Wireless Device Including a Metal Frame Antenna System Based on Multiple Arms
20170237151 · 2017-08-17
Inventors
- Aurora ANDUJAR LINARES (Barcelona, ES)
- Jaume Anguera Pros (Vinaros, ES)
- Carles Puente Baliarda (Barcelona, ES)
Cpc classification
H01Q9/42
ELECTRICITY
International classification
H01Q5/307
ELECTRICITY
Abstract
A metal frame antenna (MFA) system comprises multiple arms developed to cover multiple ranges of frequencies normally required in a wireless device such as a phone. The MFA system comprises a ground plane layer, a first electrical arm including a strip element at an edge of a phone spaced apart from an edge of the ground plane layer, a second electrical arm comprising a strip element and/or an antenna booster, a branching system connecting the first and second arms to a feeding system that is connected to the RF system of the phone.
Claims
1. A metal frame antenna system for a mobile device, comprising, a ground plane layer; a first electrical arm including a strip element at an edge of the mobile device spaced apart from an edge of the ground plane layer; a second electrical arm; a feeding system connected to an RF transmission and reception system of the mobile device; and a branching system connecting the first and second arms to the feeding system.
2. The metal frame antenna system of claim 1, wherein a portion of a projection of at least one arm on a plane including the ground plane layer intersects a portion of the ground plane layer.
3. The metal frame antenna system of claim 1, wherein the second electrical arm includes a conducting strip element.
4. The metal frame antenna system of claim 1, wherein the second electrical arm includes a strip element configured to contribute to the radiation performance of the antenna system within the 1,710 MHz to 2,690 MHz frequency range.
5. The metal frame antenna system of claim 1, wherein the branching system includes a T junction that splits the signal into two paths.
6. The metal frame antenna system of claim 5, wherein the branching system includes at least one additional T junction to split sequentially into three or more paths.
7. A metal frame antenna system of claim 1, wherein the branching system includes a junction that splits the signal into three or more paths.
8. The metal frame antenna system of claim 1, further comprising a shunt element that connects at least one of the first and second electrical arms to a ground conductor.
9. A metal frame antenna system for a mobile device, comprising, a ground plane layer; a first electrical arm including a strip element at an edge of the mobile device spaced apart from an edge of the ground plane layer; a second electrical arm including an antenna booster; a feeding system connected to an RF transmission and reception system of the mobile device; and a branching system connecting the first and second arms to the feeding system, the branching system including first and second frequency selective elements, the first frequency selective element being connected to a point of the first electrical arm, and the second frequency selective element being connected to the feeding system.
10. The metal frame antenna system of claim 9, wherein a portion of a projection of at least one arm on a plane including the ground plane layer intersects a portion of the ground plane layer.
11. The metal frame antenna system of claim 9, wherein the second electrical arm includes a conducting strip element.
12. The metal frame antenna system of claim 9, wherein the second electrical arm includes a strip element configured to contribute to the radiation performance of the antenna system within the 1,710 MHz to 2,690 MHz frequency range.
13. The metal frame antenna system of claim 9, wherein the branching system includes a T junction that splits the signal into two paths.
14. The metal frame antenna system of claim 13, wherein the branching system includes at least one additional T junction to split sequentially into three or more paths.
15. A metal frame antenna system of claim 9, wherein the branching system includes a junction that splits the signal into three or more paths.
16. The metal frame antenna system of claim 9, further comprising a shunt element that connects at least one of the first and second electrical arms to a ground conductor.
17. The metal frame antenna system of claim 16, wherein at least one of the first frequency selective element, the second selective frequency element, or the shunt element comprises a tunable reactive element.
18. The metal frame antenna system of claim 9, wherein at least one of the first or second frequency selective elements comprises a matching network.
19. The metal frame antenna system of claim 9, wherein at least one of the first or second frequency selective elements comprises a filtering network.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] An example of an MFA antenna system according to the described system is shown in
[0020] An MFA antenna system as in
[0021] One of the edges of the device (the upper edge in
[0022] An MFA system according to the described system normally includes a booster or boosting element 3 at a second arm. The antenna booster might be for instance a Fractus® mXTEND product (e.g., FR01-S4-250, FR01-S4-232, FR01-S4-224). The antenna booster is connected to a branching system 4 according to the described system.
[0023] Adjacent to a strip element on the first arm 2, there are second and third metal frame elements 9, 10 which are unconnected to the first strip element. A gap between 0.5 mm and 1.5 mm, preferably about 1 mm in size, spaces the first and second or third metal frame elements. Such a gap is made so that the coupling between metal frame elements is reduced to a minimum so that the input impedance bandwidth remains about the same as the one that would be achieved without the presence of the adjacent metal frame elements.
