Showing posts with label Microgravity Science Glovebox. Show all posts
Showing posts with label Microgravity Science Glovebox. Show all posts

Saturday, September 20, 2014

SpaceX Falcon-9 Launch Postponed: Stormy weather delays launch

Stormy weather has forced SpaceX to delay its latest supply run to the International Space Station.

The California company called off its early Saturday liftoff from Cape Canaveral, with a half-hour remaining in the countdown.

Officials said they will try again Sunday to launch the unmanned Falcon 9 rocket.


Image of SpaceX Falcon 9 Rocket on launch pad at Cape Canaveral, NOT launching. 

Credit: NASA

The SpaceX Dragon capsule holds more than 5,000 pounds of space station cargo for NASA, including a 3-D printer.

NASA hopes astronauts will be able to one day fix their spacecraft by cranking out spare parts on the spot.

This will be the fifth station shipment by SpaceX.

It's been an exciting week for SpaceX. On Tuesday, the company won a huge contract to deliver U.S. astronauts to the space station.

Brad Kohlenberg, a business development engineer with Made In Space, displays some of the items that will be made by astronauts using a 3-D printer that will be transported to the International Space Station aboard the SpaceX Falcon 9 rocket at the Kennedy Space Center in Cape Canaveral, Fla., Friday, Sept. 19, 2014. 

NASA is sending a 3-D printer to the International Space Station in hopes that astronauts will be able to one day fix their spacecraft by cranking out spare parts on the spot. 

Credit: AP Photo/John Raoux

This undated photo provided by Made In Space shows a 3-D Printer during testing in the ESA Supplied, Microgravity Science Glovebox (MSG) Engineering Unit at Marshall Space Flight Center. 

Credit: AP Photo/Made In Space

This April 2014 photo provided by NASA shows a 3-D printer after it passed flight certification and acceptance testing at NASA's Marshall Space Flight Center in Huntsville, Ala. 

The technology demonstration will print objects in the  ESA Supplied, Microgravity Science Glovebox (MSG)

The ESA MSG Engineering Unit at Marshall is pictured in the background. 

Credit: AP Photo/NASA, Emmett Given

In this undated photo Michael Snyder and Aaron Kemmer monitor the performance of extruders inside the Made In Space experiment box during a microgravity portion of flight aboard a modified Boeing 727 from the Zero G Corporation. 

Credit: AP Photo/Made In Space

Saturday, June 14, 2014

Decontamination system to up research on space station

The in-orbit decontamination system inside the Microgravity Science Glovebox (MSG) will enable advances in life science research aboard the International Space Station. 

Credit: NASA

Just like eating, drinking and even trying to wash your hair aboard the International Space Station, conducting science experiments in space is not a simple task for astronauts.

There are so many more factors for crews to consider than scientists on Earth have to worry about. If not contained, microgravity can turn gasses, dust, fluids and sharp objects into a floating nightmare.

Thanks to the Microgravity Science Glovebox (MSG), those aboard the space station have safely performed science experiments since 2002 without these worries.

They conducted hundreds of studies within the sealed, negative pressured, nine-cubic-foot work area, developed by NASA's Marshall Space Flight Center in Huntsville, Alabama, and the European Space Agency.

The crew members put the MSG to good use for a wide range of microgravity research, including fluid physics, combustion science, materials science, biotechnology, fundamental physics and other investigations.

This helps researchers looking to understand the role of gravity in basic physical and chemical interactions.

Now NASA will add even more studies to the growing list of MSG participants. With the recent installation of a decontamination system, the facility gains the capability to host an entire additional research discipline—life science.

This upgrade was designed and manufactured by Huntsville's Teledyne Brown Engineering Inc. in partnership with Marshall.

"We are really excited to be able to provide this new system that will enable astronauts aboard the space station the ability to conduct important life science research," said Lee Jordan, project manager of the MSG at Marshall.

"For example, with this system, crews can conduct experiments related to non-human cell biology that we couldn't do before in the MSG. The work we do aboard the space station is so vital because it helps us discover technologies that can lead to bettering our lives on Earth."

The decontamination system was designed with crew members' safety in mind by using high-power, ultraviolet, light-emitting diodes (UV LEDs) to sanitize surfaces inside the MSG.

This cleaning process takes only a matter of minutes before and after the crew conducts the experiments.

The sanitation process also removes airborne contaminants, such as biological and chemical impurities, and cleans up spills inside the glovebox, providing optimal accommodations for cell science and life science research.

It also has an exchangeable glove system that was redesigned to be better suited for these types of studies.

The system is based on the Ultraviolet Germicidal Irradiation (UVGI) method of disinfection where UV light, at sufficiently short wavelengths, is used to kill microorganisms.

NASA astronaut Rick Mastracchio, Expedition 38 flight engineer, prepares to test the ultraviolet light decontamination hardware, which will be used for life science experiments inside the Microgravity Science Glovebox

Credit: NASA

"This application of UV has been an accepted practice for disinfection since the mid-20th century," said Lee.

"The DNA of the microorganism is disrupted by the UV radiation, leaving them unable to grow or reproduce. With this technology, it is possible to destroy more than 99.99 percent of all pathogens within seconds, without addition of chemicals, without harmful side effects, inexpensively, highly efficiently and absolutely reliably."

The UV LEDs incorporated in the system are manufactured by Sensor Electronic Technology Inc. of Columbia, South Carolina, and were developed in part through the Defense Advanced Research Projects Agency Compact Mid-Ultraviolet Technology program in Arlington, Virginia.