Any and all applications for which a foreign or domestic priority claim is identified in the Application Data Sheet as filed with the present application are hereby incorporated by reference under 37 CFR 1.57.
The present disclosure relates to a smartphone antenna module for use in a smartphone and further relates to a smartphone having the antenna module.
Recently, smartphones include a circuit and an antenna for enabling near field RF communication (NFC). Also, some smartphones include other wireless communication circuits and antennas for use in transactions and payments in stores and restaurants with smartphones. For example, a circuit and an antenna for magnetic secure transmission (MST) are applied to some smartphones. However, wireless communication circuits and components for providing various kinds of wireless communications (e.g., LTE communication, Wi-Fi communication and Bluetooth communication) are already housed in smartphones, and various antennas are also mounted in smartphones. In addition, smartphones also have components that may affect the wireless communication, such as a battery and the like. Accordingly, spaces for installing an NFC antenna or MST antenna are limited. This requires additional efforts for designing antennas' structures and layout of components in smartphones.
The foregoing discussion in this section is to provide general background information and does not constitute an admission of prior art.
An aspect of the invention provides a smartphone antenna module which may comprise:
In the foregoing antenna module, the first magnetic sheet portion placed over the first PCB section further may overlap a first coil portion of the second coil antenna that are formed in the first PCB section. The first magnetic sheet portion placed over the first PCB section may extend in a direction away from the second magnetic sheet portion beyond the first coil portion of the second coil antenna. The first magnetic sheet portion placed over the first PCB section may extend in a direction away from the second magnetic sheet portion beyond an edge of the flexible PCB that overlaps with the first PCB section.
Still in the foregoing antenna module, the first coil antenna may comprise a third portion that does not overlap the magnetic sheet at all. The first coil antenna may comprise a fourth portion that does not overlap the magnetic sheet at all, wherein the first, third, second and fourth portions of the first coil antenna are arranged in order surrounding the through hole. The second coil antenna may comprise a third portion and fourth portion that do not overlap the magnetic sheet at all, wherein the first, third, second and fourth portions of the second coil antenna are arranged in order surrounding the through hole.
Yet in the foregoing antenna module, the second magnetic sheet portion placed under the second PCB section further may overlap a second coil portion of the second coil antenna that are formed in the second PCB section. The first magnetic sheet portion placed over the first PCB section may further overlap a first coil portion of the second coil antenna that are formed in the first PCB section. The first magnetic sheet portion may have a first width for passing through the through hole without bending thereof whereas the second magnetic sheet portion has a second width for not passing through the through hole without bending thereof. The through hole may have a maximum linear length of an opening thereof, wherein the first magnetic sheet portion has a first width smaller than the maximum linear length whereas the second magnetic sheet portion has a second width larger than the maximum linear length.
Further in the foregoing antenna module, the through hole may have a maximum linear length of an opening thereof, wherein the first magnetic sheet portion has a first width larger than the maximum linear length whereas the second magnetic sheet portion has a second width larger than the maximum linear length. The through hole may have a maximum linear length of an opening thereof, wherein the first magnetic sheet portion has a first width smaller than the maximum linear length whereas the second magnetic sheet portion has a second width smaller than the maximum linear length.
Still further in the foregoing antenna module, the first coil antenna may comprise a first inner terminal and a first outer terminal, wherein the flexible PCB may further comprises a PCB connector for electrically connecting the first coil antenna to a first counterpart connector of a smartphone, wherein the PCB connector is electrically connected to the first inner terminal and the first outer terminal. The flexible PCB may further comprise a connection line interconnecting the first inner terminal and the PCB connector, wherein the connection line crosses over the first coil antenna and the second coil antenna. The second coil antenna comprises a second inner terminal and a second outer terminal, wherein the PCB connector is also for electrically connecting the second coil antenna to a second counterpart connector of the smartphone, wherein the PCB connector is also electrically connected to the second inner terminal and the second outer terminal. The smartphone antenna module may further comprise a third coil antenna that is not part of the flexible PCB.
