The present disclosure relates generally to the field of printing, and more specifically to printing photographs on metal substrates.
Printing photos on metal is not a new technique of creating attractive photographs. The prior art provides several methods of ways of printing on metal using latex or UV printers/inks. The prior art also discloses the use of sublimation inks, which are used to initially print on a transfer material, then using a heat press, sublimate or transfer the image from the transfer material onto a piece of metal (normally aluminum) that has been coated to receive these sublimation/heat transfer inks. There is also prior art on creating metal plates with printing on them, where the metal plate has to be covered with some sort of clear plastic coating to seal in the ink.
While these methods are effective in transferring an image onto metal, many aqueous inkjet printers “read” the edges of the metal plate and print up to the edge—rather than over the edge—leaving an undesired “margin” around the edge of the metal plate. These printers do not offer the “edge to edge” printing capabilities that result in top quality, attractive finished products. This is particularly true when printing on metal and other rigid substrates, but even when printing on non-rigid substrates, these printers do not produce truly “edge to edge” finished products. The requirement that the metal picture be covered with a plastic sheet to seal in the ink is also cumbersome and requires a person to make sure there are no bubbles under the plastic covering. Thus, there is a long-felt need for a product that can produce a borderless metal picture without the need for additional covering, and a method by which it can be made. This class of printer is often found at retail locations that will print pictures for the customer on demand.
The current disclosure provides a solution to this problem by describing a combination of a printable coating on a metal plate and a carrier that are connected to each other such that an inkjet printer prints beyond the edge of the metal plate, rather than up to the edge of the metal plate as is the current state-of-the-art. Another key inventive step to this invention is the ability to print directly onto a metal plate without the need to place any layer of material over the finished product. The carrier also has a square or rectangular shape that has been pre-cut into the carrier so that it can be easily removed, for example such that a hanger can be attached to the metal plate through the carrier.
The metal plate print carrier and related method described herein achieves the stated goals by basically tricking certain aqueous inkjet printers to think that the desired “edge” of the print (e.g. photograph) to be transferred to the metal plate is outside the perimeter of the metal plate receiving the print, so that there is no “margin” or “border” left between the edge of the print and the edge of the plate after the printing is completed. The metal plate in the current invention has a special “coating” that accepts the aqueous inks that are common in these printers, as described above, so there is no need to add any plastic sealer or covering after the metal print leaves the printer. The metal plate is not printed on as a single unit, but rather comes on a “carrier” that is larger than the metal itself. The metal plate also utilizes a printable coating so that the ink does not run. By way of example, this printable coating may be a film such as PET, BOPP, Polypropylene, or Polycarbonate that has been coated with a microporous aqueous inkjet-adhering layer. The coating technique can be accomplished with slot die, curtain, gravure, or Mayer rod techniques (for example).
To laminate the coating and film, the backside of the film is coated with a pressure-sensitive adhesive (PSA) coating, and includes a liner that needs to be removed before placement. The film is then placed on a roller, situated above the metal plate that is to be laminated. In a preferred embodiment of the disclosure, the metal plate is made from aluminum, however other metals are possible. The liner is then started on a rewind roller. The film is fed along with the aluminum sheet into a nip point, basically between two rollers, and as the film is pulled off the roller, the liner is rewound onto its roller. The nip point provides pressure to “activate” the adhesive and bond the film to the aluminum.
As previously mentioned, the aqueous inkjet printers will not print edge to edge on the metal media to receive the print, a carrier is used in the printing process. The carrier is larger than the metal plate, and thus allows the printer to print completely across all the edges of the metal plate to create a borderless photograph on the metal plate. For example, if one were to print on an 11″×14″ metal plate using the prior art methods, a resulting picture would have a border of unprinted metal showing the deficiencies of that method. However, by associating the 11″×14″ metal plate with a 16″×20″ carrier, the printer can print the 11″×14″ metal plate without a border. To “trick” the printer into printing beyond the edges of the 11″×14″ metal plate, the entire top layer. or a portion of the top layer, of the carrier has a metalized film to match the metal plate. This “tricks” printer sensors that detect the end of the printable media for example by detecting a change in surface reflectivity as the printer encounters the edge of the printable media. This sensor senses reflectivity, so if the reflectivity of the carrier does not match the reflectivity of the metal close enough, the printer will stop printing before reaching the end of the metal.
