MILLIMETER WAVE ANTENNA DEVICE INCLUDING PARASITIC ELEMENTS CAPABLE OF IMPROVING ANTENNA PATTERN
20200243971 ยท 2020-07-30
Inventors
- Shao-Yu HUANG (Hsinchu City, TW)
- Yeh-Chun KAO (Hsinchu City, TW)
- Chung-Hsin CHIANG (Hsinchu City, TW)
- Shih-Huang YEH (Hsinchu City, TW)
Cpc classification
International classification
Abstract
A millimeter wave antenna device includes an antenna array, a first parasitic element and a second parasitic element. The antenna array includes mn antennas and is disposed in an antenna area. The first parasitic element is disposed beside a first side of the antenna area. The second parasitic element is disposed beside a second side of the antenna area. None of the first parasitic element and the second parasitic element overlaps with the antenna area.
Claims
1. A millimeter wave antenna device comprising: an antenna array comprising mn antennas and disposed in an antenna area; a first parasitic element disposed beside a first side of the antenna area; a second parasitic element disposed beside a second side of the antenna area; a first tunable component configured to adjust an impedance corresponding to the first parasitic element and comprising a first terminal coupled to the first parasitic element and a second terminal; a second tunable component configured to adjust an impedance corresponding to the second parasitic element and comprising a first terminal coupled to the second parasitic element and a second terminal; and a transceiver coupled to the antenna array, the second terminal of the first tunable component and the second terminal of the second tunable component, and configured to process signals transceived by the antenna array and control the first tunable component and the second tunable component; wherein none of the first parasitic element and the second parasitic element overlaps with the antenna area, m and n are positive integers, and m+n>2.
2. The millimeter wave antenna device of claim 1, wherein the first side is opposite to the second side.
3. The millimeter wave antenna device of claim 1, wherein the impedance corresponding to the first parasitic element is infinite when the first tunable component is operated in an open state, and zero when the first tunable component is operated in a short state.
4. The millimeter wave antenna device of claim 3, wherein the impedance corresponding to the second parasitic element is infinite when the second tunable component is operated in an open state, and zero when the second tunable component is operated in a short state.
5. The millimeter wave antenna device of claim 1, wherein the first tunable component, the second tunable component and the transceiver are integrated in an integrated circuit.
6. The millimeter wave antenna device of claim 1, further comprising: a circuit carrier configured to provide mn first conductive paths coupled between the transceiver and the antenna array, a second conductive path coupled between the first tunable component and the first parasitic element, and a third conductive path coupled between the second tunable component and the second parasitic element; wherein the antenna array, the first parasitic element and the second parasitic element are disposed on a first side of the circuit carrier, and the first tunable component, the second tunable component and the transceiver are disposed on a second side of the circuit carrier.
7. The millimeter wave antenna device of claim 1, further comprising: a substrate wherein the first parasitic element, the second parasitic element, the first tunable component and the second tunable component are disposed on a first side of the substrate; and a cover disposed on a second side of the substrate.
8. The millimeter wave antenna device of claim 1, further comprising: a first substrate wherein the first parasitic element and the first tunable component are disposed on a first side of the first substrate; a second substrate wherein the second parasitic element and the second tunable component are disposed on a first side of the second substrate; and a cover disposed on a second side of the first substrate and a second side of the second substrate.
9. The millimeter wave antenna device of claim 1, wherein a width of each of the first parasitic element and the second parasitic element is larger than one fourth of a wavelength of a signal transceived by the antenna array.
10. The millimeter wave antenna device of claim 1, wherein a width of each of the first parasitic element and the second parasitic element is half of a wavelength of a signal transceived by the antenna array.
11. The millimeter wave antenna device of claim 1, further comprising: a third parasitic element disposed beside a third side of the antenna area; and a fourth parasitic element disposed beside a fourth side of the antenna area; wherein the third parasitic element does not overlap with the antenna area, and the fourth parasitic element does not overlap with the antenna area.
12. The millimeter wave antenna device of claim 11, wherein the first side is opposite to the second side, the third side is perpendicular to the first side and the second side, the fourth side is perpendicular to the first side and the second side, and the third side is opposite to the fourth side.
13. The millimeter wave antenna device of claim 11, further comprising: a third tunable component configured to adjust an impedance corresponding to the third parasitic element and comprising a first terminal coupled to the third parasitic element, and a second terminal; and a fourth tunable component configured to adjust an impedance corresponding to the fourth parasitic element and comprising a first terminal coupled to the fourth parasitic element, and a second terminal; wherein the transceiver is further coupled to the second terminal of the third tunable component and the second terminal of the fourth tunable component, and further configured to control the third tunable component and the fourth tunable component.
14. The millimeter wave antenna device of claim 11, further comprising: fifth parasitic elements disposed beside the first side of the antenna area; sixth parasitic elements disposed beside the second side of the antenna area; seventh parasitic elements disposed beside the third side of the antenna area; and eighth parasitic elements disposed beside the fourth side of the antenna area; wherein none of the fifth parasitic elements, the sixth parasitic elements, the seventh parasitic elements and the 6 eighth parasitic elements overlaps with the antenna area, , , and are positive integers, >0, >0, >0 and >0.
