WO2020024681A1 - 一种超宽带mimo天线及终端 - Google Patents

一种超宽带mimo天线及终端 Download PDF

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Publication number
WO2020024681A1
WO2020024681A1 PCT/CN2019/088280 CN2019088280W WO2020024681A1 WO 2020024681 A1 WO2020024681 A1 WO 2020024681A1 CN 2019088280 W CN2019088280 W CN 2019088280W WO 2020024681 A1 WO2020024681 A1 WO 2020024681A1
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Prior art keywords
antenna
ultra
ground
wideband mimo
pin
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PCT/CN2019/088280
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English (en)
French (fr)
Inventor
韩洪娟
岳月华
刘见传
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瑞声声学科技(深圳)有限公司
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Publication of WO2020024681A1 publication Critical patent/WO2020024681A1/zh

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/36Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/28Combinations of substantially independent non-interacting antenna units or systems
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • H01Q1/22Supports; Mounting means by structural association with other equipment or articles
    • H01Q1/24Supports; Mounting means by structural association with other equipment or articles with receiving set
    • H01Q1/241Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM
    • H01Q1/246Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for base stations
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/48Earthing means; Earth screens; Counterpoises
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/50Structural association of antennas with earthing switches, lead-in devices or lightning protectors
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/52Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure
    • H01Q1/521Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure reducing the coupling between adjacent antennas
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/06Arrays of individually energised antenna units similarly polarised and spaced apart
    • H01Q21/061Two dimensional planar arrays

