Claims
- 1. A process for manufacturing a metallized substrate comprising the steps of:
- providing a substrate;
- depositing a first coating layer containing a radiation curable non-volatile film former;
- vacuum depositing a layer of metal material to form a discontinuous film covering the first coating layer including a plurality of discrete islands of a metal material appearing macroscopically as a continuous film of such metal and having a plurality of macroscopically unobservable channels between the islands to maintain the film electrically non-conductive over the first coating layer; and
- depositing a layer of clear resinous protective dielectric topcoat containing a radiation curable non-volatile film former to completely cover the layer of vacuum deposited corrosive metal material and filling the channels for bonding the metal material to the first coating layer throughout the bottom of the channels.
- 2. The process for manufacturing a metallized substrate as set forth in claim 1 wherein the first coating layer is one of a combined primer/basecoat layer and separately applied primer and basecoat layers.
- 3. The process for manufacturing a metallized substrate as set forth in claim 2 wherein the primer, basecoat, combined primer/basecoat and topcoat layer have a thickness in the range of 0.5 mil to 2.5 mils and each layer can have the same or different thickness.
- 4. The process for manufacturing a metallized substrate as set forth in claim 3 wherein the topcoat layer has a thickness of 2.0 mils.
- 5. The process for manufacturing a metallized substrate as set forth in claim 1 wherein the radiation curable non-volatile film former is selected from the group consisting of melamine acrylate, urethane acrylate, epoxy acrylate and polyester acrylate.
- 6. The process for manufacturing a metallized part as set forth in claim 1 wherein the substrate is made from a material selected from the group consisting of crystalline and amorphous thermoplastic elastomers, polyester alloys, thermoplastic olefins, polyamide alloys and metals.
- 7. The process for manufacturing a metallized substrate as set forth in claim 1 wherein the substrate is a sheetstock, with a thickness from 0.002 to 2.0 inches, selected from the group consisting of crystalline and amorphous thermoplastic elastomers, polyester alloys, thermoplastic olefins, polyamide alloys, metals, polyester elastomers, polyurethane elastomers thermoplastic polyesters, vinyls, textiles and cellulose based materials.
- 8. The process of claim 7 further characterized by the step of abrading the metal layer in random or structured patterns prior to topcoating.
- 9. The process of claim 7 further characterized by the step of splattering the metal layer with an acid selected from the group consisting of 1% nitric, sulfuric and hydrochloric acid prior to topcoating wherein a mottled effect visual effect is provided.
- 10. The process of claim 1 wherein the exposure to the radiation occurs spaced from the depositing of the coating layer, whereby the excess coating layer can be collected and recycled for reuse.
- 11. The process of claim 1 wherein a photoinitiator is added to the radiation curable non-volatile film former.
- 12. The process of claim 11 wherein the photoinitiator is selected from the group consisting of phenylketones, benzophenone, diazonium salts, diaryliodonium salts, triarylsulphonium salts, benzoin ethers, thioxantones and oxime esters.
- 13. A process for manufacturing a metallized trim for apparel comprising the steps of:
- providing a substrate suitable for apparel trim;
- depositing a first coating layer containing a radiation curable non-volatile film former on the substrate;
- vacuum depositing a layer of metal material to form a discontinuous film covering the first coating layer including a plurality of discrete islands of a metal material appearing macroscopically as a continuous film of such metal and having a plurality of macroscopically unobservable channels between the islands to maintain the film electrically non-conductive over the first coating layer; and
- depositing a layer of clear resinous protective dielectric topcoat containing a radiation curable non-volatile film former to completely cover the layer of vacuum deposited corrosive metal material and filling the channels for bonding the metal material to the first coating layer throughout the bottom of the channels.
- 14. The process for manufacturing a metallized trim for apparel as set forth in claim 13 wherein the first coating layer is one of a combined primer/basecoat layer and separately applied primer and basecoat layers.
- 15. The process for manufacturing a metallized trim for apparel as set forth in claim 13 wherein the substrate is made from a sheetstock selected from the group consisting of crystalline and amorphous thermoplastic elastomers, polyester alloys, thermoplastic olefins, polyamide alloys, metals, polyester elastomers, polyurethane elastomers thermoplastic polyesters, vinyls, textiles and cellulose based materials.
- 16. The process of claim 13 further characterized by the step of abrading the metal layer in random or structured patterns prior to topcoating.
- 17. The process of claim 13 further characterized by the step of splattering the metal layer with an acid selected from the group consisting of 1% nitric, sulfuric and hydrochloric acid prior to topcoating wherein a mottled effect visual effect is provided.
- 18. The process of claim 13 wherein a photoinitiator is added to the radiation curable non-volatile film former.
Parent Case Info
This application is a continuation of application(s) Ser. No. 08/426,101 filed on Apr. 21, 1995, now abandoned, which is incorporated herein by reference in its entirety.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
5384161 |
Eisfeller et al. |
Jan 1995 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
426101 |
Apr 1995 |
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