Claims
- 1. Continuous-line polymeric coating operations for a single surface of rigid flat-rolled sheet metal substrate, comprising the steps of
(A) supplying elongated rigid flat-rolled sheet metal continuous-strip substrate selected from the group consisting of,
(i) flat-rolled low-carbon steel, (ii) flat-rolled aluminum, and (iii) flat-rolled aluminum-magnesium alloy traveling in-line in the direction of its length, presenting a pair of opposed substantially-planar corrosion-protected external surfaces, extending width-wise between longitudinally-extending lateral edges of said substrate; (B) activating a single corrosion-protected surface of said substrate for polymeric coating adhesion, while traveling in-line, by selecting from the group consisting of
(i) impinging controlled content open-flame across said single surface between said lateral edges for producing an oxidizing-reaction loss of electrons from said surface, (ii) establishing corona discharge across said surface, ionizing gas contacting said single-surface resulting in loss of electrons from said surface, and (iii) combinations of (a) and (b), in any sequence; while (iv) providing for optionally electing to cleanse said remaining substrate surface of surface oil and associated debris, as deemed helpful in avoiding surface contamination in preparing work-product for shipment; (C) supplying to said continuous-line operations thermoplastic polymeric material in the form of a solid-film, by pre-selecting said solid-film from the group consisting of
(i) polypropylene (ii) a polyester selected from the group consisting of
(a) PET (b) PBT, and (c) combinations of PET and PBT, (iii) polycarbonates, (iv) polyamides, (v) polyethylenes, (vi) polyvinylidene fluoride (PVDF), (vii) polyvinylidene fluoride/polyacrylic combinations, and (viii) polyvinyl fluoride (PVF); (D) pre-selecting thermoplastic polymeric material having adhesive characteristics from the group consisting of
(i) maleic-anhydride modified polypropylene, (ii) maleic anhydride modified low density polyethylene, (iii) ethylene acrylate acid-modified with an anhydride, (iv) ethyl methacrylate copolymer, acid-modified, such as with maleic anhydride, and (v) maleic-anhydride modified terpolymer; (E) preparing said thermoplastic polymeric material having adhesive characteristics by heating, melting and pressurizing for introducing as molten thin-film into said continuous-line polymeric-coating operations; (F) extruding said molten thin-film presenting a pair of substantially-planar opposed molten-film surfaces for associating multiple-polymeric-layers for in-line travel with said activated substrate surface during said continuous-line polymeric-coating operations; (G) directing travel of said rigid sheet metal continuous-strip substrate, free of a heating requirement, for said in-line polymeric-coating operations, by:
(i) presenting the single activated-surface, of said substrate, as directed for in-line travel, for bonding with one of said pair of molten film surfaces as extruded into said in-line polymeric-coating operations, while (ii) substantially-simultaneously directing said pre-selected polymeric solid-film for bonding with the remaining surface of said pair of molten thin-film surfaces, as extruded; with (iii) said bonding, on each of said pair of molten-film surfaces, being carried-out, by:
(a) depositing said molten thin-film to extend width-wise across said activated substrate surface, and, further to form a polymeric-overhang at each said lateral edge, (b) depositing said solid-film width-wise co-extensively with the remaining molten-surface of said pair of molten thin-film surfaces, (c) forming combined polymeric layers extending overhang beyond each said respective lateral edge of said substrate; (H) correlating feed rate of said solid-film with in-line travel rate of said substrate, while (I) coordinating quantitative extrusion of said molten film, to enable (J) establishing said multiple-polymeric layers and overhang, traveling in-line as associated with said single activated-surface of said substrate by said molten-film; (K) solidifying said molten-film polymeric layer during continuing in-line travel of said multiple-polymeric-layer coated substrate in the direction of its length, including
(i) removing heat from said molten-film by contacting said activated surface of said substrate which is being directed in-line free of a heating requirement, (ii) removing heat by said solid-film contacting a controlled temperature-modulating roll peripherally as directed for in-line travel with said multiple-polymeric layers, and (iii) internally cooling said temperature-modulating roll for said peripheral travel; (L) trimming solidified polymeric-overhang from each said lateral edge of said substrate, and (M) directing said substrate for selecting from the group consisting of
(i) preparing for direct transfer from said polymeric-coating operations, and (ii) carrying-out finish-processing of said single-surface multiple-polymeric-layer coated substrate, before directing for transfer; with (iii) said finish-processing, including:
(a) heating said multiple-polymeric-layers on said single-surface polymeric-coated substrate for achieving melt temperature characteristics in said polymeric layers, (b) continuing in-line travel of said substrate as heated in the direction of its length, for (c) implementing coverage of said corrosion-protected topography and augmenting bonding of said multiple-polymeric-layers, then (d) rapidly-cooling said multiple-polymeric-layers, through glass-transition-temperature, resulting in (e) establishing amorphous characteristics in said multiple-polymeric-layers, while also (f) cooling said strip; then (N) directing said single-surface finish-processed multiple-polymeric-layer-coated substrate for preparation for transfer from said polymeric-coating continuous-line operations.
