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Computer simulation of steady-state pipe extrusion

Date Issued
August 1, 1990
Author(s)
Wu, Jung-He
Advisor(s)
Marion G. Hansen
Additional Advisor(s)
Donald C. Bogue
Frederick E. Weber
Raymond D. Krieg
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/34268
Abstract

Extruded pipe is made by forcing a molten polymer through an annular die and cooling it; the final properties of the pipe depend on a number of variables, including in particular the cooling step, during which crystallization takes places. An accurate prediction of temperature profile and crystallinity distribution within a semi-crystalline polymer (polypropylene) is of importance in determining the processing conditions. In this study the solidification of the melt during cooling in pipe extrusion has been analyzed by means of a computer simulation. The mathematical model, which involves a steady-state nonlinear energy equation incorporating the crystallization kinetics proposed by Nakamura, simulates the behavior of polymer melt in the cooling chamber during formation of a thick walled pipe. An investigation was carried out into effects of melt inlet temperature, take-off speed, and pipe wall thickness on the temperature profile as well as crystallinity distribution. NACHOS II, a computer program based on finite element method designed for solution of two-dimensional fluid dynamics and heat transfer, is employed for the numerical solution. The numerical model gives therefore a basis for the prediction of the crystallinity distribution and adjustment of the operation conditions.

Degree
Master of Science
Major
Chemical Engineering
File(s)
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Thesis90W922.pdf

Size

5.87 MB

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Unknown

Checksum (MD5)

441a21d45f0bc4420c4225df1a362b88


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