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Autores principales: Gevgilili, Halil, Kalyon, Dilhan M.
Formato: Preprint
Publicado: 2024
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Acceso en línea:https://arxiv.org/abs/2412.03779
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author Gevgilili, Halil
Kalyon, Dilhan M.
author_facet Gevgilili, Halil
Kalyon, Dilhan M.
contents This study explores the impact of wall slip on parameter estimation for integral-type non-linear viscoelastic models with time-strain separable memory functions, specifically examining high-density polyethylene (HDPE) and thermoplastic elastomer (TPE) melts. Significant wall slip was observed in HDPE under non-linear conditions, complicating the characterization of its damping function using step strain data. In contrast, TPE exhibited negligible wall slip across a wide range of strains and shear rates, facilitating successful parameterization of its damping function using the Wagner-type K-BKZ equation and enabling accurate predictions of various material functions. For HDPE, the study investigated alternative approaches to parameterize the K-BKZ equation, including the use of steady and time-dependent material functions at low deformation rates where wall slip effects are minimal. The findings underscore the challenges of estimating parameters in the presence of wall slip and propose strategies to address these challenges, particularly for materials like HDPE, where pronounced slip complicates traditional rheological characterization.
format Preprint
id arxiv_https___arxiv_org_abs_2412_03779
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Wall Slip Effects on Parameter Estimation for Integral-Type Viscoelastic Models: Insights from High Density Polyethylene and Thermoplastic Elastomer Melts
Gevgilili, Halil
Kalyon, Dilhan M.
Fluid Dynamics
Materials Science
This study explores the impact of wall slip on parameter estimation for integral-type non-linear viscoelastic models with time-strain separable memory functions, specifically examining high-density polyethylene (HDPE) and thermoplastic elastomer (TPE) melts. Significant wall slip was observed in HDPE under non-linear conditions, complicating the characterization of its damping function using step strain data. In contrast, TPE exhibited negligible wall slip across a wide range of strains and shear rates, facilitating successful parameterization of its damping function using the Wagner-type K-BKZ equation and enabling accurate predictions of various material functions. For HDPE, the study investigated alternative approaches to parameterize the K-BKZ equation, including the use of steady and time-dependent material functions at low deformation rates where wall slip effects are minimal. The findings underscore the challenges of estimating parameters in the presence of wall slip and propose strategies to address these challenges, particularly for materials like HDPE, where pronounced slip complicates traditional rheological characterization.
title Wall Slip Effects on Parameter Estimation for Integral-Type Viscoelastic Models: Insights from High Density Polyethylene and Thermoplastic Elastomer Melts
topic Fluid Dynamics
Materials Science
url https://arxiv.org/abs/2412.03779