The present invention relates a compact antenna element for signals with three polarization directions and a method for operating such an antenna element.
Base station antennas are often mounted in high traffic metropolitan areas. As a result, compact antenna modules are favored over bulkier ones because compact modules are aesthetically pleasing (e.g., less-noticeable) as well as easier to install and service. Many base station antennas deploy arrays of antenna elements to achieve advanced antenna functionality, e.g., beamforming, etc. Accordingly, techniques and architectures for reducing the profile of an individual antenna element as well as for reducing the size (e.g., width, etc.) of the antenna element arrays are desired.
In accordance with an embodiment of the present invention, an antenna element comprises a first dipole element configured to emit or receive electromagnetic signals in a first polarization direction, a second dipole element configured to emit or receive electromagnetic signals in a second polarization direction, and a monopole element configured to emit or receive electromagnetic signals in a third polarization direction. The antenna element further comprises an antenna reflector element, wherein the first dipole element, the second dipole element and the monopole element are collocated on the antenna reflector element, and wherein the first polarization direction, the second polarization direction and the third polarization direction are all different.
In accordance with an embodiment of the present invention, a method for communicating an electromagnetic signal comprises receiving or emitting, by a monopole element, a first electromagnetic signal component in a first polarization direction, receiving or emitting, by a first dipole monopole element, a second electromagnetic signal component in a second polarization direction and receiving or emitting, by a second dipole element, a third electromagnetic signal component in a third polarization direction, wherein the first dipole element, the second dipole element and the monopole element are collocated on an antenna reflector element, and wherein the first polarization direction, the second polarization direction and the third polarization direction are all different.
In accordance with an embodiment of the present invention, an antenna element comprises an antenna reflector element, a monopole element disposed on the antenna reflector element in a first direction, a first dipole element disposed on the antenna reflector element in a second direction and a second dipole element disposed on the antenna reflector element in a third direction, wherein the second direction is arranged in about a +45° angle to the first direction, wherein the third direction is arranged in about a −45° angle to the first direction, and wherein the monopole element, the first dipole element and the second dipole element are arranged around a central axis, the central axis being orthogonal to the antenna reflector element.
In accordance with an embodiment of the present invention, a method for communicating an electromagnetic signal from and to an antenna element is disclosed. The antenna element comprises an antenna reflector element, a monopole element disposed on the antenna reflector element in a first direction, a first dipole element disposed on the antenna reflector element in a second direction and a second dipole element disposed on the antenna reflector element in a third direction, wherein the second direction is arranged in about a +45° angle to the first direction, wherein the third direction is arranged in about a −45° angle to the first direction, and wherein the monopole element, the first dipole element and the second dipole element are arranged around a central axis, the central axis being orthogonal to the antenna reflector element. The method comprises receiving or emitting, by the monopole element, a first electromagnetic signal component, receiving or emitting, by the first dipole element, a second electromagnetic signal component and receiving or emitting, by a second dipole element, a third electromagnetic signal component.
In accordance with an embodiment of the present invention, a system includes an antenna element comprising a first dipole element configured to emit or receive electromagnetic signals in a first polarization direction, a second dipole element configured to emit or receive electromagnetic signals in a second polarization direction, a monopole element configured to emit or receive electromagnetic signals in a third polarization direction, and an antenna reflector element, wherein the first dipole element, the second dipole element and the monopole element are collocated on the antenna reflector element, and wherein the first polarization direction, the second polarization direction and the third polarization direction are all different.
For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
System operators require more and more capacity for multiple input and multiple output (MIMO) antennas. One way to increase the capacity of such a system is to provide an antenna with three orthogonal polarizations directions.
Embodiments provide a compact antenna element having three orthogonal polarization directions. Embodiments further provide an antenna element with three independent input ports. The antenna element may comprise three collocated elements, e.g., two dipole elements and a monopole element. The first dipole element may be rotated by an angle of 45° relative to the monopole element and the second dipole element may be rotated by an angle of −45° relative to the monopole element. The monopole element and the entire compact antenna element may comprise a height of about λ/6. In some embodiments the compact antenna element comprises cross dipoles collocated with a folded monopole wherein each of the cross dipoles includes a miniaturized balun. In further embodiments a method for operating the compact antenna element is described.
