ACRYLIC MULTILAYER FOIL WITH IMPROVED MECHANICAL PROPERTIES AND A HIGH WEATHERING RESISTANCE
An acrylic multilayer foil includes a layer in which silica particles are uniformly distributed in an acrylic polymer matrix and at least one further layer. Due to adhesive promoting properties of the layer containing silica particles, the multilayer foil can be easily coated or laminated onto a substrate. The foil has a high weathering resistance and excellent mechanical properties. Therefore, the multilayer foil is highly suitable for surface-protection of materials such as polyvinyl chloride (PVC) and for use in high-pressure laminates (HPLs).
1 . A multilayer foil comprising least a layer A and a layer B, wherein the layer A consists of a moulding composition comprising, based on the total weight of the layer A:
from 0.0 to 78.0 wt. % of a polyalkyl (meth)acrylate;
from 20.0 to 98.0 wt. % of an impact modifier;
from 2.0 to 40.0 wt. % of particulate silica;
from 0.0 to 20.0 wt. % of an adhesion-promoting copolymer, comprising, based on the weight of the adhesion-promoting copolymer:
from 70.0 to 99.5 wt. % methyl methacrylate;
from 0.5 to 15.0 wt. % of an adhesion-promoting monomer;
from 0.0 to 25.0 wt. % of another vinyl-copolymerizable monomer having no functional group other than a vinyl functional group;
from 0.0 to 38.0 wt. % of a fluoropolymer;
from 0.0 to 5.0 wt. % of a UV absorber; and
from 0.0 to 5.0 wt. % of a UV stabilizer,
wherein a cumulative content of the polyalkyl (meth)acrylate and the impact modifier in the moulding composition of the layer A is at least 50 wt. %, based on the weight of the layer A; and
the layer B consists of a moulding composition comprising, based on the total weight of the layer B:
from 0.0 to 100.0 wt. % of a polyalkyl (meth)acrylate;
from 0.0 to 95.0 wt. % of an impact modifier;
from 0.0 to 40.0 wt. % of a fluoropolymer;
from 0.0 to 5.0 wt. % of a UV absorber;
from 0.0 to 5.0 wt. % of a UV stabilizer;
from 0.0 to 20.0 wt. % of an adhesion-promoting copolymer, comprising, based on the weight of the adhesion-promoting copolymer:
from 70.0 to 99.5 wt. % of methyl methacrylate;
from 0.5 to 15.0 wt. % of an adhesion-promoting monomer; and
from 0.0 to 25.0 wt. % of another vinyl-copolymerizable monomer having no functional group other than a vinyl functional group,
wherein a cumulative content of the polyalkyl (meth)acrylate and the impact modifier in the moulding composition of the layer B is at least 50 wt. %, based on the weight of the layer B.
2 . A multilayer foil comprising a layer A and a layer B, wherein the layer A consists of a moulding composition comprising, based on the total weight of the layer A:
from 0.0 to 78.0 wt. % of a polyalkyl (meth)acrylate;
from 20.0 to 98.0 wt. % of an impact modifier;
from 2.0 to 40.0 wt. % of particulate silica;
from 0.0 to 20.0 wt. % of an adhesion-promoting copolymer, comprising, based on the weight of the adhesion-promoting copolymer:
from 70.0 to 99.5 wt. % of methyl methacrylate;
from 0.5 to 15.0 wt. % of an adhesion-promoting monomer;
from 0.0 to 25.0 wt. % of another vinyl-copolymerizable monomer having no functional group other than a vinyl functional group;
from 0.0 to 38.0 wt. % of a fluoropolymer;
from 0.0 to 5.0 wt. % of a UV absorber; and
from 0.0 to 5.0 wt. % of a UV stabilizer,
wherein a cumulative content of the polyalkyl (meth)acrylate and the impact modifier in the moulding composition of the layer A is at least 50 wt. %, based on the weight of the layer A; and
the layer B consists of a moulding composition comprising, based on the total weight of the layer B:
from 40.0 to 100.0 wt. % of a fluoropolymer;
from 0.0 to 30.0 wt. % of a polyalkyl (meth)acrylate; and
from 0.0 to 30.0 wt. % of a glass bead.
3 . The foil according to claim 1 , wherein the content, in wt. %, based on the total weight of the layer A, the impact modifier n im in the polyalkyl (meth)acrylate foil satisfies the following relationship:
0.01* n im ≤n si ≤0.4* n im
n si being the content, in wt. %, of the particulate silica in the foil.
4 . The foil according to claim 1 , wherein the particulate silica has a specific surface area, measured by BET method according to ISO 9277, of more than 200 m 2 /g.
5 . The foil according to claim 1 , wherein the particulate silica is a precipitated silica or a pyrogenic silica.
6 . The foil according to claim 1 , wherein the particulate silica is a precipitated silica which has a weight average particle size d 50 of from 1.0 μm to 20.0 μm determined by laser diffraction according to ISO 13320.
7 . The foil according to claim 1 , wherein the particulate silica has a silanol group density of not lower than 0.5 SiOH/nm 2 .
8 . The foil according claim 1 , wherein the particulate silica has DBP absorption of 100 to 500 g/100 g determined in accordance with ASTM D6854-12a.
