PROCESS FOR THE PREPARATION OF LOW HAZE AND COLOR STABLE STYRENIC POLYMERS
Process for the preparation of very low haze and color stable styrenic polymers by anionic polymerization wherein the obtained terminated polymer solution is passed through a first filter, fed to a dispersing device to which water is added, fed to a buffer vessel and then is impregnated in a static mixer by addition of further water, carbon dioxide and one or more stabilizers.
1 - 19 . (canceled)
20 . A process for the preparation of homopolymers or block copolymers of vinyl aromatic monomers by anionic polymerization comprising the following steps:
(i) polymerization of at least one vinyl aromatic monomer and optionally at least one conjugated diene in an inert non-polar solvent in the presence of an organometal initiator in a reactor, and subsequent deactivation of the obtained “living” polymer chains with a terminating agent to obtain a polymer solution;
(ii) passing the polymer solution obtained in step (i) through a first filter;
(iii) feeding the polymer solution obtained in step (ii) to a dispersing device to which water is added in a continuous or in a discontinuous mode;
(iv) feeding the polymer solution obtained in step (iii) to a buffer vessel; and
(v) feeding the continuously withdrawn polymer solution from the buffer vessel into a static mixer for impregnation by addition of further water, carbon dioxide, and one or more stabilizers;
wherein:
subsequent to step (iv), the process is conducted in a continuous mode;
in step (ii):
no water is present in the first filter;
the first filter has a mesh size of 200 to 1500 μm;
the flow rate of the polymer solution is 10 to 500 m 3 /h at a temperature of from 50 to 130° C.;
in step (iii):
the dispersion device is a second filter having a mesh size of 200 to 1500 μm, a static mixer, or a process flow part in which the characteristic length of the process flow part, the velocity, the density, and the dynamic viscosity of the polymer solution are chosen in such a way that a transitional or turbulent flow with a Reynolds number above 2300 occurs;
water is added in amounts of 0.01 to 0.50 l/m 3 polymer solution;
in step (v):
the flow rate of the additional water is more than 0.05 l/m 3 polymer solution, and
the flow rate of the carbon dioxide is more than 5l/m 3 polymer solution; and
in steps (iii) and (v), the pH of the water is in the range of from 5 to 7.
21 . The process according to claim 20 , wherein the reactor is a batch reactor.
22 . The process according to claim 20 , wherein in step (iii), the dispersing device is a filter.
23 . The process according to claim 20 , wherein in step (iii), the dispersing device is a process flow part in which the polymer solution has a transitional flow with a Reynolds number between 2300 and 4000.
24 . The process according to claim 20 , wherein in step (iii), the dispersing device is a process tube having a characteristic length of from 0.05 to 1.0 m, and the polymer solution has a velocity of from 1.0 to 10.0 m/s, density of from 750 to 900 kg/m 3 , and a dynamic viscosity of from 0.01 to 10 Ns/m 2 at a temperature of from 60 to 80° C.
25 . The process according to claim 20 , wherein in step (iii), the dispersing device is a process tube having a characteristic length of from 0.05 to 5 m, and the polymer solution has a velocity of from 1.0 to 10.0 m/s, density of from 750 to 900 kg/m 3 , and a dynamic viscosity of from 0.01 to 10 Ns/m 2 at a temperature of from 60 to 95° C.
26 . The process according to claim 20 , wherein in steps (ii) and (iii), the filter is a bagfilter.
27 . The process according to claim 20 , wherein in step (ii), the mesh size of the filter is 500 to 1000 μm.
28 . The process according to claim 20 , wherein in step (iii), the water is added in amounts of 0.05 to 0.20 l/m 3 polymer solution.
29 . The process according to claim 20 , wherein the polymer solution obtained in step (v) is fed to a further buffer vessel.
30 . The process according to claim 20 , wherein prior to step (v), the polymer solution continuously withdrawn from the buffer vessel is filtered by a third filter.
31 . The process according to claim 30 , wherein the third filter is a cartridge filter with a mesh size between 50 μm and 300 μm.
32 . The process according to claim 20 , wherein in step (v), the stabilizers are added as a solution with a flow rate of 1 to 8 l/m 3 polymer solution.
33 . The process according to claim 20 , wherein in step (v), the stabilizers are dissolved in a nonpolar solvent where the concentration of each of the one or more stabilizers is in the range of from 3.5 to 15 wt.-%, preferably 5 to 12 wt.-%.
34 . The process according to claim 20 , wherein in step (v), a plasticizer is added with an injection flow of 0.1 to 30 l/m 3 polymer solution.
35 . The process according to claim 23 , wherein the process flow part is a tube or pipe.