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Tuesday, 4 September 2012

Meet the Faculty: Jennifer Franck

Posted on 11:49 by Unknown
Passenger jet or flapping bat, Jennifer Frank writes code that simulates the flow of air around things with wings. The computational approach has advantages and efficiencies, especially for someone to whom coding comes naturally.

Jennifer Franck’s first foray into computing was on the venerable, if rudimentary, Commodore 64. As a child, she tapped out simple looping programs that sent a series of numbers to her printer. Since those early days, Franck’s programs have gotten considerably more complex.

Jennifer Franck
Lecturer in Engineering
Credit: Mike Cohea/Brown University
The new lecturer in engineering is an expert in computational fluid dynamics. She writes programs that simulate how fluids and gases flow around objects. Specifically, she codes what are called large-eddy simulations, a class of code designed to study turbulence. She mostly uses her model to investigate the dynamics of flight — how wind interacts with wings.

After earning her Ph.D. in mechanical engineering from Caltech in 2009, she came to Brown as a postdoc to work with Kenneth Breuer in engineering and Sharon Swartz in ecology and evolutionary biology, who are widely known for their research on the mechanics of bat flight. “What I was interested in was to see if I could explain some of the characteristics of animal flight using my models on the computer,” Franck said.

One of the questions Franck looked at is why bats flap their wings, as opposed to using them for soaring flight. “There’s a theory that bats evolved from passive gliders to actively flapping their wings,” she said. “The question was, what’s the benefit of flapping.”

Franck’s models helped to show that flapping creates vortices — tiny pockets of low air pressure — above a bat’s wings. Those vortices create extra lift and may be part of the reason flapping is worth the effort.

Franck has also used her models to explore applications that might improve aircraft flight. “Say you want an airplane to have more lift,” she said. “Could you apply some sort of device on the wing that would pump some extra energy into the flow and give you better performance? I’m interested in applying code to those types of flow control questions.”

There are significant advantages to the computational approach, Franck says. It’s much easier, for example, to modify the parameters of an experiment on a computer than it is to design new physical models for wind tunnel tests. Another advantage is that computer models help to isolate the specific aspects of a problem that researchers are trying to address.

“We generally model a very simple airfoil that’s often just two dimensional because it simplifies the problem,” Franck said. “If we’re looking at the basic physics behind a problem, we don’t want to make things too complicated.”

Though the models may be simple, the code that generates them is not. Most of Franck’s programs require computer clusters that string together multiple processors. For some of her research, Franck has used a cluster at Brown’s Center for Computation and Visualization. For other projects she’s used the Department of Defense’s Army Research Lab cluster in Maryland.

It’s a long way from the Commodore 64, but Franck is right at home. “Coding has always just come naturally to me,” she says.

She and her husband Christian, professor of engineering at Brown, live in Providence with their two kids.

- Kevin Stacey/Brown University
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Meet the Faculty: Indrek Külaots

Posted on 08:24 by Unknown
Graphene — sheets of carbon that are one atom thick — could help take mercury and other nasty pollutants out of circulation if only there were a way to keep the sheets from sticking together. Indrek Külaots is working on a system of nanoscale pillars.

Indrek Külaots is using garbage to make the world a cleaner place.

Indrek Külaots
Lecturer in Engineering
Credit: Frank Mullin/Brown University
Untold tons of plant matter are discarded in the United States every day. Much of this biomass — farm waste, sawdust, wood scraps, household yard waste — is trucked off to landfills. As it rots, it produces carbon dioxide and methane, greenhouse gases that contribute to global warming.

“My research focuses on trying to make better use of this bio-waste material,” said Külaots, lecturer in engineering. He has found a way to turn this trash into sorbent material than can sop up industrial pollutants.

Using a simple technique called pyrolysis — the same process used to make charcoal — plant waste can be broken down into what’s called bio-char. “This char product has relatively high surface area and is also highly porous,” Külaots said. “We can use those pores as workers for pollutant capture.”

He has patented a method of using modified bio-char to absorb elemental mercury. Bio-char could one day be used as a cost-effective way to scrub mercury from power plant vapor emissions, replacing expensive activated carbon filters. Bio-char sorbents also show promise for cleaning up other pollutants like arsenic, cadmium, and lead, Külaots says.

Külaots’ interest in environmental engineering began in his native Estonia. After earning his master’s degree in mechanical engineering at the Tallinn Technical University, he worked on a project to recycle fly ash, a byproduct produced by the burning of oil shale. His work on that subject caught the eye of Eric Suuberg, an engineering professor at Brown. Suuberg thought Külaots’ work could be applied to fly ash created by the burning of coal, which is a major concern in the United States

“He saw my work and said, ‘Why don’t you apply?’” Külaots said. “So I came to Brown as a Ph.D. student and I never left.”

