NZ549390A - Chip with two part insert having projections which engage to define area in which to place microchip - Google Patents

Chip with two part insert having projections which engage to define area in which to place microchip

Info

Publication number
NZ549390A
NZ549390A NZ54939005A NZ54939005A NZ549390A NZ 549390 A NZ549390 A NZ 549390A NZ 54939005 A NZ54939005 A NZ 54939005A NZ 54939005 A NZ54939005 A NZ 54939005A NZ 549390 A NZ549390 A NZ 549390A
Authority
NZ
New Zealand
Prior art keywords
insert
chip according
chip
central
projections
Prior art date
Application number
NZ54939005A
Inventor
Pierre Chapet
Gerrard Charlier
Original Assignee
Gaming Partners Int
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Gaming Partners Int filed Critical Gaming Partners Int
Priority to NZ54939005A priority Critical patent/NZ549390A/en
Publication of NZ549390A publication Critical patent/NZ549390A/en

Links

Abstract

Disclosed is a disk shaped chip for gaming or casinos, the chip having a body with a central aperture. Positioned within the aperture is an insert (26'), the insert comprising of two rigid plates (24', 36') having projections (60, 61) extending from their inside faces, and a microchip (27). The projections couple to the opposing inside faces to define an area to place the microchip.

Description

Received at IPONZ 3 May 2011 TOKEN WITH ELECTRONIC CHIP INSERT The present invention relates to chips in the general shape of a disk and incorporating contactless electronic microchip identification devices, in particular 5 gaming chips or casino chips.
Gaming chips are generally fabricated from a scratch-resistant rigid plastics material to obtain a robust overall structure. Gaming chips carry varied patterns of lines or colors to form a more or less complex decoration and to reduce the risk of counterfeiting and/or fraudulent reproduction. The use of colors and colored patterns 10 associated with the value of the chips, especially on the edge of the chips, enables croupiers and other users quickly to identify and/or sort chips at a glance, even when they are stacked up.
To fight fraud and to facilitate the counting and tracking of chips, especially in a gaming room or casino, chips have been proposed that integrate memory 15 electronic circuit modules in which is stored information associated with the chip, for example its identification code or number and/or its numerical value. Communication between the electronic circuit module integrated into the chip and its external read/write station is usually effected without contact, in which case a contactless electronic microchip identification device is used including an electronic circuit 2 0 microchip associated with an antenna, generally a circular loop antenna, in order to be able to communicate contactlessly with the read/write station using the radio-frequency identification (RFID) technique, the microchip then combining a transceiver circuit portion with a memory circuit portion having the function of storing information. 2 5 US patent 4,969,549 describes a payment token that can be used in public telephone installations and in which the electronic circuit and its antenna are encapsulated in a plastics material disk of small diameter (from 20 to 30 mm) and a conductive axial core passes through the center of the token, although the fabrication process is not specified.
US patent 5,166,502 describes a casino chip in which the antenna and the electronic circuit are disposed inside a metal ballast that is in turn placed between two facial labels at the center of an injection molded plastics material ring, everything being held in place by epoxy resin and by a second injection molding operation that covers the ring and the edge of the labels. This chip, of complex structure and costly 35 to fabricate, does not offer all of the desired security in that it is possible to access the electronic circuit, without completely destroying the structure of the chip and rendering it unusable, simply by cutting a facial label.
The Applicant's patent EP 0694872 describes a casino chip the body Received at IPONZ 3 May 2011 whereof includes an insert in the form of a central disk consisting of a rigid plastics material shell charged with metallic particles and carrying an electronic identification device and an annular plastics material ring injection molded around the disk, the central disk also serving as a ballast by virtue of the chosen material and the quantity 5 of the metallic charge so that the chip has the total weight that the casino requires. In a first variant, the one-piece shell is injection molded around a protective casing into which the electronic device has previously been integrated. In a second variant the shell is obtained by fastening together a cover and a hollow injection molded plastics material disk after installing the electronic identification device. Although giving good 10 results, this fabrication technique for chips with electronic identification has its limitations, in particular with regard to the maximum diameter of the loop of the antenna to be integrated into the central disk, given the dimensions of the chips generally used in casinos and gaming rooms. Casino chips with a diameter that is generally from 39 to 50 mm use electronic microchips operating at a frequency of 15 around 125 kHz and have an antenna diameter of the order of 21 mm. However, the Applicant has noted the benefit of using antennas with a larger active area, in particular of greater diameter, with electronic microchips operating at a frequency of around 13.56 MHz, for example loop antennas with a minimum diameter of 25 mm, at least in applications to casino chips. 2 0 US patent 2002/0006829 describes chips in which an electronic identification device using a microchip with an operating frequency of 13.56 MHz is stuck to the back of a decorative plastics material label disposed in a cavity provided on the lateral face of the chip. Like the chip that is the subject matter of US patent 5,166,502, this structure does not offer all the desired security in that it is possible to 2 5 access the electronic circuit without completely destroying the structure of the chip and rendering it unusable simply by cutting the facial label. What is more, being cut out from a thin sheet of plastics material, the label does not provide sufficient protection against light or analogous radiation (in particular UV radiation), to which some 13.56 MHz microchips seem relatively sensitive.
