Composite materials with high Z-direction electrical conductivity

US10213984B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10213984-B2
Application numberUS-201514860000-A
CountryUS
Kind codeB2
Filing dateSep 21, 2015
Priority dateSep 22, 2014
Publication dateFeb 26, 2019
Grant dateFeb 26, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A curable composite material having high z-direction electrical conductivity. The curable composite material includes two or more layers of reinforcement carbon fibers that have been infused or impregnated with a curable matrix resin and an interlaminar region containing at least conductive nano-sized particles, e.g. carbon nanotubes, and a light-weight carbon veil. According to another embodiment, the interlaminar region further contains polymeric toughening particles. Methods for fabricating composite materials and structures are also disclosed.

First claim

Opening claim text (preview).

What is claimed is: 1. A curable composite material comprising: at least two layers of reinforcement carbon fibers impregnated with a curable matrix resin; and an interlaminar region formed between adjacent layers of reinforcement carbon fibers, the interlaminar region comprising (i) a curable matrix resin that is the same as or different from the matrix resin impregnating the reinforcement carbon fibers, (ii) conductive nano-sized particles dispersed throughout the matrix resin at the interlaminar region, and (iii) an uncoated nonwoven carbon veil embedded in the matrix resin at the interlaminar region, wherein each of the conductive nano-sized particles has at least one dimension smaller than about 100 nm, the nonwoven carbon veil is comprised of randomly arranged uncoated carbon fibers and has an areal weight of about 1 gsm to about 10 gsm, and the conductive nano-sized particles and the nonwoven carbon veil are the only conductive components at the interlaminar region. 2. The curable composite material of claim 1 , wherein the interlaminar region further comprises polymeric particles. 3. The curable composite material of claim 2 , wherein at least some polymeric particles penetrate through the nonwoven carbon veil. 4. The curable composite material of claim 2 , wherein the polymeric particles is present at a content of about 2% to about 20% by weight based on the total weight of the matrix resin in the composite material. 5. The curable composite material of claim 2 , wherein the polymeric particles are insoluble thermoplastic or elastomeric particles, and said insoluble particles remain as discreet particles at the interlaminar region upon curing of the composite material. 6. The curable composite material of claim 5 , wherein the polymeric particles are insoluble thermoplastic particles comprising at least one thermoplastic polymer selected from the group consisting of: polyimide, polyamideimide, polyamide, polyphthalamide, polyetherketone, polyetheretherketone, polyetherketoneketone, polyaryletherketones, polyphenylenesulfide, liquid crystal polymers, and copolymers thereof. 7. The curable composite material of claim 5 , wherein the polymeric particles are insoluble elastomeric particles comprising at least one polymeric material selected from the group consisting of: cross-linked polybutadiene, polyacrylic, polyacrylonitrile, and polystyrene. 8. The curable composite material of claim 2 , wherein the polymeric particles are crosslinked particles, each particle comprising one of: (a) a crosslinking network created by crosslinking a cross-linkable thermoplastic polymer having one or more one or more reactive groups with a cross-linking agent that is chemically reactive to the reactive groups, and (b) an inter-penetrating polymer network (IPN) comprising thermoplastic polymer chains intertwined with an independent crosslinking network, wherein said IPN is created by reacting at least one compound having one or more reactive groups, a crosslinking agent that is chemically reactive to the reactive groups, and a thermoplastic polymer. 9. The curable composite material of claim 1 , wherein the conductive nano-sized particles are carbon-based, nano-sized structures selected from the group consisting of: carbon nano-tubes (CNTs), carbon nano-fibers, carbon nano-ropes, carbon nano-ribbons, carbon nano-fibrils, carbon nano-needles, carbon nano-sheets, carbon nano-rods, carbon nano-cones, carbon nano-scrolls having scroll-like shapes, carbon nano-ohms, carbon black particles, graphite nano-platelets, graphite nano-dots, graphenes, and combination thereof. 10. The curable composite material of claim 9 , wherein the carbon-based, nano-sized structures are carbon nanotubes (CNTs). 11. The curable composite material of claim 1 , wherein the conductive nano-sized particles are present in an amount within the range of about 0.1% to about 10% by weight based on the total weight of the matrix resin in the composite material. 12. The curable composite material of claim 1 , wherein the interlaminar region comprises a curable matrix resin which is substantially the same as or different from the curable matrix resin impregnating the reinforcement carbon fibers. 13. The curable composite material of claim 1 , wherein the curable matrix resin impregnating the reinforcing fibers further comprises conductive nano-sized particles dispersed throughout. 14. The curable composite material of claim 1 , wherein the matrix resin impregnating the reinforcement fibers comprises one or more thermoset resins. 15. The curable composite material of claim 14 , wherein the thermoset resins are selected from: epoxy resins, imides, vinyl ester resins, cyanate ester resins, phenolic resins, benzoxazines, formaldehyde condensate resins, unsaturated polyesters, and combinations thereof. 16. The curable composite material of claim 1 , wherein at least one layer of reinforcement carbon fibers is in the form of continuous unidirectional fibers or a woven fabric. 17. A curable composite material comprising: at least two layers of reinforcement carbon fibers impregnated with a curable matrix resin; and an interlaminar region formed between adjacent layers of reinforcement carbon fibers, the interlaminar region comprising: (i) a curable matrix resin that is the same as or different from the matrix resin impregnating the reinforcement carbon fibers, (ii) conductive nano-sized particles dispersed throughout the matrix resin at the interlaminar region, and (iii) an uncoated nonwoven carbon veil embedded in the matrix resin at the interlaminar region, and (iv) polymeric particles embedded in the matrix resin at the interlaminar region, wherein the conductive nano-sized particles are carbon nanotubes or carbon particles, the conductive nano-sized particles are present in an amount within the range of about 0.1% to about 10% by weight based on the total weight of the matrix resin in the composite material, each of the conductive nano-sized particles has dimensions smaller than about 100 nm, the nonwoven carbon veil is comprised of randomly arranged uncoated carbon fibers and has an areal weight of about 1 gsm to about 10 gsm, and the conductive nano-sized particles and the uncoated nonwoven carbon veil are the only conductive components at the interlaminar region.

Assignees

Inventors

Classifications

  • characterised by the pressing technique, e.g. using action of vacuum or fluid pressure · CPC title

  • B32B5/022Primary

    Non-woven fabric · CPC title

  • impregnated with or embedded in a plastic substance {(not used)} · CPC title

  • Characterised by the use of epoxy resins; Derivatives of epoxy resins · CPC title

  • with carbon fibres · CPC title

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What does patent US10213984B2 cover?
A curable composite material having high z-direction electrical conductivity. The curable composite material includes two or more layers of reinforcement carbon fibers that have been infused or impregnated with a curable matrix resin and an interlaminar region containing at least conductive nano-sized particles, e.g. carbon nanotubes, and a light-weight carbon veil. According to another embodim…
Who is the assignee on this patent?
Cytec Ind Inc
What technology area does this patent fall under?
Primary CPC classification B32B5/022. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Feb 26 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).