Showing posts with label Aviation. Show all posts
Showing posts with label Aviation. Show all posts

Daily Science Journal (Feb. 9, 2008) — Natural flyers like birds, bats and insects outperform man-made aircraft in aerobatics and efficiency. University of Michigan engineers are studying these animals as a step toward designing flapping-wing planes with wingspans smaller than a deck of playing cards.

Flapping flight is inherently unsteady, but that's why it works so well. Birds, bats and insects fly in a messy environment full of gusts traveling at speeds similar to their own. Yet they can react almost instantaneously and adapt with their flexible wings. (Credit: iStockphoto/Steve Byland)

A Blackbird jet flying nearly 2,000 miles per hour covers 32 body lengths per second. But a common pigeon flying at 50 miles per hour covers 75. The roll rate of the aerobatic A-4 Skyhawk plane is about 720 degrees per second. The roll rate of a barn swallow exceeds 5,000 degrees per second.


Select military aircraft can withstand gravitational forces of 8-10 G. Many birds routinely experience positive G-forces greater than 10 G and up to 14 G.

“Natural flyers obviously have some highly varied mechanical properties that we really have not incorporated in engineering,” said Wei Shyy, chair of the Aerospace Engineering department and an author of the new book “The Aerodynamics of Low Reynolds Number Flyers.”

“They’re not only lighter, but also have much more adaptive structures as well as capabilities of integrating aerodynamics with wing and body shapes, which change all the time,” Shyy said. “Natural flyers have outstanding capabilities to remain airborne through wind gusts, rain, and snow.” Shyy photographs birds to help him understand their aerodynamics.

Pressure generated during flight cause the flapping wings to deform, he explained. In turn, the deformed wing tells the air that the wing shape is different than it appears in still air. If appropriately handled, this phenomenon can delay stall, enhance stability and increase thrust.

Flapping flight is inherently unsteady, but that’s why it works so well. Birds, bats and insects fly in a messy environment full of gusts traveling at speeds similar to their own. Yet they can react almost instantaneously and adapt with their flexible wings.

Shyy and his colleagues have several grants from the Air Force totaling more than $1 million a year to research small flapping wing aircraft. Such aircraft would fly slower than their fixed wing counterparts, and more importantly, they would be able to hover and possibly perch in order to monitor the environment or a hostile area. Shyy’s current focus is on the aerodynamics of flexible wings related to micro air vehicles with wingspans between 1 and 3 inches.

“These days, if you want to design a flapping wing vehicle, you could build one with trial and error, but in a controlled environment with no wind gusts,” Shyy said. “We are trying to figure out how to design a vehicle that can perform a mission in an uncertain environment. When the wind blows, how do they stay on course?”

A dragonfly, Shyy says, has remarkable resilience to wind, considering how light it is. The professor chalks that up to its wing structure and flight control. But the details are still questions.

“We’re really just at the beginning of this,” Shyy said.

Shyy is the Clarence L. "Kelly" Johnson Collegiate Professor of Aerospace Engineering. Other authors of the book, “Aerodynamics of Low Reynolds Number Flyers” are: U-M research scientists Yongsheng Lian, Jian Tang and Dragos Viieru, and Hao Liu, professor of Biomechanical Engineering at Chiba University in Japan.

Other collaborators on this research include professors Luis Bernal, Carlos Cesnik and Peretz Friedmann of the University of Michigan; Hao Liu of Chiba University in Japan; Peter Ifju, Rick Lind and Larry Ukeiley of University of Florida, and Sean Humbert of University of Maryland.

Adapted from materials provided by University of Michigan.



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Daily Science Journal (Jan. 31, 2008) — Arctic marine conditions contribute to an oil spill “response gap” that effectively limits the ability to clean up after an oil spill.

A new report commissioned by WWF concludes that the only way to avoid the potentially devastating environmental risks is to ensure that no more of the Arctic is opened up to oil development until the response gap is closed.

“The ability to effectively clean up an arctic marine oil spill is a critical component of the risk equation,” said Dr Neil Hamilton, Director of the WWF International Arctic Programme. “The fact that a catastrophic spill might exceed the operating limits of existing oil spill response technologies is a strong argument for a moratorium until the response gap is filled.”


According to the report Oil Spill Response Challenges in Arctic Waters, arctic conditions can impact on both the probability that a spill will occur from oil and gas operations and the consequences of such a spill. The same conditions that contribute to oil spill risks (including lack of natural light, extreme cold, moving ice floes, high wind and low visibility) can also make spill response operations extremely difficult or totally ineffective.

“The Arctic offers the highest level of ecological sensitivity and the lowest level of capacity to clean up after an accident,” said James Leaton, Senior Policy Adviser, WWF-UK. “This combination makes it unacceptable to expose the Arctic to an unfettered scramble for oil.”

The report recognizes that significant efforts are ongoing to test and improve spill response technologies for use in arctic conditions. However, until such technologies are field-proven and market-ready, additional prevention and planning measures are required to eliminate oil spill risks during times when response operations are not feasible.

WWF has also called for an international mandatory instrument to regulate shipping in the Arctic, as shipping imposes great risks to the Arctic Environment. Routing, zero-discharge zones, areas to be avoided and obligations to keep a certain amount of “self-help” oil spill response equipment on board are among the needed measures.


Adapted from materials provided by World Wildlife Fund.



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