Claims
- 1. Process for the production of a K- or Rb-.beta."-aluminum oxide ceramic formed body having the general formula:
- Me.sub.x D (y or z) A.sub.10+.delta. 10.sub.17
- wherein Me is potassium or rubidium, D is a doping material capable of stabilizing the .beta." aluminum oxide and x, y, z and .delta. are the stoichiometric factors, y thereby referring to monovalent and z to divalent doping material, and .delta. defines the stoichiometric variations of the aluminum ions; 1.4<x<1.7, 0.2<y<0.6 and 0.4<z<1, wherein a cubic densely packed aluminum oxide (.gamma.-aluminum oxide) or a precursor thereof is subjected to attrition together with the doping material or precursor thereof, the so obtained mixture is calcined in an oxygen-containing atmosphere, potassium oxide or rubidium oxide or precursor of these compounds is added to the calcination product obtained, the mixture is subjected to attrition and the calcined in an oxygen-containing atmosphere at a temperature greater than 900.degree. C. to obtain a powder preparation, the powder is subjected to attrition, isostatic pressing and sintering to form a ceramic formed body having a density of more than 95% of the theoretical density.
- 2. Process according to claim 1, wherein lithium oxide, magnesium oxide, zinc oxide, cobalt oxide, nickel oxide, ferrous oxide, manganese oxide or cuprous oxide or a mixture thereof is used as doping materials.
- 3. Process according to claim 1, wherein the doping materials are used in the form of nitrates or hydroxides or carbonates as precursors.
- 4. Process according to claim 1, wherein the potassium oxide or rubidium oxide is used in the form of a precursor of these compounds or of a mixture thereof.
- 5. Process according to claim 4, wherein, as precursors, there are used the nitrates or hydroxides or the carbonates.
- 6. Process according to claim 1, wherein, as precursor for the aluminum oxide structure, there is used a crystalline modification of aluminum hydroxide (Al(H.sub.2 O).sub.3) which, upon heating, is converted into an ordered aluminum oxide structure.
- 7. Process according to claim 6, wherein crystalline boehmite or crystalline bayerite is used as aluminum hydroxide.
- 8. Process according to claim 1, wherein the calcination of the attrited mixture of aluminum oxide and doping materials takes place at a temperature in the range of from 300.degree. to 1300.degree. C.
- 9. Process according to claim 1, wherein, for the production of the .beta."-aluminum oxide phase, the calcination of the attrited mixture with potassium oxide or rubidium oxide is carried out at a temperature greater than 1200.degree. C.
- 10. Process according to claim 1, wherein the isostatic pressing is carried out at a pressure of from 30 to 35 MPa.
- 11. Process according to claim 1, wherein the sintering is carried out at a temperature in the range of from 1570.degree. to 1650.degree. C.
- 12. Process according to claim 11, wherein heating up to the sintering temperature is carried out at a rate of 100.degree. to 300.degree. C./hour.
- 13. K- and Rb-.beta."- oxide ceramic formed bodies, produced by the process of claim 1.
Priority Claims (1)
Number |
Date |
Country |
Kind |
41 22 586.4 |
Jul 1991 |
DEX |
|
Parent Case Info
This is a continuation of application Ser. No. 07/906,820, filed on Jun. 30, 1992, now abandoned.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
3707589 |
Chiku et al. |
Dec 1972 |
|
4792377 |
Dunn et al. |
Dec 1988 |
|
4937214 |
Morita et al. |
Jun 1990 |
|
4946664 |
Van Zyl et al. |
Aug 1990 |
|
Non-Patent Literature Citations (3)
Entry |
Crosbie et al., "Potassium Beta"-Alumina Membranes"; Jour. Amer. Cer. Soc.,ol. 65, No. 4; Apr. 1982, pp. 187-191. |
Park et al., "Na to K vapor-phase exchange in polycrystalline .beta."-alumina"; Solid State Ionics, 46; Feb. 1991, pp. 221-231. |
Yang, "Thermal Stability of Multivalent Ion-Exchanged Beta" Aluminas", Doctorate Dissertation, UCLA; no month 1988, pp. 1-86. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
906820 |
Jun 1992 |
|