Documents / Document
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.
Edited by Richard W. Orloff, 01/2001/Page 24 Procedure. The Isothermal Dendritic Growth Experiment apparatus consists of a thermostat that contains the dendrite growth chamber. The growth chamber will be filled with ultra pure succinonitrile (SCN), a substance that mimics the behavior of metals, but is transparent, thus allowing the dendrites to be easily photographed. Dendrite growth begins by cooling a tube, known as a stinger, which is filled with the liquid and extends into the growth chamber. This causes the SCN to solidify, with a solidification front moving down the tube to the tip of the stinger and emerging into the SCN volume as an individual dendrite. Two television cameras will allow scientists to watch for dendrites to emerge. The images of dendrites growing in space will be viewed in near-real-time by scientists on the ground. When the experiment computer detects dendrites, it will trigger two 35-millimeter cameras to photograph the samples. Researchers will compare photographs of the space- grown dendrites to evaluate growth rate and dendrite shape. Materials for the Study of Interesting Phenomena of Solidification on Earth and in Orbit (MEPHISTO) Principal Investigator: Dr. J. J. Favier, Center for Nuclear Study, Grenoble, France Objective. The investigation known as MEPHISTO is a cooperative program between NASA, the French Space Agency and the French Atomic Energy Commission, with the goal of understanding how gravity- driven convection affects the production of metals, alloys and electronic materials. MEPHISTO flew on both previous USMP missions. Analyses of samples produced on orbit are being conducted by science and technical teams to improve processes for making products ranging from alloys for airplane turbine blades to electronic materials. This third flight of MEPHISTO will continue the investigation into how material solidifies in microgravity. Ultimately, the MEPHISTO experiments may bring dramatic improvements in materials production. Researchers want to know what happens at the boundary between solid and liquid the solid/liquid interface during solidification of a molten material, to better control this process on Earth. Temperature differences at this boundary can cause fluid movements that affect the structure and properties of the solidified product through convection and sedimentation. In microgravity, sedimentation and buoyancy-induced convection are greatly reduced, so researchers can explore underlying processes that normally are masked by gravity. Procedure. The MEPHISTO furnace aboard USMP-3 will repeatedly process three samples of a tin- bismuth alloy using directional solidification, a common method for growing crystalline materials such as metals and semiconductors. As the solidified region grows, the boundary between the solid and liquid material will move from one end of the sample toward the other. Electrical measurements will gauge temperature variations in the solidification front. These temperature variations are indicative of the stability of the interface which is very important in controlling the properties of the material in its solid state. The shape of the front will be marked in the growing crystal by subjecting the sample to electric-current pulses. Researchers will compare results produced on orbit with those produced on the ground to better understand and expand theories of materials, materials processing and the potential that the microgravity environment offers for research in areas with down-to-Earth applications.
Not linked to a story yet.
Document, cited by the archive. The PDF is mirrored here; the original link is above. 40 pages are in the text index: search them above, or from the library's search.