An object of the invention is to propose chips with a contactless electronic identification device, in particular casino chips, in the general shape of a disk whose body includes a central insert the structure whereof allows the implantation of an electronic microchip with an enlarged active area antenna whilst at the same time offering the required protection of the electronic identification device. 35 Thus in a first aspect, the present invention provides a chip having a generally disk shape comprising: a body having a central aperture, an insert, positionable Received at IPONZ 3 May 2011 3 within the central aperture, comprising two rigid plates each having at least one central projection extending from a respective inside face and a contactless identification device, wherein the at least one central projection of each of the two rigid plates are coupleable to the respective opposing inside face of the rigid plate to 5 define between them an area in which the contactless identification device is located.
In a second aspect, the present invention provides a chip having a generally disk shape, comprising: a body having a central aperture; a first rigid plate having at least two concentric and angularly offset crenelated rings forming at least two projections extending from an inside face of the first rigid plate and at least two 10 grooves disposed adjacent the two projections on the inside face of the first rigid plate, wherein the at least two grooves are configured to receive corresponding at least two concentric and angularly offset crenelated rings forming two projections from a second rigid plate; a second rigid plate having at least two concentric and angularly offset crenelated rings forming at least two projections extending from an 15 inside face of the second rigid plate and at least two grooves disposed adjacent the two projections on the inside face of the second rigid plate, wherein the at least two grooves are configured to receive corresponding at least two concentric and angularly offset crenelated rings forming two projections; an insert, positionable within the central aperture, the insert comprising the first and second rigid plates 2 0 coupled together and a contactless identification device, the insert being assembled by coupling the at least two projections of the first rigid plate within the grooves of the second rigid plate and coupling the at least two projections of the second rigid plate within the grooves of the first rigid plate so as to define an area there between in which the contactless identification device is located. 2 5 In a third aspect, the present invention provides an insert comprising a microchip-based contactless electronic identification device; and two rigid plates each having central portions one of fastenable and fittable together by at least one projection extending from a respective inside face of each rigid plate so as to define a peripheral annular area into which the contactless electronic identification device is 30 positionable.
As described in detail hereinafter, the structure of an insert of the invention enables the active area of the antenna of the microchip to be increased at the same time as assuring good protection of the identification device between the two rigid plastics material plates. In particular, the invention prevents all possibility of 35 fraudulent replacement of the insert without completely destroying the chip and rendering it unusable. Finally, the disposition of the contactless electronic microchip at a median position within the thickness of the insert of the chip protects the latter from light and UV radiation and facilitates contactless radio-frequency identification (followed by page 3a) Received at IPONZ 3 May 2011 3a (RFID) of stacks or columns of chips.
In a preferred embodiment of the chip of the invention, the central portion of the inside face of at least one of the plates has at least one central projection for defining said peripheral annular area around the projection or said projections with a 5 small distance between the inside faces of the plates.
In a first variant, said antenna is carried by a thin insulative film disposed between the two plates having at least one central aperture through which the or at least one of said central projections passes. As described in more detail hereinafter, it is possible to obtain a distance between the plates of the order of two tenths of a 10 millimeter. This limits the thickness of the insert and thus of the chip, which casinos sometimes require, increases the thickness and the weight of the plates forming the insert, or enables the insertion of one or two detectable-film patches.
In another variant the thin film is fixed by means of an adhesive to the inside face of at least one of the plates. All or part of the antenna is advantageously 15 obtained by depositing conductive material on the thin insulative film.
In another variant of the chip of the invention, the plates are fastened and/or fitted together at the level of the central projections. The central projections are advantageously arranged on each inside face of the plates in two concentric and angularly offset crenelated rings alternating with groove portions on the inside faces 2 0 of the plates and adapted to receive the corresponding projections on the other face, the heights of the projections and the depths of the grooves being selected to form the peripheral annular area, in particular with a small distance, receiving the identification device when the two plates have been assembled together.
In another variant of the chip of the invention, at least one of the plates 2 5 carries at the periphery of its inside face an annular abutment to protect the (followed by page 4) 4 identification device from crushing and/or ingress of material into the peripheral annular area. This further enhances the protection of the contactless electronic identification device.
