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May 6, 2026Polymers3 citationsOpen Access

Rheological Characterisation and Processability Window of Denim-Derived Cellulose Solutions in NMMO for Fibre Spinning

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MBMostafa Akhlaghi BagherjeriMNMehran NamjoufarAHAbu Naser Md Ahsanul Haque

Key Points

  • This research aims to characterise the rheological properties of cellulose solutions derived from denim to improve fibre spinning.
  • Conducted oscillatory and steady-state rheological tests on cellulose solutions across 4-8 wt% concentrations and 60-90 °C temperatures.
  • Tested a 6% denim/NMMO solution at 80 °C to assess rheological balance and viscoelastic properties.
  • Performed thermal ramp experiments to evaluate temperature limits for processing.
  • Identified 80 °C as the optimal temperature for fibre spinning while maintaining structural integrity.
  • Demonstrated shear-thinning behaviour essential for effective spinneret extrusion.
  • Concluded that rheological properties align with those needed for successful cellulose fibre formation.

Abstract

N-methylmorpholine N-oxide (NMMO monohydrate) is widely used for cellulose fibre production, as in the Lyocell process. However, fibre spinning from denim wastes remains significantly more complex due to its higher viscosity, the presence of indigo dye, and NMMO’s temperature sensitivity. These factors together create serious challenges for denim dissolution and fibre regeneration. This study presents a comprehensive rheological and structural characterisation of regenerated cellulose fibres derived from waste denim dissolved in NMMO. Oscillatory and steady-state rheological tests were conducted across concentrations (4–8 wt%) and temperatures (60–90 °C) to determine optimal spinning conditions. A 6% denim/NMMO solution at 80 °C displayed the most favourable rheological balance within the investigated concentration window (4–8 wt%), moderate complex viscosity, well-defined viscoelastic transitions, and a Tan δ value (~0.94) consistent with stable jet formation in air-gap spinning. Steady shear tests confirmed strong shear-thinning behaviour and mechanical predictability, essential for spinneret extrusion. Thermal ramp experiments validated 80 °C as the upper safe limit, balancing flow processability with structural integrity while avoiding solidification or NMMO degradation. The identified rheological parameters fall within ranges reported for spinnable cellulose dopes in air-gap spinning systems, suggesting strong potential for fibre formation under controlled conditions. These findings establish a robust rheological framework for denim-derived cellulose in NMMO and provide a foundation for future investigations into controlled fibre spinning and process scale-up in sustainable textile recycling.

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Cite This Study

Bagherjeri et al. (2026) studied this question.

synapsesocial.com/papers/69faa22704f884e66b532d8chttps://doi.org/10.3390/polym18091094
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