Embodiments of the invention include the advantage to increase the capacity of a MIMO antenna element, to efficiently use the available real estate and space, and to reduce the size of the antenna element. A further advantage is that such a compact antenna element can detect any electromagnetic signal.
It is noted that the performance of the compact antenna element 10, as discussed in detail with respect to
In some embodiments the two dipole elements 20, 30 are each rotated by about 45° relative to a main direction M of the monopole element 50. The two polarized dipole elements 20, 30 are rotated relative to each other by 90°. The compact antenna element 10 is disposed on a reflector element 60 (e.g., antenna horizontal reflector; ground). The height h (in z-direction) of the compact antenna element 10 is about λ/6.5 wherein λ is the wavelength of the electromagnetic signal. About λ/6.5 means λ/6.5+/−10%, or alternatively, λ/6.5+/−5%, or even λ/6.5+/−2%. The length l (in x-direction) of the compact antenna element 10 is about λ/2 and the width w (in y-direction) of the compact antenna element 10 is about λ/2. In some embodiments, the compact antenna element 10 is symmetric around a central axis. About λ/2 means λ/2+/−10%, or alternatively, λ/2+/−5%, or even λ/2+/−2%. The total length, end to end, of the upper dipole probe is approximately λ/2 near the lower end of the frequency band while the total length, end to end, of the smaller, lower dipole probe is approximately λ/2 near the upper end of the frequency band in some embodiments.
All dipole elements 20, 30 and the monopole element 50 may comprise dielectric substrates. Each dielectric substrate is generally a thin film substrate having a thickness thinner than, in most cases, around 600 μm, or thinner than around 500 μm, although thicker substrate structures are technically possible. The thin film substrate comprises an electrically insulating material, e.g., a dielectric material, with or without conductive layers. The substrate may comprise a laminate. The thin film substrate does not include a semiconductor material in some embodiments. Typical thin film substrate materials may be flexible printed circuit board materials such as polyimide foils, polyethylene naphthalate (PEN) foils, polyethylene foils, polyethylene terephthalate (PET) foils, and liquid crystal polymer (LCP) foils. Further substrate materials include polytetrafluoroethylene (PTFE) and other fluorinated polymers, such as perfluoroalkoxy (PFA) and fluorinated ethylene propylene (FEP), Cytop® (amorphous fluorocarbon polymer), and HyRelex materials available from Taconic. In some embodiments the substrates are a multi-dielectric layer substrate.
As disclosed in
A first conductive layer pattern (e.g., metal pattern) 535 may be printed on the first main surface 510 of the substrate 51 and a second conductive layer pattern (e.g., metal pattern) 536 may be printed on the second main surface of the substrate 511. The first pattern 535 may be electrically connected to the second pattern 536 through edge plating (e.g., electrical connection disposed on the side surface 527, 528 or on both of these surfaces 527 and 528) or a through via. Other than this connection the two patterns 535, 536 are isolated through the substrate material of the dielectric substrate 51. The first pattern 535 connects a feed point 537 to the second pattern 536 by a vertical conductive line that then mirrors the inner shape of the substrate 51, e.g., forms an U. The second pattern 536, connected to the first pattern 535 through the edge connection or a through via, routes the conductive line diagonally down to the side surface 522. The pattern 536 may be routed diagonally down from the top of the U to the corner formed by side surfaces 521/522. The pattern 535 and 536 may comprise copper, copper alloy, aluminum, aluminum alloy, or combinations thereof. The pattern 536 at the corner of the side surfaces 521/522 may be electrically connected to the antenna reflector element 60. In contrast, the feed point 537 may be electrically isolated from the antenna reflector element 60. The substrate 51 may have a recess such that the second substrate 52 can be placed into this recess.
The substrate 51 may comprise a length of about 2λ/5 and a height h of about λ/6, wherein λ is the wavelength of the electromagnetic signal. About 2λ/5 means 5λ/5+/−10%, or alternatively, 2λ/5+/−5%, or even 2λ/5+/−2%.
Returning to
Each dipole element 20, 30 may comprise a micro-strip balun integrated in the dielectric substrate is electrically connected to the dipole probes of the lower dipole and the upper dipole. The lower dipole may excite the upper dipole.
