Claims
- 1. A process for preparing propylene block copolymers consisting essentially of:
- a preceding polymerization step in which a crystalline homopolymer of propylene, or a propylene-ethylene copolymer containing 7 wt. % or less of ethylene copolymerized is produced in the presence of a catalyst consisting of the following components (A) and (B), and
- a succeeding polymerization step in which the polymerization is continued in the presence of at least a part of the product obtained from the preceding polymerization step, and in the presence of the following component (C) which is added after the completion of the preceding polymerization step to give the propylene block copolymer with a polymerization ratio in a weight ratio of propylene to ethylene of from 0/100 to 90/10;
- the polymerization amount at the preceding polymerization step being from 30 to 95 wt. % of the total polymerization amount at said preceding and succeeding polymerization steps;
- component (A): essentially a solid catalyst component of Ziegler catalysts consisting essentially of titanium, magnesium, a halogen and an electron donor selected from the group consisting of esters of an organic acid, acid halides, organoalkoxysilicons and esters of an inorganic acid:
- component (B): an organoaluminum compound;
- component (C): a compound selected from the group consisting of a cyclic olefin having 5 to 12 carbon atoms, vinyl tri-lower alkyl silane, a vinyl lower alkyl ether and methyl methacrylate,
- the weight ratio of the component (B) to the component (A) being from 1 to 100 and the molar ratio of the component (C) to the titanium contained in the component (A) being from 0.2 to 100.
- 2. A process according to claim 1, wherein the polymerization amount at said preceding polymerization step is from 50 to 90 wt. % of the total polymerization amount at said preceding and succeeding polymerization steps.
- 3. A process according to claim 1, wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 0/100 to 80/20.
- 4. A process according to claim 1, wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 0/100 to 70/30.
- 5. A process according to claim 4, wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 30/70 to 70/30.
- 6. A process according to claim 1, wherein said component (A) is prepared by a method selected from the group consisting of:
- (a) a method in which a halogenated magnesium and an electron donor are brought into contact with a titanium-containing compound;
- (b) a method in which halogenated magnesium, and electron donor and halogen-containing titanium compound are brought into contact with alumina or magnesia which has been treated with a halogenated phosphorus compound;
- (c) a method in which a halogenated titanium compound and/or a halogenated compound of silicon and, as an optional component, an electron donor are brought into contact with a solid component which is obtained by contacting halogenated magnesium with a titanium tetraalkoxide and a polymeric silicon compound having the following formula: ##STR4## wherein R is a hydrocarbyl group having approximately 1 to 10 carbon atoms, and n represents such a polymerization degree that the polymeric silicon compound has a viscosity of approximately 1 to 100 centistokes;
- (d) a method in which a titanium compound is brought into contact with a solid component which is separated, by using a halogenating agent or titanium halogen compound, from a solution prepared by dissolving a magnesium compound in a titanium tetraalkoxide and an electron donor;
- (e) a method in which an organomagnesium compound is reacted with a halogenating agent and/or a reducing agent and then an electron donor and a titanium compound are brought into contact therewith; and
- (f) a method in which a halogenating agent and/or titanium compound is brought into contact with an alkoxymagnesium compound in the presence or absence of an electron donor.
- 7. A process according to claim 1, wherein said component (B) is an organoaluminum compound selected from the group consisting of (i) compounds represented by the formula R.sup.2.sub.3-n AlX.sub.n, and (ii) compounds represented by the formula R.sup.3.sub.3-m Al(OR.sup.4).sub.m, in both formulae R.sup.2 and R.sup.3 which may be the same or different, are hydrocarbyl groups each having 1 to 20 carbon atoms or a hydrogen atom, R.sup.4 is a hydrocarbyl group, X is a halogen, and n and m are numbers in the ranges of 0.ltoreq.n<3 and 0<m<3, respectively.
- 8. A process according to claim 1, wherein the amount of said component (C) used is such that the molar ratio of said component (C) to said titanium comprised in said component (A) is from 0.5 to 100.