- 2. Continuous-line polymeric-coating of both surfaces of elongated flat-rolled sheet metal substrate, comprising the steps of
(A) supplying elongated rigid flat-rolled sheet metal continuous-strip substrate selected from the group consisting of
(i) flat-rolled low-carbon steel, (ii) flat-rolled aluminum, and (iii) flat-rolled aluminum-magnesium alloy traveling in-line in the direction of its length, presenting a pair of substantially-planar opposed corrosion-protected external surfaces, extending width-wise between longitudinally-extending lateral edges of said substrate; (B) activating a single surface, of said pair of corrosion-protected surfaces while said strip is traveling in-line, for polymeric adhesion, by selecting from the group consisting of:
(i) impinging controlled-content open-flame, across said single surface providing an oxidizing reaction with loss of electrons from said single-surface, (ii) establishing corona discharge across said single surface, ionizing gas acting on said single surface resulting in loss of electrons from said single-surface, and (iii)combinations of (i) and (ii) above, in any sequence; (C) pre-selecting thermoplastic polymeric-material as supplied in the form of a solid film, from the group consisting of
(i) polypropylene (ii) a polyester selected from the group consisting of
(a) PET (b) PBT, and (c) combinations of PET and PBT, (iii) polycarbonates, (iv) polyamides, (v) polyethylenes, (vi) polyvinylidene, fluoride (PVDF), (vii) polyvinylide fluoride/polyacrylic combinations, and (viii) polyvinyl fluorides (PVF). (D) pre-selecting thermoplastic polymeric material, having adhesive characteristics, from the group consisting of
(i) maleic-anhydride modified polypropylene, (ii) maleic anhydride modified low density polyethylene, (iii) ethylene acrylate acid-modified with an anhydride, (iv) ethyl methacrylate copolymer, acid-modified (such as with maleic anhydride), and (v) maleic-anhydride modified terpolymer capable of: (a) extruding as a molten thin-film extending width-wise and beyond lateral edges of said strip, presenting a pair of substantially-planar, opposed molten film surfaces, with each having (b) adherence characteristics for bonding one of said pair of molten film surfaces with said single activated surface, free of requirement for heating said substrate surface, and (c) bonding the remaining molten film surface, of said pair, with said pre-selected polymeric material solid-film; (E) preparing said pre-selected polymeric material having adhesive characteristics by heating and pressurizing for extruded introduction of said molten thin-film for said in-line polymeric-coating operations; (F) directing travel of said strip, free of a heating requirement for said substrate surface, while positioning said single activated surface for polymeric coating; (G) extruding said pre-selected thermoplastic polymeric material having adhesive characteristics as a molten thin-film, presenting said pair of substantially-planar opposed molten surfaces, with
(i) one of said pair of molten surfaces contacting and adhering to said single activated surface, across strip width, and extending further, (ii) forming a polymeric overhang along each lateral edge of said strip, while said strip is traveling in-line; (H) substantially-simultaneously feeding said pre-selected polymeric material solid-film, in the direction of its length, co-extensively width-wise with said molten thin-film,
(i) correlating feed of said solid-film in the direction of its length with travel rate of said strip in the direction of its length, while (ii) coordinating quantitative extrusion of said molten film, (iii) establishing contact of said solid-film with the remaining surface of said pair of molten surfaces, (iv) extending co-extensively with said extruded thin film forming polymeric overhang at each lateral-edge of said substrate, while
(a) bonding one surface, of said pair of said pair of molten surfaces as extruded, with said single activated substrate surface, (b) bonding the remaining of said pair of molten surfaces having adhesive characteristics with said solid-film across strip width, and, extending further: (c) forming a combined multiple-polymeric-layer overhang at each lateral edge of said continuous-strip substrate; (I) solidifying said molten thin-film during travel of said multiple-polymeric-layers associated with said single activated corrosion-protected strip surface; (J) trimming solidified polymeric overhang from each lateral edge of said strip, while said strip is traveling in-line; (K) activating the remaining surface of said pair of opposed corrosive-protected surfaces of said strip substrate, while said strip is traveling