Multi-band antenna and methods for long term evolution wireless system

Information

  • Patent Grant
  • 8866689
  • Patent Number
    8,866,689
  • Date Filed
    Thursday, July 7, 2011
    14 years ago
  • Date Issued
    Tuesday, October 21, 2014
    11 years ago
Abstract
A multiband dipole antenna solution suitable for use in various wireless device applications, and methods of tuning and utilizing the same. In one embodiment, the antenna is adapted for use in long term evolution (LTE or LTE-A) radio devices. In one implementation, the antenna comprises (i) two planar directly fed radiating elements operating in a lower frequency band and disposed on two opposing sides of a dielectric structure, and (ii) two electromagnetically coupled radiating elements operating in an upper frequency band also disposed on the opposing sides of the dielectric structure. An additional pair of electromagnetically coupled radiator elements is utilized to achieve wider antenna operating bandwidth.
Description
COPYRIGHT

A portion of the disclosure of this patent document contains material that is subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in the Patent and Trademark Office patent files or records, but otherwise reserves all copyright rights whatsoever.


FIELD OF THE INVENTION

The present invention relates generally to antenna apparatus for use within electronic devices such as wireless radio devices, and more particularly in one exemplary aspect to a multi-band long term evolution (LTE) antenna, and methods of tuning and utilizing the same.


DESCRIPTION OF RELATED TECHNOLOGY

Increased proliferation of long term evolution and long term evolution advanced (hereinafter collectively “LTE”) mobile data services creates an increased demand for compact multi-band antennas typically used in radio devices, such as wireless access point, bridge, or a hub. Typically, it is desired for an LTE-compliant radio device to support operation in multiple frequency bands (such as, for example, 698 MHz to 960 MHz, 1710 MHz to 1990 MHz, 2110 MHz to 2170 MHz, and 2500 MHz to 2700 MHz). Furthermore, LTE system has been defined to accommodate paired spectrum for Frequency Division Duplex (FDD) mode of operation where the uplink and the downlink transmissions occupy different parts of the spectrum. By way of example, the uplink occupies the frequency range from 1710 MHz to 1770 MHz, and the downlink occupies the frequency range from 2110 MHz to 2170 MHz. It is therefore desirable for antennas used in an LTE-compliant device to cover a wide range of frequencies ranging from about 650 MHz to about 2700 MHz, while maintaining a unidirectional radiation pattern. It is further desired to be able to tune individual operating frequency bands of the antenna without affecting antenna functionality in other bands.


Dipole type antennas are typically used to achieve an omni-directional radiation pattern, such as characterized by radiation pattern that is shaped like a toroid in three-dimensional space and is symmetric about the axis of the dipole.


However, most existing single feed dipole antenna solutions operate in a single frequency band. At present, implementing a single planar dipole antenna that is efficient in several frequency bands is problematic, as separate antenna elements that cover different frequency bands interact with each other and create mutual interference patterns that degrade antenna performance. Some existing approaches attempt to solve this problem by constructing multiple separately fed dipole antennas, each cooperating in a separate frequency band. Multiple dipole antennas (packaged within the same protective enclosure, also referred to as the radome) are often used to achieve multiband operation. However, such solutions require a separate feed for each antenna thereby increasing cost and complexity. This approach may also cause coupled resonances that adversely affect antenna performance.


Accordingly, there is a salient need for an improved multiband dipole antenna solution suitable for use in, inter alia, LTE compliant radio devices, that offers a lower cost and complexity, and provides for improved control of antenna resonance. Such improved solution would also ideally have a desirable form factor (e.g., small size, and compatible with target applications such as hand-held mobile devices).


SUMMARY OF THE INVENTION

The present invention satisfies the foregoing needs by providing, inter alia, a space-efficient multiband antenna apparatus, and methods of tuning and use.


In a first aspect of the invention, an antenna apparatus operable in a first frequency band and a second frequency band is disclosed. In one embodiment, the antenna apparatus includes a dielectric element comprising a first side and a second side, a feed point disposed on the first side, and a ground point disposed on the second side, a first structure operable in the first frequency band and disposed substantially on the first side, a second structure operable in the first frequency band and disposed substantially on the second side, a third structure operable in the second frequency band and disposed substantially on the first side, and a fourth structure operable in the second frequency band and disposed substantially on the second side. In one variant, the first structure is galvanically coupled to the feed point, the second structure is galvanically coupled to the ground point, the third structure is configured to electromagnetically couple to the first structure, and the fourth structure is configured to electromagnetically coupled to the second structure.


In another variant, the first structure includes a first radiator arm disposed substantially co-planar yet parallel to a second radiator arm and the second structure includes a third radiator arm disposed substantially co-planar yet parallel to a fourth radiator arm, the first radiator arm and the second radiator arm each comprise a linear slot disposed substantially longitudinally within the respective aim, and the apparatus includes a first substantially linear conductive element disposed on the first side and configured to couple the feed point to the first and the second radiator arms via a first T-junction, and a second substantially linear conductive element disposed on the second side and configured to couple the feed point to the third and the fourth radiator arms via a second T-junction.


In another variant, the antenna apparatus includes a first conductive element disposed between the first structure and the feed point and effecting the galvanic coupling to the feed point, a first electromagnetic coupling element electrically disposed between the first conductive element and a first branch of the third structure, and a second electromagnetic coupling element electrically disposed between the first conductive element and a second branch of the third structure, so that the first electromagnetic coupling element is configured to electromagnetically couple the first branch of the third structure to the feed point, and the second electromagnetic coupling element is configured to electromagnetically couple the second branch of the third structure to the feed point.


In yet another variant, the antenna apparatus includes a second conductive element disposed between at least a portion of the second structure and the ground point and effecting the galvanic coupling to the ground point, a third electromagnetic coupling element electrically disposed between at least a portion of the second conductive element and a first branch of the fourth structure, and a fourth electromagnetic coupling element electrically disposed between at least a portion of the second conductive element and a second branch of the fourth structure, the third electromagnetic coupling element is configured to electromagnetically couple the first branch of the fourth structure to the ground point, and the fourth electromagnetic coupling element is configured to electromagnetically couple the second branch of the fourth structure to the ground point.


In still another variant, the antenna apparatus includes a structure disposed substantially on the first side and configured to electrically couple to the second conductive element, so that electric coupling of the structure to the second conductive element is effected via a conductor configured to penetrate through the dielectric element in a direction normal to the first side.


In another variant, the first structure and the second structure are configured to cooperate to form at least a portion of a first dipole antenna operable in the first frequency band, and the third structure and the fourth structure are configured to cooperate to form at least a portion of a second dipole antenna operable in the second frequency band so that the antenna apparatus is characterized by a substantially omni-directional radiation pattern in at least one of the first frequency band and the second frequency band in a plane substantially normal to the element, and the first frequency band includes a lower frequency long term evolution (LTE) application band, and the second frequency band includes an upper frequency LTE application band.


In another aspect of the invention, a multiband antenna component for use with a radio communications device, the device operable in a first frequency band and a second frequency band is disclosed. In one embodiment, the antenna component includes a dielectric element comprising a first side and a second side, a first structure operable in the first frequency band and disposed substantially on the first side, a second structure operable in the first frequency band and disposed substantially on the second side, the first structure is connected to a feed disposed on the first side, and the second structure is connected to a coupling.


In one variant, antenna component includes a third structure operable in the second frequency band and disposed substantially on the first side, and a fourth structure operable in the second frequency band and disposed substantially on the second side, the third structure is configured to electromagnetically couple to the first structure, the fourth structure is configured to electromagnetically couple to the second structure, the first frequency band includes a lower frequency long term evolution (LTE) application band and second frequency band is selected from a group consisting of (i) 1710-1990 MHz, (ii) 2110-2170 MHz; and 2500-2700 MHz long term evolution (LIE) application frequency bands.


In another variant, the first structure includes a first radiator arm disposed substantially co-planar yet parallel to a second radiator arm, the first radiator arm includes a first linear slot disposed substantially longitudinally within the first radiator arm, the second structure includes a third radiator arm disposed substantially co-planar yet parallel to a fourth radiator arm, and the second radiator arm includes a second linear slot disposed substantially longitudinally within the second radiator arm, a first conductive element disposed between the first structure and the feed and effecting the connection of the first structure to the feed.


In another variant, the antenna component includes a first electromagnetic coupling element electrically disposed between the first conductive element and a first branch of the third structure, and a second electromagnetic coupling element electrically disposed between the first conductive element and a second branch of the third structure, the first electromagnetic coupling element is configured to electromagnetically couple the first radiator arm to the feed point, and the second electromagnetic coupling element is configured to electromagnetically couple the second radiator arm to the feed.


In yet another variant, the antenna component includes a first conductive element disposed on the first side and configured to effect the connection between the feed and the first structure, a second conductive element disposed on the second side and configured to effect the connection between the coupling and the second structure, and a structure disposed substantially on the first side and configured to electrically couple to the second conductive element.


In still another variant, outer perimeter of the first structure is configured substantially external to outer perimeter of the second structure, outer perimeter of the third structure is configured substantially external to outer perimeter of the fourth structure, outer perimeter of the first structure is configured to overlap at least partially outer perimeter of the third structure when viewed in a direction substantially normal to the first side, and outer perimeter of the second structure is configured to overlap at least partially outer perimeter of the fourth structure when viewed in the direction substantially normal to the first side.


In a third aspect of the invention, a method of operating an antenna apparatus is disclosed. In one embodiment, the method comprises providing a feed signal to both a feed disposed on a first side of a dielectric substrate, and to a coupling disposed on the second side of the dielectric substrate; exciting a first antenna structure disposed substantially on the first side and electrically coupled to the feed point so as to radiate in a first frequency band; and exciting a second antenna structure disposed substantially on the second side so as to radiate in the first frequency band.


In a fourth aspect of the invention, a method of tuning an antenna apparatus is disclosed. In one embodiment, the method comprises providing a feed signal to both a feed disposed on a first side of a dielectric substrate, and to a coupling disposed on the second side of the dielectric substrate; exciting a first antenna structure disposed substantially on the first side and electrically coupled to the feed so as to radiate in a first frequency band, and exciting a second antenna structure disposed substantially on the second side so as to radiate in the first frequency band, and tuning an electromagnetic coupling of a third antenna structure and the first antenna structure in a second frequency band. In one variant, the electromagnetic coupling of the third antenna structure and the first antenna structure is effected by a first linear slot disposed substantially longitudinally within a first radiator arm, and a second linear slot disposed substantially longitudinally within a second radiator arm.


In a fifth aspect of the invention, a method of operating a mobile device is disclosed. In one embodiment, the method comprises providing a feed signal to both an antenna feed disposed on a first side of a dielectric substrate, and to an antenna coupling disposed on the second side of the dielectric substrate; exciting a first antenna structure disposed substantially on the first side and electrically coupled to the feed so as to radiate in the first frequency band; and exciting a second antenna structure disposed substantially on the second side to radiate in the first frequency band.


Further features of the present invention, its nature and various advantages will be more apparent from the accompanying drawings and the following detailed description.