According to yet a further variant of the chip of the invention, the insert is 5 generally disk-shaped and the antenna is in the form of a loop with a diameter from 25 to 30 mm. Said microchip advantageously operates in a frequency range from 10 to 17 MHz or from 2 to 5 GHz.
In yet a further variant of the chip of the invention, the insert includes between the two plates two oriented detectable-film patches of active material or 10 alloy sensitive to electromagnetic radiation, the orientation of the two detectable films being crossed, preferably at substantially 90°. This in conjunction with detector portals at the entrances to the gaming rooms of casinos offers good protection against theft of chips.
In yet a further variant of the chip of the invention, the body of the chip is 15 made from plastics material injection-molded around said insert and overlapping the periphery of the insert and/or with entry of material into the edge of the insert. The insert in particular has a beveled or rounded edge and/or an edge in which a groove is formed. The plates are advantageously made from plastics material optionally containing weighting charges compatible with contactless RFID transmission. 20 In yet a further variant of the chip of the invention, the body of the chip includes on each face a cavity into which is fixed a label carrying a decoration and/or a mark and/or a hologram.
The chip of the invention as defined above and/or in all its variants or embodiments constitutes a gaming chip or a casino chip. 25 The invention also relates to an insert with a contactless electronic microchip identification device as defined hereinabove in all its variants.
The invention also relates to a method of fabricating a body of a chip of the invention including at least the following operations: - injection molding from an optionally charged plastics material two insert 3 0 plates with at least one central fastening projection; - placing the contactless electronic microchip identification device on the inside face of one of the two plates and fixing the thin film carrying the microchip and the antenna of the identification device to the corresponding plate by means of an adhesive; - assembling the two plates around the identification device to produce the insert; - placing the insert in a first injection molding mold, the two half-shells whereof define a first imprint corresponding to the core of the body of the chip around said insert at the center of the first imprint; - injection molding the core of the chip; - placing the core of the chip in a second injection molding mold, the two half-shells whereof define a second imprint corresponding to the whole of the body of the chip or virtually the whole of the body of the chip; - injection molding the covering layer; - injection molding any edge inclusions necessary to complete the body of 10 the chip; and - optionally trimming the chip body to perfect the edge of the chip.
Other objects, features and advantages of the present invention will become apparent on reading the following description of various preferred embodiments of chips of the invention given by way of nonlimiting example and with reference to the 15 appended drawings, in which: -figures 1a and 1b are respectively a diagrammatic front view and a side view showing the edge of a preferred embodiment of a gaming chip of the invention, the plastics material body whereof is obtained by two injection molding operations; - figure 2 is a diagrammatic front view of the core of the chip shown in 20 figures 1a and 1b, as obtained by the first injection molding operation; - figure 3 is a diagrammatic view in diametral section of a first variant of an insert used in the chip shown in figures 1a and 1b; - figure 4 is a diagrammatic exploded perspective view of a second variant of an insert used in another chip of the type shown in figures 1a and 1b; - figure 5 is a diagrammatic view in diametral section of the second variant of the insert, shown in figure 4, after assembly; -figure 6 is a diagrammatic exploded perspective view of another embodiment of the second variant of the insert, shown in figures 4 and 5; and - figures 7a, 7b and 7c each represent a partial view in diametral section of 30 chips of the invention with a body produced by two successive injection molding operations and incorporating the second variant of the insert.
In a first embodiment of the invention the multiple-injection-molded gaming chip 10 in the shape of a disk of colored plastics material, shown in figures 1a and 1b, has a body 12 consisting of a core 14 carrying an insert 26 including a 35 contactless electronic microchip identification device 27 (see figures 3 and 6 in particular) and obtained by a first operation of injection molding a plastics material of a first color (represented diagrammatically in dashed outline to make figures 1 a-1 b 6 easier to understand) and covered at its periphery by a covering layer 16 obtained by a second operation of injecting molding a plastics material of a different color, the core 14 carrying at its periphery radially and/or laterally extending projections 18 flush with the surface of the covering layer 16 on the faces 11 and 13 and on the 5 edge 20 of the chip. In the present example the three projections 18 are parallel to the axis of the chip 10 (perpendicular to the edge 20 to form a two-color pattern of five colored bars). It is therefore possible to produce colored face and/or edge decorations in the mass of the body of the chip, adapted in particular to be distinguished visually, to combat counterfeiting. These patterns are conventionally 10 repeated on the edge 20 (for example six times) and equi-angularly distributed in the circumferential direction, in particular to enable visual or optical identification of the chip regardless of its orientation.
The chip is completed by fixing into the shallow central cavity 15 on each face 11 and 13 a plastics material label 22 carrying a decoration, for example a 15 printed or screen-printed decoration (represented diagrammatically in figure 1 by the symbol DCR), and/or a mark (for example that of the casino) and/or a hologram.