in the direction of its length, with said surface activation being carried out as set forth in Paragraph (B) above; (L) pre-selecting a solid-film polymeric material from the group set forth in Paragraph (C) above; (M) pre-selecting a thermoplastic polymeric material, having adhesive characteristics, from the group set forth in Paragraph (D) above; (N) preparing said pre-selected thermoplastic polymeric material, having adhesive characteristics, as set forth in Paragraph (E) above for molten thin-film extrusion; (O) controlling travel and positioning of said activated-surface of said continuous-strip substrate for polymeric coating, free of a heating requirement for said substrate as set forth in Paragraph (F) (P) extruding said pre-selected thermoplastic polymeric material having adhesive characteristics as a molten thin-film, presenting a pair of substantially-planar opposed molten surfaces, as set forth in Paragraph (G) above, extending across width of said remaining corrosion-protected strip surface, and extending further forming a polymeric overhang at each lateral edge of said strip, of said remaining surface; (Q) substantially-simultaneously feeding said polymeric solid film for contact with the remaining surface, of said pair of opposed molten surfaces, while correlating feed of said solid film with travel rate of said strip, and coordinating feed of molten thin-film, establishing multiple-polymeric-layers as set forth in Paragraph (H) above on said remaining activated surface; (R) solidifying said molten thermoplastic extruded thin-film during travel in-line associated with said remaining activated surface of said strip, as set forth in Paragraph (I) above; (S) trimming said polymeric overhang, formed as set forth in Paragraph (H) above, from each lateral edge of said strip while continuing travel in the direction of its length, as set forth in Paragraph (J) above; (T) selecting from the group consisting of
(i) preparing said dual-surface polymeric-coated strip for transfer, and (ii) directing said dual-surface polymeric-coated strip for finish processing; in which, said finish-processing includes
(a) simultaneously heating said polymeric layers on establishing melt temperature characteristics for said layers on each respective surface, (b) continuing in-line travel of said strip, before initiating cooling, while melt characteristics exist in said multiple-polymeric layers, for (c) augmenting bonding of each said polymeric layers with each respective strip substrate surface and bonding within said multiple-polymeric-layers on each said opposed surface of said strip, then (d) rapidly-cooling said polymeric layers on each respective surface of said substrate strip through glass-transition-temperature, while also cooling said continuous-strip, utilizing a quench-bath liquid, resulting in (e) simultaneously establishing amorphous characteristics in said multiple-polymer layers on each respective substrate surface, then (f) directing said finish-processed dual-surface multiple-polymeric-layer coated strip for preparing for transfer.
- 3. The process of claim 1, in which
(a) said flat-rolled low-carbon steel includes a non-ferrous metallic corrosion-protective coating for opposed surfaces of such steel substrate, selected from the group consisting of:
electrolytically-plated tin, electrolytically-plated chrome/chrome oxide, electrolytically-plated cathodic dichromate, dip-coated cathodic dichromate, electrolytically-plated zinc, and hot-dip coated zinc spelter; (b) said flat-rolled aluminum includes corrosion-protection selected from the group consisting of
chemical treatment conversion-coating, electrochemical conversion-coating, chromadizing, and chromate treatment; (c) said flat-rolled aluminum/magnesium alloy includes corrosion-protection selected from the group consisting of
aluminum oxide, conversion-coating, chromadizing, and chromate treatment.
- 4. The process of claim 2, in which:
(a) said low-carbon steel includes a non-ferrous corrosion-protective coating for opposed surfaces of such steel substrate, selected from the group consisting of:
electrolytically-plated tin, electrolytically-plated chrome/chrome oxide, electrolytic-plated cathodic dichromate, dip-coated cathodic dichromate treatment, electrolytically-plated zinc, and hot-dip coated zinc spelter; (b) said flat-rolled aluminum corrosion-protection selected from the group consisting of
aluminum oxide, conversion-coating, chromadizing, chromate treatment; and (c) said flat-rolled aluminum/magnesium alloy includes corrosion-protection selected from the group consisting of
chemical conversion coating, electrochemical conversion-coating, chromadizing, and chromate treatment.