BRIEF DESCRIPTION OF THE DRAWINGS

The features, objectives, and advantages of the invention will become more apparent from the detailed description set forth below when taken in conjunction with the drawings, wherein:



FIG. 1 illustrates top and bottom elevation views of a multiband dipole antenna structure according to a first embodiment of the invention.



FIG. 1A illustrates top and bottom elevation views of a multiband dipole antenna structure according to a second embodiment of the invention.



FIG. 1B illustrates top and bottom elevation views of a multiband dipole antenna structure according to a third embodiment of the invention.



FIG. 1C is a top elevation view showing a multiband dipole antenna of FIG. 1B, configured in a radome according to one embodiment of the invention.



FIG. 2 is a plot of measured free space input return loss of the exemplary multiband dipole antenna of the embodiment of FIG. 1B.



FIG. 3 is a plot of measured total efficiency of the exemplary multiband dipole antenna of the embodiment of FIG. 1B.



FIG. 4 is a plot of measured maximum antenna gain of the exemplary multiband dipole antenna of the embodiment of FIG. 1B.



FIG. 5 is a diagram illustrating an exemplary coordinate system used in radiation pattern measurements.



FIGS. 6-1 through 6-11 are plots of measured elevation-plane radiation pattern ((x, z), φ=0 deg.) of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B, obtained at different frequencies of (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, (x) 2600 MHz, and (xi) 2700 MHz, respectively.



FIGS. 7-1 through 7-10 are plots of measured elevation-plane ((y, z), φ=90 deg.) radiation pattern of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B, obtained at different frequencies of (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, and (x) 2600 MHz, respectively.



FIGS. 8-1 through 8-11 are plots of measured azimuth-plane (x, y) radiation pattern of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B, obtained at different frequencies of (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, (x) 2600 MHz, and (xi) 2700 MHz, respectively.





All Figures disclosed herein are © Copyright 2011 Pulse Finland Oy. All rights reserved.


DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT

Reference is now made to the drawings wherein like numerals refer to like parts throughout.


As used herein, the terms “access point,” “wireless hub,” “wireless bridge”, ‘wireless station”, and “corporate access point” refer without limitation to any wireless radio device capable of exchanging data via a radio link.


As used herein, the terms “antenna,” “antenna system,” “antenna assembly”, and “multi-band antenna” refer without limitation to any system that incorporates a single element, multiple elements, or one or more arrays of elements that receive/transmit and/or propagate one or more frequency bands of electromagnetic radiation. The radiation may be of numerous types, e.g., microwave, millimeter wave, radio frequency, digital modulated, analog, analog/digital encoded, digitally encoded millimeter wave energy, or the like.


As used herein, the terms “board” and “substrate” refer generally and without limitation to any substantially planar or curved surface or component upon which other components can be disposed. For example, a substrate may comprise a single or multi-layered printed circuit board (e.g., FR4), a semi-conductive die or wafer, or even a surface of a housing or other device component, and may be substantially rigid or alternatively at least somewhat flexible.


The terms “frequency range”, “frequency band”, and “frequency domain” refer without limitation to any frequency range for communicating signals. Such signals may be communicated pursuant to one or more standards or wireless air interfaces.


As used herein, the terms “portable device”, “mobile computing device”, “client device”, “portable computing device”, and “end user device” include, but are not limited to, personal computers (PCs) and minicomputers, whether desktop, laptop, or otherwise, set-top boxes, personal digital assistants (PDAs), handheld computers, personal communicators, tablet computers, portable navigation aids, J2ME equipped devices, cellular telephones, smartphones, personal integrated communication or entertainment devices, or literally any other device capable of interchanging data with a network or another device.


Furthermore, as used herein, the terms “radiator,” “radiating plane,” and “radiating element” refer without limitation to an element that can function as part of a system that receives and/or transmits radio-frequency electromagnetic radiation; e.g., an antenna or portion thereof.


The terms “RF feed,” “feed,” “feed conductor,” and “feed network” refer without limitation to any energy conductor and coupling element(s) that can transfer energy, transform impedance, enhance performance characteristics, and conform impedance properties between an incoming/outgoing RF energy signals to that of one or more connective elements, such as for example a radiator.


As used herein, the terms “top”, “bottom”, “side”, “up”, “down”, “left”, “right”, and the like merely connote a relative position or geometry of one component to another, and in no way connote an absolute frame of reference or any required orientation. For example, a “top” portion of a component may actually reside below a “bottom” portion when the component is mounted to another device (e.g., to the underside of a PCB).


As used herein, the term “wireless” means any wireless signal, data, communication, or other interface including without limitation Wi-Fi, Bluetooth, 3G (e.g., 3GPP, 3GPP2, and UMTS), HSDPA/HSUPA, TDMA, CDMA (e.g., IS-95A, WCDMA, etc.), FHSS, DSSS, GSM, PAN/802.15, WiMAX (802.16), 802.20, narrowband/FDMA, OFDM, PCS/DCS, Long Term Evolution (LTE) or LTE-Advanced (LTE-A), analog cellular, CDPD, satellite systems such as GPS, millimeter wave or microwave systems, optical, acoustic, and infrared (i.e., IrDA).


Overview


The present invention provides, in one salient aspect, a multi-band dipole antenna apparatus for use with a radio device which advantageously provides reduced size and cost, and improved antenna performance. In one embodiment, the antenna apparatus includes two separate antenna assemblies disposed on the opposing sides of a thin dielectric element.


Each antenna assembly of the exemplary embodiment is adapted for use in LTE devices, and includes a first radiator structure configured to operate in a lower frequency band (LFB), a second radiator structure configured to operate in an upper frequency band (UFB), and an electromagnetic coupling element disposed there between. The first radiator structure is configured such that a higher-order resonance mode optimizes upper frequency band operation. The first radiator structure is galvanically coupled to a feed port of the radio device via a transmission line element. The second radiator structure is electromagnetically coupled to the feed via the electromagnetic coupling element, also commonly referred to as the parasitic coupling. The two antenna assemblies are configured in an opposing fashion such that the LFB radiator of the top antenna is positioned above the UFB radiator of the bottom antenna and the UFB radiator of the top antenna is positioned above the LFB radiator of the bottom antenna. Such radiator configuration enables the UFB structure of each antenna assembly (for example, on the top side) to couple to the LFB structure of the opposing antenna assembly (for example, on the bottom side) via electric field coupling at a resonance frequency across the dielectric substrate thickness.


The transmission line of each antenna assembly includes, in one implementation, a linear microstrip element featuring a tuning flap structure that may be disposed at different locations along the length of the transmission line. Such configuration improves antenna feed efficiency and optimizes antenna resonance.


In order to obtain dipole radiation pattern, each of the LFB and UFB radiator structures of the exemplary embodiment includes a pair of radiating arms, disposed symmetrically with respect to a longitudinal axis of the dielectric element and parallel with respect to one another. In one variant, the UFB arms are configured as elongated rhomboids and UFB arms are configured as elongated rectangular or elliptical elements. Such two planar blade dipole antenna assemblies provide a combined omni-directional radiation pattern in the azimuthal plane for each of the lower and upper frequency bands. A linear slot (disposed axially within the LFB arm, in one implementation, is configured to improve HFB coupling.


A single multi-feed transceiver is configured to provide feed signal to both antenna assemblies. In one approach, the feed is effected via a coaxial cable which is coupled to a top side of the antenna apparatus. The antenna coupling structure (in one implementation) includes a set of conductors galvanically coupling the top side coupling point to the bottom side coupling point in order to provide feed to the second antenna assembly.


DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS

Detailed descriptions of the various embodiments and variants of the apparatus and methods of the invention are now provided. While primarily discussed in the context of the access point radio devices useful with an LTE wireless communications device or system, the various apparatus and methodologies discussed herein are not so limited. In fact, many of the apparatus and methodologies described herein are useful in any number of complex antennas, whether associated with mobile or fixed devices, cellular or otherwise, that can benefit from the multiband dipole antenna methodologies and apparatus described herein.


Exemplary Antenna Apparatus


Referring now to FIGS. 1 through 1C, various exemplary embodiments of the radio antenna apparatus of the invention are described in detail.


It will be appreciated that while these exemplary embodiments of the antenna apparatus of the invention are implemented using a blade dipole (using two surface of a planar substrate) antenna (selected in these embodiments for their desirable attributes and performance), the invention is in no way limited to planar antenna configuration, and in fact can be implemented using other shapes, such as, for example, a three-dimensional (3D) cylinder or a truncated cone.


One exemplary embodiment of a multiband antenna component 100 for use with a radio device is presented in FIG. 1, showing top and bottom elevation views of the antenna structure. The antenna component shown in FIG. 1 includes a planar dielectric element 102 fabricated from a suitable material such as 4000-series high frequency circuit laminate manufactured by Rogers Corporation, although it will be appreciated that other materials may be used. The antenna 100 further includes two antenna sub-assemblies 101, 131 disposed on the top and the bottom side of the dielectric element 102, respectively. In another embodiment (not shown), the antenna structure is fabricated using a flex circuit.


The top antenna sub-assembly 101 includes a low frequency band (LFB) structure comprised of two symmetric arms 106, each coupled to a feed 104 (here a point) via a linear transmission line element 110, implemented as a microstrip in one variant. In another variant, a flap 114 is added to the transmission line in order to enable precise manipulation of antenna resonances, and to improve feed coupling. In one approach, the flap 114 includes a rectangular perimeter, while other shapes (such as rhomboid, circle or an ellipse) are equally compatible and useful with the invention. Furthermore, positioning the flap 114 at different locations along the transmission line 110 allows for optimization of antenna operation in different LF and HF bands.


The feed 104 and the ground 120 coupling points are configured to connect the antenna component 100 via a feed cable to the device feed engine. In one implementation, the feed cable includes a coaxial cable with a shield, and is connected to the radio device via an RF connector. Other 50 ohm RF transmission line configurations, e.g., SMA connector, flex circuit, etc. are usable as well. The feed conductor of the coaxial feed cable connects the antenna feed point 104 to the RF engine feed port, and the shield conductor is connected to the antenna ground coupling point 120. The antenna ground coupling structure includes the top ground point 120 connected to the bottom ground structure 134 through, for example, via holes that provide galvanic contact between the two ground structures (120, 134), therefore coupling the structure 134 to the feed cable ground conductor.


The bottom antenna sub-assembly 131 similarly includes a low frequency band structure comprised of two symmetric arms 136, each coupled to the ground structure 134 via the transmission line element 140. In one variant, a flap 144 is added to the transmission line 140 in order to enable precise manipulation of antenna resonances, and to improve feed coupling. In one approach, the flap 114 comprises a rectangular perimeter, while other shapes (such as rhomboid, circle or an ellipse) are equally compatible and useful with the invention. Furthermore, positioning the flap 114 at different locations along the transmission line 110 allows for optimization of antenna operation in different LF and HF bands.


