Affiliation: | 1. Arts et Métiers ParisTech, PIMM – UMR CNRS 8006, 151 Boulevard de l'Hôpital, 75013 Paris, France Arts et Métiers ParisTech, DynFluid, 151 Boulevard de l'Hôpital, 75013 Paris, France Unité d'Etude et Recherche des Procédés Energétiques (UERPE), Ecole Militaire Polytechnique (EMP), Alger, Algeria;2. Arts et Métiers ParisTech, PIMM – UMR CNRS 8006, 151 Boulevard de l'Hôpital, 75013 Paris, France;3. Arts et Métiers ParisTech, DynFluid, 151 Boulevard de l'Hôpital, 75013 Paris, France;4. Unité d'Etude et Recherche des Procédés Energétiques (UERPE), Ecole Militaire Polytechnique (EMP), Alger, Algeria |
Abstract: | The objective of this work is to initiate the discussion about multiphysics relationships between the molten and solid states of high-density polyethylene (HDPE). The extrusion and the injection processes are employed to prepare samples, and the experimental procedures, using differential scanning calorimetry, dynamic thermomechanical analysis (DMTA), thermal gravimetric analysis, and rheological measurements, are defined to choose the optimal variables. After different characterizations, the extrusion and injection temperatures of 220 and 230 °C have been chosen. To investigate the viscoelastic behavior of HDPE, the DMTA is used. To perform the high strain rate tensile tests, tensile machine was equipped with a specific furnace. Two temperatures, −20 and 20 °C, with strain rates varying from 0.001 to 100 seconds−1 were used to compare the flow characteristics. Results showed that by increasing the strain rate the molecular mobility of the HDPE chains is decreased. In addition, to the tests at −20 °C, the increase of Young's modulus can be properly observed, under high strain rates. © 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2020 , 137, 48778. |