WO2012162991A1 - Antenna and mimo antenna having the dual-polarized antenna - Google Patents

Antenna and mimo antenna having the dual-polarized antenna Download PDF

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Publication number
WO2012162991A1
WO2012162991A1 PCT/CN2011/080390 CN2011080390W WO2012162991A1 WO 2012162991 A1 WO2012162991 A1 WO 2012162991A1 CN 2011080390 W CN2011080390 W CN 2011080390W WO 2012162991 A1 WO2012162991 A1 WO 2012162991A1
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WO
WIPO (PCT)
Prior art keywords
metal piece
feed line
antenna
antenna according
piece
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PCT/CN2011/080390
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French (fr)
Chinese (zh)
Inventor
刘若鹏
徐冠雄
杨松涛
Original Assignee
深圳光启高等理工研究院
深圳光启创新技术有限公司
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Application filed by 深圳光启高等理工研究院, 深圳光启创新技术有限公司 filed Critical 深圳光启高等理工研究院
Publication of WO2012162991A1 publication Critical patent/WO2012162991A1/en

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    • 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
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/36Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith
    • H01Q1/38Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith formed by a conductive layer on an insulating support

Definitions

  • Antenna and MIMO antenna having the same
  • the present invention relates to the field of communications, and in particular to an antenna and a MIMO antenna having the same. ⁇ Background technique ⁇
  • the RF module mainly includes main components such as mixing, power amplifier, filtering, RF signal transmission, matching network and antenna.
  • the antenna acts as the radiating unit and receiving device of the final RF signal, and its working characteristics will directly affect the working performance of the entire electronic system.
  • important indicators such as size, bandwidth, and gain of the antenna are limited by basic physical principles (gain limit at fixed size, bandwidth limit, etc.). The basic principle of the limits of these indicators makes the antenna miniaturization technology far more difficult than other devices, and due to the complexity of the electromagnetic field analysis of RF devices, approaching these extreme limits has become a huge technology 4 mega wars.
  • the demand for multi-mode services is becoming more and more important in systems such as wireless communications, wireless access, satellite communications, and wireless data networks.
  • the demand for multimode services further increases the complexity of miniaturized antenna multimode designs.
  • multimode impedance matching of antennas has become a bottleneck in antenna technology.
  • MIMO multi-input and multi-output systems
  • conventional terminal communication antennas are mainly designed based on the radiation principle of electric monopoles or dipoles, such as the most commonly used planar anti-F antenna (PIFA).
  • PIFA planar anti-F antenna
  • the radiated operating frequency of a conventional antenna is directly related to the size of the antenna, and the bandwidth is positively correlated with the area of the antenna, so that the design of the antenna usually requires a physical length of half a wavelength.
  • additional impedance matching network design is required before feeding the antenna.
  • the impedance matching network additionally increases the feeder design of the electronic system and increases the RF system.
  • the uniform area matching network also introduces a lot of energy loss, which is difficult to meet the low power consumption system design requirements. Therefore, the miniaturized, multi-mode new antenna technology has become an important technical bottleneck of contemporary electronic integrated systems.
  • the technical problem to be solved by the present invention is to provide an antenna which is guaranteed to be miniaturized during low frequency operation in view of the drawback that the antenna is controlled by the physical limitation of the spatial area when the antenna operates at low frequencies.
  • the present invention provides an antenna including a dielectric substrate, a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate, a first feed line disposed around the first metal piece, and a second set around the second metal piece
  • the first feeding line and the second feeding line are respectively fed into the first metal piece and the second metal piece by coupling, and the first metal piece and the second metal piece are respectively hollowed out with the first micro groove structure and the second micro groove structure,
  • a feeder is electrically connected to the second feeder.
  • the material for fabricating the dielectric substrate comprises a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
  • the first microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure.
  • a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
  • the second microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure or A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
  • the first metal piece and the second metal piece are connected by metallized vias or wires.
  • the first feed line and the second feed line are connected by metallized vias or wires.
  • the first metal sheet is a copper sheet or a silver sheet.
  • the second metal sheet is a copper sheet or a silver sheet.
  • the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece.
  • the present invention provides a MIMO antenna including a dielectric substrate, a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate, a first feed line disposed around the first metal piece, and a first metal wire disposed around the second metal piece
  • the first feed line and the second feed line are respectively fed into the first metal piece and the second metal piece by coupling, and the first metal piece and the second metal piece are respectively hollowed out with the first micro groove structure and the second micro groove structure,
  • the first feed line is electrically connected to the second feed line.
  • the material for fabricating the dielectric substrate comprises a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
  • the first microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure.
  • a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
  • the second microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure or A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
  • the first metal piece and the second metal piece are connected by metallized vias or wires.
  • the first feed line and the second feed line are connected by metallized vias or wires.
  • the first metal sheet is a copper sheet or a silver sheet.
  • the second metal sheet is a copper sheet or a silver sheet.
  • the first feed line and the second feed line are selected from the first metal piece and the second The metal sheet is made of the same material.
  • the antenna embodying the present invention has the following beneficial effects as compared with the existing antenna: a metal sheet is disposed on both sides of the dielectric substrate, and the space area of the antenna is fully utilized, and the antenna can operate at a lower operating frequency in this environment. Meet the requirements of antenna miniaturization, low operating frequency, and wideband multimode. Further, the MIMO antenna of the present invention has high isolation characteristics in addition to the characteristics of the above-described antenna itself, and has strong anti-interference ability between the plurality of antennas.
  • Figure 1 is a perspective view of an antenna of the present invention
  • Figure 2 is another perspective view of Figure 1;
  • Figure 3 is a schematic view showing the structure of a complementary open resonant ring
  • Figure 4 is a schematic view of a complementary helical structure
  • Figure 5 is a schematic view showing the structure of the open spiral ring
  • Figure 6 is a schematic view showing the structure of a double-open spiral ring
  • Figure 7 is a schematic view showing the structure of a complementary bending line
  • FIG. 8 is a schematic diagram showing the geometry of the complementary open resonant ring structure shown in FIG. 3;
  • FIG. 9 is a schematic diagram of the extended open resonant ring structure shown in FIG.
