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A statistical approach to characterize the viscoelastic creep compliances of a vinyl ester polymer
Affiliation:1. Department of Aerospace Engineering, Mississippi State University, P.O. Drawer A, MS 39762, USA;2. Department of Aerospace Engineering, College of Engineering and Private Sector Program Division, National Center for Supercomputing Applications, University of Illinois at Urbana-Champaign, 104 S. Wright St., Urbana, IL 61801, USA;1. School of Science, Wuhan University of Technology, 122 Luoshi Road, Wuhan, Hubei, 430070, P.R. China;2. School of Mathematics and Statistics, Hubei University of Science and Technology, 88 Xianning Road, Xianning, Hubei, 437100, P.R. China;1. Den-Service d''Etude du Comportement des Radionucléides (SECR), CEA, Université Paris-Saclay, F-91191 Gif-sur-Yvette, France;2. AREVA NC DOR/RDP, 1 Place Jean Millier, F-92084 La Défense Cedex, France;1. Department of Mechanical and Industrial Engineering, University of Toronto, 5 King''s College Rd, Toronto, Ontario, Canada M5S 3G8;2. Lumentum Operations LLC, Ottawa, Canada
Abstract:
The objective of this study was to develop a model to predict the viscoelastic material functions of a vinyl ester (VE) polymer with variations in its experimentally obtained material properties under combined isothermal and mechanical loading. Short-term tensile creep experiments were conducted at three temperatures below the glass transition temperature of the VE polymer, with 10 replicates for each test configuration. The measured creep strain versus time responses were used to determine the creep compliances using the generalized viscoelastic constitutive equation with a Prony series representation. The variation in the creep compliances of a VE polymer was described by formulating the probability density functions (PDFs) and the corresponding cumulative distribution functions (CDFs) of the creep compliances using a two-parameter Weibull distribution. Both Weibull scale and shape parameters of the creep compliance distributions were shown to be time and temperature dependent. Two-dimensional quadratic Lagrange interpolation functions were used to characterize the Weibull parameters to obtain the PDFs and, subsequently, the CDFs of the creep compliances for the complete design temperature range during steady state creep. At each test temperature, creep compliance curves were obtained for constant CDF values and compared with the experimental data. The predicted creep compliances of the selected VE polymer in the design space are in good agreement with the experimental data for all three test temperatures.
Keywords:Vinyl ester  Linear viscoelasticity  Creep compliance  Prony series  Uniaxial creep  Weibull distribution
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