Most of the thermoforming processes of thermoplastic polymers and their composites are performed adopting a combined heating and forming stages at which a precursor is heated prior to the forming. This step is done in order to improve formability by softening the thermoplastic polymer. Due to low thermal conductivity and semi-transparency of polymers, infrared (IR) heating is widely used for thermoforming of such materials. Predictive radiation heat transfer models for temperature distributions are therefore critical for optimizations of thermoforming process. One of the key challenges is to build a predictive model including the physical background of radiation heat transfer phenomenon in semi-crystalline thermoplastics as their microcrystalline structure introduces an optically heterogeneous medium. In addition, the accuracy of a predictive model is required to be validated experimentally where IR thermography is one of the suitable methods for such a validation as it provides a non-invasive, full-field surface temperature measurement. Although IR cameras provide a non-invasive measurement, a key issue for obtaining a reliable measurement depends on the optical characteristics of a heated material and the operating spectral band of IR camera. It is desired that the surface of a material to be measured has a spectral band where the material behaves opaque and an employed IR camera operates in the corresponding band. In this study, the optical characteristics of the PO-based polymer are discussed and, an experimental approach is proposed in order to measure the surface temperature of the PO-based polymer via IR thermography. The preliminary analyses showed that IR thermographic measurements may not be simply performed on PO-based polymers and require a correction method as their semi-transparent medium introduce a challenge to obtain reliable surface temperature measurements.

1.
J.
Jones
,
S. P.
Brookes
,
M. T.
Whittaker
, and
R. J.
Lancaster
, “,
Mater. Sci. Technol.
30
,
1862
1876
(
2014
).
2.
Y.
Luo
,
L.
Chevalier
,
F.
Utheza
, and
X.
Nicolas
, “
Simplified Modelling of the Infrared Heating Involving the Air Convection Effect before the Injection Stretch Blowing Moulding of PET Preform
,” in
17ᵗʰ ESAFORM Conference
-
2014
,
611
, pp.
844
851
.
3.
J. R.
Howell
,
M. P.
Menguc
, and
R.
Siegel
, Thermal Radiation Heat Transfer, 5th Edition (
CRC Press
,
Boca Raton
,
2010
).
4.
R.
Wester
, Ed., Energy Transport and Heat Conduction in Tailored Light 2, edited by
R.
Poprawe
, (
Springer
,
Berlin Heidelberg
,
2011
), pp.
43
62
.
5.
Y.
Le Maoult
and
F.
Schmidt
, “Infrared Radiation Applied to Polymer Processes,” in
Heat Transfer in Polymer Composite Materials
, edited by
N.
Boyard
, (
John Wiley & Sons, Inc
.,
2016
), pp.
385
423
.
6.
D.
Hakoume
,
L. A.
Dombrovsky
,
D.
Delaunay
, and
B.
Rousseau
, “
Effect of Processing Temperature on Radiative Properties of Polypropylene and Heat Transfer in the Pure and Glassfibre Reinforced Polymer
,” in
15th International Heat Transfer Conference-
2014
.
7.
S.
Boztepe
,
A.
Thiam
,
O.
de Almeida
,
Y.
Le Maoult
, and
F.
Schmidt
, “
Experimental analysis on the coupled effect between thermo-optical properties and microstructure of semi-crystalline thermoplastics
,” in
19th ESAFORM Conference -
2016
,
AIP Conference proceedings
, pp.
020006
.
8.
A.
Bendada
,
K.
Cole
,
M.
Lamontagne
, and
Y.
Simard
,
J. Opt. Pure Appl. Opt.
5
,
464
470
(
2003
).
9.
D. P.
DeWitt
and
G. D.
Nutter
,
Theory and Practice of Radiation Thermometry
. (
John Wiley & Sons, Inc
.,
1988
).
10.
S.
Monteix
,
Y. L.
Maoult
,
F.
Schmidt
, and
J. P.
Arcens
,
Quant. InfraRed Thermogr. J.
1
, pp.
133
150
(
2004
).
This content is only available via PDF.
You do not currently have access to this content.