Another aspect of the invention provides a smartphone, which may comprise:
In the foregoing smartphone, at least part of the first magnetic sheet portion may be interposed between the rear wall and the first PCB section whereas at least part of the second PCB section is interposed between the rear wall and the second magnetic sheet portion. The first coil antenna coil may be connected to a first smartphone circuit for magnetic secure transmission (MST) using a frequency range of 85-100 KHz, wherein the second coil antenna is connected to a second smartphone circuit for near field communication (NFC) using 13.56 MHz. The antenna module may further comprise a third coil antenna that is not part of the flexible PCB.
Still another aspect of the invention provides a smartphone antenna module, which may comprise:
In the foregoing antenna module, the gap may be greater than 0 mm and less than a distance in a range of 0.1 mm to 3 mm.
A further aspect of the invention provides a smartphone, which may comprise:
In the foregoing smartphone, the first coil antenna coil is connected to a first smartphone circuit for magnetic secure transmission (MST) using a frequency range of 85-100 KHz, wherein the second coil antenna is connected to a second smartphone circuit for near field communication (NFC) using 13.56 MHz.
Embodiments of the invention are now described with reference to the accompanying drawings. The terminology used in the description presented herein is not intended to be interpreted in any limited or restrictive manner, simply because it is being utilized in conjunction with a detailed description of certain specific embodiments of the invention.
In embodiments, referring to
In embodiments, a smartphone can include an NFC antenna and an MST antenna. The NFC antenna and the MST antenna, among the antennas, use a considerably low frequency band and handle wireless signals of considerably long wavelengths as compared with other wireless antennas, it is typical that the NFC antenna and the MST antenna have sizes greater than those of other antennas. Accordingly, the location of the NFC antenna and the MST antenna overlap with the location of the metal housing, the battery or the like more than those of the other antennas. This requires improvements in the structures of the NFC antenna and the MST antenna and further requires improved layout arranging the NFC antenna and the MST antenna. In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, the magnetic sheet 300 contains magnetic material which is referred to as soft magnet material or ferromagnetic material, for example, ferrite or ferromagnetic metal. In embodiments, the magnetic sheet is entirely made of the magnetic material. In other embodiments, the magnetic material powder or particles are dispersed in a plastic resin matrix of flexible sheet shape.
In embodiments, referring to
As a result, in embodiments, the first sheet portion 320 overlaps coil portions of the first coil antenna 204 which are located in the first PCB portion 220. Further, the first sheet portion 320 further overlaps coil portions of the second coil antenna 206 which are located in the first PCB portion 220. Similarly, the second sheet portion 322 overlaps coil portions of the first coil antenna 204 which are located in the second PCB portion 222. Further, the second sheet portion 322 further overlaps coil portions of the second coil antenna 206 which are located in the second PCB portion. In other embodiments, the first sheet portion does not overlap the coil portions of the second coil antenna 206 which are located in the first PCB portion 220 while the first sheet portion 320 further overlaps coil portions of the second coil antenna 206 which are located in the first PCB portion 220.
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, the head portion has a width greater than that of the through hole. In this configuration, the head portion is bent when passing through the through hole. The magnetic sheet further includes a neck portion between the base portion and the head portion. The neck portion has a width smaller than that of the through hole.
In embodiments, instead of the magnetic sheet discussed in the above, two or more separate magnetic sheet pieces can be used. In embodiments, referring to
Over surfaces of the assembly of the flexible PCB and the magnetic sheet, in embodiments, protective and insulation coatings are further coated to complete making the single body of the flexible antenna module.
In embodiments, referring to
In embodiments, the inner and outer terminals of the first coil antenna may be connected to an MST circuit in the smartphone 10 such that the first coil antenna functions as an MST antenna. Magnetic secure transmission (MST) is also referred as magnetic stripe transmission or magnetic secure transmission as disclosed in US 2016/0180120 A1 entitled “MAGNETIC SECURE TRANSMISSION DEVICE HARDWARE,” the entire disclosure of which is incorporated by reference herein. In other embodiments, however, the second coil antenna may function as an MST antenna.