Each of the top and the bottom antenna sub-assemblies 101, 131 comprises a high frequency band (HFB) radiating structure comprising a pair of arms 112, 142, respectively. The arms 112 are disposed symmetrically with respect to the transmission line 110 while the arms 142 are disposed substantially symmetrically with respect to the longitudinal axis 117 of the antenna assembly. The HFB arms 112 are electromagnetically coupled to the feed via nonconductive gaps 108, formed between the adjacent edges of the HFB arms 112 and the transmission line 110 (and its “T” junction portion). The gaps 108 act as electromagnetic coupling elements, providing capacitive coupling between the transmission line and the HFB arms, and enabling energy transfer from the feed.


Similarly, the HFB arms 142 are electromagnetically coupled to the feed via nonconductive gaps 109 formed between the adjacent edges of the HFB arms 142 and the T-junction portion of the transmission line 110. The gaps 109 act as electromagnetic coupling (also referred to as the parasitic coupling) elements, enabling higher-order mode resonances in the HFB arms. The configuration shown in FIG. 1 causes the lower band feed (for example, in the frequency range between 700 MHz and 960 MHz) to generate second-order resonance modes in the HFB arms, thereby facilitating antenna operation in a higher frequency range (for example, between 1710 and 2170 MHz). Note, although the second harmonic for an ideal (properly matched) single frequency oscillator of 960 MHz corresponds to 1920 MHz, the wide span of the low frequency range (700-960 MHz) enables efficient antenna operation at frequencies of up to 2170 MHz in the HFB.


As shown and described with respect to FIG. 1, the LFB 106, 142 and the HFB 112, 136 radiating structures are disposed opposing each other on the top 101 and the bottom 131 antenna sub-assemblies, respectively. That is, the LFB structure 106 is disposed above the HFB structure 142, while the HFB structure 112 is disposed above the LFB structure 136. This “head-to-toe” configuration further enables coupling of the HFB structures 112, 142 to the respective LFB structures 106, 136, respectively, via electric field at the resonance across the thickness of the dielectric substrate 102. The electromagnetic and electric field coupling described above is also commonly referred to as “parasitic coupling”, and the antenna elements that are fed in such manner are commonly referred to as “parasitics”.


Each of the LFB arms 106, 136 of the antenna embodiment of FIG. 1 comprises a linear slot 116 disposed axially proximate the center axis of the respective arm, so as to improve electromagnetic coupling efficiency of the respective HFB arm (that is the arms 142, 112, respectively) disposed underneath the LFB arms 106, 146.


In the embodiment of FIG. 1, In order to increase antenna bandwidth, the antenna sub-assemblies 101, 131 comprise a second set of lower band parasitically coupled radiator arms 118, 148 configured opposite from the LFB respective structures. That is, the parasitic LFB structure 118 of the top sub-assembly 101 is disposed above the LFB structure 136 of the bottom sub-assembly 131, and the parasitic LFB structure 148 of the bottom sub-assembly 131 is disposed above the LFB structure 106 of the top sub-assembly 101, respectively. Such antenna sub-assembly configuration causes electromagnetic coupling between the parasitic LFB structures 118, 148 and the directly-fed LFB structures 106, 136, respectively, thereby enabling antenna matching over a wider frequency band. This approach advantageously increases useful frequency range of the antenna apparatus shown in FIG. 1, and enables radio device operation in additional frequency bands (e.g., LTE bands).


The exact location and the shapes of each of the structures 106, 112, 118, 136, 142, 148 are configured with regard to a specific design requirements such as available space, bandwidth, efficiency, radiation pattern, and power. The exemplary antenna of the embodiment presented in FIG. 1 is configured to operate in the following long-term evolution (LTE)/LTE-A system frequency bands of approximately 698-960 MHz, 1710-1990 MHz, 2110-2170 MHz, and 2500-2700 MHz. In the antenna variant shown in FIG. 1, the exemplary antenna is approximately 165 mm (6.56 inch) in length, 28 mm (1.1 inch) in width, and 0.9 mm (0.032 inch) thick. In other variants (not shown), the antenna width is reduced to 25 mm (1 inch) or 20 mm (0.79 inch), while keeping the same length and thickness.


Other embodiments of the invention configure the antenna apparatus to cover WWAN (e.g., 824 MHz-960 MHz, and 1710 MHz-2170 MHz), and/or WiMAX (2.3 and 2.5 GHz) frequency bands. Yet other frequency bands may be achieved as desired, using variations in the configuration of the apparatus.


The directly-fed LFB antenna arms (106, 136) of the exemplary embodiment are configured as substantially diamond-shaped elongated polygons. That is, the width of each of the arms 106, 136 is smaller than the length. In the embodiment shown in FIG. 1, one end of each arm features a tuning element 122, 150, and the other end (128) is truncated to effect precise antenna tuning to the desired bands of operation. The radiator arm diamond shape provides good electromagnetic coupling to the HFB arms, and produces a wide band response in the lower frequency band.


Another exemplary embodiment of the dipole antenna according to the present invention is shown in FIG. 1A. The antenna component 158 of this embodiment includes a top sub-assembly 159 and a bottom sub-assembly 161, each configured similarly to the antenna sub-assemblies 101, 131 of the device of FIG. 1 described supra. In the embodiment of FIG. 1A, one end of each arm of the directly-fed LFB structure 162, 166 features a triangular-shaped tuning element (similar to the element 122 of the embodiment of FIG. 1), and the opposing end of the arm features a trapezoidal-shaped tuning element 168, each configured to effect antenna tuning to the desired bands of operation.


It is appreciated by those skilled in the art that a multitude of other antenna radiating structures are equally compatible and useful with the present invention such as, inter alia, the LFB radiators shaped as shown in the antenna embodiment of FIG. 1B. The antenna component 170 of this embodiment includes a top sub-assembly 171 and the bottom sub-assembly 172, each configured similarly to the antenna sub-assemblies 101, 131 of FIG. 1 described supra. In the embodiment of FIG. 1B, each arm 174, 176 of the direct-fed LFB structures is shaped as a rhomboid with a triangular-shaped tuning element 178 (similar yet smaller compared to the element 122 of the embodiment of FIG. 1) disposed on one end, that is proximate to the direct connection to the transmission lines 110, 140.


An embodiment of the antenna apparatus, comprising multiband dipole antenna components (such as shown and described with respect to FIGS. 1-1B, supra) is presented in FIG. 1C in the form of a “radome”. The antenna apparatus 180 of FIG. 1C includes the antenna component (such as, for example, the component 170 of FIG. 1B) encapsulated in a radome structure 182. The top antenna sub-assembly 171 of FIG. 1B is shown in white, and portions of the bottom antenna sub-assembly 172 of FIG. 1B are shown in black in FIG. 1C. One end of the antenna apparatus 180 features a mounting flange 184, which is used to attach the antenna during operation and to route a feed cable 186.


The radome structure 182 is preferably fabricated using thermoplastic materials such as e.g., polycarbonate (PC), or Acrylonitrile Butadiene Styrene (ABS). The radome 182 provides mechanical support for the antenna radiating elements and protection from the elements during use. As the radome 182 affects RF field distribution and antenna resonance frequency, tuning of the antenna assembly (that uses the exact radome structure of the final product) is required.


In the antenna embodiments shown and described above with respect to FIGS. 1-1C, antenna feed couplings are disposed proximate one lateral edge of the dielectric substrate. To facilitate antenna mounting and coupling to the feed cable, both coupling structures (such as the feed point 104 and the ground coupling point 120) are disposed on the same side of the substrate. Such coupling configuration simplifies attachment of the RF feed cable to the antenna sub-assemblies, and optimizes antenna resonances with different connector types. In one variant, the feed cable is attached to the dipole antenna component using an RF connector, or a mechanical friction joint (crimp, push and lock), or any other suitable technology.


It is appreciated by those skilled in the arts that the above feed coupling configuration is merely exemplary, and other implementations are usable as well, such as for example soldering the feed conductor to the top sub-assembly and the ground conductor to the bottom sub-assembly.


The exemplary antenna embodiments shown and described with respect to FIGS. 1-1C, supra, utilize a single feed antenna configuration such that the antenna radiators of one band (for example the lower band) are fed directly via a feed strip (the transmission line 110), and the antenna radiators of a second bands (HFB) are fed by way of electromagnetic coupling. The top antenna sub-assembly (such as, for example, the sub-assembly 101 of FIG. 1) is connected to the feed conductor of the radio device and acts as one arm of the dipole, while the bottom antenna sub-assembly (such as, for example, the sub-assembly 131 of FIG. 1) is connected to the ground conductor, and acts as a ground base arm of the dipole.


The exemplary antenna configuration (such as that shown in FIG. 1) includes two side-by-side dipoles in a vertical plane that are combined by the transmission line (110), thus providing the desired omni-directional antenna radiation pattern in azimuthal plane, as illustrated by the antenna performance results described below.


Performance


Referring now to FIGS. 2 through 8-11, performance results obtained during testing by the Assignee hereof of an exemplary antenna apparatus constructed according to the invention are presented.



FIG. 2 shows a plot of free-space return loss S11 (in dB) as a function of frequency, measured with a single-feed dipole antenna component constructed in accordance with the embodiment shown and described with respect to FIG. 1B, supra, The return loss data clearly show the exemplary antenna comprising several distinct frequency bands from 600 MHz to 2700 MHz. The designators 202-216 mark the frequencies 698 MHz, 960 MHz, 1710 MHz, 1990 MHz, 2110 MHz, 2170 MHz, 2500 MHz, and 2700 MHz, respectively.



FIG. 3 presents data regarding measured free-space efficiency for the same antenna configuration (i.e., that of FIG. 1B). Antenna efficiency (in dB) is defined as decimal logarithm of a ratio of radiated and input power:










AntennaEfficiency


[
dB
]



10







log
10



(


Radiated





Power


Input





Power


)






Eqn
.





(
1
)









while antenna efficiency (in %) is defined as follows:










AntennaEfficiency


[
%
]


=

100
×

(


Radiated





Power


Input





Power


)






Eqn
.





(
2
)








An efficiency of zero (0) dB or 100% corresponds to an ideal theoretical radiator, wherein all of the input power is radiated in the form of electromagnetic energy. The data in FIG. 3, shown both in dB (solid line) and in % (vertical bars), are collected in the following frequency bands: (i) the lower band 698-960 MHz; (ii) the first upper band 1710-1980 MHz; (iii) the second upper band 2110-2170 MHz, and (iv) the third upper band 2500-2700 MHz, denoted with the designators 302-308, respectively. The data of FIG. 3 demonstrate LFB efficiency between 65% and 90% in a lower portion of the lower band, decreasing to 40% level at the upper edge of the LFB. The first upper band (304) efficiency is above 60% throughout the band, and the second upper band has efficiency between 35% and 70%. The third upper band 308 shows efficiency in a range between 30% and 70%. These results confirm that the antenna HFB radiating elements configuration (such as, for example structures 112, 142 of FIG. 1) enables tuning of the HFB separately from the LFB, and demonstrate that an antenna structure according to the invention advantageously enables simultaneous antenna operation in several different frequency bands over a frequency range that is wider than supported by presently available antenna solutions of similar sizes.



