1. Field of the Invention
The present invention relates to a broadband antenna element, a broadband antenna unit, an antenna array, and a broadband antenna system.
2. Description of the Prior Art
Multiband broadband antenna systems are antenna systems providing wireless signals in multiple radio frequency bands, i.e. two or more bands. They are commonly used and are well known in wireless communication systems, such as GSM, GPRS, EDGE, UMTS, LTE, and WiMax systems.
These types of antenna systems generally include a plurality of radiating antenna elements arranged to provide a desired radiated (and received) signal beamwidth and azimuth scan angle. For broadband antennas it is desirable to achieve a near uniform beamwidth that exhibits a minimum variation over the desired azimuthal degrees of coverage. Such broadband antennas generally provide equal signal coverage over a wide geographic area while simultaneously supporting multiple wireless applications. It is also necessary to provide a consistent beamwidth over a wide frequency bandwidth in modern wireless applications since transmission to and reception from the mobile stations use different frequencies. It is also desirable to have similar area coverage for different wireless services using a common antenna.
Document U.S. Pat. No. 6,930,650 (Gottl et al.) discloses a dual-polarized antenna arrangement having four antenna element devices each with a conductive structure between opposite antenna element ends. The antenna element devices are fed at the respective end of the four gaps.
Further, document U.S. Pat. No. 7,079,083 (Gottl et al.) discloses a multiband mobile radio antenna. Mentioned antenna comprises two or more dipoles elements arranged in front of a reflector and are adapted to transmit and receive in two different frequency bands. The distance between the antenna element structure, the antenna elements or the antenna element top of at least one antenna dipole antenna element for the higher frequency band is at a certain specified distance from the reflector.
However, mentioned prior art solutions have complicated mechanical structure which require high complexity die-cast metal parts. This means that mentioned antenna has a considerable weight. The antenna elements according to prior art are also cumbersome (large size) with its height.
An object of the present invention is to provide a solution which mitigates or fully solves the problems of prior art solutions.
Another object of the invention is to provide an antenna solution which can made small but still have good impedance characteristics.
According to a first aspect of the invention, the mentioned objects are achieved with a broadband antenna element for an antenna system, said antenna element comprising a substantially planar conductive disc having at least four slots arranged symmetrically in relation to a central rotational axis perpendicular to said disc, wherein each slot extends from a circumference of said disc radially inwards towards said axis and has an associated feed point located at its associated slot; and radially opposite feed points are arranged to be fed with common radio frequency signals which are substantially in phase and with equal amplitude such that the radiation from each slot is in phase and of equal amplitude so that said antenna element radiates along said axis.
According to a second aspect of the invention, the mentioned objects are achieved with a multiband antenna unit comprising at least one antenna element according to the invention and at least one second broadband antenna element arranged above or below said first broadband antenna element; and further comprising at least one planar parasitic element arranged between said first and second broadband antenna elements.
According to a third aspect of the invention, the mentioned objects are achieved with an antenna array comprising a plurality of multiband antenna units according to the invention and a plurality of first broadband antenna elements according to the invention, and said multiband antenna units and said first broadband antenna elements are alternately arranged in a row so that a distance dAE between the centre of a first antenna element and an adjacent antenna unit in said row is constant.
Furthermore, the present invention also relates to a broadband antenna system.
The present invention provides a solution having a planar disc which allows the manufacturer to use printed circuit boards (PCBs) for the feed network which is convenient from a matching point of view. Also, the active impedance (the impedance seen when the two slots of the same polarization are excited simultaneously in phase and of equal magnitude) of each slot can be tuned to 100 ohm impedance which allows an easy match of the two feeds to a common 50 ohm transmission line when providing broadband operation in two orthogonal polarizations.
The present antenna element can also be made small in size which reduces the size and weight of antenna installations in the field.
Other embodiments of the antenna element above are further described herein.
Further advantageous and applications of the present invention can be found in the following detailed description of the present invention.
The appended drawings are intended to clarify and explain different embodiments of the present invention.
The present invention relates to a broadband antenna element 10 generally represented in
Each slot 30a, 30b, 30c, 30d of the disc extends from the circumference 40 of the disc 20 radially inwardly, and along the plane of the disc 20 toward the axis Z. Each slot 30a, 30b, 30c, 30d has an associated feed point 51a, 51b, 51c, 51d, shown in
As is well known to those schooled in the art, an antenna with multiple feed points will have active impedance, also known as driving point impedance. Considering a first slot (30a) and a second slot (30c) of the antenna element 10, if those slots are excited with the same phase and magnitude, there will be radiation along the axis Z. In order to match the antenna to a desired impedance, it is important to consider the mutual coupling between the first and second slots. The relevant impedance is then referred to as active or driving point impedance calculated as follows: if the impedances of the two respective slots 30a and 30c are Z11 and Z22, respectively, and the mutual impedance is Z12=Z21, the active (or driving point) impedance of slot 30a given feed current I1 and I2 is: Z1d=Z11+Z12*12/11. When I1=I2 (equal phase and magnitude) the active impedance is simply: Z1d=Z11+Z12.
