This application claims the benefit of British patent application serial no. GB 1223471.2, filed on Dec. 28, 2012. The entire content of the aforementioned patent application is hereby incorporated by reference for all purposes.
This invention relates to an electronic device and in particular, to an electronic device having a tamper resistant enclosure.
Many electronic devices are used to transfer or store sensitive information. For example, a card reader may read, process, and at least temporarily store data related to credit cards, bank accounts and pin numbers and transfer data to a computer for the purpose of conducting a transaction. These devices may be subjected to tampering.
A cover may prevent tampering and/or provide evidence that a tampering has been tempted. One such device, disclosed in German Patent DE4312905, provides a flexible substrate that has a number of conductors forming one or more electrical circuits, disposed between a key pad and a PCB. The conductors have a narrow width and are finely spaced and spread over the substrate so as to form a barrier against forming a hole in the substrate without severing a conductor. The conductors are connected to an alarm circuit which is triggered by a conductor being severed. The response to the triggering of the alarm depends on the arrangement of the alarm circuit and may range from simply raising an alarm indication to disabling the protected circuit, or completely erasing data stored in the device. Key switches are arranged to be operated by depressing keys of the key pad which cause momentary deformation of the security device to allow conductive portions formed on the security device to short across or electrically interconnect selected conductive tracks of the PCB. Alarm switches are provided which function in a similar manner to the key switches and are held in the closed position by spigots formed on a housing containing the PCB to raise an alarm condition when the housing is opened.
A similar design is disclosed in US published patent application no. U.S. 2011/0100788A1, in which the protection device is connected to the circuit board via two normally open switch contacts. This design requires the protected circuit to be at all times enclosed by a secondary housing that applies a force against the protection device to resiliently deform a part of a substrate of the protection device to continually maintain the switches in the closed condition, so that the alarm circuit will be immediately triggered by opening of the housing. In this design the alarm switches are used to electrically connect the conductor(s) of the protection device to the security terminals of the PCB. Opening the housing would open the switch and trigger the security alarm. However, as there is only one type of alarm trigger, even if there is more than one trip switch, there is no indication of what caused the alarm to trigger, e.g., opening of the housing or damage to the conductor.
Hence there is a desire for a simplified device for protecting an electronic circuit incorporating a keyboard.
Accordingly, in one aspect thereof, the present invention provides an electronic device comprising a housing, a circuit board, a security wrap, a first dome and a spigot. The housing including a cover. The circuit board is disposed within the housing and has a pair of alarm contacts. The alarm circuit is disposed on the circuit board and is coupled to the pair of alarm contacts. The security wrap is interposed between the key pad and the circuit board and comprises a flexible substrate, a pair of screen terminals and an electrically conductive trace. The electrically conductive trace extends between the pair of screen terminals disposed on the flexible substrate. The adhesive layer covers the flexible substrate and bonds the flexible substrate to the circuit board. The pair of conductive paths extends through the adhesive layer to electrically connect the pair of screen terminals to the alarm circuit. The first dome is disposed between the security wrap and the circuit board and is aligned with the pair of alarm contacts. The spigot is formed on the housing, aligned with the first dome and applies a pressure on the flexible substrate of the security wrap to press the first dome against the pair of alarm contacts while the housing is closed.
A preferred embodiment of the invention will now be described, by way of example only, with reference to figures of the accompanying drawings. In the figures, identical structures, elements or parts that appear in more than one figure are generally labeled with a same reference numeral in all the figures in which they appear. Dimensions of components and features shown in the figures are generally chosen for convenience and clarity of presentation and are not necessarily shown to scale.
The main components of the security wrap 20 include the flexible substrate 22, a release layer 24, a conductive mesh layer or screen 30 formed by one or more conductive traces 26, and an adhesive layer 28.
In accordance with a preferred embodiment, the substrate 22 includes a polymer film, typically a polyethylene terephthalate (PET or commonly referred to as polyester) film, that provides a base for the security wrap 20. Optionally the substrate 22 is flexible, being a film of thickness between 25 μm and 175 μm but can be thicker or thinner depending on functional requirements and may include other variants of polymer film including, but not limited to, polycarbonate, PEN, polyimide, PVC. The substrate 22 may be clear or opaque and pigmented, for example black or white. Black is preferred, to hide the layout of the security screen 30.