Thus, the problem of how to create borderless metal prints is solved by providing a carrier upon which the metal plate is removably attached. The carrier has a surface coating that mimics the metal plate, so printers with edge sensors are tricked into printing beyond the edges of the metal plate. The metal plate has a coating that successfully adheres the ink from the inkjet printer such that the finished product is “edge to edge”, attractive in appearance, and avoids the problems of “runs” and other problems found in the prior art. The lack of need for a final covering also removes cost, and a human-reliant step from the process.
It is a principal object of the disclosure to provide a means by which a metal plate can have a picture printed on it by a standard industry inkjet printer using standard industry ink, without a border or margin.
A further object of the disclosure is to provide a metal plate with a special coating that will allow ink from an inject printer to effectively adhere to the metal plate without problems of running.
A further object of the disclosure is to provide a final product metal print where there is no need for any additional plastic coverings or coatings to seal in the ink.
Another object of the disclosure is to provide a metal plate that has been coated with a combination of a film and a microporous inkjet ink-retaining coat.
It is another object of the disclosure to provide a metal picture plate that is removably attached to a carrier, where the carrier has a width and a length that is greater than the width and length of the metal plate, such that the metal plate can be removably affixed to the carrier such that all the edges of the metal plate are surrounded by the carrier.
A further object of the disclosure is to provide a carrier with an outer surface that is so similar to the metal plate that the sensor on an inkjet printer that senses the edge of the metal plate is tricked into continuing to print over the edges of the metal plate.
An additional object of the disclosure calls for the metal plate to be easily removable from the carrier and where the carrier can be disposed of easily.
Another object of the disclosure is to provide, optionally, for the carrier to be reusable with additional metal plates.
Another object of the disclosure is to provide and easy means by which the metal plate can be hung.
There has thus been outlined, rather broadly, the more important features of the metal photographic plate and carrier in order that the detailed description thereof may be better understood, and in order that the present contribution to the art may be better appreciated. There are additional features that will be described hereinafter and which will form the subject matter of the claims appended hereto. The features listed herein and other features, aspects and advantages of the present disclosure will become better understood with reference to the following description and appended claims.
Many advantages of the present disclosure will be apparent to those skilled in the art with a reading of this specification in conjunction with the attached drawings, wherein like reference numerals are applied to like elements and wherein:
Illustrative embodiments of the disclosure are described below. In the interest of clarity, not all features of an actual implementation are described in this specification. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions must be made to achieve the developers' specific goals, such as compliance with system-related and business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure. The metal photographic plate with carrier and related methods disclosed herein boasts a variety of inventive features and components that warrant patent protection, both individually and in combination.
The front face 18 is completely covered by a printable film layer 26, and defines the printable surface of the metal plate 12. The printable film layer 26 may be any material that is capable of accepting aqueous inkjet ink, including but not limited to (and by way of example only) polyester, polyethylene, Mylar, vinyl, PVC, PET, BOTT, polypropylene, polycorbonate, and acrylics. The key to the selection of the film is that it can accept and retain the aqueous ink from an inkjet printer. According to a preferred embodiment, an inkjet ink-retaining microporous coating may be applied on top of the printable film layer 26 to enhance the ink retention properties of the printable film layer 26. The coating technique can be accomplished (by way of example) with slot die, curtain, gravure or Mayer rod techniques. It should be noted, however, that the key characteristics of the printable film layer 26 include, but are not limited to, ink adhesion and retention properties, cost, and optical clarity. With the use of this specialized printable film 26, there is no need for any “final” covering sheet or other process to seal in the ink after the metal print leaves the printer.