FIG. 4 presents data regarding measured maximum antenna gain obtained with the same antenna configuration (FIG. 1B). The data in FIG. 4 confirm antenna gain between −0.5 and 3 dB in the LFB, 0 to 4 dB in the first upper band, and 4 to 6 dB in the second upper band.


FIGS. 5 through 8-11 present data related to measured radiating pattern of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B. FIG. 5 illustrates an exemplary coordinate system and definitions useful for interpreting the radiating patterns of FIGS. 6-1 through 8-11. In FIG. 5, θ is the elevation angle, φ is the azimuth angle, and the x-y plane (θ=90 deg.) corresponds to the azimuth plane. The azimuth plane radiation patterns are obtained with measurements made while traversing the entire x-y plane around the antenna under test. The elevation plane in FIG. 5 is defined as a plane orthogonal to the x-y plane. The elevation plane with the angle φ=90 deg corresponds to the y-z plane, while the elevation plane with the angle φ=0 deg. corresponds to the x-z plane. The elevation plane patterns are obtained traversing the entire y-z plane around the antenna under test. The above definitions are used in describing exemplary antenna radiation patterns with respect to FIGS. 6-8, described below.



FIGS. 6-1 through 6-11 present data regarding measured elevation-plane ((x, z), φ=0 deg.) radiation patterns of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B. Different radiation pattern plots, denoted by the designators 602-622, correspond to the frequencies of antenna operation of: (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, (x) 2600 MHz, and (xi) 2700 MHz, respectively.



FIGS. 7-1 through 7-10 are plots of measured elevation-plane ((y, z), (φ=90 deg.) radiation pattern of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B. Measurements obtained at different frequencies of (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, and (x) 2600 MHz are denoted by the designators 702-720, respectively.


The radiation patterns 602-616 of FIGS. 6-1 through 6-11 and 702-716 of FIGS. 7-1 through 7-10 demonstrate a typical dipole antenna radiation pattern, with the maximum power achieved at elevation angles of 90 and 270 deg, as expected. While the radiation patterns 618-622 and 718-720 obtained at the highest frequencies (2500 MHz, 2600 MHz, and 2700 MHz, respectively) show noticeable deviations from the dipole behavior, they provide sufficient performance in most typical operational conditions.



FIGS. 8-1 through 8-11 are plots of measured azimuth-plane (x, y) radiation pattern of the exemplary multiband dipole antenna configured in accordance with the embodiment of FIG. 1B obtained at frequencies of (i) 698 MHz; (ii) 859 MHz; (iii) 960 MHz, (iv) 1710 MHz, (v) 1860 MHz, (vi) 1980 MHz, (vii) 2110 MHz, (viii) 2170 MHz, (ix) 2500 MHz, (x) 2600 MHz, and (xi) 2700 MHz, as denoted by the designators 802-824, respectively. The data presented in FIGS. 8-1 through 8-11 demonstrate excellent omni-directional antenna performance extending throughout the high frequencies, including 2700 MHz.


The data presented in FIGS. 2-4 and FIGS. 6-1 through 8-11 confirm that a single planar dipole antenna, configured in accordance with the invention, is capable of efficient operation in the LTE frequency ranges of 698-960 MHz, 1710-1980 MHz, 2110-2170 MHz, and 2500-2690 MHz, providing omni-directional radiation with a gain of 2 dBi, a level of performance that is unattainable with prior art single-feed dipole antenna solutions. Such capability provided by the present invention advantageously allows operation of a radio frequency device (such as a corporate wireless access point, wireless bridge or a wireless hub) with a single antenna over several mobile frequency bands such as GSM710, GSM750, GSM850, E-GSM900 GSM810, GSM1900, GSM1800, PCS-1900, as well as LTE/LTE-A and WiMAX (IEEE Std. 802.16) frequency bands. As persons skilled in the art will appreciate, the frequency band composition given above may be modified as required by the particular bands of the application(s), and additional bands may be supported/used as well. Furthermore, the electrical dimensions of an antenna configured in accordance with the invention can be scaled (up or down) in order to move operating bands of interest down/up, respectively. For example, if antenna dimensions are increased by a factor of two (compared to the embodiment of FIG. 1B), the corresponding operating frequency bands are scaled down by the same factor producing an antenna operating in a frequency range from about 350 MHz to about 1350 MHz. Similarly, an antenna that is half the size of the antenna of FIG. 1B will operate in a frequency range from about 1400 MHz to about 5400 MHz.


Advantageously, an antenna apparatus configuration comprising planar dipole antenna components as in the illustrated embodiments described herein allows for optimization of antenna operation in the lower frequency band simultaneously with the upper band operation. This antenna solution allows for, inter aria, a single standards-compliant (e.g., LTE-compliant) wireless device (such as a corporate access point, and back up for wireless link for data service) to cover several relevant frequency bands, while maintaining an improved dipole-type radiation pattern for most of the frequency range. This capability advantageously enables, among other things, fourth generation wireless (4G) swivel blade antennas for hubs, access points, routers and small base station, and femto-cell 4G applications.


In addition, the use of the exemplary single-feed configuration simplifies antenna connections, and allows for a smaller and less complicated design of the device RF feed electronics.


In one implementation of the invention, an external antenna is employed to establish a small corporate access point and a backup wireless link for data service, and to serve established external antenna demand in LTE applications.


It will be recognized that while certain aspects of the invention are described in terms of a specific sequence of steps of a method, these descriptions are only illustrative of the broader methods of the invention, and may be modified as required by the particular application. Certain steps may be rendered unnecessary or optional under certain circumstances. Additionally, certain steps or functionality may be added to the disclosed embodiments, or the order of performance of two or more steps permuted. All such variations are considered to be encompassed within the invention disclosed and claimed herein.


While the above detailed description has shown, described, and pointed out novel features of the invention as applied to various embodiments, it will be understood that various omissions, substitutions, and changes in the form and details of the device or process illustrated may be made by those skilled in the art without departing from the invention. The foregoing description is of the best mode presently contemplated of carrying out the invention. This description is in no way meant to be limiting, but rather should be taken as illustrative of the general principles of the invention. The scope of the invention should be determined with reference to the claims.

