摘要
Partially replacing water with N-methyl-2-pyrrolidone (NMP) in aqueous monoethanolamine (MEA) solutions has been shown to reduce the energy demand of CO2 capture. However, the absence of rigorous thermodynamic models for semi-aqueous MEA-NMP solvents hinders process design and optimization. This study develops a thermodynamic model for CO₂ absorption in NMP–H2O–MEA–CO2 mixtures using the electrolyte NRTL framework. The model extends the established H2O–MEA–CO2 system by incorporating NMP-specific parameters while preserving accuracy in the aqueous regime. A sequential regression approach is applied to correlate key properties relevant to CO2 capture, including CO₂ solubility, excess enthalpy, heat of absorption, and liquid heat capacity across binary to quaternary systems. Viscosity and density are also modeled to support mass transfer calculations. To improve model accuracy, new CO2 solubility data are measured for NMP–H₂O–MEA–CO2 mixtures at 313–393 K. The model accurately represents CO2 solubility across a wide range of CO2 loadings, temperatures, and NMP contents, revealing a decrease in solubility and a 10–25 kJ/mol CO2 increase in heat of absorption with NMP addition. The developed model enables rigorous process simulation and facilitates the design of energy-efficient CO2 capture using semi-aqueous MEA-NMP solvents.