The present invention relates generally to an apparatus and method for controlling electromagnetic wave propagation from wireless communications devices for reducing the amount of undesired energy to a user's head or body, or to sensitive electronics that might be proximate to the radiating antennas. More specifically, the present invention uses an interferometric array of two or more antennas to nullify any undesired radiation at selected areas proximate to the interferometric array, which additionally results in far field nulls.
Portable wireless communications devices have received scrutiny regarding their safety with respect to the potential danger associated with the transmission of the signals from such apparatus. When a user of a wireless communication device, such as a cellular telephone, talks on the device, he holds the telephone up his head so that the earpiece is in contact with his ear. In close proximity is the antenna, which usually extends from the top surface of the telephone and which transmits electromagnetic radiation. Typically, the antenna of cellular phones and other wireless communications technologies (PCS, G3 or Blue Tooth) emit radiation in the UHF and/or microwave frequency ranges.
The effect of this electromagnetic radiation on the tissues of the user is being studied. Investigations are underway attempting to ascertain whether links exist between this radiation and maladies such as cancer, weakening of the blood-brain barrier, and high blood pressure. (see, Cellular Phones: Why the Health Risk Can't be Dismissed, Microwave News, January/February 1993; Digital Mobile Phone Radiation Causes Rise in Blood Pressure, Microwave News, July/August 1998; Questions and Answers About Electric and Magnetic Fields Associated with the Use of Electric Power, National Institute of Environmental Health Sciences, U.S. Department of Energy, November 1994.) As public awareness of the potential health risk has grown, so too has the demand for reducing the amount of radiation directed toward and absorbed by the user. Additionally, undesired electromagnetic radiation has also been found to cause interference in certain sensitive electronic equipment located nearby.
In general, electromagnetic wave propagation has been controlled in commercial and military applications as a means to reduce signal jamming at certain locations, to locate targets, or to enhance gain and directionality in desired areas. Past approaches to radiation reduction have utilized several art forms, including the use of shields made by special materials, or other means such as the use of multiple radiating or parasitic elements within a symmetrical or asymmetrical dipole antenna configuration. Typically, the size and distance between radiating elements, along with other variables, offers a means to create the desired wave pattern. These approaches are unconcerned with, and produce inconsistent results for, electromagnetic wave propagation near the user's antenna array and head.
It is known in the art that by providing shielding, some undesired electromagnetic radiation may be suppressed. This approach is taken by Luxon, et al., in U.S. Pat. No. 5,666,125, and Humbert, et al., in U.S. Pat. No. 5,124,889.
Others have attempted to control of electromagnetic wave propagation by employing symmetrical or asymmetrical antenna configurations (Uda-Yagi approach). U.S. Pat. No. 6,147,653 to Wallace, et al., describes a balanced dipole antenna for a mobile phone comprised of a radiator element and counterpoise electrically isolated from the PWB of the mobile phone. As controlling directivity in the far-field, rather than reducting electromagnetic energy near the antenna arrays was the goal of those inventors, the antenna elements are geometrically arranged in such a manner as to create a uniform gain in the azimuth. U.S. Pat. No. 6,239,765 to Johnson, et al., describes utilizing an asymmetric dipole antenna assembly for communications devices operating at predetermined wavelengths and having a transceiver circuit, conductor trace elements plated onto a dielectric using common printed circuit board manufacturing technology with the traces having a first end, a one-quarter wavelength electrical length and a second dipole half. Some communications engineers, however, are skeptical of using directional configurations in the industry. See “Handset Antennas and Humans”, IEEE Proceedings, January 1995.
A third approach to controlling electromagnetic wave propagation has been to employ an array wherein signals generated are phased (in or out) or the signals are cross-polarized. For example, U.S. Pat. No. 6,292,135, to Takatori, et al., describes an adaptive array antenna designed to identify and strengthen or weaken desired signal strengths in poor multipath environments. And U.S. Pat. No. 6,275,199 to Chen describes a nulling direct radiating array and a plurality of auxiliary arrays symmetrically disposed about the main array. This system includes a nulling processor, an adaptive weighting network and weight generator within the nulling processor, and is related to a military application of blocking jamming signals again originating far from the passive receiving antenna array system, rather than reducing radiation emitted from a wireless device.
Accordingly, a need exists for an antenna array for use with a wireless communications device, wherein the antenna array is configured and excited in a manner that will reduce or eliminate undesired electromagnetic radiation near the antenna array.
The present invention provides an interferometric antenna array as a simple, unique, natural and absolute means for controlling energy around a desired location such as a user's head or body or as a means toward preventing undesirable energy from negatively affecting operation of sensitive equipment that is found to be near the radiating elements. For example, assisted listening devices (hearing aids) are sensitive to energies typically emitted from wireless communications devices, but the present invention provides a solution.