Definitions

  • the present invention relates to the field of wireless communication technologies, and in particular, to an ultra-wideband MIMO antenna and terminal.
  • 5G-related frequency bands have been basically determined, and the Ministry of Industry and Information Technology of China has issued a notice on the use of the 3300-3600MHz and 4800-5000MHz bands in the fifth generation mobile communication system, that is, the 5G sub 6GHz band in China
  • the above frequency bands are used.
  • 5G ultra-dense networking will be the main technical means to meet the demand for mobile data traffic in 2020 and in the future.
  • the typical application scenarios of ultra-dense networking include offices, stadiums, subways, underground parking lots, and other areas.
  • the 5G ultra-dense networking makes the number of small indoor base stations increase significantly.
  • 5G communication systems have higher requirements for data transmission rates.
  • One of the means to increase the data transmission rate is to further increase the number of antennas included in a single base station on the base station side.
  • MIMO Multiple-Input Multiple-Output
  • 5G antennas The difficulty of MIMO antenna design is how to integrate multiple antenna units in a limited space and obtain higher isolation. Most of the existing ultra-wideband MIMO antenna designs have a narrow bandwidth, low isolation, and large size.
  • An object of the present invention is to provide an ultra-wideband MIMO antenna that is applied to a 5G mobile communication system and has a simple structure, a small size, and good ultra-wideband, antenna performance, and isolation performance.
  • the ultra-wideband MIMO antenna provided by the present invention includes a PCB board and four antenna components arranged on the PCB board and having the same structure and mirror symmetry with each other.
  • Each of the antenna components includes a radiating portion and a radiating portion.
  • the PCB includes system ground and circuit area, the orthographic projection of the antenna assembly on the PCB falls within the system ground;
  • the radiating part is spaced parallel to the PCB Provided;
  • the connecting portion includes a first ground pin, a second ground pin, and an antenna feed point pin extending from the radiating portion toward the PCB board and spaced apart from each other, the first ground pin and the A second ground pin is connected to the system ground, and the antenna feed pin is connected to an external power source.
  • connection portions extend from a peripheral edge of the radiation portion toward a direction close to the PCB.
  • the four antenna components are located in a square area, and the four antenna components are located at four top corners of the square area.
  • the first ground pin and the second ground pin of each of the antenna components are symmetrically arranged with respect to a diagonal line of the square area, and the antenna feed pin is arranged at a diagonal of the square area on-line.
  • the first ground pin, the second ground pin, and the antenna feed pin are metal shrapnel with an L-shaped structure, and each includes a vertical portion provided perpendicular to the radiation portion and a vertical portion connected to the radiation portion.
  • a horizontal portion connected to a vertical portion, the horizontal portions of the first ground foot and the second ground foot are welded and fixed to the system ground, and the horizontal portion of the antenna feed point foot is parallel to the system ground and passes through A plastic support is fixedly connected to the system ground.
  • the radiating portion is a regular octagon or a non-octagonal structure.
  • the radiation part and the connection part are integrally provided.
  • the antenna assembly is formed by punching or bending a copper alloy or other metal sheet.
  • the working frequency band of the ultra-wideband MIMO antenna includes 3300-5000 MHz.
  • the present invention also provides a terminal, which includes the ultra-wideband MIMO antenna described above.
  • the ultra-wideband MIMO antenna and terminal provided by the present invention have the following beneficial effects:
  • the working frequency band of the ultra-wideband MIMO antenna includes 3300-5000MHz, which meets the domestic 5G sub6GHz frequency band requirements. Moreover, the antenna voltage standing wave ratio (VSWR) is less than 1.5, and the antenna efficiency is more than 90%.
  • the isolation between antenna components is better than -20dB, which has good ultra-wideband, antenna performance and isolation performance;
  • the single antenna component constituting the ultra-wideband MIMO antenna has a small size, which is beneficial to the layout of the antenna by the small base station, so that the small base station can support 4T4R;
  • the ultra-wideband MIMO antenna has a simple structure, and a single antenna component can be stamped or bent from a copper alloy or other metal sheet, which is simple to manufacture, low in cost, and easy to mass produce.
  • FIG. 1 is a schematic structural diagram of an ultra-wideband MIMO antenna provided by the present invention
  • FIG. 2 is a schematic structural diagram of a single antenna component in the ultra-wideband MIMO antenna shown in FIG. 1;
  • FIG. 3 is a schematic plan view of a single antenna component shown in FIG. 2;
  • FIG. 4 is a simulation diagram of a voltage standing wave ratio of each antenna component in an operating frequency band in an ultra-wideband MIMO antenna provided by the present invention
  • 5 is a simulation diagram of antenna efficiency of each antenna component in an operating frequency band in an ultra-wideband MIMO antenna provided by the present invention
  • FIG. 6 is a simulation diagram of isolation of each antenna component in an operating frequency band in an ultra-wideband MIMO antenna provided by the present invention.
  • an embodiment of the present invention provides an ultra-wideband MIMO antenna 100.
  • the ultra-wideband MIMO antenna 100 can be applied to a terminal such as a small base station, which is not limited in the present invention.
  • the ultra-wideband MIMO antenna 100 provided by the embodiment of the present invention includes a PCB board 20 and four antenna components 2-5 having the same structure and mirror symmetry with each other.
