Antenna for suppressing the gain of side lobes
11611153 · 2023-03-21
Assignee
Inventors
Cpc classification
H01Q1/3233
ELECTRICITY
H01Q21/22
ELECTRICITY
International classification
H01Q13/20
ELECTRICITY
H01Q21/22
ELECTRICITY
Abstract
An antenna for suppressing the gain of side lobes includes a substrate, tandem antenna units arranged on the substrate and each including a first feed line and radiating elements, and the width of the radiating elements decreasing gradually from the middle of the first feed line to the two ends; and a power divider disposed on the substrate and including a feeding port, a second feed line with middle connected to the feeding port, and transmission lines, connected to the second feed line respectively. The output powers of the transmission lines decrease gradually from the middle of the second feed line to the two ends, and the transmission lines are respectively connected to the first feed lines. Thereby, the present invention can effectively suppress the gain of the side lobe both in YZ plane and the XZ plane, and improve target detection.
Claims
1. An antenna for suppressing gain of side lobes, comprising: a substrate; a plurality of tandem antenna units, the tandem antenna units being arranged on the substrate at intervals, and each comprising a first feed line and a plurality of radiating elements; the radiating elements being arranged at intervals on the first feed line, and each radiating element being rectangular; widths of the radiating elements gradually decreasing from middle of the first feed line to two ends of the first feed line; and a power divider; the power divider being arranged on the substrate and comprising a feeding port, a second feed line and a plurality of transmission lines, each transmission line having a line width and being connected to a respective first feed line; middle of the second feed line being connected to the feeding port; the transmission lines being respectively connected to the second feed line and arranged at intervals; wherein the transmission lines form two output combinations from the middle of the second feed line to two ends of the second feed line, each output combination comprises at least four transmission lines including a first transmission line, a second transmission line, a third transmission line, and a fourth transmission line distributed from the middle of the second feed line to one end of the second feed line; wherein the second feed line comprises two first impedance distribution and impedance converters respectively connected to the two first transmission lines, two second impedance distribution and impedance converters respectively connected to the two second transmission lines, two third impedance distribution and impedance converters respectively connected to the two third transmission lines; wherein an output power p1 of the first transmission line and a sum of an output power p2 of the second transmission line, an output power p3 of the third transmission line and an output power p4 of the fourth transmission line are adjusted by adjusting a first ratio of a line width of the first impedance distribution and impedance converter to the line width of the first transmission line; wherein the output power p2 of the second transmission line and a sum of the output power p3 of the third transmission line and the output power p4 of the fourth transmission line are adjusted by adjusting a second ratio of a line width of the second impedance distribution and impedance converter to the line width of the second transmission line; wherein the output power p3 of the third transmission line and the output power p4 of the fourth transmission line are adjusted by adjusting a third ratio of a line width of the third impedance distribution and impedance converter to the line width of the third transmission line; and wherein relationship among p1, p2, p3, and p4 being p1:p2:p3:p4=1:0.75:0.39:0.24 is achieved by adjusting the first, second and third ratios.
2. The antenna for suppressing the gain of side lobes according to claim 1, wherein the radiating elements form two radiation combinations from the middle of the first feed line to the two ends of the first feed line, each radiation combination comprises at least six radiating elements, and widths of the at least six radiating elements of each radiation combination decrease gradually from the middle of the first feed line to one end of the first feed line.
3. The antenna for suppressing the gain of side lobes according to claim 2, wherein the at least six radiating elements of each radiation combination are sequentially defined as a first radiating element, a second radiating element, a third radiating element, a fourth radiating element, a fifth radiating element, and a sixth radiating element from the middle of the first feed line to one end of the first feed line; the widths of the first radiating element, the second radiating element, the third radiating element, the fourth radiating element, the fifth radiating element, and the sixth radiating element are respectively defined as W1, W2, W3, W4, W5 and W6, and a relationship among the widths is W1:W2:W3:W4:W5:W6=1.45:1.4:1.23 1.03:0.8:0.7.
4. The antenna for suppressing the gain of side lobes according to claim 2, wherein the at least six radiating elements of each radiation combination are sequentially defined as a first radiating element, a second radiating element, a third radiating element, a fourth radiating element, a fifth radiating element, and a sixth radiating element from the middle of the first feed line to one end of the first feed line; the widths of the first radiating elements are equal, the widths of the second radiating elements are equal, the widths of the third radiating elements are equal, the widths of the fourth radiating elements are equal, the widths of the fifth radiating elements are equal, the widths of the sixth radiating elements are equal, and lengths of all the radiating elements of each tandem antenna unit are equal.
