Switchable electromagnetic shield
10912239 · 2021-02-02
Assignee
Inventors
- Özgür Cobanoglu (Inegol-Bursa, TR)
- Jitka Eryilmaz (Inegol-Bursa, TR)
- Ertug Erkus (Inegol-Bursa, TR)
- Fatih Donmez (Inegol-Bursa, TR)
- Fehim Caglar (Inegol-Bursa, TR)
Cpc classification
H05K9/009
ELECTRICITY
International classification
H05K9/00
ELECTRICITY
Abstract
It is disclosed an electromagnetic shield (1) and a related method for providing electromagnetic shielding wherein the shield comprises a shielding surface provided with a plurality of electrically conductive elements (2), said plurality of electrically conductive elements (2) being electrically connected to a switching assembly (3) configured to switch said electromagnetic shield (1) between an open configuration, wherein said electrically conductive elements (2) are electrically insulated from one another, and a shorted configuration wherein said electrically conductive elements (2) are electrically connected to each other at a common node (C). When the electrically conductive elements (2) of the electromagnetic shield (1) are switched between the open and shorted configurations, a change of the electromagnetic shielding effectiveness (EMSE) occurs. The electromagnetic shield (1) can be used for providing a shielding textile fabric (12), or an article that may comprise the electromagnetic shield (1) in form of a pocket preferably made with the shielding fabric (12).
Claims
1. An electromagnetic shield (1) comprising a shielding surface provided with a plurality of electrically conductive elements (2), wherein said plurality of electrically conductive elements (2) are electrically connected to a switching assembly (3) configured to switch at least part of said electrically conductive elements of said electromagnetic shield (1) between an open configuration, wherein said electrically conductive elements (2) are electrically insulated from one another, and a shorted configuration wherein said electrically conductive elements (2) are electrically connected to each other at a common node (C) wherein said electrically conductive elements are core-spun cotton yarns having a core comprising a metal wire coated with an electrical insulating material and are arranged to form at least a part of the warp and/or the weft of a fabric.
2. The electromagnetic shield (1) according to claim 1, wherein said common node (C) is electrically connected to a fixed ground potential.
3. The electromagnetic shield (1) according to claim 1, wherein said common node (C) is electrically connected to a dynamic driving potential for driving said plurality of electrically conductive elements (2) as a transmitting antenna.
4. The electromagnetic shield (1) according to claim 3, wherein said switching assembly (3) is further configured to electrically connect either said common node (C) to a fixed ground potential or said common node to said dynamic driving potential.
5. The electromagnetic shield (1) according to claim 3, wherein said dynamic driving potential is provided by a resonant circuit (8).
6. The electromagnetic shield (1) according to claim 5, wherein said resonant circuit (8) comprises a voltage controlled oscillator.
7. The electromagnetic shield (1) according to claim 1, wherein said electrically conductive elements (2) are spaced one from another by an electrically insulating material (5).
8. The electromagnetic shield (1) according to claim 1, wherein said plurality of electrically conductive elements (2) comprises a first set of electrically conductive elements (2) and a second set of electrically conductive elements (2), said switching assembly (3) being further configured to switch said at least part of electrically conductive elements of the electromagnetic shield (1) between a first partially shorted configuration, wherein the electrically conductive elements (2) of said first set are electrically connected to each other at said common node (C) and the electrically conductive elements (2) of said second set are electrically insulated from one another, and a second partially shorted configuration, wherein the electrically conductive elements (2) of said second set are electrically connected to each other at said common node (C) and said electrically conductive elements (2) of said first set are electrically insulated from one another.
9. The electromagnetic shield (1) according to claim 1, comprising control means (9) for controlling the switching of said switching assembly (3) by a user.
10. The electromagnetic shield (1) according to claim 1, wherein said plurality of electrically conductive elements (2) are arranged to form a mesh or a grid.
11. The electromagnetic shield (1) according to claim 10, wherein said mesh or grid comprises a plurality of openings having extension less than 400 mm.sup.2.
12. The electromagnetic shield (1) according to claim 11, wherein said mesh or grid comprises a plurality of openings having extension comprised between 1 mm.sup.2 and 100 mm.sup.2.
13. A shielding fabric (12) comprising a plurality of insulated electrically conductive wires (2) arranged to form at least a part of the warp (12a) and/or of the weft (12b) of said shielding fabric (12), said wires (2) being configured to be electrically connected to a switching assembly (3) for providing an electromagnetic shield (1) according to claim 1.
