The present invention relates to a reconfigurable hybrid antenna device. More particularly, the present invention relates to a power supply arrangement reconfiguration function of a hybrid antenna device having a reflective plate.
Recently, advancements in antenna technology have been strongly required as the concept of an integrated service that is capable of simultaneously providing a plurality of mobile communication services has been on the rise with the development of the next generation mobile communication technology. That is, since wireless communication services have become complex, an antenna that can support the next generation complex terminal service has been required.
However, in general, each of cellular, PCS, W-CDMA, Wibro, and Wi-Fi services needs a corresponding base station antenna in the related art, and simple array antennas having one-dimensional or two-dimensional arrangements using flat plates and linear antenna elements have been used.
According to these array antennas having the above structure in the related art, as described above, a number of antennas are needed for one base station to provide a plurality of mobile communication services that is required for the next generation mobile communication technology. This is the main factor that increases the maintenance cost of base stations, and spoils the appearance of the surroundings.
Further, the array antennas have a drawback in that they are difficult to apply to a MIMO (multi-input multi-output) antenna that is required for a high-speed large capacity communication service, which is the core of the next generation mobile communication technology.
According to
According to the structure, depending on the direction of signal power radiated from the power supply arrangement 20, the traveling direction P11 of a final wave reflected by the reflective plate 10 is determined.
As described above, the function has been limited to controlling the direction of a radio wave that is transmitted (or received) from the hybrid antenna in the related art.
The above information disclosed in this Background section is only for enhancement of understanding of the background of the invention and therefore it may contain information that does not form the prior art that is already known in this country to a person of ordinary skill in the art.
The present invention has been made in an effort to provide a reconfigurable hybrid antenna device having advantages of allowing a base station antenna to operate in multiband or wideband and having a function of reconfiguration to efficiently achieve a function of an MIMO antenna for the next generation mobile communication.
A reconfigurable hybrid antenna device according to the present invention includes: a reflective plate that reflects an incident signal; a power supply arrangement that includes a plurality of element antennas for supplying power to the reflective plate; active channels that control the levels and phases of signal powers radiated from the element antennas of the power supply arrangement; and a controller that is connected with the active channels and outputs control values for the levels and phases of signal power that is inputted and outputted to/from the element antennas to change a range of radiation of the signal powers radiated from the element antennas.
According to the present invention, it is possible to simultaneously or independently provide a plurality of mobile communication services by controlling the power supply arrangement having a function of reconfiguration to turn on/off the element antennas of the power supply arrangement.
Further, the surface of the reflective plate is formed in one dimension or two dimensions, such that it is possible to achieve high-gain characteristics and an optimum radiation pattern required for a mobile communication service.
According to this structure of a reflective plate-based hybrid antenna, since the power supply arrangement including a plurality of element antennas is electrically and physically controlled, it is possible to achieve reconfiguration of the frequency and operation of the entire antenna and provide an advantage of achieving an economical base station antenna that can provide a high-quality communication service required for the next generation mobile communication service.
Therefore, since it is possible to provide a plurality of mobile communication services from one base station, it is possible to considerably reduce the number of temporary base stations and accordingly reduce the maintenance cost of base stations.
In the following detailed description, only certain exemplary embodiments of the present invention have been shown and described, simply by way of illustration. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. Accordingly, the drawings and description are to be regarded as illustrative in nature and not restrictive. Like reference numerals designate like elements throughout the specification.
It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated components, but do not preclude the presence or addition of one or more other components, unless specifically stated. In addition, the terms -er, -or, module, and block described in the specification mean units for processing at least one function and operation, and can be implemented by hardware components or software components, and combinations thereof.
Hereinafter, a reconfigurable hybrid antenna device according to an exemplary embodiment of the present invention is described in detail with reference to the accompanying drawings. Like reference numerals designate like elements in the drawings.
According to
According to this configuration, the element antennas 210 of the reconfigurable power supply arrangement 200 can independently turn on/off, as the reconfigurable power supply arrangement 200 has a reconfiguration function that activates all or some of the element antennas 210 of the reconfigurable power supply arrangement 200.
Further, as shown in
The range of radiation P103 implies the width of a beam pattern that is formed and the width of the beam pattern is directly associated with service coverage, so it is possible to actively change the service coverage by changing the range of radiation P103. As the range of radiation is variable, it is possible to actively change the service area under a communication environment in which the reconfigurable hybrid antenna operates, thereby improving the operational efficiency.
Further, although not illustrated in detail in the figures, it is possible to achieve high-gain characteristics by forming the surface of the reflective plate 100 in one dimension or two dimensions and applying an optimum radiation pattern required for mobile communication service.
To help understating the function of controlling the width of the beam pattern of the reconfigurable hybrid antenna, which is the object intended in the figures, the figures illustrate that all element antennas 210 are activated, but it should be understand that the function of controlling the width of the beam pattern by turning on some of the element antennas 210 can also be applied.
According to
The reconfigurable power supply arrangement 200 is composed of the plurality of element antennas 210 that transmit and receive the signal power.
The active channel unit 300 controls the level and phase of the signal power radiated from the reconfigurable power supply arrangement 200. In detail, the active channel unit 300 includes an amplifier 310 that controls the level of the signal power, and a phase shifter 330 that controls the phase. The active channels 300 illustrated in the figure are active channels for transmission, but it is apparent that the active channels 300 are also conceptually the same as active channels for receipt.
A controller 400 is connected with each of the active channels 300, and controls the operation for controlling the level and phase of the signal power of the active channels 300 for changing the range of radiation P103. Further, the controller 400 is connected with the active channels 300 and controls the operation of turning on/off the reconfigurable power supply arrangement 200.
That is, the controller 400 sets control values for the levels and phases of the signal powers of the active channels 300, and actively changes the range of radiation P103 of the reconfigurable power supply arrangement 200. In the figure, the solid lines represent the input/output lines of RF signal power and main signal source, from the active channels 300, and the dotted lines represent the output line of the control value for the level and phase of the signal power inputted into the active channels 300 from the controller 400.
Further, the controller 400 actively changes the range of radiation P103 of the reconfigurable power supply arrangement 200 by turning on/off the element antennas 210 of the reconfigurable power supply arrangement 200.
First,
The reconfigurable power supply arrangement 200 shown in
Further, depending on the number of element antennas 210 that are in activation, the effective aperture of the power supply arrangement 200 changes, and accordingly the width and gain of the beam P105 of the final antenna reflected by the reflective plate 100 is variable. However, it is assumed in the figures that the levels and phases of the signal powers radiated from the element antennas 210 of the power supply arrangement 200 are the same. Accordingly, it can be seen from
In
A multi-reconfigurable power supply arrangement 500 shown in
The multi-element antennas 510 are shown in the figures to illustrate structural variety of the element antennas 210 of the power supply arrangement 200 included in the reconfigurable hybrid antenna of the invention, but the shape and specification of the element antennas 210 can be freely changed by a designer.
Further,
Further, though not shown in
As described above, according to a reconfigurable hybrid antenna of an exemplary embodiment of the present invention, it is possible to achieve the effect of operating a plurality of antennas by using one physical antenna, so it is very efficient to achieve the function of an MIMO antenna for the next generation mobile communication.
While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Number | Date | Country | Kind |
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10-2007-0084009 | Aug 2007 | KR | national |
The present invention is based on a project supported by the IT R&D program of MIC/IITA [2007-F-041-01, Intelligent Antenna Technology Development].
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR08/04526 | 8/4/2008 | WO | 00 | 2/18/2010 |