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Category: Advanced Metallics

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AIAA Announces Associate Fellows Class of 2010

The American Institute of Aeronautics and Astronautics announced on September 24, 2009, that “its Associate Fellows Upgrade Committee has selected the Associate Fellows class of 2010,” including several members from NASA Glenn:

  • Dr. David Ashpis (Turbomachinery & Heat Transfer Branch)
  • Dr. Milind Bakhle (Mechanics & Life Prediction Branch)
  • Paul Giel (ASCR/Turbomachinery & Heat Transfer Branch)
  • Dr. Charles Lawrence (Mechanics & Life Prediction Branch)
  • Jeffrey Miles (Advanced Metallics Branch)
  • Dr. David Urban (Combustion & Reacting Systems Branch)
  • Harry Cikanek (Engineering Directorate)
  • Rene Fernandez (Program & Project Assurance Division)

Those selected “will be honored at the AIAA Associate Fellows Dinner on Monday, January 4, 2010 at the Orlando World Center Marriott, Orlando, Fla., as part of the 48th AIAA Aerospace Sciences Meeting.”

Read the original AIAA press release  [External Link].

Team Wins Award from Federal Laboratory Consortium for Technology Transfer

Dan Sutliff (Acoustics Branch) and Cheryl Bowman (Advanced Metallics Branch) were selected as a team winner of the 2009 Federal Laboratory Consortium (FLC) for Technology Transfer Midwest Region Excellence in Technology Transfer Award for their work on “Metallic Foam to Reduce Engine Noise.” The award is presented annually by the FLC Midwest Region.

The award recognizes laboratory employees who have accomplished outstanding work in the process of transferring a technology developed by a federal laboratory to the commercial workplace. They will be recognized at an award ceremony on August 19, 2009, at the FLC Midwest Region Meeting in Bloomington, Indiana.

Award Description

2009 FLC Midwest Region Awards
Excellence in Technology Transfer Award

The Excellence in Technology Transfer Award is presented to an employee or team of employees of a Midwest Region member laboratory in recognition of outstanding work during the transfer of a technology between a federal laboratory and another entity.

At the 2009 FLC Midwest regional meeting, a team from NASA Glenn Research Center received an Excellence in Technology Transfer Award for its development of a metallic foam liner that reduces aviation noise. The team of Dr. Daniel Sutliff, Dr. Cheryl Bowman, Michael Jones, and Tom Hartley worked against challenging time and cost restraints to create a technology that would enable commercial aircraft to meet increasingly stringent restrictions on aviation noise, without adding to the size or weight of the aircraft.

The NASA team used a Space Act Agreement with Williams International to test its patent pending over-the-rotor acoustic metallic foam liner on an FJ44 turbofan engine. NASA transferred the knowledge on the over-the-rotor liner design, as well as acquisition and processing of the acoustic data. In return, Williams built the liner and provided the engine test bed. The liner, which reduces noise by acting as rotor-tip rub strip, previously had never been used in a full-scale turbofan engine, and the tests proved its viability. Succeeding on a small engine cleared the way for NASA to test the method on larger commercial aircraft engines, and the NASA team has taken steps to begin work with larger engine manufacturers for these tests. Successful implementation on larger engines would reduce noise in even more communities near airports. NASA may also be able to market the method for other applications, such as HVAC systems and space propulsion.

GRC Part of Winning Third Frontier Proposal Led by Cleveland Clinic

GRC is part of the winning Third Frontier proposal led by the Cleveland Clinic. The proposal is related to the application of shape memory alloys for both medical and aerospace applications. University of Toledo and Case Western Reserve University are other members of the team. The winners for the recent round of Ohio Third Frontier proposals were announced on May 27, 2009.

Patent Awarded on Shape Memory Alloy

US Patent # 7,501,032, entitled “High work output NiTiPt high temperature shape memory alloys and associated processing methods,” was awarded recently. This alloy is one of the first new high temperature alloys coming out of our research program and represents approximately 300oC capability, which is + 200o above commercially available alloys.

This alloy and similar derivative alloys are being used in aerospace component demonstration projects with good success. This work was funded by the Supersonics project of the Fundamental Aeronautics Program.

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