Mario Aguilar, Miroslav Vořechovský, Abedulgader Baktheer, Rostislav Chudoba
Fatigue assessment of concrete structures relies predominantly on empirical evidence from uniaxial cylinder tests, codified into structural design rules. Several continuum damage-plasticity models have been developed to capture fatigue-induced dissipative mechanisms. However, they do not explicitly resolve how damage propagates through the aggregate skeleton and translates into structural behavior. This study addresses this gap by integrating a thermodynamically based inter-aggregate constitutive law into a lattice discrete particle model that explicitly represents mesoscale concrete heterogeneity. The thermodynamic formulation inherently decomposes dissipated energy into contributions from distinct degradation mechanisms, enabling mechanism-specific fatigue characterization. The model is calibrated using macroscopic characteristics of monotonic and fatigue response of prisms under compression and validated against prestressed beam experiments under variable-amplitude fatigue loading. Simulations reproduce experimental trends of fatigue response in prestressed beams, revealing two key findings: (i) the obtained Sparks-Menzies relation persists across material and structural scales; (ii) damage dissipation emerges as a scale-consistent, load-level-independent indicator of fatigue capacity within a given stress configuration, offering a physically grounded alternative to empirical design criteria. The present high-fidelity model provides the basis for resolving the transition from meso-scale material behavior to macroscopic structural response, and establishes a foundation for future coarse-graining and time-scale acceleration strategies required for large structures and long fatigue lives.