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Optimal tuned mass-damper-inerter (TMDI) design in wind-excited tall buildings for occupants' comfort serviceability performance and energy harvesting

机译:受风激励的高层建筑中的优化调谐质量阻尼器(TMDI)设计,可为居住者提供舒适的服务性能和能量收集

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The tuned mass-damper-inerter (TMDI) couples the classical tuned mass-damper (TMD) with an inerter device which develops a resisting force proportional to the relative acceleration of its ends by the "inertance" constant. Previous works demonstrated that the TMDI leads to efficient broadband vibration control for a range of different structures under different dynamic excitations. This paper proposes a novel optimal TMDI design formulation to address occupants' comfort in wind-excited slender tall buildings susceptible to vortex shedding (VS) effects and to explore optimal TMDI's potential for transforming part of the wind-induced kinetic energy to usable electricity in tall buildings. Attention is focused on investigating benefits of TMDIs with different inertial properties (i.e., secondary mass/weight and inertance) configured in different topologies defined by the number of floors spanned by the inerter device to connect the secondary mass to the building structure. Optimally designed TMDIs for a wide range of inertial properties and three different topologies are obtained through numerical solution of the underlying optimization problem for a benchmark 305.9 m tall building with more than 6 height-to-width ratio subjected to experimentally calibrated spatially-correlated across-wind force field accounting for VS effects. Fixed performance design graphs on the TMDI inertial (mass-inertance) plane are furnished demonstrating that any fixed structural performance level in terms of occupants' comfort (i.e., peak top floor acceleration) can be achieved through lightweight TMDIs as long as sufficient inertance is provided. Further, TMDI robustness to host structure properties and to reference wind velocity is shown to increase by increasing inertance or by spanning more floors in connecting the secondary mass with the host structure by the inerter. Lastly, it is found that increased available energy for harvesting in wind excited tall buildings is achieved by incorporating electromagnetic motors in TMDIs with varying damping property, while concurrent reduced floor acceleration and increased available energy for harvesting is accomplished by TMDI topologies with inerters spanning more floors.
机译:调谐质量阻尼器(TMDI)将经典调谐质量阻尼器(TMD)与惰性装置耦合,该装置通过“惯性”常数产生与其端部相对加速度成比例的抵抗力。先前的工作表明,TMDI可以在不同的动态激励下对一系列不同的结构进行有效的宽带振动控制。本文提出了一种新颖的最佳TMDI设计公式,以解决风激励的细长高层建筑中易受涡旋脱落(VS)影响的居住者的舒适度,并探索将部分风致动能转化为高层可用电的最佳TMDI潜力。建筑物。注意力集中在调查具有不同惯性特性(即次要质量/重量和惯性)的TMDI的好处上,这些惯性特性配置在不同的拓扑结构中,该拓扑由惰化器装置连接次要质量块到建筑结构的楼层数定义。通过对305.9 m高的基准建筑(高度与宽度之比超过6)并经过实验校准的,与空间相关的跨标量的基础优化问题的数值解决方案的数值解,可以获得针对广泛惯性特性和三种不同拓扑的优化设计的TMDI。风力场占VS效应。提供了TMDI惯性(质量惯性)平面上的固定性能设计图,表明只要提供了足够的惯性,就可以通过轻型TMDI达到就乘员舒适度(即顶楼顶加速度)而言任何固定的结构性能水平。此外,通过惯性的增加,惯性的增加或跨过更多层的楼层,TMDI对主体结构性能和参考风速的鲁棒性也显示出增加。最后,发现通过将电磁电动机并入具有不同阻尼特性的TMDI中,可以增加风能激发的高层建筑中用于收获的可用能量,同时通过TMDI拓扑结构(同时覆盖更多楼层的惰性气体)来实现同时降低的地板加速度和增加的可用收集能量。 。

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