  • FIG. 10 is a schematic structural view of a composite open resonant ring structure shown in FIG. 3;
  • FIG. 11 is a complementary open resonant ring structure shown in FIG. 3 and a complementary spiral structure shown in FIG. Composite schematic diagram;
  • FIG. 12 is a schematic structural view of the four complementary open resonant ring structure arrays shown in FIG. ⁇ detailed description ⁇
  • the antenna of the present invention includes a dielectric substrate 1, a first metal piece 4 and a second metal piece 7 attached to opposite surfaces of the dielectric substrate 1, and a first metal piece 4 is disposed around the first metal piece 4.
  • a feed line 2 is disposed around the second metal piece 7 with a second feed line 8 , which is fed into the first metal piece 4 by coupling, and the second feed line 8 is fed into the first
  • the first metal piece 4 and the second metal piece 7 are respectively hollowed out with a first micro groove structure 41 and a second micro groove structure 71, and the first metal piece 4 is other than the first micro groove structure 41.
  • the portion is the first metal trace 42
  • the portion of the second metal strip 7 other than the second micro-slot structure 71 is the first metal trace 72
  • the first feed line 2 is electrically connected to the second feed line 8 .
  • the first feed line 2 and the second feed line 8 are electrically connected by a metallized through hole 10 opened in the dielectric substrate 1.
  • a wire connection it is also possible to use a wire connection.
  • a portion of the first metal strip drawing hatching is a first metal trace, and a blank portion (a hollow portion) on the first metal sheet indicates a first microgroove structure and a second microgroove structure.
  • the first feed line is also indicated by a hatching.
  • the portion of the second metal strip drawing hatching is the second metal trace, and the blank portion (the hollow portion) of the second metal sheet indicates the third microgroove structure and the fourth microgroove structure.
  • the second feed line is also indicated by a hatching.
  • Fig. 1 is a perspective view showing an antenna of the present invention
  • Fig. 2 is another perspective view thereof.
  • the structure attached to the a surface and the b surface of the dielectric substrate is the same. That is, the projections of the first feed line and the first metal piece on the surface of the b are respectively overlapped with the second feed line and the second metal piece.
  • this is only a preferred solution, and the structure of the a surface and the b surface may be different as needed.
  • the first feed line 2 is disposed around the first metal sheet 4 to effect signal coupling.
  • the first metal piece 4 may or may not be in contact with the first feed line 2.
  • the first feed line 2 is inductively coupled with the first metal piece 4; when the first metal piece 4 is not in contact with the first feed line 2, the first feed line 2 and the metal Capacitive coupling between slices 4.
  • the second feed line 8 is disposed around the second metal sheet 7 to effect signal coupling.
  • the second metal piece 7 may or may not be in contact with the second feed line 8.
  • the second feed line 8 When the second metal piece 7 is in contact with the second feed line 8, the second feed line 8 is inductively coupled with the second metal piece 7; when the second metal piece 7 is not in contact with the second feed line 8, the second feed line 8 and the metal Capacitive coupling between slices 7.
  • the first metal piece and the second metal piece on the opposite surfaces of the dielectric substrate may or may not be connected.
  • the first metal piece and the second metal piece are fed by capacitive coupling; in this case, by changing the thickness of the dielectric substrate, Resonance of the first metal piece and the second metal piece is achieved.
  • the first metal piece is electrically connected to the second metal piece (e.g., by wire or metallized via)
  • the first metal piece and the second metal piece are fed by inductive coupling.
  • the first microgroove structure 41 and the second microgroove structure 71 in the present invention may be the complementary open resonant ring structure shown in FIG. 3, the complementary spiral structure shown in FIG. 4, and the opening shown in FIG.
  • One of the spiral ring structure, the double-open spiral ring structure shown in FIG. 6, and the complementary bent line structure shown in FIG. 7 is derived from one of the foregoing five structures, a plurality of structural composites or a The metal microstructure obtained by the structural array. Derivation is divided into two types, one is geometric shape derivation, and the other is extended derivation.
  • geometric derivation refers to structural derivation of similar functions and different shapes, for example, derived from a box-like structure to a curve-like structure, a triangle.
  • the extended derivative here is to open a new groove on the basis of Figures 3 to 7 to form a new micro-groove structure
  • the complementary open-resonance ring structure shown in Figure 3 is
  • Figure 8 is a schematic diagram of its geometry derivation
  • Figure 9 is a schematic diagram of its geometry derivation.
  • the composite here means that the microgroove structures of FIGS. 3 to 7 are superposed to form a new microgroove structure, as shown in FIG. 10, after the composite of the complementary open resonant ring structures shown in FIG.
  • Schematic diagram of the structure as shown in FIG. 11, a schematic structural view of the complementary open resonant ring structure shown in FIG. 3 and the complementary spiral structure shown in FIG.
  • the array here refers to a micro-groove structure formed by arraying a plurality of micro-groove structures shown in FIG. 3 to FIG. 7 on the same metal sheet, as shown in FIG. 12, which are complementary to each other as shown in FIG. Schematic diagram of the structure after the array of open resonant ring structures.
  • the invention will be described below by taking the open spiral ring structure shown in Fig. 5 as an example.
  • the material for manufacturing the dielectric substrate includes a ceramic material, a polymer material, a ferroelectric material, a ferrite material, or a ferromagnetic material.
  • it is made of a polymer material, specifically, a polymer material such as FR-4 or F4B.
  • the first metal piece and the second metal piece are copper pieces or silver pieces. It is preferably a copper sheet, which is inexpensive and has good electrical conductivity.
  • the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece. It is preferably copper.
  • PCB printed circuit board
  • RFID RFID is the abbreviation of Radio Frequency Identification, that is, radio frequency identification technology, commonly known as electronic label
  • processing method of conductive silver paste ink various types can be The flexible PCB processing of the deformation device, the processing method of the iron piece antenna, and the processing method of the combination of the iron piece and the PCB.
  • the combination of iron sheet and PCB processing means that the precise processing of the PCB is used to complete the processing of the antenna microgroove structure, and the iron piece is used to complete other auxiliary parts.
  • it can be processed by etching, electroplating, drilling, photolithography, electron engraving or ion engraving.