The invention is not limited to two-color chips, of course, but relates equally to single-color chips made in one injection molding operation (the core 14 and the layer 16 being combined) and chips involving three, four or more injection molding 2 0 operations in which at least one additional plastics material of a different color to that of the preceding injection molding operations is injection-molded directly into the housings 19 defined by the hollow spaces between the projections 18 (these are visible in figure 2).
As shown in figures 2 and 3, the core 14 of the body 12 has a generally 25 annular shape the central aperture 25 whereof receives the circular insert 26 carrying the contactless electronic microchip identification device 27 (or electronic identifier) shown in section in figure 3 and consisting primarily of an electronic circuit 28 with a radio-frequency identification (RFID) transmitter-receiver fixed to a thin film 31 and a circular antenna 30 obtained by depositing conductive material onto the thin 3 0 film 31 (for example electrolytic deposition followed by partial chemical etching).
Figures 4 and 6 are perspective views of the RFID device 27 in which the antenna 30 is represented purely diagrammatically by a series of concentric circles to show the position of the antenna 30 at the periphery of the thin film disk 31. By way of nonlimiting example the film 31, which is a flexible thin film in the present example, is 35 a polyethylene terephthalate (PET) polyester film 40 microns thick. Although this is not shown in the figures, the thin film 31 is covered on one or both faces, preferably the face carrying the antenna deposit, with an adhesive film for sticking 7 the identification device 27 to the inside face of one of the two plates 34 and 36 of the insert 26 and additionally having the function of protecting the antenna, in particular against crushing. Moreover, the thin film 31 has a central aperture 32 for positioning the identification device 27 relative to the insert 26 in the manner explained hereinafter. The RFID device 27 as a whole takes the form of a flexible thin film with a maximum thickness of the order of 0.2 mm and a diameter of the order of 26.5 mm for an effective diameter of the antenna 30 of 25 mm and an aperture 32 of approximately 10 mm diameter.
The electronic identification device 27 generally includes an electronic circuit 28 incorporating a PROM containing information relating to the chip and/or the associated person or object, for example a fixed numerical or alphanumerical identification code of 64 bits (including one or more fields such as: serial number, product identification, batch or location, a numerical value associated with the chip, etc.), and an RFID transmitter-receiver 28 with a peripheral circular antenna adapted to be fed by inductive coupling with modulated waves from a reading station (not shown). In practice, the transmitter-receiver is adapted to exchange data contactlessly by means of modulated waves with a reading station at a distance from it (for example a distance from 15 cm to 2 m), the operating frequency being from 10 kHz to 5 GHz, to cover in particular the 125 kHz, 13.56 MHz and 2.45 GHz bands. The electronic identification device 27 with memory combats theft and/or facilitates management and inventory of a batch of objects in a defined space (storage areas, warehouses, stores), for example. The electronic identification device 27 with non-reprogrammable (read-only) memory can of course be replaced by a reprogrammable device with changeable coding, with the facility for reading and writing memory without departing from the scope of the invention. For example, the microchip 28 is of the Magellan type from INFINEON (Germany) operating at a frequency of 13.56 MHz.
The insert 26, shown diagrammatically in figure 3 (which is not to scale to facilitate understanding of the diagram), is formed of two rigid disk-shaped plates 34, 3 0 36 fastened to or fitted in the central portion by means of facing central projections 35, 37 carried by the corresponding inside faces 38, 40 of the plates 34 and 36, respectively. As shown in figure 3, and in a particular embodiment described here by way of nonlimiting example, the projection 37 on the plate 36 includes a central cavity 42 receiving the projection 35 on the plate 34, the annular projection 37 being 35 received in an annular groove 44 on the inside face 38 of the plate 34, the whole being positioned coaxially with the axis XX' of the insert 26 (and consequently of the body of the chip 12). The relative axial dimensions (the heights 8 of the projections 35 and 37 and the depths of the cavity 42 and the groove 44) are such that, once assembled or fitted, the two plates 34 and 36 define between them a peripheral annular area 46 defining a small spacing in which the identification device 27 is accommodated, with the annular projection 37 projecting through the aperture 5 32. For example, the insert 26 has a diameter of 27 mm, a thickness of 2.5 mm and a spacing of 0.2 mm between the plates in the annular area 46, although it should be noted that it is possible instead to provide a variant (not shown) with a small housing for the microchip 28 on the inside face of one of the plates to prevent all risk of crushing the latter.
Figure 2 shows the body of the chip 12 at the end of the first injection molding operation, i.e. the core 14 before it is covered by the layer 16 whose contours 50 and 51 are shown in dashed line in figure 2. The inside contours 51 define on each face of the chip the shallow central circular cavity 15 (of the order of 0.5 mm deep) serving as a housing for the decorated plastics material label 22 fixed 15 to the chip (as shown in dashed line in figure 1b). Inside the cavities 15, the injection molded core 14 (shown partly in section and in dashed line in figure 3) is flush with the outside faces 52 and 54 of the plates 34 and 36 (which include peripheral shoulders 49 in the manner shown in figure 3) to define on either side of the insert 26 a covering flange 47, the circular edge 48 of the insert 26 being also shown in 20 dashed line in figure 2.
Of course, the invention is not limited to the circular shape of the insert, the RFID device and a corresponding antenna, but covers any appropriate variant, in particular with polygonal shapes, preferably with an axis of axial symmetry to facilitate the injection molding of the body of the chip, in this example the core 14, 2 5 around the insert 26.