  • the PCB board 20 includes a system ground 22 and a circuit area 21.
  • the system ground 22 is a metal layer laid on the PCB board 20.
  • the four antenna components 2-5 are disposed on the system ground 22 of the PCB board 20, and the orthographic projections of the four antenna components 2-5 on the PCB board 20 fall on the system ground 22 Inside.
  • the four antenna components 2-5 are located in a square area of the PCB board 20, and the four antenna components 2-5 are located at four top corners of the square area.
  • Each of the antenna assemblies includes a radiation portion 11 and a connection portion 10 that feeds the radiation portion 11.
  • the radiating portion 11 is disposed parallel to the PCB board 20 at intervals.
  • the distance between the radiation portion 11 and the PCB board 20 does not exceed 9.2 mm.
  • the radiating portion 11 is a regular octagon or a non-octagonal structure.
  • the length of each side can be adjusted according to actual conditions to adjust the antenna frequency offset and the voltage standing wave ratio.
  • the connecting portion 10 includes a first ground pin 101, a second ground pin 102, and an antenna feeding point pin 103 extending from the periphery of the radiating portion 11 toward the PCB board 20 and spaced apart from each other.
  • the first ground Pin 101 and the second ground pin 102 are connected to the system ground 22, and the antenna feed point pin 103 is connected to an external power source.
  • the antenna component adopts a one-feed and two-ground structure, which can meet the requirements of the radio frequency performance of the antenna and the requirements of the structural strength.
  • the first ground pin 101 and the second ground pin 102 of each of the antenna components are symmetrically arranged with respect to a diagonal line of the square area, and the antenna feed pin 103 is arranged in the square area On the diagonal.
  • an included angle between the first ground leg 101 and the second ground leg 102 is 90 °.
  • the setting positions of the first ground pin 101, the second ground pin 102, and the antenna feeding point pin 103 can be adjusted according to specific conditions, and are not limited to the positions shown in this embodiment.
  • the first ground pin 101, the second ground pin 102, and the antenna feed pin 103 are all metal domes with an L-shaped structure, and each includes a vertical The straight portion a and the horizontal portion b connected to the vertical portion a.
  • the horizontal portions of the first ground pin 101 and the second ground pin 102 are fixed to the system ground 22 by welding, and the antenna feed point pin
  • the horizontal portion of 103 is spaced parallel to the system ground 22 and is fixedly connected to the system ground 22 through a plastic support 12, which further increases structural stability.
  • the space occupied by a single antenna component is small, and the space occupied by it is also a square area.
  • the size is usually 30mm * 30mm.
  • the space occupied by a single antenna component can be determined according to the use of the ultra-wideband MIMO antenna. The size of the terminal is adjusted.
  • the radiating portion 11 and the connecting portion 10 of the antenna assembly are integrally provided to reduce unnecessary welding processes and enhance antenna reliability.
  • the antenna assembly is stamped or bent by using a copper alloy or other metal sheet, which is convenient for mass production.
  • the working frequency band of the ultra-wideband MIMO antenna 100 includes 3300-5000MHz, covering domestic 5G In the sub6GHz band, the voltage standing wave ratio is less than 1.5.
  • FIG. 4 shows the voltage standing wave ratio of each antenna component in the working frequency band in the ultra-wideband MIMO antenna provided by the present invention.
  • the results show that the voltage standing wave ratio of the antenna component 2-5 in the entire working frequency band (3300-5000MHz) Less than 1.5.
  • FIG. 5 is an antenna efficiency chart of each antenna component in the working frequency band of the ultra-wideband MIMO antenna provided by the present invention. The results show that the antenna components 2-5 are in the entire working frequency band (3300-5000MHz) and the antenna efficiency is above 90%.
  • the ultra-wideband MIMO antenna has good antenna performance.
  • FIG. 6 is an isolation diagram of each antenna component in the working frequency band of the ultra-wideband MIMO antenna provided by the present invention.
  • the results show that the isolation between any two antenna components in the entire working frequency band (3300-5000MHz) of the antenna component 2-5 The degree is better than -20dB, indicating that the antenna components in the ultra-wideband MIMO antenna have excellent isolation performance.
  • the present invention also provides a terminal.
  • the terminal includes the technical features of the ultra-wideband MIMO antenna described above.
  • the application of the ultra-wideband MIMO antenna also has the technical effects described above.
  • the terminal is a small base station, and the small base station supports 4T4R.
  • the ultra-wideband MIMO antenna and terminal provided by the present invention have the following beneficial effects:
  • the working frequency band of the ultra-wideband MIMO antenna includes 3300-5000MHz, which meets the domestic 5G sub6GHz frequency band requirements. Moreover, the antenna voltage standing wave ratio (VSWR) is less than 1.5, and the antenna efficiency is more than 90%.
  • the isolation between antenna components is better than -20dB, which has good ultra-wideband, antenna performance and isolation performance;
  • the single antenna component constituting the ultra-wideband MIMO antenna has a small size, which is beneficial to the layout of the antenna by the small base station, so that the small base station can support 4T4R;
  • the ultra-wideband MIMO antenna has a simple structure, and a single antenna component can be stamped or bent from a copper alloy or other metal sheet, which is simple to manufacture, low in cost, and easy to mass produce.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Support Of Aerials (AREA)

