Thermal Stability and the Suppression of Convection in a Rotating Fluid on Earth; W.A. Arnold, L.L. Regel. Convective Flows during Crystal Growth in a Centrifuge; V.A. Urpin. Removal of Convective Instabilities in Liquid Metals by Centrifugation; A. Chevy, et al. Growth of GaAs Single Crystals at High Gravity; B. Zhou, et al. Response of Temperature Oscillations in a Tin Melt to Centrifugal Effects; W.J. Ma, et al. Unsteady Thermal Convection of Melts in a 2D Horizontal Boat in a Centrifugal Field with Consideration of the Coriolis Effect; F. Tao, et al. Variation of Effective Impurity Segregation Coefficient in Tellurium Grown under High Gravity; I.I. Farbshtein, et al. Analysis of Impurity Distribution by Galvanomagnetic Method in InSb Obtained under High Gravity Conditions; I.I. Farbshtein, et al. Microstructural Development in PbSn Alloys Subjected to Highgravity during Controlled Directional Solidification; R.N. Grugel, et al. The Role of Thermal Stress in Vertical Bridgman Growth of CdZnTe Crystals; T. Lee, et al. Morphological Stability of Directional Solidification in a Centrifugal Field; V.S. Yuferev. 11 additional articles. Index.
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The information will be very useful for the entrepreneur who first sets up a materials processing plant on Jupiter, of course, but until then it allows scientists using centrifuges to discover the influence of acceleration and convection on materials processing and to produce unique and improved materials that cannot be prepared under normal or lig
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