Showing posts with label Colorado University-Boulder. Show all posts
Showing posts with label Colorado University-Boulder. Show all posts

Thursday, March 3, 2011

First Announcement - LunGradCon 2011


This second annual Lunar Graduate Conference (LunGradCon 2011) will be held at the NASA Ames Research Center in Mountain View, CA, on July 17, 2011. The 1st annual LunGradCon 2010 was held July 18, 2010.

Alicia Muirhead
University of Colorado, Boulder

The 2nd Annual Lunar Graduate Conference (LunGradCon 2011) will be held on Sunday, July 17, 2011 at the NASA Ames Research Center (ARC), preceding the NASA Lunar Science Forum.

LunGradCon provides an opportunity for grad students and early-career postdocs to present their research on lunar science in a low-stress, friendly environment, being critiqued only by their peers.

In addition to oral presentations, the conference presents opportunities for networking with fellow grad students and postdocs, as well as senior members of the NASA Lunar Science Institute. A limited amount of funding will be provided for travel and lodging costs.

For more details, please visit: http://lasp.colorado.edu/ccldas/lgc2011 or email any questions to: lungradcon@gmail.com

Tuesday, July 7, 2009

Interplanetary Internet takes shape

CU-Boulder space payload operators Emily Pilinski, left, Andrew Jenkins, center, and Sebastian Kusminski, all of BioServe Space Technologies in the aerospace engineering sciences department, receive data packets from the International Space Station as part of tests beginning this week to extend the Internet to outer space. Photo by Glenn Asakawa/University of Colorado

The University of Colorado at Boulder is working with NASA to develop a new communications technology now being tested on the International Space Station, which will extend Earth's Internet into outer space and across the solar system.

Called Disruption Tolerant Networking, or DTN, the new technology will enable NASA and other space agencies around the world to better communicate with international fleets of spacecraft that will be used to explore the moon and Mars in the future. The technology is expected to lead to a working "Interplanetary Internet," said Kevin Gifford, a senior research associate at CU-Boulder's BioServe Space Technologies and a faculty member in the aerospace engineering sciences department.

"Communication between spacecraft and ground stations has traditionally been over a single point-to-point link, much like a walkie-talkie," said Gifford. "Currently, space operations teams must manually schedule each link and generate appropriate commands to specify where the data is to be sent, the time it will be sent and its destination. As the number of spacecraft and links increase and the need to communicate between many space vehicles emerges, these manual operations become increasingly cumbersome and costly," he said.

"Highly automated future communications capabilities will be required for lunar habitation and surface exploration that include passing information between orbiting relay satellites, lunar and planetary habitats and astronauts on the surface," said Gifford. "But existing Internet protocols, where Internet hosts and computers are always connected, do not work well for many space-based environments, where intermittently connected operations are common."

The new data communications protocols were installed on a BioServe payload known as the Commercial Generic Bioprocessing Apparatus, or CGBA, on the International Space Station in May to send DTN messages known as "bundles," said Gifford. As part of NASA's communication operations test that will begin June 15, bundles will be sent from the space station to its operations and control facility at Marshall Space Flight Center in Huntsville, Ala., then on to a mission control center at CU-Boulder's BioServe.

The new DTN "Bundle Protocol" was developed by the Internet Research Task Force based on initial work started over 10 years ago in a partnership between NASA and Vint Cerf, who holds the title of vice president and chief Internet evangelist of Google Inc. of Mountain View, Calif. Cerf often is referred to as one of the "fathers" of the Internet.

Cerf said that "while conventional Internet protocols may work well in short-delay, richly connected terrestrial environments, they quickly degrade in long-delay and highly stressed wireless data communications scenarios that are already beginning to be encountered at the edges of the Internet, which is where space tends to begin."

Cerf's counterpart in the Space Communications and Navigation office at NASA Headquarters in Washington, D.C., is Adrian Hooke. Hooke, a veteran of the Apollo 11 mission launch team, is the manager of NASA's new Space DTN project and is a pioneer in the development of international space networking standards.

"With the new system, delays caused by spacecraft moving behind planets or solar storms disrupting communications are not a problem because the data packets are not discarded when outages occur, but instead are stored as long as necessary until an opportunity arises that allows them to be transmitted," Hooke said. "This 'store-and forward' method is similar to a basketball player passing the ball down the court to other players nearer to the basket, who have a clear shot at the goal."

"By improving data timeliness associated with robotic and human-tended missions, NASA is reducing risk, reducing cost, increasing crew safety, improving operational awareness and improving science return," said Gifford. "There also are intriguing applications of the DTN technology on Earth. They include the tracking of livestock and wildlife, enhancing Internet 'hot spot' connectivity in remote rural areas in Third World countries, and tactical operations support for the U.S. military."

Multiple NASA centers are involved in the research, including the Marshall Space Flight Center, the Johnson Space Center in Houston, the Glenn Research Center in Cleveland, the Goddard Space Flight Center in Greenbelt, Md., the Jet Propulsion Laboratory in Pasadena, Calif., and the Applied Physics Laboratory at Johns Hopkins University in Laurel, Md. NASA and CU-Boulder also are exploring ways to extend the experiments on the International Space Station to involve the European Space Agency and the Japanese Aerospace Exploration Agency.

In November 2008, JPL first tested the DTN protocols by transmitting dozens of space images through the EPOXI spacecraft -- located about 20 million miles from Earth -- back to NASA's Deep Space Network. "The new series of DTN testing on the International Space Station adds yet another space-based router to the gradually evolving Interplanetary Internet," said Hooke.