The carrier 14 has front face 28, a back face 30, and a perimeter 32. The carrier 14 is sized and configured such that carrier 14 is larger than the metal plate 12, and more specifically such that the entire perimeter 32 of the carrier 14 is outside of the entire perimeter 22 of the metal plate 12 when the metal plate 12 is associated with the carrier 14. The respective perimeter shapes of the metal plate 12 and carrier 14 do not have to match. In the example shown in
The front face 28 of the carrier 14 has an external coat that mimics the printable film layer 26 of the metal plate 12 such that the printer prints over the edges 24 of the metal plate 12 onto the carrier 14. This results in the metal plate 12 having printing 37 over its entire front face 18, and then leaving a narrow strip of overlap printing 38 in the print zone 36 of the carrier 14 that surrounds the edges 24 of the metal plate 12, while leaving an unprinted section 40 of the carrier 14 that was not printed upon, as shown in
The carrier 14 further includes at least one metal plate engaging element 42 configured to engage the metal plate 12 and maintain the association of the metal plate 12 and carrier 14 through the printing process. By way of example, the plate engaging element 42 of the instant embodiment comprises adhesive strips that secure the metal plate 12 to the front surface 28 of the carrier 14 during the printing process, as shown in
The back face 30 of the carrier 14 includes at least one perforated section that is removable to create a cutout opening 44 through which the hanging element 16 may be attached to the back face 20 of the metal plate 12 prior to disassociating the metal plate 12 and carrier 14. By way of example, the cutout opening 44 is shown as having a generally rectangular (or square) shape, however any shape is possible that allows passage of the hanging element 16 therethrough. The back face 20 of the metal plate 12 includes a leveling indicia 46 that serves as an alignment guide for placing the hanging element 16 on the back of the metal plate 12 as the hanging element 16 is inserted into the cutout opening 44 of the carrier 14.
The hanging element 16 of the present disclosure may be any attachable element or object that enables a user to hang the metal plate 12 on a wall. By way of example only, the hanging element 16 shown in
The front face 118 is completely covered by a printable film layer 126, and defines the printable surface of the metal plate 112. The printable film layer 126 may be any material that is capable of accepting aqueous inkjet ink, including but not limited to (and by way of example only) polyester, polyethylene, Mylar, vinyl, PVC, PET, BOTT, polypropylene, polycarbonate, and acrylics. The key to the selection of the film is that it can accept and retain the aqueous ink from an inkjet printer. According to a preferred embodiment, an inkjet ink-retaining microporous coating may be applied on top of the printable film layer 126 to enhance the ink retention properties of the printable film layer 126. The coating technique can be accomplished (by way of example) with slot die, curtain, gravure or Mayer rod techniques. It should be noted, however, that the key characteristics of the printable film layer 126 include, but are not limited to, ink adhesion and retention properties, cost, and optical clarity. With the use of this specialized printable film 126, there is no need for any “final” covering sheet or other process to seal in the ink after the metal print leaves the printer.
The carrier 114 has front face 128, a back face 130, and a perimeter 132. The carrier 114 is sized and configured such that carrier 114 is larger than the metal plate 112, and more specifically such that the entire perimeter 132 of the carrier 114 is outside of the entire perimeter 122 of the metal plate 112 when the metal plate 112 is associated with the carrier 114. The respective perimeter shapes of the metal plate 112 and carrier 114 do not have to match. In the example shown in
The front face 128 of the carrier 114 has an external coat that mimics the printable film layer 126 of the metal plate 112 such that the printer prints over the edges 124 of the metal plate 112 onto the carrier 114. This results in the metal plate 112 having printing 137 over its entire front face 118, and then leaving a narrow strip of overlap printing 138 in the print zone 136 of the carrier 114 that surrounds the edges 124 of the metal plate 112, while leaving an unprinted section 140 of the carrier 114 that was not printed upon, as shown in
The carrier 114 further includes at least one metal plate engaging element 142 configured to engage the metal plate 112 and maintain the association of the metal plate 112 and carrier 114 through the printing process. By way of example, the plate engaging element 142 of the instant embodiment comprises adhesive strips 142 that secure the metal plate 112 within a cutout opening 144 formed through the carrier 114 during the printing process, as shown in
The cutout opening 144 is sized and configured to receive the entire perimeter 122 of the metal plate 112 thereby creating a recessed association between the metal plate 112 and carrier 114. By way of example, the cutout opening 144 is shown as having a generally rectangular (or square) perimeter shape, however any shape is possible that receives and securely engages the metal plate 112 during printing. In order to be able to receive the metal plate 112 therein, the perimeter of the cutout opening 144 must be larger than the perimeter 122 of the metal plate 112. Preferably, the distance between any part of the perimeter 122 of the metal plate 112 and the perimeter edge of the cutout opening 144 is within the range of 0.005-0.015″. Gaps larger than 0.015″ may cause the printer to detect the edge of the metal plate 112 and stop printing. Gaps smaller than 0.005″ may cause the metal plate 112 to not fit within the cutout opening 144, especially in warm and/or humid climates.
