Antenna apparatus and method of driving the same
11043992 · 2021-06-22
Assignee
Inventors
Cpc classification
H01Q1/3233
ELECTRICITY
H01Q9/0407
ELECTRICITY
H04B7/024
ELECTRICITY
International classification
H04B7/024
ELECTRICITY
Abstract
An antenna apparatus includes a number of antenna devices disposed to surround a center. M switches are connected to the plurality of antenna devices, M being an integer equal to or greater than 1. The of antenna devices include N antenna device groups and each of the N antenna device groups includes M antenna devices. N is an integer equal to or greater than 1. For each of the M switches, the m.sup.th switch is connected to the m.sup.th antenna device of the each of the N antenna device groups, m being an integer ranging from 1 to M.
Claims
1. An antenna apparatus comprising: a plurality of antenna devices disposed to surround a center; and M switches connected to the plurality of antenna devices, M being an integer equal to or greater than 1; wherein the plurality of antenna devices include N antenna device groups, each of the N antenna device groups including M antenna devices, N being an integer equal to or greater than 1; and wherein for each of the M switches, the m.sup.th switch is connected to the m.sup.th antenna device of the each of the N antenna device groups, m being an integer ranging from 1 to M.
2. The antenna apparatus of claim 1, wherein M and N are each 4.
3. The antenna apparatus of claim 1, wherein the plurality of antenna devices surround the center and are disposed at positions of concentric circles.
4. The antenna apparatus of claim 1, wherein the plurality of antenna devices surround the center and are disposed at edges of a polygonal shape.
5. The antenna apparatus of claim 1, wherein the odd-numbered switches or the even-numbered switches are configured to be turned off during operation of the antenna apparatus.
6. The antenna apparatus of claim 1, wherein M is an even number and wherein switches positioned in first to (M/2).sup.th sequences or switches positioned in (M/2+1).sup.th to M.sup.th sequences among the switches are turned off.
7. The antenna apparatus of claim 1, wherein: each of the switches includes first and second sub-switches; and the first sub-switch of each of the switches is connected to each of odd-numbered antenna device groups of each of the N antenna device groups.
8. The antenna apparatus of claim 7, wherein the second sub-switch of each of the switches is connected to each of even-numbered antenna device groups of each of the N antenna device groups.
9. The antenna apparatus of claim 1, wherein: each of the switches includes first and second sub-switches; and the second sub-switch of each of the switches is connected to each of even-numbered antenna device groups of each of the N antenna device groups.
10. A method of comprising: providing a plurality of antenna devices to surround a center; and connecting M switches to the plurality of antenna devices, M being an integer equal to or greater than 1; wherein the plurality of antenna devices include N antenna device groups, each of the N antenna device groups including M antenna devices, N being an integer equal to or greater than 1; and wherein the m.sup.th switch is connected to the m.sup.th antenna device of the each of the N antenna device groups, m being an integer ranging from 1 to M.
11. The method of claim 10, wherein M and N are each 4.
12. The method of claim 10, wherein the plurality of antenna devices surround the center and are disposed at positions of concentric circles.
13. The method of claim 10, wherein the plurality of antenna devices surround the center and are disposed at edges of a polygonal shape.
14. The method of claim 10, wherein the odd-numbered switches or the even-numbered switches are turned off.
15. The method of claim 10, wherein M is an even number and wherein switches positioned in first to (M/2).sup.th sequences or switches positioned in (M/2+1).sup.th to M.sup.th sequences among the switches are turned off.
16. The method of claim 10, wherein: each of the switches includes first and second sub-switches; and the first sub-switch of each of the switches is connected to each of odd-numbered antenna device groups of each of the N antenna device groups.
17. The method of claim 10, wherein: each of the switches includes first and second sub-switches; and the second sub-switch of each of the switches is connected to each of even-numbered antenna device groups of each of the N antenna device groups.
18. The method of claim 10, wherein: each of the switches includes first and second sub-switches; the first sub-switch of each of the switches is connected to each of odd-numbered antenna device groups of each of the N antenna device groups; and the second sub-switch of each of the switches is connected to each of even-numbered antenna device groups of each of the N antenna device groups.
19. A method of operating an antenna apparatus that comprises a plurality of antenna devices disposed to surround a center and M switches connected to the plurality of antenna devices, wherein the plurality of antenna devices include N antenna device groups that each include M antenna devices, M and N each being an integer equal to or greater than 1, the method comprising: determining a direction of a beam to be transmitted from the antenna apparatus; operating the switches to select an m.sup.th antenna device of the each of the N antenna device groups, m being an integer and 1≤m≤M; and transmitting the beam from the antenna apparatus using selected antenna devices.
20. The method of claim 19, wherein transmitting the beam comprises transmitting the beam from the antenna apparatus using all of the selected antenna devices.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Arrangements and embodiments may be described in detail with reference to the following drawings in which like reference numerals refer to like elements and wherein:
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(12) The following methods and vehicle controllers according to embodiments will be described in more detail with reference to the accompanying drawings. Terms used therein are used only for illustrative purposes and are not intended to limit the scope of embodiments.
(13) The term “comprises”, “includes”, “arrange”, or “has” described herein should be interpreted not to exclude other elements but to further include such other elements since the corresponding elements may be included unless mentioned otherwise.
(14) The singular expressions including “the” in the present specification and claims include the plural expressions unless clearly specified otherwise in context. In addition, the term “and/or” includes any and all combinations of one or more of the associated listed items.
