Metal effect pigments or particles are applied in different applications for producing products showing a metal effect appearance. For example, metal effect pigments or particles may be contained in painting materials or plastic materials to be processed in injecting molding. Metal effect pigments are disclosed, for example, in the documents US 2008/0318012 A1 and US 2011/0094412 A1.
Metal effect pigments or particles are referred to in the European standard IN ISO 18451-1 (for example, version September 2017).
Document US 2012/235075 A1 discloses a solvent-based ink compositions which can be used for ink jet printing in a variety of applications. In particular, the embodiments disclosed are directed to magnetic inks having desirable ink properties. The ink of the embodiments disclosed comprises magnetic nanoparticles that are coated with various materials to prevent the exposure of the nanoparticles to oxygen, and provides robust prints.
In document WO 2006/041658 A1 an encapsulated metallic-look pigment is disclosed, as well as methods to prepare, and uses thereof. Also disclosed are injection molded articles comprising a thermoplastic and the encapsulated metallic-look pigment which show improved weld lines over injection molded articles comprising a thermoplastic and conventional metallic-look pigments.
The article by Susumu Onaka: “Superspheres: Intermediate Shapes between Spheres and Polyhedra” in vol. 4, no. 3 of “symmetry” on pages 336 to 343 published on 3 Jul. 2012 discloses small crystalline precipitates often formed in alloys and having intermediate shapes between spheres and polyhedra.
It is an object of the present disclosure to provide a composition, metal effect pigments, and a method for producing metal effect pigments which allow for improved metal pigment effect.
For solving the object, a composition containing a base material and metal effect pigments according to claim 1 is provided. Further, metal effect pigments and a method for producing metal effect pigments according to claims 9 and 10, respectively, are provided. Embodiments are the subject of dependent claims.
According to an aspect, a composition containing a base material and metal effect pigments contained in the base material, wherein the metal effect pigments are provided with a three dimensional shape selected from the following group: cube, pyramid having triangular outer surfaces, and tetrahedron.
According to another aspect, metal effect pigments are provided, the metal pigments having a three dimensional shape selected from the following group: cube, pyramid having triangular outer surfaces, and tetrahedron.
According to still another aspect, a method for producing metal effect pigments is provided, the method comprising producing metal effect pigments by processing a material, wherein the metal effect pigments are produced with a three dimensional shape selected from the following group: cube, pyramid having triangular outer surfaces, and tetrahedron.
In an embodiment, the metal effect pigments or particles are provided as tetrahedron. The tetrahedron, also known as a triangular pyramid, is a polyhedron composed of four triangular faces, six straight edges, and four vertex corners. The tetrahedron is one kind of pyramid, which is a polyhedron with a flat polygon base and triangular faces connecting the base to a common point. In the case of a tetrahedron the base is a triangle (any of the four faces can be considered the base), so a tetrahedron is also known as a “triangular pyramid”. Compared to other three dimensional shapes proposed here, the tetrahedron is provided with minimized volume.
In different embodiments, such three dimensional shape of the metal effect particles being one of cube, pyramid and tetrahedron may be distorted to at least some extend. For example, height of the tetrahedron may be lowered by up to 70% compared to the height of a “perfect” tetrahedron shape.
The base material may be one of a painting and a coating material. The metal effect pigments or particles are contained in a material suitable for painting or surface coating, for example by spraying. Prior to actual processing for painting or coating the composition may be pre-processed or prepared, for example by adding one or more additives.
The base material may be a plastic material suitable for processing in an injection molding or an extrusion process. In another embodiment, the base material may be a plastic material suitable for processing in hot embossing process or an extrusion process. The metal effect pigments or particles are contained in the plastic material which may be processed by at least one of the processes. Prior to actual processing the composition may be pre-processed or prepared, for example by adding one or more additives.
The edges of the three dimensional shape may be provided with an edge or side length of less than about 200 μm.
The edges of the three dimensional shape may be provided with an edge length of about 20 μm to about 150 μm, preferably with an edge length of about 20 μm to about 100 μm.
The metal effect pigments may be provided with a regular tetrahedron shape. A regular tetrahedron is one in which all four faces are equilateral triangles. In a regular tetrahedron, all faces are the same size and shape (congruent) and all edges are the same length.