5. An antenna for suppressing gain of side lobes, comprising: a substrate; a plurality of tandem antenna units, the tandem antenna units being arranged on the substrate at intervals, and each comprising a first feed line and a plurality of radiating elements; the radiating elements being arranged at intervals on the first feed line, and each radiating element being rectangular; the radiating elements forming two radiation combinations from middle of the first feed line to two ends of the first feed line, each radiation combination comprising at least six radiating elements, the at least six radiating elements of each radiation combination being sequentially defined as a first radiating element, a second radiating element, a third radiating element, a fourth radiating element, a fifth radiating element, and a sixth radiating element from the middle of the first feed line to one end of the first feed line; in each radiation combination, widths of the first radiating element, the second radiating element, the third radiating element, the fourth radiating element, the fifth radiating element, and the sixth radiating element being respectively defined as W1, W2, W3, W4, W5 and W6, and a relationship among the widths is W1:W2:W3:W4:W5:W6=1.45:1.4:1.23:1.03:0.8:0.7; and a power divider; the power divider being arranged on the substrate and comprising a feeding port, a second feed line and a plurality of transmission lines, each transmission line having a line width and being connected to a respective first feed line; middle of the second feed line being connected to the feeding port; the transmission lines being respectively connected to the second feed line and arranged at intervals; wherein the transmission lines form two output combinations from the middle of the second feed line to two ends of the second feed line, each output combination comprising at least four transmission lines, the at least four transmission lines of each output combination being sequentially defined as a first transmission line, a second transmission line, a third transmission line, and a fourth transmission line from the middle of the second feed line to one end of the second feed line; wherein the second feed line comprises two first impedance distribution and impedance converters respectively connected to the two first transmission lines, two second impedance distribution and impedance converters respectively connected to the two second transmission lines, two third impedance distribution and impedance converters respectively connected to the two third transmission lines; wherein an output power p1 of the first transmission line and a sum of an output power p2 of the second transmission line, an output power p3 of the third transmission line and a n output power p4 of the fourth transmission line are adjusted by adjusting a first ratio of a line width of the first impedance distribution and impedance converter to the line width of the first transmission line; wherein the output power p2 of the second transmission line and a sum of the output power p3 of the third transmission line and the output power p4 of the fourth transmission line are adjusted by adjusting a second ratio of a line width of the second impedance distribution and impedance converter to the line width of the second transmission line; wherein the output power p3 of the third transmission line and the output power p4 of the fourth transmission line are adjusted by adjusting a third ratio of a line width of the third impedance distribution and impedance converter to the line width of the third transmission line; and wherein a relationship among p1, p2, p3, and p4 being p1:p2:p3:p4=1:0.75:0.39:0.24 is achieved by adjusting the first, second and third ratios.
6. The antenna for suppressing the gain of side lobes according to claim 5, wherein the widths of the first radiating elements are equal, the widths of the second radiating elements are equal, the widths of the third radiating elements are equal, the widths of the fourth radiating elements are equal, the widths of the fifth radiating elements are equal, the widths of the sixth radiating elements are equal, and lengths of all the radiating elements of each tandem antenna unit are equal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be apparent to those skilled in the art by reading the following detailed description of a preferred embodiment thereof, with reference to the attached drawings, in which:
(2)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
(11) Referring to
(12) The two surfaces of the substrate 10 in a Z-axis direction are respectively defined as a first surface 11 and a second surface (not shown), and the two sides of the substrate 10 in a Y-axis direction are respectively defined as a first side 13 and a second side 14, and the two sides of the substrate 10 in an X-axis direction are defined as a third side 15 and a fourth side 16 respectively. More specifically, when the antenna for suppressing the gain of side lobes of the present invention is mounted on a sensor (not shown), the first surface 11 and the second surface of the substrate 10 are respectively facing the directions of the front and back sides of the sensor, the first side 13 and the second side 14 of the substrate 10 are respectively facing the directions of the bottom and top of the sensor, and the third side 15 and the fourth side 16 of the substrate 10 are respectively facing the directions of the left and right sides of the sensor. The substrate 10 is a composite material containing Teflon. However, the material of the substrate 10 is not limited to the above, and any material of the substrate 10 suitable as an antenna is suitable for application in the present invention.
(13) The tandem antenna units 20 are arranged on the first surface 11 of the substrate 10 at intervals. The power divider 30 is disposed on the first surface 11 of the substrate 10.
