Claims
- 1. Amorphous mixed oxides of alumina and zirconia, consisting essentially of spherical, submicronic, non-agglomerated particles, having average diameter ranging between 0.2 and about 1 micron, having a polydispersion index dw/dn lower than or equal to 2.0, wherein dw is the weight average diameter and dn is the number average diameter, and wherein the zirconia is uniformly distributed in the alumina, said zirconia being at the most 38% by weight and being stabilized in the tetragonal phase at room temperature, after having subjected said amorphous mixed oxides to thermal treatment for converting zirconia to the tetragonal phase.
- 2. Amorphous mixed oxides of alumina and zirconia, according to claim 1, wherein dw/dn is lower than or equal to 1.30 and the number average diameter of the particles ranges between 0.2 and 0.5 .mu.m.
- 3. Amorphous mixed oxides of alumina and zirconia, according to claim 2, wherein dw/dn is lower than or equal to 1.20 and the average diameter of the particles ranges between 0.3 and 0.4 .mu.m.
- 4. Mixed oxides of alumina and zirconia obtained by subjecting to thermal treatment the amorphous hydrated mixed oxides of claim 1, wherein zirconia is stabilized in the tetragonal crystalline form and alumina is in a crystalline phase selected from the group consisting of gamma, alpha, theta, delta, and eta phases and mixtures of such phases.
- 5. Mixed oxides, according to claim 4, wherein the percentage of zirconia distributed in the alumina is lower than or equal to 25% by weight.
- 6. Mixed oxides according to claim 5, wherein the percentage of zirconia is lower than or equal to 11% by weight.
- 7. In a process for the improved homogeneous precipitation of amorphous mixed oxides of zirconia and alumina comprising the steps of (a) mixing an aluminum and zirconium aqueous salt solution with a substance which gradually releases hydroxy ions under heating, and with sulphuric acid in such an amount as to prevent formation of a precipitate during the preparation of the mix, said aqueous solution comprising the aluminum salt in an Al.sup.3+ concentration of up to 0.3 moles/l, at least 80% by weight of said aluminum salt being derived from aluminum sulphate, and a zirconium salt soluble, under precipitation conditions, under the reaction conditions in a Zr.sup.4 + concentration of at the most 38% by weight as ZrO.sub.2 calculated on the weight of Al.sub.2 O.sub.3 and ZrO.sub.2 of the product after calcinating at 1000.degree. C. for two hours, and (b) homogeneously precipitating a mixed oxide, the improvement comprising carrying out the precipitation of the mixed oxides in the presence of soluble, under precipitation conditions, cationic polyelectrolytes, having an average molecular weight higher than 1 million and an ionicity of at least 3 milliequivalents/g, said amorphous mixed oxide consisting essentially of spherical, submicronic, non-agglomerated particles having an average diameter ranging between 0.2 and about 1 micron, having a polydispersion index dw/dn lower than or equal to 2.0, where dw is the weight average diameter and dn is the number average diameter, and wherein zirconia is uniformly distributed in alumina, said zirconia being at the most 38% by weight and being stabilized in the tetragonal phase at room temperature, after having subjected said amorphous mixed oxides to thermal treatment for converting zirconia into the tetragonal phase.
- 8. A process for the preparation of mixed oxides of alumina and zirconia, according to claim 7, wherein the Al.sup.3+ concentration is 0.2 moles/l.
- 9. A process according to claim 7, wherein the cationic polylectrolyte has ionicity higher than 3.5 meq/g and an average molecular weight of 3 millions.
- 10. A process according to claim 7, wherein the cationic polyelectrolyte is used in amounts higher than or equal to 3.3% by weight, as compared with the theoretical alumina corresponding to the starting aluminum present in the solution.
- 11. A process, according to claim 10, wherein the cationic polyelectrolyte is used in amounts higher than or equal to 10% by weight.
- 12. A process, according to claim 7, wherein the cationic polyelectrolyte comprises repeating units based on substituted acrylamide, having the formula: ##STR9## wherein R.sub.1, R.sub.2, R.sub.3, T, equal or different from each other are selected from the group consisting of hydrogen and a hydrocarbon radical having from 1 to 4 carbon atoms;
- Z, Y=CH.sub.3, H
- X is an anion, and
- n is an integer.
- 13. A process, according to claim 12, wherein Y, Z and R.sub.3 are H, and R.sub.1 and R.sub.2 equal or different from each other are selected from the group consisting of H, --CH.sub.3 and --C.sub.2 H.sub.5.
- 14. A process for the preparation of hydrated mixed oxides of alumina and zirconia, according to claim 7, wherein the homogenous precipitation is carried out in the presence of urea or formamide.
- 15. A process, according to claim 7, wherein the reaction temperature ranges between 90.degree. and 100.degree. C.
- 16. A process for the preparation of mixed oxides of alumina and zirconia according to claim 7, wherein the starting solution of aluminum salt, polyelectrolyte, substance capable of releasing hydroxy ions under the reaction conditions, is acidified up to pH below 3, then the zirconium salt is added, and a sulphate is added in an amount equimolar with respect to the sulphuric acid of claim 7.
- 17. A process according to claim 7, wherein the cationic polyelectrolyte comprises repeating units based on vinylamine, having the formula: ##STR10## wherein R.sub.4, R.sub.5, R.sub.6, equal or different from each other are selected from the group comprising hydrogen, a hydrocarbon radical having from 1 to 4 carbon atoms, Y is CH.sub.3 or H, X is an anion, in particular chloride or sulphate, and n is an integer.
- 18. A process, according to claim 17, wherein R.sub.4 is H and R.sub.5 and R.sub.6, equal or different from each other, are selected from the group consisting of H, --CH.sub.3 and --C.sub.2 H.sub.5.
- 19. A process according to claim 12, wherein the polyelectrolyte also comprises, besides the ionic units, neutral units of non-substituted acrylamide having the formula: ##STR11## wherein m is an integer and Y has the meaning indicated in claim 13, the ionic and neutral units being distributed statistically along the polymer chain.
- 20. A process according to claim 12, wherein the cationic polyelectrolyte consists of a copolymer comprising the cationic substituted acrylamide units of claim 12, or cationic vinylamine units based on vinylamide, having the formula: ##STR12## wherein R.sub.4, R.sub.5, R.sub.6 have the same meaning of R.sub.1 of claim 12, X means an anion, in particular chloride or sulphate and Y and n have the meanings indicated in claim 12, and neutral units different from those of acrylamide, randomly distributed along the polymer chain.
Priority Claims (1)
Number |
Date |
Country |
Kind |
21018 A/85 |
Jun 1985 |
ITX |
|
Parent Case Info
This application is a continuation of application Ser. No. 868,746, filed May 30, 1986 now abandoned.
Foreign Referenced Citations (4)
Number |
Date |
Country |
3347450 |
Jul 1984 |
DEX |
0009875 |
Jan 1983 |
JPX |
0032066 |
Feb 1983 |
JPX |
881070 |
Jul 1979 |
SUX |
Continuations (1)
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Number |
Date |
Country |
Parent |
868746 |
May 1986 |
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