Claims
  • 1. An antenna apparatus operable in a first frequency band and a second frequency band, the apparatus comprising: a dielectric element comprising a first side and a second opposing side, a top antenna assembly disposed on the first side and a bottom antenna assembly disposed on the second opposing side, a feed point disposed on the first side, and a ground point disposed on the second opposing side;a first pair of lower frequency band structures of the top antenna assembly operable in the first frequency band and disposed substantially on the first side, the first pair of lower frequency band structures galvanically coupled to the feed point;a second pair of lower frequency structures of the bottom antenna assembly operable in the first frequency band and disposed substantially on the second opposing side, the second pair of lower frequency band structures galvanically coupled to the ground point;a third pair of higher frequency band structures of the top antenna assembly operable in the second frequency band and disposed substantially on the first side, the third pair of higher frequency band structures electromagnetically coupled to the feed point; anda fourth pair of higher frequency band structures of the bottom antenna assembly operable in the second frequency band and disposed substantially on the second opposing side, the fourth pair of higher frequency band structures electromagnetically coupled to the ground point;wherein: the first pair of lower frequency band structures are positioned directly above the fourth pair of higher frequency band structures of the bottom antenna assembly and opposite the second pair of lower frequency band structures of the bottom antenna assembly disposed on second opposing side; andthe second pair of lower frequency band structures are positioned directly below the third pair of higher frequency band structures and opposite the first pair of lower frequency band structures of the top antenna assembly disposed on the first side.
  • 2. The antenna apparatus of claim 1, wherein the third pair of higher frequency band structures are configured to form an electromagnetic coupling to the first pair of lower frequency band structures, and the fourth pair of higher frequency band structures are is configured to form an electromagnetic coupling to the second pair of lower frequency band structures.
  • 3. The antenna apparatus of claim 1, wherein: the first pair of lower frequency band structures comprises a first radiator arm disposed substantially co-planar with, yet parallel to, a second radiator arm; andthe second pair of lower frequency band structures comprises a third radiator arm disposed substantially co-planar with, yet parallel to, a fourth radiator arm.
  • 4. The antenna apparatus of claim 3, further comprising: a first substantially linear conductive element disposed on the first side and configured to couple the feed point to the first and the second radiator arms via a first T-junction; anda second substantially linear conductive element disposed on the second side and configured to couple the ground point to the third and the fourth radiator arms via a second T-junction.
  • 5. The antenna apparatus of claim 3, wherein the first radiator arm and the second radiator arm each comprise a linear slot disposed substantially longitudinally within the respective arm.
  • 6. The antenna apparatus of claim 1, further comprising: a first conductive element disposed between an individual one of the first pair of lower frequency band structures and the feed point and effecting a galvanic coupling to the feed point;a first electromagnetic coupling element electrically disposed between the first conductive element and a first branch of an individual one of the third pair of higher frequency band structures; anda second electromagnetic coupling element electrically disposed between the first conductive element and a second branch of the individual one of the third pair of higher frequency band structures;wherein: the first electromagnetic coupling element is configured to electromagnetically couple the first branch of the individual one of the third pair of higher frequency band structures to the feed point; andthe second electromagnetic coupling element is configured to electromagnetically couple the second branch of the individual one of the third pair of higher frequency band structures to the feed point.
  • 7. The antenna apparatus of claim 6, further comprising: a second conductive element disposed between at least a portion of an individual one of the second pair of lower frequency band structures and the ground point, and effecting a galvanic coupling to the ground point;a third electromagnetic coupling element electrically disposed between at least a portion of the second conductive element and a first branch of an individual one of the second pair of lower frequency band structures; anda fourth electromagnetic coupling element electrically disposed between at least a portion of the second conductive element and a first branch of the an individual one of the fourth pair of higher frequency band structures;wherein: the third electromagnetic coupling element is configured to electromagnetically couple the first branch of the individual one of the second pair of lower frequency band structures to the ground point; andthe fourth electromagnetic coupling element is configured to electromagnetically couple the first branch of the individual one of the fourth pair of higher frequency band structures to the ground point.
  • 8. The antenna apparatus of claim 7, further comprising a coupling structure disposed substantially on the first side and configured to electrically couple to the second conductive element disposed on the second opposing side.
  • 9. The antenna apparatus of claim 8, wherein the electric coupling of the coupling structure disposed on the first side to the second conductive element disposed on the second opposing side is effected via a conductor that penetrates through the dielectric element in a direction normal to the first side.
  • 10. The antenna apparatus of claim 1, wherein the first and the second pairs of lower frequency band structures are configured to cooperate to form at least a portion of a first dipole antenna operable in the first frequency band; andthe third and the fourth pairs of higher frequency band structures are configured to cooperate to form at least a portion of a second dipole antenna operable in the second frequency band.
  • 11. The antenna apparatus of claim 10, wherein the antenna apparatus is characterized by a substantially omni-directional radiation pattern in at least one of the first frequency band and the second frequency band, in a plane substantially normal to the dielectric element.
  • 12. The antenna apparatus of claim 10, wherein antenna operation in the second frequency band is effected at least in part by a higher mode resonance in the first frequency band.
  • 13. The antenna apparatus of claim 10, wherein: the first frequency band comprises a lower frequency long term evolution (LTE) application band;and the second frequency band comprises an upper frequency LTE application band.
  • 14. A multiband antenna component for use with a radio communications device, the antenna operable in a first frequency band and a second frequency band, the antenna component comprising: a dielectric element comprising a top antenna assembly disposed on a first side of the dielectric element, and a bottom antenna assembly disposed on an opposing second side of the dielectric element, said dielectric element having a first and a second end;a first lower frequency band structure of the top antenna assembly operable in the first frequency band and disposed substantially on the first end of the first side, the first lower frequency band structure electrically coupled to the feed point;a second lower frequency band structure of the bottom antenna assembly operable in the first frequency band and disposed substantially on the second end of the opposing second side, the second lower frequency band structure electrically coupled to the ground point;a third higher frequency band structure of the top antenna assembly operable in the second frequency band and disposed substantially on the first side, the third higher frequency band structure electromagnetically coupled to the feed point; anda fourth higher frequency band structure of the bottom antenna assembly operable in the second frequency band and disposed substantially on the opposing second side, the fourth higher frequency band structure electromagnetically coupled to the ground point;wherein: the first lower frequency band structure of the top antenna assembly is positioned directly above the fourth higher frequency band structure and opposite the second lower frequency band structure of the bottom antenna assembly; andthe second lower frequency band structure of the bottom antenna assembly is positioned directly below the third higher frequency band structure and opposite the first lower frequency band structure of the top antenna assembly.
  • 15. The antenna component of claim 14, wherein the first frequency band comprises a lower frequency long term evolution (LTE) application band and second frequency band is selected from a group consisting of (i) 1710-1990 MHz, (ii) 2110-2170 MHz; and 2500-2700 MHz.
  • 16. The antenna component of claim 14, wherein: the first lower frequency band structure comprises a first radiator arm disposed substantially co-planar with yet parallel to a second radiator arm; andthe second lower frequency band structure comprises a third radiator arm disposed substantially co-planar with yet parallel to a fourth radiator arm.
  • 17. The antenna component of claim 16, wherein: the first radiator arm comprises a first linear slot disposed substantially longitudinally within the first radiator arm; andthe second radiator arm comprises a second linear slot disposed substantially longitudinally within the second radiator arm.
  • 18. The antenna component of claim 16, further comprising: a first conductive element disposed between the first lower frequency band structure and the feed point and effecting a connection of the first lower frequency band structure to the feed point;a first electromagnetic coupling element electrically disposed between the first conductive element and a first branch of the third higher frequency band structure; anda second electromagnetic coupling element electrically disposed between the first conductive element and a second branch of the third higher frequency band structure;wherein: the first electromagnetic coupling element is configured to electromagnetically couple the first radiator arm to the feed; andthe second electromagnetic coupling element is configured to electromagnetically couple the second radiator arm to the feed.
