The present application is related to and claims the benefit under 35 U.S.C. §119(a) of a Korean patent application filed in the Korean Intellectual Property Office on Mar. 14, 2012 and assigned Serial No. 10-2012-0026134, the entire disclosure of which is hereby incorporated by reference.
The present disclosure relates to a wireless communication system. More particularly, the present disclosure relates to an antenna structure for supporting multi-frequency bands and an operation method thereof.
As various wireless communication technologies for supporting different frequency bands have been provided, technologies for effectively supporting multi-frequency bands have been researched and developed. For example, a wireless communication system has used a method of having a separate transmission and reception module while being classified according to each of frequency bands to support multi-frequency bands.
As shown in
Therefore, recently, in order to miniaturize a size of the BS which supports the multi-frequency bands, there has been a method of reducing a separation distance of an antenna array configuring an antenna unit. However, there is a limit to miniaturize the size of the BS using only the method of the separation distance of the antenna array.
To address the above-discussed deficiencies, embodiments of the present disclosure provide an antenna structure in a wireless communication system and an operation method thereof.
Certain embodiments of the present disclosure provide an antenna structure for combining and integrating a dipole antenna and a loop antenna in a wireless communication system and an operation method thereof.
Certain embodiments of the present disclosure provide a method and apparatus for configuring an antenna array using antennas in which a dipole antenna and a loop antenna are combined and integrated the combined antenna in a wireless communication system.
Certain embodiments of the present disclosure provide a method and apparatus for supporting two frequency bands through an antenna array configured using antennas in which a dipole antenna and a loop antenna are combined and integrated in a wireless communication system.
In accordance with certain embodiments of the present disclosure, an antenna device in a wireless communication includes antenna wires of four sides. The antenna wires of four sides include three feeding points and have a loop structure and four main switches, which are located among the antenna wires of the four sides. The antenna device operates as a loop antenna when the antenna wires of the four sides are connected according to operations of the main switches, and the antenna device operates as dipole antennas when the antenna wires of the four sides are disconnected according to operations of the main switches.
In accordance with certain embodiments of the present disclosure, an antenna array device in a wireless communication includes a plurality of antenna elements. Each of the antenna elements have a predetermined separation distance, wherein each of the antenna elements which has a structure in which a dipole antenna is integrated in each of both sides of one loop antenna, and wherein each of the antenna elements supports different two frequency bands.
Before undertaking the DETAILED DESCRIPTION below, it may be advantageous to set forth definitions of certain words and phrases used throughout this patent document: the terms “include” and “comprise,” as well as derivatives thereof, mean inclusion without limitation; the term “or,” is inclusive, meaning and/or; the phrases “associated with” and “associated therewith,” as well as derivatives thereof, may mean to include, be included within, interconnect with, contain, be contained within, connect to or with, couple to or with, be communicable with, cooperate with, interleave, juxtapose, be proximate to, be bound to or with, have, have a property of, or the like; and the term “controller” means any device, system or part thereof that controls at least one operation, such a device may be implemented in hardware, firmware or software, or some combination of at least two of the same. It should be noted that the functionality associated with any particular controller may be centralized or distributed, whether locally or remotely. Definitions for certain words and phrases are provided throughout this patent document, those of ordinary skill in the art should understand that in many, if not most instances, such definitions apply to prior, as well as future uses of such defined words and phrases.
For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals represent like parts:
Embodiments of the present disclosure provide a structure of an antenna, in which a dipole antenna and a loop antenna are combined, for supporting two frequency bands and an operation method thereof.
As shown in
Referring to
The first to fourth switches 301 to 304 can operate as one loop antenna 201 or two dipole antennas 211 and 213 through switching. That is, when the first to fourth switches 301 to 304 are simultaneously turned off, a wire of four sides of the loop-dipole antenna 221 is divided. Accordingly, wires of symmetric both sides of the loop-dipole antenna 221 can operate as the dipole antennas 211 and 213 by the first and second feeding points 311 and 313 of the symmetric both sides thereof. On the other hand, when the first to fourth switches 301 to 304 are simultaneously turned on, all the wires of the four sides of the loop-dipole antenna 221 are connected with one other. Accordingly, the loop-dipole antenna 221 can operate as the loop antenna 201 by the third feeding point 321.
In accordance with embodiments of the present disclosure, the first to fourth switches 301 to 304 are described above with reference to when they are located on vertices of the loop-dipole antenna 221. However, the first to fourth switches 301 to 304 can be disposed in certain positions where wires of both sides including the first and second feeding points 311 and 313 have the same length when they are turned off. That is, the first to fourth switches 301 to 304 can be disposed in certain positions where the two dipole antennas 211 and 213, which operate when they are turned off, have the same length.
The first and second feeding points 311 and 313 are symmetrically located on both sides of the loop-dipole antenna 221 and supply current such that the corresponding both sides thereof operate as the dipole antennas 211 and 213. Particularly, in accordance with embodiments of the present disclosure, each of the first and second feeding points 311 and 313 includes a switch 331.
