The present invention is directed to a radio-frequency identification (RFID) magnet (“RFID magnet”), and a method of making the RFID magnet.
Currently, there exist magnets comprising or consisting of a sheet of magnetized or magnetizable material. For example, the sheet of magnetized or magnetizable material comprises magnetic particles embedded or mixed into a formed binder layer. Typically, the magnets are die cut from the sheet of magnetized or magnetizable material into individual magnets. These magnets, for example, can be use as advertising specialty magnets or direct mail advertising magnets.
When attempting to apply an RFID label having an RFID chip onto such a magnet, the magnetic field of the magnet interferes with scanning of the RFID chip making the scanning inconsistent.
There exists a need for an RFID magnet that can be consistently and positively scanned.
The presently described subject matter is directed to an improved magnet.
The presently described subject matter is directed to an RFID magnet.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer, wherein the adhesive layer is a rubber based adhesive layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, further comprising a film covering and protecting the RFID chip.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, further comprising a film covering and protecting the RFID chip, wherein the film adheres or laminates the RFID chip to the magnetic field blocking layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic field blocking layer is configured to block interference by the magnetized or magnetizable material layer when the magnet is being scanned to provide consistent positive scanning.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches, wherein the magnetized or magnetizable material layer has a thickness of 0.012 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetize material layer; and an RFID chip adhered or laminated onto the magnetic interference blocking layer, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches, wherein the magnetized or magnetizable material layer has a thickness of 0.012 inches, and wherein the rubber based adhesive layer has a thickness of 0.001 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer, wherein the adhesive layer is a rubber based adhesive layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the RFID label or tag comprises comprising a film layer covering and protecting the RFID chip and RFID antenna.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the RFID label or tag comprises comprising a film layer covering and protecting the RFID chip and RFID antenna, and wherein the film adheres or laminates the RFID chip and RFID antenna to the magnetic field blocking layer.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic field blocking layer is configured to block interference by the magnetized or magnetizable material layer when the magnet is being scanned to provide consistent positive scanning.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches, and wherein the magnetized or magnetizable material layer has a thickness of 0.012 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer, wherein the rubber steel layer has a thickness of 0.025 inches, wherein the magnetized or magnetizable material layer has a thickness of 0.012 inches, and wherein the rubber based adhesive layer has a thickness of 0.001 inches.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, further comprising an adhesive layer located between the rubber steel layer and both the RFID chip and RFID antenna.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the magnetic interference blocking layer is a rubber steel layer, further comprising an adhesive layer located between the magnetized or magnetizable material layer and the rubber steel layer, and further comprising another adhesive layer located between the rubber steel layer and both the RFID chip and RFID antenna.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the RFID chip stores and processes information.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the RFID antenna receives and transmits an RFID signal.
The presently described subject matter is directed to a radio-frequency identification (RFID) magnet, comprising or consisting of a magnetized or magnetizable material layer; a magnetic interference blocking layer adhered or laminated onto the magnetized or magnetizable material layer; and an RFID label or tag adhered or laminated onto the magnetic interference blocking layer, the RFID label comprising an RFID chip connected to an RFID antenna, wherein the RFID chip stores and processes information, and wherein the RFID antenna receives and transmits an RFID signal.
The RFID magnet according to the present invention comprises or consists of a magnet; a rubber steel sheet adhered or laminated onto the magnet; and an RFID label having an RFID chip adhered or laminated onto the rubber steel sheet. For example, a the RFID magnet comprises or consists of a magnet layer, a rubber steel sheet layer adhered on laminated onto the magnet layer, and an RFID label layer having a RFID chip adhered or laminated onto the rubber steel sheet layer.
The method according to the present invention comprises or consists of providing a magnet, adhering or laminating a rubber steel sheet to the magnet; and adhering or laminating an RFID label to the rubber steel sheet, the RFID label having an RFID chip. For example, the method is a method of making an RFID magnet, comprising or consisting of providing a magnet layer; adhering or laminating a rubber steel sheet layer to the magnet layer; and adhering or laminating an RFID label having an RFID chip onto the rubber steel sheet layer.
An RFID magnet 10 according to the present invention is shown in
The rubber based adhesive layer 14 adheres or laminates the rubber steel layer 16 onto the magnetized or magnetizable material layer 12. The RFID label 18 is attached (e.g. adhered or laminated) onto the rubber steel layer 16 (e.g. onto the upper surface of the rubber steel layer 16).
As shown in
The rubber steel layer 16, for example, is a calendared sheet of material. The rubber steel layer 16, for example, is a sheet (e.g. a rectangular or square sheet), strip, roll or web cut into pieces of RubberSteel Magnetic Receptive Material manufactured by Magnum Magnetics, Marietta, Ohio, 45750, Toll Free 800.258.0991. The RubberSteel Magnetic Receptive Material has the follow features:
The specifications of the RubberSteel Magnetic Receptive Material are as follows:
The rubber steel layer 16 provides a barrier and blocks the magnetic field of the magnetized or magnetizable material layer 12 from the RFID chip 18. The magnetic receptive surface blocks interference of the magnetized or magnetizable material layer 12 when scanning the RFID chip 18 of the magnet 10.
The RFID magnet 10 described above, wherein the thickness of the layers is a follows:
The RFID magnet 10 can be consistently scanned to provide a positive scan each time.
An RFID magnet 10 according to EXAMPLE #1; however, the RFID label 18 includes a film layer 18a and an RFID chip 18b is replaced with an RFID chip having no film layer 18a with the RFID chip directly adhered to an upper surface of the rubber steel layer 16.
The method of making the RFID label (e.g. RFID label 10) according to the present invention comprises or consists of:
The method of making the RFID label 10 according to the present invention comprises or consists of:
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/US2018/055644 | 10/12/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/075350 | 4/18/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3941633 | Wang | Mar 1976 | A |
5869148 | Silverschotz | Feb 1999 | A |
7405656 | Olsen | Jul 2008 | B2 |
9112272 | Finn | Aug 2015 | B2 |
9300251 | Khitun | Mar 2016 | B2 |
9460769 | Nozaki | Oct 2016 | B2 |
10445634 | Khoche | Oct 2019 | B2 |
20040074974 | Senba | Apr 2004 | A1 |
20050174241 | Olsen | Aug 2005 | A1 |
20080122631 | Kodukula | May 2008 | A1 |
20090015376 | Xiang | Jan 2009 | A1 |
20100219252 | Kikuchi | Sep 2010 | A1 |
20120301132 | Mitskog | Nov 2012 | A1 |
20140209691 | Finn | Jul 2014 | A1 |
20150129665 | Finn | May 2015 | A1 |
20150136858 | Finn | May 2015 | A1 |
20150235122 | Finn | Aug 2015 | A1 |
20150278671 | Martin | Oct 2015 | A1 |
20150313325 | West | Nov 2015 | A1 |
20150379391 | Pantaloni | Dec 2015 | A1 |
20160044841 | Chamberlain | Feb 2016 | A1 |
20160092763 | Murphy | Mar 2016 | A1 |
20160365644 | Finn | Dec 2016 | A1 |
20160375673 | Lautzenhiser | Dec 2016 | A1 |
20170299089 | Bourgeois | Oct 2017 | A1 |
Number | Date | Country |
---|---|---|
209690968 | Nov 2019 | CN |
20020081826 | Oct 2002 | KR |
Number | Date | Country | |
---|---|---|---|
20200242442 A1 | Jul 2020 | US |
Number | Date | Country | |
---|---|---|---|
62572093 | Oct 2017 | US |