  • 19. The antenna component of claim 14, further comprising: a first conductive element disposed on the first side and configured to effect a connection between the feed and the first lower frequency band structure; anda second conductive element disposed on the second side and configured to effect a connection between the ground and the second lower frequency band structure.
  • 20. The antenna component of claim 19, further comprising a structure disposed substantially on the first side and configured to electrically couple to the second conductive element disposed on the second side.
  • 21. The antenna component of claim 14, wherein: an outer perimeter of the first lower frequency band structure is configured to substantially overlap with an outer perimeter of the fourth higher frequency band structure; andan outer perimeter of the third higher frequency band structure is configured to substantially overlap with an outer perimeter of the second lower frequency band structure.
  • 22. The antenna component of claim 14, wherein: an outer perimeter of the first lower frequency band structure is configured to partially overlap with an outer perimeter of the fourth higher frequency band structure when viewed in a direction substantially normal to the first side; andan outer perimeter of the second lower frequency band structure is configured to partially overlap an outer perimeter of the third higher frequency band structure when viewed in the direction substantially normal to the first side.
  • 23. The antenna component of claim 14, further comprising: a fifth lower frequency band structure disposed substantially on the first side and configured to electromagnetically couple to the second lower frequency band structure; anda sixth lower frequency band structure disposed substantially on the second side and configured to electromagnetically couple to the first lower frequency band structure.
  • 24. A method of enabling radio communications device operation using a multiband dipole antenna, the method comprising: providing a feed signal to a feed disposed on a first side of a dielectric substrate, and to a coupling disposed on an opposing second side of the dielectric substrate, the dielectric substrate having first and second ends;exciting a first pair of lower frequency band antenna structures disposed substantially on the first end of the first side of the dielectric substrate and electrically coupled to the feed so as to radiate in a first frequency band;exciting a second pair of lower frequency band antenna structures disposed substantially on the second end on the opposing second side of the dielectric substrate and electrically coupled to a ground so as to radiate in the first frequency band;causing a third pair of higher frequency band antenna structures disposed substantially on the first side and disposed directly above the second pair of lower frequency band structures to radiate in a second frequency band different than the first band by effecting electromagnetic coupling between the third pair of higher frequency band antenna structures and the feed;causing a fourth pair of higher frequency band antenna structures disposed substantially on the second side and disposed directly below the first pair of lower frequency band structures to radiate in a second frequency band different than the first band by effecting electromagnetic coupling between the fourth pair of higher frequency band antenna structures and the ground;causing a fifth pair of lower frequency band antenna structures disposed substantially on the second end of the first side of the dielectric substrate and above the second pair of lower frequency band structures to radiate in a first frequency band by effecting parasitic coupling between the fifth pair of lower frequency band antenna structures and the first pair of lower frequency band antenna structures; andcausing a sixth pair of lower frequency band antenna structures disposed substantially on the first end of the opposing second side of the dielectric substrate and below the first pair of lower frequency band structures to radiate in a first frequency band by effecting parasitic coupling between the sixth pair of lower frequency band antenna structures and second pair of lower frequency band antenna structures.
  • 25. The method of claim 23, wherein: the first pair of lower frequency band antenna structures comprises a first radiator arm disposed substantially co-planar with yet parallel to a second radiator arm; andthe second pair of lower frequency band antenna structures comprises a third radiator arm disposed substantially co-planar with yet parallel to a fourth radiator arm.
  • 26. The method of claim 25, further comprising tuning an electromagnetic coupling of the third pair of higher frequency band antenna structures and the first pair of lower frequency band antenna structures, said tuning of the electromagnetic coupling of the third pair of higher frequency band antenna structures and the first pair of lower frequency band antenna structures being effected at least in part by a first linear slot disposed substantially longitudinally within the first radiator arm and a second linear slot disposed substantially longitudinally within the second radiator arm.
  • 27. The method of claim 26, further comprising tuning an electromagnetic coupling of the fourth pair of higher frequency band antenna structures and the second pair of lower frequency band antenna structures, said tuning of the electromagnetic coupling of the fourth pair of higher frequency band antenna structures and the second pair of lower frequency band antenna structures being effected at least in part by a third linear slot disposed substantially longitudinally within the third radiator arm and a fourth linear slot disposed substantially longitudinally within the fourth radiator arm.
  • 28. The method of claim 25, further comprising: effecting electric coupling of the first pair of lower frequency band antenna structures to the feed via a first conductive element disposed therebetween;effecting electromagnetic coupling of a first branch of an individual one of the third pair of higher frequency band structures and the feed via a first electromagnetic coupling element disposed electrically between the first conductive element and the first branch of the individual one of the third pair of higher frequency band structures; andeffecting electromagnetic coupling of a second branch of the individual one of the third pair of higher frequency band structures to the feed via a second electromagnetic coupling element disposed electrically between the first conductive element and the second branch of the individual one of the third pair of higher frequency band structures.
US Referenced Citations (460)
Number Name Date Kind
2745102 Norgorden May 1956 A
3938161 Sanford Feb 1976 A
4004228 Mullett Jan 1977 A
4005430 Dubost et al. Jan 1977 A
4028652 Wakino et al. Jun 1977 A
4031468 Ziebell et al. Jun 1977 A
4054874 Oltman Oct 1977 A
4069483 Kaloi Jan 1978 A
4123756 Nagata et al. Oct 1978 A
4123758 Shibano et al. Oct 1978 A
4131893 Munson et al. Dec 1978 A
4201960 Skutta et al. May 1980 A
4255729 Fukasawa et al. Mar 1981 A
4313121 Campbell et al. Jan 1982 A
4356492 Kaloi Oct 1982 A
4370657 Kaloi Jan 1983 A
4423396 Makimoto et al. Dec 1983 A
4431977 Sokola et al. Feb 1984 A
4546357 Laughon et al. Oct 1985 A
4559508 Nishikawa et al. Dec 1985 A
4625212 Oda et al. Nov 1986 A
4653889 Haneishi Mar 1987 A
4661992 Garay et al. Apr 1987 A
4692726 Green et al. Sep 1987 A
4703291 Nishikawa et al. Oct 1987 A
4706050 Andrews Nov 1987 A
4716391 Moutrie et al. Dec 1987 A
4740765 Ishikawa et al. Apr 1988 A
4742562 Kommrusch May 1988 A
4761624 Igarashi et al. Aug 1988 A
4800348 Rosar et al. Jan 1989 A
4800392 Garay et al. Jan 1989 A
4821006 Ishikawa et al. Apr 1989 A
4823098 DeMuro et al. Apr 1989 A
4827266 Sato et al. May 1989 A
4829274 Green et al. May 1989 A
4835538 McKenna et al. May 1989 A
4835541 Johnson et al. May 1989 A
4862181 PonceDeLeon et al. Aug 1989 A
4879533 De Muro et al. Nov 1989 A
4896124 Schwent Jan 1990 A
4907006 Nishikawa et al. Mar 1990 A
4954796 Green et al. Sep 1990 A
4965537 Kommrusch Oct 1990 A
4977383 Niiranen Dec 1990 A
4980694 Hines Dec 1990 A
5016020 Simpson May 1991 A
5017932 Ushiyama et al. May 1991 A
5043738 Shapiro et al. Aug 1991 A
5047739 Kuokkanene Sep 1991 A
5053786 Silverman et al. Oct 1991 A
5057847 Vaisanen Oct 1991 A
5061939 Nakase Oct 1991 A
5097236 Wakino et al. Mar 1992 A
5103197 Turunen et al. Apr 1992 A
5109536 Kommrusch Apr 1992 A
5155493 Thursby et al. Oct 1992 A
5157363 Puurunen et al. Oct 1992 A
5159303 Flink Oct 1992 A
5166697 Viladevall et al. Nov 1992 A
5170173 Krenz et al. Dec 1992 A
5203021 Repplinger et al. Apr 1993 A
5210510 Karsikas May 1993 A
5210542 Pett et al. May 1993 A
5220335 Huang Jun 1993 A
5229777 Doyle Jul 1993 A
5239279 Turunen Aug 1993 A
5278528 Turunen Jan 1994 A
5281326 Galla Jan 1994 A
5298873 Ala-Kojola Mar 1994 A
5302924 Jantunen Apr 1994 A
5304968 Ohtonen Apr 1994 A
5307036 Turunen Apr 1994 A
5319328 Turunen Jun 1994 A
5349315 Ala-Kojola Sep 1994 A
5349700 Parker Sep 1994 A
5351023 Niiranen Sep 1994 A
5354463 Turunen Oct 1994 A
5355142 Marshall et al. Oct 1994 A
5357262 Blaese Oct 1994 A
5363114 Shoemaker Nov 1994 A
5369782 Kawano et al. Nov 1994 A
5382959 Pett et al. Jan 1995 A
5386214 Sugawara Jan 1995 A
5387886 Takalo Feb 1995 A
5394162 Korovesis et al. Feb 1995 A
RE34898 Turunen Apr 1995 E
5408206 Turunen Apr 1995 A
5418508 Puurunen May 1995 A
5432489 Yrjola Jul 1995 A
5438697 Fowler et al. Aug 1995 A
5440315 Wright et al. Aug 1995 A
5442280 Baudart Aug 1995 A
5442366 Sanford Aug 1995 A
5444453 Lalezari Aug 1995 A
5467065 Turunen Nov 1995 A
5473295 Turunen Dec 1995 A
5506554 Ala-Kojola Apr 1996 A
5508668 Prokkola Apr 1996 A
5510802 Tsuru et al. Apr 1996 A
5517683 Collett et al. May 1996 A
5521561 Yrjola May 1996 A
5526003 Ogawa et al. Jun 1996 A
5532703 Stephens et al. Jul 1996 A
5541560 Turunen Jul 1996 A
5541617 Connolly et al. Jul 1996 A
5543764 Turunen Aug 1996 A
5550519 Korpela Aug 1996 A
5557287 Pottala et al. Sep 1996 A
5557292 Nygren et al. Sep 1996 A
5566441 Marsh et al. Oct 1996 A
5570071 Ervasti Oct 1996 A
5585771 Ervasti Dec 1996 A
5585810 Tsuru et al. Dec 1996 A
5589844 Belcher et al. Dec 1996 A
5594395 Niiranen Jan 1997 A
5604471 Rattila Feb 1997 A
5627502 Ervasti May 1997 A
