WO2015035854A1 - 一种金属框天线及终端 - Google Patents

一种金属框天线及终端 Download PDF

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Publication number
WO2015035854A1
WO2015035854A1 PCT/CN2014/084960 CN2014084960W WO2015035854A1 WO 2015035854 A1 WO2015035854 A1 WO 2015035854A1 CN 2014084960 W CN2014084960 W CN 2014084960W WO 2015035854 A1 WO2015035854 A1 WO 2015035854A1
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WIPO (PCT)
Prior art keywords
antenna
metal frame
radio frequency
slot
radiation system
Prior art date
Application number
PCT/CN2014/084960
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English (en)
French (fr)
Inventor
吴鹏飞
Original Assignee
中兴通讯股份有限公司
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Publication date
Application filed by 中兴通讯股份有限公司 filed Critical 中兴通讯股份有限公司
Publication of WO2015035854A1 publication Critical patent/WO2015035854A1/zh

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Classifications

    • 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
    • H01Q1/242Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for hand-held use
    • H01Q1/243Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for hand-held use with built-in antennas
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/44Details of, or arrangements associated with, antennas using equipment having another main function to serve additionally as an antenna, e.g. means for giving an antenna an aesthetic aspect
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q9/00Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
    • H01Q9/04Resonant antennas
    • H01Q9/30Resonant antennas with feed to end of elongated active element, e.g. unipole
    • H01Q9/42Resonant antennas with feed to end of elongated active element, e.g. unipole with folded element, the folded parts being spaced apart a small fraction of the operating wavelength

Definitions

  • the present invention relates to the field of mobile communication terminal technologies, and in particular, to a metal frame antenna and a terminal applied to an LTE (Long Term Evolution) intelligent terminal.
  • LTE Long Term Evolution
  • LTE is moving from a single data service to a full data service.
  • LTE While LTE is developing rapidly, it also faces many challenges. Due to the excessive dispersion of the LTE frequency band and the different voice solutions of operators, the trend of the separation of services in the terminal and roaming markets has become more serious. End products, especially smartphones, are emerging, but few products can meet the network needs of multiple operators at the same time.
  • One of the bottlenecks is the antenna design.
  • the LTE band is extremely wide, so it is more compatible with the antenna bandwidth after being compatible with the 2G/3G band.
  • mobile terminals with metal casings such as smart phones have become popular trends, and many manufacturers have introduced products with metallic appearance.
  • the antenna performance is difficult to meet the operator's network requirements.
  • a related art uses a bezel slot antenna for a mobile terminal of a metal casing.
  • the frame gap antenna is a loop antenna that uses a metal frame, an opening gap of the metal frame, and an impedance matching circuit to form a series or parallel feed.
  • the frame slot antenna uses the entire metal frame as the radiating element of the antenna, so that when the user uses the smart terminal, the hand affects the antenna signal of the smart terminal. Summary of the invention
  • the embodiment of the invention provides a metal frame antenna, which is applied to an LTE intelligent terminal, and can reduce the influence of the hand on the antenna signal.
  • a metal frame antenna includes an antenna portion and a non-antenna portion, wherein: an antenna portion of the metal frame is used to implement an antenna radiation system; and the antenna portion is separated from a non-antenna portion of the metal frame by a gap or insulator of the metal frame; The non-antenna portion is grounded.
  • the non-antenna portion is disposed in a contact area when the user holds the terminal.
  • the antenna radiation system includes a main antenna radiation system, a diversity antenna radiation system, and a global positioning system GPS antenna radiation system;
  • the slit includes a first slit, a second slit, a third slit, a fourth slit, and a fifth a slot;
  • the non-antenna portion includes a first non-antenna portion and a second non-antenna portion;
  • One end of the main antenna radiation system is connected to the first slot, and the other end is connected to the second slot; one end of the diversity antenna radiation system is connected to the third slot, and the other end is connected to the fifth slot; the GPS antenna radiating system has one end The fourth slot is connected, and the other end is connected to the fifth slot;
  • Two ends of the first non-antenna portion are respectively connected to the first slot and the third slot, and two ends of the second non-antenna portion are respectively connected to the second slot and the fourth slot.
