CN112467388B - Design method of sparsely arrayed multi-frequency composite aperture array antenna - Google Patents

Design method of sparsely arrayed multi-frequency composite aperture array antenna Download PDF

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CN112467388B
CN112467388B CN202011256492.2A CN202011256492A CN112467388B CN 112467388 B CN112467388 B CN 112467388B CN 202011256492 A CN202011256492 A CN 202011256492A CN 112467388 B CN112467388 B CN 112467388B
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frequency band
frequency
array
directional diagram
sparse
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CN112467388A (en
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袁野
袁向秋
郑建华
辛敏振
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Chengdu Raxio Shengtong Electronic Technology Co ltd
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/20Design optimisation, verification or simulation
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/0087Apparatus or processes specially adapted for manufacturing antenna arrays
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q5/00Arrangements for simultaneous operation of antennas on two or more different wavebands, e.g. dual-band or multi-band arrangements
    • H01Q5/20Arrangements for simultaneous operation of antennas on two or more different wavebands, e.g. dual-band or multi-band arrangements characterised by the operating wavebands
    • H01Q5/28Arrangements for establishing polarisation or beam width over two or more different wavebands

Abstract

The invention discloses a design method of a sparsely arrayed multi-frequency composite aperture array antenna, which comprises the following steps: s1, completing array distribution of a frequency band 1 in a specified antenna aperture range; s2, analyzing the coupling relation among the frequency bands; s3, sequentially locking available physical spaces from the frequency band 2 to the frequency band n; s4, setting an array directional diagram index of each frequency band; s5, setting the sparse ratio of each frequency band; s6, searching sparse positions of all frequency bands and synthesizing an array factor directional diagram; and S7, judging whether the directional diagram index redundancy of each frequency band is met, if so, determining the sparse array arrangement position, otherwise, returning to the step S5, and resetting the sparse ratio of each frequency band. The invention can ensure that the directional diagram index of the low frequency band is not influenced while finishing the directional diagram index such as the beam width, the side lobe, the grating lobe and the like of the high frequency band, can efficiently finish the sparse array arrangement of the multi-band antenna, and can achieve the high frequency unit sparse ratio of 25 percent.

