Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts
RESEARCH ARTICLE|Updated:2026-05-30
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Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts
Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts
Chinese Journal of Polymer Science2026年44卷第6期 页码:1843-1854
Affiliations:
School of Water Conservancy and Transportation, Zhengzhou University, Zhengzhou 450001, China
Author bio:
lxf1997@zzu.edu.cn
Funds:
This work was financially supported by the National Natural Science Foundation of China (No. 52178401), Science and Technology Innovation Team Support Program for Henan Universities (No. 23IRTSTHN014), Natural Science Foundation of Henan Province of China (No. 252300421251), National Natural Science Foundation of China (Nos. 52578540 and 52478477), and the Cross-disciplinary Innovation Research Group Project of the Natural Science Foundation of Henan Province (No. 252300421827).;The authors declare no interest conflict.The data supporting the findings of this study are available from the corresponding author upon reasonable request.
Li, X. L.; Zi, X. X.; Liu, X. F.; Guo, M.; Zhong, Y. H.; Zhang, B. Real-time monitoring of component conversion during the foaming and curing process of self-expanding polyurethane grouts. Chinese J. Polym. Sci. 2026, 44, 1843–1854
Xiao-Long Li, Xuan-Xuan Zi, Xiao-Feng Liu, et al. Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts[J]. Chinese Journal of Polymer Science, 2026, 44(6): 1843-1854.
Li, X. L.; Zi, X. X.; Liu, X. F.; Guo, M.; Zhong, Y. H.; Zhang, B. Real-time monitoring of component conversion during the foaming and curing process of self-expanding polyurethane grouts. Chinese J. Polym. Sci. 2026, 44, 1843–1854DOI: 10.1007/s10118-026-3604-y.
Xiao-Long Li, Xuan-Xuan Zi, Xiao-Feng Liu, et al. Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts[J]. Chinese Journal of Polymer Science, 2026, 44(6): 1843-1854.DOI: 10.1007/s10118-026-3604-y.
Real-Time Monitoring of Component Conversion during the Foaming and Curing Process of Self-expanding Polyurethane Grouts
and apparent isocyanate conversions in high ―NCO polyurethane grouts by ATR-FTIR (carbamate C―O) and LiDAR volume tracking
revealing three-stage kinetics with faster foaming than gelation.
Abstract
Polyurethane polymer grouting materials with rapid expansion and solidification characteristics have been widely applied for infrastructure repair and reinforcement. An accurate characterization of the chemical reaction process of the slurry is essential for investigating its grouting mechanism. However
the high concentration of isocyanate groups in such polymer systems causes a “flat-top phenomenon” in Fourier transform infrared (FTIR) spectroscopy
rendering it difficult to accurately determine the conversion rate. To address this issue
a real-time method for measuring the reaction conversion rates of slurry components was proposed. The polyol conversion rate was obtained by tracking the integral area changes of the C―O bond peak in the carbamate product relative to the internal standard. The total slurry volume was determined at different time intervals using light detection and ranging (LiDAR)-based point cloud scanning
from which the gas volume was estimated. Combined with the solubility curve of the physical blowing agent and ideal gas law
the conversion rate of the chemical blowing agent was calculated. The isocyanate conversion rate was indirectly inferred based on the measured polyol and chemical blowing agent conversions. This method was applied to a polyurethane grouting material used in an engineering project
and the time-resolved conversion curves of all components throughout the reaction were obtained. The results revealed a three-stage evolution: a slow initial increase
a rapid rise in the middle stage
and a gradual deceleration in the later stage. The foaming reaction proceeded consistently faster than the gelation reaction did. These findings provide a foundation for further research on the diffusion mechanisms of polyurethane polymer slurries.
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