- 9. A process for preparing propylene block copolymers consisting essentially of:
- a preceding polymerization step in which a crystalline homopolymer of propylene, or a propylene-ethylene copolymer containing 7 wt. % or less of ethylene copolymerized is produced in the presence of a catalyst consisting of the following components (A), (B) and (D), and
- a succeeding polymerization step in which the polymerization is continued in the presence of at least part of the product obtained from the preceding polymerization step, and in the presence of the following component (C), which is added after the completion of the preceding polymerization step to give the propylene block copolymer with a polymerization ratio in a weight ratio of propylene to ethylene of from 0/100 to 90/10;
- the polymerization amount at the preceding polymerization step being from 30 to 95 wt. % of the total polymerization amount at said preceding and succeeding polymerization steps;
- component (A): a solid catalyst component of Ziegler catalysts consisting essentially of titanium, magnesium, a halogen and an electron donor selected from the group consisting of esters of an organic acid, acid halides organoalkoxysilicons and esters of an inorganic acid;
- component (B): an organoaluminum compound;
- component (C): a compound selected from the group consisting of a cyclic olefin having 5 to 12 carbon atoms, vinyl tri-lower alkyl silane, a vinyl lower alkyl ether and methyl methacrylate,
- component (D): an electron donor compound which is a silicon compound represented by a formula:
- R.sup.1.sub.m X.sub.n Si(OR.sup.2).sub.4-m-n
- in which R.sup.1 and R.sup.2 are hydrocarbyl groups each having 1 to 20 carbon atoms,
- X is a halogen, and m and n are numbers which are in the ranges 0.ltoreq.m.ltoreq.3 and 0.ltoreq.n.ltoreq.3, and at the same time fulfill the relationship of 0.ltoreq.m+n.ltoreq.3;
- the weight ratio of the component (B) to the component (A) being from 1 to 100 and the molar ratio of the component (C) to the titanium contained in the component (A) being from 0.2 to 100.
- 10. A process according to claim 9, wherein said component (D) is a silicon compound represented by the following formula:
- R.sub.m.sup.1 X.sub.n Si(OR.sup.2).sub.4-m-n
- wherein R.sup.1 and R.sup.2 are hydrocarbyl groups having 1 to 10 carbon atoms, X is halogen, and m and n are numbers which are in the ranges of 0.ltoreq.m.ltoreq.3 and 0.ltoreq.n.ltoreq.3, respectively, and, at the same time, fulfill the relation of 0.ltoreq.m+n.ltoreq.3.
- 11. A process according to claim 1, wherein the amount of the electron donor in component (A) is in the range of from 1.times.10.sup.-3 to 10 in terms of a molar ratio of the electron donor to the magnesium compound used for providing the magnesium.
- 12. A process according to claim 9, wherein the polymerization amount at said preceding polymerization step is from 50 to 90 wt. % of the total polymerization amount at said preceding and succeeding polymerization steps.
- 13. A process according to claim 9, wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 0/100 to 80/20.
- 14. A process according to claim 9 wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 0/100 to 70/30.
- 15. A process according to claim 9, wherein said polymerization ratio in a weight ratio of propylene to ethylene at said succeeding polymerization step is from 30/70 to 70/30.
- 16. A process according to claim 9, wherein said component (A) is prepared by a method selected from the group consisting of:
- (i) a method in which a halogenated titanium compound and/or a halogenated compound of silicon and, as an optional component, an electron donor are brought into contact with a solid component which is obtained by contacting halogenated magnesium with a titanium tetraalkoxide and a polymeric silicon compound having the following formula: ##STR5## wherein R is a hydrocarbyl group having approximately 1 to 10 carbon atoms, and n represents such a polymerization degree that the polymeric silicon compound has a viscosity of approximately 1 to 100 centistokes;
- (ii) a method in which a titanium compound is brought into contact with a solid component which is separated, by using a halogenating agent or titanium halogen compound, from a solution prepared by dissolving a magnesium compound in a titanium tetraalkoxide and an electron donor; and
- (iii) a method in which an organomagnesium compound is reacted with a halogenating agent and/or a reducing agent and then an electron donor and a titanium compound are brought into contact therewith.
- 17. A process according to claim 16, wherein said component (A) is prepared by said method (c).
