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Thermal-capillary analysis of small-scale floating zones Steady-state calculationsGalerkin finite element analysis of a thermal-capillary model of the floating zone crystal growth process is used to predict the dependence of molten zone shape on operating conditions for the growth of small silicon boules. The model accounts for conduction-dominated heat transport in the melt, feed rod and growing crystal and for radiation between these phases, the ambient and a heater. Surface tension acting on the shape of the melt/gas meniscus counteracts gravity to set the shape of the molten zone. The maximum diameter of the growing crystal is set by the dewetting of the melt from the feed rod when the crystal radius is large. Calculations with small Bond number show the increased zone lengths possible for growth in a microgravity environment. The sensitivity of the method to the shape and intensity of the applied heating distribution is demonstrated. The calculations are compared with experimental observations.
Document ID
19860061307
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Duranceau, J. L.
(Massachusetts Inst. of Tech. Cambridge, MA, United States)
Brown, R. A.
(MIT Cambridge, MA, United States)
Date Acquired
August 12, 2013
Publication Date
May 1, 1986
Publication Information
Publication: Journal of Crystal Growth
Volume: 75
ISSN: 0022-0248
Subject Category
Solid-State Physics
Accession Number
86A46045
Distribution Limits
Public
Copyright
Other

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