ABSTRACT This experimental study investigated the thermal decomposition kinetics of 4,6‐diamino‐5,7‐dinitro‐benzo‐furazan (referred to as F1 hereafter)—an important decomposition product of 1,3,5‐triamino‐2,4,6‐trinitrobenzene (TATB—a prototypical insensitive high explosive). Simultaneous differential scanning calorimetry (DSC), thermogravimetric analysis (TGA), and mass spectrometry (MS) measurements were employed to determine the decomposition kinetics of F1 and to track the evolution of product gases. The DSC profiles were measured at 10 different heating rates between 0.025°C/min and 10°C/min. The measured exotherms were influenced by F1 melting at heating rates above 0.25°C/min, and corresponding changes in decomposition enthalpy and TGA mass‐loss‐rate profiles indicated a transition from solid‐to‐gas decomposition to an increasing contribution from liquid‐to‐gas decomposition. Analysis of low‐heating‐rate DSC data between 0.025°C/min and 0.17°C/min with the extended Prout–Tompkins model yielded an activation energy of 305 kJ/mol for solid‐to‐gas F1 decomposition, higher than previous values inferred from TATB decomposition models involving F1. This study provides the first direct experimental determination of the energy barrier for F1 decomposition. MS measurements showed that the major gaseous products matched species previously reported for TATB decomposition (e.g., CO 2 , HCN, C 2 N 2 , etc.), with water identified as the dominant product. These results provide important experimental constraints for improving chemical kinetics models of TATB decomposition and for predicting the reactivity, stability, and safety of TATB‐based high explosives under long‐term aging conditions and abnormal thermal environments.
Köroğlu et al. (Mon,) studied this question.