Without limitations, chips of the invention take the form of a disk, generally with a diameter from 39 to 50 mm and a thickness of the order of 3.3 mm, for example. The edge of the chip may be chamfered, have rounded edges or simply have a straight profile, in particular if it is required to be able to read the edge of the 30 chips optically. If necessary the chamfered or straight profile is completed by trimming on a grinding machine or lathe.
The plastics materials used for injection molding chips fabricated using the invention, in particular the gaming chip 10, are obtained from a basic polymer that is appropriately charged (in particular with weighting and colored materials) selected 35 from: - polymethyl methacrylate (PMMA); - acrylonitrile-butadiene-styrene (ABS); - polyamides and copolymers thereof; - polyacetal and acetal copolymers (POM/polyoxymethylene); - polyphenylene sulfide (PPS); - polyalkylene terephthalates, in particular polybutylene terephthalate (PBT); - thermoplastic polyurethanes (PUR); - vinyl polymers, polyvinyl chloride (PVC); - polyolefins, in particular polyethylenes (PE) and polypropylenes.
There is used for the body of the chip a 6 or 6,6 polyamide charged with up to approximately 70% by weight of barium sulfate or barite powder to weight it, as a nonlimiting example. Each injection molding operation is carried out at a pressure from 800 to 1400 bar, an injection temperature of 280/300°C and a mold temperature of approximately 50°C. This composition can also be used for the inserts 26 intended for lightweight chips (9 to 10 g).
The compositions may vary, of course, in particular in terms of the charges incorporated into the materials used for the diverse injection molding operations: for example in weighting charges (barite, metal powders, zinc oxide, etc.) and in coloring agent charges (zinc oxide, etc.) to obtain the color required for each injection molding operation, noting that the charges used for the inserts are chosen to be compatible with contactless RFID transmission. With particular regard to the inserts 26 intended for the heaviest chips (13 to 14 g), a 6 polyamide charged with tungsten and/or copper powder (up to approximately 80% by weight) or with small bronze balls is used.
The invention also relates to a method of fabricating the body 12 of a chip of the invention defined in all its variants described herein and including at least the following operations: - injection-molding from an optionally charged plastics material two insert plates 34, 36 with at least one central projection; - placing the contactless electronic microchip identification device 27 on the inside face of one of the two plates and fixing the thin film 31 carrying the microchip and the antenna of the identification device 27 to the corresponding plate by means of an adhesive; - assembling the two plates 34, 36 around the identification device to produce the insert 26; - placing the insert in a first injection molding mold, the two half-shells whereof define a first imprint corresponding to the core 14 of the body of the chip around the insert 26 at the center of the first imprint; - injection-molding the core 14 of the chip; - placing the core 14 of the chip (with the insert 26) in a second injection molding mold, the two half-shells whereof define a second imprint corresponding to the whole of the body 12 of the chip or virtually the whole of the body 12 of the chip; - injection-molding the covering layer 16; - injection-molding any edge inclusions necessary to complete the body of the chip; and - optionally trimming the chip body 12 to perfect the edge 20 of the chip.
The chip is optionally terminated by placing the two decorative labels 22 in the cavities 15.
Without departing from the scope of the invention, the insert 26 may be assembled in various ways, in particular, by way of nonlimiting example, by directly fastening the central portions of the two plates together (for example by gluing them together, in particular using epoxy resin, ultrasound welding, etc.), by forcible fitting, fitting with clipping of the central projections, or fitting and fixing the plates by double-15 sided adhesive disposed on the two faces of the film 31 so as to cooperate with each of the internal faces of the plates 34 and 36.
As can be seen in figure 3, the edge of the insert 26 is rounded (or beveled on the outside) and the injection molded core 14 covers the rounded portions (the shoulders 49) so that it is flush with the outside faces of the plates 34 and 36. 20 Without departing from the scope of the invention, however, the edge may be straight, beveled or rounded and the core 14 injection molded with a covering material with an increased thickness or shoulder relative to the external faces of the plates to form a continuous or discontinuous ring around the periphery of the insert 26. Moreover, if necessary, at least one of the plates 34, 36 may have at the 25 periphery of its inside face an annular abutment (not shown) to prevent ingress of injected material into the peripheral annular area 46 or crushing of the identification device 27.
Figures 4 and 6 relate to a second variant of the insert used in chips of the invention, in particular in a chip of the type shown in figures 1a and 1b and described 3 0 hereinabove. This insert 26' is very similar to the insert 26 and will not be described in detail again (likewise the corresponding chips), given that identical or quasi-identical elements of the inserts and the corresponding chips carry the same reference numbers and that analogous elements carry the same reference numbers primed (').