  • the present invention also provides a MIMO antenna, the MIMO antenna being composed of a plurality of the above antennas.
  • MIMO refers to multiple input and multiple output. That is, all the individual antennas 1 on the MIMO antenna are simultaneously transmitted and received simultaneously.
  • the MIMO antenna can greatly increase the information throughput and transmission distance of the system without increasing the bandwidth or total transmission power loss.
  • the MIMO antenna of the present invention also has high isolation and strong anti-interference ability between multiple antennas.
  • the first feeder of each antenna is electrically connected to the second feeder and then connected to a receiver/transmitter, and all receivers/transmitters are connected to a baseband signal processor.

Abstract

The present invention relates to an antenna. The antenna comprises a dielectric substrate, a first metal sheet and a second metal sheet respectively attached to two opposite surfaces of the dielectric substrate, a first feeder cable windingly arranged on the first metal sheet, and a second feeder cable windingly arranged on the second metal sheet. The first feeder cable and the second feeder cable respectively are fed into the first metal sheet and the second metal sheet via coupling. The first metal sheet and the second metal sheet respectively have engraved thereon a first microgroove structure and a second microgroove structure. The first feeder cable and the second feeder cable are electrically connected. On the basis of the antenna of the present invention, the dielectric substrate has arranged on both surfaces thereof the metal sheets, and fully utilizes the spatial area of the antenna; this condition allows the antenna to operate at a lowered operating frequency, while at the same time to meet the requirements of antenna miniaturization, of lowered operating frequency, and of broadband multimode. The present invention also relates to an MIMO antenna having the antenna.

Description

一种天线及具有该天线的 MIMO天线  Antenna and MIMO antenna having the same
【技术领域】 [Technical Field]
本发明属于通信领域, 具体地, 涉及一种天线及具有该天线的 MIMO天线。 【背景技术】  The present invention relates to the field of communications, and in particular to an antenna and a MIMO antenna having the same. 【Background technique】
随着半导体工艺的高度发展, 对当今的电子系统集成度提出了越来越高的 要求, 器件的小型化成为了整个产业非常关注的技术问题。 然而, 不同于 IC芯 片遵循 "摩尔定律"的发展,作为电子系统的另外重要组成一一射频模块,却面临 着器件小型化的高难度技术挑战。 射频模块主要包括了混频、 功放、 滤波、 射 频信号传输、 匹配网络与天线等主要器件。 其中, 天线作为最终射频信号的辐 射单元和接收器件, 其工作特性将直接影响整个电子系统的工作性能。 然而天 线的尺寸、 带宽、 增益等重要指标却受到了基本物理原理的限制 (固定尺寸下 的增益极限、 带宽极限等)。 这些指标极限的基本原理使得天线的小型化技术难 度远远超过了其它器件, 而由于射频器件的电磁场分析的复杂性, 逼近这些极 限值都成为了巨大的技术 4兆战。  With the rapid development of semiconductor technology, higher and higher requirements have been placed on the integration of electronic systems today, and the miniaturization of devices has become a technical issue of great concern to the entire industry. However, unlike IC chips, which follow the development of Moore's Law, as an important component of electronic systems, RF modules face the difficult technical challenges of miniaturization of devices. The RF module mainly includes main components such as mixing, power amplifier, filtering, RF signal transmission, matching network and antenna. Among them, the antenna acts as the radiating unit and receiving device of the final RF signal, and its working characteristics will directly affect the working performance of the entire electronic system. However, important indicators such as size, bandwidth, and gain of the antenna are limited by basic physical principles (gain limit at fixed size, bandwidth limit, etc.). The basic principle of the limits of these indicators makes the antenna miniaturization technology far more difficult than other devices, and due to the complexity of the electromagnetic field analysis of RF devices, approaching these extreme limits has become a huge technology 4 mega wars.
同时, 随着现代电子系统的复杂化, 多模服务的需求在无线通信、 无线接 入、 卫星通信、 无线数据网络等系统中变得越来越重要。 而多模服务的需求进 一步增大了小型化天线多模设计的复杂度。 除去小型化的技术挑战, 天线的多 模阻抗匹配也成为了天线技术的瓶颈。 另一方面, 多输入多输出系统(MIMO ) 在无线通信、 无线数据服务领域的高速发展更进一步苛刻地要求了天线尺寸的 小型化并同时保证良好的隔离度、 辐射性能以及抗干扰能力。 然而, 传统的终 端通信天线主要基于电单极子或偶极子的辐射原理进行设计, 比如最常用的平 面反 F天线 (PIFA)。传统天线的辐射工作频率直接和天线的尺寸正相关, 带宽和 天线的面积正相关, 使得天线的设计通常需要半波长的物理长度。 在一些更为 复杂的电子系统中, 天线需要多模工作, 就需要在馈入天线前额外的阻抗匹配 网络设计。 但阻抗匹配网络额外的增加了电子系统的馈线设计、 增大了射频系 统的面积同时匹配网络还引入了不少的能量损耗, 很难满足低功耗的系统设计 要求。 因此, 小型化、 多模式的新型天线技术成为了当代电子集成系统的一个 重要技术瓶颈。 At the same time, with the complication of modern electronic systems, the demand for multi-mode services is becoming more and more important in systems such as wireless communications, wireless access, satellite communications, and wireless data networks. The demand for multimode services further increases the complexity of miniaturized antenna multimode designs. In addition to the technical challenges of miniaturization, multimode impedance matching of antennas has become a bottleneck in antenna technology. On the other hand, the rapid development of multi-input and multi-output systems (MIMO) in the field of wireless communication and wireless data services has further demanded the miniaturization of antenna sizes while ensuring good isolation, radiation performance and anti-interference ability. However, conventional terminal communication antennas are mainly designed based on the radiation principle of electric monopoles or dipoles, such as the most commonly used planar anti-F antenna (PIFA). The radiated operating frequency of a conventional antenna is directly related to the size of the antenna, and the bandwidth is positively correlated with the area of the antenna, so that the design of the antenna usually requires a physical length of half a wavelength. In some more complex electronic systems, where the antenna requires multimode operation, additional impedance matching network design is required before feeding the antenna. However, the impedance matching network additionally increases the feeder design of the electronic system and increases the RF system. The uniform area matching network also introduces a lot of energy loss, which is difficult to meet the low power consumption system design requirements. Therefore, the miniaturized, multi-mode new antenna technology has become an important technical bottleneck of contemporary electronic integrated systems.
