia.org/w/index.php?title=Rheopecty&oldid=783741589). [cited by applicant]
Ross, “Z-2 Prototype Space Suit Development” 44th International Conference on Environmental Systems Jul. 13-17 Tucson Arizona, pp. 1-11 (2014). [cited by applicant]
“Silicon Compounds to Succinic and Succinic Anhydride. Size Measurement of Particles” in Kirk-Othmer, Encyclopedia of Chemical technology, 4th Ed vol. 22 pp. 256-276 (Wiley & Sons ed. 1997). [cited by applicant]
Sloan, “Composites in the Martian Suit” Composite World available at https://www.compositesworld.com/articles/composites-in-the-space-suit-for-mars (2016). [cited by applicant]
Tan, “Strengthening fabric armour with silica colloidal suspensions” Int. J. Solids and Structures 42(5-6):1561-1576 (2004). [cited by applicant]
Unnikrishnan, “Toughening of epoxy resins” Designed Monomers and Polymers 9(2):129-152 (2006). [cited by applicant]
Wilson, “How Liquid Body Armor Works” in HowStuffWorks Science, XP002794975 (Jul. 9, 2017) (available at https://web.archive.org/web/20170709113722/http://science.howstuffworks.com/liquid-body-armor1.htm). [cited by applicant]
International Search Report and Written Opinion in International Patent Application No. PCT/US2019/042011, mailed Oct. 30, 2019. [cited by applicant]
Maekawa, “On the Design Issues of Stratospheric Platform Airship Structure” in Technical Memorandum of National Aerospace Laboratory No. 722: Japan, National Aerospace Laboratory (Jun. 30, 2003) available at https://jax… [cited by applicant]