As shown in figure 4, the insert 26' consists of two injection-molded rigid plastics material plates 34' and 36', where applicable charged to weight them, as referred to hereinabove, between which is disposed and adhesively fixed the 11 contactless electronic microchip identification device 27 described hereinabove with the microchip 28 and its antenna 30 associated with the thin film 31. Compared to the insert 26, the insert 26' is characterized by the following points: i) The two plates 34' and 36' are identical and interchangeable to reduce 5 fabrication costs, in particular thanks to the use of a single injection molding mold for the insert 26', rather than two molds. ii) The central projections 60, 61, 62 and 63, adapted to project through the aperture 32 in the film 31, are arranged on each inside face 38' (and 40') in two concentric and angularly offset crenelated rings, alternating with groove portions 64, 65, 66 and 67 on the inside faces of the plates 34' and 36' and intended to receive the corresponding projections of the other face, the heights of the projections 60-63 and the depths of the grooves 64-67 being chosen to produce, once the two plates have been assembled together, the peripheral annular area 46, with a slight spacing, receiving the identification device 27. As shown in detail in figures 4 and 5 (the first 15 of which shows the inside face 40' of the plate 36'), each external crenelated ring, the diameter whereof is made slightly less than that of the aperture 32, includes three equi-angularly distributed projections 60, 61 having an axis XX' of ternary symmetry and spaced by three groove portions 64 and 65 subtending an angle at the center slightly greater than that of the projections 60, 61. Similarly, each 20 crenelated internal ring, adjacent the crenelated external ring but offset relative thereto by an angle at the center of 60°, includes three equi-angularly distributed projections 62, 63 having an axis XX* of ternary symmetry and spaced by three groove portions 66 and 67 subtending an angle at the center slightly greater than that of the projections 62, 63. Accordingly, once the insert 26' has been assembled 25 by fitting the grooves and projections, the central external projections 60 and 61 respectively project into the external grooves 65 and 64 and the central internal projections 62 and 63 respectively project into the internal grooves 67 and 66. As shown by way of nonlimiting example in figure 5, the fitting is effected forcibly by bearing down on bearing areas 71 between the cylindrical internal walls 70 of the 30 central external projections 60 (and 61) and the cylindrical external walls 72 of the central internal projections 63 (and 64), small clearances 73 being further provided opposite these bearing areas 71 to allow slight deformation of the central projections during this forcible fitting, if necessary. Of course, the two plates 34' and 36' may be fastened together in any other manner, in particular by gluing or welding them 35 together. iii) The edge 48" of the insert 26' is re-entrant at its center to allow the outside edge of the film 31 to project slightly. To this end, the peripheries 74 and 76 12 of the plates 34' and 36' are beveled on the inside and the external faces 52' and 54' of the plates 34' and 36' have small shoulders 49' designed to be covered by the injection-molded plastics material of the body of the chip during fastening together of the insert 26' and the body of the chip in the manner described hereinafter with 5 reference to figures 7a, 7b and 7c.
Figure 6 is an exploded view of an insert 26" that is an alternative to the insert 26' and in which two oriented detectable-film patches 80, 82 of an active material or alloy sensitive to electromagnetic radiation are disposed on either side of the identification device 27, the orientations of the two detectable films of the 10 patches crossing at substantially 90°. The patches 80 and 82 also have one or both faces covered with adhesive to facilitate assembly of the insert 26", as the distance between the inside faces of the plates 34' and 36' can be increased slightly to allow for the thickness of the two patches and prevent crushing of the identification device 27.
Figures 7a, 7b and 7c show the fastening of the insert 26' into the central opening 25', 25b, 25c of an annular chip body made by double injection molding with a core (first injection molding operation) and a covering layer (second injection molding operation).
Figure 7a shows a chip structure substantially identical to that of the chip 20 10, and in particular in which the body 12' includes a core 14' injection-molded around the edge 48' of the insert 26' that covers the shoulders 49' of the insert 26' flush with the outside faces 52', 54' of the insert. The body/insert fastening is effected at the level of the central aperture 25' of the core 14' (coinciding with the central aperture of the body 12'), which core 14' is partially covered by the layer 16' 25 during the second injection molding operation.
Figure 7b shows a chip structure similar to that of the chip 10, but in which the body/insert fastening, again effected in the central aperture 25b of the body 12b of the chip, is effected at the level of the central aperture of the core 14b and the central aperture of the layer 16b. In particular the body 12b includes a core 14b 30 injection-molded around the central portion of the edge of the insert 26' (beveled edges 74, 76 and projecting edge of the film of the identification device 27 so as to be flush with the shoulders 49'). During the second injection molding operation the core 14b is covered by the layer 16b, which covers the shoulders 49' of the insert 26' flush with the outside faces 52', 54' of the insert.
Figure 7c corresponds to another chip structure similar to that of the chip , but in which body/insert fastening is effected, again in the central aperture of the body 12c of the chip, at the level of a central aperture of the covering layer 16c. In 13 particular, the body 12c includes an injection-molded annular core 14c of greater diameter than the insert 26'. During the second injection molding operation, the covering layer 16c envelops the core 14c until it covers all of the edge 48' of the insert 26', including the shoulders 49' of the insert 26', until it is flush with the outside 5 faces 52', 54' of the insert.
Of course, the invention is not limited to gaming chips or casino chips but relates equally to all types of chip in the form of a disk with an injection-molded plastics material body integrating an electronic identifier, such as, by way of nonlimiting example, parking tokens, payment tokens and vouchers and identification 10 badges for goods or persons.
Received at IPONZ 3 May 2011 14

