Everything about Extremely High Frequency totally explained
Extremely high frequency is the highest
radio frequency band.
EHF runs the
range of
frequencies from 30 to 300
gigahertz, above which
electromagnetic radiation is considered to be low (or far)
infrared light, also referred to as
terahertz radiation. This band has a
wavelength of ten to one
millimetre, giving it the name
millimeter band or
millimetre wave, sometimes abbreviated
MMW or mmW.
Compared to lower bands, terrestrial
radio signals in this band are extremely prone to
atmospheric attenuation, making them of very little use over long
distances. In particular, signals in the 57–64 GHz region are subject to a
resonance of the
oxygen molecule and are severely attenuated. Even over relatively short distances,
rain fade is a serious problem, caused when
absorption by
rain reduces
signal strength. In climates other than deserts absorption due to humidity also has an impact on propagation. While this absorption limits potential communications range, it also allows for smaller
frequency reuse distances than lower frequencies. The small
wavelength allows modest size antennas to have a small beam width, further increasing frequency reuse potential.
Applications
Scientific research
This band is commonly used in
radio astronomy and
remote sensing. Ground-based radio astronomy is limited to high altitude sites such as
Kitt Peak and Atacama Large Millimeter Array (
ALMA) due to atmospheric absorption issues. Satellite-based remote sensing near 60 GHz can determine temperature distributions in the
upper atmosphere by measuring radiation emitted from oxygen molecules that's a function of temperature and pressure. The
ITU non-exclusive passive frequency allocation at 57-59.3 is used for
atmospheric monitoring in meteorological and climate sensing applications,
and is important for these purposes due to the properties of oxygen absorption
and emission in Earth’s atmosphere. Currently operational U.S. satellite
sensors such as the Advanced Microwave Sounding Unit (AMSU) on one
NASA satellite (Aqua) and four NOAA (15-18) satellites and the Special
Sensor Microwave Imager Sounder (SSMI/S) on Department of Defense
satellite F-16 make use of this frequency range.
Telecommunications
In the United States, the band 38.6 - 40.0 GHz is used for licensed high-speed microwave data links, and the 60 GHz band can be used for unlicensed short range (1.7 km) data links with data throughputs up to 2.5
Gbit/s. It is used commonly in flat terrain.
The 71-76, 81-86 and 92–95 GHz bands are also used for point-to-point high-bandwidth communication links. These frequencies, as opposed to the 60 GHz frequency, require a transmitting license in the US from the
FCC, though they don't suffer from the effects of oxygen absorption as the 60 GHz does. There are plans for 10 Gbit/s links using these frequencies as well. In the case of the 92–95 GHz band, a small 100 MHz range has been reserved for space-borne radios, making this reserved range limited to a transmission rate of under a few gigabits per second.
The band is essentially undeveloped and available for use in a broad range of new products and services, including high-speed, point-to-point wireless local area networks and
broadband Internet access.
WirelessHD is another recent technology that operates near the 60 GHz range. Highly directional, "pencil-beam" signal characteristics permit systems in these bands to be engineered in close proximity to one another without causing interference. Potential applications include
radar systems with very high resolution.
Uses of the millimeter wave bands includes point-to-point communications, intersatellite links, and point-to-multipoint communications.
Because of shorter wavelengths, the band permits the use of smaller antennas than would be required for similar circumstances in the lower bands, to achieve the same high directivity and high gain. The immediate consequence of this high directivity, coupled with the high free space loss at these frequencies, is the possibility of a more efficient use of the spectrum for point-to-multipoint applications. Since a greater number of high directive antennas can be placed than less directive antennas in a given area, the net result is higher reuse of the spectrum, and higher density of users, as compared to lower frequencies. Furthermore, due to the fact that one can place more voice channels or broadband information using a higher frequency to transmit the information, this spectrum could potentially be used as a replacement for or supplement to fiber optics.
Weapons systems
The U.S. Air Force is reported to have developed a nonlethal weapon system called
Active Denial System (ADS) which emits a beam of radiation with a wavelength of 3mm
(External Link
). The weapon is reportedly not painful, but rather makes the target feel as if his or her clothes are going to catch fire
(External Link
).
Security screening
(External Link

) Privacy advocates are concerned about the use of this technology because it allows screens to see airport passengers without clothing. However, the technology is still unreliable and doesn't provide definable resolution that would warrant a privacy issue.
The
TSA is planning to deploy several machines in airports for testing in the United States in early Spring. These machines have been deployed in the
Jersey City PATH train system as well.
Currently the technology doesn't mask any part of the bodies of the people who are being scanned and proposed remedies for privacy concerns include only scanning people who are detected to be carrying an object that may be a weapon and developing technology to mask genitals and other 'private parts', and an article about the PATH system states that an unnamed government official stated this technology is already in place
[, leading the journalist to conclude "there are no...privacy issues for travelers".]
Three security scanners using millimeter waves were put into use at Schiphol Airport in Amsterdam on 15 May 2007, with more expected to be installed later. The passenger's head is masked from the view of the security personnel.
According to Farran Technologies, a manufacturer of one model of the millimeter wave scanner, the technology exists to extend the search area to as far as 50 meters beyond the scanning area which would allow security workers to scan a large number of people without their awareness that they're being scanned (External Link
). < error 500?
Further Information
Get more info on 'Extremely High Frequency'.
|
External Link Exchanges
Do you know how hard it is to get a link from a large encyclopaedia? Well we're different and will prove it. To get a link from us just add the following HTML to your site on a relevant page:
<a href="http://extremely_high_frequency.totallyexplained.com">Extremely high frequency Totally Explained</a>
Then simply click through this link from your web page. Our crawlers will verify your link, extract the title of your web page and instantly add a link back to it. If you like you can remove the words Totally Explained and embed the link in article text.
As long as your link remains in place, we'll keep our link to you right here. Please play fair - our crawlers are watching. Your site must be closely related to this one's topic. Any kind of spamming, dubious practises or removing the link will result in your link from us being dropped and, potentially, your whole site being banned. |