Abstract

本发明提供了一种超宽带MIMO天线,其包括PCB板和设置于所述PCB板上的结构相同且互为镜像对称的四个天线组件,每一所述天线组件包括辐射部和为所述辐射部馈电的连接部;所述PCB板,包括系统地和电路区,所述天线组件在所述PCB板上的正投影落于所述系统地内;所述辐射部,与所述PCB板平行间隔设置;所述连接部,包括分别自所述辐射部向靠近所述PCB板方向延伸并间隔设置的第一接地脚、第二接地脚和天线馈点脚,所述第一接地脚和所述第二接地脚与所述系统地连接,所述天线馈点脚与外部电源连接。本发明还提供一种终端。与相关技术相比,本发明提供的超宽带MIMO天线及终端具有良好的超宽带、天线性能和隔离性能,结构简单,制作简单,成本低,易于批量生产。

Description

一种超宽带MIMO天线及终端 技术领域
本发明涉及无线通信技术领域,尤其涉及一种超宽带MIMO天线及终端。
背景技术
随着5G标准的讨论逐步进行,5G相关频段已基本确定,中国工业和信息化部已发布了关于第五代移动通信系统使用3300-3600MHz以及4800-5000MHz频段的通知,即中国5G sub 6GHz频段会使用上述频段。
5G超密集组网将是满足2020年以及未来移动数据流量需求的主要技术手段。超密集组网的典型应用场景包括办公室、体育场、地铁、地下停车场等区域,5G超密集组网使得室内小基站数量需求会大幅增加。同时5G通信系统对数据传输速率有更高的要求,其中一个提高数据传输速率的手段是将基站端单个基站包含的天线数量进一步增加。
多输入多输出(MIMO: Multiple-Input Multiple-Output)技术是5G天线的核心技术,MIMO天线设计的难点在于如何实现在有限的空间里集成多个天线单元,并且获得较高的隔离度。目前已有的超宽带MIMO天线设计大部分带宽都很窄,隔离度也不高,尺寸比较大。
因此,实有必要提供一种新的超宽带MIMO天线解决上述问题。
技术问题
本发明的目的在于提供一种应用于5G移动通信系统且结构简单、体积小、具有良好的超宽带、天线性能和隔离性能的超宽带MIMO天线。
技术解决方案
本发明提供的超宽带MIMO天线,包括包括PCB板和设置于所述PCB板上的结构相同且互为镜像对称的四个天线组件,每一所述天线组件包括辐射部和为所述辐射部馈电的连接部;所述PCB板,包括系统地和电路区,所述天线组件在所述PCB板上的正投影落于所述系统地内;所述辐射部,与所述PCB板平行间隔设置;所述连接部,包括分别自所述辐射部向靠近所述PCB板方向延伸并间隔设置的第一接地脚、第二接地脚和天线馈点脚,所述第一接地脚和所述第二接地脚与所述系统地连接,所述天线馈点脚与外部电源连接。
优选地,所述连接部均自所述辐射部的周缘向靠近所述PCB板方向延伸。
优选地,四个所述天线组件位于一方形区域内,且四个所述天线组件位于该方形区域的四个顶角处。
优选地,每个所述天线组件的所述第一接地脚和所述第二接地脚关于所述方形区域的对角线对称设置,所述天线馈点脚布置在所述方形区域的对角线上。
优选地,,所述第一接地脚、所述第二接地脚和所述天线馈点脚均为L型结构的金属弹片,均包括与所述辐射部垂直设置的竖直部和与所述竖直部连接的水平部,所述第一接地脚和所述第二接地脚的水平部与所述系统地焊接固定,所述天线馈点脚的水平部与所述系统地间隔平行并通过塑胶支撑件与所述系统地固定连接。
优选地,所述辐射部为正八边形或非正八边形结构。
优选地,所述辐射部与所述连接部为一体成型设置。
优选地,所述天线组件采用铜合金或其它金属片冲压或者弯折而成。
优选地,所述超宽带MIMO天线的工作频段包括3300-5000MHz。
本发明还提供一种终端,其包括上文所述的的超宽带MIMO天线。
有益效果
与相关技术相比,本发明提供的超宽带MIMO天线及终端具有如下有益效果:
1)所述超宽带MIMO天线的工作频段包括3300-5000MHz,满足国内5G sub6GHz频段要求,而且在整个工作频段内,天线电压驻波比(VSWR)小于1.5,天线效率在90%以上,相邻天线组件间的隔离度优于-20dB,具有良好的超宽带、天线性能和隔离性能;
2)组成所述超宽带MIMO天线的单个天线组件,尺寸较小,有利于小基站对天线的布局,使得小基站能够支持4T4R;
3)所述超宽带MIMO天线结构简单,单个天线组件可以采用铜合金或其它金属片冲压或者弯折而成,制作简单,成本低,易于批量生产。
附图说明
图1为本发明提供的超宽带MIMO天线的结构示意图;
图2为图1所示超宽带MIMO天线中单个天线组件的结构示意图;
图3为图2所示单个天线组件的平面示意图;
图4为本发明提供的超宽带MIMO天线中各天线组件在工作频段内电压驻波比仿真图;
图5为本发明提供的超宽带MIMO天线中各天线组件在工作频段内天线效率仿真图;
图6为本发明提供的超宽带MIMO天线中各天线组件在工作频段内隔离度仿真图。