Claims (32)

1. Chip having a generally disk shape, comprising: a body having a central aperture, an insert, positionable within the central aperture, comprising two rigid plates each having at least one central projection extending from a respective 5 inside face and a contactless identification device, wherein the at least one central projection of each of the two rigid plates are coupleable to the respective opposing inside face of the rigid plate to define an area in which the contactless identification device is located.
2. Chip according to claim 1, wherein the two rigid plates have central 10 portions and the two rigid plates are coupleable in their central portions, and the defined area is a peripheral annular area.
3. Chip according to claim 1 or 2, wherein the contactless identification device comprises an electronic microchip and an associated antenna.
4. Chip according to any one of claims 1 to 3, wherein at least one of the 15 two rigid plates includes at least one projection extending from a central portion of an inside face that defines the area and maintains a separation between inside faces of the two rigid plates.
5. Chip according to claim 4, wherein the area defined by the central portion is a peripheral annular area around the at least one projection. 2 0
6. Chip according to claim 4 or 5, wherein the contactless identification device comprises an antenna carried by a thin insulative film having at least one central aperture through which the at least one of the central projection passes.
7. Chip according to claim 6, wherein the thin film is fixed by means of an adhesive to the inside face of the at least one plate. 2 5
8. Chip according to claim 6 or 7, wherein at least a part of the antenna is formed by depositing conductive material on the thin insulative film.
9. Chip according to any one of claims 1 to 8, wherein the at least one central projection extending from respective inside faces of the two rigid plates comprises crenellated rings. 30
10. Chip according to claim 9, wherein the crenellated rings are concentrically arranged and angularly offset with respect to each other, such that groove portions on an inside face of one plate is structured and arranged to receive a corresponding projection on an inside face of the other plate.
11. Chip according to claim 10, wherein heights of the projections and 35 depths of the grooves are selected to define the area when the two plates are coupled together, and the defined area is a peripheral annular area.
12. Chip according to any one of claims 1 to 11, wherein at least one of Received at IPONZ 3 May 2011 the two rigid plates includes an annular abutment extending from a periphery of an inside face to protect the contactless identification device from at least one of crushing and ingress of material into the area.
13. Chip according to any one claims 3 to 12, wherein the electronic 5 microchip operates in a frequency range from 10 to 17 MHz or from 2 to 5 GHz.
14. Chip according to any one of the preceding claims, wherein the insert is generally disk-shaped and the contactless identification device comprises a loop antenna with a diameter from 25 to 30 mm.
15. Chip according to any one of the preceding claims, wherein the insert 10 is further comprised of two oriented detectable-film patches of one of an active material or an alloy sensitive to electromagnetic radiation.
16. Chip according to claim 15, wherein the two oriented detectable-film patches are arranged in a cross orientation.
17. Chip according to claim 16, wherein the two oriented detectable-film 15 patches are oriented at substantially 90°to each other.
18. Chip according to any one of claims 1 to 17, wherein the two rigid plates comprise plastic material.
19. Chip according to claim 18, wherein the plastic material contains weighting charges compatible with contactless RFID transmission. 2 0
20. Chip according to any one of the preceding claims, wherein the body of the chip is composed of plastic material injection-molded around the insert, wherein the injection-molded plastic material further overlaps at least a periphery of the insert and enters into an edge of the insert.
21. Chip according to claim 20, wherein the insert comprises an edge 2 5 formed with at least one of a beveled portion, a rounded portion, and a grooved portion.
22. Chip according to any one of the preceding claims, wherein the body includes two faces, and a cavity on each face into which a label carrying at least one of a decoration, a mark, and a hologram is fixed. 30
23. Chip according to any one of the preceding claims, which is a gaming chip or a casino chip.
24. Chip according to any one of claims 1 to 23, wherein the two rigid plates further comprise a first rigid plate having a first central projection and a first central cavity on its inside face and a second rigid plate having a second central 35 projection and a first groove on its inside face, wherein the first central cavity is configured to receive the second projection of the second rigid plate and the first groove is configured to receive the first projection of the first rigid plate. Received at IPONZ 3 May 2011 16
25. Chip according to claim 24, wherein the first projection and the first groove are annular in shape and wherein the first central cavity is sized to receive the second projection such that at least a portion of the interior wall of the second projection substantially abuts at least a portion of the corresponding facing wall of 5 the second projection.
26. A chip having a generally disk shape, comprising: a body having a central aperture; a first rigid plate having at least two concentric and angularly offset crenelated rings forming at least two projections extending from an inside face of the 10 first rigid plate and at least two grooves disposed adjacent the two projections on the inside face of the first rigid plate, wherein the at least two grooves are configured to receive corresponding at least two concentric and angularly offset crenelated rings forming two projections from a second rigid plate; a second rigid plate having at least two concentric and angularly offset 15 crenelated rings forming at least two projections extending from an inside face of the second rigid plate and at least two grooves disposed adjacent the two projections on the inside face of the second rigid plate, wherein the at least two grooves are configured to receive corresponding at least two concentric and angularly offset crenelated rings forming two projections; 2 0 an insert, positionable within the central aperture, the insert comprising the first and second rigid plates coupled together and a contactless identification device, the insert being assembled by coupling the at least two projections of the first rigid plate within the grooves of the second rigid plate and coupling the at least two projections of the second rigid plate within the grooves of the first rigid plate so as to 2 5 define an area there between in which the contactless identification device is located.
27. Chip according to claim 26, wherein the inside surface of the first rigid plate contacts at least one substantially planar surface of the at least two projections of the second rigid plate and the inside surface of the second rigid plate contacts at least one substantially planar surface of the at least two projections of the first rigid 30 plate.
28. An insert as defined in claim 1 comprising: a microchip-based contactless electronic identification device; and two rigid plates each having central portions one of fastenable and fittable together by at least one projection extending from a respective inside face of each 35 rigid plate so as to define a peripheral annular area into which the contactless electronic identification device is positionable.
29. Chip substantially as herein described with reference to any one of Received at IPONZ 3 May 2011 the Figures.
30. The chip according to any one of claims 1 to 27, substantially as herein described.
31. The insert according to claim 28, substantially as herein described 5 with reference to any one of the Figures thereof.
32. The insert according to claim 28, substantially as herein described.
NZ54939005A 2005-11-09 2005-11-09 Chip with two part insert having projections which engage to define area in which to place microchip NZ549390A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
NZ54939005A NZ549390A (en) 2005-11-09 2005-11-09 Chip with two part insert having projections which engage to define area in which to place microchip