9 . The foil according to claim 1 , wherein the particulate silica has a tamped density from 10 g/l to 800 g/l determined in accordance with DIN EN ISO 787-11.
10 . The foil according to claim 1 , wherein the polyalkyl (meth)acrylate is a polymethyl methacrylate having a mass average molar weight Mw of from 50 000 g/mol to 180 000 g/mol, and is obtained by polymerization of a composition whose polymerizable constituents comprise, based on the weight of the polymerizable composition:
(a) from 50.0 to 99.9 wt. % of methyl methacrylate;
(b) from 0.1 to 50.0 wt. % of an acrylic acid ester of a C1-C4 alcohol; and
(c) from 0.0 to 10.0 wt. % of a monomer copolymerizable with the monomers (a) and (b).
11 . The foil according to claim 1 , wherein the impact modifier is at least one particulate impact modifier selected from the group consisting of core, core-shell, core-shell-shell, and core-shell-shell-shell impact modifiers.
12 . The foil according to claim 1 , wherein the layer B comprises, based on the total weight of the layer B:
from 0.5 to 4.0 wt. % of a benzotriazole compound as a first UV absorber;
from 0.5 to 3.0 wt. % of a triazine compound as a second UV absorber; and
from 0.2 to 2.0 wt. % of a Hindered Amine Light Stabilizer (HALS) compound as a UV stabilizer.
13 . The foil according to claim 1 , wherein the foil further comprises a layer C, wherein the layer B is located between the layer A and the layer C, and wherein the layer B consists of a moulding composition comprising, based on the total weight of the layer B:
from 0.0 to 100.0 wt. % of a polyalkyl (meth)acrylate;
from 0.0 to 95.0 wt. % of an impact modifier;
from 0.0 to 40.0 wt. % of a fluoropolymer;
from 0.0 to 5.0 wt. % of a UV absorber; and
from 0.0 to 5.0 wt. % of a UV stabilizer, and
wherein the layer C consists of a moulding composition comprising, based on the total weight of the layer C:
from 0.0 to 78.0 wt. % of a polyalkyl (meth)acrylate;
from 20.0 to 98.0 wt. % of an impact modifier;
from 0.0 to 40.0 wt. % of particulate silica;
from 0.0 to 40.0 wt. % of an adhesion-promoting copolymer, comprising, based on the weight of the adhesion-promoting copolymer:
from 70.0 to 99.5 wt. % of methyl methacrylate;
from 0.5 to 15.0 wt. % of an adhesion-promoting monomer; and
from 0.0 to 25.0 wt. % of another vinyl-copolymerizable monomer having no functional group other than a vinyl functional group
from 0.0 to 5.0 wt. % of a UV absorber; and
from 0.0 to 5.0 wt. % of a UV stabilizer,
wherein a cumulative content of the polyalkyl (meth)acrylate and the impact modifier in the moulding composition of the layer C is at least 50 wt. %, based on the weight of the layer C; and
a cumulative content of the particulate silica and the adhesion-promoting copolymer is at least 2.0 wt. %, based on the weight of the layer C.
14 . The foil according to claim 1 , wherein the foil further comprises a layer C, wherein the layer C consists of a moulding composition comprising, based on the total weight of the layer C:
from 40.0 to 100.0 wt. % of a fluoropolymer;
from 0.0 to 30.0 wt. % of a polyalkyl (meth)acrylate; and
from 0.0 to 30.0 wt. % of a glass bead.
15 . The foil according to claim 14 , wherein
the layer A has a thickness from 1.0 μm to 30.0 μm
the layer B has a thickness from 15.0 μm to 150.0 μm; and
the layer C, if present, has a thickness from 1.0 μm to 30.0 μm.
16 . The foil according to claim 1 , wherein the foil further comprises a coating layer D adjacent to the layer A, and wherein the coating layer D comprises at least a partially cross-linked material selected from the group consisting of a crosslinked polyurethane, a crosslinked polyurethane-(meth)acrylate, a cross-linked poly(meth)acrylate, and a mixture thereof.
17 . A multi-layer article, having an outer surface, comprising a substrate which is at least partially covered by the foil according to claim 16 , comprising the layers in the following order, starting from the outer surface of the multi-layer article:
layer D forming the outer surface of the multi-layer article;
layer A;
layer B; and
layer C, wherein the layer C consists of a moulding composition comprising, based on the total weight of the layer C:
from 40.0 to 100.0 wt. % of a fluoropolymer;
from 0.0 to 30.0 wt. % of a polyalkyl (meth)acrylate; and
from 0.0 to 30.0 wt. % of a glass bead.
18 . A multi-layer article, comprising a substrate which is at least partially covered by the foil according to claim 14 , comprising the layers in the following order, starting from an outer surface:
layer C;
layer B; and
layer A.
19 . A process for manufacturing the multi-layer article according to claim 17 , the process comprising:
coating a substrate with the foil by co-extrusion, lamination or extrusion lamination, wherein the at least a partially cross-linked material of the coating layer D undergoes a further cross-linking.
20 . The process according to claim 19 , wherein the multi-layer article is a high-pressure laminate and the coating the substrate with the foil is carried out at a pressure of from 1 MPa to 20 MPa, and a temperature of from 120° C. to 220° C.