本发明的实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部份实施例,而不是全部的实施例。
如图1至图3所示,本发明实施例提供一种超宽带MIMO天线100,所述超宽带MIMO天线100可应用于小基站等终端,本发明对此不作限定。
具体地,本发明实施例提供的超宽带MIMO天线100包括PCB板20和设置于所述PCB板20上的结构相同且互为镜像对称的四个天线组件2-5。所述PCB板20包括系统地22和电路区21。通常所述系统地22为铺设于所述PCB板20上的金属层。四个所述天线组件2-5设置在所述PCB板20的系统地22之上,且四个所述天线组件2-5在所述PCB板20上的正投影落于所述系统地22内。四个所述天线组件2-5位于所述PCB板20的一方形区域内,四个所述天线组件2-5位于该方形区域的四个顶角处。
每一所述天线组件包括辐射部11和为所述辐射部11馈电的连接部10。
所述辐射部11与所述PCB板20平行间隔设置。所述辐射部11与所述PCB板20之间的间距不超过9.2mm。优选地,所述辐射部11为正八边形或非正八边形结构,在设计所述辐射部11的形状时,可以根据实际情况调节各边长度以调节天线频偏和电压驻波比。
所述连接部10包括分别自所述辐射部11周缘向靠近所述PCB板20方向延伸并间隔设置的第一接地脚101、第二接地脚102和天线馈点脚103,所述第一接地脚101和所述第二接地脚102与所述系统地22连接,所述天线馈点脚103与外部电源连接。所述天线组件采用一馈两地结构,既能满足天线射频性能要求,又能满足结构强度要求。优选地,每个所述天线组件的所述第一接地脚101和所述第二接地脚102关于所述方形区域的对角线对称设置,所述天线馈点脚103布置在所述方形区域的对角线上。更优地,所述第一接地脚101与所述第二接地脚102之间的夹角为90°。当然,所述第一接地脚101、第二接地脚102及天线馈点脚103的设置位置可以根据具体情况调节,不局限于本实施例所示位置。
在本实施例中,所述第一接地脚101、所述第二接地脚102和所述天线馈点脚103均为L型结构的金属弹片,均包括与所述辐射部11垂直设置的竖直部a和与所述竖直部a连接的水平部b,所述第一接地脚101和所述第二接地脚102的水平部与所述系统地22焊接固定,所述天线馈点脚103的水平部与所述系统地22间隔平行并通过塑胶支撑件12与所述系统地22固定连接,进一步增加结构稳定性。
单个所述天线组件所占用的空间尺寸较小,其所占用空间同样为一方形区域,尺寸大小通常为30mm*30mm,单个所述天线组件所占用的空间尺寸可以根据使用该超宽带MIMO天线的终端的尺寸来调整。
进一步地,所述天线组件的辐射部11与连接部10为一体成型设置,减少不必要的焊接工序,增强天线可靠性。优选地,所述天线组件采用铜合金或其它金属片冲压或者弯折而成,便于批量生产。
在本实施例中,所述超宽带MIMO天线100的工作频段包括3300-5000MHz,覆盖国内5G sub6GHz频段,其电压驻波比小于1.5。
图4示出了本发明提供的超宽带MIMO天线中各天线组件在工作频段内电压驻波比图,结果显示,天线组件2-5在整个工作频段(3300-5000MHz)内,电压驻波比小于1.5。
图5为本发明提供的超宽带MIMO天线中各天线组件在工作频段内天线效率图,结果显示,天线组件2-5在整个工作频段(3300-5000MHz)内,天线效率在90%以上,说明所述超宽带MIMO天线天线性能好。
图6为本发明提供的超宽带MIMO天线中各天线组件在工作频段内隔离度图,结果显示,天线组件2-5在整个工作频段(3300-5000MHz)内,任意两个天线组件间的隔离度均优于-20dB,说明所述超宽带MIMO天线中天线组件间具有优良的隔离性能。
本发明还提供一种终端,所述终端包括上文所述的超宽带MIMO天线的技术特征,当然应用该超宽带MIMO天线同样具有上述技术效果。优选地,所述终端为小基站,该小基站支持4T4R。
与相关技术相比,本发明提供的超宽带MIMO天线及终端具有如下有益效果:
1)所述超宽带MIMO天线的工作频段包括3300-5000MHz,满足国内5G sub6GHz频段要求,而且在整个工作频段内,天线电压驻波比(VSWR)小于1.5,天线效率在90%以上,相邻天线组件间的隔离度优于-20dB,具有良好的超宽带、天线性能和隔离性能;
2)组成所述超宽带MIMO天线的单个天线组件,尺寸较小,有利于小基站对天线的布局,使得小基站能够支持4T4R;
3)所述超宽带MIMO天线结构简单,单个天线组件可以采用铜合金或其它金属片冲压或者弯折而成,制作简单,成本低,易于批量生产。
以上所述仅为本发明的实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其它相关的技术领域,均同理包括在本发明的专利保护范围内。

