HEAT RESISTANT ABS COMPOSITION WITH REDUCED ODOR FOR AUTOMOTIVE INTERIOR APPLICATION
A heat resistant ABS thermoplastic molding composition with reduced odor can be employed for automotive interior applications if it comprises a graft copolymer (A) based on a diene rubber latex substrate with a SAN graft sheath; a SAN matrix polymer (B) and specific amounts of additives such as fatty acid amides or fatty acid esters,metal oxides such as MgO, CaO or ZnO, antioxidants and a silicon oil having a kinematic viscosity in the range of from 25000 to 80000 centi Stokes.
1 - 16 . (canceled)
17 . A thermoplastic molding composition comprising components A, B, C1, C2, C3, C4, C5, and D:
(A) 15 to 44.2 wt.-% of at least one graft copolymer (A) consisting of 15 to 60 wt.-% of a graft sheath (A2) and 40 to 85 wt.-% of a graft substrate (A1), wherein (A1) is an agglomerated butadiene rubber latex and wherein (A1) and (A2) sum up to 100 wt.-%, obtained by emulsion polymerization of
styrene and acrylonitrile in a weight ratio of 95:5 to 65:35 to obtain a graft sheath (A2), wherein the styrene and/or acrylonitrile is optionally replaced partially by alpha-methylstyrene, methyl methacrylate, maleic anhydride, or mixtures thereof, in the presence of at least one agglomerated butadiene
rubber latex (A1) with a median weight particle diameter D 50 of 150 to 800 nm, where the agglomerated rubber latex (A1) is obtained by agglomeration of at least one starting butadiene rubber latex (S-A1) having a median weight particle diameter D50 of equal to or less than 120 nm;
(B) 55 to 84.2 wt.-% of at least one copolymer (B) of styrene and acrylonitrile or alpha-methylstyrene and acrylonitrile in a weight ratio of from 95:5 to 50:50, wherein the styrene, alpha-methylstyrene, and/or acrylonitrile is optionally replaced partially by methyl methacrylate, maleic anhydride, and/or 4-phenylstyrene;
wherein copolymer (B) has a weight average molar mass M W of 95,000 to 250,000 g/mol;
(C1) 0.65 to 1.20 wt.-% of at least one fatty acid amide or fatty acid amide derivative (C1);
(C2) 0 to 0.40 wt.-% of at least one fatty acid metal salt (C2);
(C3) 0.05 to 0.30 wt.-% of at least one metal oxide selected from MgO, CaO, and ZnO (C3);
(C4) 0.05 to 0.80 wt.-% of at least one antioxidant (C4);
(C5) 0.05 to 0.30 wt.-% silicon oil (C5) having a kinematic viscosity in the range of from 25000 to 80000 centi Stokes; and
(D) 0 to 5 wt.-% of at least one further additive/processing aid (D) different from (C1) to (C5), in particular UV absorbing additives, dyes, and/or pigments;
wherein components A, B, C1, C3, C4, C5, and, if present, C2 and/or D, sum to 100 wt.-%.
18 . A thermoplastic molding composition comprising components A, B, E1, E2, E3, E4, and F:
(A) 15 to 44.1 wt.-% of at least one graft copolymer (A) consisting of 15 to 60 wt.-% of a graft sheath (A2) and 40 to 85 wt.-% of a graft substrate (A1), wherein (A1) is an agglomerated butadiene rubber latex and wherein (A1) and (A2) sum up to 100 wt.-%, obtained by emulsion polymerization of
styrene and acrylonitrile in a weight ratio of 95:5 to 65:35 to obtain a graft sheath (A2), wherein the styrene and/or acrylonitrile is optionally replaced partially by alpha-methylstyrene, methyl methacrylate, maleic anhydride, or mixtures thereof, in the presence of at least one agglomerated butadiene rubber latex (A1) with a median weight particle diameter D50 of 150 to 800 nm, where the agglomerated rubber latex (A1) is obtained by agglomeration of at least one starting butadiene rubber latex (S-A1) having a median weight particle diameter D 50 of equal to or less than 120 nm;
(B) 55 to 84.1 wt.-% of at least one copolymer (B) of styrene and acrylonitrile or alpha-methylstyrene and acrylonitrile in a weight ratio of from 95:5 to 50:50, wherein the styrene, alpha-methylstyrene, and/or acrylonitrile is optionally partially replaced by methyl methacrylate, maleic anhydride, and/or 4-phenylstyrene;
wherein copolymer (B) has a weight average molar mass M w of 95,000 to 250,000 g/mol;
(E1) 0.15 to 0.40 wt.-% of at least one metal oxide selected from MgO, CaO, and ZnO (E1);
(E2) 0.05 to 0.80 wt.-% of at least one antioxidant (E2);
(E3) 0.05 to 0.30 wt.-% silicon oil (E3) having a kinematic viscosity in the range of from 30000 to 80000 centi Stokes;
(E4) 0.65 to 1.20 wt.-% of at least one fatty acid ester (E4);
(F) 0 to 5 wt.-% of at least one further additive/processing aid (F) different from (E1) to (E4), provided that fatty acid metal salts are excluded;
wherein components A, B, E1, E2, E3, E4, and, if present, F, sum to 100 wt.-%.