[0024] A more specific example of an MFA element according to the described system is shown in
[0025] The branching system 204 shown in
[0026]
[0027] The second selective element 332 is analogous to second selective element 232 shown in
[0028] Branching system 304 further includes a third frequency selective element 333 connecting the branching system to the second arm including the booster or boosting element 303. The element 333 normally contributes to selecting one or more frequency bands within the upper frequency region to excite element 303 within the second arm. In addition, in some embodiments, element 303 also provides impedance matching for the MFA system at the upper frequency region. In some embodiments, the frequency selective element 333 includes a series inductor, a capacitor and/or a tunable reactive element.
[0029] As shown in
[0030] A branching system according to some examples of the described system includes a portion of metal frame strip as shown in
[0031] In some examples, a first electrical arm according to the described system includes a single-strip frame element with a length that enables operation at both a lower and an upper frequency region, as for instance described in patent application U.S. Ser. No. 62/281,749. The entire specification of U.S. Ser. No. 62/281,749 is herein incorporated by reference. Such a length for an MFA strip element for a smartphone device according to the described system is within 20 mm to 35 mm, yet preferably a length between 22 mm and 27 mm such as for instance a value around 25 mm. The length only covers about half of the edge of a smartphone, such a strip arrangement is used in combination of a floating strip in some embodiments, as shown for instance in the embodiment of
[0032] One of the advantages of the MFA design according to the described system is that the antenna system minimizes the footprint needed on the printed circuit board inside the phone. As shown in
[0033] Thus, in some embodiments of the described system, the first arm comprises a first strip element included as part of a metal frame structure surrounding the contour of the phone. The strip includes two ends that are spaced apart from adjacent metal frame structures by gaps. More generally, typical gaps range from 0.1 mm to 3 mm and are used to control the coupling between the strip and the adjacent metal frame or frames. In some embodiments, the electrical coupling to the adjacent frame or frames is negligible, while in other embodiments the coupling is introduced intentionally at one or two of the ends to enhance the radiation performance of the antenna. A coupling is negligible according to the described system when increasing the gap compared to the existing one does not alter significantly the radiating characteristics of the MFA system.
[0034] In some embodiments of the described system, one or more of the at least first and second arms are mounted on a clearance of the ground plane layer. Some embodiments comprise a total clearance, which means that a projection of at least one the arm or arms on the plane including the ground plane layer does not intersect a portion of the ground plane layer, meaning that there is no intersection of the projection on any portion of the ground plane. In some embodiments the clearance is a partial clearance, meaning that there is a portion of the projection that intersects a portion of the ground plane layer, while a complementary portion of the projection does not.
[0035] In some embodiments, a branching system according to the described system includes one or more of frequency selective electrical elements. The frequency selective electrical elements are for instance a matching network, a filtering network or a combination of both. In some embodiments, a frequency selective electrical element includes an inductor, a capacitor or a combination of both. In other embodiments, a frequency selective electrical element includes a tunable (i.e., variable) reactive element such as a capacitor or an inductor. Such a tunable reactive element comprises for example a tunable (i.e., variable) capacitor or is a tunable capacitor. A variable capacitor is controlled by for example a controlling electrical digital signal or an analog signal. Possible variable capacitors used in such a branching system have a capacity in a range or comprised in a range from 0.6 pF to 2.35 pF or have a capacity comprising part of the range. Possible tunable capacitors used comprise Cavendish SmarTune™ Antenna Tuners, e.g., 32CK301, 32CK417, 32CK402, 32CK503, 32CK505, Peregrine, e.g., PE64905, PE64909, ON Semiconductor-ParaScan or TCP-3012H.
[0036] A branching system according to the described system includes a ‘T’ junction for an electrical circuit that splits an electrical current path into two paths. In some embodiments, the junction splits the signal into three or more paths, or alternatively, the branching system includes at least one additional ‘T’ junction to split sequentially into three or more current paths.
[0037] A first arm according to the described system is normally configured to enhance radiation mainly in a lower frequency region (e.g., within the 698-960 MHz frequency region). For this purpose, a frame strip comprised in the first electrical arm features in some examples a length greater than 20 mm, and preferably greater than 30 mm. In some embodiments, such a length might be substantially close or equal to the full short edge of a smartphone device, i.e., between 50 and 65 mm. In some embodiments the strip extends beyond one or more corners of the short edge of a smartphone and features a length longer than 50 mm and even longer than 65 mm, such as for instance a value within the range 65 mm and 85 mm. In other embodiments, the first arm is arranged along the longest edge of a smartphone.
[0038] A second electrical arm according to the described system includes in some examples a second strip configured to enhance radiation in an upper frequency region (e.g., 1,710-2,690 MHz). In some other examples, the second radiation arm includes a conducting strip or a conducting element featuring a length between 1 mm and 30 mm. In some embodiments, such a conducting element is connected to an antenna booster or boosting element, such as for instance those described in WO20100015365 A2, WO2010015364 A2, WO2014012842 A1 and U.S. patent application Ser. Nos. 14/807,449 and 62/152,991 which are included by reference herein. Example of commercial booster elements suitable for the described system is for instance Fractus® mXTEND, mXTEND RUN and mXTEND BAR range of products.