According to an embodiment of the present invention shown in
Moreover, according to an embodiment of the present invention each slot 30a, 30b, 30c, 30d extends radially inwardly and ends at a fourth radial distance R4 from the rotational axis Z of the disc 20 (see
Generally, the total length of the slots (i.e. R1-R4) affects the frequency of operation of the radiating antenna element 10. For example, for operation in the frequency band from 1710 MHz to 2690 MHz, a suitable length of each slot is 20 to 35 mm, which corresponds to 0.15 to 0.25 wavelengths at the center frequency for 2200 MHz. Further, the width of the slots may be varied to match the antenna impedance. A wider slot increases the reactance of the antenna element, hence making it more inductive, while a narrower slot will make it more capacitive. It is also possible to use varying slot width all the way to the circumference of the disk 20, e.g., exponential slot width taper, linear step taper or linear slope taper.
It has also been realized that each slot may have a symmetrically shaped widening 60. Each widening 60 starts from a third radial distance R3 from the rotational center axis Z and extends radially inwards towards the center of the disc 20. Each widening 60 may start from a radial distance that is less than the second R2 radial distance which defines the radial location of the feeding termination points 50a-50d. Depending on the radius R1 of the disc 20 and the position of the transmission lines 30, 32 (from the feed network), it may be impossible to extend the slots as far to the center of the disc 20 as desired from an antenna impedance point of view. It may then be preferable to increase the effective length of the slots by making them wider at the inner end closest to the center of the disc 20. Hence, according to yet another embodiment of the invention each widening 60 has a largest width wW
As noted, the slots divide the disc into four portions 21, 22, 23, 24, and the slots in
Furthermore, the conductive disk 20 is portioned into the four equal quadrants, 21, 22, 23, 24, generally separated radially by the oriented slots 30a-30d therebetween. Radio Frequency (RF) signals are coupled via a first pair of two separate radio signal guides 70a, 70c (e.g. strip lines or any other suitable signal guides) to a first pair of two radially opposite arranged slots 30a, 30c. The first pair of guiding means 70a, 70c may be two strip lines of substantially equal electrical length. Similarly, a second pair of two separate radio signal guides 70b, 70d has substantially equal electrical length coupled to a second pair of radially opposite arranged slots 30b, 30d.
In the embodiment shown in
It is preferable, but not necessary, to use different characteristic impedance for the strip lines 70b, 70d and the first transmission line 30 to avoid mismatch at their junction. For example, a characteristic impedance of 100 ohm for the strip lines 70b, 70d and a characteristic impedance of 50 ohm for the radio frequency guide 30 may be provided. This choice minimizes the wave reflection at the junction between the strip lines 70b, 70d and the radio frequency guide 30. Other choices of characteristic impedances are possible if this better matches the antenna impedance to the reference impedance of the antenna system. Similar requirements apply to the other strip line structure of guides 70a, 70c and radio frequency guide 32.
Further, the first pair of guides 70a, 70c extends from the first radio frequency transmission line 30 over a first pair of opposite arranged slots 30a, 30c. This will excite an electromagnetic field across the slots 30a, 30c which will propagate away from the antenna element 10 in a first linear polarization. The radial location of the feed points (where guides crosses the slots) R2 affects the antenna impedance in such a way that a radial position closer to the center of the disc 20, i.e. a smaller value for R2, and will provide a lower resistance while a position radially farther out on the disc 20 will increase the resistance.
In order to avoid intersection between different guides, if they are not insulated (e.g. strip lines), an air bridge 44 may be implemented which is shown in
The present invention further relates to a multiband antenna unit 200 comprising at least one first broadband antenna element 10 as described above and at least one second broadband antenna element 100 arranged above or below the first broadband antenna element 10 depending on the operating frequencies of the two antenna elements. An embodiment of such a multiband antenna unit is shown in
The antenna unit 200 also includes at least one box-shaped parasitic element 120 arranged between the first 10 and second 100 broadband antenna elements (the parasitic element 120 is transparent in
To control azimuth beamwidth of the first higher frequency antenna element 10 and the impedance of the second lower frequency element 100 a parasitic element 120 having four sides 120a-d is positioned at a distance above (in a positive Z direction) a conducting plate 112 of the antenna system as shown in
With reference to the embodiment of a dual broadband antenna unit in
With continuing reference to
As it can be seen in
Even though a dual broadband antenna element structure has been described, the same designed principals can be applied to tri-band and more band antenna element systems.
Moreover, the invention also relates to an antenna array comprising a plurality of multiband antenna units 200 according to the invention and a plurality of first broadband antenna elements 10. The present antenna array is configured such that the multiband antenna units 100 and the first broadband antenna elements 10 are alternately arranged in a row so that a distance dAE between the center of a first antenna element 10 and an adjacent antenna unit 200 in the row is constant.
With reference to
The above described antenna array may be incorporated in a broadband antenna system which is readily understood by the skilled person. It is also realized that a broadband antenna system may incorporate any of the antenna elements and antenna units according to the invention. The broadband antenna system is preferably adapted for transmitting and/or receiving radio transmission signals for wireless communication systems such as GSM, GPRS, EDGE, UMTS, LTE, LTE-Advanced, and WiMax systems
Finally, it should be understood that the present invention is not limited to the embodiments described above, but also relates to and incorporates all embodiments within the scope of the appended independent claims.
Filing Document | Filing Date | Country | Kind |
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PCT/US2013/064617 | 10/11/2013 | WO | 00 |
Number | Date | Country | |
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61714055 | Oct 2012 | US |