【发明内容】 [Summary of the Invention]
本发明要解决的技术问题是, 针对现有技术在低频工作时天线受控于空间 面积的物理局限的缺陷, 提供一种在低频工作时保证其小型化的天线。  The technical problem to be solved by the present invention is to provide an antenna which is guaranteed to be miniaturized during low frequency operation in view of the drawback that the antenna is controlled by the physical limitation of the spatial area when the antenna operates at low frequencies.
本发明提供一种天线, 其包括介质基板、 附着在介质基板相对两表面的第 一金属片及第二金属片, 围绕第一金属片设置有第一馈线, 围绕第二金属片设 置有第二馈线, 第一馈线及第二馈线通过耦合方式分别馈入第一金属片及第二 金属片 , 第一金属片及第二金属片上分别镂空有第一微槽结构及第二微槽结构, 第一馈线与第二馈线电连接。  The present invention provides an antenna including a dielectric substrate, a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate, a first feed line disposed around the first metal piece, and a second set around the second metal piece The first feeding line and the second feeding line are respectively fed into the first metal piece and the second metal piece by coupling, and the first metal piece and the second metal piece are respectively hollowed out with the first micro groove structure and the second micro groove structure, A feeder is electrically connected to the second feeder.
根据本发明一优选实施例, 介质基板的制造材料包括陶瓷材料、 高分子材 料、 铁电材料、 铁氧材料或铁磁材料。  According to a preferred embodiment of the present invention, the material for fabricating the dielectric substrate comprises a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
根据本发明一优选实施例, 第一微槽结构为互补式开口谐振环结构、 互补 式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以及互补式弯折线结构中 的一种或是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结构 组阵得到的金属微结构。  According to a preferred embodiment of the present invention, the first microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure. A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
根据本发明一优选实施例, 第二微槽结构为互补式开口谐振环结构、 互补 式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以及互补式弯折线结构中 中的一种或是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结 构组阵得到的金属微结构。  According to a preferred embodiment of the present invention, the second microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure or A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
根据本发明一优选实施例, 第一金属片与第二金属片通过金属化通孔或导 线连接。  According to a preferred embodiment of the invention, the first metal piece and the second metal piece are connected by metallized vias or wires.
根据本发明一优选实施例, 第一馈线与第二馈线通过金属化通孔或导线连 接。 根据本发明一优选实施例, 第一金属片为铜片或银片。 According to a preferred embodiment of the invention, the first feed line and the second feed line are connected by metallized vias or wires. According to a preferred embodiment of the invention, the first metal sheet is a copper sheet or a silver sheet.
根据本发明一优选实施例, 第二金属片为铜片或银片。  According to a preferred embodiment of the invention, the second metal sheet is a copper sheet or a silver sheet.
根据本发明一优选实施例, 第一馈线与第二馈线选用与第一金属片及第二 金属片同样的材料制成。  According to a preferred embodiment of the invention, the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece.
本发明提供一种 MIMO天线, 其包括介质基板、 附着在介质基板相对两表 面的第一金属片及第二金属片, 围绕第一金属片设置有第一馈线, 围绕第二金 属片设置有第二馈线, 第一馈线及第二馈线通过耦合方式分别馈入第一金属片 及第二金属片, 第一金属片及第二金属片上分别镂空有第一微槽结构及第二微 槽结构, 第一馈线与第二馈线电连接。  The present invention provides a MIMO antenna including a dielectric substrate, a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate, a first feed line disposed around the first metal piece, and a first metal wire disposed around the second metal piece The first feed line and the second feed line are respectively fed into the first metal piece and the second metal piece by coupling, and the first metal piece and the second metal piece are respectively hollowed out with the first micro groove structure and the second micro groove structure, The first feed line is electrically connected to the second feed line.
根据本发明一优选实施例, 介质基板的制造材料包括陶瓷材料、 高分子材 料、 铁电材料、 铁氧材料或铁磁材料。  According to a preferred embodiment of the present invention, the material for fabricating the dielectric substrate comprises a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
根据本发明一优选实施例, 第一微槽结构为互补式开口谐振环结构、 互补 式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以及互补式弯折线结构中 的一种或是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结构 组阵得到的金属微结构。  According to a preferred embodiment of the present invention, the first microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure. A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
根据本发明一优选实施例, 第二微槽结构为互补式开口谐振环结构、 互补 式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以及互补式弯折线结构中 中的一种或是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结 构组阵得到的金属微结构。  According to a preferred embodiment of the present invention, the second microgroove structure is one of a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary bent line structure or A metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
根据本发明一优选实施例, 第一金属片与第二金属片通过金属化通孔或导 线连接。  According to a preferred embodiment of the invention, the first metal piece and the second metal piece are connected by metallized vias or wires.
根据本发明一优选实施例, 第一馈线与第二馈线通过金属化通孔或导线连 接。  According to a preferred embodiment of the invention, the first feed line and the second feed line are connected by metallized vias or wires.
根据本发明一优选实施例, 第一金属片为铜片或银片。  According to a preferred embodiment of the invention, the first metal sheet is a copper sheet or a silver sheet.
根据本发明一优选实施例, 第二金属片为铜片或银片。  According to a preferred embodiment of the invention, the second metal sheet is a copper sheet or a silver sheet.
根据本发明一优选实施例, 第一馈线与第二馈线选用与第一金属片及第二 金属片同样的材料制成。 According to a preferred embodiment of the present invention, the first feed line and the second feed line are selected from the first metal piece and the second The metal sheet is made of the same material.