BioServe has designed, built and flown over 50 different payloads on over 35 space flight missions including the NASA space shuttle, the space station, Russia's MIR space station and the Russian Soyuz and Progress spacecraft.

For more information on BioServe go to bioserve.colorado.edu.

Thursday, May 28, 2009

Zybek boasts Regolith simulant at volume

Zybek engineer Michael A. Weinstein uses a welding mask because the plasma process creates extremely high temperatures to melt minerals. (THE DENVER POST | John Prieto)

Plasma process speeds weathering at high volumes needed for badly needed properties, but does it embed nanophase fe?

BOULDER — There isn't a big demand for man-made moon dirt, but there is one customer — the National Aeronautics and Space Administration — and that's enough for Steve Wilson and Mike Weinstein.

NASA plans to construct a lunar base by 2024 and needs to know a lot about moon dirt.

So Wilson, a U.S. Geological Survey scientist, and Weinstein, a principal at Zybek Advanced Products Inc., teamed up to make as much as 100 tons of moon dirt for NASA.

It was just a few minutes after the first moon landing, in 1969, when astronaut Neil Armstrong, trying to plant an American flag, learned that moon dirt wasn't Earth dirt.

The surface looked sandy, but Armstrong struggled to get the pole in.

Moon-dirt particles are "very angular" and compact, making the soil tough to penetrate, Wilson said.

Mineral molecules on Earth, on the other hand, tend to be rounded at the edges because of weathering. And there's not much weather on the moon.

The Apollo astronauts also found that the moon dust got clogged in the joints of their spacesuits and was sharp enough on its edges to tear the fabric.

When NASA decided in 2006 to develop a solar-powered lunar base designed to use the moon's natural resources to supply air and energy, the agency was in the market for moon dirt.

The USGS, which makes "reference" samples of geochemical materials for scientists, was asked to find something akin to moon dirt, or, as geologists call it, "regolith."

"We knew the constituents of regolith from the Apollo samples, so the question was what on Earth came close?" Wilson said.

The answer turned out to be waste rock from Stillwater Mine, near Nye, Mont.

The material — crushed to simulate the angularity of molecules without being ground too much — got close to moon dirt, Wilson said.

But two key ingredients — a high-quality glass and a low-quality glass called aggulinate — were missing.

The two are created by the bombardment of the atmosphere-deficient moon by micrometeorites.

Enter Boulder-based Zybek and its plasma arc smelter.

On Wednesday, a crushed-rock mixture was fed into the belly of the smelter as the heat rose to as high as 40,000 degrees Fahrenheit. Dropping out of a funnel at the bottom of the smelter came a fiery orange stream of glass and aggulinate. The glass and aggulinate, which make up 40 percent to 50 percent of the regolith, will be blended with other ores, Wilson said.

The "lunar simulant" will be used to test breathing filters, systems to protect surfaces, bearings and gears from dust and grit, and the performance of vehicles and hardware, said Carole McLemore, NASA project manager.

"Anything that goes to the moon is going to touch regolith," she said. "So we want to know how it will perform before it gets to the moon."

Thursday, January 29, 2009

More background on CU Bolder NLSI Team

As you stroll along Innovation Drive on the CU campus in Boulder, don’t be alarmed if you hear loud popping noises coming from the LASP Space Technology Research Center building. January has been another banner month for the CU aerospace program, and the champagne corks continue to fly.

Recent NASA contract awards have fueled a decade-long winning streak at the University of Colorado. Since 2004, CU has received more NASA research funding than any other public university in the United States. More recently, NASA tapped LASP in May 2008 to build a $34 million instrument package for an upcoming solar probe, and again in September to lead a $485 million Mars orbiter mission.

Four new wins in January may seem modest in monetary terms, but each has the potential to build scientific expertise at CU, ensuring its dominance well into the next decade.

Read the story HERE.

Tuesday, January 27, 2009

CU-Boulder, SpaceDev launch space nonprofit

— The University of Colorado and SpaceDev Inc., which has a 130-person site in Louisville, on Monday announced the formation of a nonprofit organization to further entrepreneurship and work force development in the space industry.

With initial funding of more than $1 million, eSpace: The Center for Space Entrepreneurship is designed to be multi-faceted in reach — serving as an incubator for startup aerospace businesses, funding new technology development on the university level and providing grants to high school graduates and community college students as a way to spur job growth.

It’s “an organization that would help people who were interested in starting space companies overcome the obstacles they had,” such as lack of infrastructure and equipment to access to funding, said Diane Dimeff, director of the organization.

ESpace’s primary funding came from the Metro Denver Workforce Innovation in Regional Economic Develop initiative (WIRED), the Colorado Office of Economic Development, the University of Colorado, SpaceDev and the Air Force Research Laboratory.

The five startups expected to participate in the program will each receive $20,000 grants and have access to some of the office and technical space at SpaceDev’s facility in Louisville. SpaceDev was acquired last year by electronic systems company Sierra Nevada Corp.

ESpace also will give a $90,000 grant to CU’s aerospace engineering sciences department to fund an eSpace Venture Design program. The initial round of eSpace-funded technologies will include an experiment to develop nanosatellites to improve the prediction of solar storms and their effects on Earth; a “mini jet engine” for unmanned aerial vehicles; and an unmanned aerial system to measure micro-weather effects of storms and wildfires, officials said.