This study examines the bearing strength of concrete pads used beneath spherical sliding bearings (SSBs) through a total of 62 tests conducted on 1/5- and 1/2-scale specimens, focusing on the effects of specimen geometry, boundary conditions, and reinforcement. The dimensional ratio H p / d , defined as the ratio of the concrete pad height ( H p ) to the characteristic length of the concrete surrounding the loading area ( d ), was found to be a key parameter, and results indicate that a minimum value of 0.6 is required for concrete pads to achieve sufficient confinement and reach their intended bearing capacity. To evaluate pads with various geometries, a new evaluation method, the Pseudo Area Method, was proposed, limiting the effective bearing area based on H p / d = 0.6. Foundation-type specimens exhibited significantly higher capacities than column-type specimens, demonstrating the structural advantage of installing pads on foundations, particularly under sudden seismic-induced axial force increases. Reinforcement was effective only when a threshold of H p / d ≥ 0.5 was satisfied. A regression-based increment factor, α r = (2.65 ρ (max ( H p / d − 0.5, 0)) + 1), was integrated into the AIJ (2022) bearing-stress formula, showing good agreement with experimental results. The findings confirm the necessity of a threshold for H p / d in pad design and support the proposed evaluation method for practical SSB applications.
Kose et al. (Tue,) studied this question.
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