(14) Referring to
(15) Referring to
(16) As shown in
(17) As shown in
(18) Generally speaking, the unit of width of the radiating elements 22 is mm. Therefore, in a preferred embodiment, the optimal width W1 of the first radiating elements 221 is actually 1.45 mm, the optimal width W2 of the second radiating elements 222 is actually 1.4 mm, the optimal width W3 of the third radiating elements 223 is actually 1.23 mm, the optimal width W4 of the fourth radiating elements 224 is actually 1.03 mm, the optimal width W5 of the fifth radiating elements 225 is actually 0.8 mm, and the optimal width W6 of the sixth radiating elements 226 is actually 0.7 mm.
(19) As shown in
(20) Referring to
(21) More specifically, as shown in
(22) By adjusting the first line width ratio between the line width D1 of each first impedance distribution and impedance converter 3211 and the line width D2 of each first transmission line 331, the output power of the first transmission line 331 and the sum of the output power of the second transmission line 332 and the third transmission line 333 and the fourth transmission line 334 can be adjusted. By adjusting the second line width ratio of the line width D3 of each second impedance distribution and impedance converter 3212 to the line width D4 of each second transmission line 332, the output power of the second transmission line 332 and the sum of the output power of the third transmission line 333 and the fourth transmission line 334 can be adjusted. By adjusting the third line width ratio of the line width D5 of each third impedance distribution and impedance converter 3213 to the line width D6 of each third transmission line 333, the output power of the third transmission line 333 and the output power of the fourth transmission line 334 can be adjusted. According to the derivation of the S-parameter formula to evaluate the power divider 30, S21=10*log(p2/p1), S31=10*log(p3/p1), S41=10*log(p4/p1), S51=10*log(p5/p1), wherein p1 represents the input power of the feeding port 31, p2 represents the output power of the first transmission line 331, p3 represents the output power of the second transmission line 332, p4 represents the output power of the third transmission line 333, and p5 represents the output of the fourth transmission line 334 power. Assume that p1=1, p2=10{circumflex over ( )}(S21/10)=0.159, p3=10{circumflex over ( )}(S31/10)=0.120, p4=10{circumflex over ( )}(S41/10)=0.062, p5=10{circumflex over ( )}(S51/10)=0.039. Therefore, according to the design of S21, S31, S41, S51, the following can be obtained, p2:p3:p4:p5=1:0.75:0.39:0.24 by adjusting the first, second and third line width ratios. Hereinafter, the actual application of the antenna for suppressing the gain of the side lobes of the present invention installed in the sensor will be further explained.
(23) First, the current enters the second feed line 32 through the feeding port 31. Then, the current passing through the second feed line 32 is distributed to the transmission lines 33 with different output powers according to the length of the flow path and by adjusting the line width ratio of the impedance distribution and impedance converter 321 and the connected transmission line 33. The flow path length refers to the length of the current from the feeding port 31 through the impedance distribution and impedance converters 321 of the second feed line 32 to the transmission lines 33, and the line width ratio refers to the ratio of the line width of the impedance distribution and impedance converter 321 to the line width of the transmission lines 33. Then, the current passing through the transmission lines 33 is output to the first feed lines 21. Furthermore, the current passing through the first feed lines 21 is distributed to the radiating elements 22 according to the width ratio of the radiating elements 22. Finally, the radiating elements 22 generate different resonance currents according to different width ratios, leading to generating radiant energy of different intensities.
(24) The sensor equipped with the antenna for suppressing the gain of the side lobes of the present invention can sense the distance and speed of the target using electromagnetic waves. The sensor can be a vehicle radar, so the antenna for suppressing the gain of the side lobes of the present invention uses the principle of frequency modulated continuous wave (FMCW) to detect the distance and speed of the target.
(25) The following compares the radiation patterns of the antenna for suppressing the gain of the side lobes of the present invention and the conventional antenna, in conjunction with the drawings.
(26) Refer to
(27) As shown in
(28) Also as shown in
(29) Also as shown in
(30) As seen from the comparison result of
(31) Refer to
(32) As shown in
(33) Also as shown in
(34) Also as shown in
(35) As seen from the comparison result of
(36) In summary, the antenna for suppressing the gain of side lobes according to the present invention can effectively suppress both the gain of side lobes in the YZ plane (i.e., vertical surface) and the gain of the side lobes in the XZ plane (i.e., azimuth plane) to improve the resolution of detecting targets.
(37) Furthermore, the power divider 30 only needs a single feeding port 31 to integrate a plurality of serially tandem antenna units, which has a simple structure and low manufacturing cost.
(38) Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.