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Reaction Model and Optimization of the Alkaline Hydrolysis of SF-3 Double-Base Propellant Wastes Using Analysis of Response Surface Methodology

  • Jin Li
  • , Yuhui Jiang
  • , Jiaxin Niu
  • , Xinxin Liang
  • , Zongkuan Liu
  • , Zhaolin Gu
  • School of Human Settlements and Civil Engineering
  • Qilu Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The alkaline hydrolysis process is a promising method for treating SF-3 double-base propellant waste. This study aimed to validate the SF-3 waste alkaline hydrolysis reaction model and optimize its reaction conditions, thereby promoting the industrial application of alkaline hydrolysis treatment of double-base propellant wastes. Thus, the SF-3 alkaline hydrolysis reaction model was developed based on theoretical assumptions, derivations, and experimental validation. A central composite design coupled with response surface methodology was used to optimize the operational conditions, including reaction temperature, liquid–solid ratio, and reaction time. The results showed that the SF-3 alkaline hydrolysis conformed to a shrinking particle reaction model. The relationship between the xSF and the t is xSF = [(α + 2)t/(αte′) − 2t2/(αte2)] × 100, where the limiting step is the alkaline hydrolysis process on the particle surface. In addition to reaction temperature and reaction time, the liquid–solid ratio influenced the SF-3 alkaline hydrolysis process. Furthermore, the results of Pareto and analysis of variance analyses revealed that the regression model equation was obtained as xSF = 48.91 + 8.321 + 13.11X3 − 3.49X12 − 2.162X22 − 4.179X32 + 2.78X1X2. Meanwhile, the optimal reaction temperature, time, and liquid–solid ratio were 86.5 °C, 70.8 min, and 6.0, respectively. Under the optimal reaction conditions, the predicted xSF using the regression model was 99.80%, while the experimental value was 95.01 ± 1.87%, demonstrating the accuracy of the regression model. Therefore, this study provides theoretical and technical support for the industrial-scale safe disposal and resource utilization of waste double-base propellants.

Original languageEnglish
Article number6980
JournalApplied Sciences (Switzerland)
Volume16
Issue number14
DOIs
StatePublished - Jul 2026
Externally publishedYes

Keywords

  • double-base propellant wastes
  • liquid–solid ratio
  • optimization of reaction conditions
  • response surface methodology (RSM)
  • shrinking particle reaction model

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