After earning a master’s degree in applied mathematics in 2000 and a Ph.D. in chemical engineering in 2001, Külaots stayed at Brown as a senior research engineer. In 2009, he was awarded a joint position as lecturer and research engineer. This year he joins the faculty as a lecturer.

In addition to teaching classes in chemical, mechanical, and environmental engineering, he’s expanding his research program to include a hot topic in the material sciences world: graphene.

Graphene is a one-atom-thick sheet of carbon, with vast surface area. It began getting notoriety a few years ago and quickly gained a reputation as a miracle material. Its electrical properties make it a likely successor of silicon in microprocessors. It also holds promise as a way to store gases like hydrogen for use in fuel cells, and it can catalyze chemical reactions.

But for all its miraculousness, graphene has a problem. The sheets have a tendency to get stuck together in stacks when processed, which decreases this vast surface area on each sheet. Think of two sheets of paper stapled at all four corners. It’s not possible to write on the back of the first page or the front of the second because those surfaces are stuck together.

“My research is how to interrupt this stacking,” Külaots said. “How can we get something in the middle so we can actually use the inner layer space as well?”

He’s developing tiny carbon columns to do the job.

“It’s just a pillar, like in ancient Rome,” he said. “But when you’re working at the nanoscale it’s not that easy.” Despite the difficulty, Külaots has had success using his pillars to recover some of this lost space, and recently presented his work at one of the world’s top conferences on carbon materials.

“These pillared graphene and graphene oxide systems have a great potential in the fields of gas storage, separation, and catalysis, if properly converted into bulk materials,” he said.

Such is the fast-paced world of engineering: Even before graphene makes it out of the lab and into production, Külaots is thinking of ways to make it better.

-
Kevin Stacey/Brown University
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Friday, 31 August 2012

Brown School of Engineering to Host Open House for Prospective Students

Posted on 09:14 by Unknown
The Brown University School of Engineering will hold an open house on Saturday, September 29, from 1:00 p.m. – 4:00 p.m. in room 166 of the Barus and Holley building (184 Hope Street / Corner of Hope and George Streets). The faculty of the School of Engineering and the Office of College Admission invite prospective applicants, parents, teachers, and guidance counselors to attend this open house.

The program will include an overview of the undergraduate programs of study, information about faculty and student research interests, opportunity to meet faculty and undergraduates from the School of Engineering, and a brief overview of admissions and financial aid.

Students are asked to please RSVP online by Monday, September 24. Students may call (401) 863-7930 for further information.

The Brown undergraduate engineering program enrolls 400 students, and is the oldest in the Ivy League and the third oldest civilian program in the nation.  Students may earn a bachelor of science degree in one of six ABET accredited programs: biomedical engineering, chemical and biochemical engineering, computer engineering, electrical engineering, materials engineering, or mechanical engineering.

For any students arriving on campus early, the admission office offers regularly scheduled information sessions at 10:00 a.m. and 11:00 a.m. and campus tours at 9:00 a.m., 10:00 a.m., and 11:00 a.m. Tours leave from the Stephen Robert ’62 Campus Center located at 75 Waterman Street.
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Tuesday, 7 August 2012

Brown School of Engineering Hosts Eastman Conference

Posted on 10:51 by Unknown
The Brown University School of Engineering is hosting the 2012 Lester Eastman Conference on High Performance Devices from August 7-9, 2012. The conference will include sessions on green technology; high speed devices; infrared photonics; terahertz technology; power conversion, switching, and transmission; and next generation devices.

The conference will have three plenary speakers: Professor Umesh Mishra (USCB) on Recent Advances in High Frequency Semiconductor Devices; Professor Hideo Ohno (Tohoku Univ., Japan) on Spintronic Devices for VLSI; and Dr. Kamiar Karimi (Boeing Corporation) on High Power Semiconductor Devices.

Larry Larson, Dean of the School of Engineering at Brown, will give a talk on the “Internet of Things”.

The conference is being organized locally by Domenico Pacifici, assistant professor of engineering at Brown. The general chair of the conference is Professor Paul Chow of RPI.

For more information, please go to: http://www.leconf.com/
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Monday, 6 August 2012

Do girls need lacrosse helmets?