实施本发明的天线, 相对于现有的天线, 具有以下有益效果: 在介质基板 两面均设置有金属片, 充分利用了天线的空间面积, 在此环境下天线能在较低 工作频率下工作, 满足天线小型化、 低工作频率、 宽带多模的要求。 此外, 本 发明的 MIMO天线, 除了具备上述天线本身的特点外, 还具有很高的隔离度, 多个天线之间的抗干扰能力强。  The antenna embodying the present invention has the following beneficial effects as compared with the existing antenna: a metal sheet is disposed on both sides of the dielectric substrate, and the space area of the antenna is fully utilized, and the antenna can operate at a lower operating frequency in this environment. Meet the requirements of antenna miniaturization, low operating frequency, and wideband multimode. Further, the MIMO antenna of the present invention has high isolation characteristics in addition to the characteristics of the above-described antenna itself, and has strong anti-interference ability between the plurality of antennas.
【附图说明】 [Description of the Drawings]
为了更清楚地说明本发明实施例中的技术方案, 下面将对实施例描述中所 需要使用的附图作简单地介绍, 显而易见地, 下面描述中的附图仅仅是本发明 的一些实施例, 对于本领域普通技术人员来讲, 在不付出创造性劳动的前提下, 还可以根据这些附图获得其他的附图。 其中:  In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the drawings used in the description of the embodiments will be briefly described. It is obvious that the drawings in the following description are only some embodiments of the present invention. Other drawings may also be obtained from those of ordinary skill in the art in view of the drawings. among them:
图 1是本发明的天线的立体图;  Figure 1 is a perspective view of an antenna of the present invention;
图 2是图 1的另一视角图;  Figure 2 is another perspective view of Figure 1;
图 3为互补式开口谐振环结构的示意图;  Figure 3 is a schematic view showing the structure of a complementary open resonant ring;
图 4所示为互补式螺旋线结构的示意图;  Figure 4 is a schematic view of a complementary helical structure;
图 5所示为开口螺旋环结构的示意图;  Figure 5 is a schematic view showing the structure of the open spiral ring;
图 6所示为双开口螺旋环结构的示意图;  Figure 6 is a schematic view showing the structure of a double-open spiral ring;
图 7所示为互补式弯折线结构的示意图;  Figure 7 is a schematic view showing the structure of a complementary bending line;
图 8为图 3所示的互补式开口谐振环结构其几何形状衍生示意图; 图 9为图 3所示的互补式开口谐振环结构其扩展衍生示意图;  8 is a schematic diagram showing the geometry of the complementary open resonant ring structure shown in FIG. 3; FIG. 9 is a schematic diagram of the extended open resonant ring structure shown in FIG.
图 10为三个图 3所示的互补式开口谐振环结构的复合后的结构示意图; 图 11为两个图 3所示的互补式开口谐振环结构与图 4所示为互补式螺旋线 结构的复合示意图;  10 is a schematic structural view of a composite open resonant ring structure shown in FIG. 3; FIG. 11 is a complementary open resonant ring structure shown in FIG. 3 and a complementary spiral structure shown in FIG. Composite schematic diagram;
图 12为四个图 3所示的互补式开口谐振环结构组阵后的结构示意图。 【具体实施方式】 FIG. 12 is a schematic structural view of the four complementary open resonant ring structure arrays shown in FIG. 【detailed description】
如图 1及图 2所示, 本发明的所述天线包括介质基板 1、 附着在介质基板 1 相对两表面的第一金属片 4及第二金属片 7 ,围绕第一金属片 4设置有第一馈线 2, 围绕第二金属片 7设置有第二馈线 8 , 所述第一馈线 2通过耦合方式馈入所 述第一金属片 4, 所述第二馈线 8通过耦合方式馈入所述第二金属片 7 , 所述第 一金属片 4及第二金属片 7上分别镂空有第一微槽结构 41及第二微槽结构 71 , 第一金属片 4除第一微槽结构 41以外的部分为第一金属走线 42 , 第二金属片 7 除第二微槽结构 71以外的部分为第一金属走线 72,所述第一馈线 2与第二馈线 8电连接。在同一介质基板的两面都设置金属片,等效于增加了天线物理长度(实 际长度尺寸不增加 ), 这样就可以在极小的空间内设计出工作在极低工作频率下 的射频天线。 解决传统天线在低频工作时天线受控空间面积的物理局限。  As shown in FIG. 1 and FIG. 2, the antenna of the present invention includes a dielectric substrate 1, a first metal piece 4 and a second metal piece 7 attached to opposite surfaces of the dielectric substrate 1, and a first metal piece 4 is disposed around the first metal piece 4. A feed line 2 is disposed around the second metal piece 7 with a second feed line 8 , which is fed into the first metal piece 4 by coupling, and the second feed line 8 is fed into the first The first metal piece 4 and the second metal piece 7 are respectively hollowed out with a first micro groove structure 41 and a second micro groove structure 71, and the first metal piece 4 is other than the first micro groove structure 41. The portion is the first metal trace 42 , and the portion of the second metal strip 7 other than the second micro-slot structure 71 is the first metal trace 72 , and the first feed line 2 is electrically connected to the second feed line 8 . Providing a metal piece on both sides of the same dielectric substrate is equivalent to increasing the physical length of the antenna (the actual length dimension is not increased), so that an RF antenna operating at a very low operating frequency can be designed in a very small space. Solve the physical limitation of the controlled space area of the antenna when the traditional antenna operates at low frequencies.
如图 1及 2所示, 所述第一馈线 2与第二馈线 8通过在介质基板 1上开的 金属化通孔 10电连接。 当然也可以釆用导线连接。  As shown in FIGS. 1 and 2, the first feed line 2 and the second feed line 8 are electrically connected by a metallized through hole 10 opened in the dielectric substrate 1. Of course, it is also possible to use a wire connection.
图 1至图 2中, 第一金属片画剖面线的部分为第一金属走线, 第一金属片 上的空白部分(镂空的部分)表示第一微槽结构及第二微槽结构。 另外, 第一 馈线也用剖面线表示。 同样的, 第二金属片画剖面线的部分为第二金属走线, 第二金属片上的空白部分(镂空的部分)表示第三微槽结构及第四微槽结构。 另外, 第二馈线也用剖面线表示。  In Fig. 1 to Fig. 2, a portion of the first metal strip drawing hatching is a first metal trace, and a blank portion (a hollow portion) on the first metal sheet indicates a first microgroove structure and a second microgroove structure. In addition, the first feed line is also indicated by a hatching. Similarly, the portion of the second metal strip drawing hatching is the second metal trace, and the blank portion (the hollow portion) of the second metal sheet indicates the third microgroove structure and the fourth microgroove structure. In addition, the second feed line is also indicated by a hatching.