Referring now to
The vertical substrate 210 may comprise a conductive line 225 supported by or printed on the first main surface 211. The conductive line 225 may be connected to a feed point 226. The feed point 226 is electrically isolated from the antenna reflector element 60. The vertical substrate 210 may further comprise conductive plates 227, 228 supported by or printed on the second main surface 212. The conductive plates 227, 228 may be electrically connected to the antenna reflector element 60 (e.g., soldered). The conductive plates 227, 228 are not connected to each other and spaced apart by a gap. The gap is necessary in order to excite a differential impedance at this point. The exact differential impedance is sensitive to the dimension of the gap. The vertical substrate 210 with the gap provides a balanced feed connection to the lower dipole probe 235. The balanced feed connection may be a balanced feed gap of about 90Ω. The vertical substrate 210 with the printed patterns 225, 227, 228 may form a balun with an unbalanced 5052 feed point 226.
The vertical substrate 210 may comprise a length l1 between 40 mm and 80 mm or a length of about 60 mm (+/−10%) and a width w1 between 20 mm and 40 mm or a width of about 30 mm (+/−10%). The conductive line 225, the feed point 226 and the conductive plates 227, 228 may comprise the same conductive materials such as copper or a copper alloy, or alternatively, aluminum or an aluminum alloy. In some embodiments the materials for the line 225 and the plates 227, 228 may be different. The conductive plates 227, 228 may be a balun ground.
The first horizontal substrate 230 may be a lower dipole element. The first horizontal substrate 230 may be printed only on one of its main surfaces 231, 232 (see
The first horizontal substrate 230 may comprise a length l2 between 60 mm and 100 mm or a length l2 of about 80 mm (+/−10%) and a width w2 between 20 mm and 40 mm or a width w2 of about 30 mm (+/−10%). Each conductive plate 237, 239 of the lower dipole probe 235 may comprise a length ld1 of about λ/4. About λ/4 means λ/4+/−10%, or alternatively, λ/4+/−5%, or even λ/4+/−2%. The first horizontal substrate 230 may be longer than the first vertical substrate 210. The conductive material pattern may comprise a conductive material such as copper or a copper alloy, or alternatively, aluminum or an aluminum alloy.
The second horizontal substrate 250 may be an upper dipole element. The second horizontal substrate 250 may be printed only on one of its main surfaces 251, 252 (see
The second horizontal substrate 250 may comprise a length l2 between 80 mm and 120 mm or a length l2 of about 100 mm (+/−10%) and a width w2 between 30 mm and 50 mm or a width w2 of about 40 mm (+/−10%). Each conductive plate 257, 259 of the upper dipole probe 235 may comprise a length ld2 of about λ/4. The total length, end to end, of the upper dipole probe 255 is approximately λ/2 near the lower end of the frequency band while the total length, end to end, of the smaller lower dipole probe 235 is approximately λ/2 near the upper end of the frequency band. Such a configuration helps to yield a high bandwidth in some embodiments.
In some embodiments the total length of the upper dipole may be approximately 6.25 cm and the total length of the lower dipole may be approximately 6 cm for the lower dipole (for WiFi 2.4 GHz-2.5 GHz). The height may be approximately 2 cm (λ/6).
The second horizontal substrate 250 may be longer and wider than the first horizontal substrate 230. The conductive material pattern may comprise a conductive material such as copper or a copper alloy, or alternatively, aluminum or an aluminum alloy.
In some embodiments, there is no conductive connection between the first dipole element 235 and the second dipole element 255. The distance between the lower dipole element 230 to the upper dipole element 250 may affect the magnitude of the coupling. The distance may be about 1 mm to 5 mm, or alternatively, about 2 mm to 3 mm.
Embodiments of the invention may include an antenna array comprising a plurality of compact antenna elements. For example, the antenna array may be implemented as a MIMO antenna.
Embodiments of the antenna elements may be used for frequency bands between 300 MHz and 30 GHz. For example, the antenna can be operated in GSM, UMTS or LTE wireless systems. The applicable frequency bands may be 790 MHz-860 MHz, 1.7 GHz-1.9 GHz, and 2.5 GHz-2.7 GHz. Further embodiments of the antenna elements may be used for 2.4 GHz-2.5 GHz and 5 GHz-6 GHz (WiFi band). Alternatively, embodiments of the antenna element may be used in the 60 GHz band, e.g., 57 GHz-66 GHz, in the E-band (e.g., 71 GHz-76 GHz and 81 GHz-86 GHz) and in the 90 GHz band, e.g., 92 GHz-95 GHz.