An additional use environment for the present invention is in the field of bioelectromagnetics. Implantable transmitters may be used to collect, receive and transmit data to and from a user. Such transmission may be fully automated, or require the conscious cooperation of the user. The present invention provides a highly directional antenna which may be used in implantable wireless transmitters that are implantable into a subject's body, enabling transmission to a desired target while reducing electromagnetc propagation in undesirable directions (e.g., further into the user's body.)
In one embodiment, the present invention provides two radiating antenna elements coupled to signal balancing and phase shifting means between a common signal source of the wireless communications device and the radiating antenna elements. The signals emitted from the radiating elements are substantially equal in magnitude but out of phase by 360°/N, where N represents the number of antenna elements (i.e. two in this embodiment.) The antenna elements are arranged side-by-side and emit radiation that create a symmetric wave pattern, including a null along and near an axis of symmetry between the antenna elements. The antenna elements are positioned such that a user of the communications device will be positioned along or near this axis of symmetry when using the communications device.
In other embodiments, the present invention provides interferometric antenna arrays of wireless communications devices configured with three or more radiating elements which emit electromagnetic waves in such a pattern as to create a spatial null near the antenna array and the wireless communications device user's head and body or the sensitive electronic equipment for which protection is desired.
Referring now to the accompanying drawing, wherein like numerals depict like parts throughout, embodiments of the present invention are illustrated in
In one embodiment illustrated in
The angular placement and distance D 10 between the radiating elements 6, 8 are important parameters in defining a vector 16 distance from points along the radiating elements at which electromagnetic waves radiated from the radiating elements combine to form fringe patterns and to cancel out in the desired areas. The distance D 10 will be constrained primarily by the width of the wireless device 4 (which in the case of the cellular phone shown in
In certain embodiments, the radiating elements 6, 8 have a symmetric geometry, and in a preferred embodiment comprise ordinary dipole antennas of any length, but having an overall effective length that is substantially ½ of the wave length of the signal being transmitted by the wireless communications device. One skilled in the art will appreciate that other antenna element lengths may also be used, for example, ¼ of the wavelength of the signal being transmitted. Each element is fitted to the desired form (stamped metal, printed circuit board, flex circuitry, wires or other means of creating a circuit.) The elements 6, 8 may be fixedly embedded within or externally placed on or around the wireless device 4 as desired and/or legal, either configuration offering the benefits described above. The elements may be housed in an envelope 18 designed for ergonomic, safe and economic use and is constructed of ABS or other moldable or stampable materials.
To generate the spatial null in the two-element configuration of
Other means for attaining a phase difference between two signals are known to artisans and are considered to be within the scope of the present invention. For instance, in another embodiment of the IAA circuit 20, as depicted in
In another embodiment, the present invention provides interferometric antenna arrays configured with more than two radiating elements. For example, a three-element 6,8,9 array is depicted in FIG. 6. Configurations having more than two radiating elements results, in some cases, in the loss of an ominidirectional spatial null along the entire lateral axis 18, but in the region of interest (the user's head and body) reduced electromagnetic radiation is still achievable. The general cartoidal shape of an achievable wave pattern using a three-element configuration is illustrated in FIG. 7. In this configuration, a third radiating element 9 is place equidistant from two radiating elements 6,8 as previously described. To obtain this wave pattern, substantially no phase difference should exist among the signals exciting the radiating elements 6,8,9, however the power delivered to the third radiating element 9 should be nearly equal to twice that delivered to each of the two radiating elements 6,8.
In yet another embodiment, the present invention provides an N-element interferometric antenna array for use with a wireless communications device resulting in reduced undesired electromagnetic energy proximate to the antenna array. The complexity and expense of constructing arrays with a high number of radiating elements may increase significantly without necessarily achieving superior electromagnetic energy reduction over arrays with lower numbers of radiating elements. Generally speaking, a greater number of radiating elements results in a greater number of propagation lobes and spatial null areas, though narrower. Each of the N radiating elements may be fed through N associated phase shifting means. As one example, a branch circuit or other configuration (and possibly an amplifier) may be used to divide the common feed signal from the wireless communications device into a multiplicity of equivalent signals each available to one of the N antenna elements.
In determining the parameters of the excitation signals required to achieve the desired spatial null an in N-element array, an antenna array designer should be guided by the following formula:
wherein:
For example, in the convenient, 2-element embodiment, A1=A2=1 Φ1 and Φ2 are fed 180 out of phase (±90, or 0 and 180), and preferably {circumflex over (1)}1={circumflex over (1)}2.
Other embodiments of the invention will be apparent to those skilled in the art from a consideration of the specification or practice of the invention disclosed herein. For example, as mentioned above, the interferometric antenna array can be used in conjunction with an implantable wireless transmitter. It is intended that the specification and examples be considered as exemplary only, with the true scope and spirit of the invention being indicated by the following claims.
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