- 5. Composite-coated flat-rolled sheet metal, comprising
rigid flat-rolled sheet metal substrate having substantially-planar opposed corrosion-protected surfaces, with solely a single surface additionally presenting external polymeric coating which includes, multiple-polymeric layers, consisting essentially of a combination of an extruded molten polymeric tie-layer, having adhesive characteristics, bonding a polymeric solid-film layer to said single-surface, produced in accordance with the process of claim 3.
- 6. Composite-coated flat-rolled sheet metal, comprising
rigid flat-rolled sheet metal substrate, having substantially-planar opposed corrosion-protected surfaces, with each said corrosion-protected surface additionally presenting external polymeric coating, by bonding multiple-polymer-layers, consisting essentially of a combination of an extruded polymeric tie-layer, having adhesive characteristics, contacting each respective corrosion-protected surface, and bonding an externally-located polymeric solid-film on each respective tie-layer surface, produced in accordance with the process of claim 4.
- 7. Continuous-line apparatus for polymeric-coating of rigid corrosion-protected flat-rolled sheet metal continuous-strip substrate, comprising
(A) means for supplying, for in-line travel in the direction of its length, of rigid flat-rolled corrosion-protected sheet-metal continuous-strip substrate, selected from the groups consisting of
flat-rolled low-carbon steel flat-rolled aluminum, and flat-rolled aluminum-magnesium alloy; (B) means for directing in-line travel of said substrate in the direction of its length, with opposed substantially-planar corrosion-protected surfaces extending width-wise between longitudinally-extending lateral edges of said elongated substrate; (C) means for activating a single substantially-planar surface of said corrosion-protected substrate, while traveling in-line, for enhancing polymeric adhesion with said single activated surface,
said single-surface activating means being selected from the group consisting of (i) means for impinging controlled-content open-flame across width-wise of said single-surface causing loss of electrons from said surface, (ii) corona discharge means for ionizing gaseous atmosphere contacting said single-surface width-wise of said substrate, causing loss of electrons, and (iii) combinations of (i) and (ii) in any sequence, while providing for cleansing of said remaining substrate surface, as deemed helpful in preventing surface contamination of work-product as prepared for shipment; (D) means supplying thermoplastic polymeric material, having adhesive characteristics, selected from the group, consisting of:
(i) maleic-anhydride modified polypropylene, (ii) maleic anhydride modified low density polyethylene, (iii) ethylene acrylate acid-modified with an anhydride, (iv) ethyl methacrylate copolymer, acid-modified, such as with maleic anhydride, and (v) maleic-anhydride modified terpolymer. (E) means supplying polymeric material as solid-film, at a rate correlated with movement of said substrate, in which said solid film material is selected from the group consisting of
(i) polypropylene (ii) a polyester selected from the group consisting of
(a) PET (b) PBT, and (c) combinations of PET and PBT, (iii) polycarbonates, (iv) polyamides, (v) polyethylenes, (vi) polyvinylidene, fluoride (PVDF), (vii) polyvinylide fluoride/polyacrylic combinations, and (viii) polyvinyl fluorides (PVF). (F) means for preparing said pre-selected polymeric material having adhesive characteristics for introduction to continuous-line coating operations, including
(i) means for heating, melting, and pressurizing said selected polymeric material and (ii) die structure means presenting an elongated die-opening width-wise oriented for molten thin-film extrusion for deposition on said single activated surface, while (iii) said substrate is traveling in the direction of its length; (F) roll means coacting with temperature-modulating roll means
(i) for defining an in-line coating nip means, which is: (ii) positioned for receiving polymeric material for coating said activated continuous-strip substrate surface; (G) means for
(i) directing said elongated sheet-metal substrate into said coating-nip means, and (ii) positioning said single activated substrate surface for receiving said extruded polymeric molten thin-film extending width-wise of said strip and extending further to form a polymeric overhang at each lateral edge of said strip; (H) means for substantially-simultaneously feeding said pre-selected polymeric solid-film width-wise co-extensive with said molten-film at a rate correlated with said substrate travel rate, into said coating nip means, so as to
(i) establish multiple-polymeric-layers extending width-wise across said single-activated surface and extending further to form multiple-polymeric-layer overhang at each lateral-edge of said strip, traveling with said activated substrate surface; (I) means for heat removal, including peripheral roll-surface contact with said temperature-moderation roll, in addition to heat absorbed by said substrate, for solidifying said polymeric molten-film on said single activated surface while traveling in-line; (J) edge-trimming means for trimming said polymeric overhang from each said lateral edge, while traveling in-line; (K) means for directing said single-surface multiple-polymeric-layer-coated substrate to means selected from the group consisting of
(i) means for preparing said single-surface polymeric coated substrate for direct transfer, and (ii) means for finish-processing of said single-surface polymeric coated substrate before transfer; in which (iii) said finish-processing means, includes
(a) heating means for establishing melt characteristics in said polymeric layers, while said substrate is traveling in the direction of its length, (b) means providing in-line travel in said heated condition for augmenting bonding of said multiple polymeric layers and bonding said layers with said substrate surface, prior to any active cooling, (c) quench-bath means for rapidly-cooling said multiple-polymer-layers through glass-transition-temperature, while (d) said substrate is moving in the direction of its length, for (e) establishing amorphous characteristics throughout said multiple-polymeric-layers, and (f) means for directing said finish-processed substrate, with solidified multiple-polymeric-layers on said single surface, to (g) means for preparing transfer of said finish-processed manufacture product from said continuous-line polymeric-coating apparatus.
