SURFACE COVERING AND METHOD FOR THE MANUFACTURE THEREOF
20230073511 · 2023-03-09
Inventors
Cpc classification
B05D7/576
PERFORMING OPERATIONS; TRANSPORTING
C09D4/00
CHEMISTRY; METALLURGY
C09D143/02
CHEMISTRY; METALLURGY
C09D175/16
CHEMISTRY; METALLURGY
B05D2425/01
PERFORMING OPERATIONS; TRANSPORTING
C09D201/02
CHEMISTRY; METALLURGY
B05D2430/00
PERFORMING OPERATIONS; TRANSPORTING
B05D3/067
PERFORMING OPERATIONS; TRANSPORTING
B05D7/582
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05D7/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a surface covering including: a wood-based substrate; a surface coating layer, the surface coating layer being obtained by the irradiation of a radiation-curable coating agent with UV light having a wavelength included from 120 nm to 230 nm; and a filler coating layer, the filler coating layer being located between the wood-based substrate and the surface coating layer. Also disclosed is a method for the manufacture of such a surface covering.
Claims
1. A surface covering comprising: a wood-based substrate, a surface coating layer, said surface coating layer being obtained by the irradiation of a radiation-curable coating agent with UV light having a wavelength comprised from 120 nm to 230 nm, and a filler coating layer, said filler coating layer being located between the wood-based substrate and the surface coating layer.
2. The surface covering of claim 1, wherein the irradiation of the radiation-curable coating agent is followed by the curing of said coating by means of actinic radiation.
3. The surface covering of claim 2, wherein the curing is carried out by irradiation with UV light having a wavelength comprised from 200 nm to 420 nm.
4. The surface covering of claim 1, wherein the thickness of the filler coating layer is comprised from 5 .Math.m to 40 .Math.m .
5. The surface covering of claim 1, wherein the filler coating layer is obtained by actinic radiation .
6. The surface covering of claim 1, wherein the radiation-curable coating agent contains at least one radiation-curable binder and at least one photoinitiator.
7. The surface covering of claim 6, wherein the radiation-curable binder derives from the oligomers and/or polymers selected from the group consisting of: (meth)acrylate copolymers, polyether (meth)acrylates, polyester (meth)acrylates, epoxy (meth)acrylates, urethane (meth)acrylates, amino (meth)acrylates, melamine (meth)acrylates, silicone (meth)acrylates, and phosphazene (meth)acrylates.
8. The surface covering of claim 1, wherein the radiation-curable coating agent further contains at least one further ingredient, selected from the group consisting of: reactive thinners to reduce the viscosity, additives, light stabilisers, stabilisers, pigments, fillers, solvents, matting agents, and mixtures thereof.
9. The surface covering of claim 1, wherein a primer coating layer is located between the wood-based substrate and the filler coating layer.
10. The surface covering of claim 9, wherein the primer coating layer is obtained by actinic radiation.
11. The surface covering of claim 1, wherein at least one sealer layer is located between the filler coating layer and the surface coating layer.
12. A method for the manufacture of a surface covering of claim 1, comprising the following steps: obtaining a wood-based substrate having at least a wood-based upper layer made of wood or derived from wood; coating the wood-based substrate, by applying a filler coating layer on the upper surface; applying a radiation-curable coating agent on the filler coating layer for the formation of a radiation-curable coating; and irradiation of the radiation-curable coating with UV light having a wavelength comprised from 120 nm to 230 nm .
13. The method of claim 12, further comprising curing the radiation-curable coating using actinic radiation with UV light having a wavelength comprised from 200 nm to 420 nm .
14. The method of claim 12, comprising the following steps: obtaining a wood-based substrate having at least an upper layer made of wood or derived from wood, coating the wood-based substrate, by applying a first layer of coating on the upper surface, said first layer of coating being a primer coating layer, applying a second layer of coating on the first layer of coating, said second layer of coating being a filler coating layer, applying a third layer of coating on the second layer of coating, said third layer of coating comprising at least one sealer layer; applying a radiation-curable coating agent on the third layer of coating for the formation of a radiation-curable coating; and irradiating the radiation-curable coating with UV light having a wavelength comprised from 120 nm to 230 nm .
15. The method of claim 12, wherein the irradiation of the radiation-curable coating takes place in an inert gas atmosphere.
16. The method of claim 12, wherein the step of coating the wood-based substrate further comprises curing the filler layer of coating using actinic radiation, and the method comprises the further step of curing the radiation-curable coating using actinic radiation.
17. The method of claim 14, further comprising sanding at least one of: the upper surface defined by the upper layer; the upper surface defined by the primer coating layer; the upper surface defined by the filler coating layer; and the upper surface defined by the third layer of coating.
18. The method of claim 14, further comprising curing the radiation-curable coating using actinic radiation in the form of UV light having a wavelength between 200 nm and 420 nm.
19. The method of claim 18, wherein the curing of the radiation-curable coating uses actinic radiation in the form of UV light having a wavelength between 280 nm and 420 nm.