14. The shielding fabric (12) according to claim 13, wherein said fabric (12) is a denim fabric.
15. An article comprising an electromagnetic shield (1) according to claim 1.
16. The article according to claim 15, wherein said article comprises a shielding fabric (12) comprising a plurality of insulated electrically conductive wires (2) arranged to form at least a part of the warp (12a) and/or of the weft (12b) of said shielding fabric (12), said wires (2) being configured to be electrically connected to a switching assembly (3) for providing an electromagnetic shield (1) comprising a shielding surface provided with a plurality of electrically conductive elements (2), wherein said plurality of electrically conductive elements (2) are electrically connected to a switching assembly (3) configured to switch at least part of said electrically conductive elements of said electromagnetic shield (1) between an open configuration, wherein said electrically conductive elements (2) are electrically insulated from one another, and a shorted configuration wherein said electrically conductive elements (2) are electrically connected to each other at a common node (C).
17. A method for providing electromagnetic shielding from an electromagnetic field comprising the following steps: a) providing an electromagnetic shield (1) according to claim 1; b) switching at least part of said electrically conductive elements of said electromagnetic shield (1) between said open configuration and said shorted configuration.
18. The method according to claim 17, wherein said step (b) causes a change of the electromagnetic shielding effectiveness (EMSE) of said shielding surface at one or more frequencies of said electromagnetic field.
19. An electromagnetic shield comprising a shielding surface provided with a plurality of electrically conductive elements, wherein said plurality of electrically conductive elements are electrically connected to a switching assembly configured to switch at least part of said electrically conductive elements of said electromagnetic shield between an open configuration, wherein said electrically conductive elements are electrically insulated from one another, and a shorted configuration wherein said electrically conductive elements are electrically connected to each other at a common node and wherein said electrically conductive elements are core-spun cotton yarns having a core comprising a metal wire coated with an electrical insulating material and are arranged to form at least a part of the warp and/or of the weft of a fabric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described in greater detail, by way of example, with reference to the accompanying non limiting drawings. It is emphasized that, according to common practice, the various features of the drawing 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 the specification and the drawings in which:
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DETAILED DESCRIPTION
(10)
(11) The electrically conductive elements 2 have a substantially linear shape, i.e. each conductive element 2 extends mainly along a linear direction (along a main dimension, with the other two negligible). For example, the electrically conductive elements 2 may be in form of rods, wires or similar elements having an elongated shape.
(12) Preferably, the conductive elements 2 can be arranged to form a mesh, a net or a grid as shown for example schematically in
(13) With respect to
(14) In particular, the switching assembly 3 comprises a plurality of switching elements 4 that may be preferably of the type electrically operated, such as relays, transmission gates or similar switching elements known per se in the art. However, further embodiments can provide that switching elements 4 comprise mechanically operated switches.
(15) Each electrically conductive element 2 is electrically connected to a first terminal 4a of a correspondent switching element 4 of the switching assembly 3. The second terminals 4b of the switching elements 4 are electrically connected to a common node C.
(16) The switching elements 4 comprise a control terminal 4c for controlling the opening and the closing of the switching element 4 between the terminals 4a, 4b. In the case of mechanically operated switching elements 4, the control terminal 4c may be a lever or a selector moveable between a closed and open position. In case of electrically operated switching elements 4, the control terminal 4c may be an electrical terminal configured to receive a control signal (e.g. a voltage) having a Boolean value representing the open status and the closed status of the switching element 4.
(17) When the switching elements 4 are open, the electrically conductive elements 2 are electrically insulated from one another (open configuration). When the switching elements 4 are closed, the electrically conductive elements 2 are electrically connected to each other at the common node C (shorted configuration).
(18) The switching assembly 3 is electrically connected to one of the ends of the conductive elements 2, so that when the electrically conductive elements 2 are in the shorted configuration, the electrically conductive elements 2 are electrically connected to each other at one of their ends. Further embodiments can provide that each end of the electrically conductive elements 2 is electrically connected to a switching element 4, so that when the electrically conductive elements are in the shorted configuration, both the ends of each electrically conductive element 2 are electrically connected to the common node C.
(19) As will be later shown with more details, by switching the electrically conductive elements 2 of the electromagnetic shield 1 between the open configuration and the shorted configuration, a change of the value of electromagnetic shielding effectiveness (EMSE) of the shielding surface occurs.
(20) In particular, the electromagnetic shielding effectiveness is a function of the frequency values of the electromagnetic field incident to the shielding surface of the electromagnetic shield. The values of the electromagnetic shielding effectiveness, at one or more frequency values, change when the electrically conductive elements 2 of the electromagnetic shield 1 are switched between the open and the shorted configuration.
(21) In other words, the present invention provides an electromagnetic shield 1 having an electromagnetic shielding effectiveness value, for example at a predetermined frequency, that can be changed by controlling switching assembly 3.