- 8. Apparatus for continuous-line polymeric coating of rigid flat-rolled sheet metal corrosion-protected continuous-strip, comprising
(A) means for supplying corrosion-protected rigid substantially-planar flat-rolled sheet-metal continuous-strip selected from the group consisting of
(i) flat-rolled low-carbon steel, (ii) flat-rolled aluminum, and (iii) flat-rolled aluminum/magnesium alloy; with (iv) means for directing in-line travel of said selected substantially-planar corrosion-protected strip presenting opposed surfaces extending width-wise between longitudinally-extending lateral edges of said strip; (B) means for activating a single planar surface of said strip, while traveling in-line, for enhancing polymeric adhesion, selected from the group consisting of
(i) means for controlling content of impinging open-flame so as to cause an oxidizing reaction, loss of electrons, on said single surface across strip-width, (ii) corona discharge means for ionizing gas contacting said single surface, across said strip-width, causing loss of electrons from said surface, and (iii) combinations of (i) and (ii) in any sequence; (C) polymeric supply and preparation means, for providing thin-film extrusion of thermoplastic polymeric material adhesion having capabilities, selected from the group, consisting of:
(i) maleic-anhydride modified polypropylene, (ii) maleic anhydride modified low density polyethylene, (iii) ethylene acrylate acid-modified with an anhydride, (iv) ethyl methacrylate copolymer, acid-modified, such as with maleic anhydride, and (v) maleic-anhydride modified terpolymer. (D) means for supplying thermoplastic polymeric material solid-film, in which said solid film is selected from the group consisting of
(i) polypropylene (ii) a polyester selected from the group consisting of
(a) PET (b) PBT, and (c) combinations of PET and PBT, (iii) polycarbonates, (iv) polyamides, (v) polyethylenes, (vi) polyvinylidene, fluoride (PVDF), (vii) polyvinylide fluoride/polyacrylic combinations, and (viii) polyvinyl fluorides (PVF). (E) preparation means for preparing said polymeric material, having adhesive characteristics, for molten-thin-film extrusion, including
(i) heating, melting, and pressurizing means for said pre-selected thermoplastic polymeric material, and (ii) die structure means having an elongated die opening for molten thin-film extrusion, extending width-wise across said strip, and (iii) extending further, so as to form a polymeric overhang at each lateral edge of said strip, presenting (iv) a pair of opposed substantially-planar molten surfaces; (F) coating-nip means for carrying out polymeric deposition on said activated surface, defined by a pair of coacting rolls, which include
(i) a first roll means, and (ii) a temperature-modulating roll means, with selected peripheral surface area and temperature; (G) means for directing said corrosion-protected strip into said defined coating nip means so as to present said single-activated surface for contact with one of said pair of molten surfaces of said extruded molten thin-film; (H) means for substantially-simultaneously directing said selected solid film polymeric material to be co-extensive width-wise with said molten film, for
(i) bonding with the remaining of said pair of molten surfaces of said molten thin-film, for (ii) establishing multiple-polymeric-layers, extending across strip width; and, further (iii) forming a polymeric overhang traveling associated with said activated surface of said strip; (I) means for heat removal, in addition to contact with said strip at ambient temperature, for
(i) solidifying said molten polymeric material on said single activated surface, during (ii) in-line travel in contact with said temperature-modulating roll surface means; (J) means for trimming said polymeric overhang from each lateral edge of said strip while traveling in-line; (K) in-line means for activating said remaining opposed planar substrate surface of said strip, by selecting activating means from the group as set forth in Paragraph B above, while said strip is traveling in the direction of its length; (L) supply means for polymeric material, having adhesive characteristics, and capable of thin-film extrusion, pre-selected from the group set forth in Paragraph (C) above; (M) means for supplying a polymeric solid-film, pre-selected from the group set forth in Paragraph (D) above; (N) heating, melting and pressurizing