The recessed association between the metal plate 112 and carrier 114 is advantageous in that it decreases the overall thickness of the plate/carrier combination, which in turn reduces the risk of metal plate 112 making contact with any of the internal components of the printer. Since most of the commercially available wide format aqueous inkjet printers that are compatible with the printing template 110 disclosed herein have a maximum allowable material thickness of approximately 1.5 mm, a recessed association between the plate 112 and carrier 114 enables a decrease in overall thickness of the printing template 110 and/or and increase in the thickness of the metal plate 112 to be printed on.
The hanging element (not shown) of the present embodiment is identical to the hanging element 16 described above, and may be attached to the back face 120 of the metal plate 112 through the cutout opening 144.
The front face 218 is completely covered by a printable film layer 226, and defines the printable surface of the metal plate 212. The printable film layer 226 may be any material that is capable of accepting aqueous inkjet ink, including but not limited to (and by way of example only) polyester, polyethylene, Mylar, vinyl, PVC, PET, BOTT, polypropylene, polycorbonate, and acrylics. The key to the selection of the film is that it can accept and retain the aqueous ink from an inkjet printer. According to a preferred embodiment, an inkjet ink-retaining microporous coating may be applied on top of the printable film layer 226 to enhance the ink retention properties of the printable film layer 226. The coating technique can be accomplished (by way of example) with slot die, curtain, gravure or Mayer rod techniques. It should be noted, however, that the key characteristics of the printable film layer 226 include, but are not limited to, ink adhesion and retention properties, cost, and optical clarity. With the use of this specialized printable film 226, there is no need for any “final” covering sheet or other process to seal in the ink after the metal print leaves the printer.
The carrier 214 comprises a plate-holding portion 215 and a plate-protecting element 217. By way of example, the plate-holding portion 215 is similar to the carrier 114 described above, and has front face 228, a back face 230, and a perimeter 232. The carrier 214 is sized and configured such that plate-holding portion 215 is larger than the metal plate 212, and more specifically such that the entire perimeter 232 of the plate-holding portion 215 is outside of the entire perimeter 222 of the metal plate 212 when the metal plate 212 is associated with the carrier 214. The respective perimeter shapes of the metal plate 212 and plate-holding portion 215 do not have to match. In the example shown in
The front face 228 of the plate-holding portion 215 has an external coat that mimics the printable film layer 226 of the metal plate 212 such that the printer prints over the edges 224 of the metal plate 212 onto the carrier 214. This results in the metal plate 212 having printing 237 over its entire front face 218, and then leaving a narrow strip of overlap printing 238 in the print zone 236 of the plate-holding portion 215 that surrounds the edges 224 of the metal plate 212, while leaving an unprinted section 240 of the carrier 214 that was not printed upon, as shown in
The plate-holding portion 215 of the carrier 214 further includes at least one metal plate engaging element 242 configured to engage the metal plate 212 and maintain the association of the metal plate 212 and carrier 214 through the printing process. By way of example, the plate engaging element 242 of the instant embodiment comprises adhesive strips 242 that secure the metal plate 212 within a cutout opening 244 formed through the plate-holding portion 215 during the printing process, as shown in
The cutout opening 244 is sized and configured to receive the entire perimeter 222 of the metal plate 212 thereby creating a recessed association between the metal plate 212 and carrier 214. By way of example, the cutout opening 244 is shown as having a generally rectangular (or square) perimeter shape, however any shape is possible that receives and securely engages the metal plate 212 during printing. In order to be able to receive the metal plate 212 therein, the perimeter of the cutout opening 244 must be larger than the perimeter 222 of the metal plate 212. Preferably, the distance between any part of the perimeter 222 of the metal plate 212 and the perimeter edge of the cutout opening 244 is within the range of 0.005-0.015″. Gaps larger than 0.015″ may cause the printer to detect the edge of the metal plate 212 and stop printing. Gaps smaller than 0.005″ may cause the metal plate 212 to not fit within the cutout opening 244, especially in warm and/or humid climates.
