The present disclosure generally relates to radio frequency identification (RFID) tags. More specifically, the present disclosure relates to a RFID tag in a jewelry piece.
Radio frequency identification (RFID) tags are used to wirelessly identify an item. A RFID tag typically consists of a microprocessor operatively coupled with an antenna. The microprocessor stores a unique identification code for an item and transmits the code via the antenna as a radio frequency signal. The radio frequency signal is captured by a RFID reader and processed for use. The typical RFID tag is passive, relying on an external stimulus—such as an electromagnetic field produced by a RFID reader—to energize the antenna and transmit the identification code. However, some RFID tags further include a power source, allowing the tag to actively transmit information from the microprocessor.
RFID tags are frequently attached to or embedded in items and used in inventory control, item tracking, manufacturing, transportation and logistics. RFID tags have also proved useful in human applications, such as identity verification and access control. In human applications the RFID tags must be attached to or embedded in an item which is carried by the human, such as an identification card, an access badge, or a key fob. However, each of these items are prone to loss or misplacement, damage, and theft.
One solution to the problem of loss, damage, and theft of RFID items associated with human applications has been borrowed from use in animal inventory control and tracking—injection of an RFID tag under the skin. However, many people find this solution highly objectionable. There is thus a need felt in the art for a convenient but non-objectionable means for a human to carry an RFID tag for use in human applications such as identity verification or access control.
The present disclosure is best understood from the following detailed description when read in conjunction with the accompanying drawings. It is emphasized that, according to common practice, the various features of the drawings are not necessarily to scale. On the contrary, the dimensions of the various features are arbitrarily expanded or reduced for clarity. Like numerals denote like features throughout specification and drawing.
This description of the exemplary embodiments is intended to be read in connection with the accompanying drawings, which are to be considered part of the entire written description. In the description, relative terms such as “lower,” “upper,” “horizontal,” “vertical,”, “above,” “below,” “up,” “down,” “top” and “bottom” as well as derivative thereof (e.g., “horizontally,” “downwardly,” “upwardly,” etc.) should be construed to refer to the orientation as then described or as shown in the drawing under discussion. These relative terms are for convenience of description and do not require that the apparatus be constructed or operated in a particular orientation. Terms concerning attachments, coupling and the like, such as “connected” and “interconnected,” refer to a relationship wherein structures are secured or attached to one another either directly or indirectly through intervening structures, as well as both movable or rigid attachments or relationships, unless expressly described otherwise.
In
The present disclosure provides an apparatus comprising a piece of jewelry connected with an interchangeable radio frequency identification (RFID) tag. The apparatus is provided to enable a user to conveniently and unobtrusively carry a RFID tag with a low probability of loss or damage to the tag.
In some embodiments, the jewelry piece is a ring. However, other jewelry pieces would be suitable for use in accordance with the present disclosure. Specifically, the present disclosure could be used to connect an interchangeable RFID tag with watches, pendants, brooches, earrings and other body piercing jewelry, necklaces, bracelets, amulets, medallions, hairpins, and any suitable jewelry pieces.
There are generally three types of RFID tags: active, passive, and battery-assisted passive. In some embodiments of the present disclosure uses a passive tag, which is generally cheaper and smaller than active or battery-assisted passive tags because it requires no independent power source. A passive tag uses the radio energy transmitted by a RFID reader as its power source. However, any type of RFID tag would be suitable for use with the present disclosure. Use of an active or battery-assisted passive RFID tag requires the addition of an independent power source such as a battery to the disclosed apparatus.
Cap 2 is formed from a gemstone, a synthetic or imitation gemstone, or like material including glass or plastic. Cap 2 is often formed as a “cabochon” having a convex, substantially hemispherical surface and a flat surface. In the alternative, the cap can have a concave surface and a flat surface. The shape of cap 2 can vary, employing any suitable gemstone cutting techniques. Cap 2 is connected to housing 14 by cement, glue, solder, or other suitable adhesive.
Below cap 2 is a RFID tag 6 which may be of any suitable type and configuration but is illustrated as a RFID wafer. RFID tag 6 is disposed within a buffer ring 8. In some embodiments, buffer ring 8 is composed of a ferrite material. Buffer ring 8 is disposed within housing 14. RFID tag 6, buffer ring 8, and the inner diameter of housing 14 are sized to minimize movement of the RFID tag 6 during use of the apparatus.
In some embodiments, the jewelry piece 100 includes one or both of a top spacer 4 and bottom spacer 10 to further minimize movement of RFID tag 6 during use. In some embodiments, top spacer 4 and bottom spacer 10 are composed of a material that does not substantially inhibit radio frequency transmission such as plastic or glass. A material does not substantially inhibit radio frequency transmission if the transmission range is not notably reduced by using that material. Materials that do no substantially inhibit radio frequency transmission, such as glass and plastic, are substantially permissive materials.
In some embodiments, top spacer 4 and bottom spacer 10 are composed of materials which inhibit radio frequency transmission, such as most metal alloys, as a way to limit the range of enclosed RFID tag 6. For example, if RFID tag 6 is readable from a distance of three feet from a jewelry piece 100 without top spacer 4 or bottom spacer 10, but it is desired that RFID tag 6 only be readable at a distance of six inches from jewelry piece 100, then one or both of top spacer 4 and bottom spacer 10 composed of a material which inhibits radio frequency transmission can be added to the jewelry piece 100 to reduce the effective reading range of RFID tag 6.