  • both ends of the first non-antenna portion are grounded, and both ends of the second non-antenna portion are grounded.
  • the main antenna radiation system includes a radiation unit, a coupling unit, a radio frequency excitation port, a first radio frequency ground point, and a second radio frequency ground point;
  • the radiating unit is an antenna portion connected to the first slot and the second slot;
  • the coupling unit is located on the clearance area and grounded through the first RF grounding point;
  • One end of the RF excitation port and the second RF ground point are connected to the radiating unit, and the other end is grounded.
  • the radiating unit comprises a high frequency radiating unit and a low frequency radiating unit
  • the high frequency radiating unit is an antenna portion between the RF excitation port and the second slot
  • the low frequency radiating unit is the RF excitation The antenna portion between the port and the first slot.
  • the high frequency radiating element has a length of 30 mm
  • the low frequency radiating element has a length of 70 mm
  • the second slit has a width of 2 mm
  • the first slit has a width of 1 mm.
  • the diversity antenna radiation system comprises a radiation unit, an RF excitation port and a third RF ground point;
  • the radiating element of the diversity antenna radiation system is an antenna connected to the third slot and the fifth slot section;
  • One end of the RF excitation port and the third RF ground point are connected to the radiating unit, and the other end is grounded.
  • the radiating unit of the diversity antenna radiation system comprises a high frequency radiating unit and a low frequency radiating unit
  • the low frequency radiating unit is an antenna portion between the RF excitation port and the fifth slot
  • the high frequency radiating unit An antenna portion between the RF excitation port and the third slot.
  • the low frequency radiating element has a length of 65 mm
  • the high frequency radiating element has a length of 30 mm
  • the third slit, the fourth slit and the fifth slit have a width of 1 mm.
  • the GPS antenna radiation system comprises a radiation unit, an RF excitation port and a fourth RF grounding point;
  • the radiating unit of the GPS antenna radiation system is an antenna portion connected to the fourth slot and the fifth slot;
  • One end of the RF excitation port and the fourth RF ground point are connected to the radiating unit, and the other end is grounded.
  • the gap is filled with an insulator.
  • the embodiment of the invention further provides a terminal comprising the above metal frame antenna.
  • a gap is formed on the metal frame, the metal frame is isolated into an antenna portion and a non-antenna portion, and the antenna radiation system is directly realized by using the antenna portion of the metal frame.
  • the metal frame antenna structure of the present invention does not use the entire metal frame as the radiating element of the antenna, but only the antenna portion of the metal frame as the radiating element of the antenna, thereby reducing the influence of the hand on the antenna signal.
  • the width of the slit on the metal frame is mainly related to the receiving frequency of the antenna, and therefore, the width of the slit on the metal frame can be flexibly set according to the frequency to be received by the antenna.
  • the diversity antenna radiation system and the GPS antenna radiation system in the antenna radiation system are isolated by providing an open gap in the metal frame, thereby eliminating mutual interference between the respective received signals.
  • FIG. 1 is a schematic structural diagram of a metal frame antenna applied to an LTE intelligent terminal according to an embodiment of the present invention
  • FIG. 2 is a schematic diagram of a main antenna radiation system according to an embodiment of the present invention
  • FIG. 3 is a schematic diagram of a diversity antenna radiation system and a GPS antenna radiation system according to an embodiment of the present invention
  • FIG. 4 is a schematic diagram of a 0.5 GHz-3.0 GHz reflection coefficient curve of a main antenna radiation system at normal temperature and pressure according to an embodiment of the present invention
  • FIG. 5 is a schematic diagram of a 0.5 GHz-3.0 GHz reflection coefficient curve of a diversity antenna radiation system at normal temperature and normal pressure according to an embodiment of the present invention
  • FIG. 6 is a schematic diagram of a 0.5 GHz-3.0 GHz reflection coefficient curve of a GPS antenna radiation system at normal temperature and pressure according to an embodiment of the present invention.