Description

Design method of sparsely arrayed multi-frequency composite aperture array antenna
Technical Field
The invention relates to the field of sparse array of multi-band antennas, in particular to a design method of a sparse array multi-band composite aperture array antenna.
Background
In recent years, along with the expansion of various phased array radars to higher and higher frequency millimeter wave frequency bands, great challenges are brought to the dimensional accuracy, density and complexity of each module in the radar. In practical engineering, in order to ensure the spatial resolution and the scanning side lobe level of a phased array radar, a plurality of uniformly distributed antenna array elements and channels are generally required, but the uniform arrangement of antennas in a millimeter wave frequency band brings many limitations to the manufacturability and cost of the whole machine. Therefore, the manufacturing difficulty and cost of the radar can be effectively reduced by adopting the technology of sparsely arranging the antenna arrays.
The sparse array arrangement of the antennas refers to sparse arrangement of the position relationship among the antenna array elements in a specified antenna aperture range, and the indexes of beam width, side lobe level and the like of an antenna array are realized by using fewer antenna array elements, and usually realized by taking out part of the antenna array elements in a uniformly distributed full array.
The conventional sparse array calculation method is only designed for an array of a single frequency band and is not applicable to the application of dual-frequency or more-frequency-band common-interface surface compounding. In the design of a dual-frequency or multi-frequency coplanar array antenna, the unit parts of each frequency band are or are completely positioned in the same horizontal plane, if overlapping or shielding is generated, the antenna can not work normally, if the distance is too close, indexes such as directional diagram secondary lobes, beam width and the like are seriously deteriorated due to the coupling effect, in addition, the physical dimensions of feeding structures of all units, T/R components and other antenna unit lower parts limit the distance of the antenna units, so that the actual antenna unit arrangement generates a large amount of space position constraint conditions, and the calculation can not be carried out according to the idea of uniformly and fully arranging the array for extraction; on the other hand, according to objective physics rules, the physical size of the low-frequency unit is larger than that of the high-frequency unit, so that the low-frequency unit occupies more space of the array surface after being arranged, and the antenna units with higher frequency can only be distributed in the rest space at positions which do not influence or have smaller influence with the peripheral low-frequency unit. Therefore, the dual-frequency or multi-frequency composite orofacial array antenna design needs to perform high-sparsity ratio pattern synthesis under the premise of a large amount of position constraint, and the directional pattern indexes of the low frequency band are not influenced while the directional pattern indexes of the high frequency band such as beam width, side lobes, grating lobes and the like are completed.
Disclosure of Invention
Aiming at the problems, the invention provides a design method of a sparsely arrayed multi-frequency composite aperture array antenna, which can ensure that the directional diagram index of the low frequency band is not influenced while completing the directional diagram index of the high frequency band such as beam width, side lobe, grating lobe and the like, and can efficiently complete the sparsely arrayed multi-frequency band antenna.
The technical scheme of the invention is as follows:
a design method of a sparsely arrayed multi-frequency composite aperture array antenna is provided, the number of frequency bands in a multi-frequency antenna array is set to be n, the sequence of the frequency bands from low to high is from the frequency band 1 to the frequency band n, wherein n is a positive integer greater than or equal to 2, and the method comprises the following steps:
s1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
s2, analyzing the coupling relation among the frequency bands;
s3, sequentially locking available physical spaces from the frequency band 2 to the frequency band n;
s4, setting an array directional diagram index of each frequency band;
s5, setting the sparsity ratio of each frequency band;
s6, searching sparse positions of all frequency bands and synthesizing an array factor directional diagram;
s7, judging whether the index redundancy of the directional diagram of each frequency band is met, if so, entering the step S8, otherwise, returning to the step S5, and resetting the sparsity ratio of each frequency band;
s8, determining the sparse array arrangement position; wherein the content of the first and second substances,
in the step S2, each frequency band refers to a frequency band 1 to a frequency band n;
in step S4-step S7, each frequency band refers to a frequency band from 2 to n.
In a further technical scheme, when n is equal to 2, the method comprises the following steps:
a1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
a2, analyzing the coupling relation of the double-frequency array elements between the frequency band 1 and the frequency band 2;
a3, locking an available physical space of the frequency band 2, namely, reserving the actual available space of the frequency band 2 after the unit of the frequency band 1 is arranged;