Posted on 10:57 by Unknown
Joseph Crisco, professor of orthopaedics, wanted to measure the impact of hits to the head in girls’ lacrosse. He invited some players into his lab to take some shots at a test dummy. The data could inform an eventual standard for girls’ and women’s lacrosse.

A little more to the left
To analyze what happens in a girls' lacrosse game when
stick meets head, Joseph Crisco equipped a test dummy
with accelerometers and invited players to take some shots.
Credit: Mike Cohea/Brown University
PROVIDENCE, R.I. [Brown University] — Dr. Joseph "Trey" Crisco, the Henry F. Lippitt Professor of Orthopaedics and Director of the Bioengineering Lab, recently invited female lacrosse players ranging in age from 12 to 28 into his Rhode Island Hospital lab to swing their sticks for a project titled “Head Accelerations from Various Stick Checks in Girls’ Lacrosse.”

The research, funded by US Lacrosse, the national governing body of men’s, women’s and youth lacrosse, and by the National Operating Committee on Standards for Athletic Equipment, will provide data on how the head is accelerated after being hit by a stick. Video analysis of players taking whacks at a helmeted dummy, taken at 1,000 frames per second, could inform an eventual standard for girls’ and women’s lacrosse headgear.

For years, Crisco has studied head impacts in sports such as football, hockey, and lacrosse by embedding accelerometers in the helmets of collegiate teams and gathering data from actual practices and competition.

by David Orenstein
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Quantifying the magnetic nature of light emission

Posted on 10:09 by Unknown
In collaboration with The Institute of Photonics Sciences (ICFO) in Barcelona, Brown School of Engineering researchers in the lab of Rashid Zia ’01, Manning Assistant Professor of Engineering, have just published an article in in Nature Communications. Visiting scholar Tim Taminiau from the lab of Niek van Hulst at ICFO worked alongside Brown engineering graduate student Sinan Karaveli to demonstrate how the natural magnetic dipole transitions in lanthanide ions can be used to access optical-frequency magnetic fields.

Authors: Tim H. Taminiau, Sinan Karaveli, Niek F. van Hulst, and Rashid Zia

Examining how light emission is distributed in energy-
and momentum-space can reveal fundamental
information about optical transitions. This image
shows an energy-momentum spectrum of europium ions.
Following bright emissions lines, you may notice
several points where the contrast inverts - these
changes are direct visualizations of the opposite
symmetries of electric and magnetic dipoles transitions.
Abstract:
Tremendous advances in the study of magnetic light-matter interactions have recently been achieved using man-made nanostructures that exhibit and exploit an optical magnetic response. However, naturally occurring emitters can also exhibit magnetic resonances in the form of optical-frequency magnetic-dipole transitions. Here we quantify the magnetic nature of light emission using energy- and momentum-resolved spectroscopy, and leverage a pair of spectrally close electric- and magnetic-dipole transitions in trivalent europium to probe vacuum fluctuations in the electric and magnetic fields at the nanometre scale. These results reveal a new tool for nano-optics: an atomic-size quantum emitter that interacts with the magnetic component of light.

To access the full article, please go to:
http://www.nature.com/ncomms/journal/v3/n7/full/ncomms1984.html
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Venture for America fellow Tim Dingman '11 hired by Accio Energy

Posted on 08:19 by Unknown
Accio Energy (Ann Arbor, Mich.) is taking on one of the first Venture for America fellows this month, hiring Tim Dingman '11, an electrical engineering graduate from Brown University.

Venture for America is launching its inaugural class of fellows this summer, pairing 40 fresh college graduates with start-ups in economically challenged regions. The New York City-based non-profit is modeled after Teach for America where it pairs top talent from U.S. universities with innovative start-ups growing in urban areas, such as New Orleans, Las Vegas, Cincinnati and Providence, Rhode Island. The idea is to give college grads an open door into entrepreneurship in the hopes they will launch their own start-ups in their host cities one day.

Metro Detroit companies are receiving 11 of these fellows, and Accio Energy is the only firm from Ann Arbor to receive one. The alternative energy start-up is reinventing the wind energy generation with new technology that creates clean energy from static electricity generated from the wind.

"The novelty of it combined with the size of the company were two huge draws," says Dingman.

Dingman also founded his own start-up, which makes a showerhead efficiency upgrade for dorm rooms. He has been interested in developing clean tech for most if his college career, but wanted to get his professional start working for a young company creating disruptive technology.

"There is a lot of energy there," Dingman says. "There is a lot of room for innovation which is what I was looking for in my placement."

Source: Tim Dingman, fellow with Venture for America
Writer: Jon Zemke
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