  • 1 is the first slot
  • 2 is the second slot
  • 3 is the third slot
  • 4 is the fourth slot
  • 5 is the fifth slot
  • 6 is the first ground point of the non-antenna part
  • 7 is the non-antenna part.
  • 8 is a third grounding point of the non-antenna portion
  • 9 is a fourth grounding point of the non-antenna portion
  • 10 is a first non-antenna portion
  • 11 is a second non-antenna portion
  • 12 is a main antenna radiation system
  • 13 is the high frequency radiating element of the main antenna radiating system
  • 14 is the coupling unit
  • 15 is the first RF grounding point
  • 16 is the RF excitation port
  • 17 is the second RF grounding point
  • 18 is the diversity antenna radiation system.
  • the radiating unit, 19 is a radiating unit of the GPS antenna radiation system
  • 20 is a third RF grounding point
  • 21
  • embodiments of the present invention provide a metal frame antenna, wherein the antenna portion of the metal frame is used to implement the antenna radiation system; the antenna portion passes through the gap of the metal frame and the metal frame The non-antenna portion is isolated; the non-antenna portion is grounded.
  • the non-antenna portion is disposed in the contact area of the user when the handheld terminal is used.
  • the gap of the metal frame may be filled with air or an insulator, which is not limited in the present invention.
  • the antenna radiation system includes a main antenna radiation system, a diversity antenna radiation system, and a GPS antenna radiation system;
  • one end of the main antenna radiation system is connected to the first slot 1 and the other end is connected to the second slot 2; one end of the diversity antenna radiation system is connected to the third slot 3, and the other end is connected to the fifth slot 5; GPS antenna radiation system One end is connected to the fourth slit 4, and the other end is connected to the fifth slit 5.
  • Two ends of the first non-antenna portion 10 are respectively connected to the first slit 1 and the third slit 3, and two ends of the second non-antenna portion 11 are respectively connected to the second slit 2 and the fourth slit 4 Connected.
  • connection point 6 and the second connection point 7 at both ends of the first non-antenna portion 10 are both grounded, and the third connection point 8 and the fourth connection point 9 at both ends of the second non-antenna portion 11 are grounded.
  • the main antenna radiation system includes a radiation unit, a coupling unit 14, an RF excitation port 16, a first RF ground point 15 and a second RF ground point 17;
  • the radiating unit is an antenna portion connected to the first slit 1 and the second slit 2;
  • the coupling unit 14 is located on the clearance area, which is well known to those skilled in the art and is grounded through the first RF grounding point 15;
  • One end of the RF excitation port 14 and the second RF ground point 15 are connected to the radiating element, and the other end is grounded.
  • the radiating unit includes a high frequency radiating unit 13 and a low frequency radiating unit 12, the high frequency radiating unit 13 is an antenna portion between the RF excitation port 16 and the second slot 2, and the low frequency radiating unit 12 is between the RF excitation port 16 and the first slot 1. Antenna section.
  • the length of the high frequency radiation unit 13 is 30 millimeters (mm)
  • the length of the low frequency radiation unit 12 is 70 millimeters (mm)
  • the width of the second slit 2 is 2 millimeters (mm)
  • the width of the first slit 1 It is 1 mm (mm).
  • the diversity antenna radiation system includes a radiation unit, an RF excitation port 16 and a third RF ground point 20;
  • the radiating element of the diversity antenna radiating system is an antenna portion 18 connected to the third slot 3 and the fifth slot 5; One end of the RF excitation port 16 and the third RF ground point 20 are connected to the radiating unit, and the other end is grounded.
  • the radiating element of the diversity antenna radiating system comprises a high frequency radiating unit and a low frequency radiating unit, the low frequency radiating unit is an antenna portion between the RF excitation port 16 and the fifth slot 5, and the high frequency radiating unit is the RF excitation port 16 and the third slot 3. Between the antenna sections.
