Patent classifications
B29L2017/00
ADDITIVE MANUFACTURING FOR PERSONALIZATION OR SERIALIZATION OF A SUBSTRATE
Techniques for using additive manufacturing for applying personalization or serialization information to a substrate are described herein. The techniques may include providing a base substrate formed from a first material such as polyvinyl chloride, polyester, or polycarbonate and applying, via an additive manufacturing process such as three-dimensional printing, a layer to at least a portion of the base substrate. The layer can include at least one of personalization or serialization information. The layer can be formed from the same material as the substrate or formed from a second material with substantially similar material properties as the substrate material.
Multilayer Body, Card, Passport, Method for Producing Multilayer Body, Method for Producing Card, Method for Producing Passport, and Laser Marking Method
A multilayer body including a resin layer (A) and a resin layer (B), the resin layer (A) containing a resin (a) and a colorant, the content of the colorant in the resin layer (A) being in an amount less than 50 parts by mass relative to 100 parts by mass of the resin (a), the content of a developer in the resin layer (A) being less than 0.5 parts by mass relative to 100 parts by mass of the resin (a), the resin layer (B) containing a resin (b) and a developer, the content of the developer in the resin layer (B) being less than 50 parts by mass relative to 100 parts by mass of the resin (b), the content of a colorant in the resin layer (B) being 0.5 parts by mass relative to 100 parts by mass of the resin (b).
Microchip affixing probe and method of use
Provided among other things is a method of affixing a small, single chip to a plastic item, the chip having a top surface having length and width dimensions, and having a height, the method comprising: (1) vacuum adhering a top-oriented surface of the chip to a probe of outer dimensions comparable to or smaller than those of the length and width; (2) conveying heat to the chip via the probe such that a bottom-oriented surface of the chip is sufficiently hot to melt the plastic; (3) applying via the probe the chip to the plastic such that the chip embeds in the plastic; and (4) releasing the chip from the probe, wherein the largest of the length and width is about 500 microns or less, and height is no more than about the smallest of length and width.
APPARATUS AND METHOD FOR MAKING INFORMATION CARRYING CARDS THROUGH RADIATION CURING, AND RESULTING PRODUCTS
The disclosure provides a method for forming an information carrying card or a core layer of an information carrying card using a radiation curing, and an apparatus configured to provide such a radiation curing. The method includes providing a carrier layer that defines at least one cavity, providing an inlay layer supporting at least one electronic component, and positioning at least a portion of the inlay layer in the at least one cavity. The method further comprises dispensing a radiation crosslinkable polymer composition over the inlay layer, and irradiating the radiation crosslinkable polymer composition.
Apparatus and method for making information carrying cards through radiation curing, and resulting products
A method forms an information carrying card or a core layer of an information carrying card using a radiation curing, and an apparatus configured to provide such a radiation curing. The method includes providing a carrier layer that defines at least one cavity, providing an inlay layer supporting at least one electronic component, and positioning at least a portion of the inlay layer in the at least one cavity. The method further comprises dispensing a radiation crosslinkable polymer composition over the inlay layer, and irradiating the radiation crosslinkable polymer composition.
ELEVATOR WITH DEBOWING MECHANISM
Techniques are described herein for reducing bowing effects on a substrate while the substrate is being transported, for example in an elevator mechanism, from a first travel path to a second travel path, where the first travel path is offset from the second travel path so that the first travel path is not collinear with the second travel path. The substrate can be any substrate that is bowed and for which one wishes to eliminate or reduce the bow. One specific substrate that can benefit from the techniques described herein are personalized documents such as plastic cards including but not limited to financial (e.g. credit and debit) cards, drivers' licenses, national identification cards, gift cards, loyalty cards, employee badges, and other plastic cards which bear personalized data unique to the card holder and/or which bear other card or document information.
Elevator with debowing mechanism
Techniques are described herein for reducing bowing effects on a substrate while the substrate is being transported, for example in an elevator mechanism, from a first travel path to a second travel path, where the first travel path is offset from the second travel path so that the first travel path is not collinear with the second travel path. The substrate can be any substrate that is bowed and for which one wishes to eliminate or reduce the bow. One specific substrate that can benefit from the techniques described herein are personalized documents such as plastic cards including but not limited to financial (e.g. credit and debit) cards, drivers' licenses, national identification cards, gift cards, loyalty cards, employee badges, and other plastic cards which bear personalized data unique to the card holder and/or which bear other card or document information.
Creation of a transparent polymer window with a field of lenses in a security paper substrate
There is described a method of creating a transparent polymer window (W) with a field of lenses (L) in a security paper substrate (1), the method comprising the steps of (i) providing a security paper substrate (1), (ii) forming an opening (10) into the security paper substrate (1), (iii) laminating a transparent film (5; 5*) onto a first side (I) of the security paper substrate (1) in such a way as to close the opening (10) at one end, and (iv) filling the opening (10) with transparent polymer material (2). In one embodiment, the transparent film (5) comprises a field of lenses (L) and is laminated onto the first side (I) of the security paper substrate (1) in such a way as to form lenses (L) on the first side (I) of the security paper substrate (1) in register with the opening (10). In another embodiment, the field of lenses (L) is replicated into the transparent polymer material (2) applied in the opening (10) in such a way as to form lenses (L) on a second side (II) of the security paper substrate (1), opposite to the first side (I), in register with the opening (10). Also described is a device designed to fill the opening (10) formed into the security paper substrate (1) with the transparent polymer material (2) and a processing machine comprising the same.
Utility cover identification system
A utility cover identification system including a cover, a tray having a recess and being embedded within the cover, and an identification plate insertable into the tray to engage the tray recess to retain the identification plate within the tray. A method of forming the cover identification system includes the steps of coupling the cover and a tray together, curing the cover to secure the tray to the cover, and inserting an identification plate into the tray and retaining the identification plate in the tray.
ULTRASONICALLY WELDED LABEL SYSTEMS AND METHODS
Systems and methods of using ultrasonic welding to form labels with RFID tags are disclosed. The methods can be useful for the production of a large volume of labels such as production with roll-to-roll processing. The labels can be useful for consumer products such as garments. The present invention discloses in one embodiment, a label having a first and second printed fabric label layer such that a radio frequency identification (RFID) inlay is disposed between the two printed fabric layers