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Experimental research on the multilayer compartmental particle damper and its application methods on long-period bridge structures

机译:多层隔室颗粒阻尼器的试验研究及其在长周期桥梁结构中的应用方法

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摘要

Particle damping technology has attracted extensive research and engineering application interest in the field of vibration control due to its prominent advantages, including wide working frequency bands, ease of installation, longer durability and insensitivity to extreme temperatures. To introduce particle damping technology to long-period structure seismic control, a novel multilayer compartmental particle damper (MCPD) was proposed, and a 1/20 scale test model of a typical long-period self-anchored suspension bridge with a single tower was designed and fabricated. The model was subjected to a series of shaking table tests with and without the MCPD. The results showed that the seismic responses of the flexible or semi-flexible bridge towers of long-period bridges influence the seismic responses of the main beam. The MCPD can be conveniently installed on the main beam and bridge tower and can effectively reduce the longitudinal peak displacement and the root mean square acceleration of the main beam and tower. In addition, no particle accumulation was observed during the tests. A well-designed MCPD can achieve significant damping for long-period structures under seismic excitations of different intensities. These results indicate that the application of MCPDs for seismic control of single-tower self-anchored suspension bridges and other long-period structures is viable.
机译:由于其显着的优势,包括宽的工作频段,易于安装,更长的耐用性以及对极端温度的不敏感性,颗粒阻尼技术在振动控制领域吸引了广泛的研究和工程应用兴趣。为了将颗粒阻尼技术引入到长周期结构的地震控制中,提出了一种新型的多层隔室颗粒阻尼器(MCPD),并设计了典型的单塔长周期自锚式悬索桥的1/20比例试验模型。和捏造。在有和没有MCPD的情况下,对模型进行了一系列的振动台测试。结果表明,长周期桥梁的柔性或半柔性桥塔的地震响应会影响主梁的地震响应。 MCPD可以方便地安装在主梁和桥塔上,可以有效减少主梁和塔的纵向峰值位移和均方根加速度。另外,在测试过程中未观察到颗粒积聚。精心设计的MCPD可以在不同强度的地震激励下为长周期结构提供显着的阻尼。这些结果表明,MCPD在单塔自锚式悬索桥和其他长周期结构的地震控制中的应用是可行的。

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