Claims
- 1. A composite material for membrane reactors, which composite material comprises:
(a-1) a dense ceramic membrane comprising a crystalline mixed metal oxide which exhibits, at operating temperatures, electron conductivity, oxygen ion conductivity, and ability to separate oxygen from a gaseous mixture containing oxygen and one or more other components by means of the conductivities; (b-1) a porous support comprising an alloy of at least two metallic elements which support exhibits mechanical stability at operating temperature; and (c-1) an interfacial zone of at least about 5 μm exhibiting chemical interaction between the dense ceramic membrane and the porous support.
- 2. The composite material according to claim 1 wherein the dense ceramic membrane is made from the crystalline mixed metal oxide in a particulate form by compressing particulate oxide against the inner and outer porous tubes at temperatures near the melting point temperature of the desired ceramic, whereby the gradients of composition defining the first and second interfacial zones are obtained.
- 3. The composite material according to claim 1 wherein the dense ceramic membrane is made from mixed metal oxide in a particulate form by spraying particulate oxide at elevated temperatures against the porous support, whereby the chemical interaction defining the interfacial zone is obtained.
- 4. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is selected from a class of materials which have an X-ray identifiable crystalline structure based upon the structure of the mineral perovskite, CaTiO3.
- 5. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is represented by
- 6. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is represented by
- 7. The composite material according to claim 6 wherein β is a number in a range from about 0.1 to about 6.
- 8. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is represented by
- 9. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is represented by
- 10. The composite material according to claim 9 wherein X is a number in a range from 0.1 to 0.8, Y is a number in a range upward from 0.1 to about 0.5, and β is a number in a range from about 0.1 to about 6.
- 11. The composite material according to claim 1 wherein the crystalline mixed metal oxide composition is represented by
- 12. A hollow tube module for membrane reactors, which module comprises:
(a-12) a dense ceramic membrane comprising a crystalline mixed metal oxide which exhibits, at operating temperatures, electron conductivity, oxygen ion conductivity, and ability to separate oxygen from a gaseous mixture containing oxygen and one or more other components by means of the conductivities; (b-12) a tubular, porous support comprising an alloy of at least two metallic elements which tubular support exhibits mechanical stability at operating temperature; (c-12) an interfacial zone of at least about 5 μm which exhibits a gradient of composition across the interfacial zone in at least one metallic element.
- 13. The hollow tube module according to claim 12 wherein the dense ceramic membrane is made from the crystalline mixed metal oxide in a particulate form by spraying particulate oxide at temperatures in a range upward from about 500° C. against at least the outer surface of the porous tubular support.
- 14. The hollow tube module according to claim 13 wherein the alloy is a high temperature steel comprising at least nickel, and chromium.
- 15. The hollow tube module according to claim 14 wherein the crystalline mixed metal oxide composition is represented by
- 16. A process to convert organic compounds into value-added products, which process comprises:
(a-16) providing a membrane reactor comprising inlet and outlet manifolds which are in flow communication with one another through a plurality of hollow tube modules according to claim 13; (b-16) contacting the dense ceramic membrane of the hollow tube modules with a dioxygen-containing gaseous mixture; (c-16) flowing a gaseous stream comprising one or more organic compounds through a plurality of the hollow tube modules; (d-16) permitting oxygen to be transported through the dense ceramic membrane into the hollow tube modules by means of its electron conductivity and oxygen ion conductivity, thereby separating oxygen from the oxygen-containing gaseous mixture; and (e-16) reacting at least one of the organic compounds with the oxygen transported through the membrane to form oxidation products at temperatures in a range from about 500° C. to about 1150° C.
- 17. The process according to claim 16 wherein the gaseous stream flowing through the hollow tube modules is maintained at pressures in a range upward from total pressure of the dioxygen-containing gaseous mixture in a zone surrounding the hollow tube modules.
- 18. The process according to claim 16 wherein the dense ceramic membrane permeable to oxygen comprises the crystalline mixed metal oxide composition represented by
- 19. The process according to claim 18 wherein a differential pressure across the dense ceramic membrane of the hollow tube modules is maintained at pressures in a range downward from about 100 psi.
- 20. The process according to claim 18 wherein the dense ceramic membrane is made from the crystalline mixed metal oxide in a particulate form by spraying particulate oxide at temperatures in a range upward from about 500° C. against, at least, the outer surface of the porous tubular support.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of U.S. application Ser. No. 08/958,574 filed Oct. 28, 1997, now U.S. Pat. No. (34039) which application is specifically incorporated herein in its entirety by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09306945 |
May 1999 |
US |
Child |
09757412 |
Jan 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
08958574 |
Oct 1997 |
US |
Child |
09306945 |
May 1999 |
US |