When the switches 331 included in each of the first and second feeding points 311 and 313 are turned on/off, both wires of the corresponding feeding point are connected or disconnected. Accordingly, the loop-dipole antenna 221 operates as the loop antenna 201 or the dipole antennas 211 and 213. That is, the switch 331 in the first feeding point 311 disconnects both wires of the first feeding point 311 such that the loop-dipole antenna 221 operates as the two dipole antennas 211 and 213, or the switch 331 connects both the wires of the first feeding point 311 such that the loop-dipole antenna 221 operates as the one loop antenna 201. When the switch 331 included in the first feeding point 311 is turned on and both the wires of the first feeding point 311 are connected with each other, a resistance value of a feeding line 333 of the first feeding point 311 is greater than a resistance value of both the wires connected to the switch 331. Accordingly, the feeding line 333 does not influence the loop-dipole antenna 221 operations as the loop antenna 201.
The third feeding point 321 supplies current such that the loop-dipole antenna 221 operates as the loop antenna. Herein, the third feeding point 321 for supplying current for an operation of the loop antenna and the first and second feeding points 311 and 313 for supplying current for operations of the dipole antennas exist on different sides of the loop-dipole antenna 221. That is, a side including the third feeding point 321 is orthogonal to both sides that include the first and second feeding points 311 and 313.
As described above, the loop-dipole antenna 221 can operate as the one loop antenna 201 or as the two dipole antennas 211 and 213 by turning on/off the first to fourth switches 301 to 304 and the switch 331 included in each of the first and second feeding points 311 and 313 according to control of a controller (not shown). In certain embodiments, a frequency band supported when the loop-dipole antenna 221 operates as the loop antenna 201 differs from a frequency band supported when the loop-dipole antenna 221 operates as the dipole antennas 211 and 213. In certain embodiments, the frequency band supported by each of the loop antenna 201 and the dipole antennas 211 and 213 of the loop-dipole antenna 221 can be changed according to a length of each of the loop antenna 201 and the dipole antennas 211 and 213. Particularly, the frequency band supported by the dipole antennas 211 and 213 can be changed according to positions of the first to fourth switches 301 to 304. For example, when the first to fourth switches 301 to 304 are located on vertices of the loop-dipole antenna 221 and when the first to fourth switches 301 to 304 are symmetrically located on both wires that include the first and second feeding points 311 and 313, the dipole antennas 211 and 213 support different frequency bands.
Also, as described above, when the first to fourth switches 301 to 304 is turned off and both the sides of the loop-dipole antenna 221 operate as the dipole antennas 211 and 213 according to embodiments of the present disclosure, sides of the loop-dipole antenna 221, except for both the dipole antenna sides of the loop-dipole antenna 221 are orthogonal to both the sides that operate as the dipole antennas 211 and 213. Accordingly, the side(s) except for both the dipole antenna sides do not influence operation of the dipole antenna 211 and 213.
Certain embodiments of the present disclosure include a method of configuring an antenna array using loop-dipole antennas.
As shown in
Herein, A 411 denotes a length of each of four sides that compose each of the loop-dipole antennas 401 and 403. λ1 denotes a corresponding wavelength when each of the loop-dipole antennas 401 and 403 operates as a loop antenna. λ2 denotes a corresponding wavelength when each of the loop-dipole antennas 401 and 403 operates as dipole antennas. That is, the length A 411 of each of the four sides of the loop-dipole antennas 401 and 403 can be determined using a characteristic of a loop antenna that operates when a length of one side thereof is λ/4 and a characteristic of dipole antennas that operate with a λ/2 length.
Also, when an antenna array is configured using a plurality of loop-dipole antennas 401 and 403, a separation distance between the loop-dipole antennas 401 and 403 is shown in the system of equations in Equation (2).
Herein, D 413 denotes a separation distance between center points of the loop-dipole antennas 401 and 403. While d (415 denotes a separation distance between adjacent sides of the loop-dipole antennas 401 and 403. That is, the separation distance D 413 between the center axes of the loop-dipole antennas 401 and 403 for configuring, the antenna array and the separation distance d 411 between sides of the loop-dipole antennas 401 and 403 can be determined such that a separation distance between loop antennas is 212 when each of the loop-dipole antennas 401 and 403 operates as the loop antenna 201 of
As shown in
That is, as shown in
Also, as shown in
As described above, it is ideal that the high frequency band fH is twice as likely as the low frequency band fL to have frequencies. However, in applied practice the high frequency band fH is not twice as likely as the low frequency band 11 to have frequencies according to positions of switches included in each of the loop-dipole antennas.
Referring to
An antenna device according to embodiments of the present disclosure can reduce a size of a BS through an antenna structure for supporting two frequency bands by combining and integrating a dipole antenna and a loop antenna in a wireless communication system for supporting multi-frequency bands. Also, an antenna device according to embodiments of the present disclosure can configure an antenna array easily by securing a separation distance between positions of feeding points between a dipole antenna and a loop antenna. Also, an antenna device according to embodiments of the present disclosure can implement an antenna array at low cost by using only a dipole antenna and loop antenna. Also, an antenna device according to embodiments of the present disclosure can reduce an error generation probability generated due to a simple structure.
While the present disclosure has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present disclosure as defined by the appended claims.
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