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STS-75 press kit

NASA · 40 pages · text from the file's own layer

This is NASA's press kit for Space Shuttle mission STS-75, dated February 1996 and later edited by Richard W. Orloff. It covers Columbia's planned 13-day flight carrying the Italian Tethered Satellite System reflight (TSS-1R) and the third United States Microgravity Payload. The kit sets out launch and landing plans, abort modes, the timeline, payload weights, crew duties, the tether's science objectives and investigators, and crew biographies. It does not mention any unidentified objects.

  • p. 10 …Flight Day 14 Flight Control System Checkout Reaction Control System Hot-Fire USMP-3 Deactivation Cabin…
  • p. 14 …Once microgravity experiments are running, most will be remotely controlled, a mode of operation known as…
  • p. 15 …TSS originally was flown on the Space Shuttle STS-46 mission launched in July 1992. TSS…
  • p. 16 …They will use a series of interdependent experiments -- conducted with electron guns and tether current-control…
  • p. 17 …Because of the unique interaction between the payload and the Shuttle, Mission Control in Houston is…
  • p. 19 …Payloads also serves as the liaison between Mission Control and the science investigators at Marshall, where…
  • p. 20 …Dynamics Functional Objectives During the deploy of TSS, several tests will be conducted to explore control…
  • p. 22 …Operations Area of Marshall's Spacelab Mission Operations Control watch preliminary data, awaiting their turn as…
  • p. 24 …MEPHISTO flew on both previous USMP missions. Analyses of samples produced on orbit are being conducted…
  • p. 31 …Recipient of the Defense Superior Service Medal, the Single Mission Air Medal, the NASA Exceptional Service…
  • p. 32 …1988); F-15 Pilot, 22TFS, CINCUSAFE Trophy; Mission Ready in the F-15 Eagle at Bitburg…
  • p. 37 …His work at Draper was geared strongly toward the design and integration of control systems for…
  • p. 39 …mission by assisting the Science Team for on-orbit operations at the Payload Operations Control Center…
Edited by Richard W. Orloff, 01/2001/Page 22
UNITED STATES MICROGRAVITY PAYLOAD-3 (USMP-3)
USMP-3 Science
Once on orbit, crew members will activate the USMP-3 experiment hardware, while science teams in the
Science Operations Area of Marshall's Spacelab Mission Operations Control watch preliminary data,
awaiting their turn as primary payload following TSS operations. Science teams will monitor and adjust
experiments as necessary, based on data downlinked from Columbia.
Cargo Bay Experiments
Advanced Automated Directional Solidification Furnace (AADSF)
Principal Investigator: Dr. Archibald L. Fripp,
NASA Langley Research Center, Langley, VA
Objective. The speed and the amount of information that can be stored and sent by computers and high-
tech electronics, using sophisticated semiconductor materials, may be increased by better control of how
the semiconductor's structure forms. Millions of dollars are invested each year in ground-based research to
reach this goal. The Advanced Automated Directional Solidification Furnace (AADSF) will fly again on
USMP-3 to expand upon findings from USMP-2 to help researchers develop processes and materials that
perform better and cost less to produce.
A semiconductor's usefulness is determined by how atoms are ordered within the crystals underlying three-
dimensional structure. These materials, when produced under the influence of gravity, often suffer
structural damage that limits the crystal's usefulness. A warm fluid is less dense than a cooler sample of the
same fluid, and on Earth, gravity causes the cooler, denser material to sink while the warmer fluid rises.
Flows caused by this process, known as buoyancy-induced convection, as well as another undesirable
phenomenon sedimentation are greatly reduced in the Shuttle's orbiting microgravity laboratory. The
effects of gravity on the orbiting spacecraft are roughly a million times less than experienced on the
ground.
Procedure. During USMP-3, the AADSF will be used to grow a crystal of lead-tin-telluride (PbSnTe), a
material used to make infrared radiation detectors and lasers. This will be done by the technique known as
directional solidification. This method involves cooling a molten material, causing a solid to form at one
end of the sample. The solidification region grows at the point where the solid and liquid meet, known as
the solid/liquid interface. This interface is moved from one end of the sample to the other at a controlled
rate, resulting in a high degree of crystalline perfection.
The facility has multiple temperature zones, ranging from extremely hot above the melting point of the
material (about 1600 degrees Fahrenheit/870 Celsius) to cooler zones below the melting point (about 650
degrees Fahrenheit/340 Celsius). Once a region of the crystal is melted, the sample is slowly moved and
directional solidification takes place.
The solid/liquid interface is where the flows in the molten material influence the final composition and
structure of the crystal sample. After the mission, scientists will analyze the solidified sample to determine
the density of defects and the distribution of elements in the crystal.

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