  • the length of the low frequency radiating element of the diversity antenna radiation system is 65 millimeters (mm), and the length of the high frequency radiating element of the diversity antenna radiation system is 30 millimeters (mm), the third slit 3, the fourth slit 4 and the fifth slit 5
  • the width is 1 mm (mm).
  • the GPS antenna radiation system includes a radiation unit, an RF excitation port 16 and a fourth RF ground point 21;
  • the radiating element of the GPS antenna radiation system is an antenna portion 19 connected to the fourth slot 4 and the fifth slot;
  • One end of the RF excitation port 16 and the fourth RF ground point 21 are connected to the radiating element, and the other end is grounded.
  • Figure 4-6 is a schematic diagram of a 0.5 GHz-3.0 GHz reflection coefficient curve of a three-antenna radiation system at normal temperature and pressure. It can be seen from the figure that the method proposed by the embodiment of the present invention is different according to different requirements of different operators and intelligent terminals. Both of them can meet different frequency band requirements. For example, the receiving frequency range of the LTE network is 0.7-0.9 GHz and 1.7-2.1 GHz. It can be seen from the figure that the method proposed by the present invention can meet the frequency band requirements of the LTE network.
  • a gap is formed on the metal frame, the metal frame is isolated into an antenna portion and a non-antenna portion, and the antenna radiation system is directly realized by using the antenna portion of the metal frame.
  • the metal frame antenna structure of the embodiment of the present invention does not use the entire metal frame as the radiating element of the antenna, but only the antenna portion of the metal frame as the radiating element of the antenna, thereby reducing the influence of the hand on the antenna signal.
