Seismic performance enhancement of mid-rise buildings via multiple active friction-tuned mass dampers incorporating nonlinear soil-structure interaction
Abstract
This study investigates the seismic behaviour of a 10-storey shear-type building subjected to eleven near-field earthquake records while explicitly accounting for nonlinear soil-structure interaction (SSI). To improve seismic performance, a novel multiple active friction-tuned mass damper (MAFTMD) framework is proposed by integrating multiple friction-tuned mass dampers (MFTMDs) with an enhanced integral-derivative tilted (I-DT) control strategy. The nonlinear behaviour of the supporting soil is represented using the Hardin-Drnevich model, enabling strain-dependent stiffness degradation and damping effects to be captured under stiff, soft, and very soft soil conditions. The parameters of the MTMD and MFTMD configurations, along with the gains of the enhanced I-DT controller implemented in the MAFTMD system, are optimized using a multi-objective thermal exchange optimization (MOTEO) algorithm. The optimization simultaneously minimizes peak storey displacement and acceleration while satisfying inter-storey drift ratio constraints. The results demonstrate that incorporating friction mechanisms significantly enhances energy dissipation and structural response mitigation as compared to conventional MTMD systems. Furthermore, the proposed MAFTMD framework provides the most stable and effective overall performance under varying near-field earthquake characteristics and nonlinear soil conditions. The study also shows that nonlinear SSI strongly affects the performance and optimization of structural control systems. Overall, the proposed framework combines friction-based damping, active control, and nonlinear soil modelling to improve the seismic performance of mid-rise buildings under near-field earthquakes.