In embodiments, the inner and outer terminals of the second coil antenna 206 are connected to an NFC circuit in the smartphone 10 such that the second coil antenna functions as an NFC antenna. Near Field Communication (NFC) is a standard allowing wireless communication in a Radio Frequency (RF) band between portable devices, such as smartphones, or between a portable device and a fixed device (an NFC terminal). In other embodiments, however, the first coil antenna may function as an NFC antenna.
In embodiments, the smartphone with the antenna module has a controller which operates the first and second coils as an MST antenna and an NFC antenna, respectively. The controller can operate the antenna coils such that the first coil antenna does not operate as an MST antenna while the second coil is operating as an NFC antenna. Similarly, the controller operates the antenna coils such that the second coil antenna does not operate as an NFC antenna while the first coil is operating as an MST antenna. In some embodiments, the antenna module may have three or more coil antennas and the controller operates the three or more coil antennas such that only one coil antenna among the three or more coil antennas is operating and the other coil antennas is not working. In embodiments, the controller does not operate two or more coil antennas among the three or more coil antennas at the same time.
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, referring to
In embodiments, the antenna module may further include one or more additional antennas which include a third coil antenna surrounding the second coil antenna. The magnetic sheet overlaps coil portions of the third coil antenna that are located in each of the first PCB portion and the second PCB portion. In other embodiments, the magnetic sheet does not overlap coil portions of the third coil antenna that are located in of the first PCB portion while the magnetic sheet overlaps coil portions of the third coil antenna that are located in the second PCB portion. In one embodiment, when the antenna module is assembled in a smartphone, the first coil antenna functions as an MST antenna, the second coil antenna functions as an NFC antenna and the third coil antenna functions as a wireless charging transformer. However, the invention is not limited thereto. In another embodiment, when the antenna module is assembled in a smartphone, the second coil antenna functions as an MST antenna, the third coil antenna functions as an NFC antenna and the first coil antenna functions as a wireless charging transformer. Still in another embodiment, when the antenna module is assembled in a smartphone, the third coil antenna functions as an MST antenna, the first coil antenna functions as an NFC antenna and the second coil antenna functions as a wireless charging transformer. In other embodiments, one of the coil antenna can functions both the MST antenna and the NFC antenna according to control signals from the controller in the smartphone. In the foregoing embodiments, for the third coil antenna, the PCB connector portion further includes additional pads and additional connector lines are provided such that there is no electric connection between one of the first, second and third coil antennas and the other coil antennas.
In embodiments, the antenna module may include one or more coil antennas that are not part of the flexible PCB. The one or more coil antennas comprise a fourth coil antenna that are not part of the flexible PCB and placed over the magnetic sheet. In one embodiment, the entire portion of the fourth coil antenna may be placed over the magnetic sheet and may be interposed between the magnetic sheet and the rear wall or rear cover of the smartphone when the antenna module is assembled in the smartphone. In the other embodiment, the fourth coil antenna is placed over both flexible PCB and the magnetic coil. Further, in one embodiment, the fourth coil antenna may be a winding antenna shown in
Embodiments shown in
In the smartphone antenna module of proceeding embodiment, the printed antenna portion including the printed antenna is at least in part thicker than the bridge portion including the first conductive line. In the smartphone antenna module of proceeding embodiments, the thickness of the bridge portion at any point thereof is smaller than a thickness of the printed antenna portion in the viewing direction. In the smartphone antenna module of any one of the preceding embodiments, the printed antenna and the winding antenna are arranged generally side by side such that the printed antenna and the winding antenna do not overlap when viewed in the viewing direction. In the smartphone antenna module of any one of the preceding embodiments, the antenna module further comprises a second conductive line extending in the bridge portion and comprising a third end and a fourth end, wherein the third end is connected to the outer portion of the winding for electrical connection with the outer terminal of the winding antenna. In the antenna module shown in
In the smartphone antenna module of any one of the preceding embodiments, each of the first and second conductive lines has a thickness substantially smaller than its width (e.g., width at least 3 times thickness). In the smartphone antenna module of any one of the preceding embodiments, one of the first and second conductive lines has a thickness substantially smaller than its width. In the smartphone antenna module of any one of the preceding embodiments, the flexible PCB and the winding antenna are arranged generally side by side such that the printed antenna portion and the winding antenna do not overlap when viewed in the viewing direction.