  • the width of the slit on the metal frame is mainly related to the receiving frequency of the antenna, and therefore, the width of the slit on the metal frame can be flexibly set according to the frequency to be received by the antenna.
  • the diversity antenna radiation system and the GPS antenna radiation system in the antenna radiation system are isolated, thereby eliminating mutual mutual signals between the two. Interference.
  • the embodiment of the invention further provides a terminal comprising the above metal frame antenna.
  • a gap is formed on the metal frame, the metal frame is isolated into an antenna portion and a non-antenna portion, and the antenna radiation system is directly realized by using the antenna portion of the metal frame.
  • the metal frame antenna structure of the present invention does not use the entire metal frame as the radiating element of the antenna, but only the antenna portion of the metal frame as the radiating element of the antenna, thereby reducing the influence of the hand on the antenna signal.

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  • Computer Networks & Wireless Communication (AREA)
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Abstract

本发明实施例提出了一种金属框天线及终端,采用金属框的天线部分实现天线辐射***;所述天线部分通过金属框的缝隙与金属框的非天线部分隔离;所述非天线部分接地。本发明实施例的金属框天线,在金属框上设置缝隙,将金属框隔离为天线部分和非天线部分,并且直接利用金属框的天线部分实现天线辐射***。

Description

一种金属框天线及终端 技术领域
本发明涉及移动通信终端技术领域, 尤其涉及一种应用于长期演进 ( LTE, Long Term Evolution )智能终端的金属框天线及终端。
背景技术
LTE作为新一代移动宽带技术, 正从单一数据业务向全数据业务迈进。
LTE发展迅速的同时也面临着很多挑战。 由于 LTE频段过于分散, 运营商语 音方案不同, 导致终端及漫游市场业务割裂的趋势愈加严重。 终端产品尤其 是智能手机产品层出不穷, 但是很少有产品能够同时满足多个运营商的网络 需求。 瓶颈之一在于天线设计, LTE频段范围极宽, 因此兼容 2G/3G频段后 对天线带宽提出了更高的要求。 最近, 带有金属外壳的移动终端如智能手机 成为了流行趋势, 很多厂家推出了具有金属外观的产品。 但是, 研究发现, 由于金属外壳结构件距离移动终端的天线很近, 需要复杂的接地处理来弱化 金属外壳对天线性能的影响, 即便如此, 最终天线的表现还是不尽如人意。 尤其是具有超薄结构而且具有金属外壳的手机上, 天线性能很难达到运营商 的网络要求。
针对金属外壳的移动终端, 相关技术使用边框缝隙天线。 该边框缝隙天 线为利用金属框, 金属框的开口缝隙及阻抗匹配电路构成串馈或并馈的环形 天线。 边框缝隙天线利用整个金属框作为天线的辐射单元, 这样, 在用户手 持智能终端使用时, 手会对智能终端的天线信号产生影响。 发明内容
