The ability of sloshing liquid to suppress vibration is weakened in the case of large motivating acceleration due to the inconstant free sloshing frequency. A combined system where a tuned spring oscillator is put into the sloshing liquid damper is presented. The vibration suppressing process of the structure with the combined system is numerically simulated with an implicit coupling approach of partitioned solvers. The results show that the combined system is endowed with greater ability to suppress vibration because of the dissipating effect of sloshing liquid as keeping the oscillator resonant absorbing ability. A large difference of the free frequencies between sloshing and oscillator is benefit to keep the tuned condition. The liquid sloshing is simultaneously motivated by resonant container and oscillator to enhance dissipating ability
which is considered as the main suppressing mechanism of the combined system. Following the frame that enhancing the liquid dissipating as keeping the oscillator tuned
the damping ratio even gets up to 5.6% in the optimized combined system without damping structure.
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