Characterization, processing, and modeling of industrial recycled polyolefins

David O. Kazmer, Sixtus O. Nzeh, Beijun Shen, David C. Elbert, Ramaswamy Nagarajan, Margaret Sobkowicz-Kline, Thao D. Nguyen

Research output: Contribution to journalArticlepeer-review

Abstract

This study aims to establish a systematic approach for characterizing recycled polyolefins of unknown composition, with a specific focus on predicting their performance in film extrusion. We explore various characterization techniques, including differential scanning calorimetry (DSC), Fourier-transform infrared spectroscopy (FTIR), thermogravimetric analysis (TGA), and rheometry to assess their effectiveness in identifying the polyethylene (PE) fractions within polypropylene (PP) recyclates. By integrating experimental data with modeling techniques, we aim to provide insights into the predictive capabilities of these techniques in determining processing behaviors. The research highlights the superior fidelity of DSC in predicting the relative fraction and type of PE in a PP recyclate. FTIR is also identified as a high-fidelity approach, albeit requiring application-specific calibration. TGA, capillary, and oscillatory rheometry are recognized for their ability to distinguish between grades of recycled polyolefins but provide aggregate behaviors rather than detailed constituent information. 3D flow simulation of the cast film extrusion investigated the effect of the viscosity characterization method, non-isothermal assumption, and process settings but could not fully replicate the observed variations in the cast film processing of two industrial polyolefins with similar melt flow rates and viscosity behaviors. This underscores the practical challenge of predicting processing issues prior to actual processing, necessitating reliance on reliable instrumentation suites and human expertise for diagnosing and remedying variations. Highlights: Two industrial recycled polypropylene materials having similar melt flow rates exhibit drastically different cast film processing behaviors. DSC and FTIR provide reasonable approaches for identifying constituent materials. Modeling of the melt viscosities characterized by capillary and parallel plate rheology suggests that viscosity variations relative to the power-law behavior assumed in the coat hanger die design is a predominant driver of cast film instabilities.

Original languageEnglish (US)
Pages (from-to)4801-4815
Number of pages15
JournalPolymer Engineering and Science
Volume64
Issue number10
DOIs
StatePublished - Oct 2024
Externally publishedYes

Keywords

  • film extrusion
  • flow simulation
  • materials characterization
  • plastic recycling
  • polyolefins

ASJC Scopus subject areas

  • General Chemistry
  • Polymers and Plastics
  • Materials Chemistry

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