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1. Field
The technology of the present invention relates to radio frequency antennas and, and more specifically to radio frequency antennas with a power feed configuration that reduces the specific absorption rate (SAR) of the wireless device.
2. Background
Portable, wireless devices are prevalent in today's society. A person can hardly leave their home without using or encountering the use of a portable, wireless device. For purposes of this application, a portable, wireless device should be construed broadly and includes, but is not limited to, cellular telephones, handheld computers, email devices (such as a BLACKBERRY®), MPEG devices and MP3 players, electronic games, PDAs, and the like.
With the prevalence of wireless devices, many countries are concerned about radio frequency energy or electromagnetic energy being absorbed by a human. SAR is a measurement of the amount of radio frequency energy (radiation) is absorbed by the body when using a radio transmitter such as a cellular telephone. While most electronic devices emit some type of radiation, cellular telephones are of particular interest due to the proximately of the transmitter to the human head during use. For example, referring to
Currently, the Federal Communication Commission in the United States requires cellular telephones to have a SAR level of about 1.6 watts per kilogram of body tissue (1.6 W/kg) or less. Other countries have similar limits, for example, the European limit for SAR is about 2 W/kg.
Many cellular telephones and other devices include electromagnetic shielding to reduce the amount of radiation emitted by the cellular telephone. While shielding is effective to reduce SAR, it increases the cost, weight, and size of the cellular telephone or other portable, wireless device. Thus, additional mechanisms are desired to further reduce the SAR.
To attain the advantages and in accordance with the purpose of the invention, as embodied and broadly described herein, an antenna having reduce SAR is provided. A power feed for an antenna on a portable, wireless device is provided. The power feed includes a first portion extending along a first side of a connector to an edge of the connector. A second portion of the power feed is connected to the first portion proximate the first side of the connector and traverses the edge from the first side to a second side of the connector where it is connected to a third portion of the power feed. The third portion extending away from the edge along the second side to a contact, which couples the power feed to a power supply point on the printed circuit board.
The foregoing and other features, utilities and advantages of the invention will be apparent from the following more particular description of a preferred embodiment of the invention as illustrated in the accompanying drawings.
The technology of the present invention is described with reference to a conventional stubby antenna connected to a cellular telephone. One of ordinary skill in the art would understand on reading the disclosure that the technology of the present application could be used in numerous electrical devices, such as, for example, desktop, laptop, and portable computers, PDAs, email devices, electronic games, MP3 players, MPEG players, wireless access devices, and the like. However, the technology is most useful where specific absorption rates are of particular concern, such as, for example, cellular telephones.
The word “exemplary” is used herein to mean “serving as an example, instance, or illustration.” Any embodiment described herein as “exemplary” is not necessarily to be construed as preferred or advantageous over other embodiments. Moreover, unless specifically described otherwise, all embodiments disclosed herein should be considered exemplary.
Referring now to
Antenna 210 is contained in an antenna housing 212 and has a radiator 214. Antenna 210 is connected to housing 202 by, for example, a connector 216. Connector 216 may be, for example, a snap-fit, a threaded bushing, or the like.
Radiator 214 is connected to radio frequency circuits (not specifically shown) on a PCB 218 internal to housing 202. Radio frequency power is provided to radiator 214 from battery 220 via PCB 218, as will be explained in more detail below.
For reference, connector 216 comprises a first side 222, a second side 224, and at least one edge 226 distal from a top 208 of housing 202. Top 208 simply refers to the side of housing 202 to which antenna 210 is attached and is not provided for any particular orientation. First side 222 of connector 216 is proximate back side 206 of device 200. Second side 224 of connector 216 is proximate front side 204 of device 200. Comparatively, first side 222 is distal front side 204 and second side 224 is distal back side 206.
Radio frequency power is supplied to radiator 214 via a power feed 230. Power feed 230 comprises a first portion 232 connected to radiator 214. First portion 232 meanders along first side 222 of connector 216, distal front side 204 and such that connector 216 is between first portion 232 and user 250. First portion 232 may be separated from first side 222 by a distance D. First portion 232 extends to edge 226. A second portion 234 of power feed 230 extends from first portion 232 to traverse edge 226. In other words second portion 234 wraps around edge 226 and connects to a third portion 236 of power feed 230. Third portion 236 meanders along second side 224 of connector 216 and terminates at contact 238. Contact 238 may be a separate contact or incorporated into power feed 230.
Contact 238 is connected in any connectional manner to a power supply feed point 240 on PCB 218. Battery 220 is connected to PCB 218 in any known conventional manner. Contact 238 may be, for example, a spring contact, a solder point, a press fit contact, or the like.
Referring to
To further increase the shielding provided by connector 216, it may be constructed out of an electromagnetic shielding material. Alternatively, or in combination with the material used to construct connector 216, an electromagnetic shield 260 may be formed internal to connector 216. Electromagnetic shield 260 would further reduce the SAR of portable, wireless device 200.
The previous description of the disclosed embodiments is provided to enable any person skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the invention. Thus, the present invention is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.