Showing posts with label University of Florida. Show all posts
Showing posts with label University of Florida. Show all posts

Thursday, June 19, 2008

Has Dr Subrata Roy Replicated a UFO Propulsion System? NASA is Interested

Flying Saucer (WEAV) Illustration By Danielle Zawoy

University of Florida professor designs plasma-propelled flying saucer

By Jay Goodwin
University of Florida News
6-11-08

     GAINESVILLE, Fla. — Flying saucers may soon be more fact than mere science fiction.

University of Florida mechanical and aerospace engineering associate professor Subrata Roy has submitted a patent application for a circular, spinning aircraft design reminiscent of the spaceships seen in countless Hollywood films. Roy, however, calls his design a “wingless electromagnetic air vehicle,” or WEAV.

The proposed prototype is small – the aircraft will measure less than six inches across – and will be efficient enough to be powered by on-board batteries.

Roy said the design can be scaled up and theoretically should work in a much larger form. Even in miniature, though, the design has many uses.

The most obvious functions would be surveillance and navigation. The aircraft could be designed to carry a camera and light and be controlled remotely at great distances, he said.

Fittingly, Roy said his flying saucer one day could soar through atmospheres other than Earth’s own. For example, the aircraft would be an ideal vehicle for the exploration of Titan, Saturn’s sixth moon, which has high air density and low gravity, Roy said.

The U.S. Air Force and NASA have expressed interest in the aircraft, and the university is seeking to license the design, he said.

“This is a very novel concept, and if it’s successful, it will be revolutionary,” Roy said.

The vehicle will be powered by a phenomenon called magnetohydrodynamics, or the force created when a current or a magnetic field is passed through a conducting fluid. In the case of Roy’s aircraft, the conducting fluid will be created by electrodes that cover each of the vehicle’s surfaces and ionize the surrounding air into plasma.

The force created by passing an electrical current through this plasma pushes around the surrounding air, and that swirling air creates lift and momentum and provides stability against wind gusts. In order to maximize the area of contact between air and vehicle, Roy’s design is partially hollow and continuously curved, like an electromagnetic flying bundt pan.

One of the most revolutionary aspects of Roy’s use of magnetohydrodynamics is that the vehicle will have no moving parts. The lack of traditional mechanical aircraft parts, such as propellers or jet engines, should provide tremendous reliability, Roy said. Such a design also will allow the WEAV to hover and take off vertically.

Though the design is promising on paper, towering obstacles stand between the blueprint and liftoff.

No plasma-propelled aircraft has successfully taken flight on Earth. Such designs have found some success in space, where gravity and drag are minimal, but a vehicle hoping to fly within Earth’s atmosphere will need at least an order of magnitude more thrust, Roy said.

Also, the power source needs to be extremely lightweight yet still produce enough power to generate the necessary plasma. Not to mention the fact that the very same plasma that will allow the aircraft to fly also will interfere with electromagnetic waves necessary for communication with the vehicle.

But Roy is confident that the unique nature of his design will allow it to clear the technological hurdles and take to the skies, and he’s not deterred by the risk of failure.

“Of course the risk is huge, but so is the payoff,” he said. “If successful, we will have an aircraft, a saucer and a helicopter all in one embodiment.”

The propulsion system for Roy’s saucer sprouts from his extensive U.S. Air Force-funded plasma actuator research, the results of which have appeared in more than 15 scholarly journals.

The production of the aircraft will be a joint project of UF’s mechanical and aerospace engineering department and its electrical and computer engineering department.

Thursday, December 27, 2007

Finding a Suitable Planet; What Would ET Do?


By DailyTech.com
12-26-07


Thinkers at the University of Florida put themselves in ET's shoes to learn how to find Earth-like planets.
     Finding extra-solar planets and solar systems has become commonplace, but finding Earth-like planets that might support our version of humanity hasn't done so well. Of the 240-plus planets found outside our own system in the past twenty years, zero can be considered "Class M," as Mr. Spock would say. The solution to finding planets that could support Earth-like life forms? Ask what our friend ET would see if he happened to glimpse the Earth through telescopes of similar or slightly better design than ones currently fielded by earthlings.

A paper published by astronomers from the University of Florida, Massachusetts Institute of Technology and Instituto de Astrofisca de Canarias in Spain gives us a little insight as to what we might need to look for in that single pixel the Earth would realize in a current-tech image. If observed over a period of months, the paper explains, enough data could be collected to infer the presence of not only water, but a dynamic atmosphere and stable land masses.

The basis of this is that though Earth's weather systems seem chaotic, over a period of time quantifiable observations can be made due to what we know about how weather systems normally work. For example, there is most often cloud cover over rain forests while arid areas, like deserts, are typically devoid thereof. If a pattern of brightness, probably created by liquids in one state or another, can be observed for long enough, earthlings or ET could very well establish the rotational period of an extra-solar Earth-like planet.

As most of the time, liquids are much more reflective than your average handful of dirt, rock or tree, it would be a more stable marker in such uses. The variable brightness in other areas would suggest cloud cover of some sort, and thus a working climatic system. Where you have a working climate and liquid water, it's quite possible for you to have life, or at least sustain it if none already exists.

To this effect, work is underway for a new 10-meter telescope in the Canary Islands as a joint effort between the University of Florida and he Instituto de Astrofisca de Canarias. The facility is scheduled to start operations in 2008. Eric Ford, UF assistant professor and one of the five co-authors of the paper says that zeroing in on Earth-like planets at even the closest stars would require a telescope at least twice the size of the Hubble Space Telescope.

We pause to consider the ramifications of such extra-solar planets being found. Even at our current level of technology, ion drives and all, the trip would probably take at least a lifetime to accomplish. This is probably a small price to pay for something like colonization. But examining other scenarios like the Doomed Earth Evacuation and the Earth First (we can strip mine the other planets later) corporate outlook are also interesting to theorize about.

Sci-fi has been doing it for decades, but breakthroughs in astronomy and space travel could make it more of a reality inside of this century. There is no doubt that we'll be touching down on Mars in the next 100 years, barring silliness like world-destroying wars. It's not hard to fathom sending out at least unmanned expeditions to newly discovered habitable planets.
Aliens Approaching Earth