20. The method of claim 13, comprising: obtaining a wood-based substrate having at least an upper layer made of wood or derived from wood, coating the wood-based substrate, by applying a first layer of coating on the upper surface, said first layer of coating being a primer coating layer, applying a second layer of coating on the first layer of coating, said second layer of coating being a filler coating layer, applying a third layer of coating on the second layer of coating, said third layer of coating comprising at least one sealer layer; applying a radiation-curable coating agent on the third layer of coating for the formation of a radiation-curable coating; and irradiating the radiation-curable coating with UV light having a wavelength comprised from 120 nm to 230 nm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0110]
[0111]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
Example 1: Preparation of a Surface Covering According to the Invention
[0112] A surface covering according to the invention is prepared according to the following process: [0113] obtaining a wood-based substrate having an upper layer made of wood or derived from wood; [0114] applying a first layer of coating on the upper layer with a roller, said first layer of coating being a primer coating layer (UVILUX PRIMER 671-172); [0115] curing of said layer with a Hg lamp; [0116] applying a second layer of coating on the first layer of coating with a roller, said second layer of coating being a filler coating layer (UVILUX FILLER 611-107); [0117] curing of said layer with a Hg lamp; [0118] applying a third layer of coating on the second layer of coating with a roller, said third layer of coating being a first sealer layer (UVILUX SEALER 661-172) [0119] curing of said layer with a Hg lamp; [0120] applying a fourth layer of coating on the third layer of coating with a roller, said fourth layer of coating being a second sealer layer (UVILUX SEALER 661-172) [0121] curing of said layer with a Hg lamp; [0122] applying a fifth layer of coating on the fourth layer of coating with a roller, said fifth layer of coating being a third sealer layer (UVILUX SEALER 661-172) [0123] curing of said layer with a Hg lamp; [0124] applying a radiation-curable coating agent with a roller on the fifth layer of coating for the formation of a radiation-curable coating (ADLER TOPCOAT EXC); [0125] irradiation of the radiation-curable coating with UV light having a wavelength of 172 nm; and [0126] curing of said radiation-curable coating with Hg lamps;
[0127] Said wood-based substrate has a composition identical to wood-based substrate from the Oak Professional (Tarkett). The total thickness of the substrate is 13 mm, including an upper layer with a thickness of 2.5 mm.
[0128] Said primer coating layer has a thickness of 25 .Math.m.
[0129] Said filler coating layer has a thickness of 25 .Math.m.
[0130] Said first sealer layer, second sealer layer and third sealer are forming a sealer layer having a thickness of 50 .Math.m
[0131] Said radiation-curable coating has a thickness of 10 .Math.m.
Example 2: Gloss Properties
[0132] The gloss is measured in Gloss Unit (UG). This measure is based on the amount of reflected light on a surface in comparison with a standard polished glass surface. The amount of reflected light on the surface depends on the angle of incidence.
[0133] These measures are carried out for several angles of incidence (60° or 85°) on the basis of the standard NF EN ISO 2813.
[0134] At 60°, values below 6 are considered as low gloss, and at 85°, values below 12 are considered as low gloss.
[0135] The surface covering of example 1 (invention) is tested for its gloss properties and other prior art surface coverings comprising a wood-based substrate are also tested.
TABLE-US-00001 A (comp.) B (comp.) Example 1 (invention) Gloss 60° 3.5 10 5 Gloss 85° 2.8 20 9
[0136] A: Oak Concerto White (Boen) [0137] B: Oak Professional Proteco Natura (Tarkett)
[0138] The surface coverings of example 1 (invention) and sample A have a low gloss value. The sample B has not a low gloss value
Example 3: Cleaning Properties
[0139] The surface covering according to the invention as well as prior art wood surface coverings are tested for their cleaning properties by the following soiling and cleaning test:
[0140] 2 mL of a soiling solution (solution of black carbon) is spread on said surfaces and the surface is left to dry for 2 minutes. Then, the soiled surface is clean with a dry tissue to evaluate cleaning ability with a dry cleaning. The color difference before and after the soiling/cleaning step can be visually evaluated and measured with a colorimeter if needed.
[0141] Similar method can be done with a wet tissue to evaluate cleaning ability with a wet cleaning. [0142] A: Oak Concerto White (Boen) [0143] B: Oak Professional Proteco Natura (Tarkett)
[0144] As seen in
Example 4: Wear Resistance
[0145] The wear resistance is measured by using EN 1396 standard.
TABLE-US-00002 A (comp) B (comp) Example 1 (invention) Number of revolutions 1550 3000 3000 Coating thickness (.Math.m) <50 100 100
[0146] A: Oak Concerto White (Boen) [0147] B: Oak Professional Proteco Natura (Tarkett)
[0148] The more the number of revolutions is important, the more the wear resistance is good.The wear resistance is better for sample B and the surface covering of Example 1 (invention) because their coating thickness is larger (100 .Math.m) than sample A (<50 .Math.m).
[0149] It was possible to have such a big thickness while staying low in gloss and very good in cleaning ability thanks to the invention.