PROCESS FOR THE PRODUCTION OF PROPYLENE POLYMERS HAVING A LOW ASH CONTENT
The present invention relates of a polymerization process for the production of propylene polymers with low ash content using a Ziegler-Natta catalyst with a diether as internal electron donor. The present invention also relates to the propylene polymers produced with said process as well as to films, fibers and nonwovens made with said propylene polymer.
1 . A process for the production of propylene polymers having a low ash content by polymerization of propylene and one or more optional comonomers in a polymerization reactor in presence of:
(a) a Ziegler-Natta catalyst comprising a titanium compound having at least one titanium-halogen bond, and an internal electron donor, both supported on a magnesium halide in active form,
(b) triethyl aluminium, and
(c) optionally an external electron donor (ED),
wherein the internal electron donor comprises at least 80 wt % of a diether, the molar ratio Al/Ti is at most 40, the residence time in the polymerization reactor is at most 2 hours, and the propylene polymers are recovered from the polymerization reactor, without any washing, as a powder and optionally converted to pellets.
2 . The process of claim 1 in which the molar ratio Al/Ti is in the range from 10 to 40, preferably in the range from 10 to 35.
3 . The process of claim 1 in which there is an external electron donor (ED).
4 . The process of claim 3 in which the molar ratio Al/ED is at most 120.
5 . The process of claim 3 in which the molar ratio Al/ED is in the range from 10 to 120, preferably in the range from 20 to 80.
6 . The process of claim 3 , wherein the external electron donor comprises a silane.
7 . A propylene polymer made according to the process of claim 1 .
8 . The propylene polymer of claim 7 comprising at most 15 ppm of chlorine, more preferably at most 12, and most preferably at most 9 ppm.
9 . The propylene polymer of claim 7 comprising at most 5 ppm of magnesium, preferably at most 4 ppm, and most preferably at most 3 ppm.
10 . The propylene polymer of claim 7 comprising at most 30 ppm of aluminium, preferably at most 20 ppm, even more preferably at most 15 ppm and most preferably at most 10 ppm.
11 . The propylene polymer of claim 7 comprising at most 2 ppm of titanium, preferably at most 1.5 ppm, more preferably at most 1.25 ppm and most preferably at most 1 ppm.
12 . The propylene polymer of claim 7 comprising a total ash content of at most 50 ppm, preferably of at most 40 ppm, most preferably of at most 30 ppm.
13 . The propylene polymer of claim 7 comprising at most 6 wt % of xylene solubles, preferably at most 5 wt % and even more preferably at most 4.5 wt %.
14 . The propylene polymer of claim 7 comprising at least 0.5 wt % of xylene solubles, more preferably at least 1 wt % and most preferably at least 1.5 wt % or 2 wt % or 3 wt %.
15 . A film made with the propylene polymer of claim 7 .
16 . The film of claim 15 , wherein the propylene polymer is a homopolymer.
17 . The film of claim 15 , wherein the propylene polymer has a melt flow index (ASTM D 1238, condition L) in the range from 1 dg/min to 10 dg/min, more preferably in the range from 1 dg/min to 4 dg/min, and most preferably in the range from 2 dg/min to 4 dg/min.
18 . A fiber or nonwoven made with the propylene polymer of claim 7 .
19 .- 20 . (canceled)
21 . A packaging application comprising the film of claim 15 .
22 . A hygiene application comprising the fiber or nonwoven of claim 18 .