Claims
- 1. A MgCl2.mROH.nH2Oadduct, where R is a C1-C10 alkyl, 2≦m ≦4.2, and 0≦n≦0.7, characterized by a X-ray diffraction spectrum in which in the range of 2θ diffraction angles between 5° and 15° three diffraction lines are present at diffraction angles 2θ of 8.8±0.2°, 9.4±0.2° and 9.8±0.2°, the most intense diffraction line being the one at 2θ=8.8±0.2°, the intensity of the other two diffraction lines being at least 0.2 times the intensity of the most intense diffraction lines.
- 2. An adduct according to claim 1, wherein 2.2≦m≦3.8, and 0.01≦n≦0.6 and R is a C1-C4 alkyl.
- 3. An adduct according to claim 2, wherein R is ethyl.
- 4. An adduct according to claim 3, wherein the intensity of the diffraction lines at 2θ=9.4°±0.2° and 9.8°±0.2° is at least 0.4 times the intensity of the most intense diffraction line.
- 5. An adduct according to claim 4, wherein the intensity of the diffraction lines at 2θ=9.4°±0.2° and 9.8°±0.2° is at least 0.5 times the intensity of the most intense diffraction line.
- 6. An adduct according to claim 3, characterized by a DSC profile in which no peaks are present at temperatures below 90° C. or, if peaks are present below said temperature, the fusion enthalpy associated with said peaks is less than 30% of the total fusion enthalpy.
- 7. An adduct according to claim 6 which is further characterized by a viscosity value at 125° C. which lies, on a plot viscosity vs.EtOH molar content, above the straight line passing through the points having, respectively, a viscosity expressed in poise and a EtOH molar content of 1.2/2.38 and 0.63/3.31.
- 8. An adduct according to any of the preceding claims, wherein the three diffraction lines at 2θ=8.8°±0.2°, 9.4°±0.2° and 9.8°±0.20 are the three main diffraction lines in the range of 2θ diffraction angles between 5° and 15°.
- 9. A MgCl2.mROH.nH2O adduct, where R is a C2-C10 alkyl, 2≦m≦4.2, and 0≦n≦0.7, characterized by a DSC profile in which no peaks are present at temperatures below 90° C. or, if peaks are present below said temperature, the fusion enthalpy associated with said peaks is less than 30% of the total fusion enthalpy.
- 10. An adduct according to claim 9, wherein R is a C1-C4 alkyl, 2.5≦m≦3.5, and 0≦n≦0.4.
- 11. An adduct according to claim 9, wherein R is ethyl.
- 12. An adduct according to claim 9, wherein if peaks in the DSC profile are present at temperatures below 90° C., the fusion enthalpy associated with said peaks is less than 10% of the total fusion enthalpy, and wherein the maximum peak occurs at temperatures between 95 and 115° C.
- 13. An adduct according to any of the preceding claims, in the form of spherical particles.
- 14. A catalyst component for the polymerization of olefins comprising the product of the reaction between a transition metal compound and an adduct according to any of the preceding claims.
- 15. A catalyst component for the polymerization of olefins comprising the product of the reaction between a transition metal compound and an MgCl2-alcohol adduct, said adduct being obtainable by partially dealcoholating an adduct according to any of the preceding claims.
- 16. A catalyst component for the polymerization of olefins according to claim 15 in which the partially dealcoholated adduct contains from 0.1 to 2.6 moles of alcohol per mole of MgCl2.
- 17. A catalyst component for the polymerization of olefins according to claims 14 to 16 in which the transition metal compound is a titanium compounds of formula Ti(OR)nXy-n in which n is comprised between 0 and y; y is the valency of titanium; X is halogen and R is an alkyl radical having 1-8 carbon atoms or a COR group.
- 18. A catalyst component for the polymerization of olefins according to claim 17 in which the transition metal compound is a titanium compounds having at least one Ti-halogen bond such as titanium tetrahalides or halogenalcoholates.
- 19. A catalyst component for the polymerization of olefins according to one of the claims 18 comprising an electron donor compound.
- 20. A catalyst component for the polymerization of olefins according to claim 19 in which the electron donor compound is selected from ethers, amines, silanes and ketones.
- 21. A catalyst component for the polymerization of olefins according to claim 20 in which the electron donor compound is selected from alkyl and aryl esters of mono or polycarboxylic acids.
- 22. Catalyst for the polymerization of olefins comprising the product of the reaction between a catalyst component according to one of the claims 14 to 21, and an aluminum alkyl compound.
- 23. Catalyst for the polymerization of olefins according to claim 22 in which the aluminum compound is a Al-trialkyl compound.
- 24. Catalyst for the polymerization of olefins according to claim 22 further comprising an external donor.
- 25. Catalyst for the polymerization of olefins according to claim 24 in which the external donor is selected from the silane compounds containing at least a Si—OR link, having the formula Ra1Rb2Si(OR3)c, where a and b are integer from 0 to 2, c is an integer from 1 to 3 and the sum (a+b+c) is 4; R1, R2, and R3, are alkyl, cycloalkyl or aryl radicals with 1-18 carbon atoms.
- 26. Process for the polymerization of olefins of formula CH2═CHR, in which R is hydrogen or a hydrocarbon radical having 1-12 carbon atoms, carried out in the presence of a catalyst according to one of the claims 22-25.
