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January 18, 2026Polymers0 citationsOpen Access

Cryogenic X-Ray Microtomography of Early-Stage Polyurethane Foaming: 3D Analysis of Cell Structure Development

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PCPaula Cimavilla-RománSBSuset Barroso-SolaresVBVictoria Bernardo

Key Points

  • This research aims to explore the early structural evolution of polyurethane foams using cryogenic X-ray microtomography.
  • Used cryogenic X-ray microtomography to analyze polyurethane foams.
  • Investigated effects of different blowing agents and catalyst contents on bubble formation.
  • Measured cell nucleation density and growth dynamics at various times.
  • Tripling the catalyst weight content increased cell nucleation density from 8.9 × 10^5 to 1.8 × 10^6 cells cm−3.
  • Doubling water content had less impact on nucleation but increased cell growth speed and reduced relative density at equal reaction times.
  • Demonstrated potential for detailed investigation in foam structures previously limited to synchrotron facilities.

Abstract

Laboratory-scale cryogenic X-ray microtomography was employed for the first time to investigate the early structural evolution of polyurethane (PU) foams. This method enables ex situ studying the internal morphology of the frozen reactive mixture at various times before cell impingement. In this work, the precision of the method was evaluated by studying the early bubble formation and growth under different blowing agents and catalyst contents. It was detected that tripling the catalyst weight content doubled cell nucleation density, from 8.9 × 105 to 1.8 × 106 cells cm−3. Yet, doubling the water content has lesser impact on nucleation but leads to fast speeds of cell growth and, in turn, lower relative density at equal reaction times. Overall, it is demonstrated that laboratory cryogenic microtomography can be used to democratise the 3D investigation of the internal structure of foams which was until now only possible in synchrotron facilities. In addition, this method can help elucidate the mechanisms of nucleation and degeneration via directly measuring the density of bubbles and distance between them in the reactive mixture. Finally, this methodology could be extended to recent laboratory nanotomography systems utilizing X-ray tubes with nanometric spot sizes, thereby enabling the confident identification of nucleation events.

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Cite This Study

Cimavilla-Román et al. (2026) studied this question.

synapsesocial.com/papers/696c77f1eb60fb80d13962b1https://doi.org/10.3390/polym18020245
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