Embodiment of the invention may be applied to radar system such as automotive radar or telecommunication applications such as transceiver applications in base stations or user equipment (e.g., hand held devices).
Embodiments of the invention include an antenna element comprising a first dipole element configured to emit or receive electromagnetic signals in a first polarization direction, a second dipole element configured to emit or receive electromagnetic signals in a second polarization direction, a monopole element configured to emit or receive electromagnetic signals in a third polarization direction and an antenna reflector element, wherein the first dipole element, the second dipole element and the monopole element are collocated on the antenna reflector element, and wherein the first polarization direction, the second polarization direction and the third polarization direction are all different.
Embodiments provide that the antenna element comprises a height of about λ/6, wherein λ is a wavelength of an electromagnetic signal.
Further embodiments provide that the first dipole element is rotate about 45° relative to a main direction of the monopole element, and wherein the second dipole element is rotated about −45° relative to the main direction of the monopole element.
Embodiments provide that the first dipole element and the second dipole element are arranged orthogonal to each other as a crossed dual dipole element.
Embodiments provide that the crossed dual dipole element is symmetric.
Embodiments provide that the monopole element is symmetric and comprises a height of about λ/6.
Embodiments provide that the first polarization direction, the second polarization direction and the third polarization direction are each orthogonal to each other.
Embodiments provide that the monopole element is a folded monopole element.
Some embodiment include a method for operating the antenna element, the method comprising: receiving a first electromagnetic signal component at the monopole element, receiving a second electromagnetic signal component at the first dipole element, and receiving a third electromagnetic signal component at the second dipole element.
Embodiments of the invention include an antenna element comprising: an antenna reflector element, a monopole element disposed on the antenna reflector element in a first direction, a first dipole element disposed on the antenna reflector element in a second direction, and a second dipole element disposed on the antenna reflector element in a third direction, wherein the second direction is arranged in about a +45° angle to the first direction, wherein the third direction is arranged in about a −45° angle to the first direction, and wherein the monopole element, the first dipole element and the second dipole element are arranged around a central axis, the central axis being orthogonal to the antenna reflector element.
Embodiments provide that the antenna reflector is a conductive plate, and that the monopole element comprises two dielectric substrates each having two main surfaces and side surfaces connecting the two main surfaces, the dielectric substrates being arranged orthogonal to each other, a conductive pattern being printed on each main surface, and wherein each substrate is disposed with a side surface on the antenna reflector element.
Embodiments provide that only one of the dielectric substrates comprises an input port while the other of the dielectric substrates does not.
Further embodiments provide that the monopole element has a height of about λ/6.5, wherein λ is a wavelength of an electromagnetic signal.
Further embodiments provide that the first dipole element and the second dipole element each comprises three dielectric substrates each having two main surfaces and side surfaces connecting the two main surfaces, a first dielectric substrate being disposed with a bottom side surface on the antenna reflector element, a second dielectric substrate and a third dielectric substrate being arranged parallel to the antenna reflector element, and wherein the third dielectric substrate is arranged on a top side surface of the first dielectric substrate.
Embodiments provide that each dipole element comprises a lower dipole probe arranged on the second dielectric substrate, and upper dipole probe arranged on the third dielectric substrate.
Embodiments provide that the upper dipole probe is larger than the lower dipole probe and that each dipole element comprises a balun.
Embodiments provide a method for operating the antenna element, the method comprising: receiving a first electromagnetic signal component at the monopole element, receiving a second electromagnetic signal component at the first dipole element and receiving a third electromagnetic signal component at the second dipole element.
Embodiments of the invention include a system comprising an antenna element. The antenna element includes a first dipole element configured to emit or receive electromagnetic signals in a first polarization direction, a second dipole element configured to emit or receive electromagnetic signals in a second polarization direction, a monopole element configured to emit or receive electromagnetic signals in a third polarization direction, and an antenna reflector element, wherein the first dipole element, the second dipole element and the monopole element are collocated on the antenna reflector element, and wherein the first polarization direction, the second polarization direction and the third polarization direction are all different.
While this invention has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the illustrative embodiments, as well as other embodiments of the invention, will be apparent to persons skilled in the art upon reference to the description. It is therefore intended that the appended claims encompass any such modifications or embodiments.
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Number | Date | Country | |
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20160372839 A1 | Dec 2016 | US |