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Lifetime Predictions for High-Density Polyethylene under Creep: Experiments and Modeling.
A D Drozdov1, R Høj Jermiin1, J de Claville Christiansen1
1Department of Materials and Production, Aalborg University, Fibigerstraede 16, 9220 Aalborg, Denmark.
This study develops a viscoelastoplastic model for high-density polyethylene (HDPE) using experimental data. The model accurately predicts material behavior and lifetime under creep conditions, including the endurance limit.
Area of Science:
- Materials Science
- Polymer Physics
- Mechanical Engineering
Background:
- High-density polyethylene (HDPE) exhibits complex viscoelastoplastic behavior under mechanical stress.
- Understanding this behavior is crucial for predicting material performance and lifetime.
Purpose of the Study:
- To develop and validate a constitutive model for the viscoelastoplastic response of HDPE.
- To accurately predict the long-term behavior and failure of HDPE under creep conditions.
Main Methods:
- Uniaxial tensile tests, relaxation tests, and creep tests were conducted on HDPE at room temperature.
- A seven-parameter viscoelastoplastic model was developed and calibrated using experimental data.
- Numerical analysis was employed to validate the model's predictive capabilities against independent creep tests.
Main Results:
- The developed constitutive model accurately captures the viscoelastoplastic response of HDPE.
- The model successfully predicted short- and medium-term creep behavior.
- The model's application allowed for the evaluation of HDPE lifetime under creep, incorporating the creep endurance limit.
Conclusions:
- The proposed viscoelastoplastic model provides a robust framework for analyzing HDPE behavior.
- The model's ability to predict stress-time-to-failure diagrams enhances its practical applicability.
- This approach offers valuable insights into the creep endurance limit of semicrystalline polymers.
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