a4, setting an array directional diagram index of the frequency band 2;
a5, setting the sparsity ratio of the frequency band 2;
a6, searching the sparse position of the frequency band 2 and synthesizing an array factor directional diagram;
a7, judging whether the index redundancy of the array factor directional diagram of the frequency band 2 is met, if so, entering the step a7, and if not, returning to the step a6;
a8, performing double-frequency electromagnetic simulation calculation according to the latest position of the frequency band 2;
a9, judging whether the directional diagram index redundancy of the frequency band 1 and the frequency band 2 is met, if so, entering a step a10, otherwise, returning to the step a5, and resetting the sparsity ratio of the frequency band 2;
and a10, determining the sparse array arrangement position.
In a further technical scheme, in the step a2, when the double-frequency array element coupling relation between the frequency band 1 and the frequency band 2 is analyzed, three-dimensional electromagnetic simulation software is adopted for simulation calculation.
The invention has the beneficial effects that:
by adopting the design method of the sparsely arrayed multi-frequency composite aperture array antenna provided by the invention, the directional diagram indexes such as the beam width, the side lobe, the grating lobe and the like of a high frequency band are completed, meanwhile, the directional diagram indexes of a low frequency band can be ensured not to be influenced, the sparsely arrayed multi-frequency band antenna can be efficiently completed, and the sparsity ratio of a high frequency unit can reach 25%.
Drawings
Fig. 1 is a flowchart of a design method of a sparsely populated dual-frequency composite aperture array antenna according to an embodiment of the present invention;
fig. 2 is a sparse array dual-frequency phased array element distribution diagram according to the embodiment of the invention.
Detailed Description
The embodiments of the present invention will be further described with reference to the accompanying drawings.
The embodiment is as follows:
a design method of a sparsely arrayed multi-frequency composite array antenna sets the number of frequency bands in a multi-frequency antenna array as n, the sequence of each frequency band from low to high is from frequency band 1 to frequency band n, wherein n is a positive integer greater than or equal to 2, and comprises the following steps:
s1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
s2, analyzing the coupling relation among all frequency bands;
s3, sequentially locking available physical spaces from the frequency band 2 to the frequency band n;
s4, setting an array directional diagram index of each frequency band;
s5, setting the sparsity ratio of each frequency band;
s6, searching sparse positions of all frequency bands and synthesizing an array factor directional diagram;
s7, judging whether the directional diagram index redundancy of each frequency band is met, if so, entering the step S8, otherwise, returning to the step S5, and resetting the sparsity ratio of each frequency band;
s8, determining the sparse array arrangement position; wherein the content of the first and second substances,
in the step S2, each frequency band refers to a frequency band 1 to a frequency band n;
in step S4-step S7, each frequency band refers to a frequency band from 2 to n.
In another embodiment, as shown in fig. 1, a design method of a sparsely-arranged dual-frequency composite aperture array antenna, that is, n is equal to 2, includes the following steps:
a1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
a2, analyzing the double-frequency array element coupling relation between the frequency band 1 and the frequency band 2;
a3, locking an available physical space of the frequency band 2, namely, reserving the actual available space of the frequency band 2 for fixing after the unit of the frequency band 1 is arranged;
a4, setting an array directional diagram index of the frequency band 2;
a5, setting the sparsity ratio of the frequency band 2;
a6, searching the sparse position of the frequency band 2 and synthesizing an array factor directional diagram;
a7, judging whether the index redundancy of the array factor directional diagram of the frequency band 2 is met, if so, entering the step a7, and if not, returning to the step a6;
a8, performing double-frequency electromagnetic simulation calculation according to the latest position of the frequency band 2;
a9, judging whether the directional diagram index redundancy of the frequency band 1 and the frequency band 2 is met, if so, entering a step a10, otherwise, returning to the step a5, and resetting the sparsity ratio of the frequency band 2;
and a10, determining the sparse array arrangement position, wherein as shown in fig. 2, a small square in the figure is a high-frequency unit, and a large square in the figure is a low-frequency unit.
In this embodiment, especially in step a2, when the dual-frequency array element coupling relationship between the frequency band 1 and the frequency band 2 is analyzed, three-dimensional electromagnetic simulation software is used for performing simulation calculation.
The above embodiments only express specific embodiments of the present invention, and the description is specific and detailed, but not to be understood as limiting the scope of the present invention. It should be noted that various changes and modifications can be made by those skilled in the art without departing from the spirit of the invention, and these changes and modifications are all within the scope of the invention.