5649316 Prodhomme et al. Jul 1997 A
5668561 Perrotta et al. Sep 1997 A
5675301 Nappa Oct 1997 A
5689221 Niiranen Nov 1997 A
5694135 Dikun et al. Dec 1997 A
5696517 Kawahata et al. Dec 1997 A
5703600 Burrell et al. Dec 1997 A
5709832 Hayes et al. Jan 1998 A
5711014 Crowley et al. Jan 1998 A
5717368 Niiranen Feb 1998 A
5731749 Yrjola Mar 1998 A
5734305 Ervasti Mar 1998 A
5734350 Deming et al. Mar 1998 A
5734351 Ojantakanen Mar 1998 A
5739735 Pyykko Apr 1998 A
5742259 Annamaa Apr 1998 A
5757327 Yajima et al. May 1998 A
5760746 Kawahata Jun 1998 A
5764190 Murch et al. Jun 1998 A
5767809 Chuang et al. Jun 1998 A
5768217 Sonoda et al. Jun 1998 A
5777581 Lilly et al. Jul 1998 A
5777585 Tsuda et al. Jul 1998 A
5793269 Ervasti Aug 1998 A
5797084 Tsuru et al. Aug 1998 A
5812094 Maldonado Sep 1998 A
5815048 Ala-Kojola Sep 1998 A
5822705 Lehtola Oct 1998 A
5852421 Maldonado Dec 1998 A
5861854 Kawahata et al. Jan 1999 A
5874926 Tsuru et al. Feb 1999 A
5880697 McCarrick et al. Mar 1999 A
5886668 Pedersen et al. Mar 1999 A
5892490 Asakura et al. Apr 1999 A
5903820 Hagstrom May 1999 A
5905475 Annamaa May 1999 A
5920290 McDonough et al. Jul 1999 A
5926139 Korisch Jul 1999 A
5929813 Eggleston Jul 1999 A
5936583 Sekine et al. Aug 1999 A
5943016 Snyder, Jr. et al. Aug 1999 A
5952975 Pedersen et al. Sep 1999 A
5959583 Funk Sep 1999 A
5963180 Leisten Oct 1999 A
5966097 Fukasawa et al. Oct 1999 A
5970393 Khorrami et al. Oct 1999 A
5977710 Kuramoto et al. Nov 1999 A
5986606 Kossiavas et al. Nov 1999 A
5986608 Korisch et al. Nov 1999 A
5990848 Annamaa et al. Nov 1999 A
5999132 Kitchener et al. Dec 1999 A
6005529 Hutchinson Dec 1999 A
6006419 Vandendolder et al. Dec 1999 A
6008764 Ollikainen Dec 1999 A
6009311 Killion et al. Dec 1999 A
6014106 Annamaa Jan 2000 A
6016130 Annamaa Jan 2000 A
6023608 Yrjola Feb 2000 A
6031496 Kuittinen et al. Feb 2000 A
6034637 McCoy et al. Mar 2000 A
6037848 Alila Mar 2000 A
6043780 Funk et al. Mar 2000 A
6052096 Tsuru et al. Apr 2000 A
6072434 Papatheodorou Jun 2000 A
6078231 Pelkonen Jun 2000 A
6091363 Komatsu et al. Jul 2000 A
6091365 Derneryd et al. Jul 2000 A
6097345 Walton Aug 2000 A
6100849 Tsubaki et al. Aug 2000 A
6112106 Crowley et al. Aug 2000 A
6121931 Levi et al. Sep 2000 A
6133879 Grangeat et al. Oct 2000 A
6134421 Lee et al. Oct 2000 A
6140966 Pankinaho Oct 2000 A
6140973 Annamaa Oct 2000 A
6147650 Kawahata et al. Nov 2000 A
6157819 Vuokko Dec 2000 A
6177908 Kawahata Jan 2001 B1
6185434 Hagstrom Feb 2001 B1
6190942 Wilm et al. Feb 2001 B1
6195049 Kim et al. Feb 2001 B1
6204826 Rutkowski et al. Mar 2001 B1
6215376 Hagstrom Apr 2001 B1
6246368 Deming et al. Jun 2001 B1
6252552 Tarvas et al. Jun 2001 B1
6252554 Isohatala Jun 2001 B1
6255994 Saito Jul 2001 B1
6268831 Sanford Jul 2001 B1
6281848 Nagumo et al. Aug 2001 B1
6295029 Chen et al. Sep 2001 B1
6297776 Pankinaho Oct 2001 B1
6304220 Herve et al. Oct 2001 B1
6308720 Modi Oct 2001 B1
6316975 O'Toole et al. Nov 2001 B1
6323811 Tsubaki Nov 2001 B1
6326921 Egorov et al. Dec 2001 B1
6337663 Chi-Minh Jan 2002 B1
6340954 Annamaa et al. Jan 2002 B1
6342859 Kurz et al. Jan 2002 B1
6343208 Ying Jan 2002 B1
6346914 Annamaa Feb 2002 B1
6348892 Annamaa Feb 2002 B1
6353443 Ying Mar 2002 B1
6366243 Isohatala Apr 2002 B1
6377827 Rydbeck Apr 2002 B1
6380905 Annamaa Apr 2002 B1
6396444 Goward May 2002 B1
6404394 Hill Jun 2002 B1
6417813 Durham et al. Jul 2002 B1
6421014 Sanad Jul 2002 B1
6423915 Winter Jul 2002 B1
6429818 Johnson et al. Aug 2002 B1
6452551 Chen Sep 2002 B1
6452558 Saitou et al. Sep 2002 B1
6456249 Johnson et al. Sep 2002 B1
6459413 Tseng et al. Oct 2002 B1
6462716 Kushihi Oct 2002 B1
6469673 Kaiponen Oct 2002 B2
6473056 Annamaa Oct 2002 B2
6476767 Aoyama et al. Nov 2002 B2
6476769 Lehtola Nov 2002 B1
6480155 Eggleston Nov 2002 B1
6483462 Weinberger Nov 2002 B2
6498586 Pankinaho Dec 2002 B2
6501425 Nagumo Dec 2002 B1
6515625 Johnson Feb 2003 B1
6518925 Annamaa Feb 2003 B1
6529168 Mikkola Mar 2003 B2
6529749 Hayes et al. Mar 2003 B1
6535170 Sawamura et al. Mar 2003 B2
6538604 Isohatala Mar 2003 B1
6538607 Barna Mar 2003 B2
6542050 Arai et al. Apr 2003 B1
6549167 Yoon Apr 2003 B1
6552686 Ollikainen et al. Apr 2003 B2
6556812 Pennanen et al. Apr 2003 B1
6566944 Pehlke May 2003 B1
6580396 Lin Jun 2003 B2
6580397 Lindell Jun 2003 B2
6600449 Onaka Jul 2003 B2
6603430 Hill et al. Aug 2003 B1
6606016 Takamine et al. Aug 2003 B2
6611235 Barna et al. Aug 2003 B2
6614400 Egorov Sep 2003 B2
6614401 Onaka et al. Sep 2003 B2
6614405 Mikkonen Sep 2003 B1
6634564 Kuramochi Oct 2003 B2
6636181 Asano Oct 2003 B2
6639564 Johnson Oct 2003 B2
6646606 Mikkola Nov 2003 B2
6650295 Ollikainen et al. Nov 2003 B2
6657593 Nagumo et al. Dec 2003 B2
6657595 Phillips et al. Dec 2003 B1
6670926 Miyasaka Dec 2003 B2
6677903 Wang Jan 2004 B2
6680705 Tan et al. Jan 2004 B2
6683573 Park Jan 2004 B2
6693594 Pankinaho et al. Feb 2004 B2
6717551 Desclos et al. Apr 2004 B1
6727857 Mikkola Apr 2004 B2
6734825 Guo et al. May 2004 B1
6734826 Dai et al. May 2004 B1
6738022 Klaavo et al. May 2004 B2
6741214 Kadambi et al. May 2004 B1
6753813 Kushihi Jun 2004 B2
6759989 Tarvas et al. Jul 2004 B2
6765536 Phillips et al. Jul 2004 B2
6774853 Wong et al. Aug 2004 B2
6781545 Sung Aug 2004 B2
6801166 Mikkola Oct 2004 B2
6801169 Chang et al. Oct 2004 B1
6806835 Iwai Oct 2004 B2
6819287 Sullivan et al. Nov 2004 B2
6819293 De Graauw Nov 2004 B2
6825818 Toncich Nov 2004 B2
6836249 Kenoun et al. Dec 2004 B2
6847329 Ikegaya et al. Jan 2005 B2
6856293 Bordi Feb 2005 B2
6862437 McNamara Mar 2005 B1
6862441 Ella Mar 2005 B2
6873291 Aoyama Mar 2005 B2
6876329 Milosavljevic Apr 2005 B2
6882317 Koskiniemi Apr 2005 B2
6891507 Kushihi et al. May 2005 B2
6897810 Dai et al. May 2005 B2
6900768 Iguchi et al. May 2005 B2
6903692 Kivekas Jun 2005 B2
6906678 Chen Jun 2005 B2
6911945 Korva Jun 2005 B2
6922171 Annamaa Jul 2005 B2
6925689 Folkmar Aug 2005 B2
6927729 Legay Aug 2005 B2
6937196 Korva Aug 2005 B2
6950065 Ying et al. Sep 2005 B2
6950066 Hendler et al. Sep 2005 B2
6950068 Bordi Sep 2005 B2
6950072 Miyata et al. Sep 2005 B2
6952144 Javor Oct 2005 B2
6952187 Annamaa Oct 2005 B2
6958730 Nagumo et al. Oct 2005 B2
6961544 Hagstrom Nov 2005 B1
6963308 Korva Nov 2005 B2
6963310 Horita et al. Nov 2005 B2
6967618 Ojantakanen Nov 2005 B2
6975278 Song et al. Dec 2005 B2
6980158 Iguchi et al. Dec 2005 B2
6985108 Mikkola Jan 2006 B2
6992543 Luetzelschwab et al. Jan 2006 B2
6995710 Sugimoto et al. Feb 2006 B2
7023341 Stilp Apr 2006 B2
7031744 Kuriyama et al. Apr 2006 B2
7034752 Sekiguchi et al. Apr 2006 B2
7042403 Colburn et al. May 2006 B2
7053841 Ponce De Leon et al. May 2006 B2
7054671 Kaiponen et al. May 2006 B2
7057560 Erkocevic Jun 2006 B2
7061430 Zheng et al. Jun 2006 B2
7081857 Kinnunen et al. Jul 2006 B2
7084831 Takagi et al. Aug 2006 B2
7099690 Milosavljevic Aug 2006 B2
7113133 Chen et al. Sep 2006 B2
7119749 Miyata et al. Oct 2006 B2
7126546 Annamaa Oct 2006 B2
7129893 Otaka et al. Oct 2006 B2
7136019 Mikkola Nov 2006 B2
7136020 Yamaki Nov 2006 B2
7142824 Kojima et al. Nov 2006 B2
7148847 Yuanzhu Dec 2006 B2
7148849 Lin Dec 2006 B2
7148851 Takaki et al. Dec 2006 B2
7170464 Tang et al. Jan 2007 B2
7176838 Kinezos Feb 2007 B1
7180455 Oh et al. Feb 2007 B2
7193574 Chiang et al. Mar 2007 B2
7205942 Wang et al. Apr 2007 B2
7215283 Boyle May 2007 B2
7218280 Annamaa May 2007 B2
7218282 Humpfer et al. May 2007 B2
7224313 McKinzie, III et al. May 2007 B2
7230574 Johnson Jun 2007 B2
7233775 De Graauw Jun 2007 B2
7237318 Annamaa Jul 2007 B2
7256743 Korva Aug 2007 B2
7274334 O'Riordan et al. Sep 2007 B2
7283097 Wen et al. Oct 2007 B2
7289064 Cheng Oct 2007 B2
7292200 Posluszny et al. Nov 2007 B2
7319432 Andersson Jan 2008 B2
7330153 Rentz Feb 2008 B2
7333067 Hung et al. Feb 2008 B2
7339528 Wang et al. Mar 2008 B2
7340286 Korva et al. Mar 2008 B2
7345634 Ozkar et al. Mar 2008 B2
7352326 Korva Apr 2008 B2
7355270 Hasebe et al. Apr 2008 B2
7358902 Erkocevic Apr 2008 B2
7375695 Ishizuka et al. May 2008 B2
7381774 Bish et al. Jun 2008 B2
7382319 Kawahata et al. Jun 2008 B2
7385556 Chung et al. Jun 2008 B2
7388543 Vance Jun 2008 B2
7391378 Mikkola et al. Jun 2008 B2
7405702 Annamaa et al. Jul 2008 B2
7417588 Castany et al. Aug 2008 B2
7423592 Pros et al. Sep 2008 B2
7432860 Huynh Oct 2008 B2
7439929 Ozkar Oct 2008 B2
7443344 Boyle Oct 2008 B2
7468700 Milosavlejevic Dec 2008 B2
7468709 Niemi et al. Dec 2008 B2
7498990 Park et al. Mar 2009 B2
7501983 Mikkola Mar 2009 B2
7502598 Kronberger Mar 2009 B2
7589678 Perunka et al. Sep 2009 B2
7616158 Mark et al. Nov 2009 B2
7633449 Oh Dec 2009 B2
7663551 Nissinen Feb 2010 B2
7679565 Sorvala Mar 2010 B2
7692543 Copeland Apr 2010 B2
7710325 Cheng May 2010 B2
7724204 Annamaa May 2010 B2
7760146 Ollikainen Jul 2010 B2
7764245 Loyet Jul 2010 B2
7786938 Sorvala Aug 2010 B2
7800544 Thornell-Pers Sep 2010 B2
7830327 He Nov 2010 B2
7843397 Boyle Nov 2010 B2
7889139 Hobson et al. Feb 2011 B2
7889143 Milosavljevic Feb 2011 B2
7901617 Taylor et al. Mar 2011 B2
7903035 Mikkola et al. Mar 2011 B2
7916086 Koskiniemi et al. Mar 2011 B2
7963347 Pabon Jun 2011 B2
7973720 Sorvala Jul 2011 B2
8049670 Jung et al. Nov 2011 B2
8098202 Annamaa et al. Jan 2012 B2
8179322 Nissinen May 2012 B2
8193998 Puente et al. Jun 2012 B2
8378892 Sorvala et al. Feb 2013 B2
8466756 Milosavljevic et al. Jun 2013 B2
8473017 Milosavljevic et al. Jun 2013 B2
8564485 Milosavljevic et al. Oct 2013 B2
8629813 Milosavljevic Jan 2014 B2
20010050636 Weinberger Dec 2001 A1
20020183013 Auckland et al. Dec 2002 A1
20020196192 Nagumo et al. Dec 2002 A1
20030146873 Blancho Aug 2003 A1
20040090378 Dai et al. May 2004 A1
20040137950 Bolin et al. Jul 2004 A1
20040145525 Annabi et al. Jul 2004 A1
20040171403 Mikkola Sep 2004 A1
20050057401 Yuanzhu Mar 2005 A1
20050159131 Shibagaki et al. Jul 2005 A1
20050176481 Jeong Aug 2005 A1
20060071857 Pelzer Apr 2006 A1
20060192723 Harada Aug 2006 A1
20070042615 Liao Feb 2007 A1
20070082789 Nissila Apr 2007 A1
20070152881 Chan Jul 2007 A1
20070188388 Feng Aug 2007 A1
20080055164 Zhang et al. Mar 2008 A1
20080059106 Wight Mar 2008 A1
20080088511 Sorvala Apr 2008 A1
20080266199 Milosavljevic Oct 2008 A1
20090009415 Tanska Jan 2009 A1
20090128425 Kim et al. May 2009 A1
20090135066 Raappana et al. May 2009 A1
20090174604 Keskitalo Jul 2009 A1
20090196160 Crombach Aug 2009 A1
20090197654 Teshima Aug 2009 A1
20090231213 Ishimiya Sep 2009 A1
20100220016 Nissinen Sep 2010 A1
20100220022 Yoon et al. Sep 2010 A1
20100244978 Milosavljevic Sep 2010 A1
20100309092 Lambacka Dec 2010 A1
20110012790 Badaruzzaman et al. Jan 2011 A1
20110109514 Galeev May 2011 A1
20110133994 Korva Jun 2011 A1
20110156958 Wong et al. Jun 2011 A1
20120119955 Milosavljevic et al. May 2012 A1
20120194404 Arkko et al. Aug 2012 A1