本发明实施例提供一种金属框天线, 应用于 LTE智能终端, 能够降低手 对天线信号的影响。 一种金属框天线, 包括天线部分和非天线部分, 其中, 釆用金属框的天 线部分实现天线辐射***; 所述天线部分通过金属框的缝隙或绝缘体与金属 框的非天线部分隔离; 其中, 所述非天线部分接地。
较佳地, 所述非天线部分设置在用户手持终端时常接触区域。
较佳地, 所述天线辐射***包括主天线辐射***、 分集天线辐射***和 全球定位*** GPS天线辐射***; 所述缝隙包括第一缝隙、 第二缝隙、 第三 缝隙、 第四缝隙和第五缝隙; 所述非天线部分包括第一非天线部分和第二非 天线部分;
所述主天线辐射***一端与第一缝隙相连, 另一端与第二缝隙相连; 所 述分集天线辐射***一端与第三缝隙相连,另一端与第五缝隙相连;所述 GPS 天线辐射***一端与第四缝隙相连, 另一端与第五缝隙相连;
所述第一非天线部分的两端分别与所述第一缝隙和所述第三缝隙相连, 所述第二非天线部分的两端分别与所述第二缝隙和所述第四缝隙相连。 较佳地, 所述第一非天线部分的两端均接地, 所述第二非天线部分的两 端均接地。
较佳地, 所述主天线辐射***包括辐射单元、 耦合单元、 射频激励端口、 第一射频接地点和第二射频接地点;
所述辐射单元为与第一缝隙和第二缝隙相连的天线部分;
所述耦合单元位于净空区域上, 并通过第一射频接地点接地;
所述射频激励端口和第二射频接地点的一端均与所述辐射单元相连, 另 一端均接地。
较佳地, 所述辐射单元包括高频辐射单元和低频辐射单元, 所述高频辐 射单元为所述射频激励端口和第二缝隙之间的天线部分, 所述低频辐射单元 为所述射频激励端口和第一缝隙之间的天线部分。
较佳地, 所述高频辐射单元的长度为 30毫米, 所述低频辐射单元的长度 为 70毫米, 所述第二缝隙的宽度为 2毫米, 所述第一缝隙的宽度为 1毫米。
较佳地, 所述分集天线辐射***包括辐射单元、 射频激励端口和第三射 频接地点;
所述分集天线辐射***的辐射单元为与第三缝隙和第五缝隙相连的天线 部分;
所述射频激励端口和第三射频接地点的一端均与所述辐射单元相连, 另 一端均接地。
较佳地, 所述分集天线辐射***的辐射单元包括高频辐射单元和低频辐 射单元,所述低频辐射单元为所述射频激励端口和第五缝隙之间的天线部分, 所述高频辐射单元为所述射频激励端口和第三缝隙之间的天线部分。
较佳地, 所述低频辐射单元的长度为 65毫米, 所述高频辐射单元的长度 为 30毫米, 所述第三缝隙、 第四缝隙和第五缝隙的宽度均为 1毫米。
较佳地, 所述 GPS天线辐射***包括辐射单元、 射频激励端口和第四射 频接地点;
所述 GPS天线辐射***的辐射单元为与第四缝隙和第五缝隙相连的天线 部分;
所述射频激励端口和第四射频接地点的一端均与所述辐射单元相连, 另 一端接地。
较佳地, 所述缝隙内填充绝缘体。
本发明实施例还提供一种包括上述金属框天线的终端。
本发明实施例的金属框天线, 在金属框上设置缝隙, 将金属框隔离为天 线部分和非天线部分, 并且直接利用金属框的天线部分实现天线辐射***。 本发明金属框天线结构不像相关技术那样, 将整个金属框作为天线的辐射单 元, 而仅将金属框的天线部分作为天线的辐射单元, 从而降低了手对天线信 号的影响。
较佳地, 金属框上的缝隙的宽度主要与天线的接收频率相关, 因此, 根 据天线要接收的频率可以灵活设置金属框上缝隙的宽度。
较佳地, 通过在金属框上设置开口缝隙, 隔离天线辐射***中的分集天 线辐射***和 GPS天线辐射***, 从而消除了二者各自接收信号之间的相互 干扰。 附图概述
下面对本发明实施例中的附图进行说明, 实施例中的附图是用于对本发 明的进一步理解, 与说明书以前用于解释本发明, 并不构成对本发明的限制。
图 1为本发明实施例中应用于 LTE智能终端的金属框天线结构示意图; 图 2为本发明实施例中主天线辐射***示意图;
图 3为本发明实施例中分集天线辐射***和 GPS天线辐射***示意图; 图 4为本发明实施例中主天线辐射***常温常压下 0.5GHz-3.0GHz反射 系数曲线示意图;
图 5为本发明实施例中分集天线辐射***常温常压下 0.5GHz-3.0GHz反 射系数曲线示意图;
图 6为本发明实施例中 GPS天线辐射***常温常压下 0.5GHz-3.0GHz反 射系数曲线示意图。