图 1所示为本发明的天线的立体图, 图 2为其另一视角图。 综合两个图可 以看出, 介质基板的 a表面及 b表面上附着的结构相同。 即第一馈线、 第一金 属片在 b表面的投影分别与第二馈线、 第二金属片重合。 当然, 这只是一个优 选的方案, a表面与 b表面的结构根据需要也可以不同。  Fig. 1 is a perspective view showing an antenna of the present invention, and Fig. 2 is another perspective view thereof. As can be seen from the two figures, the structure attached to the a surface and the b surface of the dielectric substrate is the same. That is, the projections of the first feed line and the first metal piece on the surface of the b are respectively overlapped with the second feed line and the second metal piece. Of course, this is only a preferred solution, and the structure of the a surface and the b surface may be different as needed.
第一馈线 2围绕第一金属片 4设置以实现信号耦合。 另外第一金属片 4与 第一馈线 2可以接触, 也可以不接触。 当第一金属片 4与第一馈线 2接触时, 第一馈线 2与第一金属片 4之间感性耦合; 当第一金属片 4与第一馈线 2不接 触时, 第一馈线 2与金属片 4之间容性耦合。 第二馈线 8围绕第二金属片 7设置以实现信号耦合。 另外第二金属片 7与 第二馈线 8可以接触, 也可以不接触。 当第二金属片 7与第二馈线 8接触时, 第二馈线 8与第二金属片 7之间感性耦合; 当第二金属片 7与第二馈线 8不接 触时, 第二馈线 8与金属片 7之间容性耦合。 The first feed line 2 is disposed around the first metal sheet 4 to effect signal coupling. In addition, the first metal piece 4 may or may not be in contact with the first feed line 2. When the first metal piece 4 is in contact with the first feed line 2, the first feed line 2 is inductively coupled with the first metal piece 4; when the first metal piece 4 is not in contact with the first feed line 2, the first feed line 2 and the metal Capacitive coupling between slices 4. The second feed line 8 is disposed around the second metal sheet 7 to effect signal coupling. In addition, the second metal piece 7 may or may not be in contact with the second feed line 8. When the second metal piece 7 is in contact with the second feed line 8, the second feed line 8 is inductively coupled with the second metal piece 7; when the second metal piece 7 is not in contact with the second feed line 8, the second feed line 8 and the metal Capacitive coupling between slices 7.
本发明中, 所述介质基板两相对表面的第一金属片与第二金属片可以连接, 也可以不连接。 在第一金属片与第二金属片不连接的情况下, 所述第一金属片 与第二金属片之间通过容性耦合的方式馈电; 此种情况下, 通过改变介质基板 的厚度可以实现第一金属片与第二金属片的谐振。 在第一金属片与第二金属片 电连接的情况下(例如通过导线或金属化通孔的形式连接), 所述第一金属片与 第二金属片之间通过感性耦合的方式馈电。  In the present invention, the first metal piece and the second metal piece on the opposite surfaces of the dielectric substrate may or may not be connected. In a case where the first metal piece and the second metal piece are not connected, the first metal piece and the second metal piece are fed by capacitive coupling; in this case, by changing the thickness of the dielectric substrate, Resonance of the first metal piece and the second metal piece is achieved. In the case where the first metal piece is electrically connected to the second metal piece (e.g., by wire or metallized via), the first metal piece and the second metal piece are fed by inductive coupling.
本发明中的所述第一微槽结构 41、第二微槽结构 71可以是图 3所示的互补 式开口谐振环结构、 图 4所示的互补式螺旋线结构、 图 5所示的开口螺旋环结 构、 图 6所示的双开口螺旋环结构、 图 7所示的互补式弯折线结构中的一种或 者是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结构组阵得 到的金属微结构。 衍生分为两种, 一种是几何形状衍生, 另一种是扩展衍生, 此处的几何形状衍生是指功能类似、 形状不同的结构衍生, 例如由方框类结构 衍生到曲线类结构、 三角形类结构及其它不同的多边形类结构; 此处的扩展衍 生即在图 3至图 7的基础上开设新的槽以形成新的微槽结构; 以图 3所示的互 补式开口谐振环结构为例, 图 8为其几何形状衍生示意图, 图 9为其几何形状 衍生示意图。 此处的复合是指, 图 3至图 7的微槽结构多个叠加形成一个新的 微槽结构, 如图 10所示, 为三个图 3所示的互补式开口谐振环结构复合后的结 构示意图; 如图 11所示, 为两个图 3所示的互补式开口谐振环结构与图 4所示 为互补式螺旋线结构共同复合后的结构示意图。 此处的组阵是指由多个图 3 至 图 7所示的微槽结构在同一金属片上阵列形成一个整体的微槽结构, 如图 12所 示, 为多个如图 3 所示的互补式开口谐振环结构组阵后的结构示意图。 以下均 以图 5所示的开口螺旋环结构为例阐述本发明。 另外, 本发明中, 介质基板的制造材料包括陶瓷材料、 高分子材料、 铁电 材料、 铁氧材料或铁磁材料。 优选地, 由高分子材料制成, 具体地可以是 FR-4、 F4B等高分子材料。 The first microgroove structure 41 and the second microgroove structure 71 in the present invention may be the complementary open resonant ring structure shown in FIG. 3, the complementary spiral structure shown in FIG. 4, and the opening shown in FIG. One of the spiral ring structure, the double-open spiral ring structure shown in FIG. 6, and the complementary bent line structure shown in FIG. 7 is derived from one of the foregoing five structures, a plurality of structural composites or a The metal microstructure obtained by the structural array. Derivation is divided into two types, one is geometric shape derivation, and the other is extended derivation. Here, geometric derivation refers to structural derivation of similar functions and different shapes, for example, derived from a box-like structure to a curve-like structure, a triangle. Class structure and other different polygon-like structures; the extended derivative here is to open a new groove on the basis of Figures 3 to 7 to form a new micro-groove structure; the complementary open-resonance ring structure shown in Figure 3 is For example, Figure 8 is a schematic diagram of its geometry derivation, and Figure 9 is a schematic diagram of its geometry derivation. The composite here means that the microgroove structures of FIGS. 3 to 7 are superposed to form a new microgroove structure, as shown in FIG. 10, after the composite of the complementary open resonant ring structures shown in FIG. Schematic diagram of the structure; as shown in FIG. 11, a schematic structural view of the complementary open resonant ring structure shown in FIG. 3 and the complementary spiral structure shown in FIG. The array here refers to a micro-groove structure formed by arraying a plurality of micro-groove structures shown in FIG. 3 to FIG. 7 on the same metal sheet, as shown in FIG. 12, which are complementary to each other as shown in FIG. Schematic diagram of the structure after the array of open resonant ring structures. The invention will be described below by taking the open spiral ring structure shown in Fig. 5 as an example. Further, in the present invention, the material for manufacturing the dielectric substrate includes a ceramic material, a polymer material, a ferroelectric material, a ferrite material, or a ferromagnetic material. Preferably, it is made of a polymer material, specifically, a polymer material such as FR-4 or F4B.