means, for said selected polymeric material having adhesive characteristics, connected to die structure means which present elongated die-opening means for molten thin-film extrusion, as set forth in Paragraph (E) above; (O) in-line roll means defining a coating nip for carrying-out polymeric deposition on said remaining activated surface; (P) means for directing said molten-film into said coating-nip for contact of one of said pair of molten surfaces with said activated surface, as set forth in Paragraph (G) above, (Q) means for directing pre-selected polymeric solid-film material for bonding the remaining molten-surface of said pair of molten surfaces of said molten thin-film, as set forth in Paragraph (H) above; (R) in-line heat removal means for solidifying said polymeric material on said strip surface, as set forth in Paragraph (I) above; (S) means for trimming polymeric overhang, traveling with said surface, from each lateral edge of said polymeric-coated strip; (T) means for directing said strip with multiple-polymeric layer coating on each opposed surface, to in-line direction adapting means, enabling directing said strip for selection from the group consisting of
(i) means of preparing said coated strip for transfer from said coating line, and (ii) finish processing means; with said finish-processing means, including (a) heating means for substantially-simultaneously establishing melt characteristics in said multiple-polymeric-layers on each respective surface of said strip, while said strip is traveling in the direction of its length, (b) means providing for in-line travel of said strip with said polymeric layers in said heated condition, for augmenting polymeric adhesion with each said respective strip surface and bonding within said multiple-polymer-layers on each said respective surface, prior to contact with cooling means; (c) cooling-liquid means for rapidly-cooling said multiple-polymer-layers on each respective surface through glass-transition temperature, while such strip is moving in the direction of its length, for (d) establishing substantially-uniform amorphous characteristics in said multiple-polymeric layers on each said strip surface, and (e) means for removing cooling liquid from, and drying, said dual-surface multiple-polymeric-layer finish processed product, followed by (f) means for directing, said strip with solidified multiple-polymeric layers on each said surface, for preparing for transfer from said continuous in-line polymeric coating apparatus.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/460,191 filed Apr. 3, 2003; and, is a continuation-in-part of co-owned and co-pending U.S. patent application Ser. No. 10/367,371 entitled “SURFACE PREPARATION AND POLYMERIC COATING OF CONTINUOUS-STRIP FLAT-ROLLED STEEL AND COATED PRODUCT” filed Feb. 14, 2003; which is a continuation-in-part of co-owned and co-pending U.S. patent application Ser. No. 10/156,471 entitled “METHODS AND APPARATUS FOR SURFACE PREPARATION AND DUAL POLYMERIC LAYER COATING OF CONTINUOUS-STRIP FLAT-ROLLED SHEET METAL, AND COATED PRODUCT” filed May 28, 2002; which is a continuation-in-part of co-owned and co-pending U.S. patent application Ser. No. 10/191,411 entitled “PROCESSING AND APPARATUS FOR PRODUCTION OF ENGINEERED COMPOSITE COMBINING CONTINUOUS-STRIP SHEET METAL AND THERMOPLASTIC POLYMERS”, filed Jul. 9, 2002, which is a continuation-in-part of co-owned and co-pending U.S. patent application Ser. No. 10/156,473 filed May 28, 2002, entitled “PROCESSING AND APPARATUS FOR PRODUCTION OF ENGINEERED COMPOSITE COMBINING CONTINUOUS-STRIP SHEET METAL AND THERMOPLASTIC POLYMERS”, which was a continuation-in-part co-owned and co-pending U.S. Ser. No. 09/767,785, entitled “POLYMERIC COATED METAL STRIP AND METHOD FOR PROCESSING SAME”, filed Jan. 23, 2001; which was a continuation-in-part of co-owned and co-pending, entitled “POLYMERIC COATED METAL AND METHOD FOR PRODUCING SAME”, filed Jan. 24, 2000.
Provisional Applications (1)
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60460191 |
Apr 2003 |
US |
Continuation in Parts (2)
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10367371 |
Feb 2003 |
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10818167 |
Apr 2004 |
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10156471 |
May 2002 |
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10367371 |
Feb 2003 |
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