20120218151 Wong et al. Aug 2012 A1
Foreign Referenced Citations (90)
Number Date Country
1316797 Oct 2007 CN
10104862 Aug 2002 DE
10150149 Apr 2003 DE
0 208 424 Jan 1987 EP
0 376 643 Apr 1990 EP
0 751 043 Apr 1997 EP
0 807 988 Nov 1997 EP
0 831 547 Mar 1998 EP
0 851 530 Jul 1998 EP
1 294 048 Jan 1999 EP
1 014 487 Jun 2000 EP
1 024 553 Aug 2000 EP
1 067 627 Jan 2001 EP
0 923 158 Sep 2002 EP
1 329 980 Jul 2003 EP
1 361 623 Nov 2003 EP
1 406 345 Apr 2004 EP
1 453 137 Sep 2004 EP
1 220 456 Oct 2004 EP
1 467 456 Oct 2004 EP
1 753 079 Feb 2007 EP
20020829 Nov 2003 FI
118782 Mar 2008 FI
2553584 Oct 1983 FR
2724274 Mar 1996 FR
2873247 Jan 2006 FR
2266997 Nov 1993 GB
2360422 Sep 2001 GB
2389246 Dec 2003 GB
59-202831 Nov 1984 JP
60-206304 Oct 1985 JP
61-245704 Nov 1986 JP
06-152463 May 1994 JP
07-131234 May 1995 JP
07-221536 Aug 1995 JP
07-249923 Sep 1995 JP
07-307612 Nov 1995 JP
08-216571 Aug 1996 JP
09-083242 Mar 1997 JP
09-260934 Oct 1997 JP
09-307344 Nov 1997 JP
10-028013 Jan 1998 JP
10-107671 Apr 1998 JP
10-173423 Jun 1998 JP
10-209733 Aug 1998 JP
10-224142 Aug 1998 JP
10-322124 Dec 1998 JP
10-327011 Dec 1998 JP
11-004113 Jan 1999 JP
11-004117 Jan 1999 JP
11-068456 Mar 1999 JP
11-127010 May 1999 JP
11-127014 May 1999 JP
11-136025 May 1999 JP
11-355033 Dec 1999 JP
2000-278028 Oct 2000 JP
2001-053543 Feb 2001 JP
2001-267833 Sep 2001 JP
2001-217631 Oct 2001 JP
2001-326513 Nov 2001 JP
2002-319811 Oct 2002 JP
2002-329541 Nov 2002 JP
2002-335117 Nov 2002 JP
2003-060417 Feb 2003 JP
2003-124730 Apr 2003 JP
2003-179426 Jun 2003 JP
2004-112028 Apr 2004 JP
2004-363859 Dec 2004 JP
2005-005985 Jan 2005 JP
2005-252661 Sep 2005 JP
20010080521 Oct 2001 KR
20020096016 Dec 2002 KR
100986702 Oct 2010 KR
511900 Dec 1999 SE
20090146591 Jul 2011 TW
WO 9200635 Jan 1992 WO
WO 9627219 Sep 1996 WO
WO 9801919 Jan 1998 WO
WO 9930479 Jun 1999 WO
WO 0120718 Mar 2001 WO
WO 0129927 Apr 2001 WO
WO 0133665 May 2001 WO
WO 0161781 Aug 2001 WO
WO 2004017462 Feb 2004 WO
WO 2004057697 Jul 2004 WO
WO 2004100313 Nov 2004 WO
WO 2004112189 Dec 2004 WO
WO 2005062416 Jul 2005 WO
WO 2007012697 Feb 2007 WO
WO 2010122220 Oct 2010 WO
Non-Patent Literature Citations (53)
Entry
“An Adaptive Microstrip Patch Antenna for Use in Portable Transceivers”, Rostbakken et al., Vehicular Technology Conference, 1996, Mobile Technology for the Human Race, pp. 339-343.
“Dual Band Antenna for Hand Held Portable Telephones”, Liu et al., Electronics Letters, vol. 32, No. 7, 1996, pp. 609-610.
“Improved Bandwidth of Microstrip Antennas using Parasitic Elements,” IEE Proc. vol. 127, Pt. H. No. 4, Aug. 1980.
“A 13.56MHz RFID Device and Software for Mobile Systems”, by H. Ryoson, et al, Micro Systems Network Co., 2004 IEEE, pp. 241-244.
“A Novel Approach of a Planar Multi-Band Hybrid Series Feed Network for Use in Antenna Systems Operating at Millimeter Wave Frequencies,” by M.W. Elsallal and B.L. Hauck, Rockwell Collins, Inc., 2003 pp. 15-24, waelsall@rockwellcollins.com and blhauck@rockwellcollins.com.
Abedin, M. F. and M. Ali, “Modifying the ground plane and its erect on planar inverted-F antennas (PIFAs) for mobile handsets,” IEEE Antennas and Wireless Propagation Letters, vol. 2, 226-229, 2003.
C. R. Rowell and R. D. Murch, “A compact PIFA suitable for dual frequency 900/1800-MHz operation,” IEEE Trans. Antennas Propag., vol. 46, No. 4, pp. 596-598, Apr. 1998.
Cheng- Nan Hu, Willey Chen, and Book Tai, “A Compact Multi-Band Antenna Design for Mobile Handsets”, APMC 2005 Proceedings.
Endo, T., Y. Sunahara, S. Satoh and T. Katagi, “Resonant Frequency and Radiation Efficiency of Meander Line Antennas,” Electronics and Commu-nications in Japan, Part 2, vol. 83, No. 1, 52-58, 2000.
European Office Action, May 30, 2005 issued during prosecution of EP 04 396 001.2-1248.
Examination Report dated May 3, 2006 issued by the EPO for European Patent Application No. 04 396 079.8.
F.R. Hsiao, et al. “A dual-band planar inverted-F patch antenna with a branch-line slit,” Microwave Opt. Technol. Lett., vol. 32, Feb. 20, 2002.
Griffin, Donald W. et al., “Electromagnetic Design Aspects of Packages for Monolithic Microwave Integrated Circuit-Based Arrays with Integrated Antenna Elements”, IEEE Transactions on Antennas and Propagation, vol. 43, No. 9, pp. 927-931, Sep. 1995.
Guo, Y. X. and H. S. Tan, “New compact six-band internal antenna,” IEEE Antennas and Wireless Propagation Letters, vol. 3, 295-297, 2004.
Guo, Y. X. and Y.W. Chia and Z. N. Chen, “Miniature built-in quadband antennas for mobile handsets”, IEEE Antennas Wireless Propag. Lett., vol. 2, pp. 30-32, 2004.
Hoon Park, et al. “Design of an Internal antenna with wide and multiband characteristics for a mobile handset”, IEEE Microw. & Opt. Tech. Lett. vol. 48, No. 5, May 2006.
Hoon Park, et al. “Design of Planar Inverted-F Antenna With Very Wide Impedance Bandwidth”, IEEE Microw. & Wireless Comp., Lett., vol. 16, No. 3, pp. 113-115-, Mar. 2006.
Hossa, R., A. Byndas, and M. E. Bialkowski, “Improvement of compact terminal antenna performance by incorporating open-end slots in ground plane,” IEEE Microwave and Wireless Components Letters, vol. 14, 283-285, 2004.
I. Ang, Y. X. Guo, and Y. W. Chia, “Compact internal quad-band antenna for mobile phones” Micro. Opt. Technol. Lett., vol. 38, No. 3 pp. 217-223 Aug. 2003.
International Preliminary Report on Patentability for International Application No. PCT/F12004/000554, date of issuance of report May 1, 2006.
Jing, X., et al; “Compact Planar Monopole Antenna for Multi-Band Mobile Phones”; Microwave Conference Proceedings, 4.-7.12.2005.APMC 2005, Asia- Pacific Conference Proceedings, vol. 4.
Kim, B. C., J. H. Yun, and H. D. Choi, “Small wideband PIFA for mobile phones at 1800 MHz,” IEEE International Conference on Vehicular Technology, 27{29, Daejeon, South Korea, May 2004.
Kim, Kihong et al., “Integrated Dipole Antennas on Silicon Substrates for Intra-Chip Communication”, IEEE, pp. 1582-1585, 1999.
Kivekas., O., J. Ollikainen, T. Lehtiniemi, and P. Vainikainen, “Bandwidth, SAR, and eciency of internal mobile phone antennas,” Transactions on Electromagnetic Compatibility, vol. 46, 71{86,2004.
K-L Wong, Planar Antennas for Wireless Communications, Hoboken, NJ: Willey, 2003, ch. 2.
Lindberg., P. and E. Ojefors, “A bandwidth enhancement technique for mobile handset antennas using wavetraps,” IEEE Transactions on Antennas and Propagation, vol. 54, 2226{2232, 2006.
Marta Martinez- Vazquez, et al., “Integrated Planar Multiband Antennas for Personal Communication Handsets”, IEEE Trasactions on Antennas and propagation, vol. 54, No. 2, Feb. 2006.
P. Ciais, et al., “Compact Internal Multiband Antennas for Mobile and WLAN Standards”, Electronic Letters, vol. 40, No. 15, pp. 920-921, Jul. 2004.
P. Ciais, R. Staraj, G. Kossiavas, and C. Luxey, “Design of an internal quadband antenna for mobile phones”, IEEE Microwave Wireless Comp. Lett., vol. 14, No. 4, pp. 148-150, Apr. 2004.
P. Salonen, et al. “New slot configurations for dual-band planar inverted-F antenna,” Microwave Opt. Technol., vol. 28, pp. 293-298, 2001.
Papapolymerou, loannis et al., “Micromachined Patch Antennas”, IEEE Transactions on Antennas and Propagation, vol. 46, No. 2, pp. 275-283, Feb. 1998.
Product of the Month, RFDesign, “GSM/GPRS Quad Band Power Amp Includes Antenna Switch,” 1 page, reprinted Nov. 2004 issue of RF Design (www.rfdesign.com), Copyright 2004, Freescale Semiconductor, RFD-24-EK.
S. Tarvas, et al. “An internal dual-band mobile phone antenna,” in 2000 IEEE Antennas Propagat. Soc. Int. Symp. Dig., pp. 266-269, Salt Lake City, UT, USA.
Wang, F., Z. Du, Q. Wang, and K. Gong, “Enhanced-bandwidth PIFA with T-shaped ground plane,” Electronics Letters, vol. 40, 1504-1505, 2004.
Wang, H.; “Dual-Resonance Monopole Antenna with Tuning Stubs”; IEEE Proceedings, Microwaves, Antennas & Propagation, vol. 153, No. 4, Aug. 2006; pp. 395-399.
Wong, K., et al.; “A Low-Profile Planar Monopole Antenna for Multiband Operation of Mobile Handsets”; IEEE Transactions on Antennas and Propagation, Jan. '03, vol. 51, No. 1.
X.-D. Cai and J.-Y. Li, Analysis of asymmetric TEM cell and its optimum design of electric field distribution, IEE Proc 136 (1989), 191-194.
X.-Q. Yang and K.-M. Huang, Study on the key problems of'interaction between microwave and chemical reaction, Chin Jof Radio Sci 21 (2006), 802-809.
Chiu, C.-W., et al., “A Meandered Loop Antenna for LTE/WWAN Operations in a Smartphone,” Progress in Electromagnetics Research C, vol. 16, pp. 147-160, 2010.
Lin, Sheng-Yu; Liu, Hsien-Wen; Weng, Chung-Hsun; and Yang, Chang-Fa, “A miniature Coupled loop Antenna to be Embedded in a Mobile Phone for Penta-band Applications,” Progress in Electromagnetics Research Symposium Proceedings, Xi'an, China, Mar. 22-26, 2010, pp. 721-724.
Zhang, Y.Q., et al. “Band-Notched UWB Crossed Semi-Ring Monopole Antenna,” Progress in Electronics Research C, vol. 19, 107-118, 2011, pp. 107-118.
Joshi, Ravi K., et al., “Broadband Concentric Rings Fractal Slot Antenna”, XXVIIIth General Assembly of International Union of Radio Science (URSI). (Oct. 23-29, 2005), 4 Pgs.
Singh, Rajender, “Broadband Planar Monopole Antennas,” M.Tech credit seminar report, Electronic Systems group, EE Dept, Iit Bombay, Nov. 2003, pp. 1-24.
Gobien, Andrew, T. “Investigation of Low Profile Antenna Designs for Use in Hand-Held Radios,”Ch.3, The Inverted-L Antenna and Variations; Aug. 1997, pp. 42-76.
See, C.H., et al., “Design of Planar Metal-Plate Monopole Antenna for Third Generation Mobile Handsets,” Telecommunications Research Centre, Bradford University, 2005, pp. 27-30.
Chen, Jin-Sen, et al., “CPW-fed Ring Slot Antenna with Small Ground Plane,” Department of Electronic Engineering, Cheng Shiu University.
“LTE—an introduction,” Ericsson White Paper, Jun. 2009, pp. 1-16.
“Spectrum Analysis for Future LTE Deployments,” Motorola White Paper, 2007, pp. 1-8.
Chi, Yun-Wen, et al. “Quarter-Wavelength Printed Loop Antenna With an Internal Printed Matching Circuit for GSM/DCS/PCS/UMTS Operation in the Mobile Phone,” IEEE Transactions on Antennas and Propagation, vol. 57, No. 9m Sep. 2009, pp. 2541-2547.
Wong, Kin-Lu, et al. “Planar Antennas for Wlan Applications,” Dept. Of Electrical Engineering, National Sun Yat-Sen University, 2002 09 Ansoft Workshop, pp. 1-45.
“μ/4 printed monopole antenna for 2.45GHz,” Nordic Semiconductor, White Paper, 2005, pp. 1-6.
White, Carson, R., “Single- and Dual-Polarized Slot and Patch Antennas with Wide Tuning Ranges,” The University of Michigan, 2008.
Extended European Search Report dated Jan. 30, 2013, issued by the EPO for EP Patent Application No, 12177740.3.
Related Publications (1)
Number Date Country
20130009836 A1 Jan 2013 US