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Strong dynamical effects during stick-slip adhesive peeling.

Marie-Julie Dalbe1, Stéphane Santucci, Pierre-Philippe Cortet

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This study investigates the stick-slip dynamics of peeling adhesive tape. While quasistatic models predict stick duration, strong dynamic effects during the slip phase remain unexplained.

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Area of Science:

  • Adhesion Science
  • Tribology
  • Polymer Physics

Background:

  • Stick-slip dynamics are a common phenomenon in adhesive tape peeling.
  • Understanding these dynamics is crucial for applications involving tape adhesion and detachment.
  • Previous models often rely on quasistatic assumptions, potentially overlooking dynamic effects.

Purpose of the Study:

  • To experimentally investigate the stick-slip dynamics during constant velocity tape peeling.
  • To quantify the influence of peeling velocity and ribbon length on stick and slip phase durations.
  • To evaluate the predictive capabilities of existing quasistatic models for tape peeling.

Main Methods:

  • High-speed imaging was employed to record tape peeling experiments.
  • Quantitative analysis of recorded data to extract durations of stick and slip phases.
  • Comparison of experimental results with predictions from Maugis and Barquins' quasistatic model.

Main Results:

  • Experimental measurements of stick phase duration were found to be in good agreement with quasistatic model predictions.
  • The quasistatic model failed to accurately predict the total duration of the stick-slip cycle.
  • Significant dynamical effects were observed during the slip phase, indicating limitations of quasistatic assumptions.

Conclusions:

  • Quasistatic models adequately describe the stick phase in tape peeling but are insufficient for the entire cycle.
  • Dynamic effects during the slip phase play a critical role and require further investigation.
  • This study highlights the need for dynamic models to fully capture adhesive tape peeling behavior.