The release layer 24 is applied to the substrate 22 in an intermittent pattern and is used to modify or vary the bonding strength of the security screen 30 to the substrate 20 in various regions. Preferably, the release layer 24 is applied in a printing process. Typically, the release layer 24 reduces the strength of the bond between the substrate 22 and the security screen 30. This creates a region prone to destruction should one attempts to peel the security wrap 20 off the parent device 16. In accordance with a preferred embodiment, the release layer 24 is an ultra-violet (UV), infra-red (IR), or thermally cured ink system used to provide a different adhesion level between the substrate 22 and the security screen traces 26. The ink is thus an adhesion modifier. The release layer 24 is not a complete layer such that there are areas of substrate 22 that are not covered by the adhesion modifier 24. Optionally, the release layer 24 may have such patterns as simple stripes or dots.
Preferably, the conductive trace 26 is formed by a thermo set or thermoplastic conductive ink printed over the substrate 22 and release layer 24, in variable trace widths and serpentine mesh patterns forming an electrically conductive path between a pair of screen terminals 32. A single layer security screen 30 may have one, two or more conductive traces 26 interconnecting respective pairs of screen terminals 32. A thermo set conductive ink is preferred for applications requiring a stable resistance between the screen terminals 32.
The conductive ink may be an ink containing silver, carbon, a combination of sliver and carbon, a clear conductive polymer, or other conductive or resistive inks, each with specific properties that suit the necessary requirement for the operation and functionality of the security wrap 20. Multiple layers of ink can be printed in total isolation or connected at specific points depending on the intended functionality of the security wrap 20.
The adhesive layer 28 is preferably a pressure-sensitive adhesive (PSA), typically an acrylic adhesive that forms a bond between surfaces when pressure is applied. The adhesive layer 28 is used to bond the security wrap 20 to the parent device 16. Alternatively, the adhesive may be a liquid adhesive, such as an epoxy, or moisture-cure urethane etc. dispensed or printed between the security wrap 20 and the PCB 16, which is then cured by moisture, thermal or UV and forms a permanent bond between the security wrap 20 and the PCB 16. This type of adhesive is not pressure sensitive, but could work under the same disclosed principle.
Depending on the material of the parent device 16 to which the security wrap 20 is adhered, a variant PSA with specific adhesion properties can be used. This can be a bespoke PSA specifically developed for a specific bonding requirement. Specifically the adhesion to the parent device 16 must be stronger than the adhesion of the release layer 24 to the substrate 22, so that on separation of the security wrap 20 from the parent device 16, part of the adhesive layer 28 will remain adhered to the parent device 16 and part of the adhesive layer 28 will remain adhered to the substrate 22 in order to break the conductive traces 26 of the security screen 30.
The PCB 16 supports at least one alarm switch 34 and at least one key switch 36 (16 keys are shown in the device 10 of
The present invention relates to the use of a security device, such as the security device 20 described above, with a separate alarm input which is triggered when the housing of the electronic device 10 is opened or when the circuit board 16 is removed from the housing. Separation of the ‘open housing’ alarm and the ‘tampering’ alarm allows for different responses to be possible. For example, opening the housing, for example, by removing a cover, may trigger an alarm response which puts the protected device 16 into a maintenance mode, whereas damaging a trace 26 of the security screen 30 may trigger an alarm response which deletes information stored in the device 16 or permanently disables the device 16.
Optionally, the security wrap 20 may contain a dielectric layer. The dielectric layer includes preferably a UV curable ink system with electrically insulative properties and is used as a separating medium to permit multiple layers of conductive ink or multiple security screens 30 to be printed on a single substrate 22. It may also be used to protect the security screen 30 from coming into electrical contact with other components. For example, the dielectric layer may be applied directly over a first security screen via a printing process to insulate the first security screen from a second security screen or from other conductive circuit components, either of the security wrap 20 or the parent device 16. The dielectric layer is generally not necessary in a security wrap 20 having a single conductive layer, such that illustrated in
Depending on security wrap 20 functionality, the dielectric layer can be printed partially or fully over the top of the conductive traces 26 of a security screen 30 to enable a subsequent conductive layer (such as a second security screen) to be printed over but electrically isolated from the first expect where desired, for example to connect the traces in series. Multiple conductive/dielectric layers can be printed in succession.
In the description and claims of the present application, each of the verbs “comprise”, “include”, “contain” and “have”, and variations thereof, are used in an inclusive sense, to specify the presence of the stated item but not to exclude the presence of additional items.
Although the invention is described with reference to one or more preferred embodiments, it should be appreciated by those skilled in the art that various modifications are possible. Therefore, the scope of the invention is to be determined by reference to the claims that follow.
For example, a spacer, acting as a light guide or other function, may be disposed between the key pad 14 and the security device 20.
Number | Date | Country | Kind |
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1223471.2 | Dec 2012 | GB | national |