15. The millimeter wave antenna device of claim 1, further comprising: x third parasitic elements disposed beside the first side of the antenna area; and y fourth parasitic elements disposed beside the second side of the antenna area; wherein none of the x third parasitic elements and the y fourth parasitic elements overlaps with the antenna area, x and y are positive integers, x>0 and y>0.
16. The millimeter wave antenna device of claim 1, wherein each of the first parasitic element and the second parasitic element has a rectangular shape, a circular shape, a rhombus shape or a parallelogram shape.
17. The millimeter wave antenna device of claim 1, wherein each of the mn antennas is a patch antenna, a slot antenna, a loop antenna or a planar inverted-F antenna.
18. The millimeter wave antenna device of claim 1, wherein the antenna array is operated at a frequency higher than seven gigahertz.
19. A millimeter wave antenna device comprising: a first antenna array comprising mn first antennas and disposed in a first antenna area; a first parasitic element disposed beside a first side of the first antenna area; a second parasitic element disposed beside a second side of the first antenna area; a second antenna array comprising pq second antennas and disposed in a second antenna area; a third parasitic element disposed beside a first side of the second antenna area; and a fourth parasitic element disposed beside a second side of the second antenna area; wherein none of the first parasitic element and the second parasitic element overlaps with the first antenna area, none of the third parasitic element and the fourth parasitic element overlaps with the second antenna area, each of the first antennas is insulated from each of the second antennas, m, n, p and q are positive integers, m+n>2 and p+q>2.
20. The millimeter wave antenna device of claim 19, wherein the first antenna area partially overlaps with the second antenna area and is unaligned with the second antenna area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
DETAILED DESCRIPTION
[0012]
[0013] As shown in
[0014] According to an embodiment, each of the mn antennas in the antenna array 155 may be a patch antenna, a slot antenna, a loop antenna or a planar inverted-F antenna (PIFA).
[0015] As shown in
[0016]
[0017] The first tunable component TC1 may be used to adjust an impedance corresponding to the first parasitic element 110. The first tunable component TC1 may include a first terminal coupled to the first parasitic element 110 and a second terminal.
[0018] The second tunable component TC2 may be used to adjust an impedance corresponding to the second parasitic element 120. The second tunable component TC2 may include a first terminal coupled to the second parasitic element 120 and a second terminal.
[0019] The transceiver 199 may be coupled to the antenna array 155, the second terminal of the first tunable component TC1 and the second terminal of the second tunable component TC2. The transceiver 199 may be used to process signals transceived by the antenna array 155 and control the first tunable component TC1 and the second tunable component TC2.
[0020] The impedance corresponding to the first parasitic element 110 may be infinite (i.e. 00) when the first tunable component TC1 is operated in an open state, and zero when the first tunable component TC1 is operated in a short state.
[0021] The impedance corresponding to the second parasitic element 120 may be infinite when the second tunable component TC2 is operated in an open state, and zero when the second tunable component TC2 is operated in a short state.
[0022] In
[0023]
[0024]
[0025] As shown in
[0026] As shown in
[0027]
[0028] By means of the structure of
[0029]
[0030] As shown in
[0031] According to an embodiment, for example, each of the conductive paths CP41 and CP42 may be formed using a path of a circuit carrier such as (but not limited to) a flexible printed circuit (FPC) board. For example, each of the conductive paths CP41 and CP42 may pass through a solder ball or a suitable conductive pad.
[0032]
[0033] As shown in
[0034] As shown in
[0035] In
[0036]
[0037] As shown in
[0038]
[0039] Regarding
[0040] Regarding
[0041] In the antenna device 100 mentioned above, according to embodiments, each parasitic element may have a rectangular shape, a circular shape, a rhombus shape or a parallelogram shape.
[0042] According to an embodiment, each of the abovementioned antenna arrays (e.g., 155, 1155 and 1955) may be operated at a frequency higher than seven gigahertz (GHz). In other words, signals transmitted and/or received by the antenna array may be at a frequency higher than seven gigahertz. The millimeter wave antenna devices of
[0043]
[0044] The first antenna array 1155 may include mn first antennas and disposed in a first antenna area 1155a. The first parasitic element 1110 may be disposed beside a first side of the first antenna area 1155a. The second parasitic element 1120 may be disposed beside a second side of the first antenna area 1155a. The second antenna array 1955 may include pq second antennas and disposed in a second antenna area 1955a. The third parasitic element 1910 may be disposed beside a first side of the second antenna area 1955a. The fourth parasitic element 1920 may be disposed beside a second side of the second antenna area 1955a.
[0045] None of the first parasitic element 1110 and the second parasitic element 1120 may overlap with the first antenna area 1155a. None of the third parasitic element 1910 and the fourth parasitic element 1920 may overlap with the second antenna area 1955a. Each of the antennas of the antenna array 1155 may be insulated from each of the antennas of the antenna array 1955. m, n, p and q are positive integers, m+n>2, and p+q>2.
[0046] As shown in
[0047]
[0048] As shown in
[0049] In summary, by means of antenna devices disclosed by the embodiments, the antenna gain is greatly improved, and flexibility of design and application is provided.
[0050] Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.