19 . The thermoplastic molding composition of claim 17 , wherein graft copolymer (A) is obtained by emulsion polymerization by use of a rosin acid-based emulsifier.
20 . The thermoplastic molding composition of claim 18 , wherein graft copolymer (A) is obtained by emulsion polymerization by use of a rosin acid-based emulsifier.
21 . The thermoplastic molding composition of claim 17 , wherein copolymer (B) is a copolymer (B-1) of styrene and acrylonitrile in a weight ratio of from 78:22 to 65:35, having a weight average molar mass M w of 110,000 to 150,000 g/mol.
22 . The thermoplastic molding composition of claim 18 , wherein copolymer (B) is a copolymer (B-2) of styrene and acrylonitrile in a weight ratio of from 78:22 to 65:35, having a weight average molar mass M w of 150,000 to 225,000 g/mol.
23 . The thermoplastic molding composition of claim 17 , wherein component (C5) is a silicon oil having a kinematic viscosity in the range of from 45000 to 70000 centi Stokes.
24 . The thermoplastic molding composition of claim 18 , wherein component (E3) is a silicon oil having a kinematic viscosity in the range of from 45000 to 70000 centi Stokes.
25 . The thermoplastic molding composition of claim 17 , comprising components:
18 to 33.97 wt.-% component (A);
65 to 80.97 wt.-% component (B);
0.70 to 1.20 wt.-% component (C1);
0 to 0.35 wt.-% component (C2);
0.08 to 0.20 wt.-% component (C3);
0.15 to 0.70 wt.-% component (C4);
0.10 to 0.25 wt.-% component (C5); and
0 to 3 wt.-% component (D).
26 . (canceled)
27 . The thermoplastic molding composition of claim 18 , comprising components:
17 to 29.9 wt.-% component (A);
69 to 81.9 wt.-% component (B);
0.15 to 0.35 wt.-% component (E1);
0.15 to 0.70 wt.-% component (E2);
0.10 to 0.25 wt.-% component (E3);
0.70 to 1.20 wt.-% component (E4); and
0 to 3 wt.-% component (F).
28 . (canceled)
29 . The thermoplastic molding composition of claim 17 , wherein (C1) is a stearic acid amide or stearic acid amide derivative.
30 . The thermoplastic molding composition of claim 18 , wherein (E4) is a stearic acid ester.
31 . A process for the preparation of the thermoplastic molding composition of claim 17 by melt mixing the components (A), (B), (C1), (C2), (C3), (C4), (C5), and, if present, (C2) and/or (D), at temperatures in the range of from 160° C. to 300° C.
32 . A process for the preparation of the thermoplastic molding composition of claim 18 by melt mixing the components (A), (B), (E1), (E2), (E3), (E4), and, if present, (F), at temperatures in the range of from 160° C. to 300° C.
33 . A method of producing a shaped article, comprising the thermoplastic molding composition of claim 17 .
34 . A method of producing a shaped article, comprising the thermoplastic molding composition of claim 18 .
35 . A shaped article made from the thermoplastic molding composition of claim 17 .
36 . A shaped article made from the thermoplastic molding composition of claim 18 .
37 . A method of using the thermoplastic molding composition of claim 17 for applications in the automotive sector.
38 . A method of using the thermoplastic molding composition of claim 18 for applications in the automotive sector.