本发明中, 第一金属片及第二金属片为铜片或银片。 优选为铜片, 价格低 廉, 导电性能好。  In the present invention, the first metal piece and the second metal piece are copper pieces or silver pieces. It is preferably a copper sheet, which is inexpensive and has good electrical conductivity.
本发明中, 第一馈线、 第二馈线选用与第一金属片及第二金属片同样的材 料制成。 优选为铜。  In the present invention, the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece. It is preferably copper.
本发明中, 关于天线的加工制造, 只要满足本发明的设计原理, 可以釆用 各种制造方式。最普通的方法是使用各类印刷电路板(PCB )的制造方法, 当然, 金属化的通孔, 双面覆铜的 PCB制造也能满足本发明的加工要求。 除此加工方 式, 还可以根据实际的需要引入其它加工手段, 比如 RFID ( RFID 是 Radio Frequency Identification的缩写, 即射频识别技术, 俗称电子标签) 中所使用的 导电银浆油墨加工方式、 各类可形变器件的柔性 PCB加工、 铁片天线的加工方 式以及铁片与 PCB组合的加工方式。 其中,铁片与 PCB组合加工方式是指利用 PCB 的精确加工来完成天线微槽结构的加工, 用铁片来完成其它辅助部分。 另 外, 还可以通过蚀刻、 电镀、 钻刻、 光刻、 电子刻或离子刻的方法来加工。  In the present invention, as for the processing and manufacturing of the antenna, various manufacturing methods can be employed as long as the design principle of the present invention is satisfied. The most common method is to use a variety of printed circuit board (PCB) manufacturing methods. Of course, metallized through-hole, double-sided copper-clad PCB fabrication can also meet the processing requirements of the present invention. In addition to this processing method, other processing means can be introduced according to actual needs, such as RFID (RFID is the abbreviation of Radio Frequency Identification, that is, radio frequency identification technology, commonly known as electronic label), the processing method of conductive silver paste ink, various types can be The flexible PCB processing of the deformation device, the processing method of the iron piece antenna, and the processing method of the combination of the iron piece and the PCB. Among them, the combination of iron sheet and PCB processing means that the precise processing of the PCB is used to complete the processing of the antenna microgroove structure, and the iron piece is used to complete other auxiliary parts. In addition, it can be processed by etching, electroplating, drilling, photolithography, electron engraving or ion engraving.
本发明还提供了一种 MIMO天线,所述的 MIMO天线由多个上述的天线组 成。 此处的 MIMO即是指多输入多输出。 即 MIMO天线上的所有单个的天线 1 同时发射, 同时接收。 MIMO 天线可以在不需要增加带宽或总发送功率损耗的 前提下大幅度增加系统的信息吞吐量及传输距离。 另外本发明的 MIMO天线还 具有很高的隔离度, 多个天线之间的抗干扰能力强。  The present invention also provides a MIMO antenna, the MIMO antenna being composed of a plurality of the above antennas. Here, MIMO refers to multiple input and multiple output. That is, all the individual antennas 1 on the MIMO antenna are simultaneously transmitted and received simultaneously. The MIMO antenna can greatly increase the information throughput and transmission distance of the system without increasing the bandwidth or total transmission power loss. In addition, the MIMO antenna of the present invention also has high isolation and strong anti-interference ability between multiple antennas.
本发明的 MIMO天线, 其每个天线的第一馈线与第二馈线电连接后再与一 个接收 /发射机连接, 所有的接收 /发射机均连接到一个基带信号处理器上。  In the MIMO antenna of the present invention, the first feeder of each antenna is electrically connected to the second feeder and then connected to a receiver/transmitter, and all receivers/transmitters are connected to a baseband signal processor.
上面结合附图对本发明的实施例进行了描述, 但是本发明并不局限于上述 的具体实施方式, 上述的具体实施方式仅仅是示意性的, 而不是限制性的, 本 领域的普通技术人员在本发明的启示下, 在不脱离本发明宗旨和权利要求所保 护的范围情况下, 还可做出很多形式, 这些均属于本发明的保护之内。 The embodiments of the present invention have been described above with reference to the drawings, but the present invention is not limited to the specific embodiments described above, and the specific embodiments described above are merely illustrative and not restrictive, and those skilled in the art In the light of the present invention, without departing from the spirit and scope of the present invention In the case of the scope of protection, many forms are also possible, which are all within the protection of the present invention.

Claims

权 利 要求 Rights request
1、 一种天线, 其特征在于, 所述天线包括介质基板、 附着在所述介质基板 相对两表面的第一金属片及第二金属片, 围绕所述第一金属片设置有第一馈线, 围绕所述第二金属片设置有第二馈线, 所述第一馈线及所述第二馈线通过耦合 方式分别馈入所述第一金属片及所述第二金属片, 所述第一金属片及所述第二 金属片上分别镂空有第一微槽结构及第二微槽结构, 所述第一馈线与所述第二 馈线电连接。 An antenna, comprising: a dielectric substrate; a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate; and a first feed line disposed around the first metal piece, a second feed line is disposed around the second metal piece, and the first feed line and the second feed line are respectively fed into the first metal piece and the second metal piece by a coupling manner, the first metal piece And the second metal piece is hollowed out with a first micro-slot structure and a second micro-slot structure, and the first feed line is electrically connected to the second feed line.
