Authors: Etienne J.F.R. Caron, Mary A. Wells
Abstract: Accurate knowledge of the boundary conditions is essential when modeling the Direct-Chill (DC)
casting process. Determining the surface heat flux in the secondary cooling zone, where the greater
part of the heat removal takes place, is therefore of critical importance. Boiling water heat transfer
phenomena are quantified with boiling curves which express the heat flux density as a function of
the surface temperature. Compilations of boiling curves for the DC casting of aluminum alloys
present a good agreement at low surface temperatures but a very poor agreement at higher surface
temperatures, in the transition boiling and film boiling modes. Secondary cooling was simulated by
spraying instrumented samples with jets of cooling water. Quenching tests were conducted first
with a stationary sample, and then with a sample moving at a constant “casting speed” in order to
better simulate the DC casting process. The ejection of the water film in quenching tests with a
stationary sample and the relative motion between the sample and the water jets both lead to an
Advanced Cooling Front (ACF) effect, in which cooling occurs through axial conduction within the
sample rather than through boiling water heat transfer at the surface. The heat flux density and
surface temperature were evaluated using the measured thermal history data in conjunction with a
two-dimensional inverse heat conduction (IHC) model. The IHC model developed at the University
of British Columbia was able to take into account the advanced cooling front effect. The effect of
various parameters (initial sample temperature, casting speed, water flow rate) on the rate of heat
removal in the film boiling and transition boiling regimes was investigated.
1687
Authors: S. Sarkar, Mary A. Wells, Warren J. Poole
Abstract: An investigation was conducted on the softening behaviour of cold rolled continuous cast
(CC) AA5754 Al alloy and compared to the results for the ingot cast (IC) material. The present
study suggests that the CC material exhibits greater resistance to softening as compared to the IC
AA5754 for the same amount of cold deformation. The differences in the softening kinetics become
more noticeable with increasing level of cold deformation and from a processing point of view can
be attributed to the absence of the homogenization stage during the processing of the CC material.
Resistivity measurements were carried out during the annealing treatment of the CC materials to
examine the possibility of concurrent precipitation, which could potentially retard the softening
kinetics for these materials. In addition, the current research reveals that the CC material produces a
finer recrystallized grain size as compared to the IC material.
1641
Authors: H. Ahmed, Mary A. Wells, Daan M. Maijer, Menno van der Winden
Abstract: A mathematical model has been developed and validated to predict deformation,
temperature and microstructure evolution during multi-pass hot rolling of an AA5083 aluminum
alloy. The validated model was employed to examine the effect of changing the number of rolling
passes and the strain partitioning during multi-pass rolling on the material stored energy and the
resulting microstructure. Results indicate that the number of rolling passes has a significant effect
on the material stored energy. In addition, the way the strain is partitioned in two-pass rolling cases
affects the material stored energy with decreasing strain/pass providing the highest stored energy in
the material after rolling and vice versa. The reason behind these results was further investigated
indicating that the thermal evolution during rolling may significantly influence the material stored
energy and subsequent recrystallization kinetics.
1473
Authors: N.L. Chester, Mary A. Wells, V. Prodanovic, Matthias Militzer
Abstract: Controlled cooling on the runout table is a crucial component in the production of
highly tailored steels since it has a strong influence on the final mechanical properties. High
efficiency heat transfer in impinging jet cooling makes this an important method for heat transfer
enhancement. The purpose of this study is to develop an experimental database for modelling of
boiling heat transfer for bottom jet impingement that occurs during runout table cooling in a steel
mill. Experiments have been carried out on a pilot scale runout table using stationary plates, with
focus on the effect of water flow rate and nozzle inclination to the overall heat transfer rates.
Volumetric flow rates and inclination angles are in the range of 35-55 l/min and 0-30º,
respectively. Temperatures on the test plates are measured internally very close to the surface
during cooling for the purpose of reducing thermal lag and receiving better data responsiveness.
These measurements are taken at the impingement point and several streamwise distances from the
impingement point. From the above measurements transient cooling data on the hot steel plate by
bottom jet impingement has been analysed.
738
Authors: Matthias Militzer, Warren J. Poole, Mary A. Wells
3783
Authors: J. Go, Warren J. Poole, Matthias Militzer, Mary A. Wells
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