This paper presents a comprehensive theoretical framework for assessing refractory material performance under combined thermo-mechanical-chemical (TMC) stresses. Traditional refractory testing methodologies evaluate thermal shock, mechanical strength, and chemical corrosion in isolation, failing to capture the synergistic degradation mechanisms prevalent in industrial applications. We propose a unified theoretical model that integrates fracture mechanics, continuum damage mechanics, and corrosion kinetics, explicitly formulating the interactions between different stress modes. The model introduces two novel metrics: the TMC Resistance Index (TMCRI) for overall performance assessment and the Synergistic Degradation Factor (SDF) for quantifying interaction effects. We derive coupled partial differential equations governing TMC degradation, provide analytical approximations for simple geometries, and outline numerical solution methodologies. The framework includes practical parameter determination protocols, validation methodologies, and industrial application guidelines. This theoretical foundation enables more accurate lifetime prediction, rational material selection, and optimized refractory design for aggressive industrial environments, potentially leading to new standardized testing protocols.
S. N. PRAJAPATI (Tue,) studied this question.