(22) In particular, by arranging the electrically conductive elements 2 in a proper manner, a shielding surface having an electromagnetic shielding effectiveness value switchable between two different values can be obtained. For example, for shielding electromagnetic fields in the range of frequency comprised in the radiofrequency (RF), electrically conductive elements 2 may be arranged to form a mesh or a grid provided with openings having extension less than 400 mm.sup.2. Preferably, the extension of these openings may be comprised between 1 mm.sup.2 and 100 mm.sup.2, more preferably about 10 mm.sup.2.
(23) For example, some embodiments can provide that the electromagnetic shield 1 is designed for a predetermined frequency of the electromagnetic field to be shielded so that a high value of EMSE is provided by the shielding surface when the electrically conductive elements 2 are in the closed configuration, while a low value of EMSE is provided by the shielding surface when the electrically conductive elements 2 are in the open configuration.
(24) With respect to
(25) In some embodiments (shown schematically in
(26) Advantageously, the electrically conductive elements 2 of each panel 11 may be provided with a first end having a connection terminal in form of a socket, the other end of the electrically conductive elements 2 may be provided with a connection terminal in form of a plug for carrying out a quick and simple electrical connection between a plurality of panels 11.
(27) With respect to
(28) Some embodiments may provide that the electrically conductive elements 2 are arranged to form only a part of the warp 12a or only a part of the weft 12b of the fabric 12. Other embodiments may provide that the electrically conductive elements 2 are arranged to form the totality of the warp 12a and/or the totality of the weft 12b still remaining in the scope of protection of the present invention. In general the shielding fabric 12 comprises a plurality of electrically conductive elements 2 arrange to form at least a part of the warp 12a and/or of the weft 12b of the fabric 12.
(29) For example, the embodiment shown in
(30) The weft 12b of the fabric 12 may be formed, in the same manner, as disclosed as for the warp. As a result electrically conductive elements 2 form a grid having substantially square openings, woven with regular yarns 12a, 12b.
(31) A preferred embodiment may provide for example that the electrically conductive elements 2 are core-spun cotton yarns having a core comprising a copper magnet wire. Referring to
(32) The resonant circuit 8 is configured to provide a dynamic driving potential for driving the electrically conductive elements 2 as a transmitting antenna when the electrically conductive elements of the electromagnetic shield 1 are in the shorted configuration and the common node C is electrically connected to the resonant circuit 8.
(33) The Applicant has been noted that by applying a dynamic driving potential (e.g. a sinusoidal voltage signal) having a determined oscillation frequency to the common node C, the EMSE value provided by the electromagnetic shield 1 changes with respect to EMSE value provided when the common node C is electrically connected to a fixed ground potential.
(34) In a preferred embodiment, the resonant circuit 8 comprises a voltage controlled oscillator (VCO) for controlling the oscillation frequency of the dynamic driving potential. As a result, the EMSE provided by the electromagnetic shield when the electrically conductive elements in shorted configuration can be adjusted while the common node C is electrically connected to the resonant circuit 8.
(35) With respect to
(36) However, some embodiments may provide that either the common node C is electrically connected only to the fixed ground potential or that the common node C is electrically connected only to the resonant circuit 8, still remaining within the scope of protection of the present invention. In other words, the switching assembly 3 of these embodiments is not provided with the switching element 6 and 7 and the common node C is directly connected to the ground potential or to the resonant circuit 8.
(37) The electromagnetic shield 1 comprises control means 9 for controlling the switching of the switching assembly 3 by a user. For example, the control terminals 4c of the switching elements 4 can be advantageously connected to logic circuit 9a configured for controlling the opening and the closing of the switching element 4.
(38) The logic circuit 9a may be controlled by a user interface 9b that can comprise a selector 9c for example a mechanical selector 9c configured to select a shielding configuration of the electrically conductive elements 2 between the open configuration and the shorted configuration.
(39) If the electromagnetic shield is further provided of a resonant circuit 8, the user interface 9b may be further configured to select (for example by means of the selector 9c) a shielding configuration chosen between: the open configuration, the shorted configuration with common node at a fixed ground potential, and the shorted configuration with the common node C at a dynamic driving potential.
(40) A preferred embodiment may provide that the user interface 9b comprises a communication module 9d, preferably a wireless communication module (e.g. a Bluetooth module) configured to receiving a configuration signal from an external device 10 (for example a smartphone, a PC, or a similar device).
(41) The configuration signal can be selected by means of the external device 10, for example by a graphic interface provided in the external device 10. In a preferred embodiment, the switching assembly 3 is configured for allowing the control of the opening and the closing for each switching element 4, so that the electrically conductive elements 2 of the electromagnetic shield 1 can be switched between a first partially shorted configuration and a second partially shorted configuration.