The unit formed by cap 2, RFID tag 6, buffer ring 8, and housing 14, when connected, is referred to as a command module 20. In some embodiments of the present disclosure, command module 20 is fully interchangeable, meaning a first command module connected to ring 16 can be removed and replaced with a second command module.
Housing 14 is formed from stainless steel, precious metal (gold, silver, platinum, and the like), or any suitable material for forming jewelry, such as carbon fiber or titanium alloys. Housing 14 is sized to fit within a receiving area 18 of ring 16. Housing 14 is connected to ring 16 by a screw post 12, which is a threaded member that is rotatably inserted into a threaded slot 22 in ring 16.
Ring 16 is formed from stainless steel, precious metal (gold, silver, platinum, and the like), or any suitable material for forming jewelry, such as carbon fiber or titanium alloys. Ring 16 includes a receiving area 18 and threaded slot 22 for receiving housing 14 and screw post 12, respectively. Housing 14 and ring 16 can be formed from the same material or different materials.
Referring now to
In the embodiment shown in
In some embodiments, shown in
In some embodiments, shown in
In some embodiments, shown in
In some embodiments, bottom retainer 78 is formed from a material that is substantially permissive of radio frequency transmission and cap 79 is formed from a material that substantially inhibits radio frequency transmissions. In this embodiment, the effective transmission range of RFID tag 6 is greatly limited.
The use of RFID tags has spread to innumerable applications, and embodiments of the present disclosure can be applied in numerous ways. In general use, a RFID tag is read by an RFID reader to transfer data on the tag to the reader. The RFID reader is operatively connected to a computer or other processing system and transfers data from the tag to the computer or processing system for use.
By way of example, RFID tags can be used in a key fob to provide keyless locking and unlocking of a vehicle door. The RFID tag enclosed in the fob uniquely identifies the key associated with a given vehicle. As a driver approaches the vehicle door, a RFID reader located in the door handle, door, or elsewhere in the vehicle reads the identifying information contained on the RFID tag. A processing system uses this identifying information to determine if the key fob is associated with the vehicle and should thus be granted access to the vehicle. If the key fob is positively associated with the vehicle, the processing system sends a signal to the vehicle door to unlock.
Additional uses of the present disclosure are included in Table 1. Table 1 assumes the implementation device (i.e.—vehicle) is equipped with a RFID reader and associated circuitry. The examples in Table 1 are provided for illustrative purposes and are in no way meant to be a full list of potential applications of the present disclosure.
The jewelry piece with interchangeable RFID tag disclosed above has several advantages. A jewelry piece provides a convenient and unobtrusive way to carry an RFID tag and is less likely than a badge, key fob, or other RFID tag carrier to be lost or damaged. By making the RFID tag interchangeable through the various means disclosed above, the jewelry piece provides a flexibility to the user to carry with them a range of information. For example, a user can have a jewelry piece with a command module containing an RFID tag loaded with identifying information specific to their professional life, i.e. containing login information for their work computer, access information to their office, etc. That same user could then switch command modules, outfitting the jewelry piece with a second command module loaded with personal information such as identifying information for specific use at a doctor's office. In various circumstances, a user could chose to limit the data they carry within their jewelry piece so as to limit the potential for fraud and identity or information theft. Command modules could also be exchanged for purely aesthetic purposes.
In some embodiments, an apparatus for conveniently carrying a radio frequency identification tag comprises a jewelry piece including a threaded slot for receiving a screw post; a cap with a convex, substantially hemispherical surface and a flat surface, the flat surface connected to a housing including the screw post; a radio frequency identification tag, disposed within a buffer ring which is disposed within the housing; and wherein the housing is operatively connected to the jewelry piece by rotatably inserting the screw post in the threaded slot.
In some embodiments, an apparatus for carrying a radio frequency identification tag within a jewelry ring comprises a jewelry ring including a threaded slot; a bezel setting comprising a flat plate and a screw post, wherein the bezel setting is operatively connected to the jewelry ring by rotatably inserting the screw post into the threaded slot; a cap comprising a convex, substantially hemispherical surface and a flat surface including a recess, and wherein the flat surface is connected to the bezel setting; and a radio frequency identification tag, disposed within a buffer ring which is disposed within the recess of said cap.
In some embodiments, an apparatus for carrying a radio frequency identification tag within a jewelry ring comprises a jewelry ring including a threaded recess; a cap comprising a substantially hemispherical portion and a threaded member portion; and a radio frequency identification tag, disposed within a buffer ring, the buffer ring disposed within the threaded recess wherein the threaded recess encloses the radio frequency identification tag and the buffer ring when the cap is rotatably inserted into the threaded recess.
Although examples are illustrated and described herein, embodiments are nevertheless not limited to the details shown, since various modifications and structural changes can be made therein by those of ordinary skill within the scope and range of equivalents of the claims.
This application is a continuation of U.S. patent application Ser. No. 13/827,341, filed Mar. 14, 2013, which claims priority from U.S. Provisional Patent Application No. 61/713,200, filed Oct. 12, 2012, the entirety of which are incorporated herein by reference.
Number | Date | Country | |
---|---|---|---|
61713200 | Oct 2012 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 13827341 | Mar 2013 | US |
Child | 14699668 | US |