The metal effect pigments are made of a material selected from the following group: aluminum, zinc, tin, copper and an alloy of such materials.
The metal effect pigments may have with a core made of a polymer material, wherein the core is provided with a surface metal coating. The metal may be made of a material selected from the following group: aluminum, zinc, tin, copper and an alloy of such materials.
With respect to the method for producing the metal effect pigments, the producing may comprise applying at least one process selected from the following group: cold forming, solid forming such as rolling or pressing, casting, and machining.
For example, the casting may comprise melting the metal or the polymer material and intro-duce the melted metal/polymer material in a plurality of cavities provided on a casting tool. Following, the melt is cooled and the metal effect pigments or particles are separated from the casting tool. In case of the polymer material a core or core body is produced by the casting. The cavities or recesses of the casting tool are having a three dimensional shape selected from the group of cube, pyramid having triangular outer surfaces, and tetrahedron.
In case machining is applied for producing the metal effect particles, a machining tool having working tips provided adjacent to recesses on a working surface of the machining tool may be used.
The method may further comprise: providing a metal foil made of the metal material, and producing the metal effect pigments by processing the metal foil. Alternatively, a bulk material may be provided.
The method may comprise providing a foil or bulk material made of aluminum.
The method may further comprise rolling the metal material such as the metal foil between rollers, wherein at least one of the rollers is provided with a micro surface structure comprising recesses having a three dimensional shape selected from the following group: cube, pyramid having triangular outer surfaces, and tetrahedron. Separated metal effect pigments or particles are produced by the cold forming process. An anti-stick or a release agent may be applied to the surface of the roller(s) provided with the recesses for supporting easy release of the metal effect particles from the roller(s). For separating the metal effect pigments from the roller a separation tool may be used. The separation tool may be provided with a tool element for picking up the metal effect pigments for release. An adhesive agent may be applied to the tool element for more easily picking up the metal effect pigments from the roller. Following, it may be foreseen to separate the metal effect particles from the tool element in a bath of a solution agent. For example, the tool element may be provided with a belt or a conveyor belt configured for picking up the metal effect particles from the roller and transporting the pigments to the bath.
The method may comprise machining the metal material with a revolving tool, wherein the revolving tool is provided with a micro surface structure comprising recesses and/or tips having a three-dimensional shape selected from the following group: cube, pyramid having triangular outer surfaces, and tetrahedron.
Separated metal effect pigments or particles are produced by the cold forming process. An anti-stick or a release agent may be applied to the surface of the roller(s) provided with the recesses for supporting easy release of the metal effect particles from the roller(s). For separating the metal effect pigments from the roller a separation tool may be used. The separation tool may be provided with a tool element for picking up the metal effect pigments for release. An adhesive agent may be applied to the toll element for more easily picking up the metal effect pigments from the roller. Following, it may be foreseen to separate the metal effect particles from the tool element in a bath of a solution agent. For example, the toll element may be provided with a belt or a conveyor belt configured for picking up the metal effect particles from the roller and transporting the pigments to the bath.
For separation, a brush, ultrasound excitation and/or waterjet may also be used or applied.
In the method the processing of the material may comprise producing a core made of a polymer material and having a three dimensional shape selected from the group cube, pyramid having triangular outer surfaces, and tetrahedron; and applying a metal surface coating to the core.
With respect to the metal effect pigments and the method for producing, the aspects disclosed above for the composition may apply mutatis mutandis.
Following, embodiments, by way of example, are described with reference to figures. In the figures show:
In an alternative embodiment (not shown), the metal effect pigments 1 may be separated from the roller 21 by applying a different separation tool such as a brush tool for brushing out the metal effect pigments 1 from the recesses on the roller 21.
After plating, a solid tube of metal 45 with a microstructure on its outer surface is existing. This solid tube 45 is filled with a supporting material 46.
Still another example of a method for producing the metal effect pigments 1 is shown in
Another example of a method for producing the metal effect pigments 1 is depicted in
Still another example of a method for producing the metal effect pigments 1 is depicted in
The features disclosed in this specification, the figures and/or the claims may be material for the realization of various embodiments, taken in isolation or in various combinations thereof.
Number | Date | Country | Kind |
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19192287.1 | Aug 2019 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/073079 | 8/18/2020 | WO |