- 27. Process for the preparation of MgCl2.pROH.qH2O adducts, where R is a C1-C10 alkyl, 1≦p≦6, and 0≦n≦1, comprising:
dispersing the particles of magnesium dichloride in an inert liquid immiscible with and chemically inert to the molten adduct; heating the system at a temperature equal to or higher than the melting temperature of the adduct; adding the alcohol in vapour phase maintaining the temperature at values allowing the adduct is completely melted; emulsifying the molten adduct in a liquid medium which is immiscible with and chemically inert to said adduct; quenching the emulsion by contacting the adduct with an inert cooling liquid thereby obtaining the solidification of the adduct.
- 28. Process according to claim to claim 27 in which 2≦p≦4.2 and 0≦n≦0.7.
- 29. Process according to claim 28 characterized in that the liquid in which the MgCl2 particles are dispersed is selected from the group consisting of aliphatic, aromatic or cycloaliphatic hydrocarbons and silicone oils.
- 30. Process according to claim 29 characterized in that the liquid in which the MgCl2 particles are dispersed is selected from the group consisting of aliphatic hydrocarbons such as vaseline oil.
- 31. Process according to claim 30 characterized by heating the system at temperatures higher than 125° C. and more preferably to temperature higher than 150° C.
- 32. Process according to claim 31 in which the vaporized alcohol is added at a temperature equal to or lower than the temperature of the mixture.
- 33. Process according to claim 32 characterized in that the liquid medium in which the molten adduct is emulsified is a hydrocarbon liquid such as vaseline oil.
- 34. Process according to claim 33 characterized in that the liquid used to quench the emulsion is an aliphatic hydrocarbon such as pentane, hexane, heptane.
- 35. Process for the preparation of an adduct according to claim 1 comprising
contacting MgCl2 and alcohol in the substantial absence of an inert liquid dispersant; heating the system at a temperature equal to or higher than the melting temperature of the adduct and maintaining the temperature at values allowing the adduct is completely melted; emulsifying the molten adduct in a liquid medium which is immiscible with and chemically inert to said adduct; quenching the emulsion by contacting the adduct with an inert cooling liquid thereby obtaining the solidification of the adduct.
- 36. Process for the preparation of an adduct according to claim 1 comprising
contacting MgCl2 and alcohol in the substantial absence of an inert liquid dispersant; heating the system at a temperature equal to or higher than the melting temperature of the adduct and maintaining the temperature at values allowing the adduct is completely melted; spray-cooling the said molten adduct thereby obtaining the solidification of the adduct.
- 37. Process according to claims 35 or 36 said process being characterized by the fact that the adduct is kept at a temperature equal to or higher than its melting temperature, under stirring conditions, for a time period greater than 10 hours.
- 38. Process according to claim 37 in which the adduct is kept at a temperature equal to or higher than its melting temperature, under stirring conditions, for a time period of from 10 to 150 hours.
- 39. Process for the preparation of MgCl2.pROH.qH2O adducts, where R is a C1-C10 alkyl, 1≦p≦6, and 0≦n≦1, which comprises reacting MgCl2 solid particles and vaporized alcohol in a loop reactor comprising a densified zone in which the particles flow in a densified form under the action of gravity and a fast fluidization zone where the particles flow under fast fluidization.
- 40. Process according to claim 39 in which the fluidization is obtained by a flow of an inert gas, such as nitrogen, and in which the particles of magnesium dichloride-alcohol adduct are discharged from the densified zone.
- 41. Process according to claim 40 in which the feeding of the alcohol is carried out with injection nozzles located in the fluidization zone of the loop reactor.
- 42. Process according to claim 40 in which the alcohol is fed to the loop reactor in a zone after the densified zone and before the fluidization zone.
- 43. Process according to claim 42 in which the alcohol is fed into the cavitated zone created by a Loedige type apparatus located in the loop reactor in a zone after the densified zone and before the fluidization zone.
- 44. Process according to claim any of the claims 39-43 in which 2≦p≦4.2, and 0≦n≦0.7, said process being carried out under conditions such that the vapour pressure of the formed adduct is kept at values lower than 30 mmHg when operating at atmospheric pressure.
- 45. Process according to claim 44 in which the vapour pressure of the adduct is kept at values lower than 25 mmHg and more preferably in the range 10-20 mmHg.
- 46. Process according to claim 45 in which the temperature within the reactor in correspondence of the alcohol feeding zone is kept in the range of from 40 to 5° C.
- 47. Process according one of the claims 39-46 further comprising:
heating the particles of the adduct discharged from the loop reactor at a temperature equal to or higher than the melting temperature of the adduct and maintaining the temperature at values such that the adduct is completely melted; emulsifying the molten adduct in a liquid medium which is immiscible with and chemically inert to said adduct; quenching the emulsion by contacting the adduct with an inert cooling liquid thereby obtaining the solidification of the adduct.
- 48. Process according one of the claims 39-46 further comprising:
heating the particles of the adduct discharged from the loop reactor at a temperature equal to or higher than the melting temperature of the adduct and maintaining the temperature -at values such that the adduct is completely melted; spray-cooling the molten adduct thereby obtaining the solidified adduct.
Priority Claims (1)
Number |
Date |
Country |
Kind |
97200932.8 |
Mar 1997 |
NL |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. No. 09/050,612 filed Mar. 30, 1998, now U.S. Pat. No. 6,127,304.
Divisions (2)
|
Number |
Date |
Country |
Parent |
09626712 |
Jul 2000 |
US |
Child |
09993512 |
Nov 2001 |
US |
Parent |
09050612 |
Mar 1998 |
US |
Child |
09626712 |
Jul 2000 |
US |