Claims (10)

  1. 一种超宽带MIMO天线,其特征在于,包括PCB板和设置于所述PCB板上的结构相同且互为镜像对称的四个天线组件,每一所述天线组件包括辐射部和为所述辐射部馈电的连接部;
    所述PCB板,包括系统地和电路区,所述天线组件在所述PCB板上的正投影落于所述系统地内;
    所述辐射部,与所述PCB板平行间隔设置;
    所述连接部,包括分别自所述辐射部向靠近所述PCB板方向延伸并间隔设置的第一接地脚、第二接地脚和天线馈点脚,所述第一接地脚和所述第二接地脚与所述系统地连接,所述天线馈点脚与外部电源连接。
  2. 根据权利要求1所述的超宽带MIMO天线,其特征在于,所述连接部均自所述辐射部的周缘向靠近所述PCB板方向延伸。
  3. 根据权利要求1所述的超宽带MIMO天线,其特征在于,四个所述天线组件位于一方形区域内,且四个所述天线组件位于该方形区域的四个顶角处。
  4. 根据权利要求3所述的超宽带MIMO天线,其特征在于,每个所述天线组件的所述第一接地脚和所述第二接地脚关于所述方形区域的对角线对称设置,所述天线馈点脚布置在所述方形区域的对角线上。
  5. 根据权利要求1或3所述的超宽带MIMO天线,其特征在于,所述第一接地脚、所述第二接地脚和所述天线馈点脚均为L型结构的金属弹片,均包括与所述辐射部垂直设置的竖直部和与所述竖直部连接的水平部,所述第一接地脚和所述第二接地脚的水平部与所述系统地焊接固定,所述天线馈点脚的水平部与所述系统地间隔平行并通过塑胶支撑件与所述系统地固定连接。
  6. 根据权利要求1所述的超宽带MIMO天线,其特征在于,所述辐射部为正八边形或非正八边形结构。
  7. 根据权利要求1所述的超宽带MIMO天线,其特征在于,所述辐射部与所述连接部为一体成型设置。
  8. 根据权利要求1或7所述的超宽带MIMO天线,其特征在于,所述天线组件采用铜合金或其它金属片冲压或者弯折而成。
  9. 根据权利要求1所述的超宽带MIMO天线,其特征在于,所述超宽带MIMO天线的工作频段包括3300-5000MHz。
  10. 一种终端,其特征在于,包括权利要求1-9任一项所述的超宽带MIMO天线。
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