2、 根据权利要求 1所述的天线, 其特征在于, 所述介质基板的制造材料包 括陶瓷材料、 高分子材料、 铁电材料、 铁氧材料或铁磁材料。  The antenna according to claim 1, wherein the dielectric substrate is made of a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
3、 根据权利要求 1所述的天线, 其特征在于, 所述第一微槽结构为互补式 开口谐振环结构、 互补式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以 及互补式弯折线结构中的一种或是通过前述五种结构的其中一种结构衍生、 多 种结构复合或一种结构组阵得到的金属微结构。  The antenna according to claim 1, wherein the first microgroove structure is a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double-open spiral ring structure, and a complementary bend. One of the polygonal line structures is a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
4、 根据权利要求 1所述的天线, 其特征在于, 所述第二微槽结构为互补式 开口谐振环结构、 互补式螺旋线结构、 开口螺旋环结构、 双开口螺旋环结构以 及互补式弯折线结构中中的一种或是通过前述五种结构的其中一种结构衍生、 多种结构复合或一种结构组阵得到的金属微结构。  The antenna according to claim 1, wherein the second microgroove structure is a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double-open spiral ring structure, and a complementary bend. One of the polygonal line structures is a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
5、 根据权利要求 1所述的天线, 其特征在于, 所述第一金属片与所述第二 金属片通过金属化通孔或导线连接。  The antenna according to claim 1, wherein the first metal piece and the second metal piece are connected by a metalized through hole or a wire.
6、 根据权利要求 1所述的天线, 其特征在于, 所述第一馈线与所述第二馈 线通过金属化通孔或导线连接。  The antenna according to claim 1, wherein the first feed line and the second feed line are connected by metalized through holes or wires.
7、 根据权利要求 1所述的天线, 其特征在于, 所述第一金属片为铜片或银 片。  The antenna according to claim 1, wherein the first metal piece is a copper piece or a silver piece.
8、 根据权利要求 1所述的天线, 其特征在于, 所述第二金属片为铜片或银 片。 8. The antenna according to claim 1, wherein the second metal piece is a copper piece or a silver piece.
9、 根据权利要求 1所述的天线, 其特征在于, 所述第一馈线与所述第二馈 线选用与所述第一金属片及所述第二金属片同样的材料制成。 The antenna according to claim 1, wherein the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece.
10、 一种 MIMO天线, 其特征在于, 所述 MIMO天线包括介质基板、 附着 在所述介质基板相对两表面的第一金属片及第二金属片, 围绕所述第一金属片 设置有第一馈线, 围绕所述第二金属片设置有第二馈线, 所述第一馈线及所述 第二馈线通过耦合方式分别馈入所述第一金属片及所述第二金属片, 所述第一 金属片及所述第二金属片上分别镂空有第一微槽结构及第二微槽结构, 所述第 一馈线与所述第二馈线电连接。  A MIMO antenna, comprising: a dielectric substrate; a first metal piece and a second metal piece attached to opposite surfaces of the dielectric substrate, and a first surrounding the first metal piece a second feed line is disposed around the second metal piece, and the first feed line and the second feed line are respectively fed into the first metal piece and the second metal piece by coupling, the first A first microgroove structure and a second microgroove structure are respectively hollowed out on the metal piece and the second metal piece, and the first feed line is electrically connected to the second feed line.
11、 根据权利要求 10所述的 MIMO天线, 其特征在于, 所述介质基板的制 造材料包括陶瓷材料、 高分子材料、 铁电材料、 铁氧材料或铁磁材料。  The MIMO antenna according to claim 10, wherein the manufacturing material of the dielectric substrate comprises a ceramic material, a polymer material, a ferroelectric material, a ferrite material or a ferromagnetic material.
12、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第一微槽结构 为互补式开口谐振环结构、 互补式螺旋线结构、 开口螺旋环结构、 双开口螺旋 环结构以及互补式弯折线结构中的一种或是通过前述五种结构的其中一种结构 衍生、 多种结构复合或一种结构组阵得到的金属微结构。  The MIMO antenna according to claim 10, wherein the first microchannel structure is a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary type. One of the bent line structures is a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
13、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第二微槽结构 为互补式开口谐振环结构、 互补式螺旋线结构、 开口螺旋环结构、 双开口螺旋 环结构以及互补式弯折线结构中中的一种或是通过前述五种结构的其中一种结 构衍生、 多种结构复合或一种结构组阵得到的金属微结构。  The MIMO antenna according to claim 10, wherein the second microgroove structure is a complementary open resonant ring structure, a complementary spiral structure, an open spiral ring structure, a double open spiral ring structure, and a complementary type. One of the bent line structures is a metal microstructure obtained by one of the foregoing five structures, a plurality of structural composites, or a structural array.
14、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第一金属片与 所述第二金属片通过金属化通孔或导线连接。  The MIMO antenna according to claim 10, wherein the first metal piece and the second metal piece are connected by a metallized through hole or a wire.
15、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第一馈线与所 述第二馈线通过金属化通孔或导线连接。  The MIMO antenna according to claim 10, wherein the first feed line and the second feed line are connected by metalized vias or wires.
16、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第一金属片为 铜片或银片。  The MIMO antenna according to claim 10, wherein the first metal piece is a copper piece or a silver piece.
17、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第二金属片为 铜片或银片。 The MIMO antenna according to claim 10, wherein the second metal piece is a copper piece or a silver piece.
18、根据权利要求 10所述的 MIMO天线, 其特征在于, 所述第一馈线与所 述第二馈线选用与所述第一金属片及所述第二金属片同样的材料制成。 The MIMO antenna according to claim 10, wherein the first feed line and the second feed line are made of the same material as the first metal piece and the second metal piece.
PCT/CN2011/080390 2011-05-31 2011-09-29 Antenna and mimo antenna having the dual-polarized antenna WO2012162991A1 (en)

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