- 18. A process according to claim 9, wherein said component (B) is an organoaluminum compound selected from the group consisting of (i) compounds represented by the formula R.sup.2.sub.3-n AlX.sub.n, and (ii) compounds represented by the formula R.sup.3.sub.3-m Al(OR.sup.4).sub.m, in both formulae R.sup.2 and R.sup.3 which may be the same or different, are hydrocarbyl groups each having 1 to 20 carbon atoms or a hydrogen atom, R.sup.4 is a hydrocarbyl group, X is a halogen, and n and m are numbers in the ranges of 0.ltoreq.n.ltoreq.3 and 0<m<3, respectively.
- 19. A process according to claim 9, wherein the amount of said component (C) used is such that the molar ratio of said component (C) to said titanium comprised in said component (A) is from 0.5 to 100.
- 20. A process as claimed in claims 1 or 9, wherein the electron donor in said component (A) is at least one selected from the group consisting of esters of an organic acid having 2 to 20 carbon atoms, acid halides having 2 to 15 carbon atoms, and organoalkoxysilicones.
- 21. A process as claimed in claims 1 or 9, wherein the component (A) is such that the molar ratio of the titanium component to the magnesium component employed is in the range of 0.01 to 10 and the molar ratio of the electron donor to the magnesium component employed is in the range of from 0.01 to 5.
- 22. A process according to claim 1, wherein said component (A) is prepared by a method selected from the group consisting of:
- (i) a method in which a halogenated titanium compound and/or a halogenated compound of silicon and, as an optional component, an electron donor are brought into contact with a solid component which is obtained by contacting halogenated magnesium with a titanium tetraalkoxide and a polymeric silicon compound having the following formula: ##STR6## wherein R is a hydrocarbyl group having approximately 1 to 10 carbon atoms, and n represents such a polymerization degree that the polymeric silicon compound has a viscosity of approximately 1 to 100 centistokes;
- (ii) a method in which a titanium compound is brought into contact with a solid component which is separated, by using a halogenating agent or titanium halogen compound, from a solution prepared by dissolving a magnesium compound in a titanium tetraalkoxide and an electron donor; and
- (iii) a method in which an organomagnesium compound is reacted with a halogenating agent and/or a reducing agent and then an electron donor and a titanium compound are brought into contact therewith.
- 23. A process according to claim 1, wherein said component (A) is prepared by the following method:
- (i) a method in which a halogenated titanium compound and/or a halogenated compound of silicon and, as an optional component, an electron donor are brought into contact with a solid component which is obtained by contacting halogenated magnesium with a titanium tetraalkoxide and a polymeric silicon compound having the following formula: ##STR7## wherein R is a hydrocarbyl group having approximately 1 to 10 carbon atoms, and n represents such a polymerization degree that the polymeric silicon compound has a viscosity of approximately 1 to 100 centistokes.
- 24. A process according to claim 1, wherein said component (C) is vinyltrimethylsilane, a vinyl lower alkyl ether or methyl methacrylate.
- 25. A process according to claim 1, wherein said component (C) is vinyltrimethylsilane or a vinyl lower alkyl ether.
- 26. A process according to claim 9, wherein said component (C) is vinyltrimethylsilane, a vinyl lower alkyl ether or methyl methacrylate.
- 27. A process according to claim 9, wherein said component (C) is vinyltrimethylsilane or a vinyl lower alkyl ether.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2-258381 |
Sep 1990 |
JPX |
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Parent Case Info
This application is a Continuation of application Ser. No. 08/185,233, filed on Jan. 24, 1994, now abandoned, which was a Continuation of application Ser. No. 08/012,984, filed Feb. 3, 1993, now abandoned, which was a Continuation of application Ser. No. 07/727,124, filed Jul. 9, 1991, now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (3)
Number |
Date |
Country |
0254234 |
Jan 1988 |
EPX |
0331364 |
Sep 1989 |
EPX |
0357394 |
Mar 1990 |
EPX |
Non-Patent Literature Citations (1)
Entry |
WPIL, AN 89-029601 & JP-A-63-305115, Dec. 13, 1988. |
Continuations (3)
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Number |
Date |
Country |
Parent |
185233 |
Jan 1994 |
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Parent |
12984 |
Feb 1993 |
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Parent |
727124 |
Jul 1991 |
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