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Impact Absorption Optimization in Rigid Polyurethane Foams Modified with Diethanolamine

delete2026-08-12
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OA
AI
T
Tatiana Francisco *
F
Fabio Oliveira
R
Rosana Medeiros Moreira
E
Elcio Cruz de Oliveira
D
Diego H. S. Souza
DOI:10.3390/polym18141741delete
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Abstract

Abstract

En 中文
Rigid polyurethane foams are used in impact-attenuation systems due to their tunable cellular structure and energy dissipation capacity. However, expanded polystyrene (EPS), commonly used for impact protection, presents limitations related to impact attenuation performance and limited design flexibility. This study evaluates the impact performance of rigid polyurethane foams modified with diethanolamine and assesses formulation efficiency using Data Envelopment Analysis (DEA). Rigid PU foam formulations containing 0–3 wt% DEOA were synthesized and characterized by impact testing, apparent density measurements, Scanning Electron Microscopy, Fourier Transform Infrared Spectroscopy, and Thermogravimetric Analysis/Derivative Thermogravimetry. DEA was applied to correlate diethanolamine content with impact absorption efficiency. Excessive crosslinking and reduced energy dissipation were observed above 2 wt%, while concentrations below 0.5 wt% resulted in poorly structured foams. The formulation containing 1 wt% DEOA was identified as the most efficient among the investigated formulations, exhibiting the best overall performance, reducing transmitted peak acceleration by 13.8% compared with neat PU foam, while exhibiting an approximately 48% increase in apparent density, more complete consumption of NCO groups, a more uniform cellular structure, and only modest changes in thermal degradation behavior. These findings indicate that the improved impact performance is associated with the combined effects of increased apparent density, modified cellular morphology, and changes in the polyurethane network promoted by DEOA, underscore the promise of diethanolamine-modified rigid polyurethane (PU) foams for protective applications.
Keywords:
rigid polyurethane foam
impact attenuation
data envelopment analysis

Journal

Polymers cover
Polymers
IF:
4.9
Papers:
5.8K
Citations:
12.1W

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N
National Institute of Technology
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federal university of rio de janeiro
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pontifical catholic university of rio de janeiro
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