IP Library Granted Patent US 9,005,344
Granted Patent B2
US 9,005,344 · App. 14/146,766 · Granted Apr 14, 2015

Hydrogen membrane separator

Inventors: Andrew J. Curello (Hamden, CT); Michael Curello (Cheshire, CT); Constance R. Stepan (Oxford, CT)
Assignees: Societe Bic; The Commissariat a L'energie Atomique et Aux Energies Alternatives (CEA)
B01J19/00B01D53/22B01D53/228B01D63/06B01D67/0088B01D69/02B01D69/12B01D71/26B01D71/32B01D71/34B01D71/36B01J7/02B01J19/2475C01B3/065H01M8/04089B01D2313/16B01D2313/90B01D2323/04C01B2203/041C01B2203/066H01M8/04208H01M8/065Y02E60/362Y02E60/324Y02E60/364
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Quick Facts
Patent No.
US 9,005,344
App. No.
14/146,766
Granted
Apr 14, 2015
Kind
B2
Abstract

The present application is directed to a hydrophobic membrane assembly ( 28 ) used within a gas-generating apparatus. Hydrogen is separated from the reaction solution by passing through a hydrophobic membrane assembly ( 28 ) having a hydrophobic lattice like member ( 36 ) disposed within a hydrogen output composite ( 32 ) further enhancing the ability of the hydrogen output composite's ability to separate out hydrogen gas and prolonging its useful life.

Claims (27)

1. A gas-generating apparatus comprising:

a reaction chamber;

a fuel mixture within the reaction chamber, wherein the fuel mixture reacts to produce a gas in the presence of a catalyst; and

wherein the reaction chamber contains a hydrogen output composite comprising a hydrophobic lattice structure disposed between two gas-permeable, substantially liquid-impermeable membranes and the produced gas flows through one or both of the membranes and around the lattice structure.

2. The gas-generating apparatus of claim 1 , wherein the hydrophobic lattice structure has a static contact angle with water of greater than about 120°.

3. The gas-generating apparatus of claim 1 , wherein the hydrophobic lattice structure has a surface energy of less than about 40 mJ/m 2 .

4. The gas-generating apparatus of claim 3 , wherein the surface energy of the hydrophobic lattice structure is less than about 20 mJ/m 2 .

5. The gas-generating apparatus of claim 1 , wherein the hydrophobic lattice structure has a contact angle hysteresis measurement of less than about 40°.

6. The gas-generating apparatus of claim 1 , wherein the hydrophobic lattice structure is a polymer.

7. The gas-generating apparatus of claim 6 , wherein the polymer comprises poly(tetrafluorethene), polypropylene, polyamides, polyvinylidene, polyethylene, polysiloxanes, polyvinylidene fluoride, polyglactin, lyophilized dura matter, silicone, or rubber, and/or mixtures thereof.

8. The gas-generating apparatus of claim 6 , wherein the polymer comprises polyvinylidene fluoride.

9. The gas-generating apparatus of claim 1 , wherein the hydrophobic lattice structure is coated with a hydrophobic coating.

10. The gas-generating apparatus of claim 9 , wherein the hydrophobic coating comprises polyethylene, paraffin, oils, jellies, pastes, greases, waxes, polydimethylsiloxane, poly(tetrafluorethene), polyvinylidene fluoride, tetrafluoroethylene-perfluoroalkyl vinyl-ether copolymer, fluorinated ethylene propylene, poly(perfluorooctylethylene acrylate), polyphosphazene, polysiloxanes, silica, carbon black, alumina, titania, hydrated silanes, silicone, and/or mixtures thereof.

11. The gas-generating apparatus of claim 9 , wherein the hydrophobic coating comprises poly(tetrafluorethene), tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer, fluorinated ethylene propylene, poly(perfluorooctylethyl acrylate), or polyphosphazene.

12. The gas generating apparatus of claim 1 , wherein the hydrophobic lattice structure is coated with a surfactant.

13. The gas generating apparatus of claim 12 , wherein the surfactant comprises perfluorooctanoate, perfluorooctanesulfonate, ammonim lauryl sulfate, sodium laureth sulfate, alkyl benzene sulfonate, a sulfated or sulfonated fatty material, salts of sulfated alkyl aryloxypolyalkoxy alcohol, alkylbenzene sulfonates, sodium dodecyl benzenesulfonate, fluorosurfactants, sodium lauryl sulfate, sulfosuccinate blend, sodium dioctyl sulfosuccinate, sodium sulfosuccinate, sodium 2-ethylhexyl sulfate, ethoxylated acetylenic alcohols, high ethylene oxide octyl phenols, high ethylene oxide nonyl phenols, high ethylene oxide linear and secondary alcohols, ethoxylated amines of any ethylene oxide length, ethoxylated sorbitan ester, random EO/PO polymer on butyl alcohol, water soluble block EO/PO copolymers, sodium lauryl ether sulfate, and/or mixtures thereof.

14. The gas generating apparatus of claim 1 , wherein the hydrophobic lattice structure exhibits Cassie-Baxter behavior.

15. The gas generating apparatus of claim 1 , further comprises a second hydrophobic lattice structure between the reaction chamber and the hydrogen output composite.

16. The gas generating apparatus of claim 1 , further comprising a coarse filter between the catalyst and the hydrogen output composite.

17. The gas generating apparatus of claim 16 , wherein the coarse filter is hydrophobic.

18. A gas generating apparatus comprising:

a reaction chamber;

a fuel mixture within the reaction chamber, wherein the fuel mixture reacts to produce a gas in the presence of a catalyst;

wherein the reaction chamber comprises a hydrogen output composite comprising a lattice structure disposed between two gas-permeable, substantially liquid-impermeable membranes and the produced gas flows through one or both of the membranes and into the lattice structure; and

an acidic filter located downstream of the lattice structure to substantially remove basic contaminants from the produced gas.

19. The gas generating apparatus of claim 18 , wherein the acidic filter is perfluorinated sulfonic acid polymer.

20. The gas generating apparatus of claim 18 , wherein the acidic filter removes greater than about 90% of the basic contaminants from the produced gas.

Continuity (3)
Continuation 12829827 · Jul 2, 2010
Continuation In Part PCTUS2009063108 · Nov 3, 2009
Related Publication 20140120006A1 · May 1, 2014