图中, 1 为第一缝隙, 2为第二缝隙, 3为第三缝隙, 4为第四缝隙, 5 为第五缝隙, 6为非天线部分的第一接地点, 7为非天线部分的第二接地点, 8为非天线部分的第三接地点, 9为非天线部分的第四接地点, 10为第一非 天线部分, 11为第二非天线部分, 12为主天线辐射***的低频辐射单元, 13 为主天线辐射***的高频辐射单元, 14为耦合单元, 15为第一射频接地点, 16为射频激励端口, 17为第二射频接地点, 18为分集天线辐射***的辐射 单元, 19为 GPS天线辐射***的辐射单元, 20为第三射频接地点, 21为第 三射频接地点。 本发明的较佳实施方式
下文将结合附图对本发明实施例作详细说明。 需要说明的是, 在不冲突 的情况下, 本申请的实施例和实施例中的特征可以任意相互组合。 发明发明 为了迎合目前市场对智能终端外壳金属化的需求, 本发明的实施例提出了一 种金属框天线, 釆用金属框的天线部分实现天线辐射***; 天线部分通过金 属框的缝隙与金属框的非天线部分隔离; 非天线部分接地。
其中, 非天线部分设置在用户手持终端时常接触区域。 其中, 金属框的缝隙可以填充空气或者绝缘体, 本发明不作限定。
其中, 天线辐射***, 包括主天线辐射***、 分集天线辐射***和 GPS 天线辐射***;
参见图 1 , 主天线辐射***一端与第一缝隙 1相连, 另一端与第二缝隙 2 相连; 分集天线辐射***一端与第三缝隙 3相连, 另一端与第五缝隙 5相连; GPS天线辐射***一端与第四缝隙 4相连, 另一端与第五缝隙 5相连。
第一非天线部分 10的两端分别与所述第一缝隙 1和所述第三缝隙 3相 连,第二非天线部分 11的两端分别与所述第二缝隙 2和所述第四缝隙 4相连。
第一非天线部分 10两端的第一连接点 6和第二连接点 7均接地,第二非 天线部分 11两端的第三连接点 8和第四连接点 9均接地。
参见图 2, 主天线辐射***包括辐射单元、 耦合单元 14、 射频激励端口 16、 第一射频接地点 15和第二射频接地点 17;
辐射单元为与第一缝隙 1和第二缝隙 2相连的天线部分;
耦合单元 14位于净空区域上, 净空区域为本领域技术人员公知的, 并通 过第一射频接地点 15接地;
射频激励端口 14和第二射频接地点 15的一端均与辐射单元相连, 另一 端均接地。
辐射单元包括高频辐射单元 13和低频辐射单元 12, 高频辐射单元 13为 射频激励端口 16和第二缝隙 2之间天线部分, 低频辐射单元 12为射频激励 端口 16和第一缝隙 1之间的天线部分。
高频辐射单元 13的长度为 30毫米(mm ) , 所述低频辐射单元 12的长 度为 70毫米(mm ) , 第二缝隙 2的宽度为 2毫米(mm ) , 所述第一缝隙 1 的宽度为 1毫米(mm ) 。
参见图 3 , 分集天线辐射***包括辐射单元、 射频激励端口 16和第三射 频接地点 20;
其中, 分集天线辐射***的辐射单元为与第三缝隙 3和第五缝隙 5相连 的天线部分 18; 射频激励端口 16和第三射频接地点 20的一端均与辐射单元相连, 另一 端接地。
分集天线辐射***的辐射单元包括高频辐射单元和低频辐射单元, 低频 辐射单元为射频激励端口 16和第五缝隙 5之间的天线部分, 高频辐射单元为 射频激励端口 16和第三缝隙 3之间的天线部分。
分集天线辐射***的低频辐射单元的长度为 65毫米(mm ) , 分集天线 辐射***的高频辐射单元的长度为 30毫米(mm ) , 第三缝隙 3、 第四缝隙 4 和第五缝隙 5的宽度均为 1毫米(mm ) 。
GPS天线辐射***包括辐射单元、 射频激励端口 16和第四射频接地点 21 ;
GPS天线辐射***的辐射单元为与第四缝隙 4和第五缝隙相连的天线部 分 19;
射频激励端口 16和第四射频接地点 21的一端均与辐射单元相连, 另一 端接地。
图 4-6为三个天线辐射***在常温常压下 0.5GHz-3.0GHz反射系数曲线 示意图, 从图中可以看出, 根据不同运营商和智能终端的不同要求, 本发明 实施例提出的方法都能够满足不同的频段要求, 例如, LTE网络的接收频段 范围为 0.7-0.9GHZ和 1.7-2.1GHZ, 从图中可以看出本发明提出的方法能够满 足 LTE网络的频段要求。
本发明实施例的金属框天线, 在金属框上设置缝隙, 将金属框隔离为天 线部分和非天线部分, 并且直接利用金属框的天线部分实现天线辐射***。 本发明实施例的金属框天线结构不是将整个金属框作为天线的辐射单元, 而 仅将金属框的天线部分作为天线的辐射单元, 从而降低了手对天线信号的影 响。
较佳地, 金属框上的缝隙的宽度主要与天线的接收频率相关, 因此, 根 据天线要接收的频率可以灵活设置金属框上缝隙的宽度。