The recessed association between the metal plate 212 and carrier 214 is advantageous in that it decreases the overall thickness of the plate/carrier combination, which in turn reduces the risk of metal plate 212 making contact with any of the internal components of the printer. Since most of the commercially available wide format aqueous inkjet printers that are compatible with the printing template 210 disclosed herein have a maximum allowable material thickness of approximately 1.5 mm, a recessed association between the plate 212 and carrier 214 enables a decrease in overall thickness of the printing template 210 and/or and increase in the thickness of the metal plate 212 to be printed on.
The plate-protecting portion 217 may be any feature or element that protects the printable surface 218 (including the printable film 226) of the metal plate 212 before and/or after the printing process has been completed. By way of example only, the plate-protecting portion 217 of the present embodiment comprises a foldable flange 217 extending from one edge 234 of the plate-holding portion 215. The flange 217 includes a front face 219, a back face 225, and a perimeter edge 221. Because the flange 217 does not receive any ink during the printing process, the front face 219 does not need to be coated with the same external coat (mimicking the printable film layer 226) used on the plate-holding portion 215. The perimeter edge 221 is sized and configured such that the plate-protecting portion 217 is large enough to cover the metal plate 212 within the cutout opening 244, and preferably is the same size and shape as the perimeter 232 of the plate-holding portion 215. The plate-protecting portion 217 is joined to the plate-holding portion at an interface 223, that allows the plate-protecting portion 217 to fold (or pivot) over the plate-holding portion 215 such that the front face 219 of the plate-protecting portion 217 contacts the front face 218 of the plate-holding portion 215. By way of example, the interface 223 may be any feature or element that enables this folding, including but not limited to a hinge, groove, adhesive, etc.). In any event, the plate-protecting portion 217 is in an “open” or “unfolded” configuration during the printing process, in which the plate-protecting portion 217 is located to the side of and is generally coplanar with the plate-holding portion 215 to enable seamless passage of the carrier 214 through the printer.
The hanging element (not shown) of the present embodiment is identical to the hanging element 16 described above, and may be attached to the back face 220 of the metal plate 212 through the cutout opening 244.
It should be understood that while preferred embodiments are described in some detail herein, the present disclosure is made by way of example only and that variations and changes thereto are possible without departing from the subject matter coming within the scope of the following claims, and a reasonable equivalency thereof.
All of the material in this patent document is subject to copyright protection under the copyright laws of the United States and other countries. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in official governmental records but, otherwise, all other copyright rights whatsoever are reserved.
The present application is a continuation-in-part of a U.S. Non-Provisional patent application Ser. No. 16/008,741, filed Jun. 14, 2018, claiming priority under 35 U.S.C. § 119(e) to U.S. Provisional Patent Application No. 62/520,955, filed Jun. 16, 2017, the entire contents of which are incorporated by reference as if set forth fully herein.
Number | Name | Date | Kind |
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4515838 | Miyajima | May 1985 | A |
20120007914 | Eboshi | Jan 2012 | A1 |
20150287874 | Lin | Oct 2015 | A1 |
Number | Date | Country | |
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20200031137 A1 | Jan 2020 | US |
Number | Date | Country | |
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62520955 | Jun 2017 | US |
Number | Date | Country | |
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Parent | 16008741 | Jun 2018 | US |
Child | 16594435 | US |