(42) When the electrically conductive elements are in the first partially shorted configuration, a first set of the electrically conductive elements 2 are electrically connected to each other at the common node C while a second set of the electrically conductive elements 2 are electrically insulated from one another. Analogously when the alactrically conductive elements are in the second partially shorted configuration, the electrically conductive elements 2 of the second set are electrically connected to each other at the common node C while the electrically conductive elements 2 of the first set are electrically insulated from one another.
(43) The Applicant has been noted that the EMSE changes by switching the electrically conductive elements 2 of the electromagnetic shield 1 between a partial shorted configuration (the first or the second) and the open or shorted configuration.
(44) For example, by means of the external device 10, the user may select the electrically conductive elements 2 of the first and of the second set for defining the two aforementioned partially shorted configurations. As a result, the EMSE can be adjusted by the user by switching the electrically conductive elements of the electromagnetic shield between various partially shorted configuration. Furthermore, the common node C of the electrically conductive elements 2, in a partially shorted configuration, may be electrically connected to the fixed ground potential or to a dynamic driving potential (having preferably an adjustable oscillation frequency).
(45) In this way, the same electromagnetic shield 1 can be adjusted, for a determined frequency of the electromagnetic field to shield, for providing an EMSE within a desired range of values. In other words the electromagnetic shield can provide a shielding surface having an EMSE switchable between a first value and a second value comprised in a desired first range and second range respectively.
(46) Summarizing, a method for providing electromagnetic shielding from an electromagnetic field comprises the following steps: (a) providing an electromagnetic shield according to any one embodiment of the present invention; (b) switching the electrically conductive elements 2 of the electromagnetic shield between the open configuration and the shorted configuration.
(47) The step (b) causes a change of the electromagnetic shielding effectiveness (EMSE) of the shielding surface at one or more predetermined frequencies of the electromagnetic field.
(48) Preferably, the method may comprise a further step (c) of adjusting the electromagnetic shielding effectiveness of the shielding surface.
(49) Some embodiments may provide that the step (c) is carried out for example by selecting a part of the electrically conductive elements 2 (for example the first or second set of electrically conductive elements 2) to be electrically connected to the common node (C) when the electrically conductive elements are in a partially shorted configuration (for example in the first or second partially shorted configuration).
(50) Some embodiment may provide that the step (c) is carried out for example by adjusting the oscillation frequency of the dynamic driving potential provided by a resonant circuit electrically connected to the common node (C). In this embodiment, the step (c) may be carried out when the electrically conductive elements are in the shorted configuration or in a partially shorted configuration.
(51)
(52) In particular, the graph shown in
(53) As can be noted from the graph, by switching the electrically conductive elements of the electromagnetic shield between the shorted and the open configuration, the values of EMSE can change considerably. For example, at a first range (schematically indicated with a rectangle R1) of frequencies comprised between about 800 MHz and 900 MHz the difference between the values of EMSE provided by the electromagnetic shield with electrically conductive elements in shorted configuration and in open configuration is comprised between about 10 dB and 15 dB.
(54) With respect to the
(55) The electromagnetic shield 1 can be easily assembled to an article such as a garment, a wallet, a purse, a bag, a card holder, or a phone cover. By switching the electrically conductive elements of the electromagnetic shield 1 between the open configuration and the shorted configuration, the EMSE of the shielding surface can be switched for example between a first value that allows the passage of RF signals through the shielding surface and a second value wherein RF waves are shielded.
(56) Some embodiments may provide that the electromagnetic shield 1 is coupled to a pocket, for example made of the shielding fabric 12 of the present invention. The pocket can be assembled to a garment (for example a pair of pants), or to a pursue, or to a wallet. The pocket may be used for example to directly or indirectly housing a contact-less credit/debit card in its interior. By means of the user interface 9b (mechanically selector and/or wireless communication module) the user can provide a configuration setting to the switching assembly 3 so that the electrically conductive elements of the electromagnetic shield 1 can be switched between different shielding configurations (for example between the shorted and the open configuration). The electromagnetic shield 1 can be designed for providing different values of EMSE at the frequency used for carrying out contact less payment by the credit/debit card.
(57) Thanks to this embodiment, the user may select a configuration setting providing a shielding configuration with a high value of EMSE when the credit card is in the pocket and the user desirers to prevent a unauthorized payment. When the user desirers to use the credit card in contact-less mode, the electromagnetic shield can be switched by the user by selecting a configuration setting that provides a shielding configuration with a low value of EMSE.