较佳地, 通过在金属框上设置开口缝隙, 隔离天线辐射***中的分集天 线辐射***和 GPS天线辐射***, 从而消除了二者各自接收信号之间的相互 干扰。
本发明实施例还提供一种包括上述金属框天线的终端。
需要说明的是, 以上所述的实施例仅是为了便于本领域的技术人员理解 而已, 并不用于限制本发明的保护范围, 在不脱离本发明的发明构思的前提 下, 本领域技术人员对本发明所做出的任何显而易见的替换和改进等均在本 发明的保护范围之内。
工业实用性
本发明实施例的金属框天线, 在金属框上设置缝隙, 将金属框隔离为天 线部分和非天线部分, 并且直接利用金属框的天线部分实现天线辐射***。 本发明金属框天线结构不像相关技术那样, 将整个金属框作为天线的辐射单 元, 而仅将金属框的天线部分作为天线的辐射单元, 从而降低了手对天线信 号的影响。

Claims

权 利 要 求 书
1、 一种金属框天线, 包括天线部分和非天线部分, 其中,
所述天线部分实现天线辐射***; 所述天线部分通过金属框的缝隙与金 属框的非天线部分隔离;
所述非天线部分接地。
2、 根据权利要求 1所述的金属框天线, 其中, 所述非天线部分设置在用 户手持终端时常接触区域。
3、 根据权利要求 1所述的金属框天线, 其中, 所述天线辐射***包括主 天线辐射***、 分集天线辐射***和全球定位*** GPS天线辐射***; 所述 缝隙包括第一缝隙、 第二缝隙、 第三缝隙、 第四缝隙和第五缝隙; 所述非天 线部分包括第一非天线部分和第二非天线部分;
所述主天线辐射***一端与所述第一缝隙相连, 另一端与所述第二缝隙 相连; 所述分集天线辐射***一端与所述第三缝隙相连, 另一端与所述第五 缝隙相连; 所述 GPS天线辐射***一端与所述第四缝隙相连, 另一端与所述 第五缝隙相连;
所述第一非天线部分的两端分别与所述第一缝隙和所述第三缝隙相连, 所述第二非天线部分的两端分别与所述第二缝隙和所述第四缝隙相连。
4、 根据权利要求 3所述的金属框天线, 其中, 所述第一非天线部分的两 端均接地, 所述第二非天线部分的两端均接地。
5、 根据权利要求 3所述的金属框天线, 其中,
所述主天线辐射***包括辐射单元、 耦合单元、 射频激励端口、 第一射 频接地点和第二射频接地点;
所述辐射单元为与所述第一缝隙和所述第二缝隙相连的天线部分; 所述耦合单元位于净空区域上, 并通过所述第一射频接地点接地; 所述射频激励端口和所述第二射频接地点的一端均与所述辐射单元相 连, 所述射频激励端口和所述第二射频接地点的另一端均接地。
6、 根据权利要求 5所述的金属框天线, 其中, 所述辐射单元包括高频辐 射单元和低频辐射单元, 所述高频辐射单元为所述射频激励端口和第二缝隙 之间的天线部分, 所述低频辐射单元为所述射频激励端口和第一缝隙之间的 天线部分。
7、 根据权利要求 6所述的金属框天线, 其中, 所述高频辐射单元的长度 为 30毫米, 所述低频辐射单元的长度为 70毫米, 所述第二缝隙的宽度为 2 毫米, 所述第一缝隙的宽度为 1毫米。
8、 根据权利要求 3所述的金属框天线, 其中, 所述分集天线辐射***包 括辐射单元、 射频激励端口和第三射频接地点; 所述分集天线辐射***的辐射单元为与第三缝隙和第五缝隙相连的天线 部分;
所述射频激励端口和第三射频接地点的一端均与所述辐射单元相连, 所 述射频激励端口和第三射频接地点的另一端均接地。
9、 根据权利要求 8所述的金属框天线, 其中, 所述分集天线辐射***的 辐射单元包括高频辐射单元和低频辐射单元, 所述低频辐射单元为所述射频 激励端口和第五缝隙之间的天线部分, 所述高频辐射单元为所述射频激励端 口和第三缝隙之间的天线部分。
10、 根据权利要求 9所述的金属框天线, 其中, 所述低频辐射单元的长 度为 65毫米, 所述高频辐射单元的长度为 30毫米, 所述第三缝隙、 第四缝 隙和第五缝隙的宽度均为 1毫米。
11、 根据权利要求 3所述的金属框天线, 其中, 所述 GPS天线辐射*** 包括辐射单元、 射频激励端口和第四射频接地点; 所述 GPS天线辐射***的辐射单元为与第四缝隙和第五缝隙相连的天线 部分;
所述射频激励端口和第四射频接地点的一端均与所述辐射单元相连, 所 述射频激励端口和第四射频接地点的另一端接地。
12、 根据权利要求 1~11所述的金属框天线, 其中, 所述缝隙内填充绝缘 体。
13、 一种终端, 包括如权利要求 1-12任一项所述的金属框天线。
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