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Seismic behavior of RC structures with absence of floor slab constraints and large mass turbine as a non-conventional TMD: a case study

机译:没有楼板约束和大型涡轮机作为非常规TMD的RC结构的抗震性能:案例研究

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This paper presents a case study on the influence of absence of floor slab constraints and large mass turbine as a non-conventional tuned mass damper (TMD) on the seismic behavior of the structure and members. The investigated structural system is a reinforced concrete (RC) shear wall-frame power plant structure with large slab openings and a large mass turbine. In RC structures, the existence of floor slabs can usually provide strong constraints on beams so as to greatly increase their bearing capacity. However, due to some special functional demands, large area of slabs may have to be removed so that some floor beams will lose the constraints provided by slabs. In such cases, beams could be subjected to complex internal forces and develop unexpected failure modes under earthquake actions. Nonlinear time history analyses are conducted by using the self-developed program COMPONA-MARC Version 1.0. The numerical model employs fiber beam-column elements with distributed plasticity approach which can elaborately simulate the complex seismic behavior of structural members without slab constraints including the significant transverse vibration damage mechanism. For the seismic effectiveness of the turbine as a TMD with large mass ratio, the optimized parameters are discussed and verified by extensive numerical examples under a wide selection of ground acceleration time histories. The acceleration responses of the turbine are analyzed and found to satisfy the corresponding requirements. The dynamic interaction between the structure and turbine is evaluated and the effects of mass ratio and multiple supporting springs on the dynamic response of the turbine are investigated. It is found that the acceleration response of the turbine modeled with multiple supporting springs is evidently larger than that modeled with a single degree-of-freedom system, and the floor response spectrum decreases significantly with the increase of the mass ratio.
机译:本文针对无楼板约束和大型涡轮作为非常规调谐质量阻尼器(TMD)对结构和构件的抗震性能的影响进行了案例研究。所研究的结构系统是钢筋混凝土(RC)剪力墙框架发电厂结构,具有大的平板开口和大型的涡轮机。在钢筋混凝土结构中,楼板的存在通常可以对梁提供强大的约束,从而大大提高梁的承载能力。但是,由于某些特殊的功能要求,可能必须移除大面积的楼板,以使某些楼板梁失去楼板所提供的约束。在这种情况下,梁可能会承受复杂的内力并在地震作用下发展出意外的破坏模式。非线性时程分析是使用自行开发的程序COMPONA-MARC版本1.0进行的。该数值模型采用具有分布可塑性方法的纤维梁-柱单元,该单元可以精细地模拟结构构件的复杂地震行为,而不受包括明显的横向振动破坏机制在内的板坯约束。为了使涡轮作为具有大质量比的TMD的抗震性,在广泛的地面加速度时间历史选择下,通过大量的数值示例对优化参数进行了讨论和验证。分析涡轮的加速度响应,发现其满足相应的要求。评估了结构与涡轮之间的动力相互作用,并研究了质量比和多个支撑弹簧对涡轮动力响应的影响。结果发现,带有多个支撑弹簧的涡轮机的加速度响应明显比具有单个自由度系统的涡轮机的加速度响应大,并且底部响应谱随质量比的增加而显着降低。

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