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US20040065171A1 - Soild-state hydrogen storage systems - Google Patents

Soild-state hydrogen storage systems
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Publication number
US20040065171A1
US20040065171A1US10/263,618US26361802AUS2004065171A1US 20040065171 A1US20040065171 A1US 20040065171A1US 26361802 AUS26361802 AUS 26361802AUS 2004065171 A1US2004065171 A1US 2004065171A1
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United States
Prior art keywords
hydrogen
hydrogen storage
metal
storage material
composition
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Abandoned
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US10/263,618
Inventor
Andrew Hearley
Scott Redmond
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FuelSell Technologies Inc
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FuelSell Technologies Inc
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First worldwide family litigation filedlitigationCriticalhttps://patents.darts-ip.com/?family=32042034&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=US20040065171(A1)"Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by FuelSell Technologies IncfiledCriticalFuelSell Technologies Inc
Priority to US10/263,618priorityCriticalpatent/US20040065171A1/en
Assigned to FUELSELL TECHNOLOGIES, INC.reassignmentFUELSELL TECHNOLOGIES, INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: HEARLEY, ANDREW K., REDMOND, SCOTT D.
Priority to PCT/US2003/030717prioritypatent/WO2004031642A2/en
Priority to AU2003279056Aprioritypatent/AU2003279056A1/en
Publication of US20040065171A1publicationCriticalpatent/US20040065171A1/en
Priority to US10/851,313prioritypatent/US7279222B2/en
Abandonedlegal-statusCriticalCurrent

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Abstract

Improved hydrogen storage materials are disclosed. A first material comprises a hydrogen storage nanomaterial that contains nanoparticles or nanoparticle clusters of a metal that is capable of combining with hydrogen to form a metal hydride. The nanomaterials may be formed using a thermal spray process. A second material comprises a micro-sized support that contains a hydrogen storage material deposited thereon. The hydrogen storage material may comprise a thermal spray deposit formed on a fly ash particle. A third material comprises a hydrogen permeable container having a hydrogen storage material therein. The container may comprise a microparticle having an internal void (e.g., a fly ash cenosphere or glass microsphere) containing a hydrogen storage material that has been permeated therein. Alternatively, the container may comprise an enclosing layer formed over a hydrogen storage material. The enclosing layer may be a deposited protective layer formed over a particle of a hydrogen storage material

Description

Claims (38)