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
NZ54939005A NZ549390A (en) 2005-11-09 2005-11-09 Chip with two part insert having projections which engage to define area in which to place microchip

Publications (1)

Publication Number Publication Date
NZ549390A true NZ549390A (en) 2011-06-30

Family

ID=44223595

Family Applications (1)

Application Number Title Priority Date Filing Date
NZ54939005A NZ549390A (en) 2005-11-09 2005-11-09 Chip with two part insert having projections which engage to define area in which to place microchip

Country Status (1)

Country Link
NZ (1) NZ549390A (en)

Similar Documents

Publication Publication Date Title
AU2005324329B2 (en) Chip with insert including an electronic microchip
US7931204B2 (en) Electronic microchip token and its fabrication process
US7866563B2 (en) Token with electronic device, method of making thereof, and apparatus for making thereof
AU700269B2 (en) Gambling chip
US6264109B1 (en) Token with electronic chip
AU778103B2 (en) Silicon chip token and methods for making same
US5166502A (en) Gaming chip with implanted programmable identifier means and process for fabricating same
US5676376A (en) Composite gaming chip
EP0436497A2 (en) Gaming chip with implanted programmable identifier means and process for fabricating same
WO2018020055A1 (en) Near field communication ring
US20110102292A1 (en) Device housing and method for making the same
JP3554295B2 (en) Enhanced contactless data carrier and method of manufacturing the same
NZ549390A (en) Chip with two part insert having projections which engage to define area in which to place microchip
WO2003045661A1 (en) Casino chip with antitheft and antiforgery tag circuit and manufacturing method thereof
US20210076789A1 (en) Enhanced gaming chips

Legal Events

Date Code Title Description
PSEA Patent sealed
RENW Renewal (renewal fees accepted)
RENW Renewal (renewal fees accepted)
RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2016 BY ACUMASS

Effective date: 20151020

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2017 BY ACUMASS

Effective date: 20161018

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2018 BY ACUMASS

Effective date: 20171024

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2019 BY COMPUTER PACKAGES INC

Effective date: 20181018

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2020 BY COMPUTER PACKAGES INC

Effective date: 20191018

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2021 BY COMPUTER PACKAGES INC

Effective date: 20201031

RENW Renewal (renewal fees accepted)

Free format text: PATENT RENEWED FOR 1 YEAR UNTIL 09 NOV 2022 BY COMPUTER PACKAGES INC

Effective date: 20211117

S43A Offer to surrender
S43 Surrender of patents according section 43 patents act

Effective date: 20221026