Claims (3)

1. A design method of a sparsely arrayed multi-frequency composite array antenna is characterized in that the number of frequency bands in a multi-frequency antenna array is set to be n, the frequency bands are from 1 to n in sequence from low to high, wherein n is a positive integer greater than or equal to 2, and the design method comprises the following steps:
s1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
s2, analyzing the coupling relation among the frequency bands;
s3, sequentially locking available physical spaces from the frequency band 2 to the frequency band n;
s4, setting an array directional diagram index of each frequency band;
s5, setting the sparse ratio of each frequency band;
s6, searching sparse positions of all frequency bands and synthesizing an array factor directional diagram;
s7, judging whether the index redundancy of the directional diagram of each frequency band is met, if so, entering the step S8, otherwise, returning to the step S5, and resetting the sparsity ratio of each frequency band;
s8, determining the sparse array arrangement position; wherein the content of the first and second substances,
in the step S2, each frequency band refers to a frequency band 1 to a frequency band n;
in step S4-step S7, each frequency band refers to a frequency band from 2 to n.
2. The design method of the sparsely populated multi-frequency composite aperture array antenna according to claim 1, wherein when n is equal to 2, the method comprises the steps of:
a1, completing array distribution of a frequency band 1 in a specified antenna aperture range;
a2, analyzing the double-frequency array element coupling relation between the frequency band 1 and the frequency band 2;
a3, locking an available physical space of the frequency band 2;
a4, setting an array directional diagram index of the frequency band 2;
a5, setting the sparsity ratio of the frequency band 2;
a6, searching the sparse position of the frequency band 2 and synthesizing an array factor directional diagram;
a7, judging whether the index redundancy of the array factor directional diagram of the frequency band 2 is met, if so, entering the step a7, and if not, returning to the step a6;
a8, performing double-frequency electromagnetic simulation calculation according to the latest position of the frequency band 2;
a9, judging whether the directional diagram index redundancy of the frequency band 1 and the frequency band 2 is met, if so, entering a step a10, otherwise, returning to the step a5, and resetting the sparsity ratio of the frequency band 2;
and a10, determining the sparse array arrangement position.
3. The method for designing the sparsely populated multi-frequency composite orofacial array antenna according to claim 2, wherein in step a2, when the dual-frequency array element coupling relationship between the frequency band 1 and the frequency band 2 is analyzed, three-dimensional electromagnetic simulation software is used for simulation calculation.
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CN113258306B (en) * 2021-06-29 2021-11-26 成都锐芯盛通电子科技有限公司 Ku/Ka dual-frequency composite phased-array antenna radiation array and design method thereof
CN113437534A (en) * 2021-07-02 2021-09-24 成都锐芯盛通电子科技有限公司 Ku/Ka dual-frequency dual-polarization phased-array antenna radiation array

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106099395A (en) * 2016-08-11 2016-11-09 成都雷电微力科技有限公司 A kind of multifrequency Shared aperture is combined phased array antenna structure
CN106785488A (en) * 2017-01-17 2017-05-31 中国科学院国家空间科学中心 The method for designing of the interference type micro-wave radiometer antenna array based on modularization submatrix
CN107820682A (en) * 2015-04-28 2018-03-20 华为技术有限公司 Method and node in cordless communication network
CN111066203A (en) * 2017-09-12 2020-04-24 华为技术有限公司 Multi-band antenna array

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130154899A1 (en) * 2011-12-19 2013-06-20 William Lynn Lewis, III Aperiodic distribution of aperture elements in a dual beam array
US10847880B2 (en) * 2016-12-14 2020-11-24 Raytheon Company Antenna element spacing for a dual frequency electronically scanned array and related techniques

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107820682A (en) * 2015-04-28 2018-03-20 华为技术有限公司 Method and node in cordless communication network
CN106099395A (en) * 2016-08-11 2016-11-09 成都雷电微力科技有限公司 A kind of multifrequency Shared aperture is combined phased array antenna structure
CN106785488A (en) * 2017-01-17 2017-05-31 中国科学院国家空间科学中心 The method for designing of the interference type micro-wave radiometer antenna array based on modularization submatrix
CN111066203A (en) * 2017-09-12 2020-04-24 华为技术有限公司 Multi-band antenna array

Non-Patent Citations (3)

* Cited by examiner, † Cited by third party
Title
"Thinning Satellite Communication Antenna Arrays for Dual Band Operation";Rotem Gal et al.;《2018 IEEE International Conference on the Science of Electrical Engineering in Israel (ICSEE)》;20190221;全文 *
"大型稀疏阵列天线综合与共口径阵列天线设计研究";谷立;《中国博士学位论文全文数据库(电子期刊)》;20200415;全文 *
"平面紧凑型多功能相控阵天线阵面关键技术研究";丁卓富;《中国博士学位论文全文数据库(电子期刊)》;20190315;全文 *

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