What is claimed is:
1. A composition comprising a hydrogen storage nanomaterial containing nanoparticles having an average size in the range of 1-100 nanometers.
2. The composition ofclaim 1, wherein the nanoparticles comprise a metal that is capable of combining with hydrogen to form a metal hydride.
3. The composition ofclaim 2, wherein the nanomaterial comprises cluster of nanoparticles condensed together from a plasma spray.
4. The composition ofclaim 3, wherein the hydrogen storage material further comprises hydrogen.
5. The composition ofclaim 4, wherein the composition is contained within a cassette.
6. The composition ofclaim 1, wherein the composition is contained within a rail car.
7. A method comprising forming a hydrogen storage nanomaterial by condensing an atomized hydrogen storage material.
8. The method ofclaim 7, wherein forming comprises condensing a thermal spray containing a molten metal that is capable of combining with hydrogen to form a metal hydride.
9. The method ofclaim 7, wherein forming comprises: (i) melting a metal that is capable of combining with hydrogen to form a metal hydride; (ii) spraying the melted metal; and (iii) condensing the sprayed metal to form a nanomaterial containing nanoparticles that have an average size that is in the range of 1-100 nanometers.
10. The method ofclaim 7, wherein forming comprises: (i) melting a metal that is capable of combining with hydrogen to form a metal hydride by heating the metal to a temperature not less than its melting point temperature in a plasma; (ii) atomizing and spraying the melted metal by contacting the melted metal with a flow of a compressed gas; and (iii) condensing the sprayed metal to form a nanomaterial containing nanoparticles that have an average size that is in the range of 1-100 nanometers by cooling the sprayed metal.
11. The method ofclaim 7, wherein forming further comprises forming a hydrogen storing nanomaterial by combining hydrogen with the hydrogen storage material during condensation.
12. The method ofclaim 7, wherein forming further comprises forming a hydrogen storing nanomaterial by combining hydrogen with a majority of the hydrogen storage material during condensation.
13. A composition comprising a micro-sized support having a hydrogen storage material deposited thereon.
14. The composition ofclaim 13, wherein the hydrogen storage material comprises a metal that is capable of combining with hydrogen to form a metal hydride.
15. The composition ofclaim 13, wherein: (i) the hydrogen storage material deposited on the support comprises a thermal spray deposit; and (ii) the hydrogen storage material comprises a metal that is capable of combining with hydrogen to form a metal hydride.
16. The composition ofclaim 15, wherein: (i) the thermal spray deposit comprises a plasma spray deposit; and (ii) the support comprises a particle selected from the group consisting of a glass particle, a ceramic particle, a zeolite particle, a mesoporous molecular sieve particle, a pozzolan particle, and an activated carbon particle.
17. The composition ofclaim 15, wherein: (i) the thermal spray deposit comprises a plasma spray deposit; and (ii) the support comprises a fly ash particle having a substantial internal void.
18. A method comprising: (i) melting a hydrogen storage material by heating the material to a temperature not less than its melting point temperature; (ii) atomizing and spraying the melted material by contacting the melted material with a flow of a gas; (iii) introducing a micro-sized support into the spray of the melted material; and (iv) depositing a portion of the spray on the support.
19. The method ofclaim 18, wherein introducing the support into the spray comprises adding a microparticle to a collision gas for the spray.
20. The method ofclaim 19: (i) wherein the hydrogen storage material comprises a metal that is capable of combining with hydrogen to form a metal hydride; and (ii) further comprising combining a majority of the metal with hydrogen from the gas to form metal hydride.
21. A composition comprising a micro-sized hydrogen permeable container having a hydrogen storage material contained therein.
22. The composition ofclaim 21, wherein: (i) the container comprises a microparticle having a substantial internal void; and (ii) the hydrogen storage material comprises a metal that is capable of combining with hydrogen to form a metal hydride.
23. The composition ofclaim 22, wherein the metal comprises a metal that is selected from the group consisting of lithium, beryllium, boron, sodium, magnesium, aluminum, or a combination thereof.
24. The composition ofclaim 23, wherein the microparticle is sufficiently permeable to the metal to allow the metal to permeate into the void.
25. The composition ofclaim 21, further comprising hydrogen combined with the metal.
26. The composition ofclaim 21, wherein: (i) the container comprises a container selected from the group consisting of a glass microsphere and a fly ash particle having a substantial internal void; and (ii) the hydrogen storage material comprises a metal that is capable of combining with hydrogen to form a metal hydride.
27. The composition ofclaim 26, wherein a majority of the hydrogen storage material comprises a metal that is selected from the group consisting of lithium, beryllium, boron, sodium, magnesium, aluminum, or a combination thereof!
28. The composition ofclaim 21, wherein the container comprises an enclosing layer over a hydrogen storage material containing a metal that is capable of combining with hydrogen to form a metal hydride.
29. The composition ofclaim 28, wherein the enclosing layer is permeable to hydrogen when heated.
30. The composition ofclaim 21, wherein the container comprises an enclosing layer containing a protective material, selected from the group consisting of silica, alumina, boron nitride, or a combination thereof, formed over a particle containing a metal hydrogen storage material that is capable of combining with hydrogen to form a metal hydride, the protective material.
31. A method comprising forming a hydrogen storage material within a micro-sized hydrogen permeable container by permeating the hydrogen storage material into the container.
32. The method ofclaim 31, wherein forming comprises permeating a metal selected from the group consisting of lithium, beryllium, boron, sodium, magnesium, aluminum, or a combination thereof, into a substantial internal void of a particle.
33. The method ofclaim 31, wherein forming comprises permeating lithium into a substantial internal void of a fly ash particle.
34. A composition comprising a micro-sized hydrogen permeable container containing a hydrogen storage material formed therein by the method ofclaim 31.
35. A method comprising forming a hydrogen storage material within a micro-sized hydrogen permeable container by enclosing a particle containing a hydrogen storage material with a layer that is permeable to hydrogen when heated.
36. The method ofclaim 35, wherein enclosing the particle comprises condensing a thermal spray containing the material over a surface of the particle.
37. The method ofclaim 36, further comprising condensing the particle from the thermal spray before said enclosing.
38. A composition comprising a micro-sized hydrogen permeable container containing a hydrogen storage material formed therein by the method ofclaim 35.
US10/263,6182002-10-022002-10-02Soild-state hydrogen storage systemsAbandonedUS20040065171A1 (en)

Priority Applications (4)

Application NumberPriority DateFiling DateTitle
US10/263,618US20040065171A1 (en)2002-10-022002-10-02Soild-state hydrogen storage systems
PCT/US2003/030717WO2004031642A2 (en)2002-10-022003-09-29Improved hydrogen storage materials
AU2003279056AAU2003279056A1 (en)2002-10-022003-09-29Improved hydrogen storage materials
US10/851,313US7279222B2 (en)2002-10-022004-05-21Solid-state hydrogen storage systems

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US10/263,618US20040065171A1 (en)2002-10-022002-10-02Soild-state hydrogen storage systems

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US10/851,313DivisionUS7279222B2 (en)2002-10-022004-05-21Solid-state hydrogen storage systems

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US20040065171A1true US20040065171A1 (en)2004-04-08

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US10/851,313Expired - Fee RelatedUS7279222B2 (en)2002-10-022004-05-21Solid-state hydrogen storage systems

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CN117069062A (en)*2023-07-102023-11-17中山大学Preparation and application of nano palladium hydride and palladium-hydrogen based alloy nano material

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US20040213998A1 (en)2004-10-28
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