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March 21, 2026Journal of the mechanical behavior of biomedical materials/Journal of mechanical behavior of biomedical materials0 citationsOpen Access

Investigation of Time-Dependent Changes in Geometrical, Mechanical and Optical Properties of PVA Hydrogel for Vascular Model Applications

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JSJenny SchäferUniversity of StuttgartPSPaul SilberhornUniversity of StuttgartDSDesirée SpaichUniversity of Stuttgart

Key Points

  • This research aims to investigate the time-dependent changes in the geometrical, mechanical, and optical properties of PVA hydrogel in water for vascular modeling applications.
  • Conducted comprehensive analysis over six weeks
  • Assessed swelling behavior through mass and area change
  • Measured Young's modulus and compliance for artery models
  • Determined friction coefficients via planar sliding test
  • Used UV-Vis spectroscopy to measure optical transparency
  • PVA-H exhibited initial swelling followed by shrinkage of up to -33.3% after six weeks
  • Compliance increased significantly after initial water exposure
  • Young's modulus increased while compliance decreased over time
  • Friction coefficients rose from 0.110 after half an hour to 1.142 after five weeks
  • Optical transparency stabilized above 90% after one day and maintained up to six weeks

Abstract

Polyvinyl alcohol hydrogel (PVA-H) is increasingly used as vascular modeling material due to its low friction and high transparency. Since mechanical, fluid dynamic and implant performance tests are commonly performed in aqueous environments, a thorough understanding of time-dependent changes in geometrical, mechanical and optical properties of PVA-H in water is imperative. In this study, a comprehensive analysis of the short- and long-term behavior of PVA-H in water for vascular modelling applications has been performed. PVA-H properties were investigated for six weeks, with the swelling behavior characterized by mass and area change. Young's modulus was assessed, as well as compliance for medium-sized (Ø 6.8 mm) and large artery models (Ø 30 mm). Friction coefficients were determined via planar sliding test and UV-Vis spectroscopy served to assess optical transparency of PVA-H. Geometric analysis revealed initial slight swelling of the PVA-H, followed by shrinkage up to -33.3 ± 0.5 % after six weeks. Compliance increased considerably within the first hours of water exposure, followed by an increase in Young's modulus and a decrease in compliance over days to weeks. Furthermore, friction coefficients increased considerably from 0.110 ± 0.001 after half an hour up to 1.142 ± 0.038 after five weeks. Optical transparency initially fluctuated and subsequently stabilized above 90 % up to six weeks. In conclusion, this study provides a comprehensive understanding of short- and long-term changes in geometrical, mechanical, and optical properties of PVA-H in water, demonstrating that precise timing is required when used as models for vascular research and implant testing. • Comprehensive study on time-dependent changes of PVA-H for vascular models in water • Initial slight swelling of PVA-H followed by subsequent shrinkage in the long term • Varying mechanical properties with time, measured by Young’s modulus and compliance • Considerably increased friction coefficients over time of water immersion • Optical transparency > 90 % after more than one day and up to six weeks in water

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Cite This Study

Schäfer et al. (2026) studied this question.

synapsesocial.com/papers/69be37406e48c4981c676bd2https://doi.org/10.1016/j.jmbbm.2026.107418
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