In the smartphone antenna module of any one of the preceding embodiments, the printed antenna and the winding antenna are electrically decoupled within the smartphone antenna module. In the smartphone antenna module of any one of the preceding embodiments, the second end is formed in the connector portion. In the smartphone antenna module of any one of the preceding embodiments, the antenna module further comprises a second conductive line formed in the flexible PCB extending between a third end and a fourth end. In the smartphone antenna module of any one of the preceding embodiments, the third end is formed in the bridge portion, and the fourth end is formed in the connector portion.
In the smartphone antenna module of any one of the preceding embodiments, the connector portion is referred to as a first connector portion, the antenna module further comprises a second connector portion, wherein the third end is formed in the second connector portion, and the fourth end is formed in the first connector portion. In the smartphone antenna module of any one of the preceding embodiments, the connector portion is referred to as a first connector portion, wherein the antenna module further comprises a second connector portion and a third connector portion, wherein the third end is formed in the second connector portion, and the fourth end is formed in the third connector portion. In the smartphone antenna module of any one of the preceding embodiments, each of the first, second, third and fourth ends comprises a contact pad.
In the smartphone antenna module of any one of the preceding embodiments, the contact pads of the first and third ends face in a first direction wherein the contact pads of the second and fourth ends face in a second direction opposite to the first direction. In the smartphone antenna module of any one of the preceding embodiments, the contact pads of the first, second, third and fourth ends face in the same direction. In the smartphone antenna module of any one of the preceding embodiments, the connection terminals for the winding antenna comprise the second end of the first conductive line and the fourth end of the second conductive line.
In the smartphone antenna module of any one of the preceding embodiments, the printed antenna comprises a coil of a printed wire. In the smartphone antenna module of any one of the preceding embodiments, each of the first and second ends comprises a contact pad. In the smartphone antenna module of any one of the preceding embodiments, the connection terminals for the printed antenna comprise first and second connection terminals connected to first and second ends of the printed wire, respectively, wherein each of the first and second connection terminals comprises a contact pad, wherein the contact pads of the first and second connection terminals and the contact pads of the first end of the first conductive line face the same direction.
In the smartphone antenna module of any one of the preceding embodiments, the printed antenna comprises a coil of a printed wire, wherein the flexible PCB comprises a hole surrounded by the coil of the printed wire. In the smartphone antenna module of any one of the preceding embodiments, the coil of the printed wire comprises 2-7 turns, in one embodiment, 3-5 turns. In the smartphone antenna module of any one of the preceding embodiments, a thickness of the printed antenna portion including the printed antenna is about 100-140 μm, in one embodiment, about 120 μm, wherein a thickness of the bridge portion including the first conductive line is about 40-80 μm, in one embodiment, about 60 μm. In the smartphone antenna module of any one of the preceding embodiments, the module further comprises a magnetic material plate attached to the flexible PCB. In the smartphone antenna module of any one of the preceding embodiments, the magnetic material plate comprises a ferrite plate which comprises a hole aligned with the hole of the flexible PCB.
In the smartphone antenna module of any one of the preceding embodiments, the winding antenna comprises a coil of an insulation-coated wire. In the smartphone antenna module of any one of the preceding embodiments, the at least one wire comprises an enamel-coated wire, wherein the winding has a single layer of the enamel-coated wire such that the layer of the coil of the coated wire has a thickness substantially same as the diameter of coated wire. In the smartphone antenna module of any one of the preceding embodiments, the enamel-coated wire has a thickness about 100-140, in one embodiment, 120 μm. In the smartphone antenna module of any one of the preceding embodiments, the at least one wire comprise two or more wires, each of which comprises the inner terminal and the outer terminal, wherein the inner terminals of the two or more wires are attached to the contact pad of the first end of the first conductive line and the outer terminals of the two or more wires are attached to the contact pad of the third end of the second conductive line such that the two or more wires are electrically connected to each other in parallel. In the smartphone antenna module of any one of the preceding embodiments, the inner end of the wire is welded to the contact pad of the first end of the first conductive line. In the smartphone antenna module of any one of the preceding embodiments, the outer end of the wire is welded to the contact pad of the third end of the second conductive line. In the smartphone antenna module of any one of the preceding embodiments, each of the two or more wires has about 16-20 turns, in one embodiment, about 18 turns.
