Claims
- 1. The process of making light olefins containing 2 to 4 carbon atoms which comprises contacting a feedstock comprising one or more aliphatic hetero compounds with a silicoaluminophosphate molecular sieve comprising a molecular framework of [AlO.sub.2 ], [PO.sub.2 ] and [SiO.sub.2 ] tetrahedral units, at effective process conditions to produce said light olefins wherein the silicoaluminophosphate molecular sieve comprises a microporous crystalline silicoaluminophosphate whose unit empirical formula in the as-synthesized and anhydrous form is
- mR: (Si.sub.x Al.sub.y P.sub.z)O.sub.2
- wherein "R" represents at least one organic templating agent present in the intracrystalline pore system; "m" has a value of from 0.02 to 0.3; "m" represents the moles of "R" present per mole of (Si.sub.x Al.sub.y P.sub.z)O.sub.2 ; "x", "y" and "z" represent the mole fractions of silicon, aluminum and phosphorus respectively, present as tetrahedral units, said mole fractions being such that they are within the pentagonal compositional area defined by points A, B, C, D and E of the ternary diagram which is FIG. 1.
- 2. The process of claim 1 wherein the silicoaluminophosphate has mole fractions of silicon, aluminum and phosphorus within the pentagonal compositional area defined by points a, b, c, d and e of the ternary diagram which is FIG. 2.
- 3. The process of claim 1 wherein the silicoaluminophospate is characterized by adsorption of oxygen and negligible adsorption of isobutane.
- 4. The process of claim 1 wherein the silicoaluminophosphate is characterized by adsorption of xenon and negligible adsorption of isobutane.
- 5. The process of claim 1 wherein the silicoaluminophosphate is characterized by adsorption of n-hexane and negligible adsorption of isobutane.
- 6. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table I.
- 7. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table III.
- 8. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table V.
- 9. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table VII.
- 10. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table IX.
- 11. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XI.
- 12. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XIII.
- 13. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XV.
- 14. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XVII.
- 15. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XIX.
- 16. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XXI.
- 17. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XXIII.
- 18. The process of claims 1 wherein the silicoaluminophosphate has the characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table XXV.
- 19. The process of claims 1 wherein said aliphatic hetero compounds are alcohols, ethers, amines, mercaptans, aldehydes, ketones and halides wherein the aliphatic moiety of said aliphatic hetero compounds contains from 1 to about 10 carbon atoms.
- 20. The process of claim 1 wherein said subcoaluminophosphate molecular sieve has a kinetic pore diameter such that the selectivity to said light olefins is greater than 50 molar percent.
- 21. The process of claim 1 or 5 wherein the feedstock is contacted with said silicoaluminophosphate at a temperature between about 200.degree. and about 700.degree. C.
- 22. The process of claim 21 wherein the feedstock is contacted with said silicoaluminophosphate at a temperature between about 250.degree. and about 600.degree. C.
- 23. The process of claim 1 wherein the process is conducted at a pressure between about 0.1 atmosphere and about 1000 atmospheres.
- 24. The process of claim 23 wherein the process is conducted at a pressure between about 0.1 atmosphere and about 100 atmospheres.
- 25. The process of claim 1 wherein said process is carried out in the vapor phase.
- 26. The process of claim 1 wherein said process is carried out in the liquid phase.
- 27. The process of claim 1 wherein the WHSV is between about 0.01 hr.sup.-1 and about 100 hr.sup.-1.
- 28. The process of claim 30 wherein the WHSV is between about 0.1 hr.sup.-1 and about 40 hr.sup.-1.
REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of copending U.S. Ser. No. 426,213, filed Oct. 4, 1982, now U.S. Pat. No. 4,499,327.
US Referenced Citations (2)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO8201866 |
Jun 1982 |
WOX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
426213 |
Oct 1982 |
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