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(16) The antenna apparatus according to embodiments may be configured in such a way that patches are disposed at positions of a circumference of a circular shape or edges of a polygonal shape, which surrounds the center, but not formation 4x4 without use of a phase shifter, and a desired antenna may be selected to form a beam and a direction of the beam may be changed.
(17) For example, in
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(19) The antenna apparatus according to the present embodiment may include a plurality of antenna devices disposed to surround the center, and first to M.sup.th (M being an integer equal to or greater than 1) switches connected to the plural antenna devices.
(20) A plurality of antenna devices illustrated in a rectangular shape may include first to N.sup.th (N being an integer equal to or greater than 1) antenna device groups, and each of the first to N.sup.th antenna device groups may include first to M.sup.th (M being an integer equal to or greater than 1) antenna devices.
(21) According to the embodiment shown in
(22) The first switch SP4T_1 may be connected to each of first antenna devices of the first to N.sup.th antenna device groups, a J.sup.th (J being an integer and 1<J<M) switch may be connected to each of J.sup.th antenna devices of the first to N.sup.th antenna device group, and an M.sup.th switch may be connected to each of M.sup.th antenna devices of the first to N.sup.th antenna device groups.
(23) That is, according to the present embodiment, the first switch SP4T_1 may be connected to the first antenna devices SP4T_1_Port #1, SP4T_1_Port #2, SP4T_1_Port #3, and SP4T_1_Port #4 of the first to fourth antenna device groups, the second switch SP4T_2 may be connected to the second antenna devices SP4T_2_Port #1, SP4T_2_Port #2, SP4T_2_Port #3, and SP4T_2_Port #4 of the first to fourth antenna device groups, the third switch SP4T_3 may be connected to the third antenna devices SP4T_3_Port #1, SP4T_3_Port #2, SP4T_3_Port #3, and SP4T_3_Port #4 of the first to fourth antenna device groups, and the fourth switch SPAT_4 may be connected to the fourth antenna devices SP4T_4_Port #1, SP4T_4_Port #2, SP4T_4_Port #3, and SP4T_4_Port #4 of the first to fourth antenna device groups.
(24) As shown in
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(26) In the embodiment of
(27) According to the present embodiment, two switches may be turned on and only two switches from a switch group may also be turned on, and accordingly, searching may be performed in four of total directions and the most appropriate direction may be selected from the four beam directions. Then, all the four switches may be turned on and adjacent beams for respective angles may be compared to select the most appropriate direction.
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(31) In the antenna apparatus according to the present embodiment, first to fourth switches 1210 to 1240 may be included in a switch 1200, and each of the first to fourth switches 1210 to 1240 may include a first sub-switch a and a second sub-switch b. The first sub-switch a of each of the first to fourth switches 1210 to 1240 may be connected to odd-numbered antenna devices . . . _Port #1, . . . Port #3 among first to N.sup.th antenna devices, and the second sub-switch b may be connected to even-numbered antenna devices . . . _Port #2, . . . Port #4 among the first to N.sup.th antenna devices.
(32) Accordingly, when the first sub-switch a in the first to fourth switches 1210 to 1240 may be turned on via first input, antenna devices connected to the first sub-switch a may be turned on to obtain a beam direction shown in an upper-right portion of
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(35) In the aforementioned method of driving an antenna device, a plurality of antenna devices may be disposed to surround the center, and first to M.sup.th (M being an integer equal to or greater than 1) switches may be connected to the plural antenna devices. As described above, the plural antenna devices may include first to N.sup.th antenna device groups, each of the first to N.sup.th antenna device groups may include first to M.sup.th (M being an integer equal to or greater than 1) antenna devices, the first switch may be connected to the first antenna devices of the first to N.sup.th antenna device groups, a J.sup.th (J being an integer and 1<J<M) switch may be connected to each of J.sup.th antenna devices of the first to N.sup.th antenna device groups, and the M.sup.th switch may be connected to each of the M.sup.th antenna devices of the first to N.sup.th antenna device groups to drive the antenna device.
(36) The aforementioned method of driving an antenna apparatus may be recorded on a computer readable recording medium, and in this case, may be recorded as a program for executing the driving method of the antenna apparatus by a processor.
(37) In an antenna device, a method of driving the same, a program, and a recording medium, searching in a beam direction may be possible depending on the number of switches, and the shape and number of beams may be allocated depending on the cases, and thus, it may be possible to rapidly and precisely perform scanning in a beam direction. In addition, a complicated circuit for controlling a plurality of patch antennas may not be required, and searching in a beam direction may be subdivided using a method of configuring a sub-switch in a switch, or the like.
(38) In an antenna device, a method of driving the same, a program, and a recording medium according to embodiments, searching in a beam direction may be possible depending on the number of switches, and the shape and number of beams may be allocated depending on the cases, and thus, it may be possible to rapidly and precisely perform scanning in a beam direction. In addition, a complicated circuit for controlling a plurality of patch antennas may not be required, and searching in a beam direction may be subdivided using a method of configuring a sub-switch in a switch, or the like.
(39) It will be apparent to those skilled in the art that various modifications and variations can be made in the present disclosure without departing from the spirit or scope of the present disclosure.
(40) Thus, it is intended that the present disclosure cover the modifications and variations of the present disclosure provided they come within the scope of the appended claims and their equivalents.