In the smartphone antenna module of any one of the preceding embodiments, the number of two or more wires is 2 as shown in
In the smartphone antenna module of any one of the preceding embodiments, the winding antenna does not comprise a portion of the wire which crosses the winding when viewed in the direction. In the smartphone antenna module of any one of the preceding embodiments, the winding antenna comprises an inner hole, wherein the smartphone antenna module comprises a magnetic material sheet extending through the inner hole.
In the smartphone antenna module of any one of the preceding embodiments, the magnetic material sheet comprises a neck extending through the inner hole and surrounded by the winding and a body connected to the neck and extending from the neck and away from the flexible PCB. In the smartphone antenna module of any one of the preceding embodiments, the magnetic material sheet is flat and the winding antenna is stepped for allowing the magnetic material sheet to extend through the inner hole without substantial deformation of the magnetic material sheet. In the smartphone antenna module of the foregoing embodiment, the printed antenna is for near field communication (NFC), wherein the winding antenna is for magnetic secure transmission (MST). In the smartphone antenna module of any one of the preceding embodiments, the printed antenna is configured to emit signals having about 13.56 MHz, and the winding antenna is configured to emit signals having about 85-100 KHz.
Other embodiments provide a smartphone comprising:
In the smartphone of proceeding embodiment, the rear cover comprises a metal plate and a plastic plate arranged in order along a longitudinal direction of the rear cover, wherein the metal plate is substantially longer than the plastic portion in the longitudinal direction, wherein the metal plate overlaps the flexible PCB and the winding antenna when viewed in the viewing direction. In the smartphone of any one of the preceding embodiments, the smartphone further comprises a magnetic material sheet comprising a main body and an insertion portion, wherein the magnetic material sheet is arranged with the smartphone antenna module such that the insertion portion is inserted into a central opening of the winding antenna and the main body extends in a direction away from the flexible PCB, wherein the metal plate overlaps the flexible PCB, winding antenna and the magnetic material sheet.
In the smartphone of any one of the preceding embodiments, the metal plate comprises an edge contacting, overlapping op neighboring the plastic plate, wherein the main body of the magnetic material sheet extends to or near the edge of the metal plate. In the smartphone of any one of the preceding embodiments, the metal plate comprises an edge contacting, overlapping op neighboring the plastic plate, wherein the main body of the magnetic material sheet extends to the plastic plate. In the smartphone of any one of the preceding embodiments, the metal plate extends at least three quarter the length of the rear cover in the longitudinal direction of the smartphone.
In the smartphone of any one of the preceding embodiments, the flexible PCB is disposed between the metal plate and the ferrite plate. In the smartphone of any one of the preceding embodiments, the magnetic material sheet is substantially parallel to the rear surface of the rear cover. In the smartphone of any one of the preceding embodiments, the metal portion comprises a non-magnetic metal which is electrically conductive. In the smartphone of any one of the preceding embodiments, the metal portion is made of aluminum.
In the smartphone of any one of the preceding embodiments, the smartphone further comprises a plastic sheet disposed between the smartphone antenna module and the rear cover. In the smartphone of any one of the preceding embodiments, the smartphone further comprise another plastic sheet disposed between the smartphone antenna module and the smartphone circuit.
In embodiments, referring to
Although embodiments of the invention have been described above, those skilled in the art may understand that configurations of the various embodiments described above may be changed without departing from the spirit of the invention. It will be also understood that the changes fall within the scope of the invention.
Number | Date | Country | |
---|---|---|---|
62383332 | Sep 2016 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 29587670 | Dec 2016 | US |
Child | 15614484 | US |